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Expanding Cavity Model Combined With Johnson-Cook Constitutive Equation for the Dynamic Indentation Problem

机译:扩展腔模型与Johnson-Cook本构方程相结合的动态压痕问题

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摘要

The indentation formed on a metallic component by the high-velocity impingement of a small object can fracture the component, and this is known as foreign object damage. In this type of dynamic indentation, it is necessary to consider the effects of work hardening, strain rate hardening, and thermal softening in the impinged material. In this study, in order to consider these effects, the expanding cavity model based on a spherical formulation is modified via the Johnson-Cook constitutive equation for the dynamic indentation problem. Additionally, an equation is developed based on energy conservation and the modified expanding cavity model to predict the size of the indentation formed by an impingement of a solid sphere (EPIS). The distributions of equivalent plastic strain, equivalent plastic strain rate, temperature, and equivalent von Mises stress obtained via the expanding cavity model were in good agreement with the data obtained from the finite element analysis (FEA). Furthermore, it was demonstrated that EPIS accurately predicted the indentation size formed on various metallic materials at several impingement velocities in the range of 50-300 m/s. Consequently, EPIS can be effectively applied to an impingement problem of a hard sphere onto a sufficiently thick ductile material within 300 m/s without any help of FEA.
机译:由于小物体的高速撞击而在金属部件上形成的压痕会使部件断裂,这被称为异物损坏。在这种类型的动态压痕中,有必要考虑冲击材料中加工硬化,应变速率硬化和热软化的影响。在这项研究中,为了考虑这些影响,通过Johnson-Cook本构方程,针对动态压痕问题,修改了基于球形公式的膨胀腔模型。另外,基于能量守恒和改进的膨胀腔模型开发了一个方程,以预测由实心球(EPIS)撞击形成的压痕的大小。通过膨胀腔模型获得的等效塑性应变,等效塑性应变率,温度和等效冯·米塞斯应力的分布与从有限元分析(FEA)获得的数据非常吻合。此外,证明了EPIS可以准确地预测各种金属材料在50-300 m / s范围内的几种撞击速度下形成的压痕尺寸。因此,EPIS可以有效地将硬球撞击到300 m / s内足够厚的可延展材料上的问题,而无需FEA的任何帮助。

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