Literature DB >> 34802058

Continuum Thermodynamics of Constrained Reactive Mixtures.

Gerard A Ateshian1, Brandon K Zimmerman1.   

Abstract

Mixture theory models continua consisting of multiple constituents with independent motions. In constrained mixtures, all constituents share the same velocity but they may have different reference configurations. The theory of constrained reactive mixtures was formulated to analyze growth and remodeling in living biological tissues. It can also reproduce and extend classical frameworks of damage mechanics and viscoelasticity under isothermal conditions, when modeling bonds that can break and reform. This study focuses on establishing the thermodynamic foundations of constrained reactive mixtures under more general conditions, for arbitrary reactive processes where temperature varies in time and space. By incorporating general expressions for reaction kinetics, it is shown that the residual dissipation statement of the Clausius-Duhem inequality must include a reactive power density, while the axiom of energy balance must include a reactive heat supply density. Both of these functions are proportional to the molar production rate of a reaction, and they depend on the chemical potentials of the mixture constituents. We present novel formulas for the classical thermodynamic concepts of energy of formation and heat of reaction, making it possible to evaluate the heat supply generated by reactive processes from the knowledge of the specific free energy of mixture constituents as well as the reaction rate. We illustrate these novel concepts with mixtures of ideal gases, and isothermal reactive damage mechanics and viscoelasticity, as well as reactive thermoelasticity. This framework facilitates the analysis of reactive tissue biomechanics and physiological and biomedical engineering processes where temperature variations cannot be neglected.
Copyright © 2022 by ASME.

Entities:  

Keywords:  constrained reactive mixtures; energy of formation; heat of reaction; ideal gas mixtures; thermodynamics; thermoelasticity

Mesh:

Year:  2022        PMID: 34802058      PMCID: PMC8719048          DOI: 10.1115/1.4053084

Source DB:  PubMed          Journal:  J Biomech Eng        ISSN: 0148-0731            Impact factor:   2.097


  17 in total

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Journal:  J Biomech Eng       Date:  1998-04       Impact factor: 2.097

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Journal:  J Biomech Eng       Date:  2019-04-03       Impact factor: 2.097

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Journal:  J Biomech       Date:  1994-04       Impact factor: 2.712

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Authors:  D E Kenyon
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Authors:  Brandon K Zimmerman; David Jiang; Jeffrey A Weiss; Lucas H Timmins; Gerard A Ateshian
Journal:  J Mech Phys Solids       Date:  2021-06-27       Impact factor: 5.582

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Authors:  Gerard A Ateshian; Barclay Morrison; Jeffrey W Holmes; Clark T Hung
Journal:  Mech Res Commun       Date:  2012-01-31       Impact factor: 2.254

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Authors:  Gerard A Ateshian; Kevin D Costa; Evren U Azeloglu; Barclay Morrison; Clark T Hung
Journal:  J Biomech Eng       Date:  2009-10       Impact factor: 2.097

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Authors:  W M Lai; J S Hou; V C Mow
Journal:  J Biomech Eng       Date:  1991-08       Impact factor: 2.097

10.  Modeling of neutral solute transport in a dynamically loaded porous permeable gel: implications for articular cartilage biosynthesis and tissue engineering.

Authors:  Robert L Mauck; Clark T Hung; Gerard A Ateshian
Journal:  J Biomech Eng       Date:  2003-10       Impact factor: 2.097

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