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Tribological contact analysis of a rigid ball sliding on a hard coated surface Part II: Material deformations, influence of coating thickness and Young's modulus

机译:在硬涂层表面上滑动的硬球的摩擦学接触分析第二部分:材料变形,涂层厚度和杨氏模量的影响

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Material deformations and the influence of coating thickness and elastic modulus were analysed by three-dimensional finite element method (FEM) modelling on microlevel, by stress, strain, and displacement computer simulations and by experimental studies with a scratch tester. The studied tribological contact was a diamond ball sliding with increasing load on a thin titanium nitride (TiN) coating on a flat steel substrate. The ball was modelled as rigid, the coating was linearly elastic, and the steel substrate was elastic-plastic, taking into account strain hardening effects. It was shown that a thin TiN ceramic coating on a steel substrate has only a very slight effect on friction and on the plastic deformations (i.e., the groove formation) in the surface, but changes considerably the stress pattern at the surface. The stress simulations showed how a thicker hard coating on a soft substrate has a better load-carrying capacity that a thinner one. Higher tensile stresses at the coating/substrate interface increase the risk for interface cracks and delamination of the thicker coating. A stiffer hard coating on a soft substrate has a better load-carrying capacity than a more elastic one. The stiffer coating will accommodate higher tensile stresses with the same indentation depth compared to a more elastic one. The results show that much more attention should be given to optimizing the elastic properties of the coating than previously has been done. In many cases, it can be much more effective to improve the wear resistance of the coated surface by focusing on the elastic modulus of the coating than changing the coating thickness. (c) 2005 Elsevier B.V. All rights reserved.
机译:通过三维有限元模型(FEM)在微观水平上进行建模,通过应力,应变和位移计算机模拟以及使用划痕测试仪进行的实验研究,分析了材料变形以及涂层厚度和弹性模量的影响。所研究的摩擦学接触是在扁平钢基底上的薄氮化钛(TiN)涂层上以增加的负荷滑动的金刚石球。考虑到应变硬化效果,将球建模为刚性球,涂层为线性弹性,钢基底为弹塑性。已经表明,在钢基底上的薄TiN陶瓷涂层对表面上的摩擦和塑性变形(即,沟槽形成)仅具有非常小的影响,但是显着地改变了表面上的应力图案。应力模拟表明,较软的基材上较厚的硬涂层具有更好的承载能力。涂层/基材界面处较高的拉应力会增加界面开裂和较厚涂层分层的风险。与柔软的基材相比,柔软的基材上较硬的硬质涂层具有更好的承载能力。与硬度更高的涂层相比,硬度更高的涂层将在相同的压痕深度下承受更高的拉伸应力。结果表明,与以前相比,应更加注意优化涂层的弹性。在许多情况下,通过关注涂层的弹性模量,与改变涂层厚度相比,提高涂层表面的耐磨性可能更为有效。 (c)2005 Elsevier B.V.保留所有权利。

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