脊柱分解作为一种可能的空隙初始化机制,用于在高应变率下在冲击融材料中进行分离
Yutong Yang1, Zixiang Yan2, Hao Liu3
1Peking University, HEDPS, Center for Applied Physics and Technology and School of Physics, Beijing 100871, China.
Physical review. E
|April 18, 2025
概括
脊柱分解可能会在高张力速度的冲击融材料中启动分离. 这个过程将裂纹强度与液体气体旋转曲线联系起来,这是一个关键的热力学属性.
科学领域:
- 材料科学 材料科学 材料科学
- 热力学是一种热力学.
- 计算物理 计算物理
背景情况:
- 在承受极端机械负荷的材料中,分离是关键的故障机制.
- 了解超高拉伸速率时分离的启动机制对于材料设计和安全至关重要.
- 之前的模型经常将空心核作为主要事件.
研究的目的:
- 为了研究在极高的张力率下,在冲击融材料中启动分离的基本机制.
- 为了建立一个链接,分离强度和液态相的热力学特性.
- 探索旋分解在化过程中的作用.
主要方法:
- 分子动力学模拟被用来在原子尺度上建模材料的行为.
- 模拟的重点是冲击化的样本,这些样本经历了极高的应变率.
- 分析的重点是密度波动和空洞形成的演变.
主要成果:
- 脊柱的分解被确定为可能的初级机制,以启动松.
- 观察到空隙和泡的形成是继旋极放大后的二次过程.
- 斯帕拉强度与液体气体旋转曲线之间建立了直接关系.
结论:
- 脊柱分解,而不是空隙核化,很可能是撞击融材料高应变率分离的起始事件.
- 斯帕拉强度从根本上与液体气体旋转曲线有关,这是固有的热力学特性.
- 未来的实验研究可以验证这种联系并探索其影响.
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