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首页> 外文期刊>International journal of impact engineering >A theoretical analysis of experimental results of shock wave loading of OFE copper relating the observed internal structure to the deformation mechanism
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A theoretical analysis of experimental results of shock wave loading of OFE copper relating the observed internal structure to the deformation mechanism

机译:观察到的内部结构与变形机制相关的OFE铜的冲击波载荷实验结果的理论分析

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The observations made by Gray and Follansbee of the internal metallurgical changes in oxygen-free electrolytic copper specimens that were subjected to sharply terminated shock loadings of 5, 10 and 20 GPa led to conclusions about the mechanisms of shock loading and its pressure release that may be helpful in formulating the material constitutive equation. Details of the shock load mechanism obtained from these experiments may explain the micro-structure observations made and provide quantitative details for modeling of this important transient process. It was particularly noticed that micro-structural changes caused by the shock front passage through the specimen resulted in a time period after the shock front arrival, called the temporary retardation time, when the material elastic load could not be released by plastic deformation involving internal shearing. This temporary retardation time makes the accumulation of high elastic energy density at high strain rates possible. The accumulated elastic energy may possibly be discharged via shear bands' formation although occurring of other failure modes of the material cannot be excluded. Formulation is suggested for incorporating the retardation time into material models suitable for hydrocodes.
机译:Gray和Follansbee对无氧电解铜试样在5、10和20 GPa的急剧终止冲击载荷下内部冶金学变化的观察得出了关于冲击载荷及其压力释放机理的结论。有助于制定材料的本构方程。从这些实验中获得的冲击载荷机制的详细信息可以解释所做的微观结构观察,并为此重要的瞬态过程的建模提供定量的详细信息。特别要注意的是,由冲击前部穿过试样引起的微观结构变化是在冲击前部到达后的一段时间,称为暂时延迟时间,此时材料的弹性载荷不能通过涉及内部剪切的塑性变形释放出来。 。该暂时的延迟时间使得可以在高应变速率下积累高弹性能密度。尽管不能排除材料其他破坏模式的发生,但累积的弹性能可能会通过剪切带的形成而释放。建议采用配方将延迟时间纳入适用于液压代码的材料模型中。

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