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1.西安交通大学机械工程学院, 710049,西安
2.西安交通大学西安市智能装备与控制重点实验室, 710049,西安
3.金属成形技术与重型装备全国重点实验室, 710049,西安
Received:31 October 2024,
Online First:31 December 2024,
Published:10 April 2025
移动端阅览
ZHAO Shengdun, ZHENG Zhenhao, DU Wei, et al. Research Progress on Efficient and Energy Saving Drive and Transmission Systems for Electric Vehicles[J]. Journal of Xi’an Jiaotong University, 2025, 59(4): 1-15.
ZHAO Shengdun, ZHENG Zhenhao, DU Wei, et al. Research Progress on Efficient and Energy Saving Drive and Transmission Systems for Electric Vehicles[J]. Journal of Xi’an Jiaotong University, 2025, 59(4): 1-15. DOI: 10.7652/xjtuxb202504001.
驱动与传动系统是电动汽车的重要组成部分,高效节能的驱动与传动系统对于提高电动汽车动力性、经济性以及操控稳定性具有重要的意义。从不同驱动方式原理及特点、多电机耦合方式分类和典型应用等方面出发,综述了国内外电动汽车驱动与传动结构的研究进展。从驱动方式原理及特点方面,分析总结了单电机驱动、单电机-变速器驱动、双电机耦合驱动以及多电机驱动系统的工作模式及优缺点,指出了单电机驱动系统存在电机效率低下、动力性欠缺以及节能性不足的问题,而多电机驱动凭借多种工作模式提高了驱动系统的效率、延长了续驶里程,是未来电动汽车驱动与传动结构的主要类型。从多电机耦合方式分类方面,详细总结了转速耦合、转矩耦合以及转速转矩耦合3种多电机耦合方式驱动基本原理及研究现状,明确提出速转矩耦合驱动系统在低速重载、高速轻载路况下都能够灵活的分配多台电机的功率来提高驱动系统的整体效率,综合性能最好。此外,总结了目前现有的轮毂电机系统、轮边电机系统以及单桥单电机+单桥双电机驱动系统,进一步分析表明未来的电动汽车驱动系统应朝着多动力源、一体化、机电耦合方向发展。该研究可为未来电动汽车驱动与传动系统的研发提供参考。
The drive and transmission system is a crucial component of electric vehicles. An efficient and energy-saving drive and transmission system plays a significant role in enhancing the power performance
economic efficiency
and handling stability of electric vehicles. The research advancements of the drive and transmission structure of electric vehicles
both domestically and internationally
are explored
focusing on the principles and characteristics of different driving modes
the classification of multi-motor coupling methods
and typical applications. Regarding the principles and characteristics of driving modes
the operating patterns
advantages
and disadvantages of single-motor drive
single-motor drive with transmission
dual-motor coupling drive
and multi-motor drive systems are analyzed and summarized
highlighting the challenges faced by the single-motor drive system
including low motor efficiency
inadequate power performance
and limited energy conservation. On the other hand
multi-motor drives are shown to enhance the efficiency of the drive system and extend the driving range through multiple working modes
making them the primary drive and transmission structure for future electric vehicles. In terms of the classification of multi-motor coupling methods
the fundamental principles and current research status of three multi-motor coupling methods
i.e. speed coupling
torque coupling
and speed-torque coupling
are summarized in detail
with the speed-torque coupling drive system being specifically recommended for its ability to dynamically allocate power from multiple motors
enhancing the overall efficiency of the drive system under low-speed heavy-load and high-speed light-load road conditions
thereby offering superior comprehensive performance. Additionally
existing hub motor systems
wheel-side motor systems
and single-bridge single-motor + single-bridge dual-motor drive systems are reviewed. Further analysis suggests that the future drive system of electric vehicles should transition towards multi-power sources
integration
and electromechanical coupling. This research serves a valuable reference for the development of drive and transmission systems of future electric vehicles.
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