Reduced-Order Multiscale Modeling of Plastic Deformations in 3D Alloys with Spatially Varying Porosity by Deflated Clustering Analysis
Shiguang Deng, Carl Soderhjelm, Diran Apelian, Ramin Bostanabad

TL;DR
This paper presents a reduced-order multiscale modeling framework using deflated clustering analysis to efficiently simulate plastic deformations in 3D alloys with spatially varying porosity, capturing macro and microscale behaviors accurately.
Contribution
It introduces a novel computational approach combining data compression and deflation methods for multiscale modeling of porous alloys, improving efficiency and accuracy.
Findings
Accurately captures macroscale deformations.
Effectively models microscale pore influences.
Reduces computational complexity significantly.
Abstract
Aluminum alloys are increasingly utilized as lightweight materials in the automobile industry due to their superior capability in withstanding high mechanical loads. A significant challenge impeding the large-scale use of these alloys in high-performance applications is the presence of manufacturing-induced, spatially varying porosity defects. In order to understand the impacts of these defects on the macro-mechanical properties of cast alloys, multiscale simulations are often required. In this paper, we introduce a computationally efficient reduced-order multiscale framework to simulate the behavior of metallic components containing process-induced porosity under irreversible nonlinear deformations. In our approach, we start with a data compression scheme that significantly reduces the number of unknown macroscale and microscale variables by agglomerating close-by finite element nodes…
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Taxonomy
Topics3D Shape Modeling and Analysis · Composite Material Mechanics · Advanced Numerical Analysis Techniques
