Heavy Duty Engine Piston Cooling Gallery Oil Filling Ratio Measurement and Comparison of Results With Simulation

Yu Chen, Shashank S. Moghe
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引用次数: 1

Abstract

Pistons for heavy duty diesel applications endure high thermal loads and therefore result in reduced durability. Pistons for such heavy duty applications are generally designed with an internal oil gallery — called the piston cooling gallery (PCG) — where the intent is to reduce the piston crown temperatures through forced convection cooling and thereby ensure the durability of the piston. One of the key factors influencing the efficiency of such a heat-transfer process is the volume fraction of oil inside the piston cooling gallery — defined as the filling ratio (FR) — during engine operation. As a part of this study, a motoring engine measurement system was developed to measure the piston filling ratio of an inline-6 production heavy duty engine. In this system, multiple high precision pressure sensors were applied to the piston cooling gallery and a linkage was designed and fabricated to transfer the piston cooling gallery oil pressure signal out of the motoring engine. This pressure information was then correlated with the oil filling ratio through a series of calibration runs with known oil quantity in the piston cooling gallery. This proposed method can be used to measure the piston cooling gallery oil filling ratio for heavy duty engine pistons. A preliminary transient Computational Fluid Dynamics (CFD) analysis was performed to identify the filling ratio and transient pressures at the corresponding transducer locations in the piston cooling gallery for one of the motoring test operating speeds (1200 RPM). A mesh dependency study was performed for the CFD analysis and the results were compared against those from the motoring test.
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重型发动机活塞冷却廊注油比测量与仿真结果比较
用于重型柴油应用的活塞承受高热负荷,因此导致耐久性降低。用于此类重型应用的活塞通常设计有一个内部油廊-称为活塞冷却廊(PCG) -其目的是通过强制对流冷却来降低活塞顶部温度,从而确保活塞的耐用性。影响这种传热过程效率的关键因素之一是发动机运行时活塞冷却廊内油的体积分数-定义为填充比(FR)。作为本研究的一部分,开发了一种发动机测量系统,用于测量直列6缸生产重型发动机的活塞填充率。该系统将多个高精度压力传感器应用于活塞冷却廊,并设计制造了一个连杆机构将活塞冷却廊油压信号传递到发动机外。然后,通过一系列的校准运行,在活塞冷却廊中已知的油量下,将该压力信息与充油比相关联。该方法可用于重型发动机活塞冷却廊充油比的测量。进行了初步的瞬态计算流体动力学(CFD)分析,以确定在一种测试运行速度(1200rpm)下活塞冷却廊中相应换能器位置的填充比和瞬态压力。为了进行CFD分析,进行了网格依赖性研究,并将结果与运动试验的结果进行了比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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