COMMISSION DELEGATED REGULATION (EU) 2017/654
of 19 December 2016
supplementing Regulation (EU) 2016/1628 of the European Parliament and of the Council with regard to technical and general requirements relating to emission limits and type-approval for internal combustion engines for non-road mobile machinery
Article 1
Definitions
Article 2
Requirements for any other specified fuels, fuel mixtures or fuel emulsions
Article 3
Arrangements with regard to conformity of production
Article 4
Methodology for adapting the emission laboratory test results to include the deterioration factors
Article 5
Requirements with regard to emission control strategies, NO
x
control measures and particulate control measures
Article 6
Measurements and tests with regard to the area associated with the non-road steady-state test cycle
Article 7
Conditions and methods for the conduct of tests
Article 8
Procedures for the conduct of tests
Article 9
Procedures for emission measurement and sampling
Article 10
Apparatus for the conduct of tests and for emission measurement and sampling
Article 11
Method for data evaluation and calculations
Article 12
Technical characteristics of the reference fuels
Article 13
Detailed technical specifications and conditions for delivering an engine separately from its exhaust after-treatment system
Article 14
Detailed technical specifications and conditions for the temporary placing on the market for the purposes of field testing
Article 15
Detailed technical specifications and conditions for special purpose engines
Article 16
Acceptance of equivalent engine type-approvals
Article 17
Details of the relevant information and instructions for OEMs
Article 18
Details of the relevant information and instructions for end-users
Article 19
Performance standards and assessment of technical services
Article 20
Characteristics of the steady-state and transient test cycles
Article 21
Entry into force and application
ANNEXES
Annex Number |
Annex title |
Page |
I |
Requirements for any other specified fuels, fuel mixtures or fuel emulsions |
|
II |
Arrangements with regard to conformity of production |
|
III |
Methodology for adapting the emission laboratory test results to include the deterioration factors |
|
IV |
Requirements with regard to emission control strategies, NOx control measures and particulate control measures |
|
V |
Measurements and tests with regard to the area associated with the non-road steady-state test cycle |
|
VI |
Conditions, methods, procedures and apparatus for the conduct of tests and for emission measurement and sampling |
|
VII |
Method for data evaluation and calculations |
|
VIII |
Performance requirements and test procedures for dual-fuel engines |
|
IX |
Technical characteristics of the reference fuels |
|
X |
Detailed technical specifications and conditions for delivering an engine separately from its exhaust after-treatment system |
|
XI |
Detailed technical specifications and conditions for the temporary placing on the market for the purposes of field testing |
|
XII |
Detailed technical specifications and conditions for special purpose engines |
|
XIII |
Acceptance of equivalent engine type-approvals |
|
XIV |
Details of the relevant information and instructions for OEMs |
|
XV |
Details of the relevant information and instructions for end-users |
|
XVI |
Performance standards and assessment of technical services |
|
XVII |
Characteristics of the steady-state and transient test cycles |
|
ANNEX I
Requirements for any other specified fuels, fuel mixtures or fuel emulsions
1.
Requirements for engines fuelled with liquid fuels
1.2. Requirements for a standard fuel range (diesel, petrol) engine
1.3. Requirements for a fuel-specific (ED 95 or E 85) engine
2.
Requirements for engines fuelled with natural gas/biomethane (NG) or liquefied petroleum gas (LPG), including dual-fuel engines
2.3. Requirements for a universal fuel range engine
2.4. Requirements for a restricted fuel range engine
2.4.1. For engines fuelled with CNG and designed for operation on either the range of H-gases or on the range of L-gases
2.4.2. For engines fuelled with natural gas or LPG and designed for operation on one specific fuel composition
2.5. Requirements for a fuel-specific engine fuelled with liquefied natural gas/liquefied biomethane (LNG)
2.5.1. Fuel-specific engine fuelled with liquefied natural gas/liquefied biomethane (LNG)
2.5.2. Fuel-specific engine fuelled with Liquefied Natural Gas (LNG)
2.6. EU type-approval of a member of a family
2.7. Additional requirements for dual-fuel engines
Appendix 1
Summary of approval process for natural gas and LPG fuelled engines including dual-fuel engines
|
Point 2.3: Requirements for an universal fuel range engine |
Number of test runs |
Calculation of ‘r’ |
Point 2.4: Requirements for a restricted fuel range engine |
Number of test runs |
Calculation of ‘r’ |
||||
Refer to point 2.3.1. NG-engine adaptable to any fuel composition |
GR (1) and G25 (2) At manufacturer's request engine may be tested on an additional market fuel (3), if Sl = 0,89 – 1,19 |
2 (max. 3) |
[Bild bitte in Originalquelle ansehen] and, if tested with an additional fuel; [Bild bitte in Originalquelle ansehen] and [Bild bitte in Originalquelle ansehen] |
|
|
|
||||
Refer to point 2.3.2. NG-engine which is self-adaptive by a switch |
GR (1) and G23 (3) for H and G25 (2) and G23 (3) for L At manufacturer's request engine may be tested on a market fuel (3) instead of G23, if Sl = 0,89 – 1,19 |
2 for the H-range, and 2 for the L-range; at respective position of switch |
[Bild bitte in Originalquelle ansehen] and [Bild bitte in Originalquelle ansehen] |
|
|
|
||||
Refer to point 2.4.1. NG-engine laid out for operation on either H-range gas or L-range gas |
|
|
|
GR (1) and G23 (3) for H or G25 (2) and G23 (3) for L At manufacturer's request engine may be tested on a market fuel (3) instead of G23, if Sl = 0,89 – 1,19 |
2 for the H-range or 2 for the L-range 2 |
[Bild bitte in Originalquelle ansehen] for the H-range or [Bild bitte in Originalquelle ansehen] for the L-range |
||||
Refer to point 2.4.2. NG-engine laid out for operation on one specific fuel composition |
|
|
|
GR (1) and G25 (2), Fine-tuning between the tests allowed. At manufacturer's request engine may be tested on:
|
2 2 for the H-range or 2 for the L-range |
|
|
Point 2.3: Requirements for an universal fuel range engine |
Number of test runs |
Calculation of ‘r’ |
Point 2.4: Requirements for a restricted fuel range engine |
Number of test runs |
Calculation of ‘r’ |
Refer to point 2.3.4. LPG-engine adaptable to any fuel composition |
Fuel A and fuel B |
2 |
[Bild bitte in Originalquelle ansehen] |
|
|
|
Refer to point 2.4.2. LPG-engine laid out for operation on one specific fuel composition |
|
|
|
Fuel A and fuel B, fine-tuning between the tests allowed |
2 |
|
Dual-fuel type |
Liquid-fuel mode |
Dual-fuel mode |
|||
CNG |
LNG |
LNG20 |
LPG |
||
1A |
|
Universal or restricted (2 tests) |
Universal (2 tests) |
Fuel-specific (1 test) |
Universal or restricted (2 tests) |
1B |
Universal (1 test) |
Universal or restricted (2 tests) |
Universal (2 tests) |
Fuel-specific (1 test) |
Universal or restricted (2 tests) |
2A |
|
Universal or restricted (2 tests) |
Universal (2 tests) |
Fuel-specific (1 test) |
Universal or restricted (2 tests) |
2B |
Universal (1 test) |
Universal or restricted (2 tests) |
Universal (2 tests) |
Fuel-specific (1 test) |
Universal or restricted (2 tests) |
3B |
Universal (1 test) |
Universal or restricted (2 tests) |
Universal (2 tests) |
Fuel-specific (1 test) |
Universal or restricted (2 tests) |
ANNEX II
Arrangements with regard to conformity of production
1.
Definitions
2.
Purpose
3.
Initial assessment
4.
Product conformity arrangements
5.
Continued verification arrangements
6.
Conformity of production test requirements in cases of an unsatisfactory level of product conformity control as referred to in point 5.4.
6.5. Non-compliance of gaseous-fuelled engines
Figure 2.1
Schematic of production conformity testing
Appendix 1
Procedure for production conformity testing
Minimum sample size: 3 |
Minimum sample size for pass decision: 4 |
Cumulative number of engines tested (sample size) |
Pass decision number |
Fail decision number |
3 |
— |
3 |
4 |
0 |
4 |
5 |
0 |
4 |
6 |
1 |
5 |
7 |
1 |
5 |
8 |
2 |
6 |
9 |
2 |
6 |
10 |
3 |
7 |
11 |
3 |
7 |
12 |
4 |
8 |
13 |
4 |
8 |
14 |
5 |
9 |
15 |
5 |
9 |
16 |
6 |
10 |
17 |
6 |
10 |
18 |
7 |
11 |
19 |
8 |
9 |
ANNEX III
Methodology for adapting the emission laboratory test results to include the deterioration factors
1.
Definitions
2.
General
3.
Engine categories NRE, NRG, IWP, IWA, RLL, RLR, SMB, ATS and sub-categories NRS-v-2b and NRS-v-3
3.1. Selection of engines for establishing emission durability period deterioration factors
3.2. Determination of emission durability period deterioration factors
3.2.1. General
3.2.2. Service accumulation schedule
3.2.2.1. In-service and dynamometer service accumulation
3.2.3. Engine testing
3.2.3.1. Engine stabilisation
3.2.3.2. Service accumulation testing
3.2.4. Reporting
3.2.5. Determination of deterioration factors
Figure 3.1
Example of DF determination
3.2.6. Assigned deterioration factors
Test cycle |
CO |
HC |
NOx |
PM |
PN |
NRTC and LSI-NRTC |
1,3 |
1,3 |
1,15 |
1,05 |
1,0 |
NRSC |
1,3 |
1,3 |
1,15 |
1,05 |
1,0 |
3.2.7. Application of deterioration factors
3.3. Checking of conformity of production
3.4. Maintenance
3.4.1. Scheduled emission-related maintenance
3.4.2. Changes to scheduled maintenance
3.4.3. Non-emission-related scheduled maintenance
3.5. Repair
4.
Engine categories and sub-categories NRSh and NRS, except for NRS-v-2b and NRS-v-3
4.4. EDP categories
EDP Category |
Application of Engine |
Cat 1 |
Consumer products |
Cat 2 |
Semi-professional products |
Cat 3 |
Professional products |
ANNEX IV
Requirements with regard to emission control strategies, NO
x
control measures and particulate control measures
1.
Definitions abbreviations and general requirements
1.2. Ambient temperature
2.
Technical requirements relating to emission control strategies
2.2. Requirements for base emission control strategy
2.3. Requirements for auxiliary emission control strategy
2.3.4. Cold temperature operation
2.4. Control conditions
2.6. Documentation requirements
3.
Technical requirements relating to NO
x
control measures
4.
Technical requirements relating to particulate pollutant control measures
Appendix 1
Additional technical requirements on NO
x
control measures for engines of categories NRE and NRG, including the method to demonstrate these strategies
1.
Introduction
2.
General requirements
2.1. Required information
2.2. Operating conditions
2.3. Reagent freeze protection
2.3.2. Reagent tank and dosing system
2.3.2.2. Design criteria for a heated system
2.3.3. Activation of the operator warning and inducement system for a non-heated system
2.4. Diagnostic requirements
2.4.2 Requirements for recording Diagnostic Trouble Codes (DTCs)
2.4.3. Requirements for erasing Diagnostic trouble codes (DTCs)
2.4.6. NCD engine family
2.4.6.1. Parameters defining an NCD engine family
3.
Maintenance requirements
4.
Operator warning system
5.
Operator inducement system
5.3. Low-level inducement system
Figure 4.1
Low-level inducement torque reduction scheme
5.4. Severe inducement system
Figure 4.2
Severe inducement torque reduction scheme
6.
Reagent availability
6.1. Reagent level indicator
6.2. Activation of the operator warning system
6.3 Activation of the operator inducement system
7.
Reagent quality monitoring
7.2. Activation of the operator warning system
7.3 Activation of the operator inducement system
8.
Reagent dosing activity
8.2. Reagent dosing activity counter
8.3. Activation of the operator warning system
8.4. Activation of the operator inducement system
9.
Monitoring failures that may be attributed to tampering
9.2. Monitoring requirements
9.2.2. EGR valve counter
9.2.3. NCD system counter(s)
9.3. Activation of the operator warning system
9.4. Activation of the operator inducement system
10.
Demonstration requirements
10.1. General
10.2. Engine families and NCD engine families
Mechanism |
Demonstration elements |
||||||
Warning system activation specified in point 10.3. |
|
||||||
Low-level inducement activation specified in point 10.4. |
|
||||||
Severe inducement activation specified in point 10.4.6. |
|
Figure 4.3
Previously demonstrated conformity of an NCD engine family
10.3. Demonstration of the warning system activation
10.3.2. Selection of the failures to be tested
10.3.3. Demonstration
10.3.3.5. Detection of failures other than lack of reagent.
10.3.3.6. Detection in case of lack of reagent availability
10.3.3.7. NCD test cycle
10.4. Demonstration of the inducement system
10.4.5. Demonstration test of the low-level inducement system
10.4.6. Demonstration test of the severe inducement system
11.
Description of the operator warning and inducement activation and deactivation mechanisms
11.2. Activation and deactivation mechanisms of the warning system
Failure type |
DTC status for activation of the warning system |
Poor reagent quality |
confirmed and active |
Interruption of dosing |
confirmed and active |
Impeded EGR valve |
confirmed and active |
Malfunction of the monitoring system |
confirmed and active |
NOx threshold, if applicable |
confirmed and active |
11.2.2.1 Requirements for erasing ‘NO
x
control information’
11.2.2.1.1. Erasing/resetting ‘NO
x
control information’ by a scan-tool
NOx control information |
Erasable |
Resetable |
All DTCs |
X |
|
The value of the counter with the highest number of engine operating hours |
|
X |
The number of engine operating hours from the NCD counter(s) |
|
X |
11.3. Activation and deactivation mechanism of the operator inducement system
11.4. Counter mechanism
11.4.1. General
11.4.2. Principle of counters mechanism
|
DTC status for first activation of the counter |
Counter value for low-level inducement |
Counter value for severe inducement |
Frozen value held by the counter |
Reagent quality counter |
confirmed and active |
≤ 10 hours |
≤ 20 hours |
≥ 90 % of counter value for severe inducement |
Dosing counter |
confirmed and active |
≤ 10 hours |
≤ 20 hours |
≥ 90 % of counter value for severe inducement |
EGR valve counter |
confirmed and active |
≤ 36 hours |
≤ 100 hours |
≥ 95 % of counter value for severe inducement |
Monitoring system counter |
confirmed and active |
≤ 36 hours |
≤ 100 hours |
≥ 95 % of counter value for severe inducement |
NOx threshold, if applicable |
confirmed and active |
≤ 10 hours |
≤ 20 hours |
≥ 90 % of counter value for severe inducement |
12.
Illustration of the activation and deactivation and counter mechanisms
Figure 4.4
Reactivation and resetting to zero of a counter after a period when its value has been frozen
Figure 4.5
Reagent availability
Figure 4.6
Filling with poor reagent quality
Figure 4.7
Failure of the reagent dosing system
13.
Demonstration of the minimum acceptable reagent concentration CD
min
Appendix 2
Additional technical requirements on NO
x
control measures for engines of categories IWP, IWA and RLR, including the method to demonstrate these strategies
1.
Introduction
2.
General requirements
3.
Exceptions to the requirements of Appendix 1
4.
Requirement for storing incidents of engine operation with inadequate reagent injection or reagent quality.
Appendix 3
Additional technical requirements on NO
x
control measures for engines of category RLL
1.
Introduction
2.
Required information
3.
Reagent availability and operator warning system
4.
Reagent quality
Appendix 4
Technical requirements on particulate pollutant control measures, including the method to demonstrate these measures
1.
Introduction
2.
General requirements
2.1. Required information
2.2. Operating conditions
2.3. Diagnostic requirements
2.3.2. Requirements for recording Diagnostic Trouble Codes (DTCs)
Monitor type |
Period of accumulated running time within which a ‘confirmed and active’ DTC shall be stored |
Removal of the particulate after-treatment system |
60 minutes of non-idle engine operation |
Loss of function of the particulate after-treatment system |
240 minutes of non-idle engine operation |
Failures of the PCD system |
60 minutes of engine operation |
2.3.6. PCD engine family
2.3.6.1. Parameters defining a PCD engine family
3.
Maintenance requirements
4.
Operator warning system
5.
System to store information on operator warning system activation
6.
Monitoring for removal of the particulate after-treatment system
7.
Additional requirements in the case of a particulate after-treatment system that uses a reagent (e.g. fuel-borne catalyst)
8.
Monitoring failures that may be attributed to tampering
8.2. Monitoring of loss of the particulate after-treatment system function
8.3. Monitoring of failures of the PCD system
9.
Demonstration requirements
9.1. General
Mechanism |
Demonstration elements |
||||
Warning system activation specified in point 4.4. |
|
9.2. Engine families and PCD engine families
Figure 4.8
Previously demonstrated conformity of a PCD engine family
9.3. Demonstration of the warning system activation
9.3.2. Selection of the failures to be tested
9.3.3. Demonstration
9.3.3.5. Detection of failures
Monitor type |
Number of PCD test cycles within which a ‘confirmed and active’ DTC shall be stored |
Removal of the particulate after-treatment system |
2 |
Loss of function of the particulate after-treatment system |
8 |
Failures of the PCD system |
2 |
9.3.3.6. PCD test cycle
9.3.3.7 Configuration for demonstration of the warning system activation
ANNEX V
Measurements and tests with regard to the area associated with the non-road steady-state test cycle
1.
General requirements
2.
Engine control area
2.1. Control area for engines tested on NRSC cycle C1
Figure 5.1
Control area for variable-speed engines of category NRE with maximum net power ≥ 19 kW, variable-speed engines of category IWA with maximum net power ≥ 300 kW and variable-speed engines of category NRG
Figure 5.2
Control area for variable-speed engines of category NRE with maximum net power < 19 kW and variable-speed engines of category IWA with maximum net power < 300 kW, speed C < 2 400 rpm
Figure 5.3
Control area for variable-speed engines of category NRE with maximum net power < 19 kW and variable-speed engines of category IWA with maximum net power < 300 kW, speed C ≥ 2 400 rpm
2.2. Control area for engines tested on NRSC cycles D2, E2 and G2
2.3. Control area for engines tested on NRSC cycle E3
Figure 5.4
Control area for engines tested on NRSC cycle E3
3.
Demonstration requirements
4.
Test requirements
ANNEX VI
Conduct of emission tests and requirements for measurement equipment
1.
Introduction
2.
General overview
3.
Related annexes
4.
General requirements
5.
Performance requirements
5.1. Emissions of gaseous and particulate pollutants and of CO
2
and NH
3
5.1.1. Equivalency
5.2. General requirements on the test cycles
5.2.5. Test speeds
5.2.5.1. Maximum test speed (MTS)
5.2.5.1.1. Calculation of MTS
(a) |
MTS = n lo + 0,95 × (n hi – n lo) |
(6-1) |
(b) |
MTS = n i |
(6-2) |
MTS = n i |
(6-3) |
5.2.5.1.2. Use of a declared MTS
5.2.5.1.3. Use of an adjusted MTS
MTS = ((n max – n idle)/1,05) + n idle |
(6-4) |
5.2.5.2. Rated speed
5.2.5.3. Maximum torque speed for variable-speed engines
5.2.5.4. Intermediate speed
5.2.5.5. Idle speed
5.2.5.6. Test speed for constant-speed engines
5.2.6. Torque and Power
5.2.6.1 Torque
5.2.6.2. Power
6.
Test Conditions
6.1. Laboratory test conditions
[Bild bitte in Originalquelle ansehen] |
(6-5) |
[Bild bitte in Originalquelle ansehen] |
(6-6) |
6.2. Engines with charge-air cooling
6.3. Engine power
6.3.1. Basis for emission measurement
6.3.2. Auxiliaries to be fitted
6.3.3. Auxiliaries to be removed
6.3.4. Determination of auxiliary power
6.3.5. Engine cycle work
P i = P m,i – P f,i + P r,i |
(6-7) |
P AUX = P r,i – P f,i |
(6-8) |
6.4. Engine intake air
6.4.1. Introduction
6.4.2. Intake air pressure restriction
6.5. Engine exhaust system
6.6. Engine with exhaust after-treatment system
6.6.1. Continuous regeneration
6.6.2. Infrequent regeneration
6.6.2.1. Requirement for establishing adjustment factors using NRTC, LSI-NRTC or RMC
6.6.2.2. Requirement for establishing adjustment factors using discrete-mode NRSC testing
6.6.2.3. General procedure for developing infrequent regeneration adjustment factors (IRAFs)
Figure 6.1
Scheme of infrequent (periodic) regeneration with
n
number of measurements and
n
r
number of measurements during regeneration.
