Geometry-aware framework for deep energy method: an application to structural mechanics with hyperelastic materials
Thi Nguyen Khoa Nguyen, Thibault Dairay, Rapha\"el Meunier, Christophe Millet, Mathilde Mougeot

TL;DR
This paper introduces GADEM, a geometry-aware physics-informed neural network framework that effectively solves structural mechanics problems across various geometries using an energy-based approach, demonstrating high accuracy and efficiency.
Contribution
The work develops a novel geometry-aware deep energy method employing the weak form and energy principles, enabling accurate solutions on multiple geometries with a single trained model.
Findings
GADEM accurately predicts solutions on various geometries.
The method reduces computational cost compared to traditional approaches.
It successfully handles complex problems like hyperelasticity and contact mechanics.
Abstract
Physics-Informed Neural Networks (PINNs) have gained considerable interest in diverse engineering domains thanks to their capacity to integrate physical laws into deep learning models. Recently, geometry-aware PINN-based approaches that employ the strong form of underlying physical system equations have been developed with the aim of integrating geometric information into PINNs. Despite ongoing research, the assessment of PINNs in problems with various geometries remains an active area of investigation. In this work, we introduce a novel physics-informed framework named the Geometry-Aware Deep Energy Method (GADEM) for solving structural mechanics problems on different geometries. As the weak form of the physical system equation (or the energy-based approach) has demonstrated clear advantages compared to the strong form for solving solid mechanics problems, GADEM employs the weak form…
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Taxonomy
TopicsAdvanced Numerical Analysis Techniques · Dynamics and Control of Mechanical Systems · 3D Shape Modeling and Analysis
