Eduardo Louback, Jigar N. Mistry, Peter Azer, B. Bilgin
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摘要

在设计电动汽车(EV)逆变器时,需要考虑的一个关键方面是其对振动载荷的动态响应。这些振动载荷的来源可以像驾驶车辆一样简单,其中悬架的位移产生振动,通过动力总成组件传递,激发逆变器。此外,随着电动汽车越来越多地采用集成驱动器,逆变器被放置在靠近电机或变速箱的地方,这可能会引起更多的振动。因此,进行模态分析以提取逆变器的模态振型和固有频率。理想情况下,设备不应受到其固有频率的振动,因为这可能导致共振,从而可能导致机械或操作故障。然而,通常不可能完全避免固有频率。在这种情况下,进行谐波分析以了解逆变器的峰值动态响应,并确保其在运行限制内。然而,关于如何对牵引逆变器进行振动分析的研究文献很少。因此,本文简要概述了机械振动的基本原理,重点介绍了大功率牵引逆变器的模态和谐波分析。结合振动理论,给出了利用ANSYS Mechanical软件进行的仿真结果,并利用仿真结果评估了逆变器在大范围振动载荷和激励频率下的动态性能。结果表明,该逆变器适合车载运行,尽管每种逆变器设计对振动载荷的响应不同,但本文所采用的结果和假设可以为今后的工作提供参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Dynamic Vibrational Analysis of a Traction Inverter Housing
One key aspect to be considered when designing an electric vehicle (EV) inverter is its dynamic response to vibrational loads. The source of these vibrational loads can be as simple as driving the vehicle, where the displacement of the suspension generates vibration that is transferred through the powertrain components, exciting the inverter. Additionally, with the increased adoption of integrated drives for EVs, the inverter is placed in close proximity to the motor or the gearbox, which can induce even more vibrations. Therefore, modal analysis is performed to extract the modal shapes and natural frequencies of the inverter. Ideally, an equipment should not be subjected to vibrations at its natural frequencies because that can lead to resonance, potentially causing a mechanical or operational failure. However, it is usually not possible to completely avoid the natural frequencies. In such cases, harmonic analysis is performed to understand the peak dynamic response of the inverter and ensure that it is within the operational limits. Nevertheless, only a few papers have discussed how to perform vibration analysis of traction inverters. Thus, this paper presents a brief overview of the fundamentals of mechanical vibrations, focusing on modal and harmonic analyses of a high-power traction inverter. Along with the vibration theory, simulation results carried out with ANSYS Mechanical are presented and used to assess the dynamic performance of the inverter under a wide range of vibration loads and excitation frequencies. The results indicate that the inverter is appropriate for in-vehicle operation and, although each inverter design presents different responses to vibrational loads, the results and assumptions adopted in this paper could serve as a reference for future work.
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