[Bild bitte in Originalquelle ansehen] |
(6-9) |
[Bild bitte in Originalquelle ansehen] |
(upward adjustment factor) |
(6-10) |
[Bild bitte in Originalquelle ansehen] |
(downward adjustment factor) |
(6-11) |
k ru,a = e w – e |
(upward adjustment factor) |
(6-12) |
k rd,a = e w – e r |
(downward adjustment factor) |
(6-13) |
6.6.2.4. Application of adjustment factors
6.7. Cooling system
6.8. Lubricating oil
6.9. Specification of the reference fuel
6.10. Crankcase emissions
7. Test procedures
7.1. Introduction
7.2. Principle of emission measurement
7.2.1. Mass of constituent
7.2.1.1. Continuous sampling
7.2.1.2. Batch sampling
7.2.1.3. Combined sampling
Figure 6.2
Test procedures for emission measurement
7.2.2. Work determination
7.3. Verification and calibration
7.3.1. Pre-test procedures
7.3.1.1. Preconditioning
7.3.1.1.1. Preconditioning for cold-start run of NRTC
7.3.1.1.2. Preconditioning for hot-start run of NRTC or for LSI-NRTC
7.3.1.1.3. Preconditioning for discrete-mode NRSC
7.3.1.1.4. Preconditioning for RMC
7.3.1.1.5. Engine cool-down (NRTC)
7.3.1.2. Verification of HC contamination
7.3.1.3. Preparation of measurement equipment for sampling
7.3.1.4. Calibration of gas analyzers
7.3.1.5. PM filter preconditioning and tare weighing
7.3.2. Post-test procedures
7.3.2.1. Verification of proportional sampling
7.3.2.2. Post-test PM conditioning and weighing
7.3.2.3. Analysis of gaseous batch sampling
7.3.2.4. Drift verification
7.4. Test cycles
7.4.1. Steady-state test cycles
7.4.1.1. Discrete-mode NRSC
7.4.1.2. Ramped modal NRSC
7.4.2. Transient (NRTC and LSI-NRTC) test cycles
7.4.2.1. Test sequence for NRTC
Figure 6.3
NRTC normalized dynamometer schedule
7.4.2.2. Test sequence for LSI-NRTC
7.5. General test sequence
Figure 6.4
Test sequence
7.5.1. Engine starting, and restarting
7.5.1.1. Engine start
7.5.1.2. Engine stalling
7.5.1.3 Engine operation
7.6. Engine mapping
7.6.1. Engine mapping for variable-speed NRSC
7.6.2. Engine mapping for NRTC and LSI-NRTC
7.6.3. Engine mapping for constant-speed NRSC
7.6.3.1. Rated power check for engines to be tested on cycles D2 or E2
7.6.3.2. Mapping procedure for constant-speed NRSC
7.7. Test cycle generation
7.7.1. Generation of NRSC
7.7.1.1. Generation of NRSC test speeds for engines tested with both NRSC and either NRTC or LSI-NRTC.
7.7.1.2. Generation of NRSC test speeds for engines only tested with NRSC
7.7.1.3. Generation of NRSC load for each test mode
[Bild bitte in Originalquelle ansehen] |
(6-14) |
7.7.2. Generation of NRTC & LSI-NRTC speed and load for each test point (denormalization)
7.7.2.1. Reserved
7.7.2.2. Denormalization of engine speed
[Bild bitte in Originalquelle ansehen] |
(6-15) |
7.7.2.3 Denormalization of engine torque
[Bild bitte in Originalquelle ansehen] |
(6-16) |
(a) Declared minimum torque
(b) Adjustment of engine torque due to auxiliaries fitted for the emissions test
T max = T map – T AUX |
(6-17) |
TAUX = Tr – Tf |
(6-18) |
7.7.2.4. Example of denormalization procedure
7.8. Specific test cycle running procedure
7.8.1. Emission test sequence for discrete-mode NRSC
7.8.1.1. Engine warming-up for steady state discrete-mode NRSC
7.8.1.2. Performing discrete-mode NRSC
7.8.1.3. Validation criteria
7.8.2. Emission test sequence for RMC
7.8.2.1. Engine warming-up
7.8.2.2. Performing an RMC
7.8.2.3. Emission test sequence
7.8.2.4. Validation criteria
|
Speed |
Torque |
Power |
Standard error of estimate (SEE) of y on x |
maximum 1 % of rated speed |
maximum 2 % of maximum engine torque |
maximum 2 % of maximum engine power |
Slope of the regression line, a 1 |
0,99 to 1,01 |
0,98 - 1,02 |
0,98 - 1,02 |
Coefficient of determination, r 2 |
minimum 0,990 |
minimum 0,950 |
minimum 0,950 |
y intercept of the regression line, a 0 |
± 1 % of rated speed |
± 20 Nm or 2 % of maximum torque whichever is greater |
± 4 kW or 2 % of maximum power whichever is greater |
7.8.3. Transient (NRTC and LSI-NRTC) test cycles
7.8.3.1. Performing an NRTC test
7.8.3.2. Performing an LSI-NRTC test
7.8.3.3. Cycle validation criteria for transient (NRTC and LSI-NRTC) test cycles
7.8.3.4. Calculation of cycle work
7.8.3.5. Validation statistics (see Appendix 2 of Annex VII)
y= a 1 x + a 0 |
(6-19) |
|
Speed |
Torque |
Power |
Standard error of estimate (SEE) of y on x |
≤ 5,0 percent of maximum test speed |
≤ 10,0 % of maximum mapped torque |
≤ 10,0 % of maximum mapped power |
Slope of the regression line, a 1 |
0,95 to 1,03 |
0,83 - 1,03 |
0,89 - 1,03 |
Coefficient of determination, r 2 |
minimum 0,970 |
minimum 0,850 |
minimum 0,910 |
y intercept of the regression line, a 0 |
≤ 10 % of idle |
± 20 Nm or ± 2 % of maximum torque whichever is greater |
± 4 kW or ± 2 % of maximum power whichever is greater |
Event |
Conditions (n = engine speed, T = torque) |
Permitted point deletions |
Minimum operator demand (idle point) |
n ref = n idle and T ref = 0 % and T act > (T ref – 0,02 T maxmappedtorque) and T act < (T ref + 0,02 T maxmappedtorque) |
speed and power |
Minimum operator demand |
n act ≤ 1,02 n ref and T act > T ref or n act > n ref and T act ≤ T ref' or n act > 1,02 n ref and T ref < T act ≤ (T ref + 0,02 T maxmappedtorque) |
power and either torque or speed |
Maximum operator demand |
n act < n ref and T act ≥ T ref or n act ≥ 0,98 n ref and T act < T ref or n act < 0,98 n ref and T ref > T act ≥ (T ref – 0,02 T maxmappedtorque) |
power and either torque or speed |
8. Measurement procedures
8.1. Calibration and performance checks
8.1.1. Introduction
8.1.2. Summary of calibration and verification
Type of calibration or verification |
Minimum frequency(1) |
8.1.3: accuracy, repeatability and noise |
Accuracy: Not required, but recommended for initial installation. Repeatability: Not required, but recommended for initial installation. Noise: Not required, but recommended for initial installation. |
8.1.4: linearity verification |
Speed: Upon initial installation, within 370 days before testing and after major maintenance. Torque: Upon initial installation, within 370 days before testing and after major maintenance. Intake air, dilution air and diluted exhaust gas flows and batch sample flow rates: Upon initial installation, within 370 days before testing and after major maintenance, unless flow is verified by propane check or by carbon or oxygen balance. Raw exhaust gas flow: Upon initial installation, within 185 days before testing and after major maintenance, unless flow is verified by propane check or by carbon or oxygen balance. Gas dividers: Upon initial installation, within 370 days before testing and after major maintenance. Gas analyzers (unless otherwise noted): Upon initial installation, within 35 days before testing and after major maintenance. FTIR analyser: Upon installation, within 370 days before testing and after major maintenance. PM balance: Upon initial installation, within 370 days before testing and after major maintenance. Stand-alone pressure and temperature: Upon initial installation, within 370 days before testing and after major maintenance. |
8.1.5: Continuous gas analyzer system response and updating-recording verification — for gas analyzers not continuously compensated for other gas species |
Upon initial installation or after system modification that would affect response. |
8.1.6: Continuous gas analyzer system response and updating-recording verification — for gas analyzers continuously compensated for other gas species |
Upon initial installation or after system modification that would affect response. |
8.1.7.1: torque |
Upon initial installation and after major maintenance. |
8.1.7.2: pressure, temperature, dew point |
Upon initial installation and after major maintenance. |
8.1.8.1: fuel flow |
Upon initial installation and after major maintenance. |
8.1.8.2: intake flow |
Upon initial installation and after major maintenance. |
8.1.8.3: exhaust gas flow |
Upon initial installation and after major maintenance. |
8.1.8.4: diluted exhaust gas flow (CVS and PFD) |
Upon initial installation and after major maintenance. |
8.1.8.5: CVS/PFD and batch sampler verification(2) |
Upon initial installation, within 35 days before testing, and after major maintenance. (Propane check) |
8.1.8.8: vacuum leak |
Upon installation of the sampling system. Before each laboratory test according to point 7.1: within 8 hours before the start of the first test interval of each duty cycle sequence and after maintenance such as pre-filter changes. |
8.1.9.1: CO2 NDIR H2O interference |
Upon initial installation and after major maintenance. |
8.1.9.2: CO NDIR CO2 and H2O interference |
Upon initial installation and after major maintenance. |
8.1.10.1: FID calibration HC FID optimization and HC FID verification |
Calibrate, optimize, and determine CH4 response: upon initial installation and after major maintenance. Verify CH4 response: upon initial installation, within 185 days before testing, and after major maintenance. |
8.1.10.2: raw exhaust gas FID O2 interference |
For all FID analyzers: upon initial installation, and after major maintenance. For THC FID analyzers: upon initial installation, after major maintenance, and after FID optimization according to 8.1.10.1. |
8.1.11.1: CLD CO2 and H2O quench |
Upon initial installation and after major maintenance. |
8.1.11.3: NDUV HC and H2O interference |
Upon initial installation and after major maintenance. |
8.1.11.4: cooling bath NO2 penetration (chiller) |
Upon initial installation and after major maintenance. |
8.1.11.5: NO2-to-NO converter conversion |
Upon initial installation, within 35 days before testing, and after major maintenance. |
8.1.12.1: Sample dryer verification |
For thermal chillers: upon installation and after major maintenance. For osmotic membranes: upon installation, within 35 days of testing and after major maintenance |
8.1.13.1: PM balance and weighing |
Independent verification: upon initial installation, within 370 days before testing, and after major maintenance. Zero, span, and reference sample verifications: within 12 hours of weighing, and after major maintenance. |
8.1.3. Verifications for accuracy, repeatability, and noise
8.1.4. Linearity verification
8.1.4.1. Scope and frequency
8.1.4.2. Performance requirements
8.1.4.3. Procedure
8.1.4.4. Reference signals
8.1.4.5. Measurement systems that require linearity verification
Measurement System |
Quantity |
Minimum verification frequency |
Linearity Criteria |
|||
[Bild bitte in Originalquelle ansehen] |
α |
SEE |
r 2 |
|||
Engine speed |
n |
Within 370 days before testing |
≤ 0,05 % n max |
0,98-1,02 |
≤ 2 % n max |
≥ 0,990 |
Engine torque |
T |
Within 370 days before testing |
≤ 1 % T max |
0,98-1,02 |
≤ 2 % T max |
≥ 0,990 |
Fuel flow rate |
qm |
Within 370 days before testing |
≤ 1 % qm , max |
0,98-1,02 |
≤ 2 % qm , max |
≥ 0,990 |
Intake-air flow rate(1) |
qV |
Within 370 days before testing |
≤ 1 % qV , max |
0,98-1,02 |
≤ 2 % qV , max |
≥ 0,990 |
Dilution air flow rate(1) |
qV |
Within 370 days before testing |
≤ 1 % qV , max |
0,98-1,02 |
≤ 2 % qV , max |
≥ 0,990 |
Diluted exhaust gas flow rate(1) |
qV |
Within 370 days before testing |
≤ 1 % qV , max |
0,98-1,02 |
≤ 2 % qV , max |
≥ 0,990 |
Raw exhaust gas flow rate(1) |
qV |
Within 185 days before testing |
≤ 1 % qV , max |
0,98-1,02 |
≤ 2 % qV , max |
≥ 0,990 |
Batch sampler flow rates(1) |
qV |
Within 370 days before testing |
≤ 1 % qV , max |
0,98-1,02 |
≤ 2 % qV , max |
≥ 0,990 |
Gas dividers |
x/x span |
Within 370 days before testing |
≤ 0,5 % x max |
0,98-1,02 |
≤ 2 % x max |
≥ 0,990 |
Gas analyzers |
x |
Within 35 days before testing |
≤ 0,5 % x max |
0,99-1,01 |
≤ 1 % x max |
≥ 0,998 |
PM balance |
m |
Within 370 days before testing |
≤ 1 % m max |
0,99-1,01 |
≤ 1 % m max |
≥ 0,998 |
Stand-alone pressures |
p |
Within 370 days before testing |
≤ 1 % p max |
0,99-1,01 |
≤ 1 % p max |
≥ 0,998 |
Analog-to-digital conversion of stand-alone temperature signals |
T |
Within 370 days before testing |
≤ 1 % T max |
0,99-1,01 |
≤ 1 % T max |
≥ 0,998 |
8.1.5. Continuous gas analyser system-response and updating-recording verification
8.1.5.1. Scope and frequency
8.1.5.2. Measurement principles
8.1.5.3. System requirements
8.1.5.4. Procedure
8.1.5.5. Performance evaluation
8.1.6. Response time verification for compensation type analysers
8.1.6.1. Scope and frequency
8.1.6.2. Measurement principles
8.1.6.3. System requirements
8.1.6.4. Procedure
8.1.7. Measurement of engine parameters and ambient conditions
8.1.7.1. Torque calibration
8.1.7.1.1. Scope and frequency
8.1.7.1.2. Dead-weight calibration
8.1.7.1.3. Strain gage or proving ring calibration
8.1.7.2. Pressure, temperature, and dew point calibration
8.1.8. Flow-related measurements
8.1.8.1. Fuel flow calibration
8.1.8.2. Intake air flow calibration
8.1.8.3. Exhaust gas flow calibration
8.1.8.4. Diluted exhaust gas flow (CVS) calibration
8.1.8.4.1. Overview
8.1.8.4.2. PDP calibration
8.1.8.4.3. CFV calibration
8.1.8.4.4. SSV calibration
8.1.8.4.5. Ultrasonic calibration (reserved)
Figure 6.5
Schematic diagrams for diluted exhaust gas flow CVS calibration
8.1.8.5. CVS and batch sampler verification (propane check)
8.1.8.5.1. Introduction
8.1.8.5.2. Method of introducing a known amount of propane into the CVS system
8.1.8.5.3. Preparation of the propane check
8.1.8.5.4. Preparation of the HC sampling system for the propane check
8.1.8.5.5. Propane check performance
8.1.8.5.6. Evaluation of the propane check
8.1.8.5.7. PM secondary dilution system verification
8.1.8.5.8. Sample dryer verification
8.1.8.6. Periodic calibration of the partial flow PM and associated raw exhaust gas measurement systems
8.1.8.6.1. Specifications for differential flow measurement
qm p = qm dew – qm dw |
(6-20) |
8.1.8.6.2. Calibration of differential flow measurement
qm p = qm dew / r d |
(6-21) |
8.1.8.6.3. Special requirements for differential flow measurement
8.1.8.6.3.1. Pre-test check
8.1.8.6.3.2. Determination of the transformation time
8.1.8.7. Vacuum-side leak verification
8.1.8.7.1. Scope and frequency
8.1.8.7.2. Measurement principles
8.1.8.7.3. Low-flow leak test
8.1.8.7.4. Dilution-of-span-gas leak test
8.1.8.7.5. Vacuum-decay leak test
[Bild bitte in Originalquelle ansehen] |
(6-22) |
8.1.9. CO and CO
2
measurements
8.1.9.1. H
2
O interference verification for CO
2
NDIR analyzers
8.1.9.1.1. Scope and frequency
8.1.9.1.2. Measurement principles
8.1.9.1.3. System requirements
8.1.9.1.4. Procedure
8.1.9.2. H
2
O and CO
2
interference verification for CO NDIR analyzers
8.1.9.2.1. Scope and frequency
8.1.9.2.2. Measurement principles
8.1.9.2.3. System requirements
8.1.9.2.4. Procedure
8.1.10. Hydrocarbon measurements
8.1.10.1. FID optimization and verification
8.1.10.1.1. Scope and frequency
8.1.10.1.2. Calibration
8.1.10.1.3. HC FID response optimization
8.1.10.1.4. HC FID CH
4
response factor determination
8.1.10.1.5. HC FID methane (CH
4
) response verification
8.1.10.2. Non-stoichiometric raw exhaust gas FID O
2
interference verification
8.1.10.2.1. Scope and frequency
8.1.10.2.2. Measurement principles
8.1.10.2.3. System requirements
8.1.10.2.4. Procedure
8.1.10.3. Non-methane cutter penetration fractions (Reserved)
8.1.11. NO
x
measurements
8.1.11.1. CLD CO
2
and H
2
O quench verification
8.1.11.1.1. Scope and frequency
8.1.11.1.2. Measurement principles
8.1.11.1.3. System requirements
8.1.11.1.4. CO
2
quench verification procedure
8.1.11.1.5. H
2
O quench verification procedure
8.1.11.2. CLD quench verification calculations
8.1.11.2.1. Amount of water expected during testing
8.1.11.2.2. Amount of CO
2
expected during testing
8.1.11.2.3. Combined H
2
O and CO
2
quench calculations
[Bild bitte in Originalquelle ansehen] |
(6-23) |
[Bild bitte in Originalquelle ansehen] |
(6-24) |
8.1.11.3. NDUV analyzer HC and H
2
O interference verification
8.1.11.3.1. Scope and frequency
8.1.11.3.2. Measurement principles
8.1.11.3.3. System requirements
8.1.11.3.4. Procedure
[Bild bitte in Originalquelle ansehen] |
(6-25) |
8.1.11.4 Sample dryer NO
2
penetration
8.1.11.4.1. Scope and frequency
8.1.11.4.2. Measurement principles
8.1.11.4.3. System requirements
8.1.11.4.4. Procedure
8.1.11.5. NO
2
-to-NO converter conversion verification
8.1.11.5.1. Scope and frequency
8.1.11.5.2. Measurement principles
8.1.11.5.3. System requirements
8.1.11.5.4 Procedure
[Bild bitte in Originalquelle ansehen] |
(6-26) |
8.1.12. PM measurements
8.1.12.1. PM balance verifications and weighing process verification
8.1.12.1.1. Scope and frequency
8.1.12.1.2. Independent verification
8.1.12.1.3. Zeroing and spanning
8.1.12.1.4. Reference sample weighing
8.1.12.2. PM sample filter buoyancy correction
8.1.12.2.1. General
8.1.12.2.2. PM sample filter density
8.1.12.2.3. Air density
8.1.12.2.4. Calibration weight density
8.1.12.2.5. Correction calculation
[Bild bitte in Originalquelle ansehen] |
(6-27) |
[Bild bitte in Originalquelle ansehen] |
(6-28) |
8.2. Instrument validation for test
8.2.1. Validation of proportional flow control for batch sampling and minimum dilution ratio for PM batch sampling
8.2.1.1. Proportionality criteria for CVS
8.2.1.1.1. Proportional flows
8.2.1.1.2. Constant flows
8.2.1.1.3. Demonstration of proportional sampling
8.2.1.2. Partial flow dilution system validation
8.2.2. Gas analyzer range validation, drift validation and drift correction
8.2.2.1. Range validation
8.2.2.1.1. Batch sampling
8.2.2.1.2. Continuous sampling
8.2.2.2. Drift validation and drift correction
8.2.3. PM sampling media (e.g. filters) preconditioning and tare weighing
8.2.3.1. Periodic verifications
8.2.3.2. Visual Inspection
8.2.3.3. Grounding
8.2.3.4. Unused sample media
8.2.3.5. Stabilization
8.2.3.6. Weighing
8.2.3.7. Buoyancy correction
8.2.3.8. Repetition
8.2.3.9. Tare-weighing
8.2.3.10. Substitution weighing
8.2.4. Post-test PM sample conditioning and weighing
8.2.4.1. Periodic verification
8.2.4.2. Removal from sealed containers
8.2.4.3. Electrical grounding
8.2.4.4. Visual inspection
8.2.4.5. Stabilisation of PM samples
8.2.4.6. Determination of post-test filter mass
8.2.4.7. Total mass
9.
Measurement equipment
9.1. Engine dynamometer specification
9.1.1. Shaft work
9.1.2. Transient (NRTC and LSI-NRTC) test cycles
9.1.3. Engine accessories
9.1.4. Engine fixture and power transmission shaft system (category NRSh)
9.2. Dilution procedure (if applicable)
9.2.1. Diluent conditions and background concentrations
9.2.2. Full flow system
Figure 6.6
Examples of full-flow dilution sampling configurations
9.2.3. Partial flow dilution (PFD) system
9.2.3.1. Description of partial flow system
Figure 6.7
Schematic of partial flow dilution system (total sampling type).
