Electric-thermal collaborative control and multimode energy flow analysis of fuel cell hybrid electric vehicles in low-temperature regions

被引:2
|
作者
Yu, Xiao [1 ]
Lin, Cheng [1 ]
Xie, Peng [1 ]
Tian, Yu [1 ]
Chen, Haopeng [2 ]
Liu, Kai [3 ]
Liu, Huimin [1 ]
机构
[1] Beijing Inst Technol, Natl Engn Res Ctr Elect Vehicles, Beijing 100081, Peoples R China
[2] Tech Univ Berlin, Dept Automot Engn, D-13355 Berlin, Germany
[3] Beijing Foton AUV New Energy Bus Co Ltd, Beijing 102200, Peoples R China
基金
中国国家自然科学基金; 北京市自然科学基金;
关键词
Electric-thermal collaborative strategy; Energy flow analysis; Energy conversion efficiency; Fuel cell hybrid bus; All-climatic scenarios; MODEL-PREDICTIVE CONTROL; MANAGEMENT;
D O I
10.1016/j.etran.2024.100341
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The energy flow distribution characteristics of electric vehicles operating in various propulsion modes and all climatic scenarios have not been thoroughly explored. To achieve effective electric-thermal collaborative energy management, intelligent control methods must be applied considering various climatic conditions to alleviate mileage anxiety. In this study, we developed a novel electric -thermal collaborative energy management strategy based on an improved deep neural network and energy quantification model to increase the global energy conversion efficiency. The complete energy consumption distribution characteristics are summarized under various strategies and propulsion modes based on an experiment data collected by the vehicle control unit that involves battery self-heating, cabin heating, acceleration consumption, and fuel consumption in the temperature range of -10 degrees C-35 degrees C. Our findings indicate that, for a fuel cell hybrid bus in the cycle including the initial cabin heating process, the heating consumption in the pure electric mode was 9.9 kWh/cycle and 13 kWh/cycle when the ambient temperature is -2 degrees C and -10 degrees C, respectively, accounting for 33 % and 42 % of the total consumption, respectively. After using the waste heat from the fuel cell, the consumption of electric heating under the same conditions is only 3.7 kWh/cycle. In the high-temperature scenario, the cabin cooling consumption is 3.26 kWh/cycle, accounting for only 18 % of the total energy consumption. Finally, in low-temperature scenarios, the electric -thermal collaborative strategy reduced the cost by 14.7 % and 9.2 % in the pure electric and hybrid modes, respectively. Thus, our approach significantly improves energy utilization and conversion efficiency, especially at low temperatures.
引用
收藏
页数:14
相关论文
共 50 条
  • [31] Environmental temperature effects on the energy flow of plug-in hybrid electric vehicles
    Zhang, Yan
    Yuan, Xiayi
    Duan, Lian
    Xu, Yanghui
    Lan, Fengchong
    JOURNAL OF POWER SOURCES, 2021, 506
  • [32] A collaborative energy management strategy based on multi-agent reinforcement learning for fuel cell hybrid electric vehicles
    Xiao, Yao
    Fu, Shengxiang
    Choi, Jongwoo
    Zheng, Chunhua
    2023 IEEE 98TH VEHICULAR TECHNOLOGY CONFERENCE, VTC2023-FALL, 2023,
  • [33] Braking energy regeneration control of a fuel cell hybrid electric bus
    Zhang, Junzhi
    Lv, Chen
    Qiu, Mingzhe
    Li, Yutong
    Sun, Dongsheng
    ENERGY CONVERSION AND MANAGEMENT, 2013, 76 : 1117 - 1124
  • [34] PSO algorithm-based optimal power flow control of fuel cell/supercapacitor and fuel cell/battery hybrid electric vehicles
    Hegazy, Omar
    Van Mierlo, Joeri
    Barrero, Ricardo
    Omar, Noshin
    Lataire, Philippe
    COMPEL-THE INTERNATIONAL JOURNAL FOR COMPUTATION AND MATHEMATICS IN ELECTRICAL AND ELECTRONIC ENGINEERING, 2013, 32 (01) : 86 - 107
  • [35] Energy Management in Plug-In Hybrid Electric Vehicles: Preheating the Battery Packs in Low-Temperature Driving Scenarios
    Han, Jie
    Khalatbarisoltani, Arash
    Yang, Yalian
    Hu, Xiaosong
    IEEE TRANSACTIONS ON INTELLIGENT TRANSPORTATION SYSTEMS, 2024, 25 (02) : 1978 - 1991
  • [36] Performance Analysis of Electric Vehicles with a Fuel Cell-Supercapacitor Hybrid System
    Armenta-Deu, Carlos
    Arenas, Alejandro
    ENG, 2023, 4 (03): : 2274 - 2292
  • [37] Topology Comparison and Sensitivity Analysis of Fuel Cell Hybrid Systems for Electric Vehicles
    Li, Mince
    Yu, Pengli
    Wang, Yujie
    Sun, Zhendong
    Chen, Zonghai
    IEEE TRANSACTIONS ON TRANSPORTATION ELECTRIFICATION, 2023, 9 (04) : 5111 - 5121
  • [38] Two-Stage Energy Management Control of Fuel Cell Plug-In Hybrid Electric Vehicles Considering Fuel Cell Longevity
    Geng, Bo
    Mills, James K.
    Sun, Dong
    IEEE TRANSACTIONS ON VEHICULAR TECHNOLOGY, 2012, 61 (02) : 498 - 508
  • [39] Design methodology of hybrid electric vehicle energy sources: Application to fuel cell vehicles
    X. Liu
    D. Diallo
    C. Marchand
    International Journal of Automotive Technology, 2011, 12
  • [40] Sizing of Fuel Cell - Ultracapacitors Hybrid Electric Vehicles Based on the Energy Management Strategy
    Dominguez, Ricardo
    Solano, Javier
    Jacome, Andres
    2018 IEEE VEHICLE POWER AND PROPULSION CONFERENCE (VPPC), 2018,