Analysis and Design of Oil Cooling Structure in Motor Shaft of New Energy Vehicle

Xuejun Chen, Lin Ma, Jun Shen
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Abstract

Due to the small volume and high-power density of new energy vehicle motor, a large number of losses in the working process are converted into heat accumulation, resulting in temperature rise, which affects its efficient operation. Based on the heat conduction mechanism, four kinds of shaft oil cooling models with different structures are designed, which are comprehensively analysed by using the thermal-fluid-structure coupling analysis method, and the most effective cooling shaft oil cooling model is solved. The simulation is based on Ansoft Maxwell, and the loss results of each component of the motor are obtained, and the loss data is imported into the Fluent software for fluid-structure coupling analysis. By keeping the other variables consistent, the oil flow rate, pressure drop, and temperature rise of four kinds of in shaft oil cooling structures are analysed and compared. The experimental results show that the rectangle around type is the optimal oil cooling structure. In addition, based on the rectangle around oil duct model , the thermal-fluid-structure coupling analysis of the whole motor is carried out, and compared with the motor without cooling system. The temperature rise cloud diagram of the two motors shows that the former has more obvious heat dissipation effect than the latter, and effectively reduces the temperature rise of the motor, especially the rotor and permanent magnet parts, which verifies the rationality of the shaft cooling structure design.
新能源汽车电机轴油冷结构分析与设计
由于新能源汽车电机体积小、功率密度高,工作过程中大量损耗转化为热量积累,造成温升,影响其高效运行。基于热传导机理,设计了4种不同结构的轴油冷却模型,采用热-流-固耦合分析方法对其进行了综合分析,求解出最有效的冷却轴油冷却模型。仿真基于Ansoft Maxwell,得到电机各部件的损耗结果,并将损耗数据导入Fluent软件进行流固耦合分析。在保持其他变量一致的情况下,对四种轴内油冷却结构的油流量、压降和温升进行了分析比较。实验结果表明,矩形环绕式是最优的油冷却结构。此外,基于矩形围油道模型,对整个电机进行了热-流-固耦合分析,并与无冷却系统的电机进行了对比。两种电机的温升云图表明,前者的散热效果比后者更明显,有效降低了电机特别是转子和永磁部分的温升,验证了轴冷却结构设计的合理性。
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来源期刊
EEA - Electrotehnica, Electronica, Automatica
EEA - Electrotehnica, Electronica, Automatica Engineering-Electrical and Electronic Engineering
CiteScore
0.90
自引率
0.00%
发文量
26
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