A New Vehicle-Specific Power Model for the Estimation of Hybrid Vehicle Emissions
Abstract
:1. Introduction
2. Materials and Methods
2.1. Measurement and Equipment
2.2. VSP Model
3. Results and Discussion
3.1. Vehicle Models
3.2. Testing of Hybrid and VSP Vehicle Models in RDE, NEDC and WLTC Driving Cycles
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
DOC | Diesel oxidation catalyst |
DPF | Diesel particulate filter |
EGR | Exhaust gas recirculation |
EM | Electric machine |
EMS | Energy management strategy |
EV | Electric vehicle |
GPS | Global position system |
HEV | Hybrid electric vehicle |
ICE | Internal combustion engine |
KE | Kinetic energy |
LPG | Liquid petroleum gas |
NEDC | New European driving cycle |
OBD | On-board diagnostics |
PE | Potential energy |
PEMS | Portable emission measurement system |
RDE | Real driving emission |
TM | Technical mass |
VSP | Vehicle specific power |
WLTP | Worldwide harmonized light vehicle test procedure |
f0, f1, f2 | Coast down analyses free factor, linear factor, quadratic factor |
Etr | Traction energy |
Faero | Aerodynamics resistance force |
Froll | Rolling resistance force |
Fres | Resistance force |
h | Height |
m | Mass |
Mx | Total mass of x emission |
mx,j | Mass of x emission in j power class |
mx,k | Mass of x emission in k interval |
Pc,j | Power j-class |
Pe,j | Engine power j-class |
Pwheel | Wheel power |
Tj,mwa | j class engine ICE operating time |
v | Velocity |
Wbr | Braking energy |
wmwa,j | Mechanical energy due to the shift of the ICE operating region |
Ws,mwa | Total stored energy due to the shift of the ICE operating region |
Wtr,j | Traction energy from ICE in class j |
wtr,j | Drive shaft traction energy in class j |
α | Regenerative braking factor |
γj | Stored energy share in class j |
ηg, ηst, ηm | Generator, storage, motor efficiency |
ηgb, ηf | Gearbox, final drive efficiency |
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Analyzer | NO/NO2 and CO/CO2/N2O | THC/CH4 | Particle Counter |
---|---|---|---|
Measuring method | Non-Dispersive Ultra Violet-NDUV Non-Dispersive Infra Red-NDIR | Flame Ionization Detector-FID | Advanced diffusion charger |
Measuring range | NO: 0–5000 ppm | THC: 0–30,000 ppmC1 | ~1500–~2.5 × 107 #/cm3 |
NO2: 0–2500 ppm | |||
CO: 0–5% vol. | |||
CO2: 0–20% vol. | CH4: 0–10,000 ppmC1 | ||
N2O: 0–2000 ppm | |||
Zero Drift/8 h | NO/NO2: 2 ppm | ±5 ppm C1/8 h | |
CO: 20 ppm | |||
CO2: 0.1% vol. | |||
N2O: 20 ppm | |||
Accuracy | 0.3% FS |
Power Class No. | Pc,j (kW) from | Pc,j (kW) to |
---|---|---|
1 | −∞ | −2.368 |
2 | −2.368 | 0.000 |
3 | 0.000 | 2.368 |
4 | 2.368 | 11.840 |
5 | 11.840 | 23.680 |
6 | 23.680 | 44.992 |
7 | 44.992 | 66.304 |
8 | 66.304 | ∞ |
Classic Vehicle | RDE Cycle | RDE (1/km) | Deviation | |||||||
---|---|---|---|---|---|---|---|---|---|---|
Measured | CruiseM | VSP | Measured | CruiseM | VSP | CruiseM | CruiseM (%) | VSP | VSP (%) | |
Distance (km) | 86.21 | 86.63 | 86.21 | 1.000 | 1.005 | 1.000 | 0.005 | 0.48% | 0.000 | 0.00% |
Positive traction energy (kWh) | 13.37 | 13.33 | 13.46 | 0.155 | 0.154 | 0.156 | −0.035 | 0.22% | 0.092 | 0.69% |
Negative traction energy (kWh) | −2.14 | −2.22 | −2.27 | −0.0248 | −0.0256 | −0.0263 | −0.080 | 3.26% | −0.130 | 6.08% |
CO2 emission (g) | 10,540 | 10,556 | 10,540 | 122.2 | 121.9 | 122.2 | 16.259 | −0.33% | 0.000 | 0.00% |
NOx emission (mg) | 39,806 | 40,051 | 39,806 | 461.7 | 462.3 | 461.7 | 245.136 | 0.13% | 0.000 | 0.00% |
Consumption (kg) | 3.366 | 3.371 | 3.366 | 0.039 | 0.039 | 0.039 | 0.005 | −0.33% | 0.000 | 0.00% |
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Kozina, A.; Vidović, T.; Radica, G.; Vučetić, A. A New Vehicle-Specific Power Model for the Estimation of Hybrid Vehicle Emissions. Energies 2023, 16, 8094. https://doi.org/10.3390/en16248094
Kozina A, Vidović T, Radica G, Vučetić A. A New Vehicle-Specific Power Model for the Estimation of Hybrid Vehicle Emissions. Energies. 2023; 16(24):8094. https://doi.org/10.3390/en16248094
Chicago/Turabian StyleKozina, Ante, Tino Vidović, Gojmir Radica, and Ante Vučetić. 2023. "A New Vehicle-Specific Power Model for the Estimation of Hybrid Vehicle Emissions" Energies 16, no. 24: 8094. https://doi.org/10.3390/en16248094
APA StyleKozina, A., Vidović, T., Radica, G., & Vučetić, A. (2023). A New Vehicle-Specific Power Model for the Estimation of Hybrid Vehicle Emissions. Energies, 16(24), 8094. https://doi.org/10.3390/en16248094