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On the uniqueness of measuring elastoplastic properties from indentation: The indistinguishable mystical materials

机译:关于从压痕测量弹塑性的独特性:不可区分的神秘材料

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Indentation is widely used to extract material elastoplastic properties from the measured force-displacement curves. One of the most well-established indentation techniques utilizes dual (or plural) sharp indenters (which have different apex angles) to deduce key parameters such as the elastic modulus, yield stress, and work-hardening exponent for materials that obey the power-law constitutive relationship. However, the uniqueness of such analysis is not yet systematically studied or challenged. Here we show the existence of "mystical materials", which have distinct elastoplastic properties yet they yield almost identical indentation behaviors, even when the indenter angle is varied in a large range. These mystical materials are, therefore, indistinguishable by many existing indentation analyses unless extreme (and often impractical) indenter angles are used. Explicit procedures of deriving these mystical materials are established, and the general characteristics of the mystical materials are discussed. In many cases, for a given indenter angle range, a material would have infinite numbers of mystical siblings, and the existence maps of the mystical materials are also obtained. Furthermore, we propose two alternative techniques to effectively distinguish these mystical materials. The study in this paper addresses the important question of the uniqueness of indentation test, as well as providing useful guidelines to properly use the indentation technique to measure material elastoplastic properties.
机译:压痕被广泛用于从测得的力-位移曲线中提取材料的弹塑性特性。最成熟的压痕技术之一是利用双(或多个)尖头压头(具有不同的顶角)来推导关键参数,例如弹性模量,屈服应力和服从幂律的材料的加工硬化指数本构关系。但是,这种分析的独特性尚未得到系统的研究或挑战。在这里,我们显示了“神秘材料”的存在,这些材料具有独特的弹塑性特性,即使压头角度在较大范围内变化,它们也具有几乎相同的压痕行为。因此,除非使用了极端的(通常是不切实际的)压头角度,否则许多现有的压痕分析都无法区分这些神秘的材料。建立了导出这些神秘材料的显式程序,并讨论了这些神秘材料的一般特性。在许多情况下,对于给定的压头角度范围,材料将具有无限数量的神秘同级,并且还获得了神秘材料的存在图。此外,我们提出了两种替代技术来有效地区分这些神秘的材料。本文的研究解决了压痕测试唯一性的重要问题,并为正确使用压痕技术测量材料的弹塑性特性提供了有用的指导。

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