9.2.3.2. Dilution
9.2.3.3. Applicability
9.2.3.4. Calibration
9.3. Sampling procedures
9.3.1. General sampling requirements
9.3.1.1. Probe design and construction
9.3.1.1.1. Mixing chamber (category NRSh)
9.3.1.2. Transfer lines
9.3.1.3. Sampling methods
9.3.2. Gas sampling
9.3.2.1. Sampling probes
9.3.2.1.1. Mixing chamber (Category NRSh)
9.3.2.2. Transfer lines
9.3.2.3. Sample-conditioning components
9.3.2.3.1. Sample dryers
9.3.2.3.1.1. Requirements
9.3.2.3.1.2. Type of sample dryers allowed and procedure to estimate moisture content after the dryer
9.3.2.3.2. Sample pumps
9.3.2.3.3. Ammonia scrubbers
9.3.2.4. Sample storage media
CO, CO2, O2, CH4, C2H6, C3H8, NO, NO2 (2) |
polyvinyl fluoride (PVF)(3) for example TedlarTM, polyvinylidene fluoride(3) for example KynarTM, polytetrafluoroethylene(4) for example TeflonTM, or stainless steel(4) |
HC |
polytetrafluoroethylene(5) or stainless steel(5) |
9.3.3. PM sampling
9.3.3.1. Sampling probes
Figure 6.8
Scheme of a sampling probe with a hat-shaped pre-classifier
9.3.3.2. Transfer lines
9.3.3.3. Pre-classifier
9.3.3.4. Sample filter
9.3.3.4.1. Filter specification
9.3.3.4.2. Filter size
9.3.3.4.3. Dilution and temperature control of PM samples
9.3.3.4.4. Filter face velocity
9.3.3.4.5. Filter holder
9.3.4. PM-stabilization and weighing environments for gravimetric analysis
9.3.4.1. Environment for gravimetric analysis
9.3.4.2. Cleanliness
9.3.4.3. Temperature of the chamber
9.3.4.4. Verification of ambient conditions
9.3.4.5. Installation of balance
9.3.4.6. Static electric charge
9.4. Measurement instruments
9.4.1. Introduction
9.4.1.1. Scope
9.4.1.2. Instrument types
9.4.1.3. Redundant systems
9.4.2. Data recording and control
Applicable Test Protocol Section |
Measured Values |
Minimum Command and Control Frequency |
Minimum Recording Frequency |
7.6 |
Speed and torque during an engine step-map |
1 Hz |
1 mean value per step |
7.6 |
Speed and torque during an engine sweep-map |
5 Hz |
1 Hz means |
7.8.3 |
Transient (NRTC and LSI-NRTC) duty cycle reference and feedback speeds and torques |
5 Hz |
1 Hz means |
7.8.2 |
Discrete-mode NRSC and RMC duty cycle reference and feedback speeds and torques |
1 Hz |
1 Hz |
7.3 |
Continuous concentrations of raw analyzers |
N/A |
1 Hz |
7.3 |
Continuous concentrations of dilute analyzers |
N/A |
1 Hz |
7.3 |
Batch concentrations of raw or dilute analyzers |
N/A |
1 mean value per test interval |
7.6 8.2.1 |
Diluted exhaust gas flow rate from a CVS with a heat exchanger upstream of the flow measurement |
N/A |
1 Hz |
7.6 8.2.1 |
Diluted exhaust gas flow rate from a CVS without a heat exchanger upstream of the flow measurement |
5 Hz |
1 Hz means |
7.6 8.2.1 |
Intake-air or exhaust gas flow rate (for raw transient measurement) |
N/A |
1 Hz means |
7.6 8.2.1 |
Dilution air if actively controlled |
5 Hz |
1 Hz means |
7.6 8.2.1 |
Sample flow from a CVS with a heat exchanger |
1 Hz |
1 Hz |
7.6 8.2.1 |
Sample flow from a CVS without a heat exchanger |
5 Hz |
1 Hz mean |
9.4.3. Performance specifications for measurement instruments
9.4.3.1. Overview
9.4.3.2. Component requirements
Measurement Instrument |
Measured quantity symbol |
Complete System Rise time |
Recording update frequency |
Accuracy(3) |
Repeatability(3) |
Engine speed transducer |
n |
1 s |
1 Hz means |
2,0 % of pt. or 0,5 % of max |
1,0 % of pt. or 0,25 % of max |
Engine torque transducer |
T |
1 s |
1 Hz means |
2,0 % of pt. or 1,0 % of max |
1,0 % of pt. or 0,5 % of max |
Fuel flow meter (Fuel totalizer) |
|
5 s (N/A) |
1 Hz (N/A) |
2,0 % of pt. or 1,5 % of max |
1,0 % of pt. or 0,75 % of max |
Total diluted exhaust gas meter (CVS) (With heat exchanger before meter) |
|
1 s (5 s) |
1 Hz means (1 Hz) |
2,0 % of pt. or 1,5 % of max |
1,0 % of pt. or 0,75 % of max |
Dilution air, inlet air, exhaust gas, and sample flow meters |
|
1 s |
1 Hz means of 5 Hz samples |
2,5 % of pt. or 1,5 % of max |
1,25 % of pt. or 0,75 % of max |
Continuous gas analyzer raw |
x |
5 s |
2 Hz |
2,0 % of pt. or 2,0 % of meas. |
1,0 % of pt. or 1,0 % of meas. |
Continuous gas analyzer dilute |
x |
5 s |
1 Hz |
2,0 % of pt. or 2,0 % of meas. |
1,0 % of pt. or 1,0 % of meas. |
Continuous gas analyzer |
x |
5 s |
1 Hz |
2,0 % of pt. or 2,0 % of meas. |
1,0 % of pt. or 1,0 % of meas. |
Batch gas analyzer |
x |
N/A |
N/A |
2,0 % of pt. or 2,0 % of meas. |
1,0 % of pt. or 1,0 % of meas. |
Gravimetric PM balance |
m PM |
N/A |
N/A |
See 9.4.11 |
0,5 μg |
Inertial PM balance |
m PM |
5 s |
1 Hz |
2,0 % of pt. or 2,0 % of meas. |
1,0 % of pt. or 1,0 % of meas. |
9.4.4. Measurement of engine parameters & ambient conditions
9.4.4.1. Speed and torque sensors
9.4.4.1.1. Application
9.4.4.1.2. Shaft work
9.4.4.2. Pressure transducers, temperature sensors, and dew point sensors
9.4.5. Flow-related measurements
9.4.5.1. Fuel flow meter
9.4.5.2. Intake-air flow meter
9.4.5.3. Raw exhaust flow meter
9.4.5.3.1. Component requirements
9.4.5.3.2. Flow meter response time
9.4.5.3.3. Exhaust gas cooling
9.4.5.4. Dilution air and diluted exhaust flow meters
9.4.5.4.1. Application
9.4.5.4.2. Component requirements
9.4.5.4.3. Exhaust gas cooling
9.4.5.5. Sample flow meter for batch sampling
9.4.5.6. Gas divider
9.4.6. CO and CO
2
measurements
9.4.7. Hydrocarbon measurements
9.4.7.1. Flame-ionization detector
9.4.7.1.1. Application
9.4.7.1.2. Component requirements
9.4.7.1.3. FID fuel and burner air
9.4.7.1.4. Reserved
9.4.7.1.5. Reserved
9.4.7.2. Reserved
9.4.8. NO
x
measurements
9.4.8.1. Chemiluminescent detector
9.4.8.1.1. Application
9.4.8.1.2. Component requirements
9.4.8.1.3. NO
2
-to-NO converter
9.4.8.1.4. Humidity effects
9.4.8.1.5. Response time
9.4.8.2. Non-dispersive ultraviolet analyzer
9.4.8.2.1. Application
9.4.8.2.2. Component requirements
9.4.8.2.3. NO
2
-to-NO converter
9.4.8.2.4. Humidity effects
9.4.9. O
2
measurements
9.4.10. Air-to-fuel ratio measurements
9.4.11. PM measurements with gravimetric balance
9.4.12. Ammonia (NH
3
) measurements
9.5. Analytical gases and mass standards
9.5.1. Analytical gases
9.5.1.1. Gas specifications
Constituent |
Purified Synthetic Air(4) |
Purified N2 (4) |
THC (C1 equivalent) |
≤ 0,05 μmol/mol |
≤ 0,05 μmol/mol |
CO |
≤ 1 μmol/mol |
≤ 1 μmol/mol |
CO2 |
≤ 1, μmol/mol |
≤ 10 μmol/mol |
O2 |
0,205 to 0,215 mol/mol |
≤ 2 μmol/mol |
NOx |
≤ 0,02 μmol/mol |
≤ 0,02 μmol/mol |
Constituent |
Purified Synthetic Air(5) |
Purified N2 (5) |
THC (C1 equivalent) |
≤ 1 μmol/mol |
≤ 1 μmol/mol |
CO |
≤ 1 μmol/mol |
≤ 1 μmol/mol |
CO2 |
≤ 400 μmol/mol |
≤ 400 μmol/mol |
O2 |
0,18 to 0,21 mol/mol |
— |
NOx |
≤ 0,1 μmol/mol |
≤ 0,1 μmol/mol |
9.5.1.2. Concentration and expiration date
9.5.1.3. Gas transfer
9.5.2. Mass standards
Appendix 1
Particle number emissions measurement equipment
1.
Measurement test procedure
1.1. Sampling
1.1.1. Diluent filtration
1.2. Compensating for particle number sample flow — full flow dilution systems
1.3. Compensating for particle number sample flow — partial flow dilution systems
qmp = qmdew – qmdw + qex |
(6-29) |
qmp = qmdew – qmdw + qex – qsw |
(6-30) |
1.3.3. Correction of PM measurement
[Bild bitte in Originalquelle ansehen] |
(6-31) |
1.3.4. Proportionality of partial flow dilution sampling
1.3.5. Particle number calculation
2.
Measurement equipment
2.1. Specification
2.1.1. System overview
2.1.2. General requirements
2.1.3. Specific requirements
2.1.4. Recommended system description
Figure 6.9
Schematic of recommended particle sampling system — Partial flow sampling
Figure 6.10
Schematic of recommended particle sampling system — Full flow sampling
2.1.4.1. Sampling system description
2.1.4.2. Particle transfer system
2.1.4.3. Particle pre-classifier
2.1.4.4. Volatile particle remover (VPR)
2.1.4.4.1. First particle number dilution device (PND
1
)
2.1.4.4.2. Evaporation Tube (ET)
2.1.4.4.3. Second particle number dilution device (PND
2
)
2.1.4.5. Particle number counter (PNC)
2.2. Calibration/Validation of the particle sampling system(1)
2.2.1. Calibration of the particle number counter
2.2.2. Calibration/Validation of the volatile particle remover
[Bild bitte in Originalquelle ansehen] |
(6-32) |
[Bild bitte in Originalquelle ansehen] |
(6-33) |
2.2.3. Particle number system check procedures
Appendix 2
Installation requirements for equipment and auxiliaries
Number |
Equipment and auxiliaries |
Fitted for emission test |
||||||||
1 |
Inlet system |
|
||||||||
|
Inlet manifold |
Yes |
||||||||
|
Crankcase emission control system |
Yes |
||||||||
|
Air flow meter |
Yes |
||||||||
|
Air filter |
Yes(1) |
||||||||
|
Inlet silencer |
Yes(1) |
||||||||
2 |
Exhaust system |
|
||||||||
|
Exhaust after-treatment system |
Yes |
||||||||
|
Exhaust manifold |
Yes |
||||||||
|
Connecting pipes |
Yes(2) |
||||||||
|
Silencer |
Yes(2) |
||||||||
|
Tail pipe |
Yes(2) |
||||||||
|
Exhaust brake |
No(3) |
||||||||
|
Pressure charging device |
Yes |
||||||||
3 |
Fuel supply pump |
Yes(4) |
||||||||
4 |
Fuel injection equipment |
|
||||||||
|
Prefilter |
Yes |
||||||||
|
Filter |
Yes |
||||||||
|
Pump |
Yes |
||||||||
5 |
High-pressure pipe |
Yes |
||||||||
|
Injector |
Yes |
||||||||
|
Electronic control unit, sensors, etc. |
Yes |
||||||||
|
Governor/control system |
Yes |
||||||||
|
Automatic full-load stop for the control rack depending on atmospheric conditions |
Yes |
||||||||
6 |
Liquid-cooling equipment |
|
||||||||
|
Radiator |
No |
||||||||
|
Fan |
No |
||||||||
|
Fan cowl |
No |
||||||||
|
Water pump |
Yes(5) |
||||||||
|
Thermostat |
Yes(6) |
||||||||
7 |
Air cooling |
|
||||||||
|
Cowl |
No(7) |
||||||||
|
Fan or Blower |
No(7) |
||||||||
|
Temperature-regulating device |
No |
||||||||
8 |
Pressure charging equipment |
|
||||||||
|
Compressor driven either directly by the engine and/or by the exhaust system |
Yes |
||||||||
|
Charge air cooler |
Yes(7) (8) |
||||||||
|
Coolant pump or fan (engine-driven) |
No(7) |
||||||||
|
Coolant flow control device |
Yes |
||||||||
9 |
Auxiliary test-bed fan |
Yes, if necessary |
||||||||
10 |
Anti-pollution device |
Yes |
||||||||
11 |
Starting equipment |
Yes or test bed equipment(9) |
||||||||
12 |
Lubricating oil pump |
Yes |
||||||||
13 |
Certain auxiliaries whose definition is linked with the operation of the non-road mobile machinery and which may be mounted on the engine shall be removed for the test. The following non-exhaustive list is given as an example:
|
No |
Appendix 3
Verification of torque signal broadcast by electronic control unit
1.
Introduction
2.
ECU torque signal
3.
Verification procedure
Appendix 4
Procedure for the measurement of ammonia
2.1. Fourier Transform Infrared (hereinafter ‘FTIR’) analyser
2.1.1. Measurement principle
2.1.2. Installation and sampling
2.1.3. Cross interference
2.2. Non Dispersive Ultra Violet Resonance Absorption analyser (hereinafter ‘NDUV’)
2.2.1. Measurement Principle
2.2.2. Installation
2.2.3. Cross Sensitivity
2.3. Laser Infrared analyser
2.3.1. Measurement principle
2.3.2. Installation
2.3.3. Interference verification for NH
3
laser infrared analyzers (cross interference)
2.3.3.1. Scope and frequency
2.3.3.2. Measurement principles for interference verification
3. Emissions test procedure
3.1. Checking the analysers
3.2. Collection of emission relevant data
3.3. Operations after test
3.4. Analyser drift
4. Analyser specification and verification
4.1. Linearity requirements
4.2. Analyser specifications
4.2.1. Minimum detection limit
4.2.2. Accuracy
4.2.3. Zero drift
4.2.4. Span drift
4.2.5. System response time
4.2.6. Rise time
4.2.7. NH
3
calibration gas
4.2.8. Interference verification procedure
5. Alternative systems
Appendix 5
Description of system responses
Figure 6-11
Illustration of system responses
ANNEX VII
Method for data evaluation and calculation
1.
General requirements
1.1. General symbols
Section 2 |
Section 3 |
Unit |
Quantity |
|
A |
m2 |
Area |
|
At |
m2 |
Venturi throat cross-sectional area |
b, D 0 |
a 0 |
t.b.d.(3) |
y intercept of the regression line |
A/F st |
|
— |
Stoichiometric air to fuel ratio |
|
C |
— |
Coefficient |
C d |
C d |
— |
Discharge coefficient |
|
C f |
— |
Flow coefficient |
c |
x |
ppm, % vol |
Concentration/mole fraction (μmol/mol = ppm) |
c d |
(1) |
ppm, % vol |
Concentration on dry basis |
c w |
(1) |
ppm, % vol |
Concentration on wet basis |
cb |
(1) |
ppm, % vol |
Background concentration |
D |
x dil |
— |
Dilution factor(2) |
D 0 |
|
m3/rev |
PDP calibration intercept |
d |
d |
m |
Diameter |
d V |
|
m |
Throat diameter of venturi |
e |
e |
g/kWh |
Brake specific basis |
e gas |
e gas |
g/kWh |
Specific emission of gaseous components |
e PM |
e PM |
g/kWh |
Specific emission of particulates |
E |
1 – PF |
% |
Conversion efficiency (PF = Penetration fraction) |
F s |
|
— |
Stoichiometric factor |
|
f |
Hz |
Frequency |
f c |
|
— |
Carbon factor |
|
γ |
— |
Ratio of specific heats |
H |
|
g/kg |
Absolute humidity |
|
K |
— |
Correction factor |
K V |
|
[Bild bitte in Originalquelle ansehen] |
CFV calibration function |
k f |
|
m3/kg fuel |
Fuel specific factor |
k h |
|
— |
Humidity correction factor for NOx, diesel engines |
k Dr |
k Dr |
— |
Downward adjustment factor |
k r |
k r |
— |
Multiplicative regeneration factor |
k Ur |
k Ur |
— |
Upward adjustment factor |
k w,a |
|
— |
Dry to wet correction factor for the intake air |
k w,d |
|
— |
Dry to wet correction factor for the dilution air |
k w,e |
|
— |
Dry to wet correction factor for the diluted exhaust gas |
k w,r |
|
— |
Dry to wet correction factor for the raw exhaust gas |
μ |
μ |
kg/(m·s) |
Dynamic viscosity |
M |
M |
g/mol |
Molar mass(3) |
M a |
(1) |
g/mol |
Molar mass of the intake air |
M e |
v |
g/mol |
Molar mass of the exhaust gas |
M gas |
M gas |
g/mol |
Molar mass of gaseous components |
m |
m |
kg |
Mass |
m |
a 1 |
t.b.d.(3) |
Slope of the regression line |
|
ν |
m2/s |
Kinematic viscosity |
m d |
v |
kg |
Mass of the dilution air sample passed through the particulate sampling filters |
m ed |
(1) |
kg |
Total diluted exhaust gas mass over the cycle |
m edf |
(1) |
kg |
Mass of equivalent diluted exhaust gas over the test cycle |
m ew |
(1) |
kg |
Total exhaust gas mass over the cycle |
m f |
(1) |
mg |
Particulate sample mass collected |
m f,d |
(1) |
mg |
Particulate sample mass of the dilution air collected |
m gas |
m gas |
g |
Mass of gaseous emissions over the test cycle |
m PM |
m PM |
g |
Mass of particulate emissions over the test cycle |
m se |
(1) |
kg |
Exhaust gas sample mass over the test cycle |
m sed |
(1) |
kg |
Mass of diluted exhaust gas passing the dilution tunnel |
m sep |
(1) |
kg |
Mass of diluted exhaust gas passing the particulate collection filters |
m ssd |
|
kg |
Mass of secondary dilution air |
|
N |
— |
Total number of a series |
|
n |
mol |
Amount of substance |
|
ṅ |
mol/s |
Amount of substance rate |
n |
f n |
min– 1 |
Engine rotational speed |
n p |
|
r/s |
PDP pump speed |
P |
P |
kW |
Power |
p |
p |
kPa |
Pressure |
p a |
|
kPa |
Dry atmospheric pressure |
p b |
|
kPa |
Total atmospheric pressure |
p d |
|
kPa |
Saturation vapour pressure of the dilution air |
p p |
p abs |
kPa |
Absolute pressure |
p r |
p H2O |
kPa |
Water vapour pressure |
p s |
|
kPa |
Dry atmospheric pressure |
1 — E |
PF |
% |
Penetration fraction |
qm |
ṁ |
kg/s |
Mass rate |
qm ad |
ṁ (1) |
kg/s |
Intake air mass flow rate on dry basis |
qm aw |
(1) |
kg/s |
Intake air mass flow rate on wet basis |
qm Ce |
(1) |
kg/s |
Carbon mass flow rate in the raw exhaust gas |
qm Cf |
(1) |
kg/s |
Carbon mass flow rate into the engine |
qm Cp |
(1) |
kg/s |
Carbon mass flow rate in the partial flow dilution system |
qm dew |
(1) |
kg/s |
Diluted exhaust gas mass flow rate on wet basis |
qm dw |
(1) |
kg/s |
Dilution air mass flow rate on wet basis |
qm edf |
(1) |
kg/s |
Equivalent diluted exhaust gas mass flow rate on wet basis |
qm ew |
(1) |
kg/s |
Exhaust gas mass flow rate on wet basis |
qm ex |
(1) |
kg/s |
Sample mass flow rate extracted from dilution tunnel |
qm f |
(1) |
kg/s |
Fuel mass flow rate |
qm p |
(1) |
kg/s |
Sample flow of exhaust gas into partial flow dilution system |
qV |
̇ |
m3/s |
Volume flow rate |
qV CVS |
(1) |
m3/s |
CVS volume rate |
qV s |
(1) |
dm3/min |
System flow rate of exhaust gas analyzer system |
qV t |
(1) |
cm3/min |
Tracer gas flow rate |
ρ |
ρ |
kg/m3 |
Mass density |
ρ e |
|
kg/m3 |
Exhaust gas density |
|
r |
— |
Ratio of pressures |
r d |
DR |
— |
Dilution ratio(2) |
|
Ra |
μm |
Average surface roughness |
RH |
|
% |
Relative humidity |
r D |
β |
m/m |
Ratio of diameters (CVS systems) |
r p |
|
— |
Pressure ratio of SSV |
Re |
Re# |
— |
Reynolds number |
|
S |
K |
Sutherland constant |
σ |
σ |
— |
Standard deviation |
T |
T |
°C |
Temperature |
|
T |
Nm |
Engine torque |
T a |
|
K |
Absolute temperature |
t |
t |
s |
Time |
Δt |
Δt |
s |
Time interval |
u |
|
— |
Ratio between densities of gas component and exhaust gas |
V |
V |
m3 |
Volume |
qV |
̇ |
m3/s |
Volume rate |
V 0 |
|
m3/r |
PDP gas volume pumped per revolution |
W |
W |
kWh |
Work |
W act |
W act |
kWh |
Actual cycle work of the test cycle |
WF |
WF |
— |
Weighting factor |
w |
w |
g/g |
Mass fraction |
|
[Bild bitte in Originalquelle ansehen] |
mol/mol |
Flow-weighted mean concentration |
X 0 |
K s |
s/rev |
PDP calibration function |
|
y |
— |
Generic variable |
[Bild bitte in Originalquelle ansehen] |
[Bild bitte in Originalquelle ansehen] |
|
Arithmetic mean |
|
Z |
— |
Compressibility factor |
1.2. Subscripts
Section 2(4) |
Section 3 |
Quantity |
act |
act |
Actual quantity |
i |
|
Instantaneous measurement (e.g.: 1 Hz) |
|
i |
An individual of a series |
1.3. Symbols and abbreviations for the chemical components (used also as a subscript)
Section 2 |
Section 3 |
Quantity |
Ar |
Ar |
Argon |
C1 |
C1 |
Carbon 1 equivalent hydrocarbon |
CH4 |
CH4 |
Methane |
C2H6 |
C2H6 |
Ethane |
C3H8 |
C3H8 |
Propane |
CO |
CO |
Carbon monoxide |
CO2 |
CO2 |
Carbon dioxide |
|
H |
Atomic hydrogen |
|
H2 |
Molecular hydrogen |
HC |
HC |
Hydrocarbon |
H2O |
H2O |
Water |
|
He |
Helium |
|
N |
Atomic nitrogen |
|
N2 |
Molecular nitrogen |
NOx |
NOx |
Oxides of nitrogen |
NO |
NO |
Nitric oxide |
NO2 |
NO2 |
Nitrogen dioxide |
|
O |
Atomic oxygen |
PM |
PM |
Particulate matter |
S |
S |
Sulphur |
1.4. Symbols and abbreviations for the fuel composition
Section 2(5) |
Section 3(6) |
Quantity |
w C (8) |
w C (8) |
Carbon content of fuel, mass fraction [g/g] or [% mass] |
w H |
w H |
Hydrogen content of fuel, mass fraction [g/g] or [% mass] |
w N |
w N |
Nitrogen content of fuel, mass fraction [g/g] or [% mass] |
w O |
w O |
Oxygen content of fuel, mass fraction [g/g] or [% mass] |
w S |
w S |
Sulphur content of fuel, mass fraction [g/g] or [% mass] |
α |
α |
Atomic hydrogen-to-carbon ratio (H/C) |
ε |
β |
Atomic oxygen-to-carbon ratio (O/C)(7) |
γ |
γ |
Atomic sulphur-to-carbon ratio (S/C) |
δ |
δ |
Atomic nitrogen-to-carbon ratio (N/C) |
2.
