立方体 ({001}) 的演变和 {115} 方向在冷超薄非定向钢中的演变
Yang Tu1, Li Meng1, Ning Zhang1
1Metallurgical Technology Institute, Central Iron and Steel Research Institute Co., Ltd., Beijing 100081, China.
Materials (Basel, Switzerland)
|October 28, 2023
概括
冷钢中的立方体和{115}<161>方向表现出不同的行为. 立方体的方向在12°内是稳定的,而{115}<161>的方向在滚动过程中向理想的立方体方向转移.
科学领域:
- 材料科学 材料科学 材料科学
- 金工业是金工业的一个方面.
- 固体力学 固体力学是什么
背景情况:
- 超薄的非定向钢对于电气应用至关重要.
- 了解冷过程中结晶学方向演变是优化材料性能的关键.
- 谷物边界效应和应变局部化显著影响纹理的发展.
研究的目的:
- 研究超薄非定向钢在冷过程中立方体和{115}<161>晶体方向的演变.
- 分析初始方向偏差对纹理稳定性的影响.
- 阐明微变形机制及其与宏观滚动行为的关系.
主要方法:
- 对纹理演变的实验研究.
- 结晶可塑性有限元素方法 (CPFEM) 模拟.
- 将模拟结果与实验数据进行比较.
主要成果:
- 立方体的方向在初始偏差小于12°时表现出稳定性,即使在减少60%后也是如此.
- 由于局部应变,在粒边界附近观察到立方体方向的较大偏差.
- {115}<161>方向,最初偏离18°,分开,有些接近理想的立方体方向 (偏离12.5°,减少40%).
结论:
- 在冷过程中,CPFEM准确地预测了实验性纹理演变.
- 微变形机制,包括应变局部化,控制着方向变化.
- 结果为优化超薄钢条的制过程提供了洞察力.
关键词:
#x00A0 在线观看&amp;amp; 在这里.) 在此之前,我们已经看到了.100> 100> 100> 100> 100> 100> 100> 100> 100> 100> 100> 100> 100> 100> 100> 100> 100> 100> 100>161&amp;amp; 在这里.寒冷制是冷制的方法之一.结晶可塑性有限元素方法 (CPFEM)立方体的方向 ({001})这是一个巨大的巨大的巨大的.这就是它,这就是它.导向 方向 方向 方向 方向 方向超薄非定向钢超薄非定向钢{115} 和其他.更多相关视频
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