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MASS CONSERVING ELASTOHYDRODYNAMIC PISTON LUBRICATION MODEL WITH INCORPORATED CROWN LANDS

机译:包含不完整冠状结构的保质弹性水力活塞润滑模型

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This paper describes a comprehensive model of Elastohydrodynamic piston lubrication, incorporated the crown lands into solution domain to characterize the effect of crown-liner interactions on piston motion. Elastohydrodynamic Lubrication (EHL) analysis of a piston skirt-liner conjunction is in general a useful methodology for design analysis of pistons. The diameters of piston crown lands are much less than those of skirt and liner for typical piston designs. Therefore crown lands normally do not interact with liner under usual operating conditions and hence most of the researchers exclude crown lands from the EHL analysis and mainly focus on piston skirt. However, under some of the engine operating conditions piston crown lands play important role in the secondary dynamics and tribology aspects of pistons. During the thermodynamic cycle when piston is hot and cylinder liner is relatively colder, piston thermal expansion leads to crown-liner interaction, which necessitates EHL, asperity contact and wear considerations of piston crown along with piston skirt.The simulation methodology for piston EHL analysis uses a mass-conserving algorithm for the finite volume method solution of Reynolds equation, which is coupled to elasticity relations and Greenwood-Tripp asperity contact model. Elrod's mass conserving algorithm enables to model and analyze partially lubricated piston-liner interface by the input of oil supply and moreover rigorously handles cavitated zones, and takes into account piston ring grooves, piston cut-outs and unlubricated areas due to piston geometry.Results are presented from parametric studies that' show comparisons between the analyses of the models with piston skirt lubrication only and piston lubrication, which incorporates the crown lands to the EHL domain.
机译:本文介绍了一种弹性流体动力活塞润滑的综合模型,该模型将胎冠结合到溶液域中,以表征胎冠-衬套相互作用对活塞运动的影响。活塞裙衬套连接处的弹性流体动力润滑(EHL)分析通常是用于活塞设计分析的有用方法。对于典型的活塞设计,活塞顶环的直径比裙边和衬套的直径小得多。因此,在通常的工作条件下,胎冠凸肩通常不会与衬套相互作用,因此,大多数研究人员从EHL分析中排除了胎冠凸肩,而主要关注活塞裙。但是,在某些发动机工况下,活塞顶环在活塞的二次动力学和摩擦学方面起着重要作用。在热力循环中,当活塞变热且缸套相对较冷时,活塞的热膨胀会导致胎冠与缸套的相互作用,这需要EHL,与活塞裙边有关的活塞顶的粗糙接触和磨损方面的考虑。雷诺方程的有限体积方法解的质量守恒算法,该算法与弹性关系和格林伍德-特里普粗糙接触模型耦合。 Elrod的质量守恒算法可通过输入供油来建模和分析部分润滑的活塞-活塞界面,并且能够严格处理空化区域,并考虑到活塞环槽,活塞切口和由于活塞几何形状而产生的未润滑区域,结果是由参数研究得出的结果表明,仅使用活塞裙润滑的模型分析与将顶冠结合到EHL领域的活塞润滑之间的比较。

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