在过渡区的HPT变形的A1050微结构,纹理和硬度的演变
Hongjun Ni1, Chenchen Ding1, Haoyu Wang1
1School of Mechanical Engineering, Nantong University, Nantong 226019, China.
Materials (Basel, Switzerland)
|July 14, 2023
概括
高压扭转 (HPT) 处理将粒度细化到1μm以下,揭示面中心立方材料中明显的塑料变形阶段. 微硬度增加非线性,达到~64HV与不断变化的纹理组件.
科学领域:
- 材料科学 材料科学 材料科学
- 机械工程 机械工程
- 金工业是一种金工业.
背景情况:
- 高压扭转 (HPT) 是一种严重的塑料变形技术,用于生产超细粒度 (UFG) 和纳米晶体 (NC) 材料.
- 之前的研究主要集中在HPT变形材料的外围区域,使特定的变形机制不太被探索.
研究的目的:
- 在HPT下研究面中心立方体 (FCC) 材料中的塑性变形机制,这些材料具有高堆叠故障能量.
- 在HPT期间,分析一个专业区域的微结构,纹理和微硬度演变.
主要方法:
- 使用高压扭曲 (HPT) 的严重塑性变形.
- 微观结构分析,观察谷粒大小的演变和碎片化.
- 纹理分析以追踪晶体学方向变化.
- 微硬度测试以量化机械性能变化.
主要成果:
- 颗粒大小减少到1微米以下,呈现出明显的颗粒延长和碎片化的阶段.
- 微硬度显示非线性增加,达到大约64HV,塑料变形增加.
- 纹理分析显示,从C组件转变为立方体组件,表明围绕剪平面正常 (SPN) 轴的流动,最终被简单的剪切方向所取代.
结论:
- 在FCC材料中,HPT加工会引发显著的微观结构细化和机械硬化.
- 该研究阐明了在HPT下塑性变形的不同阶段和相关的纹理演变.
- 了解这些机制对于优化先进材料应用的HPT处理至关重要.
关键词:
A105050 A105050 A105050 A105050 A105050 A105050 A105050 A105050 A105050 A105050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1050 A1高压扭力高压扭力微硬度 微硬度 微硬度微观结构的演变.质感的演变 质感的演变相关概念视频
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