Interstitial fluid flow in tendons or ligaments: A porous medium finite element simulation
- 1 November 1997
- journal article
- research article
- Published by Springer Nature in Medical & Biological Engineering & Computing
- Vol. 35 (6) , 742-746
- https://doi.org/10.1007/bf02510987
Abstract
The purpose of this study is to describe interstitial fluid flow in axisymmetric soft connective tissue (ligaments or tendons) when they are loaded in tension. Soft hydrated tissue was modelled as a porous medium (using Darcy’s Law), and the finite element method was used to solve the resulting equations governing fluid flow. A commercially available computer program (FiDAP) was used to create an axisymmetric model of a biomechanically tested rat ligament. The unknown variables at element nodes were pressure and velocity of the interstitial fluid (Newtonian and incompressible). The effect of variations in fluid viscosity and permeability of the solid matrix was parametrically explored. A transient loading state mimicking a rat ligament mechanical experiment was used in all simulations. The magnitude and distribution of pressure, stream lines, shear (stress) rate, vorticity and velocity showed regular patterns consistent with extension flow. Parametric changes of permeability and viscosity strongly affected fluid flow behaviour. When the radial permeability was 1000 times less than the axial permeability, shear rate and vorticity increased (approximately 5-fold). These effects (especially shear stress and pressure) suggested a strong interaction with the solid matrix. Computed levels of fluid flow suggested a possible load transduction mechanism for cells in the tissue.Keywords
This publication has 14 references indexed in Scilit:
- Influence of short‐term hydrostatic pressure on organization of stress fibers in cultured chondrocytesJournal of Orthopaedic Research, 1995
- Response of plasma membrane to applied hydrostatic pressure in chondrocytes and fibroblastsConnective Tissue Research, 1992
- Application of the u-p Finite Element Method to the Study of Articular CartilageJournal of Biomechanical Engineering, 1991
- Formulation and evaluation of a finite element model for the biphasic model of hydrated soft tissuesComputers & Structures, 1990
- Effects of Friction on the Unconfined Compressive Response of Articular Cartilage: A Finite Element AnalysisJournal of Biomechanical Engineering, 1990
- Fluid shear stress as a mediator of osteoblast cyclic adenosine monophosphate productionJournal of Cellular Physiology, 1990
- Injury and repair of the musculoskeletal soft tissues. Savannah, Georgia, June 18–20, 1987Journal of Orthopaedic Research, 1988
- Structural Models for Human Spinal Motion Segments Based on a Poroelastic View of the Intervertebral DiskJournal of Biomechanical Engineering, 1985
- Biphasic Creep and Stress Relaxation of Articular Cartilage in Compression: Theory and ExperimentsJournal of Biomechanical Engineering, 1980
- Flow of compressible fluid in porous elastic mediaInternational Journal for Numerical Methods in Engineering, 1973