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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part C. Journal of mechanical engineering science >Effect of two-body and three-body microcontacts under dry friction on contact characteristics
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Effect of two-body and three-body microcontacts under dry friction on contact characteristics

机译:双体和三体微接触在干式摩擦下对接触特性的影响

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摘要

The wear debris generation is unavoidable between the contact interfaces of moving components. In three-body contact instances, friction and wear occur at these separate contact points. This paper discusses the characteristics of the three-body contact comprising the abrasive particle in the interface compared to the two-body contact. The results show that for the wear debris or foreign particles present in the interface of the three-body contact, as external load initially increases, the external load is fully borne by the contact characteristics of particle-to-surface. Until the external load rises to a particular critical external load, it enters the real three-body situation, and the critical external load thus increases with an increase in the ratio of particle diameter to surface roughness. For two contact surfaces, the summit deformation is the elastoplastic deformation in a wide range of external loads. As the external load is lower than the critical external load value of the three-body contact, the contact surface is under the particle-to-surface two-body contact, and the elastic deformation of surface peak has the largest proportion of contact area. When the external load is higher than the critical external load value, the elastoplastic deformation contact area quickly dominates, and the total contact area ratio approximates to the surface-to-surface two-body contact situation. In the range of engineering surface roughness (σ?=?50–400?nm), at each external load and surface roughness, the total friction coefficient decreases with the increase in the ratio of particle diameter to surface roughness under the three-body contact, and this shows that the friction coefficient of surface-to-surface contact is larger than that of the sphere wear debris between the contact interface. At the same surface roughness, the friction coefficient may increase or decrease with an increase in the external load because it is determined by particle diameter. At the same ratio of particle diameter to surface roughness and external load, the friction coefficient increases with the decreasing surface roughness.
机译:在移动部件的接触界面之间不可避免磨损碎屑。在三个身体接触实例中,在这些单独的接触点发生摩擦和磨损。本文讨论了与双体接触相比,界面中包含磨料颗粒的三体触点的特性。结果表明,对于存在于三体触点的界面中存在的磨损碎片或外来颗粒,随着外部负荷最初增加,外部负载通过颗粒到表面的接触特性完全承担。在外部负荷上升到特定的关键外部负载之前,它进入真实的三体情况,因此临界外部负载随着粒径与表面粗糙度的比率的增加而增加。对于两个接触表面,峰值变形是各种外部负载中的弹性塑性变形。由于外部负荷低于三体触点的临界外部载荷值,接触表面位于颗粒到表面双体触点下,表面峰的弹性变形具有最大的接触面积比例。当外部负荷高于关键的外部负载值时,弹塑性变形接触面积迅速主导,并且总接触面积比近似于表面到表面的双体接触情况。在工程表面粗糙度(σ=Δ50-400≤nm)的范围内,在每个外部负载和表面粗糙度下,总摩擦系数随着三体触点下的粒径与表面粗糙度的比率的增加而降低并且,这表明表面对表面触点的摩擦系数大于接触界面之间的球体磨损的摩擦系数。在相同的表面粗糙度下,摩擦系数可以随着外部负载的增加而增加或减少,因为它由粒径决定。以相同的粒径与表面粗糙度和外部负荷的比率,摩擦系数随着表面粗糙度的降低而增加。

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