Shear localization as a damage mechanism in pore collapse under shock compression

IF 5.1 2区 工程技术 Q1 ENGINEERING, MECHANICAL
Z. Lovinger , R. Kositski
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Abstract

The effect of porosity in shock-compressed materials is widely studied in the literature, accounting for its contribution to the materials' compressibility and to shock attenuation. Yet, the role of porosity in damage or failure under shock compression is limitedly addressed. In this work, shear localization resulting from pore collapse is studied, in potential relation to damage and failure under shock compression. Ti-6Al-4V specimens, with cylindrical and spherical pores, were manufactured using additive manufacturing (AM), and a soft catch set-up was used to enable post-mortem analysis of the impacted specimens. Under plate impact experiments, at shock pressures of 3–8 GPa, the 1–2 mm voids demonstrated collapse, followed by the evolution of shear bands (SB), emanating from the pore's surface. Samples with multiple pores were also tested to examine the interaction of shear bands between adjacent pores, to coalesce to larger damage surfaces. Varying the impact velocity and corresponding impact pressures, protracted states of SB evolution were studied. Numerical simulations using a material damage model reproduced many of the experimentally demonstrated phenomena. The presented results suggest evidence that shear localization around pores could be a damage mechanism under shock compression, identified as a threshold effect, making it a significant mechanism to be well characterized. The applicability of this mechanism is examined in relation to damage behavior under shock compression, extrapolating the experimental findings to μm-sized pores at high pressures.

剪切定位是冲击压缩下孔隙坍塌的一种破坏机制
文献中对冲击压缩材料中孔隙率的影响进行了广泛研究,说明了孔隙率对材料压缩性和冲击衰减的贡献。然而,关于孔隙率在冲击压缩下的破坏或失效作用的研究却非常有限。在这项工作中,我们研究了孔隙塌陷导致的剪切局部化与冲击压缩下损坏和失效的潜在关系。采用增材制造(AM)技术制造了具有圆柱形和球形孔隙的 Ti-6Al-4V 试样,并使用软捕捉装置对受冲击试样进行死后分析。在冲击压力为 3-8 GPa 的平板冲击实验中,1-2 毫米的孔隙出现塌陷,随后从孔隙表面产生剪切带 (SB)。还测试了具有多个孔隙的样品,以检验相邻孔隙之间剪切带的相互作用,从而凝聚成更大的损伤表面。通过改变冲击速度和相应的冲击压力,研究了 SB 演变的持久状态。使用材料损伤模型进行的数值模拟再现了许多实验证明的现象。研究结果表明,孔隙周围的剪切局部化可能是冲击压缩下的一种损伤机制,被确定为一种阈值效应,使其成为一种需要充分表征的重要机制。该机制的适用性与冲击压缩下的破坏行为有关,并将实验结果推断为高压下微米大小的孔隙。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
International Journal of Impact Engineering
International Journal of Impact Engineering 工程技术-工程:机械
CiteScore
8.70
自引率
13.70%
发文量
241
审稿时长
52 days
期刊介绍: The International Journal of Impact Engineering, established in 1983 publishes original research findings related to the response of structures, components and materials subjected to impact, blast and high-rate loading. Areas relevant to the journal encompass the following general topics and those associated with them: -Behaviour and failure of structures and materials under impact and blast loading -Systems for protection and absorption of impact and blast loading -Terminal ballistics -Dynamic behaviour and failure of materials including plasticity and fracture -Stress waves -Structural crashworthiness -High-rate mechanical and forming processes -Impact, blast and high-rate loading/measurement techniques and their applications
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