Is trabecular bone permeability governed by molecular ordering-induced fluid viscosity gain? Arguments from re-evaluation of experimental data in the framework of homogenization theory

被引:30
作者
Abdalrahman, T. [1 ]
Scheiner, S. [1 ]
Hellmich, C. [1 ]
机构
[1] Vienna Univ Technol TU Wien, Inst Mech Mat & Struct, A-1040 Vienna, Austria
关键词
Bone permeability; Poiseuille flow; Darcy's law; Homogenization; Liquid crystal; TURKEY LEG TENDON; CANCELLOUS BONE; ELASTIC PROPERTIES; CORTICAL BONE; CONTINUUM MICROMECHANICS; COMPACT-BONE; ION-EXCHANGE; COLLAGEN; WATER; HYDROXYAPATITE;
D O I
10.1016/j.jtbi.2014.10.011
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
It is generally agreed on that trabecular bone permeability, a physiologically important quantity, is governed by the material's (vascular or intertrabecular) porosity as well as by the viscosity of the pore-filling fluids. Still, there is less agreement on how these two key factors govern bone permeability. In order to shed more light onto this somewhat open issue, we here develop a random homogenization scheme for upscaling Poiseuille flow in the vascular porosity, up to Darcy-type permeability of the overall porous medium "trabecular bone". The underlying representative volume element of the macroscopic bone material contains two types of phases: a spherical, impermeable extracellular bone matrix phase interacts with interpenetrating cylindrical pore channel phases that are oriented in all different space directions. This type of interaction is modeled by means of a self-consistent homogenization scheme. While the permeability of the bone matrix equals to zero, the permeability of the pore phase is found through expressing the classical Hagen-Poiseuille law for laminar flow in the format of a "micro-Darcy law". The upscaling scheme contains pore size and porosity as geometrical input variables; however, they can be related to each other, based on well-known relations between porosity and specific bone surface. As two key results, validated through comprehensive experimental data, it appears (i) that the famous Kozeny-Carman constant (which relates bone permeability to the cube of the porosity, the square of the specific surface, as well as to the bone fluid viscosity) needs to be replaced by an again porosity-dependent rational function, and (ii) that the overall bone permeability is strongly affected by the pore fluid viscosity, which, in case of polarized fluids, is strongly increased due to the presence of electrically charged pore walls. (C) 2014 Elsevier Ltd. All rights reserved.
引用
收藏
页码:433 / 444
页数:12
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