超塑性
材料科学
晶界滑移
合金
变形(气象学)
变形机理
电子背散射衍射
冶金
制作
极限抗拉强度
延展性(地球科学)
复合材料
扫描电子显微镜
微晶
相(物质)
晶界
拉伸试验
粒度
微观结构
严重塑性变形
热等静压
融合
晶粒生长
作者
Hantao Zhang,Yonghao Zhang,Shenghua Wu,Chuan Yang,Liping Deng,Bingshu Wang,Shuke Huang,Yang Miao,Renzhi Hu,T. Zhang
标识
DOI:10.1088/2631-7990/ae3bb7
摘要
Abstract Sn–58Bi specimens produced through severe plastic deformation (SPD) typically exhibit excellent superplastic properties. However, the dimensions of SPD-prepared specimens are limited, and the process involves complex multistep procedures, which limit their practical engineering applications. Therefore, developing alternative fabrication techniques with greater flexibility and scalability is particularly important. In this study, a Sn–58Bi alloy was fabricated using laser powder bed fusion (LPBF). After the processing parameters were optimized, Sn–58Bi with remarkable superplasticity was successfully fabricated via additive manufacturing for the first time. Tensile tests revealed elongations to failure of 740% at room temperature (298 K) and 1 395.5% at 353 K. In situ scanning electron microscopy (SEM) and electron backscatter diffraction (EBSD) analyses indicated that grain boundary sliding (GBS) and phase boundary sliding (PBS), which are predominantly influenced by diffusion processes, were the primary mechanisms of superplastic deformation in the LPBF-fabricated Sn–58Bi alloy. This study provides a new strategy for enhancing alloy ductility through LPBF and offers theoretical insights into the additive manufacturing of superplastic polycrystalline alloys.
科研通智能强力驱动
Strongly Powered by AbleSci AI