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A simulation of growth and coalescence of voids during ductile fracture

机译:韧性断裂过程中空隙的生长和聚结的模拟

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摘要

During tensile fracture of ductile metals, damage usually percolates from small clusters of microvoids. Experimental observations suggest that a cluster geometry of three closely spaced voids appears especially susceptible to accelerated void growth and coalescence from which fracture propagates. In this study, a three-dimensional finite element model has been developed to simulate the growth and coalescence within a cluster of three equal sized, initially spherical voids, spaced one void diameter apart, and embedded in a tensile specimen. The results show that, while void growth initially occurs at a rate close to that predicted for an isolated void, the growth rate accelerates with strain in a manner that depends on strain hardening and specimen necking. Significantly, a load limit develops within the inter-void ligament at strain levels that are close to the strain hardening exponent, suggesting a void coalescence criterion that depends on strain hardening in a sensitive manner.
机译:在韧性金属的拉伸断裂过程中,损伤通常会从微小的微孔簇中渗出。实验观察表明,三个紧密间隔的空隙的簇状几何形状似乎特别容易加速空隙的生长和合并,裂缝从该处扩散。在这项研究中,已开发了三维有限元模型,以模拟在三个相等大小的初始球形空隙,间距为一个空隙直径并嵌入拉伸试样中的簇中的生长和合并。结果表明,尽管最初以接近隔离空洞所预测的速度发生空洞生长,但随着应变的增长,其生长速度会加快,这取决于应变硬化和试样颈缩。明显地,在空隙韧带内在接近应变硬化指数的应变水平上产生了载荷极限,表明了以敏感方式依赖于应变硬化的空隙合并准则。

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