An MPF method-based Torsional Vibration Analysis of RBHCC-driven PMSM Coupled System in comparison with SPWM Technique for EVs and HEVs Transmission

Rishiraj K. Thakur, R. Pindoriya, Rajeev Kumar, B. Rajpurohit
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Abstract

EVs and HEVs with complex power transmission mechanisms from the source (PMSM) to the load (live wheels) include coupled shafts of varied functionalities along with step-up and step-down gears, pulleys, couplers, and other intermediate elements based upon torque to speed gain requirement at the load. Due to the power electronics converter circuit, and stator winding, the driving techniques for Permanent Magnet Synchronous Motor (PMSM) have unavoidable torque ripples, and these fluctuations lead to mechanical anomalies like vibration, which become havoc at resonance. In the present study, a novel Random Band Hysteresis Current Control (RBHCC) is illustrated and its torsional vibrational signatures using an advanced Modal Participation Factor (MPF) based optimized lumped model technique is presented and also compared with the standard SPWM technique. The analytical and experimental results show a reduction in total vibration by 34% with an 18.75% reduction in mechanical vibration and a 39% reduction in Acoustic Noise in the proposed RBHCC technique compared to the SPWM technique, which has a positive mark on system reliability and power transmission efficiency. Analytical and experimental studies were performed on 1.07- kW, 4-poles, 36-slots, and 3-phase PMSM drive coupled with a 2.5 kW load DC generator.
基于MPF方法的rbhcc驱动PMSM耦合系统扭振分析,并与SPWM技术在电动汽车和混合动力汽车传动中的对比
具有从源(PMSM)到负载(活轮)的复杂动力传输机构的电动汽车和混合动力汽车包括各种功能的耦合轴,以及基于负载上的扭矩到速度增益要求的升压和降压齿轮、滑轮、耦合器和其他中间元件。由于电力电子变换器电路和定子绕组的存在,永磁同步电机的驱动技术不可避免地存在转矩脉动,而这些脉动会导致电机的振动等机械异常,并在谐振时造成严重破坏。本文介绍了一种新型的随机带滞后电流控制(RBHCC),利用一种先进的基于模态参与因子(MPF)的优化集总模型技术给出了RBHCC的扭转振动特征,并与标准SPWM技术进行了比较。分析和实验结果表明,与SPWM技术相比,RBHCC技术的总振动降低了34%,机械振动降低了18.75%,噪声降低了39%,对系统可靠性和动力传输效率有积极的影响。分析和实验研究了1.07 kW, 4极,36槽,三相PMSM驱动器与2.5 kW负载直流发电机耦合。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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