Calculation of Time-Varying Mesh Stiffness of Internal Gears based on Precise Tooth Profile and Dynamic Analysis of Planetary Systems with Root Cracks

Dongjiang Cao, Fengwei Qin, Lisong Cao, Chang Hongjjie
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Abstract

The internal meshing spur gear pair is the research object, and the potential energy method is applied to calculate the time-varying meshing stiffness of the internal gear. The internal gear tooth profile is divided into two parts: involute and transition curves, and the gear tooth stiffness is calculated by numerical integration based on accurate tooth profile, which improves the calculation accuracy. Analyzed the influence of different crack size parameters on the stiffness of internal meshing gears. A coupled dynamic model of a planetary system with internal gear crack faults was established, and the influence of cracks on the dynamic response of the planetary system was studied using Zoom-FFT spectrum and cepstrum analysis methods. The simulation results show that as the crack parameter size increases, the mesh stiffness of the internal gear pair gradually weakens, and the periodic vibration impact of the planetary-internal gear pair is also more severe. Cepstrum analysis can easily capture weak fault characteristic frequency information in the system and discover their variation patterns. The research results can provide a theoretical basis for the state monitoring and fault diagnosis of gear systems with crack defects.
基于精确齿形的内齿轮时变啮合刚度计算和有齿根裂纹的行星系统动态分析
以内啮合正齿轮副为研究对象,采用势能法计算内齿轮的时变啮合刚度。将内齿轮齿廓分为渐开线和过渡曲线两部分,在精确齿廓的基础上通过数值积分计算齿轮齿面刚度,提高了计算精度。分析了不同裂纹尺寸参数对内啮合齿轮刚度的影响。建立了带有内齿轮裂纹故障的行星系统耦合动态模型,并利用 Zoom-FFT 频谱和倒频谱分析方法研究了裂纹对行星系统动态响应的影响。仿真结果表明,随着裂纹参数尺寸的增大,内齿轮副的啮合刚度逐渐减弱,行星-内齿轮副的周期性振动影响也更加严重。倒频谱分析可以轻松捕捉系统中的弱故障特征频率信息,并发现其变化规律。研究成果可为存在裂纹缺陷的齿轮系统的状态监测和故障诊断提供理论依据。
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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