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Studies of Particle Deformation and Microstructure Evolution Using High Strain Rate Particle Compression Test

材料科学 复合材料 再结晶(地质) 应变率 变形(气象学) 动态再结晶 粒子(生态学) 氧化物 变形机理 微观结构 冶金 热加工 地质学 海洋学 古生物学
作者
Gil Na,Arata Hashizume,Qi Tang,Mostafa Hassani,Yuji Ichikawa
出处
期刊:Thermal spray 卷期号:84864: 528-534
标识
DOI:10.31399/asm.cp.itsc2024p0528
摘要

Abstract The deformation behavior of particles plays a significant role in achieving adhesion during cold spray. The deformation behavior of the particles is associated with the fracture of the oxide layer and recrystallization, which are the key elements of the quality of cold spray. Studies of particle compression have been made to understand the deformation behavior of a particle. However, the deformation behavior of particle under controlled load and precise and high strain rate is yet to be studied. Here, we show the oxide layer fracture pattern and recrystallization regime under controlled load with a precise and high strain rate. We found that the cracks in the oxide layer initially appeared on the equator of the particle and propagated towards the edge of the top surface. Meanwhile, on the top surface, the circumferential crack was developed. On the other hand, the nanoindentation result showed that the compressed particle under a high strain rate has an unusual load-displacement behavior. Our results demonstrate that the oxide layer fracture behavior corresponds to the adhesion mechanism suggested by previous studies. Our study also revealed that recrystallization takes place within the particle under a high strain rate. We anticipate this finding to give a general insight into the deformation behavior of particles during cold spray. For instance, since the recrystallization behavior at a given strain rate can be predicted through this study, the resultant grain size and shape, which is associated with mechanical properties, can also be predicted. Furthermore, the amount of strain and strain rate to form optimal adhesion can be evaluated.

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