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Nanocrystallization of zirconium subjected to surface mechanical attrition treatment

机译:锆的纳米晶表面机械磨损处理

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摘要

A nanostructured surface layer with thickness of about 20 mu m was formed on commercially pure zirconium using surface mechanical attrition treatment (SMAT). The microstructural features of the surface layer were systematically investigated using optical microscopy (OM), x-ray diffraction (XRD), transmission electron microscopy (TEM) and high-resolution transmission electron microscopy (HRTEM), respectively. Based on the results obtained, a grain refinement mechanism induced by plastic deformation during SMAT of Zr is proposed. At the initial stage of SMAT, twinning dominates the plastic deformation of Zr and divides the coarse grains of Zr into finer twin plates. With increasing strain, intersection of twins occurs, and dislocation slips are activated, becoming the predominant deformation mode instead of twinning. As a result of the dislocation slips, high-density dislocation arrays are formed, which further subdivide the twin plates into subgrains of size about 200-400 nm. With a further increase of strain, the dislocations accumulate and rearrange to minimize the energy state of the high-strain-energy subgrains, the dense dislocation walls convert to grain boundaries, and the submicronic grains are subdivided, leading to the formation of nanosized grains at the top of the treated surface.
机译:使用表面机械磨损处理(SMAT)在市售纯锆上形成厚度约为20μm的纳米结构表面层。分别使用光学显微镜(OM),X射线衍射(XRD),透射电子显微镜(TEM)和高分辨率透射电子显微镜(HRTEM)对表面层的微观结构特征进行了系统研究。基于获得的结果,提出了在Zr的SMAT过程中塑性变形引起的晶粒细化机理。在SMAT的初始阶段,孪晶控制着Zr的塑性变形,并将Zr的粗大晶粒分成更细的双板。随着应变的增加,孪晶发生交叉,位错滑移被激活,成为主要的变形模式,而不是孪生。由于位错滑移,形成了高密度的位错阵列,其进一步将双板细分成大小约为200-400 nm的亚晶粒。随着应变的进一步增加,位错累积并重新排列以使高应变能子晶粒的能量状态最小化,致密的位错壁转换为晶界,并且亚微米级晶粒被细分,从而导致纳米级晶粒的形成。处理过的表面的顶部。

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