Features of Finite Element Modeling of Residual Stresses Arising in Material under Laser Shock-Wave Processing Using the Intrinsic Deformations Method

被引:5
作者
Sakhvadze G.Z. [1 ]
机构
[1] Mechanical Engineering Research Institute, Russian Academy of Sciences, Moscow
关键词
Laser materials processing - Deformation - Shock waves - Residual stresses;
D O I
10.3103/S105261881804012X
中图分类号
学科分类号
摘要
Laser shock-wave processing of materials is a modern technology for effective processing of metallic materials. In the near-surface region, the processing produces significant compressive residual stresses that contribute to increasing material strength and improving their tribological and operational characteristics. In this work, we performed finite element modeling of the laser shock-wave technology using the intrinsic deformation method. Specifically, using the intrinsic deformation method, we first solved the dynamic problem on the impact of a shock load and determined the distribution of stabilized plastic deformations (so-called “intrinsic deformations”) and then solved the static problem on the elastic response of the system to the intrinsic deformations induced into it. The level of the resulting compressive residual stresses arising upon laser shock-wave processing is determined. The obtained results correlated well with the known experimental data. © 2018, Allerton Press, Inc.
引用
收藏
页码:373 / 379
页数:6
相关论文
共 16 条
[1]  
Peyre P., Berthe L., Vignal V., Popa I., Baudin T., Analysis of laser shock waves and resulting surface deformations in an Al–Cu–Li aluminum alloy, J. Phys. D: Appl. Phys., 45, pp. 35-42, (2012)
[2]  
Morales M., Ocana J.L., Molpeceres C., Porro J.A., Garcia-Beltran A., Model based optimization criteria for the generation of deep compressive residual stress fields in high elastic limit metallic alloys by ns–laser shock processing, Surf. Coat. Technol., 202, 11, pp. 2257-2262, (2008)
[3]  
Reissner H., Eigenspannungen und Eigenspannungsquellen, Z. Angew. Math. Mech., 11, pp. 1-8, (1931)
[4]  
Mura T., Micromechanics of Defects in Solids, (1991)
[5]  
Lokhov V.A., Tuktamyshev V.S., Investigation of stress–free condigions in the system with intrinsic deformation, Izv. Vyssh. Uchebn. Zaved., Povolzh. Reg., Fiz.–Mat. Nauki, 2, 26, pp. 198-207, (2013)
[6]  
Korsunsky A.M., Residual elastic strain due to laser shock peening: modelling by eigenstrain distribution, J. Strain Anal. Eng. Des., 41, 3, pp. 195-204, (2006)
[7]  
Jun T.S., Korsunsky A.M., Evaluation of residual stresses and strains using the eigenstrain reconstruction method, Int. J. Solids Struct., 47, 13, pp. 1678-1686, (2010)
[8]  
DeWald A.T., Hill M.R., Eigenstrain–based model for prediction of laser peening residual stresses in arbitrary three–dimensional bodies, Part 1: Model description, J. Strain Anal. Eng. Des., 44, pp. 1-11, (2009)
[9]  
Sakhvadze G.Z., Gavrilina L.V., Single and multiple laser shock processing of materials, J. Mach. Manuf. Reliab., 44, 6, pp. 549-554, (2015)
[10]  
Sakhvadze G.Z., Gavrilina L.V., Kikvidze O.G., Influence of laser spot overlap effect on residual stresses during laser–shock–wave processing of materials, J. Mach. Manuf. Reliab., 45, 3, pp. 258-265, (2016)