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Published on: August 4, 2023
A Chemo-Mechanical Model of Diffusion in Reactive Systems.
Kerstin Weinberg1, Marek Werner1, Denis Anders2
1Chair of Solid Mechanics, Faculty IV, Department of Mechanical Engineering, University of Siegen, Paul-Bonatz-Str. 9-11, 57076 Siegen, Germany.
A new material model enables computational simulations and structural optimization for multi-component systems. This model accounts for particle exchange, phase changes, chemical reactions, and energetic forces in materials like battery anodes and propellants.
Area of Science:
- Materials Science
- Computational Mechanics
- Chemical Engineering
Background:
- Multi-component material properties depend on phase rearrangement and chemical reactions.
- Existing models may not fully capture the complex microstructural evolution in these systems.
Purpose of the Study:
- To present a novel material model for computational simulations and structural optimization of solid multi-component systems.
- To incorporate key physical processes influencing microstructural evolution.
Main Methods:
- Development of a coupled field material model.
- Inclusion of particle exchange, mechanical deformation, spinodal decomposition, phase coarsening, chemical reactions, and energetic forces.
- Three-dimensional Non-Uniform Rational Basis Spline (NURBS) based finite element simulations.
Main Results:
- The presented model successfully integrates diverse physical phenomena governing microstructural evolution.
- Demonstration of the model's capability through 3D finite element simulations of multi-component structures.
- Validation of the model for systems such as battery anodes, reactive polymer blends, and propellants.
Conclusions:
- The developed material model provides a robust framework for simulating and optimizing multi-component materials.
- This approach enhances the understanding and design of advanced materials with tailored functional properties.
- The model is applicable to a range of engineering systems where microstructural evolution is critical.
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