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A valve train friction and lubrication analysis model and its application in a cam/tappet wear study

机译:阀门火车摩擦和润滑分析模型及其在凸轮/挺杆磨损研究中的应用

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Wear of valve train components has increasingly become a problem in engine durability and reliability these days, due to the many design changes to meet the requirements of emission legislation and high performance of automotive engines. To minimize friction and the possibility of severe wear at the cam/tappet interface, the analysis at the design stage of tribological behavior of the cam/tappet pair is important and has become an important feature in valve train design. This paper describes the development of a valve train friction and lubrication analysis model and its application in a cam/tappet wear study. The model is based on established technology including kinematic and dynamic analyses, prediction of Hertzian stress of both line and elliptical contacts, the elastohydrodynamic lubrication (EHL) theory, a mixed-friction model which separately predicts hydrodynamic and boundary friction, and estimation of the average surface temperature using the flash temperature concept. Part of the results of a push-rod type valve train and its validation against experimental measurements of a motoring test have been reported. Further, the tribological performance of this valve train with a designed cam profile and with an assumed worn-cam profile were studied. From this study, it has been found that the surface temperature of the cam/tappet has an important effect on cam wear at high engine speeds. The predicted results show that once abnormal cam wear occurs, it will intend to spread towards cam nose. The developed computer model has proven to be a very useful tool in assessing and enhancing the performance of a given valve train design.
机译:由于许多设计变化,阀门列车组件越来越多地成为发动机耐用性和可靠性的问题,以满足排放立法的要求和汽车发动机的高性能。为了最大限度地减少摩擦和严重磨损在凸轮/挺杆界面的可能性,凸轮/挺杆对的摩擦学行为设计阶段的分析很重要,并且已成为阀门列车设计中的重要特征。本文介绍了阀门列车摩擦和润滑分析模型的开发及其在凸轮/挺杆磨损研究中的应用。该模型基于建立的技术,包括运动学和动态分析,预测线和椭圆触点的偏振应力,弹性流体润滑(EHL)理论,单独预测流体动力学和边界摩擦的混合摩擦模型,以及平均值的估计使用闪光灯温度概念的表面温度。已经报道了推杆式阀门列车的一部分结果及其针对电动试验的实验测量的验证。此外,研究了具有设计凸轮轮廓和具有假定凸轮轮廓的该阀门列车的摩擦学性能。从本研究开始,已经发现凸轮/挺杆的表面温度对高发动机速度的凸轮磨损具有重要作用。预测结果表明,一旦发生异常凸轮磨损,它将打算向凸轮鼻子传播。开发的计算机模型已被证明是评估和增强给定阀门列车设计的性能的非常有用的工具。

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