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Influence of Gear Web and Macro Geometry on Mesh Misalignment

机译:齿轮网和宏观几何对网眼错位的影响

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In an automotive transmission system, gear mesh misalignment implies the shift in the position of the meshing surfaces. Misalignment at the mesh results in non-uniform load distribution leading to gear failure, increased noise and thus affects the transmission performance. In general, misalignment along the line of action (MLOA) of 0-5 mrad is common in the gear meshes of automotive transmissions. Major factors contributing to mesh misalignment are deflections of various elastic components in the transmission like shaft, gear web, bearing, housing etc. Contribution from other factors include clearance between the components, temperature gradient and manufacturing process limitations. Different approaches for compensating gear mesh misalignment involves control over the above factors at design and manufacturing stages.This paper focuses on three different approaches for compensating MLOA in the design stage. As today’s transmission should be lighter to have more power to weight ratio, gear web design plays a significant role in controlling deflection at the gear mesh. Various web designs are analyzed using 3D FEA tool (GSAM) which depicts the influence of different web shapes on MLOA. Influence of helix angle and pressure angle on MLOA is studied using design of experiments (DoE) approach. As the MLOA cannot be eliminated completely by design of web and macro geometry, approach of micro geometry to compensate for the remained MLOA is described.This study provides an understanding on importance of gear web designs, gear macro geometry parameters and gear micro geometry technique to compensate for mesh misalignment in geared system.
机译:在汽车传输系统中,齿轮网格错位意味着啮合表面的位置的偏移。网格中的未对准导致非均匀的负载分布,导致齿轮故障,增加噪声,从而影响传输性能。通常,沿着0-5 mrad的动作线(MLOA)的未对准在汽车传输的齿轮网中很常见。有助于网格错位的主要因素是轴,齿轮幅,轴承,壳体等各种弹性部件的偏转。来自其他因素的贡献包括组件之间的间隙,温度梯度和制造过程限制。补偿齿轮网格错位的不同方法涉及在设计和制造阶段的上述因素中的控制。本文侧重于三种不同的方法来补偿设计阶段的MLOA。随着当今的变速器应更轻,以更高的重量比,齿轮网设计在控制齿轮网的偏转方面发挥着重要作用。使用3D FEA工具(GSAM)分析各种网页设计,其描绘了不同幅材形状对MLOA的影响。使用实验设计(DOE)方法研究了螺旋角度和压力角对MLOA的影响。由于MLOA不能完全通过设计纤维网和宏观几何形状来消除,因此描述了微观几何来补偿剩余的MLOA的方法。本研究提供了齿轮网设计,齿轮宏几何参数和齿轮微观几何技术的重要性补偿齿轮系统中的网格未对准。

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