Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
8023487 | Surface and Coatings Technology | 2018 | 8 Pages |
Abstract
Laser shock peening is combined with laser additive manufacturing to modify the surface microstructures and mechanical properties of as manufactured Ti6Al4V titanium alloy. Microstructural evolution, microhardness distribution, residual stress distribution and mechanical properties are examined before and after LSP. After peening, the interplanar spacing of lattices of both α and β phases decreases without any new phase formation. Grain refinement is achieved with average grain size of α phase decreasing from 33.6 to 24.3â¯Î¼m. High density of dislocation lines, tangles, and multi-directional mechanical twins are observed. Residual stress is turned from tensile to compressive state with an affected depth of around 700â¯Î¼m. The hardening layer reveled by microhardness is around 900â¯Î¼m in depth. Grain refinement accounts for the yield strength, ultimate tensile strength, and elongation enhancements after peening.
Keywords
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Physical Sciences and Engineering
Materials Science
Nanotechnology
Authors
Wei Guo, Rujian Sun, Binwen Song, Ying Zhu, Fei Li, Zhigang Che, Bo Li, Chao Guo, Lei Liu, Peng Peng,