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A numerical investigation of ductile fracture initiation in a high-strength low-alloy steel

机译:高强度低合金钢延性断裂萌生的数值研究

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摘要

In this work, static and drop-weight impact experiments, which have been conducted using three-point bend fracture specimens of a high-strength low-alloy steel, are analysed by performing finite-element simulations. The Gurson constitutive model that accounts for the ductile failure mechanisms of microvoid nucleation, growth and is employed within the framework of a finite deformation plasticity theory. Two populations of second-phase particles are considered, including large inclusions which initiate voids at an early stage and small particles which require large strains to nucleate voids. The most important objective of the work is to assess quantitatively the effects of material inertia, strain rate sensitivity and local adiabatic temperature rise (due to conversion of plastic work into heat) on dynamic ductile crack initiation. This is accomplished by comparing the evolution histories of void volume fraction near the notch tip in the static analysis with the dynamic analyses. The results indicate that increased strain hardening caused by strain rate sensitivity, which becomes important under dynamic loading, plays a benign role in considerably slowing down the void growth rate near the notch tip. This is partially opposed by thermal softening caused by adiabatic heating near the notch tip.
机译:在这项工作中,通过进行有限元模拟,对使用高强度低合金钢的三点弯曲断裂试样进行的静态和落锤冲击试验进行了分析。 Gurson本构模型解决了微孔成核,生长的延性破坏机制,并在有限变形可塑性理论的框架内使用。考虑了两个第二相粒子群,包括早期会引发空隙的大包裹体和需要大应变才能使空隙成核的小微粒。这项工作的最重要目标是定量评估材料惯性,应变率敏感性和局部绝热温升(由于塑性功转换成热)对动态延性裂纹萌生的影响。这是通过将静态分析中的缺口尖端附近的空隙体积分数的演变历史与动态分析进行比较来实现的。结果表明,由应变速率敏感性引起的应变硬化的增加,在动态载荷下变得很重要,它在明显减慢缺口尖端附近的空洞生长速率方面起着良性作用。这与缺口尖端附近的绝热加热引起的热软化部分相反。

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    Narasimhan R; Kamat SV;

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  • 年度 1994
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