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Principal Stress Ratio Effect at Residual Stress Determination Utilizing the Variation of Indentation Hardness

机译:利用压痕硬度的变化确定残余应力时的主应力比效应

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The determination of residual stresses is an important issue when it comes to material failure analysis. The variation of global indentation properties, due to the presence of residual stresses, can serve as a guideline for the size and direction of such stresses. One of these global indentation properties, the material hardness, is unfortunately invariant of residual stresses when metals and alloys are at issue. In this situation, one has to rely on the size of the indentation contact area for residual stress determination. For other materials such as ceramics and polymers, where elastic deformations are of greater importance at indentation, such invariance is no longer present. Here, this variation is investigated based on finite element simulations. The aim is then to determine how the indentation hardness is influenced by the principal residual stress ratio and also discuss if such an influence is sufficient in order to determine the size and direction of such stresses in an experimental situation. It should be emphasized that this work does not suggest a new approach to residual stress determination (by indentation testing) but investigates the applicability of previously derived methods to a situation where the surface stress field is not simplified as equi-biaxial or uniaxial. For simplicity, but not out of necessity, only cone indentation of elastic-perfectly plastic materials is considered.
机译:在进行材料失效分析时,残余应力的确定是一个重要的问题。由于存在残余应力,整体压痕特性的变化可作为此类应力的大小和方向的指导。不幸的是,当涉及金属和合金时,这些整体压痕特性之一是材料硬度,它是残余应力的不变形式。在这种情况下,必须依靠压痕接触区域的大小来确定残余应力。对于其他材料,例如陶瓷和聚合物,在压痕处弹性变形更为重要,这种不变性不再存在。在此,基于有限元模拟研究了这种变化。然后,目的是确定压痕硬度如何受到主要残余应力比的影响,并讨论这种影响是否足够,以便在实验情况下确定这种应力的大小和方向。应该强调的是,这项工作并未提出确定残余应力(通过压痕测试)的新方法,而是研究了先前推导的方法在表面应力场未简化为等双轴或单轴的情况下的适用性。为简单起见,但并非出于必要,仅考虑弹性完美塑性材料的圆锥凹痕。

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