Internal voids as a stress reliever and palliative in fretting fatigue

Diego Erena, Jesús Vázquez, Carlos Navarro, Jaime Domínguez
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引用次数: 3

Abstract

Currently, additive manufacturing with metals is an increasingly popular technique that allows the manufacturing of pieces of difficult shapes, nearly impossible to make with other techniques. Usually, these shapes try to optimize the solid to have the same strength with a lower weight. The fatigue behavior of the material of the components manufactured with this technique is a field in development. On the other hand, fretting fatigue is a common type of fatigue where a “stress concentration” appears due to the contact between two components. There are some procedures used to increase fatigue life in this situation (shot peening, surface knurling, etc.). This paper tries to analyze the possible beneficial effect on fatigue life of introducing voids inside the material in components under fretting, which is feasible now thanks to additive manufacturing. The problem under study is, for now, a 2D simplification where a cylinder is in contact with a half plane and a normal constant load and a variable tangential load are applied. This geometry has been numerically simulated, introducing a circular hole below the surface. The effect of this hole is to make the contact more elastic, which decreases the stresses near the surface. This work analyses and compares the stress and strain fields and Smith-Watson-Topper multiaxial fatigue parameter in the areas sensitives to fretting with respect to a case with homogeneous material (no internal voids). Various configurations changing different parameters like size and position of the hole, friction coefficient and the size of the slip zone have been considered. The problem analyzed in this paper is two-dimensional, therefore there would be no need to use additive manufacturing in a real situation. However, the results obtained in this paper indicate that it could also work in 3D. Actually, it is in a real three-dimensional problem where the additive manufacturing would be necessary for the introduction of voids inside the material to improve fatigue life.

内部空隙作为压力的缓解和缓解烦躁的疲劳
目前,金属增材制造是一种日益流行的技术,它可以制造出用其他技术几乎不可能制造出的复杂形状的零件。通常,这些形状试图优化固体,使其具有相同的强度和较低的重量。用这种技术制造的部件材料的疲劳性能是一个有待开发的领域。另一方面,微动疲劳是一种常见的疲劳类型,其中由于两个组件之间的接触而出现“应力集中”。在这种情况下,有一些方法可以提高疲劳寿命(喷丸强化、表面滚花等)。本文试图分析在受微动的部件中引入材料内部空隙对疲劳寿命可能产生的有益影响,这在增材制造技术的应用下是可行的。目前所研究的问题是二维简化,其中圆柱体与半平面接触,施加法向恒定载荷和变切向载荷。这种几何形状已经进行了数值模拟,在表面下引入了一个圆孔。这个孔的作用是使接触更有弹性,从而减少了表面附近的应力。本文分析和比较了均匀材料(无内部空洞)对微动敏感区域的应力和应变场以及Smith-Watson-Topper多轴疲劳参数。考虑了改变不同参数(如孔的尺寸和位置、摩擦系数和滑移区大小)的各种配置。本文分析的问题是二维的,因此在实际情况下不需要使用增材制造。然而,本文得到的结果表明,它也可以在三维中工作。实际上,在一个真正的三维问题中,增材制造对于在材料内部引入空隙以提高疲劳寿命是必要的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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