Development and Test Application of an Auxiliary Power-Integrated System
Abstract
:1. Introduction
2. APU System Design and Parameter Matching
2.1. Vehicle Demand Power
2.2. Engine Operating Characteristics
2.3. Generator Characteristics
3. APU-Integrated Control System Design
3.1. Hardware Design for the APU Controller
3.2. Circuit Design for the APU-Integrated Control System
3.3. Software Design for the APU-Integrated Control System
3.4. The Communication Solution for the Integrated Control System
4. Strategy Design for the APU-Integrated Control System
4.1. The Engine Speed Closed-Loop Control Method
4.2. The Generator Torque Control Method
4.3. Engine–Generator Coordination Control Strategy
5. Experimental Research on the APU Test Bench
5.1. The APU Test Bench
5.2. APU Test Application
5.2.1. Engine Speed Control Test
5.2.2. Start-Stop Test
5.2.3. Warm-Up Test
5.2.4. Charging Test
5.3. APU Power Following the Experiment
5.3.1. Speed Regulation Experiment
5.3.2. Torque Regulation Experiment
5.3.3. Power Regulation Experiment
6. Conclusions
- (1)
- A new integrated system was built that used APU parts, in the electrical vehicle work state, and fulfilled the performance requirements. The optimization algorithm of the APU parameters, based on the characteristics of the efficiency maps of the engine and the generator, was analyzed and developed.
- (2)
- An APU controller was designed to combine the hardware, software, and communication system design, which considered the optimization coordination control strategy for engine speed and generator torque.
- (3)
- The comprehensive test bench of the APU system was constructed, which can receive instructions from electric vehicles and feedback from the battery SOC. The controller of the designed APU system can deal with the engine acquisition and generator data, communicate with the battery system, and automatically control APU work at a reasonable speed and torque according to the power demand of the vehicle. All input and output parameters and the control processing can be displayed in real time on a computer.
- (4)
- The engine speed control and integrated control experiment of the APU system were completed on the test bench. The power regulation experiment results for the optimization of design parameters were obtained. The test results showed that the test control system and the relevant control logic are reliable. The APU-integrated system can operate with high economic efficiency and fulfil the RE-EV vehicle performance requirements.
Acknowledgments
Author Contributions
Conflicts of Interest
Nomenclature
Vehicle demand power | |
Vehicle mass | |
Rolling resistance coefficient | |
Road gradient | |
Air resistance coefficient | |
Frontal area | |
Driving speed | |
Vehicle rotational mass conversion factor | |
Mechanical transmission efficiency | |
Fuel consumption rate | |
Engine speed | |
Power of the engine output | |
Engine torque | |
Engine efficiency | |
Enthalpy flow | |
Fuel mass flow | |
Fuel’s lower hearting value | |
Efficiency of the generator | |
Speed of the generator | |
Output power of the generator | |
Throttle voltage | |
Proportional gain | |
Integral time | |
Derivative time | |
Difference | |
Test feed forward value | |
Electromagnetic torque | |
Pole pairs | |
, | The d- and q-axis magnetic linkage |
Fundamental flux magnetic linkage | |
, | The d- and q-axis inductance |
, | The d- and q-axis currents |
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Vehicle Specification | |
Maximum speed | 80 km/h |
0–50 km/h Acceleration time | t < 18 s |
Vehicle mass/kg | 12,000 |
Full mass max gradient | >20% |
EV extended range (constant speed 40 km/h) | >150 km |
Driving motor | |
Motor types | PMSM |
Rated power/Peak power | 100/200 (Kw) |
Rated speed/Max speed | 800/3000 (r/min) |
Max torque | 2500 (Nm) |
Power battery | |
Battery types | LiMn2O4 |
Nominal voltage | 384 V |
Rated capacity | 400 Ah |
Engine | Parameters |
Engine types | diesel |
Engine displacement (L) | 1.9 |
Speed range (r/min) | 850~4000 |
Rated power (kW)/Speed (r/min) | 82/4000 |
Maximum torque (Nm)/Speed (r/min) | 235/1800~2300 |
Generator | Parameters |
Generation types | PMSM |
Rated voltage/V DC | 384 |
Rated power/kW/Speed(r/min) | 65/2500 |
Rated torque/(Nm) | 250 Nm |
Speed range (r/min) | 0~4000 |
Peak power kW/Torque/(Nm) | 86/330 |
Speed (r/min) | Output Power (kW) | Consumption per Hour (kg/h) | Specific Fuel Consumption (g/kWh) |
---|---|---|---|
2200 | 53 | 11.28 | 208.4 |
3000 | 69 | 15.10 | 218.5 |
3500 | 75 | 17.56 | 230.4 |
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Zhang, H.; Xing, Z.; Song, J.; Yang, Q. Development and Test Application of an Auxiliary Power-Integrated System. Energies 2018, 11, 187. https://doi.org/10.3390/en11010187
Zhang H, Xing Z, Song J, Yang Q. Development and Test Application of an Auxiliary Power-Integrated System. Energies. 2018; 11(1):187. https://doi.org/10.3390/en11010187
Chicago/Turabian StyleZhang, Hong, Zhuang Xing, Jiajian Song, and Qiangqiang Yang. 2018. "Development and Test Application of an Auxiliary Power-Integrated System" Energies 11, no. 1: 187. https://doi.org/10.3390/en11010187
APA StyleZhang, H., Xing, Z., Song, J., & Yang, Q. (2018). Development and Test Application of an Auxiliary Power-Integrated System. Energies, 11(1), 187. https://doi.org/10.3390/en11010187