A Mixture Theory for Charged-Hydrated Soft Tissues Containing Multi-electrolytes: Passive Transport and Swelling Behaviors
- 1 April 1998
- journal article
- research article
- Published by ASME International in Journal of Biomechanical Engineering
- Vol. 120 (2) , 169-180
- https://doi.org/10.1115/1.2798299
Abstract
A new mixture theory was developed to model the mechano-electrochemical behaviors of charged-hydrated soft tissues containing multi-electrolytes. The mixture is composed of n + 2 constituents (1 charged solid phase, 1 noncharged solvent phase, and n ion species). Results from this theory show that three types of force are involved in the transport of ions and solvent through such materials: (1) a mechanochemical force (including hydraulic and osmotic pressures); (2) an electrochemical force; and (3) an electrical force. Our results also show that three types of material coefficients are required to characterize the transport rates of these ions and solvent: (1) a hydraulic permeability; (2) mechano-electrochemical coupling coefficients; and (3) an ionic conductance matrix. Specifically, we derived the fundamental governing relationships between these forces and material coefficients to describe such mechano-electrochemical transduction effects as streaming potential, streaming current, diffusion (membrane) potential, electro-osmosis, and anomalous (negative) osmosis. As an example, we showed that the well-known formula for the resting cell membrane potential (Hodgkin and Huxley, 1952a, b) could be derived using our new n + 2 mixture model (a generalized triphasic theory). In general, the n + 2 mixture theory is consistent with and subsumes all previous theories pertaining to specific aspects of charged-hydrated tissues. In addition, our results provided the stress, strain, and fluid velocity fields within a tissue of finite thickness during a one-dimensional steady diffusion process. Numerical results were provided for the exchange of Na+ and Ca++ through the tissue. These numerical results support our hypothesis that tissue fixed charge density (cF) plays a significant role in modulating kinetics of ions and solvent transport through charged-hydrated soft tissues.Keywords
This publication has 32 references indexed in Scilit:
- Incompressible porous media models by use of the theory of mixturesPublished by Elsevier ,2003
- Highlights in the Historical Development of the Porous Media Theory: Toward a Consistent Macroscopic TheoryApplied Mechanics Reviews, 1996
- Flows of Electrolytes Through Charged Hydrated Biological TissueApplied Mechanics Reviews, 1994
- Transport of fluid and ions through a porous-permeable charged-hydrated tissue, and streaming potential data on normal bovine articular cartilageJournal of Biomechanics, 1993
- A Triphasic Theory for the Swelling and Deformation Behaviors of Articular CartilageJournal of Biomechanical Engineering, 1991
- Biphasic Creep and Stress Relaxation of Articular Cartilage in Compression: Theory and ExperimentsJournal of Biomechanical Engineering, 1980
- Movement and composition of interstitial fluid of cartilageArthritis & Rheumatism, 1965
- Reciprocal Relations in Irreversible Processes. I.Physical Review B, 1931
- Ueber die Erregung von Electricität und Wärme in ElectrolytenAnnalen der Physik, 1890
- Ueber die Potentialdifferenz zwischen zwei verdünnten Lösungen binärer ElectrolyteAnnalen der Physik, 1890