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Modeling the root causes of engine friction loss: Transient elastohydrodynamics of a piston subsystem and cylinder liner lubricated contact

机译:建模发动机摩擦损失的根本原因:活塞子系统和气缸套润滑触点的瞬态弹性流体力学

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In this study, the contact conjuction of a piston ring-pack and rough out-of-round cylinder is modeled to analyze the sources of engine friction loss. To achieve this objective, computational tools that combine tribology and dynamics are used to evaluate the ring con-formability, ring modal behavior, skirt secondary dynamics, transient elastohydrodynamics of the ring liner contact, skirt liner contact, asperity contact analysis to determine the boundary friction, ring-liner wear, and gas blowby. Initially, an iterative technique is developed to solve the combined Reynolds equation and equation of rheology. Discretized forms of these equations are iterated to determine the error convergence for the computed pressure. Cyclic variations in lubrication performance parameters, such as the minimum film thickness, film hydrodynamic pressure, asperity contact pressure, wear rate, gas blowby, and oil consumption, are computed and analyzed using separate plots.
机译:在这项研究中,对活塞环组件和粗糙的不圆缸的接触接合进行了建模,以分析发动机摩擦损失的来源。为了实现此目标,使用了结合了摩擦学和动力学的计算工具来评估环的可塑性,环的模态行为,裙边的二次动力学,环衬套接触的瞬态弹性流体力学,裙衬套接触,粗糙接触分析以确定边界摩擦,衬套磨损和漏气。最初,开发了一种迭代技术来求解组合的雷诺方程和流变方程。迭代这些方程式的离散形式,以确定计算压力的误差收敛。使用单独的图来计算和分析润滑性能参数中的循环变化,例如最小膜厚,膜流体动力压力,粗糙接触压力,磨损率,漏气和油耗。

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