Mass based emissions calculations
2.1. Raw gaseous emissions
2.1.1. Discrete-mode NRSC tests
[Bild bitte in Originalquelle ansehen] |
(7-1) |
2.1.2. Transient (NRTC and LSI-NRTC) test cycles and RMC tests
[Bild bitte in Originalquelle ansehen] |
(7-2) |
2.1.3. Dry-to-wet concentration conversion
[Bild bitte in Originalquelle ansehen] |
(7-3) |
[Bild bitte in Originalquelle ansehen] |
(7-4) |
[Bild bitte in Originalquelle ansehen] |
(7-5) |
[Bild bitte in Originalquelle ansehen] |
(7-6) |
[Bild bitte in Originalquelle ansehen] |
(7-7) |
[Bild bitte in Originalquelle ansehen] |
(7-8) |
2.1.4. NO
x
correction for humidity and temperature
[Bild bitte in Originalquelle ansehen] |
(7-9) |
kh.G = 0,6272 + 44,030 × 10– 3 × Ha – 0,862 × 10– 3 × Ha 2 |
(7-10) |
2.1.5. Component specific factor u
2.1.5.1. Tabulated values
Fuel |
ρe |
|
|
Gas |
|
|
|
NOx |
CO |
HC |
CO2 |
O2 |
CH4 |
||
|
|
ρgas [kg/m3] |
|
|
|
||
2,053 |
1,250 |
(1) |
1,9636 |
1,4277 |
0,716 |
||
|
|
ugas (2) |
|
|
|
||
Diesel (non-road gas-oil) |
1,2943 |
0,001586 |
0,000966 |
0,000482 |
0,001517 |
0,001103 |
0,000553 |
Ethanol for dedicated compression ignition engines (ED95) |
1,2768 |
0,001609 |
0,000980 |
0,000780 |
0,001539 |
0,001119 |
0,000561 |
Natural gas / bio-methane(3) |
1,2661 |
0,001621 |
0,000987 |
0,000528(4) |
0,001551 |
0,001128 |
0,000565 |
Propane |
1,2805 |
0,001603 |
0,000976 |
0,000512 |
0,001533 |
0,001115 |
0,000559 |
Butane |
1,2832 |
0,001600 |
0,000974 |
0,000505 |
0,001530 |
0,001113 |
0,000558 |
LPG(5) |
1,2811 |
0,001602 |
0,000976 |
0,000510 |
0,001533 |
0,001115 |
0,000559 |
Petrol (E10) |
1,2931 |
0,001587 |
0,000966 |
0,000499 |
0,001518 |
0,001104 |
0,000553 |
Ethanol (E85) |
1,2797 |
0,001604 |
0,000977 |
0,000730 |
0,001534 |
0,001116 |
0,000559 |
2.1.5.2. Calculated values
[Bild bitte in Originalquelle ansehen] |
(7-11) |
[Bild bitte in Originalquelle ansehen] |
(7-12) |
[Bild bitte in Originalquelle ansehen] |
(7-14) |
2.1.6. Mass flow rate of the exhaust gas
2.1.6.1. Air and fuel measurement method
qm ew, i = qm aw, i + qm f, i |
(7-15) |
2.1.6.2. Tracer measurement method
[Bild bitte in Originalquelle ansehen] |
(7-16) |
2.1.6.3. Air flow and air to fuel ratio measurement method
[Bild bitte in Originalquelle ansehen] |
(7-17) |
[Bild bitte in Originalquelle ansehen] |
(7-18) |
[Bild bitte in Originalquelle ansehen] |
(7-19) |
2.1.6.4. Carbon balance method, 1-step procedure
[Bild bitte in Originalquelle ansehen] |
(7-20) |
[Bild bitte in Originalquelle ansehen] |
(7-21) |
k fd = k f – 0,11118 · w H |
(7-22) |
2.2. Diluted gaseous emissions
2.2.1. Mass of the gaseous emissions
m gas = k h · k · u gas · c gas · m ed |
(7-23) |
[Bild bitte in Originalquelle ansehen] |
(7-24) |
2.2.2. Dry-to-wet concentration conversion
2.2.2.1. Diluted exhaust gas
[Bild bitte in Originalquelle ansehen] |
(7-25) |
[Bild bitte in Originalquelle ansehen] |
(7-26) |
[Bild bitte in Originalquelle ansehen] |
(7-27) |
2.2.2.2. Dilution factor
[Bild bitte in Originalquelle ansehen] |
(7-28) |
[Bild bitte in Originalquelle ansehen] |
(7-29) |
[Bild bitte in Originalquelle ansehen] |
(7-30) |
2.2.2.3. Dilution air
k w,d = (1 – k w3) · 1,008 |
(7-31) |
[Bild bitte in Originalquelle ansehen] |
(7-32) |
2.2.2.4. Determination of the background corrected concentration
[Bild bitte in Originalquelle ansehen] |
(7-33) |
2.2.3. Component specific factor u
[Bild bitte in Originalquelle ansehen] |
(7-34) |
Fuel |
ρe |
|
|
Gas |
|
|
|
NOx |
CO |
HC |
CO2 |
O2 |
CH4 |
||
|
|
ρgas [kg/m3] |
|
|
|
||
2,053 |
1,250 |
(9) |
1,9636 |
1,4277 |
0,716 |
||
|
|
ugas (10) |
|
|
|
||
Diesel (non-road gas-oil) |
1,2943 |
0,001586 |
0,000966 |
0,000482 |
0,001517 |
0,001103 |
0,000553 |
Ethanol for dedicated compression ignition engines (ED95) |
1,2768 |
0,001609 |
0,000980 |
0,000780 |
0,001539 |
0,001119 |
0,000561 |
Natural gas / bio-methane(11) |
1,2661 |
0,001621 |
0,000987 |
0,000528(12) |
0,001551 |
0,001128 |
0,000565 |
Propane |
1,2805 |
0,001603 |
0,000976 |
0,000512 |
0,001533 |
0,001115 |
0,000559 |
Butane |
1,2832 |
0,001600 |
0,000974 |
0,000505 |
0,001530 |
0,001113 |
0,000558 |
LPG(13) |
1,2811 |
0,001602 |
0,000976 |
0,000510 |
0,001533 |
0,001115 |
0,000559 |
Petrol (E10) |
1,2931 |
0,001587 |
0,000966 |
0,000499 |
0,001518 |
0,001104 |
0,000553 |
Ethanol (E85) |
1,2797 |
0,001604 |
0,000977 |
0,000730 |
0,001534 |
0,001116 |
0,000559 |
2.2.4. Exhaust gas mass flow calculation
2.2.4.1. PDP-CVS system
[Bild bitte in Originalquelle ansehen] |
(7-35) |
[Bild bitte in Originalquelle ansehen] |
(7-36) |
2.2.4.2. CFV-CVS system
[Bild bitte in Originalquelle ansehen] |
(7-37) |
[Bild bitte in Originalquelle ansehen] |
(7-38) |
2.2.4.3. SSV-CVS system
m ed = 1,293 · qV SSV · Δt |
(7-39) |
[Bild bitte in Originalquelle ansehen] |
(7-40) |
m ed, i = 1,293 · qV SSV · Δt i |
(7-41) |
2.3. Calculation of particulate emission
2.3.1. Transient (NRTC and LSI-NRTC) test cycles and RMC
2.3.1.1. Partial flow dilution system
2.3.1.1.1. Calculation based on sample ratio
[Bild bitte in Originalquelle ansehen] |
(7-42) |
[Bild bitte in Originalquelle ansehen] |
(7-43) |
2.3.1.1.2. Calculation based on dilution ratio
[Bild bitte in Originalquelle ansehen] |
(7-44) |
[Bild bitte in Originalquelle ansehen] |
(7-45) |
[Bild bitte in Originalquelle ansehen] |
(7-46) |
[Bild bitte in Originalquelle ansehen] |
(7-47) |
2.3.1.2. Full flow dilution system
[Bild bitte in Originalquelle ansehen] |
(7-48) |
m sep = m set – m ssd |
(7-49) |
2.3.1.2.1. Background correction
[Bild bitte in Originalquelle ansehen] |
(7-50) |
2.3.2. Calculation for discrete-mode NRSC
2.3.2.1. Dilution system
[Bild bitte in Originalquelle ansehen] |
(7-51) |
[Bild bitte in Originalquelle ansehen] |
(7-52) |
2.3.2.2. Calculation of the particulate mass flow rate
[Bild bitte in Originalquelle ansehen] |
(7-53) |
[Bild bitte in Originalquelle ansehen] |
(7-54) |
[Bild bitte in Originalquelle ansehen] |
(7-55) |
[Bild bitte in Originalquelle ansehen] |
(7-56) |
[Bild bitte in Originalquelle ansehen] |
(7-57) |
[Bild bitte in Originalquelle ansehen] |
(7-58) |
2.4. Cycle work and specific emissions
2.4.1. Gaseous emissions
2.4.1.1. Transient (NRTC and LSI-NRTC) test cycles and RMC
[Bild bitte in Originalquelle ansehen] |
(7-59) |
T i = T i ,meas + T i, AUX |
(7-60) |
[Bild bitte in Originalquelle ansehen] |
(7-61) |
[Bild bitte in Originalquelle ansehen] |
(7-62) |
[Bild bitte in Originalquelle ansehen] |
(7-63) |
2.4.1.2. Discrete-mode NRSC
[Bild bitte in Originalquelle ansehen] |
(7-64) |
2.4.2. Particulate emissions
2.4.2.1. Transient (NRTC and LSI-NRTC) test cycles and RMC
[Bild bitte in Originalquelle ansehen] |
(7-65) |
2.4.2.2. Discrete-mode NRSC
[Bild bitte in Originalquelle ansehen] |
(7-66) |
[Bild bitte in Originalquelle ansehen] |
(7-67) |
[Bild bitte in Originalquelle ansehen] |
(7-68) |
2.4.3. Adjustment for emission controls that are regenerated on an infrequent (periodic) basis
2.4.4. Adjustment for deterioration factor
2.5. Diluted Exhaust Flow (CVS) Calibration and Related Calculations
2.5.1. Positive displacement pump (PDP)
[Bild bitte in Originalquelle ansehen] |
(7-69) |
[Bild bitte in Originalquelle ansehen] |
(7-70) |
V 0 = D 0 –m · X 0 |
(7-71) |
2.5.2. Critical flow venturi (CFV)
[Bild bitte in Originalquelle ansehen] |
(7-72) |
2.5.3. Subsonic venturi (SSV)
[Bild bitte in Originalquelle ansehen] |
(7-73) |
[Bild bitte in Originalquelle ansehen] |
(7-74) |
[Bild bitte in Originalquelle ansehen] |
(7-75) |
2.6. Drift Correction
2.6.1. General procedure
2.6.2. Calculation procedure
[Bild bitte in Originalquelle ansehen] |
(7-76) |
3.
Molar based emissions calculation
3.1. Subscripts
|
Quantity |
abs |
Absolute quantity |
act |
Actual quantity |
air |
Air, dry |
atmos |
Atmospheric |
bkgnd |
Background |
C |
Carbon |
cal |
Calibration quantity |
CFV |
Critical flow venturi |
cor |
Corrected quantity |
dil |
Dilution air |
dexh |
Diluted exhaust gas |
dry |
Dry quantity |
exh |
Raw exhaust gas |
exp |
Expected quantity |
eq |
Equivalent quantity |
fuel |
Fuel |
|
Instantaneous measurement (e.g.: 1 Hz) |
i |
An individual of a series |
idle |
Condition at idle |
in |
Quantity in |
init |
Initial quantity, typically before an emission test |
max |
Maximum (i.e. peak) value |
meas |
Measured quantity |
min |
Minimum value |
mix |
Molar mass of air |
out |
Quantity out |
part |
Partial quantity |
PDP |
Positive displacement pump |
raw |
Raw exhaust |
ref |
Reference quantity |
rev |
Revolution |
sat |
Saturated condition |
slip |
PDP slip |
smpl |
Sampling |
span |
Span quantity |
SSV |
Subsonic venturi |
std |
Standard quantity |
test |
Test quantity |
total |
Total quantity |
uncor |
Uncorrected quantity |
vac |
Vacuum quantity |
weight |
Calibration weight |
wet |
Wet quantity |
zero |
Zero quantity |
3.2. Symbols for chemical balance
3.3. Basic parameters and relationships
3.3.1. Dry air and chemical species
3.3.2. Wet air
3.3.2.1. Vapour pressure of water
[Bild bitte in Originalquelle ansehen] |
(7-77) |
[Bild bitte in Originalquelle ansehen] |
(7-78) |
3.3.2.2. Dew point
[Bild bitte in Originalquelle ansehen] |
(7-79) |
3.3.2.3. Relative humidity
[Bild bitte in Originalquelle ansehen] |
(7-80) |
3.3.2.4. Dew point determination from relative humidity and dry bulb temperature
3.3.3. Fuel properties
Fuel |
Atomic hydrogen, oxygen, sulphur and nitrogen-to-carbon ratios CHαOβSγNδ |
Carbon mass concentration, w C [g/g] |
Diesel (non-road gas-oil) |
CH1,80O0S0N0 |
0,869 |
Ethanol for dedicated compression ignition engines (ED95) |
CH2,92O0,46S0N0 |
0,538 |
Petrol (E10) |
CH1,92O0,03S0N0 |
0,833 |
Petrol (E0) |
CH1,85O0S0N0 |
0,866 |
Ethanol (E85) |
CH2,73O0,36S0N0 |
0,576 |
LPG |
CH2,64O0S0N0 |
0,819 |
Natural Gas/Biomethane |
CH3,78O0,016S0N0 |
0,747 |
3.3.3.1. Calculation of carbon mass concentration w
C
[Bild bitte in Originalquelle ansehen] |
(7-82) |
3.3.4. Total HC (THC) concentration initial contamination correction
[Bild bitte in Originalquelle ansehen] |
(7-83) |
3.3.5. Flow-weighted mean concentration
3.4. Chemical balances of fuel, intake air, and exhaust gas
3.4.1. General
3.4.2. Procedures that require chemical balances
3.4.3. Chemical balance procedure
Symbol |
Description |
x dil/exh |
Amount of dilution gas or excess air per mole of exhaust gas |
x H2Oexh |
Amount of H2O in exhaust per mole of exhaust gas |
x Ccombdry |
Amount of carbon from fuel in the exhaust per mole of dry exhaust gas |
x H2Oexhdry |
Amount of water in exhaust per dry mole of dry exhaust gas |
x prod/intdry |
Amount of dry stoichiometric products per dry mole of intake air |
x dil/exhdry |
Amount of dilution gas and/or excess air per mole of dry exhaust gas |
x int/exhdry |
Amount of intake air required to produce actual combustion products per mole of dry (raw or diluted) exhaust gas |
x raw/exhdry |
Amount of undiluted exhaust, without excess air, per mole of dry (raw or diluted) exhaust gas |
x O2intdry |
Amount of intake air O2 per mole of dry intake air; x O2intdry = 0,209445 mol/mol may be assumed |
x CO2intdry |
Amount of intake air CO2 per mole of dry intake air. x CO2intdry = 375 μmol/mol may be used, but measuring the actual concentration in the intake air is recommended |
x H2Ointdry |
Amount of the intake air H2O per mole of dry intake air |
x CO2int |
Amount of intake air CO2 per mole of intake air |
x CO2dil |
Amount of dilution gas CO2 per mole of dilution gas |
x CO2dildry |
Amount of dilution gas CO2 per mole of dry dilution gas. If air is used as diluent, x CO2dildry = 375 μmol/mol may be used, but measuring the actual concentration in the intake air is recommended |
x H2Odildry |
Amount of dilution gas H2O per mole of dry dilution gas |
x H2Odil |
Amount of dilution gas H2O per mole of dilution gas |
x [emission]meas |
Amount of measured emission in the sample at the respective gas analyzer |
x [emission]dry |
Amount of emission per dry mole of dry sample |
x H2O[emission]meas |
Amount of water in sample at emission-detection location. These values shall be measured or estimated according to point 9.3.2.3.1. |
x H2Oint |
Amount of water in the intake air, based on a humidity measurement of intake air |
K H2Ogas |
Water-gas reaction equilibrium coefficient. 3,5 or a different value might be calculated using good engineering judgement. |
α |
Atomic hydrogen-to-carbon ratio of the mixture of fuel(s) (CHαOβ) being combusted, weighted by molar consumption |
β |
Atomic oxygen-to-carbon ratio of the mixture of fuel(s) (CHαOβ) being combusted, weighted by molar consumption |
[Bild bitte in Originalquelle ansehen] |
(7-84) |
[Bild bitte in Originalquelle ansehen] |
(7-85) |
[Bild bitte in Originalquelle ansehen] |
(7-86) |
[Bild bitte in Originalquelle ansehen] |
(7-87) |
[Bild bitte in Originalquelle ansehen] |
(7-88) |
[Bild bitte in Originalquelle ansehen] |
(7-89) |
[Bild bitte in Originalquelle ansehen] |
(7-90) |
[Bild bitte in Originalquelle ansehen] |
(7-91) |
[Bild bitte in Originalquelle ansehen] |
(7-92) |
[Bild bitte in Originalquelle ansehen] |
(7-93) |
[Bild bitte in Originalquelle ansehen] |
(7-94) |
[Bild bitte in Originalquelle ansehen] |
(7-95) |
[Bild bitte in Originalquelle ansehen] |
(7-96) |
[Bild bitte in Originalquelle ansehen] |
(7-97) |
[Bild bitte in Originalquelle ansehen] |
(7-98) |
[Bild bitte in Originalquelle ansehen] |
(7-99) |
[Bild bitte in Originalquelle ansehen] |
(7-100) |
[Bild bitte in Originalquelle ansehen] |
(7-101) |
3.4.4. NO
x
correction for humidity
x NOxcor = x NOxuncor · (9,953 · x H2O + 0,832) |
(7-102) |
x NOxcor = x NOxuncor · (18,840 · x H2O + 0,68094) |
(7-103) |
3.5. Raw gaseous emissions
3.5.1. Mass of gaseous emissions
[Bild bitte in Originalquelle ansehen] |
(7-104) |
[Bild bitte in Originalquelle ansehen] ⇒[Bild bitte in Originalquelle ansehen] |
(7-105) |
[Bild bitte in Originalquelle ansehen] |
(7-106) |
[Bild bitte in Originalquelle ansehen] |
(7-107) |
[Bild bitte in Originalquelle ansehen] |
(7-108) |
3.5.2. Dry-to-wet concentration conversion
[Bild bitte in Originalquelle ansehen] |
(7-109) |
[Bild bitte in Originalquelle ansehen] |
(7-110) |
[Bild bitte in Originalquelle ansehen] |
(7-111) |
3.5.3. Exhaust gas molar flow rate
[Bild bitte in Originalquelle ansehen] |
(7-112) |
[Bild bitte in Originalquelle ansehen] |
(7-113) |
[Bild bitte in Originalquelle ansehen] |
(7-114) |
3.6. Diluted gaseous emissions
3.6.1. Emission mass calculation and background correction
[Bild bitte in Originalquelle ansehen] |
[see equation (7-106)] |
[Bild bitte in Originalquelle ansehen] |
[see equation (7-107)] |
[Bild bitte in Originalquelle ansehen] |
[see equation (7-108)] |
[Bild bitte in Originalquelle ansehen] or[Bild bitte in Originalquelle ansehen] |
(7-115) |
[Bild bitte in Originalquelle ansehen] |
(7-116) |
3.6.2. Dry-to wet concentration conversion
[Bild bitte in Originalquelle ansehen] |
[(see equation (7-96)] |
3.6.3. Exhaust gas molar flow rate
[Bild bitte in Originalquelle ansehen] |
(see equation 7-113) |
[Bild bitte in Originalquelle ansehen] |
(7-117) |
[Bild bitte in Originalquelle ansehen] |
(7-118) |
[Bild bitte in Originalquelle ansehen] |
(7-119) |
[Bild bitte in Originalquelle ansehen] |
(7-120) |
3.7. Determination of particulates
3.7.1. Sampling
[Bild bitte in Originalquelle ansehen] |
(7-121) |
[Bild bitte in Originalquelle ansehen] |
(7-122) |
[Bild bitte in Originalquelle ansehen] |
(7-123) |
[Bild bitte in Originalquelle ansehen] |
(7-124) |
3.7.2. Background correction
[Bild bitte in Originalquelle ansehen] |
(7-125) |
3.8. Cycle work and specific emissions
3.8.1. Gaseous emissions
3.8.1.1. Transient (NRTC and LSI-NRTC) test cycles and RMC
[Bild bitte in Originalquelle ansehen] |
(7-126) |
Ti = Ti ,meas + Ti ,AUX |
(7-127) |
[Bild bitte in Originalquelle ansehen] |
(7-128) |
[Bild bitte in Originalquelle ansehen] |
(7-129) |
[Bild bitte in Originalquelle ansehen] |
(7-130) |
3.8.1.2. Discrete-mode NRSC
[Bild bitte in Originalquelle ansehen] |
(7-131) |
3.8.2. Particulate emissions
3.8.2.1. Transient (NRTC and LSI-NRTC) test cycles and RMC
[Bild bitte in Originalquelle ansehen] |
(7-132) |
3.8.2.2. Discrete-mode NRSC
[Bild bitte in Originalquelle ansehen] |
(7-133) |
[Bild bitte in Originalquelle ansehen] |
(7-134) |
[Bild bitte in Originalquelle ansehen] |
(7-135) |
3.8.3. Adjustment for emission controls that are regenerated on an infrequent (periodic) basis
3.8.4. Adjustment for deterioration factor
3.9. Diluted Exhaust Flow (CVS) Calibration and Related Calculations
3.9.1. Reference meter conversions
[Bild bitte in Originalquelle ansehen] |
(7-136) |
3.9.2. PDP calibration calculations
[Bild bitte in Originalquelle ansehen] |
(7-137) |
[Bild bitte in Originalquelle ansehen] |
(7-138) |
[Bild bitte in Originalquelle ansehen] [rev/min] |
[Bild bitte in Originalquelle ansehen] [rev/s] |
a 1 [m3/min] |
a 1 [m3/s] |
a 0 [m3/rev] |
755,0 |
12,58 |
50,43 |
0,8405 |
0,056 |
987,6 |
16,46 |
49,86 |
0,831 |
– 0,013 |
1 254,5 |
20,9 |
48,54 |
0,809 |
0,028 |
1 401,3 |
23,355 |
47,30 |
0,7883 |
– 0,061 |
3.9.3. Venturi governing equations and permissible assumptions
[Bild bitte in Originalquelle ansehen] |
(7-139) |
[Bild bitte in Originalquelle ansehen] |
(7-140) |
C fCFV |
||
β |
γ exh = 1,385 |
γ dexh = γ air = 1,399 |
0,000 |
0,6822 |
0,6846 |
0,400 |
0,6857 |
0,6881 |
0,500 |
0,6910 |
0,6934 |
0,550 |
0,6953 |
0,6977 |
0,600 |
0,7011 |
0,7036 |
0,625 |
0,7047 |
0,7072 |
0,650 |
0,7089 |
0,7114 |
0,675 |
0,7137 |
0,7163 |
0,700 |
0,7193 |
0,7219 |
0,720 |
0,7245 |
0,7271 |
0,740 |
0,7303 |
0,7329 |
0,760 |
0,7368 |
0,7395 |
0,770 |
0,7404 |
0,7431 |
0,780 |
0,7442 |
0,7470 |
0,790 |
0,7483 |
0,7511 |
0,800 |
0,7527 |
0,7555 |
0,810 |
0,7573 |
0,7602 |
0,820 |
0,7624 |
0,7652 |
0,830 |
0,7677 |
0,7707 |
0,840 |
0,7735 |
0,7765 |
0,850 |
0,7798 |
0,7828 |
[Bild bitte in Originalquelle ansehen] |
(7-141) |
[Bild bitte in Originalquelle ansehen] |
(7-142) |
[Bild bitte in Originalquelle ansehen] |
(7-143) |
M mix=M air· (1 –x H2O) +M H2O· (x H2O) |
(7-144) |
If calibration T dew (°C) is ... |
the following constant M mix (g/mol) is assumed |
for the following ranges of T dew (°C) during emission tests(6) |
dry |
28,96559 |
dry to 18 |
0 |
28,89263 |
dry to 21 |
5 |
28,86148 |
dry to 22 |
10 |
28,81911 |
dry to 24 |
15 |
28,76224 |
dry to 26 |
20 |
28,68685 |
– 8 to 28 |
25 |
28,58806 |
12 to 31 |
30 |
28,46005 |
23 to 34 |
3.9.4. SSV calibration
[Bild bitte in Originalquelle ansehen] |
(7-145) |
[Bild bitte in Originalquelle ansehen] |
(7-146) |
Gas(7) |
μ 0 |
T0 |
S |
Temp range within ± 2 % error |
Pressure limit |
kg /(m · s) |
K |
K |
K |
kPa |
|
Air |
1,716 × 10– 5 |
273 |
111 |
170 to 1 900 |
≤ 1 800 |
CO2 |
1,370 × 10– 5 |
273 |
222 |
190 to 1 700 |
≤ 3 600 |
H2O |
1,12 × 10– 5 |
350 |
1,064 |
360 to 1 500 |
≤ 10 000 |
O2 |
1,919 × 10– 5 |
273 |
139 |
190 to 2 000 |
≤ 2 500 |
N2 |
1,663 × 10– 5 |
273 |
107 |
100 to 1 500 |
≤ 1 600 |
[Bild bitte in Originalquelle ansehen] |
(7-147) |
3.9.5. CFV calibration
r= 1 – (Δp/pin ) |
(7-148) |
Appendix 1
Drift Correction
1.
