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Research on Tribological Performance of Cylinder Liner by Micro-Laser Surface Texturing

机译:微激光表面纹理化研究缸套的摩擦学性能

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Improvement of tribological performance and minimization of frictional losses is important for the friction pairs like cylinder liner-piston ring pair. Laser Surface Texturing (LST) technique was employed to improve the tribological performance by producing the micro-dimples on the cylinder liner surface in a light-duty diesel engine. An analytical mixed lubrication model of cylinder liner-piston ring was developed considering the surface roughness and the synergistic effect of multi micro-dimples, which was solved by modified multi-grid method, to simulate its tribological performance. The simulation results show that compared to lubrication model with ideal smooth surface, the presented model can most truly reflect the engine's tribological behavior in working cycle such as oil film thickness, oil film pressure, asperity contact pressure, and dimensionless friction force. Near the Top Dead Center (TDC) and the Below Dead Center (BDC) areas, the friction pair is under the mixed lubrication state, and the asperity contact plays a dominant role in balancing external load and the peak friction force appears. However, micro-dimples formed by LST can still bring some appropriate hydrodynamic lubrication effect. At the other areas except TDC and BDC, hydrodynamic lubrication effect is more obvious. It shows that the formed micro-dimples through micro-LST in the cylinder liner surface can make pronounced improvement in the lubrication behavior of cylinder liner-piston ring. The investigation results also show that the cylinder liner surface roughness has a great influence on the lubrication performances. The minimum oil ratio increases with the decreasing surface roughness of the cylinder liner, while the dimensionless friction force and friction power decrease. As the surface roughness changes from 0.6 μm to 0.2μm, the minimum oil ratio of the central part of the engine strokes is doubled, while the dimensionless friction force and friction power loss reduce by 50% at the vicinity of TDC.
机译:摩擦学性能的提高和摩擦损失的最小化对于像汽缸套-活塞环对这样的摩擦副来说很重要。激光表面纹理化(LST)技术用于通过在轻型柴油机的气缸套表面上产生微凹痕来改善摩擦性能。建立了汽缸套-活塞环的混合润滑分析模型,考虑了表面粗糙度和多微凹坑的协同作用,采用改进的多网格方法对其进行求解,以模拟其润滑性能。仿真结果表明,与具有理想光滑表面的润滑模型相比,该模型可以最真实地反映发动机在工作循环中的摩擦学行为,例如油膜厚度,油膜压力,粗糙接触压力和无量纲摩擦力。在上止点(TDC)和下止点(BDC)区域附近,摩擦副处于混合润滑状态,并且粗糙接触在平衡外部载荷中起主要作用,并且出现峰值摩擦力。然而,由LST形成的微凹坑仍然可以带来一些适当的流体动力润滑效果。在TDC和BDC以外的其他区域,流体动力润滑效果更为明显。结果表明,在气缸套表面通过微LST形成的微凹坑可以显着改善气缸套-活塞环的润滑性能。研究结果还表明,汽缸套表面粗糙度对润滑性能影响很大。最小油比随着气缸套表面粗糙度的降低而增加,而无因次摩擦力和摩擦力降低。当表面粗糙度从0.6μm变为0.2μm时,发动机冲程中心部分的最小油比增加了一倍,而无量纲的摩擦力和摩擦功率损耗在TDC附近降低了50%。

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