Thermal Management of Electrified Propulsion System for Low-Carbon Vehicles

被引:0
作者
Bo Li
Huang Kuo
Xuehui Wang
Yiyi Chen
Yangang Wang
David Gerada
Sean Worall
Ian Stone
Yuying Yan
机构
[1] University of Nottingham,Faculty of Engineering
[2] Dynex Semiconductor Limited,undefined
[3] GKN Driveline Ltd,undefined
[4] Pentagon S,undefined
来源
Automotive Innovation | 2020年 / 3卷
关键词
Thermal management; Electrified powertrain; Efficient cooling and heating; Electric machine and control; High power electronics;
D O I
暂无
中图分类号
学科分类号
摘要
An overview of current thermal challenges in transport electrification is introduced in order to underpin the research developments and trends of recent thermal management techniques. Currently, explorations of intelligent thermal management and control strategies prevail among car manufacturers in the context of climate change and global warming impacts. Therefore, major cutting-edge systematic approaches in electrified powertrain are summarized in the first place. In particular, the important role of heating, ventilation and air-condition system (HVAC) is emphasised. The trends in developing efficient HVAC system for future electrified powertrain are analysed. Then electric machine efficiency is under spotlight which could be improved by introducing new thermal management techniques and strengthening the efforts of driveline integrations. The demanded integration efforts are expected to provide better value per volume, or more power output/torque per unit with smaller form factor. Driven by demands, major thermal issues of high-power density machines are raised including the comprehensive understanding of thermal path, and multiphysics challenges are addressed whilst embedding power electronic semiconductors, non-isotropic electromagnetic materials and thermal insulation materials. Last but not least, the present review has listed several typical cooling techniques such as liquid cooling jacket, impingement/spray cooling and immersion cooling that could be applied to facilitate the development of integrated electric machine, and a mechanic-electric-thermal holistic approach is suggested at early design phase. Conclusively, a brief summary of the emerging new cooling techniques is presented and the keys to a successful integration are concluded.
引用
收藏
页码:299 / 316
页数:17
相关论文
共 218 条
  • [1] Lajunen A(2018)Recent developments in thermal management of electrified powertrains IEEE Trans. Veh. Technol. 67 11486-11499
  • [2] Yang Y(2015)Status and development of electric vehicle integrated thermal management from BTM to HVAC Appl. Therm. Eng. 88 398-409
  • [3] Emadi A(2018)Investigation on an integrated thermal management system with battery cooling and motor waste heat recovery for electric vehicle Appl. Therm. Eng. 136 16-27
  • [4] Zhang T(2014)Thru-life impacts of driver aggression, climate, cabin thermal management, and battery thermal management on battery electric vehicle utility J. Power Sources 259 262-275
  • [5] Gao C(2016)A critical review of thermal management models and solutions of lithium-ion batteries for the development of pure electric vehicles Renew. Sustain. Energy Rev. 64 106-128
  • [6] Gao Q(2020)Thorough state-of-the-art analysis of electric and hybrid vehicle powertrains: topologies and integrated energy management strategies Renew. Sustain. Energy Rev. 119 109596-261
  • [7] Wang G(2019)Integrated energy and thermal management for electrified powertrains Energies 12 2058-654
  • [8] Liu M(2016)Influence of the heating system on the fuel consumption of a hybrid electric vehicle Energ. Convers. Manage. 129 250-329
  • [9] Guo Y(2014)Analysis and optimization of hybrid electric vehicle thermal management systems J. Power Sources 247 643-764
  • [10] Xiao C(2012)Computational simulation methods for vehicle thermal management Appl. Therm. Eng. 36 325-1188