异种焊接接头中梯度微结构的压缩行为和变形机制

Shiqing Wang, Yi Zhang, Guodong Wen, J. Qi, Wenyan Zhai, Wang Gao
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引用次数: 0

摘要

本研究通过真空电子束焊接获得了 TC4/TC17 钛合金异种接头。研究了母材和接头在不同应变水平下的压缩行为,并观察了微观结构和断裂面。母材和接头在不同应变下的真实应力-应变曲线表现出平滑、连续的塑性变形特征。接头的压缩屈服强度基本与 TC17 合金相当,明显高于 TC4 合金。然而,接头的压缩断裂应变低于贱金属。比较基本金属和在不同应变下变形的接头的微观结构发现,TC4 合金中的等轴α相主要承受变形,而 TC17 合金主要依靠片状晶粒的旋转来抵抗变形。在显微组织梯度较大的异种接头中,包括焊接区、远热影响区和母材在内的多个区域的压缩变形也与较细晶粒的旋转有关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Compressive behavior and deformation mechanisms of gradient microstructures in a dissimilar welded joint
In this study TC4/TC17 titanium alloy dissimilar joints were obtained via vacuum electron beam welding. The compressivebehavior of base metals and joint at different strain levels was studied, along with microstructural and fracture surface observations. The true stress-strain curves of base metals and joint at different strains demonstrated smooth and continuous plastic deformation characteristics. The compressive yield strength of the joint was basically equivalent to that of TC17 alloy, which was significantly higher than that of TC4 alloy. However, the compressive fracture strain of the joint was lower than that of base metals. Comparison of the microstructures of base metals and joint deformed at different strains, it revealed that the equiaxed α phase in TC4 alloy mainly underwent the deformation, while the TC17 alloy mainly relied on the rotation of lamellar grains to resist the deformation. In the dissimilar joint with a large microstructural gradient, the compressive deformation of several zones, including the weld zone, far heat-affected zone and the base metal, was also related to the rotation of finer grains.
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