首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part C. Journal of mechanical engineering science >Lubrication analysis and sub-surface stress field of an automotive differential hypoid gear pair under dynamic loading
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Lubrication analysis and sub-surface stress field of an automotive differential hypoid gear pair under dynamic loading

机译:汽车差速器准双曲面齿轮副在动态载荷下的润滑分析和亚表面应力场

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摘要

Film thickness and sub-surface stress distribution in a highly loaded automotive differential hypoid gear pair are examined. A 4-Degree of Freedom torsional gear dynamics model, taking into account the torsional stiffness of the pinion and the gear shafts, is used in order to evaluate the contact load, the surface velocities and the contact radii of curvature of the mating teeth during a full meshing cycle. The torsional gear dynamics model takes into account both the geometric non-linearities of the system (backlash non-linearity) as well as the time varying properties (contact radii, meshing stiffness) and the internal excitations caused by geometrical imperfections of the teeth pair (static transmission error). The input torque used for the study of the film thickness and the sub-surface stress distribution corresponds to the region after the main resonance, where no teeth separation occurs. The contact conditions predicted by the gear dynamics are used as the input for the elastohydrodynamic elliptical point contact analysis. The lubricant film thickness, the corresponding pressure and surface traction distributions are obtained quasi-statically using the output load of the dynamic gear pair model. The variation of the induced sub-surface stress field is determined throughout a meshing cycle. Based on the sub-surface reversing orthogonal shear stresses, marginal differences occur when the viscous shear on the conjunctional surfaces are taken into account, which are mainly influenced by the applied pressure distribution. The numerical prediction of lubricant film thickness agrees reasonably well with that predicted using the well-established extrapolated oil film thickness formulae reported in the literature.
机译:检查了高负载汽车差速器准双曲面齿轮副中的薄膜厚度和亚表面应力分布。在考虑小齿轮和齿轮轴的扭转刚度的情况下,使用四自由度扭转齿轮动力学模型来评估接触载荷,表面速度和配合齿的曲率半径。完整的啮合周期。扭转齿轮动力学模型考虑了系统的几何非线性(齿隙非线性)以及时变特性(接触半径,啮合刚度)和由齿对的几何缺陷引起的内部激励(静态传输错误)。用于研究膜厚和次表面应力分布的输入扭矩对应于主共振后没有发生齿分离的区域。由齿轮动力学预测的接触条件用作弹性流体力学椭圆点接触分析的输入。使用动态齿轮对模型的输出负载准静态获得润滑剂膜的厚度,相应的压力和表面牵引力分布。在整个啮合周期中确定诱导的地下应力场的变化。基于子表面的反向正交剪切应力,当考虑接合面上的粘性剪切时会出现边际差异,这主要受所施加压力分布的影响。润滑油膜厚度的数值预测与文献中报道的使用公认的外推油膜厚度公式的数值预测相当吻合。

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