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Understand anisotropy dependence of damage evolution and material removal during nanoscratch of MgF2 single crystals

材料科学 各向异性 劈理(地质) 刮擦 复合材料 机械加工 极限抗拉强度 脆性 单晶 应力场 打滑(空气动力学) 压力(语言学) Crystal(编程语言) 结晶学 断裂(地质) 光学 冶金 结构工程 语言学 化学 物理 哲学 热力学 有限元法 工程类 程序设计语言 计算机科学
作者
Chen Li,Yinchuan Piao,Feihu Zhang,Yong Zhang,Yuxiu Hu,Yongfei Wang
出处
期刊:International journal of extreme manufacturing [IOP Publishing]
卷期号:5 (1): 015101-015101 被引量:133
标识
DOI:10.1088/2631-7990/ac9eed
摘要

Abstract To understand the anisotropy dependence of the damage evolution and material removal during the machining process of MgF 2 single crystals, nanoscratch tests of MgF 2 single crystals with different crystal planes and directions were systematically performed, and surface morphologies of the scratched grooves under different conditions were analyzed. The experimental results indicated that anisotropy considerably affected the damage evolution in the machining process of MgF 2 single crystals. A stress field model induced by the scratch was developed by considering the anisotropy, which indicated that during the loading process, median cracks induced by the tensile stress initiated and propagated at the front of the indenter. Lateral cracks induced by tensile stress initiated and propagated on the subsurface during the unloading process. In addition, surface radial cracks induced by the tensile stress were easily generated during the unloading process. The stress change led to the deflection of the propagation direction of lateral cracks. Therefore, the lateral cracks propagated to the workpiece surface, resulting in brittle removal in the form of chunk chips. The plastic deformation parameter indicated that the more the slip systems were activated, the more easily the plastic deformation occurred. The cleavage fracture parameter indicated that the cracks propagated along the activated cleavage planes, and the brittle chunk removal was owing to the subsurface cleavage cracks propagating to the crystal surface. Under the same processing parameters, the scratch of the (001) crystal plane along the [100] crystal-orientation was found to be the most conducive to achieving plastic machining of MgF 2 single crystals. The theoretical results agreed well with the experimental results, which will not only enhance the understanding of the anisotropy dependence of the damage evolution and removal process during the machining of MgF 2 crystals, but also provide a theoretical foundation for achieving the high-efficiency and low-damage processing of anisotropic single crystals.
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