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Temperature and strain rate dependence of deformation-induced point defect cluster formation in metal thin foils

机译:金属薄箔变形诱导点缺陷簇形成的温度和应变速率依赖性

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The mechanism of plastic deformation in thin metal foils without involving dislocations was examined by investigating the variations in vacancy cluster formation during deformation for a range of deformation speeds and temperatures. The deformation morphology was not seen to change appreciably over a very wide range of strain rate, 10{sup}(-4)/s - 10{sup}6/s, whereas the number density of vacancy clusters was observed to increase with increasing strain rate up to saturation value that is dependent on materials and temperature. The density of vacancy clusters decreased to zero with decreasing deformation speed. The strain rate at which the density of vacancy clusters begins to decrease was found to be proportional to the vacancy mobility, suggesting that the vacancies are generated as dispersed vacancies and escape to the specimen surfaces during slow deformation without forming clusters. A very long tail in the distribution of the density of vacancy clusters towards lower strain rates was reasonably attributed to the generation of small vacancy complexes due to deformation. These results give valuable information that can be used to establish new models for plastic deformation of crystalline metals without involving dislocations.
机译:通过研究变形在变形速度和温度范围内的变形过程中空位簇形成的变化来检查薄金属箔中的塑性变形机制而不涉及脱位。在非常宽的应变速率,10 {sup}( - 4)/ s-10 {sup} 6 / s中,未经变形形态明显变形,而空缺簇的数量密度随着增加而增加应变率达到饱和值,取决于材料和温度。空位簇的密度随着变形速度的降低而降至零。发现空位簇密度开始减少的应变率与空位流动性成比例,表明空位被产生为分散的空位并在慢变形期间逸出到样品表面而不形成簇。在较低应变率的空位簇密度分布的一个非常长的尾部合理地归因于由于变形而产生的小空位复合物。这些结果提供了有价值的信息,可用于建立结晶金属的塑性变形的新模型而不涉及脱位。

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