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Title: Electroplasticity constitutive modeling of aluminum alloys based on dislocation density evolution
Authors: Song, Y
Chen, L
Hao, C
Hua, L
Xu, H
Lu, J
Wang, Z
Lin, J 
Liu, Y
Xie, L
Issue Date: Nov-2024
Source: Journal of materials research and technology, Nov.-Dec. 2024, v. 33, p. 3501-3517
Abstract: Electrical current can effectively improve the plasticity of metallic materials. The tensile deformation behavior of Al alloys under the pulsed electrical current assisted quasi-static unidirectional tension (EAT) has been investigated. Materials under the EAT exhibits periodic electro-softening and strain-hardening behaviors, i.e., a ratchet shape mechanical response. However, establishing a constitutive model to accurately predict the ratchet shape mechanical behavior, especially during the EAT interval, and accurately predicting the strain-hardening behavior of materials are critical issues that need to be solved urgently. In this study, based on the Taylor polycrystalline model, thermal activation theory and dislocation density evolution theory, a two-parameter dislocation density electroplasticity constitutive model with forward and reverse dislocation density evolution was developed to describe the periodic coupling effect of the electro-thermal-mechanical fields during EAT. The tensile deformation behaviors of AA 6061-T6 and AA 7075-T6 under the effect of a pulsed electrical current were quantitatively predicted using the proposed constitutive model. The results show that the correlation coefficient between the predicted and experimental results of the constitutive model can reach 0.84–0.99, implying that the proposed constitutive model can accurately predict the complex electroplasticity behavior of Al alloys during EAT.
Keywords: Aluminum alloy
Constitutive model
Dislocation density evolution
Electroplasticity
Ratchet shape mechanical behavior
Publisher: Elsevier Editora Ltda
Journal: Journal of materials research and technology 
ISSN: 2238-7854
EISSN: 2214-0697
DOI: 10.1016/j.jmrt.2024.09.238
Rights: © 2024 The Authors. Published by Elsevier B.V. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by- nc-nd/4.0/).
The following publication Song, Y., Chen, L., Hao, C., Hua, L., Xu, H., Lu, J., Wang, Z., Lin, J., Liu, Y., & Xie, L. (2024). Electroplasticity constitutive modeling of aluminum alloys based on dislocation density evolution. Journal of Materials Research and Technology, 33, 3501-3517 is available at https://doi.org/10.1016/j.jmrt.2024.09.238.
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