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Design and optimization of the in-wheel motor driving electric vehicle based on the vibration energy transmission

机译:基于振动能量传动的轮内电动机驱动电动车的设计与优化

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In order to solve the problems of the increasing unsprung mass and the influence of the road excitation on the in-wheel motor (IWM), this paper puts forward two kinds of improved topology schemes. The bond graph (BG) and mathematical models of original and improved topological schemes are developed by using the BG theory. Based on the mathematical model, the final topology scheme is determined by the analysis of vibration energy transfer characteristics for the three schemes. It is further proved that the vibration energy analysis method is effective and complete in revealing the change of the system force and motion through the comparison analysis of the three kinds of topology scheme related to vehicle force and ride comfort index of motion variable. Furthermore, the optimal design is carried out for the determined topology scheme, which is aimed at minimum vibration energy delivered to the vehicle body. The comparison results before and after optimization show that: after optimization, the vibration energy delivered to the vehicle body has significantly decreased in the whole frequency range, and the vibration energy delivered to other components also decreased, which proved the correctness of the optimization method; and the comparison results of ride comfort index before and after optimization validate the effectiveness of the parameter optimization design based on the energy method. Finally, a structure design is provided based on the determined topology scheme. This paper provides an idea and method for the vibration suppression of the IWN driving electric vehicle (EV), while it can also provide some theoretical guidance for the design and optimization of the IWN driving EV.
机译:为了解决不断增长的难以置的难以造成的难以置信的问题和对车轮励磁的影响(IWM),本文提出了两种改进的拓扑方案。通过使用BG理论开发了原始和改进拓扑方案的键合图(BG)和数学模型。基于数学模型,最终拓扑方案是通过对三种方案的振动能量传递特性进行分析来确定的。进一步证明,振动能量分析方法是有效且完整地揭示了系统力和运动的变化,通过与车辆力量相关的三种拓扑方案的比较分析和运动变量的舒适指数的比较分析。此外,对于所确定的拓扑方案进行最佳设计,其瞄准输送到车身的最小振动能量。优化前后的比较结果表明:优化后,输送到车身的振动能量在整个频率范围内显着降低,输送到其他部件的振动能量也降低,这证明了优化方法的正确性;优化前后乘坐舒适指数的比较结果验证了基于能量法的参数优化设计的有效性。最后,基于所确定的拓扑方案提供结构设计。本文提供了IWN驾驶电动车辆(EV)的振动抑制的想法和方法,而它也可以为IWN驱动EV的设计和优化提供一些理论指导。

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