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Static and Dynamic Analysis of HCR Spur Gear Drive Using Finite Element Analysis

机译:基于有限元分析的HCR直齿轮传动静态和动态分析

摘要

This thesis investigates the characteristics of a gear system including contact stresses, bending stresses, and the transmission errors of gears in mesh. Gearing is one of the most critical components in mechanical power transmission systems. The contact stresses were examined using 2-D FEM models. The bending stresses in the tooth root were examined using a 3-D FEM model.udCurrent methods of calculating gear contact stresses use Hertz‘s equations, which were originally derived for contact between two cylinders. To enable the investigation of contact problems with FEM, the stiffness relationship between the two contact areas is usually established through a spring placed between the two contacting areas. This can be achieved by inserting a contact element placed in between the two areas where contact occurs. The results of the two dimensional FEM analyses from ANSYS are presented. These stresses were compared with the theoretical values. Both results agree very well. This indicates that the FEM model is accurate.udThis thesis also considers the variations of the whole gear body stiffness arising from the gear body rotation due to bending deflection, shearing displacement and contact deformation. Many different positions within the meshing cycle were investigated. Investigation of contact and bending stress characteristic of spur gears continues to be of immense attention to both engineers and researchers in spite of many studies in the past. This is because of the advances in the engineering technology that demands for gears with ever increasing load capacities and speeds with high reliability, the designers need to be able to accurately predict the stresses experienced the stresses experienced by the loaded gears.
机译:本文研究了齿轮系统的特性,包括接触应力,弯曲应力和齿轮在啮合中的传递误差。齿轮传动是机械动力传输系统中最关键的组件之一。使用2-FEM模型检查接触应力。使用3-D FEM模型检查了齿根中的弯曲应力。 ud计算齿轮接触应力的当前方法使用Hertz方程,该方程最初是为两个圆柱体之间的接触而导出的。为了研究有限元法的接触问题,通常通过放置在两个接触区域之间的弹簧来建立两个接触区域之间的刚度关系。这可以通过在两个发生接触的区域之间插入一个接触元件来实现。给出了ANSYS二维有限元分析的结果。将这些应力与理论值进行比较。两项结果非常吻合。这说明了有限元模型是正确的。 ud本文还考虑了由于弯曲偏斜,剪切位移和接触变形引起的齿轮箱旋转而引起的整个齿轮箱刚度的变化。研究了啮合周期内的许多不同位置。尽管过去进行了许多研究,但对正齿轮的接触和弯曲应力特性的研究仍然引起工程师和研究人员的极大关注。这是因为工程技术的进步要求齿轮具有越来越高的负载能力和速度以及更高的可靠性,因此设计人员需要能够准确地预测承受负载齿轮承受的应力的应力。

著录项

  • 作者

    Jena Pankaj Kumar;

  • 作者单位
  • 年度 2009
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