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Deformation Mechanisms of A Micro-Sized Austenitic Stainless Steel with Fine Grains

机译:细晶粒奥氏体不锈钢的变形机理

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摘要

In this study, deformation behavior of fine-grained austenitic stainless steel micro-cantilever beams was investigated using a newly developed testing machine for micro-sized specimens. The microbeams were deformed to different strain hardening stages of the material, and then the detailed deformation behavior on the specimen surface at the corresponding strain hardening stage was examined by scanning electron microscopy. Two deformation mechanisms corresponding to different strain hardening stages were found in the micro-sized austenitic stainless steel with fine grains. The dislocation slip mechanism characterized by the extensive dislocation slips and their interaction with grain boundaries resulted in the stage I strain hardening. With increasing deformation, the grain boundary sliding (GBS) mechanism at the stage II and subsequently intergranular cracking occurred. The differences in stress condition and work-hardening behavior on the top tension-side and rear compression-side surfaces of the micro-cantilever beam resulted in the different deformation behavior.
机译:在这项研究中,使用最新开发的微尺寸试样测试机研究了细晶粒奥氏体不锈钢微悬臂梁的变形行为。将微束变形到材料的不同应变硬化阶段,然后通过扫描电子显微镜检查在相应应变硬化阶段的样品表面的详细变形行为。在具有细晶粒的超细奥氏体不锈钢中发现了两种对应于不同应变硬化阶段的变形机制。以大量位错滑移为特征的位错滑移机理及其与晶界的相互作用导致了第一阶段的应变硬化。随着变形的增加,在第二阶段发生晶界滑动(GBS)机制,随后发生晶间裂纹。微悬臂梁的顶部受力侧和后压缩侧表面的应力条件和加工硬化行为的差异导致了不同的变形行为。

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