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Optimizing interlayer and coated film thickness for minimum stress distribution under Elastohydrodynamic Lubrication condition

机译:弹性流动性润滑条件下的最小应力分布优化层间和涂层膜厚度

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Surface of engineering components like valves, bearing are routinely subjected to contact loading, where large stresses are applied over highly localized area and result in failure of components. In recent years, the technique improving sliding performances have progressed by using coated film and interlayer possessing superior tribological properties. These techniques are often used under severe condition such as Elastohydrodynamic Lubrication (EHL) operating condition. In this work, an optimum design for coated film with an interlayer is analyzed by using a two-dimensional numerical analysis. The bond strength of the coating/substrate and interlayer/coating is one of the important properties of the coating system and therefore it is essential to study the stress distribution and contact width with different ratio of young's modulus Two-dimensional model have been created with substrate only. Contact analysis have been performed with circle on flat plate both being deformable. Optimum young's modulus ratio of coating and interlayer material have been found. Using this particular optimum young's modulus ratio optimum interlayer thickness have been found for which stress generated is minimum.
机译:阀门等工程部件表面,轴承常规进行接触载荷,其中大应力在高度局部区域上施加并导致组件的失效。近年来,通过使用具有卓越的摩擦学特性的涂层膜和中间层,通过涂覆薄膜和中间层进行了改善滑动性能的技术。这些技术通常在严重的条件下使用,例如弹性动力学润滑(EHL)操作条件。在这项工作中,通过使用二维数值分析分析具有中间层的涂膜的最佳设计。涂层/基材和中间层/涂层的粘合强度是涂层系统的重要性质之一,因此必须研究具有基板的杨氏模量二维模型不同比例的应力分布和接触宽度只要。在平板上进行接触分析,均可变形。已经找到了最佳的杨氏模量比,已发现涂层和层间材料。使用这种特殊的最佳杨氏模量比已经找到了最佳层间厚度,因此产生的应力最小。

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