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In situ diffraction characterization on microstructure evolution in austenitic stainless steel during cyclic plastic deformation and its relation to the mechanical response

机译:循环塑性变形期间奥氏体不锈钢微观结构演化的原位衍射特征及其与机械响应的关系

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摘要

Diffraction line profile analysis was performed to qualitatively evaluate the change in the microstructure of austenitic stainless steel during 250 cycles of plastic deformation. The dislocation density increased with increasing number of cycles until 50 cycles but thereafter decreased. The cycle number corresponding to this maximum point differed depending on whether it was evaluated as the total dislocation density or was decon-voluted into edge and screw dislocation densities. At the initial state, edge dislocations were predominant; however, screw dislocations greatly increased at the first stage of cyclic loading. Afterwards, edge dislocations formed cell walls and screw dislocations annihilated. The cycle number at which the singularity was reached depended on the development of the dislocation structure. When the cell structure developed and the cell wall became sharp, the arrangement of dislocations on average decreased and the crystallite size increased. The flow stress of the austenite phase increased and decreased, reflecting the dislocation density during cyclic loading. However, after α'-martensite was generated as the number of cycles increased, the contribution of the transformed martensite to the total flow stress could increase.
机译:进行衍射线谱分析以定性地评估奥氏体不锈钢微观结构的变化在250次塑性变形期间。脱位密度随着循环的越来越多的循环增加而增加,直到50个循环,但此后减少。对应于该最大点对应的循环编号根据是否被评估为总位错密度,或者被解码成边缘和螺杆位错密度。在初始状态下,边缘位错是主要的;然而,在循环载荷的第一阶段大大增加了螺旋脱位。然后,边缘位错形成细胞壁并彻底浸没螺旋脱离。达到奇点的循环编号取决于位错结构的发展。当开发的细胞结构和细胞壁变得尖锐时,平均下降的脱位布置和微晶尺寸增加。奥氏体相的流量应力增加和降低,反映了环状载荷期间的位错密度。然而,在产生α'-马氏体随着循环次数增加之后,转化的马氏体对总流量应力的贡献可能会增加。

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