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Mechanisms of plastic deformation in ultrafine-grained aluminium - In-situ and ex-post studies

机译:超细晶粒铝的塑性变形机理-原位和事后研究

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The microstructure of a 1050 aluminium alloy produced by hydrostatic extrusion varies in terms of grain boundary characteristics and the dislocation substructure depending on the grain orientation. This leads to a variance of plastic deformation mechanisms under external load. In this paper, the microstructure of as-extruded samples was compared to extruded and deformed in a bulk compression test to follow the reaction of various grains to external strain. In-situ TEM straining experiments were performed to study the variance of mobile dislocation activities depending on the local dislocation substructure in as-extruded material to deduce the operative deformation mechanism. These experiments accompanied with an estimation of strengthening mechanisms allowed to explain the role of different grains in the plastic deformation of ultrafine grained aluminium treated as a heterogenous complex system. It is demonstrated that well-developed ultrafine grains are responsible for providing strength since no intergranular dislocation intersections were reported but the motion of grain boundary dislocations or dislocation annihilation in boundaries. At the same time, relatively large grains with well-developed dislocation substructures accommodate plastic strain by provoking a more complex reaction – unstable dislocation arrays collapse while more advanced structures evolve into new low angle boundaries. The results from in-situ experiments were also used to explain subgrain shape changes observed after bulk deformation.
机译:通过静水挤压生产的1050铝合金的微观结构在晶界特征和位错亚结构方面取决于晶粒取向而变化。这导致在外部载荷下塑性变形机制的变化。在本文中,对挤压后样品的微观结构进行了比较,并在整体压缩试验中观察了挤压和变形,以追踪各种晶粒对外部应变的反应。进行了原位TEM应变实验,研究了移动位错活动随挤压材料中局部位错亚结构的变化,从而推断出其变形机理。这些实验以及对增强机理的估计,可以解释不同晶粒在作为异质复杂系统处理的超细晶粒铝的塑性变形中的作用。事实证明,发达的超细晶粒负责提供强度,因为没有报道晶间位错相交,而是晶界位错运动或晶界位错an灭。同时,具有较大位错亚结构的相对较大的晶粒通过引发更复杂的反应来适应塑性应变-不稳定的位错阵列崩溃,而更高级的结构演变成新的低角度边界。原位实验的结果也被用来解释整体变形后观察到的亚晶粒形状变化。

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