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Elastohydrodynamic lubrication of circular contacts at pure squeeze motion with non-Newtonian lubricants

机译:使用非牛顿润滑剂以纯挤压运动对圆形触点进行弹性流体动力润滑

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摘要

In this study a numerical method for general applications with non-Newtonian fluids is developed to investigate the pure squeeze motion in an isothermal elastohydrodynamic lubricated spherical conjunction under constant load conditions. The coupled transient modified Reynolds, the elasticity deformation, and the load equilibrium equations are solved simultaneously. Computer simulation is carried out to investigate the effects of flow rheology and operations on the relationship between the pressure and film thickness distributions. The simulation results reveal that the larger the flow index (n), the larger the film thickness and the smaller the maximum central pressure. This results in larger time needed to obtain maximum central pressure. In addition, the elastic deformation is more significant for the lower flow index. Therefore, the smaller the flow index becomes, the greater the difference between the hydrodynamic lubrication (HL) solution and elastohydrodynamic lubrication (EHL) solution becomes.
机译:在这项研究中,开发了一种用于非牛顿流体的一般应用的数值方法,以研究在恒定载荷条件下等温弹性流体动力润滑球形接头中的纯挤压运动。同时求解耦合瞬态修正的雷诺,弹性变形和载荷平衡方程。进行计算机模拟以研究流动流变学和操作对压力与膜厚分布之间关系的影响。仿真结果表明,流动指数(n)越大,膜厚越大,最大中心压力越小。这导致获得最大中心压力所需的时间更长。另外,对于较低的流动指数,弹性变形更为显着。因此,流动指数变得越小,流体动力润滑(HL)溶液和弹性流体动力润滑(EHL)溶液之间的差异就越大。

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