微观结构
合金
材料科学
极限抗拉强度
冶金
位错
纹理(宇宙学)
钛合金
粒度
打滑(空气动力学)
降水
板条
材料的强化机理
复合材料
沉淀硬化
变形(气象学)
马氏体
人工智能
气象学
物理
图像(数学)
热力学
计算机科学
作者
Yushi Wang,Guang Yang,Siyu Zhou,Cong Sun,Bobo Li,Da An,Shengnan Zhang,Shichao Xiu
标识
DOI:10.1016/j.msea.2022.144266
摘要
Ti–6Al–4V alloys fabricated by inside-beam powder feeding (IBPF) generally exhibit coarse columnar α-lath resulting in slightly poorer mechanical properties than forged parts. In this study, a laser remelting strategy with an annular beam was used to improve the microstructure and refine grain size, thus improving the mechanical properties of IBPF components. This is realized by the formation of ultrafine secondary precipitation α s and more recrystallized nuclei. The formation mechanism of compression twins {10 1 ¯ 1} and dislocation pinning effect in remelted layer were investigated in detail through TEM analysis. Furthermore, texture evolution and slip systems of the remelted layers were analyzed to determine the deformation patterns. Fine grain strengthening and dislocation strengthening was significant, and the tensile strength of Ti–6Al–4V components after laser remelting is higher than those fabricated by inside-beam powder feeding by about 12.7% and 9.3% in transverse and longitudinal directions, respectively.
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