Literature DB >> 28755956

A note on stress-driven anisotropic diffusion and its role in active deformable media.

Christian Cherubini1, Simonetta Filippi2, Alessio Gizzi3, Ricardo Ruiz-Baier4.   

Abstract

We introduce a new model to describe diffusion processes within active deformable media. Our general theoretical framework is based on physical and mathematical considerations, and it suggests to employ diffusion tensors directly influenced by the coupling with mechanical stress. The proposed generalised reaction-diffusion-mechanics model reveals that initially isotropic and homogeneous diffusion tensors turn into inhomogeneous and anisotropic quantities due to the intrinsic structure of the nonlinear coupling. We study the physical properties leading to these effects, and investigate mathematical conditions for its occurrence. Together, the mathematical model and the numerical results obtained using a mixed-primal finite element method, clearly support relevant consequences of stress-driven diffusion into anisotropy patterns, drifting, and conduction velocity of the resulting excitation waves. Our findings also indicate the applicability of this novel approach in the description of mechano-electric feedback in actively deforming bio-materials such as the cardiac tissue.
Copyright © 2017. Published by Elsevier Ltd.

Keywords:  Active deformable media; Cardiac dynamics; Electro-Mechanics; Finite elasticity; Reaction-Diffusion; Stress-assisted diffusion

Mesh:

Year:  2017        PMID: 28755956     DOI: 10.1016/j.jtbi.2017.07.013

Source DB:  PubMed          Journal:  J Theor Biol        ISSN: 0022-5193            Impact factor:   2.691


  10 in total

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5.  Optimization of Oxygen Delivery Within Hydrogels.

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6.  An orthotropic electro-viscoelastic model for the heart with stress-assisted diffusion.

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7.  Relationships between serum electrolyte concentrations and ileus: A joint clinical and mathematical modeling study.

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Authors:  M Peirlinck; F Sahli Costabal; J Yao; J M Guccione; S Tripathy; Y Wang; D Ozturk; P Segars; T M Morrison; S Levine; E Kuhl
Journal:  Biomech Model Mechanobiol       Date:  2021-02-12

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10.  Non-ohmic tissue conduction in cardiac electrophysiology: Upscaling the non-linear voltage-dependent conductance of gap junctions.

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  10 in total

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