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Lubrication of a flexible piston skirt conjunction subjected to thermo-elastic deformation: A combined numerical and experimental investigation

机译:润滑柔性活塞裙结合,经受热弹性变形:组合数值和实验研究

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摘要

The piston–cylinder conjunction accounts for nearly 50% of all the parasitic frictional losses in an IC engine of which the piston skirt accounts for nearly half of these losses. Consequently, part-circumferential short skirted compliant pistons have become a development trend, particularly for high-performance engines. Another trend has been the use of light weight moving parts to reduce inertial imbalance. This has led to the use of shorter lighter pistons constructed from lower density materials, such as aluminium. These higher power density pistons typically operate at elevated temperatures and undergo significant mechanical and thermal distortions due to the relatively high thermal expansion coefficients. As a result thermo-mechanical distortion of the skirt plays an important role in controlling the clearance gap between the skirt and the liner and makes the analysis, particularly skirt deformation, a computationally intensive procedure. This paper presents a semi-automatic methodology for the prediction of piston skirt thermo-mechanical deflection, which incorporates skirt deformation as well as piston crown compliant contribution to the skirt–liner clearance. This procedure is based on the creation of a compliance matrix and its intricate manipulation, significantly reducing the simulation run times. Integration of this approach with the numerical solution of Reynolds equation leads to an accurate prediction of film thickness. In addition, an array of ultrasonic sensors is used to directly measure the conjunctional lubricant film thickness in a non-invasive manner. The predictions and measurements show good conformance, an approach not hitherto reported in literature.
机译:活塞-气缸联轴器占IC发动机所有寄生摩擦损失的近50%,其中活塞裙占这些损失的近一半。因此,部分周向短裙形顺应性活塞已成为发展趋势,特别是对于高性能发动机。另一个趋势是使用轻质运动部件来减少惯性不平衡。这导致使用较短的较轻的活塞,这些活塞由较低密度的材料(如铝)制成。这些较高功率密度的活塞通常在高温下运行,并且由于相对较高的热膨胀系数而经受明显的机械和热变形。结果,裙部的热机械变形在控制裙部和衬里之间的间隙中起着重要作用,并且使得分析,特别是裙部变形成为计算密集的过程。本文介绍了一种半自动方法,用于预测活塞裙的热机械变形,该方法结合了裙变形和活塞顶顺应性对裙衬间隙的贡献。此过程基于一致性矩阵的创建及其复杂的操作,从而大大减少了仿真运行时间。将该方法与雷诺方程的数值解结合起来,可以准确预测膜厚。此外,超声传感器阵列用于以非侵入性方式直接测量联合润滑剂膜的厚度。预测和测量显示出良好的一致性,这是迄今为止文献中尚未报道的方法。

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