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Analysis and Optimization of Tooth Surface Contact Stress of Gears with Tooth Profile Deviations, Meshing Errors and Lead Crowning Modifications Based on Finite Element Method and Taguchi Method

机译:基于有限元法和塔布芯法的齿形偏差,啮合误差,啮合误差和铅冠改性的齿面接触应力分析与优化

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摘要

Based on the three-dimensional (3D) finite element method (FEM) and Taguchi method (TM), this paper analyzes the tooth surface contact stress (TSCS) of spur gears with three different influence factors: tooth profile deviations (TPD), meshing errors (ME) and lead crowning modifications (LCM), especially researching and analyzing the interactions between TPD, ME and LCM and their degree of influence on the TSCS. In this paper, firstly, a 3D FEM model of one pair of engaged teeth is modeled and the mesh of the contact area is refined by FEM software. In the model, the refined area mesh and the non-refined area mesh are connected by multi-point constraint (MPC); at the same time, in order to save the time of the FEM solution on the premise of ensuring the solution’s accuracy, the reasonable size of the refined area is studied and confirmed. Secondly, the TSCS analyses of gears with one single influence factor (other factors are all ideal) are carried out. By inputting the values of different levels of one single factor into the FEM model, especially using the real measurement data of TPD, and conducting the TSCS analysis under different torques, the influence degree of one single factor on TSCS is discussed by comparing the ideal model, and it is found that when the influence factors exist alone, each factor has a great influence on the TSCS. Finally, through TM, an orthogonal test is designed for the three influence factors. According to the test results, the interactions between the influence factors and the influence degree of the factors on the TSCS are analyzed when the three factors exist on the gear at the same time, and it is found that the TPD has the greatest influence on the TSCS, followed by the lead crowning modified quantity. The ME is relatively much small, and there is obvious interaction between ME and LCM. In addition, the optimal combination of factor levels is determined, and compared with the original combination of a gear factory, we see that the contact fatigue performance of the gear with the optimal combination is much better. The research of this paper has a certain reference significance for the control of TPD, ME and LCM when machining and assembling the gears.
机译:基于三维(3D)有限元方法(FEM)和TMUCHI方法(TM),本文分析了具有三种不同影响因素的齿轮齿轮齿面接触应力(TSCs):牙齿轮廓偏​​差(TPD),啮合错误(ME)和铅加剧修改(LCM),特别是在研究和分析TPD,ME和LCM之间的相互作用及其对TSC的影响程度。在本文中,首先,建模一对接合齿的3D FEM模型,并通过有限元软件改进接触区域的网格。在模型中,精制区域网格和非精制区域网格通过多点约束(MPC)连接;同时,为了节省有限元解的时间,以确保解决方案的准确性,研究并确认了精制区域的合理尺寸。其次,进行了一个单一影响因子(其他因素的齿轮TSCs分析)进行。通过将一个单个因子的不同级别的值输入有限元模型,特别是使用TPD的实际测量数据,并在不同的扭矩下进行TSCS分析,通过比较理想模型来讨论一个单一因素对TSC的影响程度并且发现当影响因素单独存在时,每个因素对TSC具有很大影响。最后,通过TM,设计了一个正交测试,用于三个影响因素。根据测试结果,当同时在齿轮上存在三个因素时,分析了影响因素与TSC的因素影响程度之间的相互作用,并发现TPD对此具有最大的影响TSCS,其次是引线冠状改性量。我比较小,我和LCM之间存在明显的互动。另外,确定因子水平的最佳组合,并与齿轮厂的原始组合进行比较,我们看到齿轮的接触疲劳性能与最佳组合更好。本文的研究对于加工和组装齿轮时,对TPD,ME和LCM的控制具有一定的参考意义。

著录项

  • 作者

    Qiang Li; Liyang Xie;

  • 作者单位
  • 年度 2020
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  • 原文格式 PDF
  • 正文语种 eng
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