Strengthening control in laser powder bed fusion of austenitic stainless steels via grain boundary engineering

被引:0
|
作者
Sabzi, Hossein Eskandari [1 ]
Hernandez-Nava, Everth [4 ]
Li, Xiao-Hui [2 ]
Fu, Hanwei [2 ]
San-Martín, David [3 ]
Rivera-Díaz-del-Castillo, Pedro E.J. [1 ]
机构
[1] Department of Engineering, Engineering Building, Lancaster University, LA1 4YW, United Kingdom
[2] School of Materials Science and Engineering, Beihang University, No. 37 Xueyuan Road, Beijing,100191, China
[3] Materalia Research Group, Physical Metallurgy Department, Centro Nacional de Investigaciones Metalúrgicas (CENIM-CSIC), Avda. Gregorio del Amo 8, Madrid,28040, Spain
[4] Department of Material Science & Engineering, The University of Sheffield, Sir Robert Hadfield Building, Mappin St, Sheffield,S13 JD, United Kingdom
来源
Materials and Design | 2021年 / 212卷
基金
英国工程与自然科学研究理事会;
关键词
Dislocation cells - Dynamic recovery - Grain boundary engineering - Hall-petch - Laser powder bed fusion - Laser powders - Low angle grain boundaries - New approaches - Powder bed - Subgrains;
D O I
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中图分类号
学科分类号
摘要
A new approach to modelling the microstructure evolution and yield strength in laser powder bed fusion components is introduced. Restoration mechanisms such as discontinuous dynamic recrystallization, continuous dynamic recrystallization, and dynamic recovery were found to be activated during laser powder bed fusion of austenitic stainless steels; these are modelled both via classical Zener-Hollomon and thermostatistical approaches. A mechanism is suggested for the formation of dislocation cells from solidification cells and dendrites, and their further transformation to low-angle grain boundaries to form subgrains. This occurs due to dynamic recovery during laser powder bed fusion. The yield strength is successfully modelled via a Hall–Petch-type relationship in terms of the subgrain size, instead of the actual grain size or the dislocation cell size. The validated Hall–Petch-type equation for austenitic stainless steels provides a guideline for the strengthening of laser powder bed fusion alloys with subgrain refinement, via increasing the low-angle grain boundary fraction (grain boundary engineering). To obtain higher strength, dynamic recovery should be promoted as the main mechanism to induce low-angle grain boundaries. The dependency of yield stress on process parameters and alloy composition is quantitatively described. © 2021 The Authors
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