Elastic and Elastoplastic Contact Mechanics of Concentrated Coated Contacts

P. Johns-Rahnejat, N. Dolatabadi, Homer Rahnejat
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Abstract

Machines operate under increasingly harsher contact conditions, causing significant wear and contact fatigue. Sub-surface stresses are responsible for the premature contact fatigue of rolling element bearings, meshing gears, and cam–follower pairs. Surface protection measures include hard, wear-resistant coatings. Traditionally, contact integrity has been predicted using classical Hertzian contact mechanics. However, the theory is only applicable when the contact between a pair of ellipsoidal solids of revolution may be considered as a rigid indenter penetrating a semi-infinite elastic half-space. Many coatings act as thin bonded elastic layers that undergo considerably higher pressures than those predicted by the classical theory. Furthermore, inelastic deformation of bonded solids can cause plastic flow, work-hardening, and elastoplastic behaviour. This paper presents a comprehensive, integrated contact mechanics analysis that includes induced sub-surface stresses in concentrated counterformal finite line contacts for all the aforementioned cases. Generated pressures and deformation are predicted for hard coated surfaces, for which there is a dearth of relevant analysis. The contact characteristics, which are of particular practical significance, of many hard, wear-resistant advanced coatings are also studied. The paper clearly demonstrates the importance of using efficient semi-analytical, detailed holistic contact mechanics rather than the classical idealised methods or empirical numerical ones such as FEA. The novel approach presented for the finite line contact of thin-layered bonded solids has not hitherto been reported in the open literature.
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集中涂层触头的弹性和弹塑性接触力学
机器在越来越恶劣的接触条件下运行,造成严重磨损和接触疲劳。表面下应力是造成滚动轴承、啮合齿轮和凸轮从动件过早接触疲劳的原因。表面保护措施包括坚硬的耐磨涂层。传统上,接触完整性是通过经典的赫兹接触力学来预测的。然而,该理论仅适用于将一对旋转椭圆固体之间的接触视为刚性压头穿透半无限弹性半空间的情况。许多涂层作为薄的粘合弹性层,承受的压力比经典理论预测的压力要高得多。此外,粘结固体的非弹性变形会导致塑性流动、加工硬化和弹塑性行为。本文提出了一种全面、综合的接触力学分析方法,其中包括针对上述所有情况的集中反形式有限线接触中的诱导次表面应力。本文对硬涂层表面产生的压力和变形进行了预测,目前还缺乏相关的分析。此外,还研究了许多硬质耐磨先进涂层的接触特性,这些特性具有特别重要的实际意义。论文清楚地表明了使用高效的半分析、详细的整体接触力学,而不是经典的理想化方法或有限元分析等经验数值方法的重要性。针对薄层结合固体的有限线接触所提出的新方法在公开文献中尚未见报道。
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