个人信息
Personal information
教授 博士生导师 硕士生导师
性别:男
在职信息:在职
所在单位:材料科学与工程学院
学历:研究生(博士)毕业
学位:博士学位
毕业院校:华中科技大学
学科:材料加工工程学术荣誉:
2016 华中学者
曾获荣誉:
2017 华中科技大学学术前沿青年团队负责人
2017 黄鹤英才“专项”计划
2016 江苏省双创人才
2016 华中科技大学师德三育人奖
论文类型:期刊论文
发表刊物:Journal of Magnesium and Alloys
收录刊物:SCI
关键字:Laser powder bed fusion (LPBF);WE43 alloy;Pore defect;Microstructure;Strengthening mechanisms
DOI码:10.1016/j.jma.2024.03.012
发表时间:2024-04-22
摘要:WE43 is a high-strength magnesium alloy containing rare-earth elements such as Y, Gd and Nd. Nevertheless, how to further obtain the balance of strength and ductility, as well as the manufacture of complex structures is still a dilemma for its engineering application. In this study, WE43 alloy samples with fine microstructures, high densification and excellent mechanical properties were successfully prepared by laser powder bed fusion (LPBF) additive manufacturing. The optimal process window was established, and the formation mechanisms of three types of porosity defects were revealed, namely lack-of-fusion pores, melt fluctuation-induced pores, and keyhole-induced pores. With the combined process of laser power of 200 W and scanning speed of 600 mm/s, samples with a high density of 99.89% were obtained. Furthermore, periodic heterogeneous microstructure was prepared along the build direction, i.e., fine grains (∼4.1 µm) at melt pool boundaries and coarse grain (∼23.6 µm) inside melt pool. This was mainly due to the preferential precipitation of Zr and Mg3(Gd, Nd) nano-precipitates at the melt pool boundaries providing nucleation sites for the grains. This special feature could provide an extra hetero-deformation induced (HDI) strengthening and retard fracture. The optimal tensile yield strength, ultimate tensile strength and elongation at break were 276 ± 1 MPa, 292 ± 1 MPa and 6.1 ± 0.2%, respectively. The obtained tensile properties were superior to those of other magnesium alloys and those fabricated by other processes. The solid solution strengthening (∼24.5%), grain boundary strengthening (∼14.4%) and HDI strengthening (∼32.2%) were the main sources of high yield strength. This work provides a guidance on studying the pore defect suppression and strengthening mechanisms of WE43 alloy and other magnesium alloys produced by LPBF.
发布期刊链接:https://www.sciencedirect.com/science/article/pii/S2213956724001063?via%3Dihub