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首页> 外文期刊>Materials Science and Engineering. A, Structural Materials: Properties, Microstructure and Processing >Microstructural investigation of the annealing behaviour of high-pressure torsion (HPT) deformed copper
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Microstructural investigation of the annealing behaviour of high-pressure torsion (HPT) deformed copper

机译:高压扭转(HPT)变形铜的退火行为的显微组织研究

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摘要

Samples of polycrystalline 99.99% Cu were deformed by high-pressure torsion at room temperature and a hydrostatic pressure of about 8 GPa to a shear strain of about 100. After annealing at different temperatures the structural-elements sizes (grain/subgrain, scattering domain) were determined by scanning electron microscopy and multiple X-ray Bragg profile analysis. The evolution of the strength of the samples was monitored by microhardness measurements and its relation to the development of the structural-elements sizes has been investigated. The strength turns out to be correlated to the grain size: it decreases when the grain size starts to increase considerably upon annealing at homologous temperatures well above 30% of the melting temperature. Compared with conventional deformation, a very high dislocation density is present in the initial state and after annealing at 0.3T_m (T_m - melting temperature) the number of dislocations is reduced considerably. Thus, in the present case, the recovery of dislocations starts at lower homologous temperatures than in conventionally deformed materials.
机译:多晶99.99%Cu的样品在室温下通过高压扭力和约8 GPa的静水压力变形至约100的剪切应变。在不同温度下退火后,结构元素的尺寸(晶粒/亚晶粒,散射域)通过扫描电子显微镜和多次X射线布拉格分布分析确定。通过显微硬度测量监测样品强度的变化,并研究了其与结构元素尺寸变化的关系。强度与晶粒尺寸有关:当在远高于熔融温度30%的同质温度退火后,晶粒尺寸开始显着增加时,强度降低。与常规变形相比,在初始状态下存在非常高的位错密度,并且在0.3T_m(T_m-熔化温度)下退火后,位错的数量大大减少。因此,在当前情况下,位错的恢复在比常规变形材料更低的同源温度下开始。

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