Effect of thermal softening on Swift and Hill instability limits in forming

B. Dodd, A. Atkins
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Abstract

AbstractSwift's theory of diffuse necking and Hill's theory of localized necking in sheets subjected to in-plane biaxial stresses have been generalized to take into account thermal effects. Using a characteristic material constant M which combines the density, specific heat, and rate of thermal softening of the material, it is shown that adiabatic conditions correspond to the M-value approaching zero. At the other extreme, isothermal conditions correspond to an M-value approaching infinity. Practically, a material such as titanium, with a low M-value (M ≤ 2), will be particularly prone to thermally assisted shear instability, whereas materials such as copper, with high M-values, will be resistant to thermally assisted shear instability except at high rates of strain. As the M-value decreases, it is shown that the Swift and Hill instability loci (plotted in terms of principal strains) shrink towards the origin. Thermally assisted shear mechanisms will affect other limit situations for which the Swift or Hi...
热软化对成形过程中Swift和Hill失稳极限的影响
摘要将斯威夫特的漫反射缩颈理论和希尔的局部缩颈理论推广到考虑热效应的板面内双轴应力下。采用结合材料密度、比热和热软化率的特征材料常数M,表明绝热条件对应于M值趋近于零。在另一个极端,等温条件对应于接近无穷大的m值。实际上,像钛这样具有低M值(M≤2)的材料将特别容易发生热辅助剪切不稳定,而像铜这样具有高M值的材料将抵抗热辅助剪切不稳定,除非在高应变率下。随着m值的减小,表明Swift和Hill不稳定位点(以主应变表示)向原点收缩。热辅助剪切机制将影响Swift或Hi的其他极限情况。
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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