Quantifying internal strains, stresses, and dislocation density in additively manufactured AlSi10Mg during loading-unloading-reloading deformation

被引:59
作者
Zhang, X. X. [1 ]
Andrae, H. [1 ]
Harjo, S. [2 ]
Gong, W. [3 ]
Kawasaki, T. [2 ]
Lutz, A. [4 ]
Lahres, M. [4 ]
机构
[1] Fraunhofer Inst Ind Math ITWM, Fraunhofer Pl 1, D-67663 Kaiserslautern, Germany
[2] Japan Atom Energy Agcy, J PARC Ctr, 2-4 Shirane Shirakata, Naka, Ibaraki 3191195, Japan
[3] Kyoto Univ, Elements Strategy Initiat Struct Mat, Sakyo Ku, Yoshida Honmachi, Kyoto 6068501, Japan
[4] Mercedes Benz AG, Dept Res & Dev, Leibnizstr 2, D-71032 Boblingen, Germany
关键词
Aluminum alloy; Additive manufacturing; Laser powder bed fusion (LPBF); Neutron diffraction; Residual stress; Dislocation density; SITU NEUTRON-DIFFRACTION; PLASTIC-DEFORMATION; FRACTURE MECHANISMS; PROFILE-ANALYSIS; MICROSTRUCTURE; ALLOY; EVOLUTION; STRENGTH; COMPOSITE; TWINS;
D O I
10.1016/j.matdes.2020.109339
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The plastic deformation of the AlSi10Mg alloy manufactured via laser powder bed fusion (LPBF) is incompatible at the microscale, which causes residual strains/stresses and dislocation pile-ups at the Al/Si interfaces and grain boundaries. Hence, it is of fundamental significance to clarify these microscopic properties during plastic deformation. Here, in-situ neutron diffraction is employed to explore the residual strains, stresses, and dislocation density in the LPBF AlSi10Mg during loading-unloading-reloading deformation. It is found that the maximum residual stresses of the Al and Si phases in the loading direction reach up to about -115 (compressive) and 832 (tensile) MPa, respectively. A notable dislocation annihilation phenomenon is observed in the Al matrix: the dislocation density decreases significantly during unloading stages, and the amplitude of this reduction increases after experiencing a larger plastic deformation. At the macroscale, this dislocation annihilation phenomenon is associated with the reverse strain after unloading. At the microscale, the annihilation phenomenon is driven by the compressive residual stress in the Al matrix. Meanwhile, the annihilation of screw dislocations during unloading stages contributes to the reduction in total dislocation density. (C) 2020 The Author(s). Published by Elsevier Ltd.
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页数:9
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