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Modeling the dynamics and lubrication of three-piece oil control rings in internal combustion engines

机译:内燃机三件式油控制环的动力学和润滑

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The oil control ring is the most critical component for oil consumption and friction from the piston system in internal-combustion engines. Three-piece oil control rings are widely used in Spark-Ignition (SI) engines. However, the dynamics and lubrication of three-piece oil control rings have not been thoroughly studied from the theoretical point of view. In this work, a model was developed to predict side sealing, bore sealing, friction, and asperity contact between rails and groove as well as between rails and the liner in a Three-Piece Oil Control Ring (TPOCR). The model couples the axial and twist dynamics of the two rails of TPOCR and the lubrication between two rails and the cylinder bore. Detailed rail/groove and rail/liner interactions were considered. The pressure distribution from oil squeezing and asperity contact between the flanks of the rails and the groove were both considered for rail/groove interaction. A mixed lubrication model with consideration of shear-thinning effects in multi-grade oils was applied for rail/liner lubrication. The interaction between the rails and expander/spacer was simplified as point forces. Design parameters of rails and expander as well as worn patterns of the running surfaces and flanks of two rails and the groove were taken into account in the model. Then the model predictions were illustrated using a standard TPOCR in SI engines. Dynamics of the rails, side sealing, bore sealing, and friction of TPOCR under different engine speeds and different design parameters were studied. At low engine speed, sudden variation of friction force can lift up the rails at the inside corner and may result in oil leak through rail/groove interface. At high engine speed, it is the sudden change of the inertia force at mid-stroke that may result in oil leak through rail/groove interface. Dynamics of the rails, specifically dynamic twist of the rails, was also found to have significant effects on the lubrication between rails and the liner by changing the widths of the convergent regions on the rail running surface where the hydrodynamic pressure is generated. As a result, oil transport, friction, and asperity contact between rails and the liner are also affected by the dynamic twist of the rails. Simple studies were also made to show the effects of expander ear angle, ring tension and the difference in oil transport between worn and new TPOCR. Asperity contact between rails and the liner as well as between rails and the groove were also studied and the results show consistency with the worn profiles of the rails.
机译:油控制环是内燃机中活塞系统的油耗和摩擦最关键的组件。三件式油控制环广泛用于火花点火(Si)发动机。然而,从理论的观点来看,没有彻底研究了三件式油控制环的动态和润滑。在这项工作中,开发了一种模型,以预测侧链,孔密封,摩擦和轨道和凹槽之间的粗糙接触以及在三件式油控制环(TPOCR)中的轨道和衬里之间的轨道。该模型耦合了TPOCR的两个轨道的轴向和扭曲动力学和两个轨道和气缸孔之间的润滑。考虑了详细的轨道/凹槽和轨道/衬里相互作用。从轨道和凹槽的侧面之间的油挤压和粗糙接触的压力分布均考虑用于轨道/槽相互作用。利用轨道/衬里润滑应用了考虑到多级油中的剪切稀疏效果的混合润滑模型。轨道和膨胀机/间隔件之间的相互作用被简化为点力。在模型中考虑了轨道和膨胀机的设计参数以及两个轨道的运行表面和侧面的覆盖图案以及凹槽。然后使用Si发动机的标准TPOCR来说明模型预测。研究了轨道,侧密封,孔密封和TPOCR下不同发动机速度和不同设计参数的摩擦动力学。在低发动机速度下,摩擦力的突然变化可以抬起内角的轨道,并且可能导致漏极通过轨道/槽界面。在高发动机速度下,中风中的惯性力突然变化,这可能导致通过轨道/槽界面漏油。还发现轨道的动力学,特别是轨道的动态扭曲,通过改变产生流体动力学压力的轨道运行表面上的收敛区域的宽度来对轨道和衬里之间的润滑具有显着影响。结果,轨道和衬里之间的油运输,摩擦和粗糙接触也受到轨道的动态扭曲的影响。还提出了简单的研究,以展示膨胀机耳角,环形张力和磨损和新TPOCR之间的石油运输差异的影响。还研究了轨道和衬里之间的粗糙接触以及轨道和轨道之间,结果显示了与轨道的磨损型材的一致性。

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