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Application of CGP-cross route process for microstructure refinement and mechanical properties improvement in steel sheets

机译:CGP穿越工艺在钢板组织细化和力学性能改善中的应用

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A modified method of severe plastic deformation (SPD) entitled constrained groove pressing-cross route (CGP-CR) was introduced for imposing a high magnitude of equivalent strain of about 2.32 per pass on the sheet form samples. The major benefit of this improved route compared to previous common route was the more homogeneity of strain in the rolling (RD) and transverse (TD) directions of sheets. In this study, low carbon steel samples were used for examination of evolutions in microstructure and mechanical properties during SPD via CGP-CR process. Mechanical properties improvement were measured by tensile and macro hardness tests. The results indicate that CGP-CR process can effectively improve tensile strength; and also, yield stress and hardness of as-received low carbon steel samples were improved up to about 100% after two deformation passes. Also, high magnitude of inhomogeneity can be observed in hardness distribution through first pass of the process which diminishes in the subsequent passes. Microstructural evolutions during process were monitored by optical microscopy observations and X-ray diffraction analysis. The results demonstrate that initial ferritic microstructure with grain size of about 30 μm was refined to a 225 nm cell structure after two passes of CGP-CR process.
机译:引入了一种改进的严重塑性变形(SPD)方法,称为“约束沟槽压制交叉路径”(CGP-CR),用于在片状样品上施加每次通过大约2.32的高等效应变。与以前的常用路线相比,这种改进的路线的主要优点是在板材的轧制(RD)和横向(TD)方向上的应变更加均匀。在这项研究中,低碳钢样品用于通过CGP-CR工艺检查SPD期间的微观组织和力学性能的演变。通过拉伸和宏观硬度测试来测量机械性能的改善。结果表明,CGP-CR工艺可以有效提高抗张强度。而且,经过两次变形后,原样的低碳钢样品的屈服应力和硬度提高了约100%。而且,通过该过程的第一道次可以观察到高度不均匀性,该硬度分布在随后的道次中减小。通过光学显微镜观察和X射线衍射分析监测过程中的微结构演变。结果表明,经过两次CGP-CR处理后,晶粒尺寸约为30μm的初始铁素体显微组织被细化为225 nm的晶胞结构。

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