Assessment of Heavy-Duty Diesel Vehicle NOx and CO2 Emissions Based on OBD Data
Abstract
:1. Introduction
2. Materials and Methods
2.1. Vehicle NOx and CO2 Emissions Calculation Based on OBD Data
2.2. Validation of the Vehicle Emission Calculation Method Based on OBD Data
2.2.1. Test Facilities and Procedures
2.2.2. Vehicle NOx and CO2 Emission Test
2.2.3. Vehicle Fuel Consumption Test
3. Results and Discussion
3.1. Comparison between the Calculated NOx and CO2 Emissions Based on OBD Data and the Measured Results
3.2. Correlation Analysis of NOx and CO2 Emission Data
3.3. Comparison between the Fuel Consumption Calculated Based on OBD Data and the Measured Results
- (i)
- Test instruments, including fuel flowmeter, emission analyzer, and CVS dilution system, have measurement errors that may affect test results.
- (ii)
- The control accuracy of ECU fuel injection quantity is affected by many factors, such as injection pressure, injection pulse width, injector needle valve inertia, and control system voltage, resulting in a difference between the actual injection quantity and the target injection quantity, which may lead to deviations in the fuel flow rate transmitted by ECU through OBD and affect the vehicle fuel consumption results calculated based on the instantaneous fuel flow rate.
- (iii)
- These three test methods of vehicle fuel consumption are based on different sampling principles, which may have some influences on the test results.
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Nomenclature
ASC | Ammonia slip catalyst |
CAN | Controller area network |
CBD | Chemiluminescent detector |
CCP | CAN Calibration Protocol |
CEM | Comprehensive modal emissions model |
CHTC-HT | China heavy-duty test cycle-heavy-duty truck |
CI | Compression ignition |
CO | Carbon monoxide |
CO2 | Carbon dioxide |
DOC | Diesel oxidation catalyst |
DPF | Diesel particulate filter |
ECU | Electronic control unit |
HC | Hydrocarbon |
HD | Heated flame ionization detector |
HDDV | Heavy-duty diesel vehicle |
HDV | Heavy-duty vehicle |
NDIR | Non-dispersive infrared detection |
NOx | Oxides of nitrogen |
OBD | On-board diagnostics |
OBFCM | On-board fuel and energy consumption monitoring |
OBM | On-board monitoring |
PM | Particulate matter |
RED | Infrared detector |
SCR | Selective catalytic reduction |
THC | Total hydrocarbons |
US EPA | US Environmental Protection Agency |
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Item | Type | Measuring Range | Manufacturer |
---|---|---|---|
Heavy-duty vehicle chassis dynamometer | 9248 | Vehicle Weight: 3500 kg to 450,000 kg | Burke E. Porter Machinery Company |
Data acquisition tool | INCA | ECU data | ETAS |
Fuel flow meter | FP-2140H | 0~120 L·h−1 | ONOSOKKI |
CVS system | CVS i60 | 0~150 m3·min−1 | AVL |
Emission analysis system | AMAi60 | NOx: 0~10,000 × 10−1 (ppm) | AVL |
CO: 0~10% | |||
THC: 0~20,000 × 10−1 (ppm) C3 | |||
CO2: 0~20% |
Item | Content |
---|---|
Vehicle type | N3 * |
Emission standard | China-VI |
Curb weight (kg) | 8800 |
Total mass (kg) | 25,000 |
Drive form | 4 × 2 rear drive |
Engine type/fuel | CI/Diesel |
Engine form | Inline 6-cylinder water-cooled |
Engine capacity (L) | 10.5 |
Intake mode | Turbocharged inter-cooled |
Exhaust after-treatment | DOC + DPF + SCR + ASC |
Idle speed (r·min−1) | 650 |
Rated power/speed (kW/(r·min−1)) | 300/1900 |
Maximum torque/speed (N·m/(r·min−1)) | 2100/1300 |
NOx Emissions | CO2 Emissions | |||||
---|---|---|---|---|---|---|
Number of Tests | Calculated Data Based on OBD Data (g·km−1) | Measured Data by Emission Analyzer (g·km−1) | Deviation (%) | Calculated Data Based on OBD Data (g·km−1) | Measured Data by Emission Analyzer (g·km−1) | Deviation (%) |
Test 1 | 0.812 | 0.804 | 0.99 | 785.52 | 776.84 | 1.10 |
Test 2 | 0.805 | 0.813 | −0.99 | 772.76 | 767.72 | 0.65 |
Test 3 | 0.803 | 0.785 | 2.24 | 768.51 | 750.80 | 2.30 |
Mean value | 0.807 | 0.801 | 0.74 | 775.60 | 765.12 | 1.35 |
Number of Tests | Vehicle Fuel Consumption per 100 km (L·(100 km)−1) | Deviation from the Calculated Data Based on OBD Data (%) | |||
---|---|---|---|---|---|
Calculated Results Based on OBD Data | Calculated Results by Carbon Balance Method | Fuel Flow Meter Test Results | Calculated Results by Carbon Balance Method | Fuel Flow Meter Test Results | |
Test 1 | 29.56 | 29.24 | 29.35 | −1.08% | −0.71% |
Test 2 | 29.08 | 28.85 | 29.42 | −0.79% | 1.17% |
Test 3 | 28.92 | 28.26 | 29.13 | −2.28% | 0.73% |
Mean value | 29.19 | 28.78 | 29.30 | −1.38% | 0.39% |
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Hao, L.; Ren, Y.; Lu, W.; Jiang, N.; Ge, Y.; Wang, Y. Assessment of Heavy-Duty Diesel Vehicle NOx and CO2 Emissions Based on OBD Data. Atmosphere 2023, 14, 1417. https://doi.org/10.3390/atmos14091417
Hao L, Ren Y, Lu W, Jiang N, Ge Y, Wang Y. Assessment of Heavy-Duty Diesel Vehicle NOx and CO2 Emissions Based on OBD Data. Atmosphere. 2023; 14(9):1417. https://doi.org/10.3390/atmos14091417
Chicago/Turabian StyleHao, Lijun, Yanxu Ren, Wenhui Lu, Nan Jiang, Yunshan Ge, and Yachao Wang. 2023. "Assessment of Heavy-Duty Diesel Vehicle NOx and CO2 Emissions Based on OBD Data" Atmosphere 14, no. 9: 1417. https://doi.org/10.3390/atmos14091417
APA StyleHao, L., Ren, Y., Lu, W., Jiang, N., Ge, Y., & Wang, Y. (2023). Assessment of Heavy-Duty Diesel Vehicle NOx and CO2 Emissions Based on OBD Data. Atmosphere, 14(9), 1417. https://doi.org/10.3390/atmos14091417