Development of Hybrid Vehicle Energy Consumption Model for Transportation Applications—Part II: Traction Force-Speed Based Energy Consumption Modeling †
Abstract
:1. Introduction
- (1)
- To investigate and analyze hybrid vehicles’ powertrain operation and energy consumption characters in order to suggest further improvement on the conventional VSP energy consumption modeling method.
- (2)
- To organize and develop an energy consumption prediction model that can capture hybrid vehicles’ energy consumption characteristics based on the fundamental of the actual hybrid operation, and to extend the application ability of the model to be more captive in various driving conditions.
2. Experimental Set-Up and Data Acquisition
2.1. Analytical Experiment
2.2. Real-World Experiment
3. Methodology
3.1. Investigation of Hybrid Vehicles’ Powertrain Operation and Energy Consumption Characteristics
3.2. Driving Power and Driving Force Estimation
3.3. Construction of Traction Force-Speed Based Fuel Consumption Model
3.4. Model Implementation
- Calculate the driving power by using Equation (1); then, sum up with the average auxiliary load and air conditioning power data.
- Divide the total power by the vehicle speed (m/s) in order to obtain the driving force.
- Predict the fuel consumption by using the calculated driving force and speed to find the grid position that is satisfied with the calculated driving force and speed level, and then collect the fuel consumption rate of the grid from TFS model shown in Figure 6. Note that the driving force and speed boundaries were specified in Equations (2) and (3).
- Multiply the fuel consumption rate with the time interval of the input data, and calculate the total fuel consumption of the overall trip.
4. Results and Discussions
5. Conclusions
6. Further Improvement
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Nomenclature
Symbol | Description | Units |
---|---|---|
Gross vehicle mass | (kg) | |
Gravitational acceleration | (m/s2) | |
Vehicle speed | (m/s) | |
Relative wind speed | (m/s) | |
Vehicle acceleration | (m/s2) | |
Road grade slope | (rad) | |
Air density | (kg/m3) | |
Aerodynamic drag coefficient | - | |
Engine revolution | (rad/s) | |
n | Number of engine cylinders | - |
k | Number of engine strokes per one injection | - |
Inj | Injection head lifting duration | (10 s) |
The fuel consumption model constructed based on the newly developed driving power equation for Prius3 and TFS method | - | |
The fuel consumption model constructed based on the conventional vehicle specific power (VSP) equation with the light duty vehicle (LDV) coefficients and the conventional VSP binning method | - | |
Acronyms | ||
VSP | Vehicle-specific power | |
TFS model | Traction Force-Speed Based Fuel Consumption Model | |
MG | motor/generator | |
EMS | energy management system | |
SOC | State of charge | |
Prius3 | The third generation of the Toyota Prius | |
OBD | On-Board diagnostics | |
CAN | Controller area network |
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Pitanuwat, S.; Aoki, H.; IIzuka, S.; Morikawa, T. Development of Hybrid Vehicle Energy Consumption Model for Transportation Applications—Part II: Traction Force-Speed Based Energy Consumption Modeling. World Electr. Veh. J. 2019, 10, 22. https://doi.org/10.3390/wevj10020022
Pitanuwat S, Aoki H, IIzuka S, Morikawa T. Development of Hybrid Vehicle Energy Consumption Model for Transportation Applications—Part II: Traction Force-Speed Based Energy Consumption Modeling. World Electric Vehicle Journal. 2019; 10(2):22. https://doi.org/10.3390/wevj10020022
Chicago/Turabian StylePitanuwat, Siriorn, Hirofumi Aoki, Satoru IIzuka, and Takayuki Morikawa. 2019. "Development of Hybrid Vehicle Energy Consumption Model for Transportation Applications—Part II: Traction Force-Speed Based Energy Consumption Modeling" World Electric Vehicle Journal 10, no. 2: 22. https://doi.org/10.3390/wevj10020022