Shakir Gatea
Micromechanical Modeling of the Deformation and Damage Behavior of Al6092/SiC Particle Metal Matrix Composites
Gatea, Shakir; Jwad, Tahseen; Chen, Fei; Ou, Hengan
Abstract
To enhance the performance and design of metal matrix composites, it is extremely important to gain a better understanding of how the microstructure influences the deformation and damage behavior of metal matrix composites under different loading conditions. Finite element (FE) analysis can be used to collect certain micromechanical information of composites that is difficult to obtain from experiments. In this work, the effect of the distance between the SiC particles and the loading conditions on the deformation and damage behavior of Al6092/SiC particle composites is investigated under different strain rates (i.e., 1 × 10–4, 2 × 10–4, and 4 × 10–4s−1). A program is developed to generate the 2D micromechanical FE model with 17.5vol.% SiC particles. Based on the scanning electron microscopy images, the FE model contains four SiC particle sizes (3.1, 4.46, 6.37, and 9.98μm) with various percentages, which are randomly distributed in the micromechanical Al6092 alloy matrix. User-defined field subroutine was developed and implemented through ABAQUS/Standard based on maximum principal stress and Rice-Tracey triaxial damage indicator to evaluate the formability of the aluminum matrix composite and to predict the brittle and ductile fracture of the SiC particles and the aluminum matrix, respectively, under tensile and shear loads. The results showed that the distribution of SiC particles in Al matrix has a significant effect on the mechanical properties of Al6092/SiC 17.5 particle composites. The formability and damage behavior of composites improve as particle distance increases and strain rate decreases under tensile and shear loading. The fracture initiation toughness of fine SiC particles is higher than that of coarse SiC particles.
Citation
Gatea, S., Jwad, T., Chen, F., & Ou, H. (2023). Micromechanical Modeling of the Deformation and Damage Behavior of Al6092/SiC Particle Metal Matrix Composites. Journal of Materials Engineering and Performance, 32, 10680-10701. https://doi.org/10.1007/s11665-023-07907-4
Journal Article Type | Article |
---|---|
Acceptance Date | Jan 10, 2023 |
Online Publication Date | Feb 8, 2023 |
Publication Date | 2023-12 |
Deposit Date | Feb 8, 2023 |
Publicly Available Date | Feb 9, 2024 |
Journal | Journal of Materials Engineering and Performance |
Print ISSN | 1059-9495 |
Electronic ISSN | 1544-1024 |
Publisher | Springer Verlag |
Peer Reviewed | Peer Reviewed |
Volume | 32 |
Pages | 10680-10701 |
DOI | https://doi.org/10.1007/s11665-023-07907-4 |
Keywords | Micromechanical Modelling; Al6092/SiCp composite; Finite element analysis; Damage |
Public URL | https://nottingham-repository.worktribe.com/output/17079618 |
Publisher URL | https://link.springer.com/article/10.1007/s11665-023-07907-4 |
Additional Information | Received: 2 August 2022; Revised: 28 December 2022; Accepted: 10 January 2023; First Online: 8 February 2023 |
Files
Micromechanical Modelling Of The Deformation MMC Final Submission
(4 Mb)
PDF
You might also like
Investigation of material deformation mechanism in double side incremental sheet forming
(2015)
Journal Article
Flow characteristics and intrinsic workability of IN718 superalloy
(2015)
Journal Article
Downloadable Citations
About Repository@Nottingham
Administrator e-mail: discovery-access-systems@nottingham.ac.uk
This application uses the following open-source libraries:
SheetJS Community Edition
Apache License Version 2.0 (http://www.apache.org/licenses/)
PDF.js
Apache License Version 2.0 (http://www.apache.org/licenses/)
Font Awesome
SIL OFL 1.1 (http://scripts.sil.org/OFL)
MIT License (http://opensource.org/licenses/mit-license.html)
CC BY 3.0 ( http://creativecommons.org/licenses/by/3.0/)
Powered by Worktribe © 2024
Advanced Search