Numerical Simulation of Metal Sheet Velocity by Laser Shock Forming with Semi-Die

2010 ◽  
Vol 37 (5) ◽  
pp. 1368-1374 ◽  
Author(s):  
任爱国 Ren Aiguo ◽  
张永康 Zhang Yongkang ◽  
姜银方 Jiang Yinfang ◽  
裴旭 Pei Xu ◽  
于水生 Yu Shuisheng ◽  
...  
2010 ◽  
Vol 431-432 ◽  
pp. 429-433
Author(s):  
Yin Fang Jiang ◽  
Fei Wang ◽  
Yuan You Zhu ◽  
Yong Yu Gu ◽  
Yan Ling Lai

Laser shock forming in oblique angle of metal sheet is involved due to the complexity of parts profile and multiple points forming by laser shock. The influence of incident laser angle and constraint pore diameter of the mold on the forming characteristics of metal sheet is investigated according to the experiment and finite element simulation. The results show there is a horizontal deviating deformation in the place of the maximum deformation in oblique shock, as the incident angle deviating vertical direction increases, the vertical displacement amount decreases nonlinearly and the horizontal deviating amount increases gradually; and the vertical displacement amount of sheet increases with the increase of the mold constraint pore diameter in a certain range, but decreases above this certain range. The metal sheet fractures when shock times increase, the extended crack is paralleled to roll direction of metal sheet in vertical angle shocking, but the extended cracks in oblique shocking, some is paralleled to roll direction of metal sheet, another is vertical to this direction. The forming characteristics of metal sheet under laser shocking in oblique angle is very important, which provides evidence for the large area precision forming and parameters optimization by laser shock forming.


2004 ◽  
Vol 471-472 ◽  
pp. 860-864 ◽  
Author(s):  
Jian Zhong Zhou ◽  
Yong Kang Zhang ◽  
Dun Wen Zuo ◽  
Chao Jun Yang ◽  
Lan Cai

Laser shock forming (LSF) is a new technique realized by applying a compressive shock wave generated by laser shocking on the surface of sheet metal. It is a mechanical, not a thermal process. After briefly reviewing the mechanism of LSF, instead of previously reported experimental research, a numerical simulation method of sheet deforming caused by laser shock waves is presented. The process of laser-shock plastic deforming of sheet metal is simulated with ABAQUS software, the simulation results are compared and agree well with the experiments on the condition of single laser shocking. It is shown that numerical simulation is available for optimizing laser parameters and predicting the sheet deformation contour of laser shock forming process.


2019 ◽  
Vol 6 (9) ◽  
pp. 0965a1
Author(s):  
Yunxia Ye ◽  
Xu Cao ◽  
Rang Zeng ◽  
Yunpeng Ren ◽  
Xudong Ren ◽  
...  

2014 ◽  
Vol 41 (4) ◽  
pp. 0403010
Author(s):  
张青来 Zhang Qinglai ◽  
王荣 Wang Rong ◽  
洪妍鑫 Hong Yanxin ◽  
吴铁丹 Wu Tiedan ◽  
钱阳 Qian Yang ◽  
...  

2021 ◽  
Vol 64 ◽  
pp. 1273-1286
Author(s):  
Keyang Wang ◽  
Huixia Liu ◽  
Youjuan Ma ◽  
Jinzhong Lu ◽  
Xiao Wang ◽  
...  

Author(s):  
Huixia Liu ◽  
Zhihui Huang ◽  
Chunxing Gu ◽  
Zongbao Shen ◽  
Xiao Wang

Author(s):  
Chang Ye ◽  
Gary J. Cheng

In this paper, numerical simulation of nanoparticle integrated laser shock peening of aluminum alloys was carried out. A “tied constraint” was used to connect the matrix and nanoparticle assembly in ABAQUS package. Different particle size and particle volumes fraction (PVF) were studied. It was found that there is significant stress concentration around the nanoparticles. The existence of nanoparticle will influence the stress wave propagation and thus the final stress and strain state of the material after LSP. In addition, particle size, PVF and particle orientation all influence the strain rate, static residual stress, static plastic strain and energy absorption during the LSP process.


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