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首页> 外文期刊>Journal of Sound and Vibration >Ideal tooth profile modifications for improving nonlinear dynamic response of planetary gear trains
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Ideal tooth profile modifications for improving nonlinear dynamic response of planetary gear trains

机译:改善行星齿轮训练的非线性动力响应的理想齿形改造

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The ultimate goal in this study is to investigate the effects of tooth profile modifications (TPMs) on PGTs by performing parametric studies. For this purpose, firstly a nonlinear planetary gear dynamics model with time-varying stiffness is introduced. A time-varying stiffness function is included into the analysis by using loaded static transmission error (LSTE) for sun-planet and ring-planet gear meshes. In this analysis the computationally calculated values of LSTE are used; however, if an experimentally measured LSTE can be used, it will include all gear errors that exist in the gear pair, as well as time-varying mesh stiffness. Therefore, when this method is used with experimentally measured LSTE for dynamic modeling of planetary gear trains, one does not require any additional computational tool to estimate the time-varying mesh stiffness parameter. A drive-train simulation tool (Transmission3D), which combines analytical contact mechanics solutions with FE effectively, is used for verification purposes. The validity of the proposed model is shown by comparisons of the dynamic response of the proposed model with the response obtained through Transmission3D on an example PGT. A wide frequency range is selected to cover superharmonics of the natural frequencies in order to verify the accuracy of the dynamic model for speed ranges lower than the natural frequencies of the system, which are often encountered in practical applications. Harmonic balance method (HBM) is used to obtain the nonlinear algebraic equations of motion in frequency domain, which are solved by using Newton's method with arc length continuation. Parametric studies are performed by employing the mathematical model suggested important outcomes for application of TPMs in PGTs. The relationships between the distinct modal characteristics of PGTs and effectivity of TPMs are investigated in detail, leading to interesting outcomes. Moreover, different sensitivity characteristics are observed for linear and parabolic modification schemes. These outcomes; along with further evaluations on other aspects of design such as load intervals during operation, manufacturing tolerances, wear on gears, etc.; can be used in design guidelines for PGTs. (C) 2021 Elsevier Ltd. All rights reserved.
机译:本研究的最终目标是通过进行参数研究,研究齿廓修形(TPMs)对PGT的影响。为此,首先建立了时变刚度非线性行星齿轮动力学模型。通过对太阳行星和环形行星齿轮啮合的加载静态传动误差(LSTE),将时变刚度函数纳入分析。在该分析中,使用了LSTE的计算值;然而,如果可以使用实验测量的LSTE,它将包括齿轮副中存在的所有齿轮误差,以及时变啮合刚度。因此,当该方法用于行星轮系动力学建模的实验测量LSTE时,不需要任何额外的计算工具来估计时变啮合刚度参数。传动系仿真工具(Transmission3D)将分析接触力学解决方案与有限元有效结合,用于验证目的。通过将所提出模型的动态响应与通过示例PGT上的Transmission3D获得的响应进行比较,证明了所提出模型的有效性。选择一个较宽的频率范围来覆盖固有频率的超谐波,以验证动态模型在低于系统固有频率的速度范围内的准确性,这在实际应用中经常遇到。采用谐波平衡法(HBM)在频域内求解非线性代数运动方程组,并采用弧长延拓牛顿法求解。参数研究是通过采用数学模型进行的,该数学模型为胎压监测系统在PGT中的应用提供了重要结果。详细研究了PGT的不同模态特征与胎压监测系统有效性之间的关系,得出了有趣的结果。此外,对于线性和抛物线修正格式,观察到了不同的灵敏度特性。这些成果;以及对设计其他方面的进一步评估,如运行期间的负载间隔、制造公差、齿轮磨损等。;可用于PGT的设计指南。(c)2021爱思唯尔有限公司保留所有权利。

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