Scope and frequency
2.
Correction principles
3.
Drift validation
4.
Drift correction
[Bild bitte in Originalquelle ansehen] |
(7-149) |
Appendix 2
Carbon Flow Check
1.
Introduction
Figure 7.1
Measuring points for carbon flow check
2.
Carbon flow rate into the engine (location 1)
[Bild bitte in Originalquelle ansehen] |
(7-150) |
3.
Carbon flow rate in the raw exhaust gas (location 2)
3.1. Based on CO
2
[Bild bitte in Originalquelle ansehen] |
(7-151) |
3.2. Based on CO
2
, HC and CO
[Bild bitte in Originalquelle ansehen] |
(7-152) |
4.
Carbon flow rate in the dilution system (location 3)
4.1. Based on CO
2
[Bild bitte in Originalquelle ansehen] |
(7-153) |
4.2. Based on CO
2
, HC and CO
[Bild bitte in Originalquelle ansehen] |
(7-154) |
5.
Calculation of the molar mass of the exhaust gas
Appendix 3
Statistics
1.
Arithmetic mean
[Bild bitte in Originalquelle ansehen] |
(7-155) |
2.
Standard deviation
[Bild bitte in Originalquelle ansehen] |
(7-156) |
3.
Root mean square
[Bild bitte in Originalquelle ansehen] |
(7-157) |
4.
t-test
[Bild bitte in Originalquelle ansehen] |
(7-158) |
[Bild bitte in Originalquelle ansehen] |
(7-159) |
[Bild bitte in Originalquelle ansehen] |
v= N – 1 |
(7-160) |
v |
Confidence |
|
|
90 % |
95 % |
1 |
6,314 |
12,706 |
2 |
2,920 |
4,303 |
3 |
2,353 |
3,182 |
4 |
2,132 |
2,776 |
5 |
2,015 |
2,571 |
6 |
1,943 |
2,447 |
7 |
1,895 |
2,365 |
8 |
1,860 |
2,306 |
9 |
1,833 |
2,262 |
10 |
1,812 |
2,228 |
11 |
1,796 |
2,201 |
12 |
1,782 |
2,179 |
13 |
1,771 |
2,160 |
14 |
1,761 |
2,145 |
15 |
1,753 |
2,131 |
16 |
1,746 |
2,120 |
18 |
1,734 |
2,101 |
20 |
1,725 |
2,086 |
22 |
1,717 |
2,074 |
24 |
1,711 |
2,064 |
26 |
1,706 |
2,056 |
28 |
1,701 |
2,048 |
30 |
1,697 |
2,042 |
35 |
1,690 |
2,030 |
40 |
1,684 |
2,021 |
50 |
1,676 |
2,009 |
70 |
1,667 |
1,994 |
100 |
1,660 |
1,984 |
1 000 + |
1,645 |
1,960 |
5.
F-test
[Bild bitte in Originalquelle ansehen] |
(7-161) |
6.
Slope
[Bild bitte in Originalquelle ansehen] |
(7-162) |
7.
Intercept
[Bild bitte in Originalquelle ansehen] |
(7-163) |
8.
Standard estimate of error
[Bild bitte in Originalquelle ansehen] |
(7-164) |
9.
Coefficient of determination
[Bild bitte in Originalquelle ansehen] |
(7-165) |
Appendix 4
1980 INTERNATIONAL GRAVITY FORMULA
ag = 9,7803267715 [1 + 5,2790414 × 10– 3 sin2 θ+ 2,32718 × 10– 5 sin4 θ+ 1,262 × 10– 7 sin6 θ+ 7 × 10– 10 sin8 θ] |
(7-166) |
Appendix 5
Particle number calculation
1.
Determination of particle numbers
1.1. Time alignment
1.2. Determination of particle numbers for transient (NRTC and LSI-NRTC) test cycles and RMC with a partial flow dilution system
[Bild bitte in Originalquelle ansehen] |
(7-167) |
[Bild bitte in Originalquelle ansehen] |
(7-168) |
1.3. Determination of particle numbers for transient (NRTC and LSI-NRTC) test cycles and RMC with a full flow dilution system
[Bild bitte in Originalquelle ansehen] |
(7-169) |
[Bild bitte in Originalquelle ansehen] |
(7-170) |
1.4. Determination of particle numbers for discrete-mode NRSC with a partial flow dilution system
[Bild bitte in Originalquelle ansehen] |
(7-171) |
[Bild bitte in Originalquelle ansehen] |
(7-172) |
1.5. Determination of particle numbers for discrete-mode cycles with a full flow dilution system
[Bild bitte in Originalquelle ansehen] |
(7-173) |
[Bild bitte in Originalquelle ansehen] |
(7-174) |
2.
Test result
2.1. Calculation of the specific emissions for transient (NRTC and LSI-NRTC) test cycles and RMC
[Bild bitte in Originalquelle ansehen] |
(7-175) |
2.1.1. Weighted average NRTC test result
[Bild bitte in Originalquelle ansehen] |
(7-176) |
[Bild bitte in Originalquelle ansehen] |
(7-177) |
2.2. Calculation of the specific emissions for discrete-mode NRSC tests
[Bild bitte in Originalquelle ansehen] |
(7-178) |
2.3. Rounding of final results
2.4. Determination of particle number background
Appendix 6
Ammonia emission calculation
1.
Calculation of the mean concentration for transient (NRTC and LSI-NRTC) test cycles and RMC
[Bild bitte in Originalquelle ansehen] |
(7-179) |
cNH3= (0,1 × cNH3,cold) + (0,9 × cNH3,hot) |
(7-180) |
2.
Calculation of the mean concentration for discrete-mode NRSC
[Bild bitte in Originalquelle ansehen] |
(7-181) |
ANNEX VIII
Performance requirements and test procedures for dual-fuel engines
1.
Scope
2.
Definitions and abbreviations
3.
Dual-fuel specific additional approval requirements
3.1. Engines with operator-adjustable control of GER
cycle
.
4.
General requirements
4.1. Operating modes of dual-fuel engines
4.1.1. Conditions for a dual-fuel engine to operate in liquid mode
4.1.2. Conditions for a dual-fuel engine to idle using liquid fuel exclusively
4.1.3. Conditions for a dual-fuel engine to warm-up or start using liquid fuel solely
4.2. Service mode
4.2.1. Conditions for dual-fuel engines to operate in service mode
4.2.2. Operability restriction in service mode
4.2.2.1. Requirement for engine categories other than IWP, IWA, RLL and RLR
4.2.2.2. Requirement for engine categories IWP, IWA, RLL and RLR
4.2.2.3. Activation of the operability restriction
4.2.2.4. Deactivation of the operability restriction
4.2.3. Unavailability of gaseous fuel when operating in a dual-fuel mode
4.2.3.1. Unavailability of gaseous fuel — empty gaseous fuel tank
4.2.3.2. Unavailability of gaseous fuel — malfunctioning gas supply
4.3. Dual-fuel indicators
4.3.1. Dual-fuel operating mode indicator
4.3.2. Empty gaseous fuel tank warning system (dual-fuel warning system)
4.3.2.1. Characteristics of the dual-fuel warning system
4.4. Communicated torque
4.4.1. Communicated torque when a dual-fuel engine operates in dual-fuel mode
4.4.2. Communicated torque when a dual-fuel engine operates in liquid-fuel mode
4.5. Additional requirements
5.
Performance requirements
6.
Demonstration requirements
6.4. Additional demonstration requirements in case of a Type 2 engine
6.5 Additional demonstration requirements in case of an engine with an operator-adjustable GER
cycle
6.6. Requirements for demonstrating the durability of a dual-fuel engine
6.7. Demonstration of the dual-fuel indicators, warning and operability restriction
7.
Requirements to ensure the correct operation of NO
x
control measures
7.2. Additional NO
x
control requirements in case of Type 1B, Type 2B and Type 3B dual-fuel engines
Appendix 1
Dual-fuel engine dual-fuel indicator, warning system, operability restriction — Demonstration requirements
1.
Dual-fuel indicators
1.1. Dual-fuel mode indicator
1.2. Liquid-fuel mode indicator
1.3. Service mode indicator
2.
Warning system
3.
Operability restriction
Appendix 2
Emission test procedure requirements for dual-fuel engines
1.
General
2.
Test conditions
3.
Test procedures
4.
Measurement procedures
5.
Measurement equipment
6.
Particle number emissions measurement
7.
Emission calculation
7.1. Mass-based emission calculation
7.1.1. Dry/wet correction
7.1.1.1. Raw exhaust gas
7.1.1.2. Diluted exhaust gas
7.1.2. NO
x
correction for humidity
7.1.3. Partial flow dilution (PFS) and raw gaseous measurement
7.1.3.1. Determination of exhaust gas mass flow
7.1.3.2. Determination of the gaseous components
Gaseous fuel |
α |
γ |
δ |
ε |
CH4 |
2,8681 |
0 |
0 |
0,0040 |
GR |
2,7676 |
0 |
0 |
0,0040 |
G23 |
2,7986 |
0 |
0,0703 |
0,0043 |
G25 |
2,7377 |
0 |
0,1319 |
0,0045 |
Propane |
2,2633 |
0 |
0 |
0,0039 |
Butane |
2,1837 |
0 |
0 |
0,0038 |
LPG |
2,1957 |
0 |
0 |
0,0038 |
LPG Fuel A |
2,1740 |
0 |
0 |
0,0038 |
LPG Fuel B |
2,2402 |
0 |
0 |
0,0039 |
7.1.3.2.1. Mass per test of a gaseous emission
[Bild bitte in Originalquelle ansehen] |
(8-1) |
Gaseous fuel |
Gas |
||||||
ρ e |
NOx |
CO |
HC |
CO2 |
O2 |
CH4 |
|
|
|
ρ gas [kg/m 3 ] |
|
|
|
||
2,053 |
1,250 |
(1) |
1,9636 |
1,4277 |
0,716 |
||
|
|
u gas (2) |
|
|
|
||
CNG/LNG(3) |
1,2786 |
0,001606 |
0,000978 |
0,000528(4) |
0,001536 |
0,001117 |
0,000560 |
Propane |
1,2869 |
0,001596 |
0,000972 |
0,000510 |
0,001527 |
0,001110 |
0,000556 |
Butane |
1,2883 |
0,001594 |
0,000971 |
0,000503 |
0,001525 |
0,001109 |
0,000556 |
LPG(5) |
1,2881 |
0,001594 |
0,000971 |
0,000506 |
0,001525 |
0,001109 |
0,000556 |
7.1.3.3. Particulate determination
7.1.3.4. Additional requirements regarding the exhaust gas mass flow meter
7.1.4. Full flow dilution measurement (CVS)
7.1.4.1. Determination of the background corrected concentrations (point 5.2.5)
7.1.5. Determination of molar component ratios
7.1.5.1. General
7.1.5.2. Calculation of the fuel mixture components
qmf = qmf1 + qmf2 |
(8-2) |
[Bild bitte in Originalquelle ansehen] |
(8-3) |
[Bild bitte in Originalquelle ansehen] |
(8-4) |
[Bild bitte in Originalquelle ansehen] |
(8-5) |
[Bild bitte in Originalquelle ansehen] |
(8-6) |
[Bild bitte in Originalquelle ansehen] |
(8-7) |
[Bild bitte in Originalquelle ansehen] |
(8-8) |
[Bild bitte in Originalquelle ansehen] |
(8-9) |
[Bild bitte in Originalquelle ansehen] |
(8-10) |
[Bild bitte in Originalquelle ansehen] |
(8-11) |
7.2. Molar-based emission calculation
7.2.1. NO
x
correction for humidity
7.2.2. Determination of exhaust gas mass flow when not using a raw exhaust flow meter
7.2.3. Molar component ratios for determination of the gaseous components
7.2.3.1. Determination of molar component ratios
[Bild bitte in Originalquelle ansehen] |
(8-12) |
[Bild bitte in Originalquelle ansehen] |
(8-13) |
[Bild bitte in Originalquelle ansehen] |
(8-14) |
[Bild bitte in Originalquelle ansehen] |
(8-15) |
[Bild bitte in Originalquelle ansehen] |
(8-16) |
7.3. CO
2
determination
7.3.1 CO
2
determination when testing on transient (NRTC and LSI-NRTC) test cycles or RMC using raw gas sampling
[Bild bitte in Originalquelle ansehen] |
(8-17) |
[Bild bitte in Originalquelle ansehen] |
(8-18) |
[Bild bitte in Originalquelle ansehen] |
(8-19) |
mCO2 = mCO2,fuel + mCO2,urea |
(8-20) |
Appendix 3
Types of dual-fuel engines operated on natural gas/biomethane or LPG and a liquid fuel — illustration of the definitions and main requirements
Dual-fuel type |
GERcycle |
Idle on liquid fuel |
Warm-up on liquid fuel |
Operation on liquid fuel solely |
Operation in absence of gas |
Comments |
1A |
GERNRTC, hot ≥ 0,9 or GERNRSC, ≥ 0,9 |
NOT allowed |
Allowed only on service mode |
Allowed only on service mode |
Service mode |
|
1B |
GERNRTC, hot ≥ 0,9 or GERNRSC ≥ 0,9 |
Allowed only on liquid-fuel mode |
Allowed only on liquid-fuel mode |
Allowed only on liquid-fuel and service modes |
Liquid-fuel mode |
|
2A |
0,1 < GERNRTC, hot < 0,9 or 0,1 < GERNRSC < 0,9 |
Allowed |
Allowed only on service mode |
Allowed only on service mode |
Service mode |
GERNRTC, hot ≥ 0,9 or GERNRSC ≥ 0,9 Allowed |
2B |
0,1 < GERNRTC, hot < 0,9 or 0,1 < GERNRSC < 0,9 |
Allowed |
Allowed |
Allowed |
Liquid-fuel mode |
GERNRTC, hot ≥ 0,9 or GERNRSC ≥ 0,9 allowed |
3A |
Neither defined nor allowed |
|||||
3B |
GERNRTC, hot ≤ 0,1 or GERNRSC ≤ 0,1 |
Allowed |
Allowed |
Allowed |
Liquid-fuel mode |
|
ANNEX IX
Reference Fuels
1.
