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On a Simplified Model for Numerical Simulation of Wear During Dry Rolling Contacts

机译:干滚动接触磨损数值模拟的简化模型

摘要

We deal with rolling contact between quasi-identical bodies. As normal and tangential problems are uncoupled in that case, the simplified approach to determine contact area and normal loading distribution for rolling contact problems is presented in Sec. 2. In Sec. 3, the solution of the tangential problem is used to update the rolling profiles and enables to follow the wear evolution versus time. The method used to solve the normal problem is called semi-Hertzian approach with diffusion. It allows fast determination of the contact area for non-Hertzian cases. The method is based on the geometrical indentation of bodies in contact: The contact area is found with correct dimensions but affected by some irregularities coming from the curvatureu27s discontinuity that may arise during a wear process. Diffusion between independent stripes smoothes the contact area and the pressure distribution. The tangential problem is also solved on each stripe of the contact area using an extension of the simplified approach developed by Kalker and called FASTSIM. At the end, this approach gives the dissipated power distribution in the contact during rolling and this power is related to wear by Archardu27s law. This enables the profiles of the bodies to be updated and the evolution of the geometry to be followed.
机译:我们处理准相同物体之间的滚动接触。由于在这种情况下法向和切向问题不耦合,因此在Sec中提供了确定滚动接触问题的接触面积和法向载荷分布的简化方法。 2.在如图3所示,切向问题的解决方案用于更新滚动轮廓,并能够跟踪磨损随时间的变化。用于解决正常问题的方法称为带扩散的半赫兹方法。它可以快速确定非赫兹病例的接触面积。该方法基于接触物体的几何压痕:发现接触区域具有正确的尺寸,但受到一些不规则性的影响,这些不规则性是由于在磨损过程中可能产生的曲率不连续性引起的。独立条纹之间的扩散使接触面积和压力分布变得平滑。切线问题还通过使用Kalker开发的称为FASTSIM的简化方法的扩展解决了接触区域的每个条纹。最后,该方法给出了滚动过程中触点中的耗散功率分布,并且该功率与Archard的定律有关。这样可以更新实体的轮廓,并遵循几何形状的演变。

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