Study on controllable surface morphology of the micro-pattern fabricated on metallic foil by laser shock imprinting

2019 ◽  
Vol 119 ◽  
pp. 105669 ◽  
Author(s):  
Jiaxiang Man ◽  
Haifeng Yang ◽  
Yunfei Wang ◽  
Haoxue Chen ◽  
Fei Xiong
2018 ◽  
Vol 107 ◽  
pp. 228-238 ◽  
Author(s):  
Jiaxiang Man ◽  
Haifeng Yang ◽  
Hao Liu ◽  
Kun Liu ◽  
Henan Song

2021 ◽  
Vol 11 (12) ◽  
pp. 5406
Author(s):  
Fei Yin ◽  
Xia Ye ◽  
Hongbing Yao ◽  
Pengyu Wei ◽  
Xumei Wang ◽  
...  

In order to study the spallation phenomenon of titanium alloy under the shock of nanosecond laser, the Neodymium-Yttrium-Aluminum Garnet laser was used to carry out laser shock experiments on the surface of titanium alloy. By observing and measuring the surface morphology of the target material, the forming factors and the changes of the surface morphology under different parameter settings, the forming criteria of the titanium alloy were obtained. The results show that under the single variable method, the change of laser energy can affect the target shape variable, and there is a positive correlation between them. When the thickness was greater than or equal to 0.08 mm, no obvious cracks were found in the targets. Moreover, the number of impact times was the key factor for the target deformation; with the growth of impact times, the target deformation gradually became larger until the crack appeared. The larger the diameter of the spot, the more likely the target was to undergo plastic deformation. The surface of titanium alloy with a thickness of 0.08 mm appeared to rebound under specific laser shock condition. The changes in the back of the target material were observed in real time through a high-speed camera, and the plasma induced by the laser was observed in the process. This study is based on the results of previous studies to obtain the titanium alloy forming criteria, which provides a basis for the setting of laser parameters and the thickness of the target when the nanosecond laser impacts the Ti-6AL-4V target.


AIP Advances ◽  
2019 ◽  
Vol 9 (8) ◽  
pp. 085030 ◽  
Author(s):  
Ying Lu ◽  
Jibin Zhao ◽  
Hongchao Qiao ◽  
Taiyou Hu ◽  
Boyu Sun ◽  
...  

2017 ◽  
Vol 898 ◽  
pp. 689-695
Author(s):  
Yan Sen Li ◽  
Kun Zhang ◽  
Gui Hua Duan ◽  
Guang Yue Xu ◽  
Yu Hang Wei ◽  
...  

Laser shock peening is a promising effective approach for improving mechanical properties of metallic glass. In this work, laser shock peening was employed to study the surface morphologies of metallic glasses with different toughness. Numerous localized circular-or arc-shaped structures, with the size of 5~20 μm, were observed in the shock treated surface. The number of these unique localized structures has a close correlation to the ability of metallic glass to accommodate plastic deformation. In addition, the surface morphology evolution of Zr-based metallic glasses with different crystalline degrees is also discussed, indicating that the circular-or arc-shaped structures only appear in fully amorphous system.


2013 ◽  
Vol 40 (1) ◽  
pp. 0103004
Author(s):  
柳沅汛 Liu Yuanxun ◽  
王曦 Wang Xi ◽  
吴先前 Wu Xianqian ◽  
黄晨光 Huang Chenguang

2013 ◽  
Vol 592-593 ◽  
pp. 346-349 ◽  
Author(s):  
Pavlo Maruschak ◽  
Abdellah Menou ◽  
Mykola Czausow ◽  
Vitaly Mocharskyi

In this work, the effect of the laser shock-wave treatment on the surface morphology and regularities in failure of nanotitanium is investigated. Based on the data of fractodiagnostics it is established that the shock-wave treatment changes the mechanism of failure from the brittle chipping to the mixed ductile-brittle one by the shear + separation scheme.


2014 ◽  
Vol 1016 ◽  
pp. 111-114
Author(s):  
Yuan Xun Liu ◽  
Xi Wang ◽  
Xian Qian Wu ◽  
Chen Guang Huang

To study the relation between surface morphology and deformation mechanism of the target material under the shock, a flexible boundary loading, in laser shock peening (LSP), the macroscopic and microscopic surface morphology of a single crystal copper treated by LSP was investigated. The optical profilometer shows a 200-μm-deep pit forms on the shocked surface under LSP. The optical microscopy shows a set of parallel slip bands appear at the center of the shocked region and many vertical cross slip bands appear at the edge of shocked region. This indicates a large plastic deformation occurs by means of slip for the single crystal copper under LSP and the distributing features of slip bands correspond to the spatial distribution of the shock pressure. The results confirm that the surface morphology of materials under LSP can reflect the deformation mechanism and it can be a new method of studying the deformation mechanism of materials under LSP.


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