Technical data on fuels for testing compression-ignition engines
1.1. Type: Diesel (non-road gas-oil)
Parameter |
Unit |
Limits(1) |
Test Method |
|||
minimum |
maximum |
|||||
Cetane number(2) |
|
45 |
56,0 |
EN-ISO 5165 |
||
Density at 15 °C |
kg/m3 |
833 |
865 |
EN-ISO 3675 |
||
Distillation: |
|
|
|
|
||
50 % point |
°C |
245 |
— |
EN-ISO 3405 |
||
95 % point |
°C |
345 |
350 |
EN-ISO 3405 |
||
|
°C |
— |
370 |
EN-ISO 3405 |
||
Flash point |
°C |
55 |
— |
EN 22719 |
||
CFPP |
°C |
— |
– 5 |
EN 116 |
||
Viscosity at 40 °C |
mm2/s |
2,3 |
3,3 |
EN-ISO 3104 |
||
Polycyclic aromatic hydrocarbons |
% m/m |
2,0 |
6,0 |
IP 391 |
||
Sulphur content(3) |
mg/kg |
— |
10 |
ASTM D 5453 |
||
Copper corrosion |
|
— |
class 1 |
EN-ISO 2160 |
||
Conradson carbon residue (10 % DR) |
% m/m |
— |
0,2 |
EN-ISO 10370 |
||
Ash content |
% m/m |
— |
0,01 |
EN-ISO 6245 |
||
Total contamination |
mg/kg |
— |
24 |
EN 12662 |
||
Water content |
% m/m |
— |
0,02 |
EN-ISO 12937 |
||
Neutralization (strong acid) number |
mg KOH/g |
— |
0,10 |
ASTM D 974 |
||
Oxidation stability(3) |
mg/ml |
— |
0,025 |
EN-ISO 12205 |
||
Lubricity (HFRR wear scar diameter at 60 °C) |
μm |
— |
400 |
CEC F-06-A-96 |
||
Oxidation stability at 110 °C(3) |
H |
20,0 |
— |
EN 15751 |
||
FAME |
% v/v |
— |
7,0 |
EN 14078 |
1.2. Type: Ethanol for dedicated compression ignition engines (ED95) (
1
)
Parameter |
Unit |
Limits(4) |
Test method(5) |
|||
Minimum |
Maximum |
|||||
Total alcohol (Ethanol incl. content on higher saturated alcohols) |
% m/m |
92,4 |
|
EN 15721 |
||
Other higher saturated mono-alcohols (C3-C5) |
% m/m |
|
2,0 |
EN 15721 |
||
Methanol |
% m/m |
|
0,3 |
EN 15721 |
||
Density 15 °C |
kg/m3 |
793,0 |
815,0 |
EN ISO 12185 |
||
Acidity, calculated as acetic acid |
% m/m |
|
0,0025 |
EN 15491 |
||
Appearance |
|
Bright and clear |
|
|||
Flashpoint |
°C |
10 |
|
EN 3679 |
||
Dry residue |
mg/kg |
|
15 |
EN 15691 |
||
Water content |
% m/m |
|
6,5 |
EN 15489(6) EN-ISO 12937 EN15692 |
||
Aldehydes calculated as acetaldehyde |
% m/m |
|
0,0050 |
ISO 1388-4 |
||
Esters calculated as ethylacetat |
% m/m |
|
0,1 |
ASTM D1617 |
||
Sulphur content |
mg/kg |
|
10,0 |
EN 15485 EN 15486 |
||
Sulphates |
mg/kg |
|
4,0 |
EN 15492 |
||
Particulate contamination |
mg/kg |
|
24 |
EN 12662 |
||
Phosphorus |
mg/l |
|
0,20 |
EN 15487 |
||
Inorganic chloride |
mg/kg |
|
1,0 |
EN 15484 or EN 15492 |
||
Copper |
mg/kg |
|
0,100 |
EN 15488 |
||
Electrical Conductivity |
μS/cm |
|
2,50 |
DIN 51627-4 or prEN 15938 |
||
|
2.
Technical data on fuels for testing spark ignition engines
2.1. Type: Petrol (E10)
Parameter |
Unit |
Limits(7) |
Test method(8) |
|||
Minimum |
Maximum |
|||||
Research octane number, RON |
|
91,0 |
98,0 |
EN ISO 5164:2005(9) |
||
Motor octane number, MON |
|
83,0 |
89,0 |
EN ISO 5163:2005(9) |
||
Density at 15 °C |
kg/m3 |
743 |
756 |
EN ISO 3675 EN ISO 12185 |
||
Vapour pressure |
kPa |
45,0 |
60,0 |
EN ISO 13016-1 (DVPE) |
||
Water content |
|
|
Max 0,05 % v/v Appearance at – 7 °C: clear and bright |
EN 12937 |
||
Distillation: |
|
|
|
|
||
|
% v/v |
18,0 |
46,0 |
EN-ISO 3405 |
||
|
% v/v |
46,0 |
62,0 |
EN-ISO 3405 |
||
|
% v/v |
75,0 |
94,0 |
EN-ISO 3405 |
||
|
°C |
170 |
210 |
EN-ISO 3405 |
||
Residue |
% v/v |
— |
2,0 |
EN-ISO 3405 |
||
Hydrocarbon analysis: |
|
|
|
|
||
|
% v/v |
3,0 |
18,0 |
EN 14517 EN 15553 |
||
|
% v/v |
19,5 |
35,0 |
EN 14517 EN 15553 |
||
|
% v/v |
— |
1,0 |
EN 12177 EN 238, EN 14517 |
||
|
% v/v |
Report |
EN 14517 EN 15553 |
|||
Carbon/hydrogen ratio |
|
Report |
|
|||
Carbon/oxygen ratio |
|
Report |
|
|||
Induction period(10) |
minutes |
480 |
|
EN-ISO 7536 |
||
Oxygen content(11) |
% m/m |
3,3(14) |
3,7 |
EN 1601 EN 13132 EN 14517 |
||
Existent gum |
mg/ml |
— |
0,04 |
EN-ISO 6246 |
||
Sulphur content(12) |
mg/kg |
— |
10 |
EN ISO 20846 EN ISO 20884 |
||
Copper corrosion (3h at 50 °C) |
rating |
— |
Class 1 |
EN-ISO 2160 |
||
Lead content |
mg/l |
— |
5 |
EN 237 |
||
Phosphorus content(13) |
mg/l |
— |
1,3 |
ASTM D 3231 |
||
Ethanol(10) |
% v/v |
9,0(14) |
10,2(14) |
EN 22854 |
||
2.2. Type: Ethanol (E85)
Parameter |
Unit |
Limits(15) |
Test method |
|
Minimum |
Maximum |
|||
Research octane number, RON |
|
95,0 |
— |
EN ISO 5164 |
Motor octane number, MON |
|
85,0 |
— |
EN ISO 5163 |
Density at 15 °C |
kg/m3 |
Report |
ISO 3675 |
|
Vapour pressure |
kPa |
40,0 |
60,0 |
EN ISO 13016-1 (DVPE) |
Sulphur content(16) |
mg/kg |
— |
10 |
EN 15485 or EN 15486 |
Oxidation stability |
Minutes |
360 |
|
EN ISO 7536 |
Existent gum content (solvent washed) |
mg/100ml |
— |
5 |
EN-ISO 6246 |
Appearance This shall be determined at ambient temperature or 15 °C whichever is higher |
|
Clear and bright, visibly free of suspended or precipitated contaminants |
Visual inspection |
|
Ethanol and higher alcohols(17) |
% v/v |
83 |
85 |
EN 1601 EN 13132 EN 14517 E DIN 51627-3 |
Higher alcohols (C3-C8) |
% v/v |
— |
2,0 |
E DIN 51627-3 |
Methanol |
% v/v |
|
1,00 |
E DIN 51627-3 |
Petrol(18) |
% v/v |
Balance |
EN 228 |
|
Phosphous |
mg/l |
0,20(19) |
EN 15487 |
|
Water content |
% v/v |
|
0,300 |
EN 15489 or EN 15692 |
Inorganic chloride content |
mg/l |
|
1 |
EN 15492 |
pHe |
|
6,5 |
9,0 |
EN 15490 |
Copper strip corrosion (3h at 50 °C) |
Rating |
Class 1 |
|
EN ISO 2160 |
Acidity, (as acetic acid CH3COOH) |
% m/m (mg/l) |
— |
0,0050 (40) |
EN 15491 |
Electric Conductivity |
μS/cm |
1,5 |
DIN 51627-4 or prEN 15938 |
|
Carbon/hydrogen ratio |
|
Report |
|
|
Carbon/oxygen ration |
|
Report |
|
|
3.
Technical data on gaseous fuels for single-fuel and dual-fuel engines
3.1. Type: LPG
Parameter |
Unit |
Fuel A |
Fuel B |
Test method |
Composition: |
|
|
|
EN 27941 |
C3-content |
% v/v |
30 ± 2 |
85 ± 2 |
|
C4-content |
% v/v |
Balance(20) |
Balance(20) |
|
< C3, > C4 |
% v/v |
Maximum 2 |
Maximum 2 |
|
Olefins |
% v/v |
Maximum 12 |
Maximum 15 |
|
Evaporation residue |
mg/kg |
Maximum 50 |
Maximum 50 |
EN 15470 |
Water at 0 °C |
|
Free |
Free |
EN 15469 |
Total sulphur content including odorant |
mg/kg |
Maximum 10 |
Maximum 10 |
EN 24260, ASTM D 3246, ASTM 6667 |
Hydrogen sulphide |
|
None |
None |
EN ISO 8819 |
Copper strip corrosion (1h at 40 °C) |
Rating |
Class 1 |
Class 1 |
ISO 6251(21) |
Odour |
|
Characteristic |
Characteristic |
|
Motor octane number(22) |
|
Minimum 89,0 |
Minimum 89,0 |
EN 589 Annex B |
3.2. Type: Natural Gas/ Biomethane
3.2.1. Specification for reference fuels supplied with fixed properties (e.g. from a sealed container)
Characteristics |
Units |
Basis |
Limits |
Test method |
|||||
minimum |
maximum |
||||||||
Reference fuel GR |
|||||||||
Composition: |
|
|
|
|
|
||||
Methane |
|
87 |
84 |
89 |
|
||||
Ethane |
|
13 |
11 |
15 |
|
||||
Balance (1) |
% mole |
— |
— |
1 |
ISO 6974 |
||||
Sulphur content |
mg/m3 (2) |
— |
|
10 |
ISO 6326-5 |
||||
|
|||||||||
Reference fuel G23 |
|||||||||
Composition: |
|
|
|
|
|
||||
Methane |
|
92,5 |
91,5 |
93,5 |
|
||||
Balance (1) |
% mole |
— |
— |
1 |
ISO 6974 |
||||
N2 |
% mole |
7,5 |
6,5 |
8,5 |
|
||||
Sulphur content |
mg/m3 (2) |
— |
— |
10 |
ISO 6326-5 |
||||
|
|||||||||
Reference fuel G25 |
|||||||||
Composition: |
|
|
|
|
|
||||
Methane |
% mole |
86 |
84 |
88 |
|
||||
Balance (1) |
% mole |
— |
— |
1 |
ISO 6974 |
||||
N2 |
% mole |
14 |
12 |
16 |
|
||||
Sulphur content |
mg/m3 (2) |
— |
— |
10 |
ISO 6326-5 |
||||
|
|||||||||
Reference fuel G20 |
|||||||||
Composition: |
|
|
|
|
|
||||
Methane |
% mole |
100 |
99 |
100 |
ISO 6974 |
||||
Balance(23) |
% mole |
— |
— |
1 |
ISO 6974 |
||||
N2 |
% mole |
|
|
|
ISO 6974 |
||||
Sulphur content |
mg/m3 (24) |
— |
— |
10 |
ISO 6326-5 |
||||
Wobbe Index (net) |
MJ/m3 (25) |
48,2 |
47,2 |
49,2 |
|
3.2.2. Specification for reference fuel supplied from a pipeline with admixture of other gases with gas properties determined by on-site measurement
Reference fuel |
Minimum Sλ |
Maximum Sλ |
GR (27) |
0,87 |
0,95 |
G20 |
0,97 |
1,03 |
G23 |
1,05 |
1,10 |
G25 |
1,12 |
1,20 |
Appendix 1
Supplementary requirements for conducting emission testing using gaseous reference fuels comprising pipeline gas with admixture of other gases
1.
Method of gas analysis and gas flow measurement
2.
Analysis and flowrate of incoming utility gas supply
3.
Analysis and flowrate of admixture
4.
Analysis of blended gas
5.
Calculation of S
λ
and MN of the blended gas
6.
Control and verification of gas blend during the test
6.2 Open loop blend control system
6.3 Closed loop blend control system
Appendix 2
Calculation of λ-Shift factor (S
λ
)
1.
Calculation
[Bild bitte in Originalquelle ansehen] |
(9-1) |
[Bild bitte in Originalquelle ansehen] |
(9-2) |
[Bild bitte in Originalquelle ansehen] |
(9- 3) |
2.
Examples for the calculation of the λ-shift factor S
λ
:
1 · CH 4 + 2 · O 2 → 1 · CO 2 + 2 · H 2 O |
(9-4) |
[Bild bitte in Originalquelle ansehen] |
(9-5) |
[Bild bitte in Originalquelle ansehen] |
(9-6) |
[Bild bitte in Originalquelle ansehen] |
(9-7) |
Appendix 3
Correction for CO
2
in the exhaust gas arising from CO
2
in the gaseous fuel
1.
Instantaneous mass flow rate of CO
2
in the gaseous fuel stream
ṁ CO2i = (M CO2/M stream) · x CO2i · ṁ streami |
(9-8) |
M stream = x 1 · M 1 + x 2 · M 2 + … + x n · M n |
(9-9) |
ṁ CO2i, fuel = ṁ CO2i, a + ṁ CO2i, b + … + ṁ CO2i, n |
(9-10) |
2.
Calculation of specific CO
2
emissions for transient (NRTC and LSI-NRTC) test cycles and RMC
[Bild bitte in Originalquelle ansehen] |
(9-11) |
m CO2, corr = m CO2 – m CO2, fuel |
(9-12) |
3.
Calculation of specific CO
2
emissions for discrete-mode NRSC
[Bild bitte in Originalquelle ansehen] |
(9-13) |
q m CO2, corr = q m CO2 – q m CO2, fuel |
(9-14) |
ṁ CO2, corr = ṁ CO2– ṁ CO2, fuel |
(9-15) |
ANNEX X
Detailed technical specifications and conditions for delivering an engine separately from its exhaust after-treatment system
2.
In this case, the manufacturer shall:
3.
The OEM shall:
ANNEX XI
Detailed technical specifications and conditions for the temporary placing on the market for the purposes of field testing
ANNEX XII
Detailed technical specifications and conditions for special purpose engines
ANNEX XIII
Acceptance of equivalent engine type-approvals
ANNEX XIV
Details of the relevant information and instructions for OEMs
ANNEX XV
Details of the relevant information and instructions for end-users
ANNEX XVI
Performance standards and assessment of technical services
1.
General Requirements
2.
Standards with which the technical services have to comply
3.
Procedure for the assessment of the technical services
ANNEX XVII
Characteristics of the steady-state and transient test cycles
Appendix 1
Steady-state discrete-mode NRSC
Test cycles type C
Mode number |
1 |
2 |
3 |
4 |
5 |
6 |
7 |
8 |
Speed(1) |
100 % |
Intermediate |
Idle |
|||||
Torque(2) (%) |
100 |
75 |
50 |
10 |
100 |
75 |
50 |
0 |
Weighting factor |
0,15 |
0,15 |
0,15 |
0,1 |
0,1 |
0,1 |
0,1 |
0,15 |
Mode number |
1 |
2 |
3 |
4 |
5 |
6 |
7 |
Speed(3) |
100 % |
Intermediate |
Idle |
||||
Torque(4) (%) |
25 |
100 |
75 |
50 |
25 |
10 |
0 |
Weighting factor |
0,06 |
0,02 |
0,05 |
0,32 |
0,30 |
0,10 |
0,15 |
Test cycles type D
Mode number (cycle D2) |
1 |
2 |
3 |
4 |
5 |
Speed(5) |
100 % |
||||
Torque(6) (%) |
100 |
75 |
50 |
25 |
10 |
Weighting factor |
0,05 |
0,25 |
0,3 |
0,3 |
0,1 |
Test cycles type E
Mode number (cycle E2) |
1 |
2 |
3 |
4 |
|
|
|
|
|
|
||
Speed(7) |
100 % |
Intermediate |
||||||||||
Torque(8)(%) |
100 |
75 |
50 |
25 |
|
|
|
|
|
|
||
Weighting factor |
0,2 |
0,5 |
0,15 |
0,15 |
|
|
|
|
|
|
||
Mode number (cycle E3) |
1 |
2 |
3 |
4 |
||||||||
Speed(7)(%) |
100 |
91 |
80 |
63 |
||||||||
Power(9)(%) |
100 |
75 |
50 |
25 |
||||||||
Weighting factor |
0,2 |
0,5 |
0,15 |
0,15 |
Test cycle type F
Mode number |
1 |
2(13) |
3 |
Speed(10) |
100 % |
Intermediate |
Idle |
Power (%) |
100(12) |
50(12) |
5(11) |
Weighting factor |
0,15 |
0,25 |
0,6 |
Test cycle type G
Mode number (cycle G1) |
|
|
|
|
|
1 |
2 |
3 |
4 |
5 |
6 |
Speed(14) |
100 % |
Intermediate |
Idle |
||||||||
Torque(15) % |
|
|
|
|
|
100 |
75 |
50 |
25 |
10 |
0 |
Weighting factor |
|
|
|
|
|
0,09 |
0,20 |
0,29 |
0,30 |
0,07 |
0,05 |
Mode number (cycle G2) |
1 |
2 |
3 |
4 |
5 |
|
|
|
|
|
6 |
Speed(14) |
100 % |
Intermediate |
Idle |
||||||||
Torque(15) % |
100 |
75 |
50 |
25 |
10 |
|
|
|
|
|
0 |
Weighting factor |
0,09 |
0,20 |
0,29 |
0,30 |
0,07 |
|
|
|
|
|
0,05 |
Mode number (cycle G3) |
1 |
|
|
|
|
|
|
|
|
|
2 |
Speed(14) |
100 % |
Intermediate |
Idle |
||||||||
Torque(15) % |
100 |
|
|
|
|
|
|
|
|
|
0 |
Weighting factor |
0,85 |
|
|
|
|
|
|
|
|
|
0,15 |
Test cycle type H
Mode number |
1 |
2 |
3 |
4 |
5 |
Speed(16) (%) |
100 |
85 |
75 |
65 |
Idle |
Torque(17) (%) |
100 |
51 |
33 |
19 |
0 |
Weighting factor |
0,12 |
0,27 |
0,25 |
0,31 |
0,05 |
Appendix 2
Steady-state ramped modal cycles (RMC)
Test cycles type C
RMC Mode Number |
Time in mode (seconds) |
Engine speed(1) (3) |
Torque (%)(2) (3) |
1a Steady-state |
126 |
Idle |
0 |
1b Transition |
20 |
Linear transition |
Linear transition |
2a Steady-state |
159 |
Intermediate |
100 |
2b Transition |
20 |
Intermediate |
Linear transition |
3a Steady-state |
160 |
Intermediate |
50 |
3b Transition |
20 |
Intermediate |
Linear transition |
4a Steady-state |
162 |
Intermediate |
75 |
4b Transition |
20 |
Linear transition |
Linear transition |
5a Steady-state |
246 |
100 % |
100 |
5b Transition |
20 |
100 % |
Linear transition |
6a Steady-state |
164 |
100 % |
10 |
6b Transition |
20 |
100 % |
Linear transition |
7a Steady-state |
248 |
100 % |
75 |
7b Transition |
20 |
100 % |
Linear transition |
8a Steady-state |
247 |
100 % |
50 |
8b Transition |
20 |
Linear transition |
Linear transition |
9 Steady-state |
128 |
Idle |
0 |
RMC Mode number |
Time in mode (seconds) |
Engine speed(4) (6) |
Torque (%)(5) (6) |
1a Steady-state |
119 |
Idle |
0 |
1b Transition |
20 |
Linear transition |
Linear transition |
2a Steady-state |
29 |
Intermediate |
100 |
2b Transition |
20 |
Intermediate |
Linear transition |
3a Steady-state |
150 |
Intermediate |
10 |
3b Transition |
20 |
Intermediate |
Linear transition |
4a Steady-state |
80 |
Intermediate |
75 |
4b Transition |
20 |
Intermediate |
Linear transition |
5a Steady-state |
513 |
Intermediate |
25 |
5b Transition |
20 |
Intermediate |
Linear transition |
6a Steady-state |
549 |
Intermediate |
50 |
6b Transition |
20 |
Linear transition |
Linear transition |
7a Steady-state |
96 |
100 % |
25 |
7b Transition |
20 |
Linear transition |
Linear transition |
8 Steady-state |
124 |
Idle |
0 |
Test cycles type D
RMC Mode Number |
Time in mode (seconds) |
Engine speed (%)(7) |
Torque (%)(8) (9) |
1a Steady State |
53 |
100 |
100 |
1b Transition |
20 |
100 |
Linear transition |
2a Steady-state |
101 |
100 |
10 |
2b Transition |
20 |
100 |
Linear transition |
3a Steady-state |
277 |
100 |
75 |
3b Transition |
20 |
100 |
Linear transition |
4a Steady-state |
339 |
100 |
25 |
4b Transition |
20 |
100 |
Linear transition |
5 Steady-state |
350 |
100 |
50 |
Test cycles type E
RMC Mode Number |
Time in mode (seconds) |
Engine speed (%)(10) |
Torque (%)(11) (12) |
1a Steady-state |
229 |
100 |
100 |
1b Transition |
20 |
100 |
Linear transition |
2a Steady-state |
166 |
100 |
25 |
2b Transition |
20 |
100 |
Linear transition |
3a Steady-state |
570 |
100 |
75 |
3b Transition |
20 |
100 |
Linear transition |
4 Steady-state |
175 |
100 |
50 |
RMC Mode Number |
Time in mode (seconds) |
Engine speed (%)(13) (15) |
Power (%)(14) (15) |
1a Steady-state |
229 |
100 |
100 |
1b Transition |
20 |
Linear transition |
Linear transition |
2a Steady-state |
166 |
63 |
25 |
2b Transition |
20 |
Linear transition |
Linear transition |
3a Steady-state |
570 |
91 |
75 |
3b Transition |
20 |
Linear transition |
Linear transition |
4 Steady-state |
175 |
80 |
50 |
Test cycle type F
RMC Mode Number |
Time in mode (seconds) |
Engine speed(16) (20) |
Power (%)(20) |
1a Steady-state |
350 |
Idle |
5(17) |
1b Transition |
20 |
Linear transition |
Linear transition |
2a Steady-state(19) |
280 |
Intermediate |
50(18) |
2b Transition |
20 |
Linear transition |
Linear transition |
3a Steady-state |
160 |
100 % |
100(18) |
3b Transition |
20 |
Linear Transition |
Linear transition |
4 Steady-state |
350 |
Idle |
5(18) |
Test cycles type G
RMC Mode Number |
Time in mode (seconds) |
Engine speed(21) (23) |
Torque (%)(22) (23) |
1a Steady-state |
41 |
Idle |
0 |
1b Transition |
20 |
Linear transition |
Linear transition |
2a Steady-state |
135 |
Intermediate |
100 |
2b Transition |
20 |
Intermediate |
Linear transition |
3a Steady-state |
112 |
Intermediate |
10 |
3b Transition |
20 |
Intermediate |
Linear transition |
4a Steady-state |
337 |
Intermediate |
75 |
4b Transition |
20 |
Intermediate |
Linear transition |
5a Steady-state |
518 |
Intermediate |
25 |
5b Transition |
20 |
Intermediate |
Linear transition |
6a Steady-state |
494 |
Intermediate |
50 |
6b Transition |
20 |
Linear transition |
Linear transition |
7 Steady-state |
43 |
Idle |
0 |
RMC Mode Number |
Time in mode (seconds) |
Engine speed(24) (26) |
Torque (%)(25) (26) |
1a Steady-state |
41 |
Idle |
0 |
1b Transition |
20 |
Linear transition |
Linear transition |
2a Steady-state |
135 |
100 % |
100 |
2b Transition |
20 |
100 % |
Linear transition |
3a Steady-state |
112 |
100 % |
10 |
3b Transition |
20 |
100 % |
Linear transition |
4a Steady-state |
337 |
100 % |
75 |
4b Transition |
20 |
100 % |
Linear transition |
5a Steady-state |
518 |
100 % |
25 |
5b Transition |
20 |
100 % |
Linear transition |
6a Steady-state |
494 |
100 % |
50 |
6b Transition |
20 |
Linear transition |
Linear transition |
7 Steady-state |
43 |
Idle |
0 |
Test cycle type H
RMC Mode Number |
Time in mode (seconds) |
Engine speed(27) (29) |
Torque (%)(28) (29) |
1a Steady-state |
27 |
Idle |
0 |
1b Transition |
20 |
Linear transition |
Linear transition |
2a Steady-state |
121 |
100 % |
100 |
2b Transition |
20 |
Linear transition |
Linear transition |
3a Steady-state |
347 |
65 % |
19 |
3b Transition |
20 |
Linear transition |
Linear transition |
4a Steady-state |
305 |
85 % |
51 |
4b Transition |
20 |
Linear transition |
Linear transition |
5a Steady-state |
272 |
75 % |
33 |
5b Transition |
20 |
Linear transition |
Linear transition |
6 Steady-state |
28 |
Idle |
0 |
Appendix 3
2.4.2.1
Transient (NRTC and LSI-NRTC) test cycles
NRTC engine dynamometer schedule
Time (s) |
Normalized speed (%) |
Normalized torque (%) |
1 |
0 |
0 |
2 |
0 |
0 |
3 |
0 |
0 |
4 |
0 |
0 |
5 |
0 |
0 |
6 |
0 |
0 |
7 |
0 |
0 |
8 |
0 |
0 |
9 |
0 |
0 |
10 |
0 |
0 |
11 |
0 |
0 |
12 |
0 |
0 |
13 |
0 |
0 |
14 |
0 |
0 |
15 |
0 |
0 |
16 |
0 |
0 |
17 |
0 |
0 |
18 |
0 |
0 |
19 |
0 |
0 |
20 |
0 |
0 |
21 |
0 |
0 |
22 |
0 |
0 |
23 |
0 |
0 |
24 |
1 |
3 |
25 |
1 |
3 |
26 |
1 |
3 |
27 |
1 |
3 |
28 |
1 |
3 |
29 |
1 |
3 |
30 |
1 |
6 |
31 |
1 |
6 |
32 |
2 |
1 |
33 |
4 |
13 |
34 |
7 |
18 |
35 |
9 |
21 |
36 |
17 |
20 |
37 |
33 |
42 |
38 |
57 |
46 |
39 |
44 |
33 |
40 |
31 |
0 |
41 |
22 |
27 |
42 |
33 |
43 |
43 |
80 |
49 |
44 |
105 |
47 |
45 |
98 |
70 |
46 |
104 |
36 |
47 |
104 |
65 |
48 |
96 |
71 |
49 |
101 |
62 |
50 |
102 |
51 |
51 |
102 |
50 |
52 |
102 |
46 |
53 |
102 |
41 |
54 |
102 |
31 |
55 |
89 |
2 |
56 |
82 |
0 |
57 |
47 |
1 |
58 |
23 |
1 |
59 |
1 |
3 |
60 |
1 |
8 |
61 |
1 |
3 |
62 |
1 |
5 |
63 |
1 |
6 |
64 |
1 |
4 |
65 |
1 |
4 |
66 |
0 |
6 |
67 |
1 |
4 |
68 |
9 |
21 |
69 |
25 |
56 |
70 |
64 |
26 |
71 |
60 |
31 |
72 |
63 |
20 |
73 |
62 |
24 |
74 |
64 |
8 |
75 |
58 |
44 |
76 |
65 |
10 |
77 |
65 |
12 |
78 |
68 |
23 |
79 |
69 |
30 |
80 |
71 |
30 |
81 |
74 |
15 |
82 |
71 |
23 |
83 |
73 |
20 |
84 |
73 |
21 |
85 |
73 |
19 |
86 |
70 |
33 |
87 |
70 |
34 |
88 |
65 |
47 |
89 |
66 |
47 |
90 |
64 |
53 |
91 |
65 |
45 |
92 |
66 |
38 |
93 |
67 |
49 |
94 |
69 |
39 |
95 |
69 |
39 |
96 |
66 |
42 |
97 |
71 |
29 |
98 |
75 |
29 |
99 |
72 |
23 |
100 |
74 |
22 |
101 |
75 |
24 |
102 |
73 |
30 |
103 |
74 |
24 |
104 |
77 |
6 |
105 |
76 |
12 |
106 |
74 |
39 |
107 |
72 |
30 |
108 |
75 |
22 |
109 |
78 |
64 |
110 |
102 |
34 |
111 |
103 |
28 |
112 |
103 |
28 |
113 |
103 |
19 |
114 |
103 |
32 |
115 |
104 |
25 |
116 |
103 |
38 |
117 |
103 |
39 |
118 |
103 |
34 |
119 |
102 |
44 |
120 |
103 |
38 |
121 |
102 |
43 |
122 |
103 |
34 |
123 |
102 |
41 |
124 |
103 |
44 |
125 |
103 |
37 |
126 |
103 |
27 |
127 |
104 |
13 |
128 |
104 |
30 |
129 |
104 |
19 |
130 |
103 |
28 |
131 |
104 |
40 |
132 |
104 |
32 |
133 |
101 |
63 |
134 |
102 |
54 |
135 |
102 |
52 |
136 |
102 |
51 |
137 |
103 |
40 |
138 |
104 |
34 |
139 |
102 |
36 |
140 |
104 |
44 |
141 |
103 |
44 |
142 |
104 |
33 |
143 |
102 |
27 |
144 |
103 |
26 |
145 |
79 |
53 |
146 |
51 |
37 |
147 |
24 |
23 |
148 |
13 |
33 |
149 |
19 |
55 |
150 |
45 |
30 |
151 |
34 |
7 |
152 |
14 |
4 |
153 |
8 |
16 |
154 |
15 |
6 |
155 |
39 |
47 |
156 |
39 |
4 |
157 |
35 |
26 |
158 |
27 |
38 |
159 |
43 |
40 |
160 |
14 |
23 |
161 |
10 |
10 |
162 |
15 |
33 |
163 |
35 |
72 |
164 |
60 |
39 |
165 |
55 |
31 |
166 |
47 |
30 |
167 |
16 |
7 |
168 |
0 |
6 |
169 |
0 |
8 |
170 |
0 |
8 |
171 |
0 |
2 |
172 |
2 |
17 |
173 |
10 |
28 |
174 |
28 |
31 |
175 |
33 |
30 |
176 |
36 |
0 |
177 |
19 |
10 |
178 |
1 |
18 |
179 |
0 |
16 |
180 |
1 |
3 |
181 |
1 |
4 |
182 |
1 |
5 |
183 |
1 |
6 |
184 |
1 |
5 |
185 |
1 |
3 |
186 |
1 |
4 |
187 |
1 |
4 |
188 |
1 |
6 |
189 |
8 |
18 |
190 |
20 |
51 |
191 |
49 |
19 |
192 |
41 |
13 |
193 |
31 |
16 |
194 |
28 |
21 |
195 |
21 |
17 |
196 |
31 |
21 |
197 |
21 |
8 |
198 |
0 |
14 |
199 |
0 |
12 |
200 |
3 |
8 |
201 |
3 |
22 |
202 |
12 |
20 |
203 |
14 |
20 |
204 |
16 |
17 |
205 |
20 |
18 |
206 |
27 |
34 |
207 |
32 |
33 |
208 |
41 |
31 |
209 |
43 |
31 |
210 |
37 |
33 |
211 |
26 |
18 |
212 |
18 |
29 |
213 |
14 |
51 |
214 |
13 |
11 |
215 |
12 |
9 |
216 |
15 |
33 |
217 |
20 |
25 |
218 |
25 |
17 |
219 |
31 |
29 |
220 |
36 |
66 |
221 |
66 |
40 |
222 |
50 |
13 |
223 |
16 |
24 |
224 |
26 |
50 |
225 |
64 |
23 |
226 |
81 |
20 |
227 |
83 |
11 |
228 |
79 |
23 |
229 |
76 |
31 |
230 |
68 |
24 |
231 |
59 |
33 |
232 |
59 |
3 |
233 |
25 |
7 |
234 |
21 |
10 |
235 |
20 |
19 |
236 |
4 |
10 |
237 |
5 |
7 |
238 |
4 |
5 |
239 |
4 |
6 |
240 |
4 |
6 |
241 |
4 |
5 |
242 |
7 |
5 |
243 |
16 |
28 |
244 |
28 |
25 |
245 |
52 |
53 |
246 |
50 |
8 |
247 |
26 |
40 |
248 |
48 |
29 |
249 |
54 |
39 |
250 |
60 |
42 |
251 |
48 |
18 |
252 |
54 |
51 |
253 |
88 |
90 |
254 |
103 |
84 |
255 |
103 |
85 |
256 |
102 |
84 |
257 |
58 |
66 |
258 |
64 |
97 |
259 |
56 |
80 |
260 |
51 |
67 |
261 |
52 |
96 |
262 |
63 |
62 |
263 |
71 |
6 |
264 |
33 |
16 |
265 |
47 |
45 |
266 |
43 |
56 |
267 |
42 |
27 |
268 |
42 |
64 |
269 |
75 |
74 |
270 |
68 |
96 |
271 |
86 |
61 |
272 |
66 |
0 |
273 |
37 |
0 |
274 |
45 |
37 |
275 |
68 |
96 |
276 |
80 |
97 |
277 |
92 |
96 |
278 |
90 |
97 |
279 |
82 |
96 |
280 |
94 |
81 |
281 |
90 |
85 |
282 |
96 |
65 |
283 |
70 |
96 |
284 |
55 |
95 |
285 |
70 |
96 |
286 |
79 |
96 |
287 |
81 |
71 |
288 |
71 |
60 |
289 |
92 |
65 |
290 |
82 |
63 |
291 |
61 |
47 |
292 |
52 |
37 |
293 |
24 |
0 |
294 |
20 |
7 |
295 |
39 |
48 |
296 |
39 |
54 |
297 |
63 |
58 |
298 |
53 |
31 |
299 |
51 |
24 |
300 |
48 |
40 |
301 |
39 |
0 |
302 |
35 |
18 |
303 |
36 |
16 |
304 |
29 |
17 |
305 |
28 |
21 |
306 |
31 |
15 |
307 |
31 |
10 |
308 |
43 |
19 |
309 |
49 |
63 |
310 |
78 |
61 |
311 |
78 |
46 |
312 |
66 |
65 |
313 |
78 |
97 |
314 |
84 |
63 |
315 |
57 |
26 |
316 |
36 |
22 |
317 |
20 |
34 |
318 |
19 |
8 |
319 |
9 |
10 |
320 |
5 |
5 |
321 |
7 |
11 |
322 |
15 |
15 |
323 |
12 |
9 |
324 |
13 |
27 |
325 |
15 |
28 |
326 |
16 |
28 |
327 |
16 |
31 |
328 |
15 |
20 |
329 |
17 |
0 |
330 |
20 |
34 |
331 |
21 |
25 |
332 |
20 |
0 |
333 |
23 |
25 |
334 |
30 |
58 |
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336 |
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337 |
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338 |
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1000 |
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1003 |
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1004 |
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1005 |
81 |
28 |
1006 |
81 |
24 |
1007 |
81 |
19 |
1008 |
81 |
16 |
1009 |
80 |
16 |
1010 |
83 |
23 |
1011 |
83 |
17 |
1012 |
83 |
13 |
1013 |
83 |
27 |
1014 |
81 |
58 |
1015 |
81 |
60 |
1016 |
81 |
46 |
1017 |
80 |
41 |
1018 |
80 |
36 |
1019 |
81 |
26 |
1020 |
86 |
18 |
1021 |
82 |
35 |
1022 |
79 |
53 |
1023 |
82 |
30 |
1024 |
83 |
29 |
1025 |
83 |
32 |
1026 |
83 |
28 |
1027 |
76 |
60 |
1028 |
79 |
51 |
1029 |
86 |
26 |
1030 |
82 |
34 |
1031 |
84 |
25 |
1032 |
86 |
23 |
1033 |
85 |
22 |
1034 |
83 |
26 |
1035 |
83 |
25 |
1036 |
83 |
37 |
1037 |
84 |
14 |
1038 |
83 |
39 |
1039 |
76 |
70 |
1040 |
78 |
81 |
1041 |
75 |
71 |
1042 |
86 |
47 |
1043 |
83 |
35 |
1044 |
81 |
43 |
1045 |
81 |
41 |
1046 |
79 |
46 |
1047 |
80 |
44 |
1048 |
84 |
20 |
1049 |
79 |
31 |
1050 |
87 |
29 |
1051 |
82 |
49 |
1052 |
84 |
21 |
1053 |
82 |
56 |
1054 |
81 |
30 |
1055 |
85 |
21 |
1056 |
86 |
16 |
1057 |
79 |
52 |
1058 |
78 |
60 |
1059 |
74 |
55 |
1060 |
78 |
84 |
1061 |
80 |
54 |
1062 |
80 |
35 |
1063 |
82 |
24 |
1064 |
83 |
43 |
1065 |
79 |
49 |
1066 |
83 |
50 |
1067 |
86 |
12 |
1068 |
64 |
14 |
1069 |
24 |
14 |
1070 |
49 |
21 |
1071 |
77 |
48 |
1072 |
103 |
11 |
1073 |
98 |
48 |
1074 |
101 |
34 |
1075 |
99 |
39 |
1076 |
103 |
11 |
1077 |
103 |
19 |
1078 |
103 |
7 |
1079 |
103 |
13 |
1080 |
103 |
10 |
1081 |
102 |
13 |
1082 |
101 |
29 |
1083 |
102 |
25 |
1084 |
102 |
20 |
1085 |
96 |
60 |
1086 |
99 |
38 |
1087 |
102 |
24 |
1088 |
100 |
31 |
1089 |
100 |
28 |
1090 |
98 |
3 |
1091 |
102 |
26 |
1092 |
95 |
64 |
1093 |
102 |
23 |
1094 |
102 |
25 |
1095 |
98 |
42 |
1096 |
93 |
68 |
1097 |
101 |
25 |
1098 |
95 |
64 |
1099 |
101 |
35 |
1100 |
94 |
59 |
1101 |
97 |
37 |
1102 |
97 |
60 |
1103 |
93 |
98 |
1104 |
98 |
53 |
1105 |
103 |
13 |
1106 |
103 |
11 |
1107 |
103 |
11 |
1108 |
103 |
13 |
1109 |
103 |
10 |
1110 |
103 |
10 |
1111 |
103 |
11 |
1112 |
103 |
10 |
1113 |
103 |
10 |
1114 |
102 |
18 |
1115 |
102 |
31 |
1116 |
101 |
24 |
1117 |
102 |
19 |
1118 |
103 |
10 |
1119 |
102 |
12 |
1120 |
99 |
56 |
1121 |
96 |
59 |
1122 |
74 |
28 |
1123 |
66 |
62 |
1124 |
74 |
29 |
1125 |
64 |
74 |
1126 |
69 |
40 |
1127 |
76 |
2 |
1128 |
72 |
29 |
1129 |
66 |
65 |
1130 |
54 |
69 |
1131 |
69 |
56 |
1132 |
69 |
40 |
1133 |
73 |
54 |
1134 |
63 |
92 |
1135 |
61 |
67 |
1136 |
72 |
42 |
1137 |
78 |
2 |
1138 |
76 |
34 |
1139 |
67 |
80 |
1140 |
70 |
67 |
1141 |
53 |
70 |
1142 |
72 |
65 |
1143 |
60 |
57 |
1144 |
74 |
29 |
1145 |
69 |
31 |
1146 |
76 |
1 |
1147 |
74 |
22 |
1148 |
72 |
52 |
1149 |
62 |
96 |
1150 |
54 |
72 |
1151 |
72 |
28 |
1152 |
72 |
35 |
1153 |
64 |
68 |
1154 |
74 |
27 |
1155 |
76 |
14 |
1156 |
69 |
38 |
1157 |
66 |
59 |
1158 |
64 |
99 |
1159 |
51 |
86 |
1160 |
70 |
53 |
1161 |
72 |
36 |
1162 |
71 |
47 |
1163 |
70 |
42 |
1164 |
67 |
34 |
1165 |
74 |
2 |
1166 |
75 |
21 |
1167 |
74 |
15 |
1168 |
75 |
13 |
1169 |
76 |
10 |
1170 |
75 |
13 |
1171 |
75 |
10 |
1172 |
75 |
7 |
1173 |
75 |
13 |
1174 |
76 |
8 |
1175 |
76 |
7 |
1176 |
67 |
45 |
1177 |
75 |
13 |
1178 |
75 |
12 |
1179 |
73 |
21 |
1180 |
68 |
46 |
1181 |
74 |
8 |
1182 |
76 |
11 |
1183 |
76 |
14 |
1184 |
74 |
11 |
1185 |
74 |
18 |
1186 |
73 |
22 |
1187 |
74 |
20 |
1188 |
74 |
19 |
1189 |
70 |
22 |
1190 |
71 |
23 |
1191 |
73 |
19 |
1192 |
73 |
19 |
1193 |
72 |
20 |
1194 |
64 |
60 |
1195 |
70 |
39 |
1196 |
66 |
56 |
1197 |
68 |
64 |
1198 |
30 |
68 |
1199 |
70 |
38 |
1200 |
66 |
47 |
1201 |
76 |
14 |
1202 |
74 |
18 |
1203 |
69 |
46 |
1204 |
68 |
62 |
1205 |
68 |
62 |
1206 |
68 |
62 |
1207 |
68 |
62 |
1208 |
68 |
62 |
1209 |
68 |
62 |
1210 |
54 |
50 |
1211 |
41 |
37 |
1212 |
27 |
25 |
1213 |
14 |
12 |
1214 |
0 |
0 |
1215 |
0 |
0 |
1216 |
0 |
0 |
1217 |
0 |
0 |
1218 |
0 |
0 |
1219 |
0 |
0 |
1220 |
0 |
0 |
1221 |
0 |
0 |
1222 |
0 |
0 |
1223 |
0 |
0 |
1224 |
0 |
0 |
1225 |
0 |
0 |
1226 |
0 |
0 |
1227 |
0 |
0 |
1228 |
0 |
0 |
1229 |
0 |
0 |
1230 |
0 |
0 |
1231 |
0 |
0 |
1232 |
0 |
0 |
1233 |
0 |
0 |
1234 |
0 |
0 |
1235 |
0 |
0 |
1236 |
0 |
0 |
1237 |
0 |
0 |
1238 |
0 |
0 |
LSI-NRTC engine dynamometer schedule
Time (s) |
Normalized speed (%) |
Normalized torque (%) |
0 |
0 |
0 |
1 |
0 |
0 |
2 |
0 |
0 |
3 |
0 |
0 |
4 |
0 |
0 |
5 |
0 |
0 |
6 |
0 |
0 |
7 |
0 |
0 |
8 |
0 |
0 |
9 |
1 |
8 |
10 |
6 |
54 |
11 |
8 |
61 |
12 |
34 |
59 |
13 |
22 |
46 |
14 |
5 |
51 |
15 |
18 |
51 |
16 |
31 |
50 |
17 |
30 |
56 |
18 |
31 |
49 |
19 |
25 |
66 |
20 |
58 |
55 |
21 |
43 |
31 |
22 |
16 |
45 |
23 |
24 |
38 |
24 |
24 |
27 |
25 |
30 |
33 |
26 |
45 |
65 |
27 |
50 |
49 |
28 |
23 |
42 |
29 |
13 |
42 |
30 |
9 |
45 |
31 |
23 |
30 |
32 |
37 |
45 |
33 |
44 |
50 |
34 |
49 |
52 |
35 |
55 |
49 |
36 |
61 |
46 |
37 |
66 |
38 |
38 |
42 |
33 |
39 |
17 |
41 |
40 |
17 |
37 |
41 |
7 |
50 |
42 |
20 |
32 |
43 |
5 |
55 |
44 |
30 |
42 |
45 |
44 |
53 |
46 |
45 |
56 |
47 |
41 |
52 |
48 |
24 |
41 |
49 |
15 |
40 |
50 |
11 |
44 |
51 |
32 |
31 |
52 |
38 |
54 |
53 |
38 |
47 |
54 |
9 |
55 |
55 |
10 |
50 |
56 |
33 |
55 |
57 |
48 |
56 |
58 |
49 |
47 |
59 |
33 |
44 |
60 |
52 |
43 |
61 |
55 |
43 |
62 |
59 |
38 |
63 |
44 |
28 |
64 |
24 |
37 |
65 |
12 |
44 |
66 |
9 |
47 |
67 |
12 |
52 |
68 |
34 |
21 |
69 |
29 |
44 |
70 |
44 |
54 |
71 |
54 |
62 |
72 |
62 |
57 |
73 |
72 |
56 |
74 |
88 |
71 |
75 |
100 |
69 |
76 |
100 |
34 |
77 |
100 |
42 |
78 |
100 |
54 |
79 |
100 |
58 |
80 |
100 |
38 |
81 |
83 |
17 |
82 |
61 |
15 |
83 |
43 |
22 |
84 |
24 |
35 |
85 |
16 |
39 |
86 |
15 |
45 |
87 |
32 |
34 |
88 |
14 |
42 |
89 |
8 |
48 |
90 |
5 |
51 |
91 |
10 |
41 |
92 |
12 |
37 |
93 |
4 |
47 |
94 |
3 |
49 |
95 |
3 |
50 |
96 |
4 |
49 |
97 |
4 |
48 |
98 |
8 |
43 |
99 |
2 |
51 |
100 |
5 |
46 |
101 |
8 |
41 |
102 |
4 |
47 |
103 |
3 |
49 |
104 |
6 |
45 |
105 |
3 |
48 |
106 |
10 |
42 |
107 |
18 |
27 |
108 |
3 |
50 |
109 |
11 |
41 |
110 |
34 |
29 |
111 |
51 |
57 |
112 |
67 |
63 |
113 |
61 |
32 |
114 |
44 |
31 |
115 |
48 |
54 |
116 |
69 |
65 |
117 |
85 |
65 |
118 |
81 |
29 |
119 |
74 |
21 |
120 |
62 |
23 |
121 |
76 |
58 |
122 |
96 |
75 |
123 |
100 |
77 |
124 |
100 |
27 |
125 |
100 |
79 |
126 |
100 |
79 |
127 |
100 |
81 |
128 |
100 |
57 |
129 |
99 |
52 |
130 |
81 |
35 |
131 |
69 |
29 |
132 |
47 |
22 |
133 |
34 |
28 |
134 |
27 |
37 |
135 |
83 |
60 |
136 |
100 |
74 |
137 |
100 |
7 |
138 |
100 |
2 |
139 |
70 |
18 |
140 |
23 |
39 |
141 |
5 |
54 |
142 |
11 |
40 |
143 |
11 |
34 |
144 |
11 |
41 |
145 |
19 |
25 |
146 |
16 |
32 |
147 |
20 |
31 |
148 |
21 |
38 |
149 |
21 |
42 |
150 |
9 |
51 |
151 |
4 |
49 |
152 |
2 |
51 |
153 |
1 |
58 |
154 |
21 |
57 |
155 |
29 |
47 |
156 |
33 |
45 |
157 |
16 |
49 |
158 |
38 |
45 |
159 |
37 |
43 |
160 |
35 |
42 |
161 |
39 |
43 |
162 |
51 |
49 |
163 |
59 |
55 |
164 |
65 |
54 |
165 |
76 |
62 |
166 |
84 |
59 |
167 |
83 |
29 |
168 |
67 |
35 |
169 |
84 |
54 |
170 |
90 |
58 |
171 |
93 |
43 |
172 |
90 |
29 |
173 |
66 |
19 |
174 |
52 |
16 |
175 |
49 |
17 |
176 |
56 |
38 |
177 |
73 |
71 |
178 |
86 |
80 |
179 |
96 |
75 |
180 |
89 |
27 |
181 |
66 |
17 |
182 |
50 |
18 |
183 |
36 |
25 |
184 |
36 |
24 |
185 |
38 |
40 |
186 |
40 |
50 |
187 |
27 |
48 |
188 |
19 |
48 |
189 |
23 |
50 |
190 |
19 |
45 |
191 |
6 |
51 |
192 |
24 |
48 |
193 |
49 |
67 |
194 |
47 |
49 |
195 |
22 |
44 |
196 |
25 |
40 |
197 |
38 |
54 |
198 |
43 |
55 |
199 |
40 |
52 |
200 |
14 |
49 |
201 |
11 |
45 |
202 |
7 |
48 |
203 |
26 |
41 |
204 |
41 |
59 |
205 |
53 |
60 |
206 |
44 |
54 |
207 |
22 |
40 |
208 |
24 |
41 |
209 |
32 |
53 |
210 |
44 |
74 |
211 |
57 |
25 |
212 |
22 |
49 |
213 |
29 |
45 |
214 |
19 |
37 |
215 |
14 |
43 |
216 |
36 |
40 |
217 |
43 |
63 |
218 |
42 |
49 |
219 |
15 |
50 |
220 |
19 |
44 |
221 |
47 |
59 |
222 |
67 |
80 |
223 |
76 |
74 |
224 |
87 |
66 |
225 |
98 |
61 |
226 |
100 |
38 |
227 |
97 |
27 |
228 |
100 |
53 |
229 |
100 |
72 |
230 |
100 |
49 |
231 |
100 |
4 |
232 |
100 |
13 |
233 |
87 |
15 |
234 |
53 |
26 |
235 |
33 |
27 |
236 |
39 |
19 |
237 |
51 |
33 |
238 |
67 |
54 |
239 |
83 |
60 |
240 |
95 |
52 |
241 |
100 |
50 |
242 |
100 |
36 |
243 |
100 |
25 |
244 |
85 |
16 |
245 |
62 |
16 |
246 |
40 |
26 |
247 |
56 |
39 |
248 |
81 |
75 |
249 |
98 |
86 |
250 |
100 |
76 |
251 |
100 |
51 |
252 |
100 |
78 |
253 |
100 |
83 |
254 |
100 |
100 |
255 |
100 |
66 |
256 |
100 |
85 |
257 |
100 |
72 |
258 |
100 |
45 |
259 |
98 |
58 |
260 |
60 |
30 |
261 |
43 |
32 |
262 |
71 |
36 |
263 |
44 |
32 |
264 |
24 |
38 |
265 |
42 |
17 |
266 |
22 |
51 |
267 |
13 |
53 |
268 |
23 |
45 |
269 |
29 |
50 |
270 |
28 |
42 |
271 |
21 |
55 |
272 |
34 |
57 |
273 |
44 |
47 |
274 |
19 |
46 |
275 |
13 |
44 |
276 |
25 |
36 |
277 |
43 |
51 |
278 |
55 |
73 |
279 |
68 |
72 |
280 |
76 |
63 |
281 |
80 |
45 |
282 |
83 |
40 |
283 |
78 |
26 |
284 |
60 |
20 |
285 |
47 |
19 |
286 |
52 |
25 |
287 |
36 |
30 |
288 |
40 |
26 |
289 |
45 |
34 |
290 |
47 |
35 |
291 |
42 |
28 |
292 |
46 |
38 |
293 |
48 |
44 |
294 |
68 |
61 |
295 |
70 |
47 |
296 |
48 |
28 |
297 |
42 |
22 |
298 |
31 |
29 |
299 |
22 |
35 |
300 |
28 |
28 |
301 |
46 |
46 |
302 |
62 |
69 |
303 |
76 |
81 |
304 |
88 |
85 |
305 |
98 |
81 |
306 |
100 |
74 |
307 |
100 |
13 |
308 |
100 |
11 |
309 |
100 |
17 |
310 |
99 |
3 |
311 |
80 |
7 |
312 |
62 |
11 |
313 |
63 |
11 |
314 |
64 |
16 |
315 |
69 |
43 |
316 |
81 |
67 |
317 |
93 |
74 |
318 |
100 |
72 |
319 |
94 |
27 |
320 |
73 |
15 |
321 |
40 |
33 |
322 |
40 |
52 |
323 |
50 |
50 |
324 |
11 |
53 |
325 |
12 |
45 |
326 |
5 |
50 |
327 |
1 |
55 |
328 |
7 |
55 |
329 |
62 |
60 |
330 |
80 |
28 |
331 |
23 |
37 |
332 |
39 |
58 |
333 |
47 |
24 |
334 |
59 |
51 |
335 |
58 |
68 |
336 |
36 |
52 |
337 |
18 |
42 |
338 |
36 |
52 |
339 |
59 |
73 |
340 |
72 |
85 |
341 |
85 |
92 |
342 |
99 |
90 |
343 |
100 |
72 |
344 |
100 |
18 |
345 |
100 |
76 |
346 |
100 |
64 |
347 |
100 |
87 |
348 |
100 |
97 |
349 |
100 |
84 |
350 |
100 |
100 |
351 |
100 |
91 |
352 |
100 |
83 |
353 |
100 |
93 |
354 |
100 |
100 |
355 |
94 |
43 |
356 |
72 |
10 |
357 |
77 |
3 |
358 |
48 |
2 |
359 |
29 |
5 |
360 |
59 |
19 |
361 |
63 |
5 |
362 |
35 |
2 |
363 |
24 |
3 |
364 |
28 |
2 |
365 |
36 |
16 |
366 |
54 |
23 |
367 |
60 |
10 |
368 |
33 |
1 |
369 |
23 |
0 |
370 |
16 |
0 |
371 |
11 |
0 |
372 |
20 |
0 |
373 |
25 |
2 |
374 |
40 |
3 |
375 |
33 |
4 |
376 |
34 |
5 |
377 |
46 |
7 |
378 |
57 |
10 |
379 |
66 |
11 |
380 |
75 |
14 |
381 |
79 |
11 |
382 |
80 |
16 |
383 |
92 |
21 |
384 |
99 |
16 |
385 |
83 |
2 |
386 |
71 |
2 |
387 |
69 |
4 |
388 |
67 |
4 |
389 |
74 |
16 |
390 |
86 |
25 |
391 |
97 |
28 |
392 |
100 |
15 |
393 |
83 |
2 |
394 |
62 |
4 |
395 |
40 |
6 |
396 |
49 |
10 |
397 |
36 |
5 |
398 |
27 |
4 |
399 |
29 |
3 |
400 |
22 |
2 |
401 |
13 |
3 |
402 |
37 |
36 |
403 |
90 |
26 |
404 |
41 |
2 |
405 |
25 |
2 |
406 |
29 |
2 |
407 |
38 |
7 |
408 |
50 |
13 |
409 |
55 |
10 |
410 |
29 |
3 |
411 |
24 |
7 |
412 |
51 |
16 |
413 |
62 |
15 |
414 |
72 |
35 |
415 |
91 |
74 |
416 |
100 |
73 |
417 |
100 |
8 |
418 |
98 |
11 |
419 |
100 |
59 |
420 |
100 |
98 |
421 |
100 |
99 |
422 |
100 |
75 |
423 |
100 |
95 |
424 |
100 |
100 |
425 |
100 |
97 |
426 |
100 |
90 |
427 |
100 |
86 |
428 |
100 |
82 |
429 |
97 |
43 |
430 |
70 |
16 |
431 |
50 |
20 |
432 |
42 |
33 |
433 |
89 |
64 |
434 |
89 |
77 |
435 |
99 |
95 |
436 |
100 |
41 |
437 |
77 |
12 |
438 |
29 |
37 |
439 |
16 |
41 |
440 |
16 |
38 |
441 |
15 |
36 |
442 |
18 |
44 |
443 |
4 |
55 |
444 |
24 |
26 |
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26 |
35 |
446 |
15 |
45 |
447 |
21 |
39 |
448 |
29 |
52 |
449 |
26 |
46 |
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27 |
50 |
451 |
13 |
43 |
452 |
25 |
36 |
453 |
37 |
57 |
454 |
29 |
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455 |
17 |
39 |
456 |
13 |
41 |
457 |
19 |
38 |
458 |
28 |
35 |
459 |
8 |
51 |
460 |
14 |
36 |
461 |
17 |
47 |
462 |
34 |
39 |
463 |
34 |
57 |
464 |
11 |
70 |
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13 |
51 |
466 |
13 |
68 |
467 |
38 |
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468 |
53 |
67 |
469 |
29 |
69 |
470 |
19 |
65 |
471 |
52 |
45 |
472 |
61 |
79 |
473 |
29 |
70 |
474 |
15 |
53 |
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15 |
60 |
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52 |
40 |
477 |
50 |
61 |
478 |
13 |
74 |
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46 |
51 |
480 |
60 |
73 |
481 |
33 |
84 |
482 |
31 |
63 |
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41 |
42 |
484 |
26 |
69 |
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23 |
65 |
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48 |
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28 |
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488 |
16 |
67 |
489 |
39 |
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35 |
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30 |
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56 |
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59 |
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42 |
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6 |
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5 |
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17 |
59 |
503 |
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21 |
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31 |
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53 |
68 |
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48 |
79 |
508 |
45 |
61 |
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51 |
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510 |
41 |
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511 |
26 |
58 |
512 |
21 |
62 |
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23 |
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66 |
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64 |
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33 |
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563 |
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567 |
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14 |
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52 |
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59 |
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66 |
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48 |
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62 |
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36 |
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17 |
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16 |
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19 |
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52 |
80 |
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52 |
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37 |
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53 |
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64 |
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54 |
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28 |
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19 |
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33 |
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37 |
70 |
629 |
24 |
79 |
630 |
28 |
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40 |
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632 |
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58 |
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28 |
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29 |
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31 |
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26 |
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20 |
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16 |
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11 |
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13 |
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23 |
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32 |
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36 |
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33 |
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24 |
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37 |
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9 |
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15 |
64 |
661 |
31 |
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19 |
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664 |
33 |
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28 |
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670 |
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27 |
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37 |
63 |
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32 |
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16 |
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12 |
67 |
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17 |
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62 |
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25 |
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27 |
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681 |
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71 |
682 |
5 |
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683 |
6 |
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6 |
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77 |
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67 |
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14 |
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15 |
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692 |
18 |
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14 |
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9 |
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8 |
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14 |
70 |
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60 |
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22 |
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27 |
67 |
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29 |
68 |
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34 |
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35 |
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28 |
78 |
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11 |
71 |
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4 |
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5 |
58 |
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10 |
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712 |
20 |
63 |
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13 |
76 |
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11 |
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9 |
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7 |
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8 |
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10 |
60 |
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28 |
53 |
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12 |
73 |
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4 |
64 |
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4 |
61 |
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4 |
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56 |
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8 |
61 |
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20 |
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32 |
62 |
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33 |
66 |
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34 |
73 |
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31 |
61 |
731 |
33 |
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33 |
60 |
733 |
31 |
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29 |
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53 |
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33 |
51 |
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33 |
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27 |
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52 |
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13 |
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47 |
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8 |
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71 |
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55 |
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10 |
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16 |
53 |
753 |
12 |
75 |
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6 |
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12 |
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24 |
50 |
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28 |
60 |
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28 |
64 |
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23 |
60 |
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20 |
56 |
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26 |
50 |
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28 |
55 |
763 |
18 |
56 |
764 |
15 |
52 |
765 |
11 |
59 |
766 |
16 |
59 |
767 |
34 |
54 |
768 |
16 |
82 |
769 |
15 |
64 |
770 |
36 |
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45 |
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41 |
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34 |
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26 |
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778 |
39 |
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779 |
37 |
71 |
780 |
32 |
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781 |
24 |
48 |
782 |
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59 |
783 |
7 |
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785 |
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786 |
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68 |
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35 |
48 |
790 |
29 |
54 |
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22 |
69 |
792 |
46 |
53 |
793 |
59 |
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794 |
69 |
68 |
795 |
75 |
47 |
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62 |
32 |
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48 |
35 |
798 |
27 |
59 |
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13 |
58 |
800 |
14 |
54 |
801 |
21 |
53 |
802 |
23 |
56 |
803 |
23 |
57 |
804 |
23 |
65 |
805 |
13 |
65 |
806 |
9 |
64 |
807 |
27 |
56 |
808 |
26 |
78 |
809 |
40 |
61 |
810 |
35 |
76 |
811 |
28 |
66 |
812 |
23 |
57 |
813 |
16 |
50 |
814 |
11 |
53 |
815 |
9 |
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816 |
9 |
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817 |
27 |
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818 |
42 |
69 |
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820 |
53 |
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61 |
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60 |
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825 |
49 |
39 |
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35 |
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30 |
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830 |
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832 |
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833 |
33 |
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29 |
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9 |
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838 |
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20 |
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840 |
27 |
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850 |
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851 |
17 |
52 |
852 |
20 |
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853 |
16 |
62 |
854 |
4 |
67 |
855 |
2 |
64 |
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7 |
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857 |
10 |
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858 |
9 |
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859 |
5 |
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860 |
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861 |
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862 |
9 |
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863 |
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864 |
30 |
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866 |
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868 |
6 |
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7 |
59 |
870 |
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871 |
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61 |
872 |
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873 |
34 |
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60 |
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68 |
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880 |
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881 |
64 |
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68 |
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883 |
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884 |
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886 |
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887 |
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888 |
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889 |
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6 |
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58 |
6 |
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892 |
77 |
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93 |
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93 |
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37 |
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26 |
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27 |
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21 |
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22 |
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24 |
904 |
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32 |
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26 |
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34 |
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30 |
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32 |
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32 |
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28 |
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18 |
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17 |
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13 |
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930 |
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1092 |
93 |
22 |
1093 |
93 |
22 |
1094 |
93 |
23 |
1095 |
93 |
23 |
1096 |
93 |
23 |
1097 |
93 |
22 |
1098 |
93 |
23 |
1099 |
93 |
23 |
1100 |
93 |
23 |
1101 |
93 |
25 |
1102 |
93 |
27 |
1103 |
93 |
26 |
1104 |
93 |
25 |
1105 |
93 |
27 |
1106 |
93 |
27 |
1107 |
93 |
27 |
1108 |
93 |
24 |
1109 |
93 |
20 |
1110 |
93 |
18 |
1111 |
93 |
17 |
1112 |
93 |
17 |
1113 |
93 |
18 |
1114 |
93 |
18 |
1115 |
93 |
18 |
1116 |
93 |
19 |
1117 |
93 |
22 |
1118 |
93 |
22 |
1119 |
93 |
19 |
1120 |
93 |
17 |
1121 |
93 |
17 |
1122 |
93 |
18 |
1123 |
93 |
18 |
1124 |
93 |
19 |
1125 |
93 |
19 |
1126 |
93 |
20 |
1127 |
93 |
19 |
1128 |
93 |
20 |
1129 |
93 |
25 |
1130 |
93 |
30 |
1131 |
93 |
31 |
1132 |
93 |
26 |
1133 |
93 |
21 |
1134 |
93 |
18 |
1135 |
93 |
20 |
1136 |
93 |
25 |
1137 |
93 |
24 |
1138 |
93 |
21 |
1139 |
93 |
21 |
1140 |
93 |
22 |
1141 |
93 |
22 |
1142 |
93 |
28 |
1143 |
93 |
29 |
1144 |
93 |
23 |
1145 |
93 |
21 |
1146 |
93 |
18 |
1147 |
93 |
16 |
1148 |
93 |
16 |
1149 |
93 |
16 |
1150 |
93 |
17 |
1151 |
93 |
17 |
1152 |
93 |
17 |
1153 |
93 |
17 |
1154 |
93 |
23 |
1155 |
93 |
26 |
1156 |
93 |
22 |
1157 |
93 |
18 |
1158 |
93 |
16 |
1159 |
93 |
16 |
1160 |
93 |
17 |
1161 |
93 |
19 |
1162 |
93 |
18 |
1163 |
93 |
16 |
1164 |
93 |
19 |
1165 |
93 |
22 |
1166 |
93 |
25 |
1167 |
93 |
29 |
1168 |
93 |
27 |
1169 |
93 |
22 |
1170 |
93 |
18 |
1171 |
93 |
16 |
1172 |
93 |
19 |
1173 |
93 |
19 |
1174 |
93 |
17 |
1175 |
93 |
17 |
1176 |
93 |
17 |
1177 |
93 |
16 |
1178 |
93 |
16 |
1179 |
93 |
15 |
1180 |
93 |
16 |
1181 |
93 |
15 |
1182 |
93 |
17 |
1183 |
93 |
21 |
1184 |
93 |
30 |
1185 |
93 |
53 |
1186 |
93 |
54 |
1187 |
93 |
38 |
1188 |
93 |
30 |
1189 |
93 |
24 |
1190 |
93 |
20 |
1191 |
95 |
20 |
1192 |
96 |
18 |
1193 |
96 |
15 |
1194 |
96 |
11 |
1195 |
95 |
9 |
1196 |
95 |
8 |
1197 |
96 |
7 |
1198 |
94 |
33 |
1199 |
93 |
46 |
1200 |
93 |
37 |
1201 |
16 |
8 |
1202 |
0 |
0 |
1203 |
0 |
0 |
1204 |
0 |
0 |
1205 |
0 |
0 |
1206 |
0 |
0 |
1207 |
0 |
0 |
1208 |
0 |
0 |
1209 |
0 |
0 |