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Fixed Electrical Charges and Mobile Ions Affect the Measurable Mechano-Electrochemical Properties of Charged-Hydrated Biological Tissues: The Articular Cartilage Paradigm

机译:固定电荷和移动离子影响带电水合生物组织的可测量机械电化学性质:关节软骨范例

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摘要

The triphasic constitutive law [] has been shown in some special 1D cases to successfully model the deformational and transport behaviors of charged-hydrated, porous-permeable, soft biological tissues, as typified by articular cartilage. Due to nonlinearities and other mathematical complexities of these equations, few problems for the deformation of such materials have ever been solved analytically. Using a perturbation procedure, we have linearized the triphasic equations with respect to a small imposed axial compressive strain, and obtained an equilibrium solution, as well as a short-time boundary layer solution for the mechano- electrochemical (MEC) fields for such a material under a 2D unconfined compression test. The present results show that the key physical parameter determining the deformational behaviors is the ratio of the perturbation of osmotic pressure to elastic stress, which leads to changes of the measurable elastic coefficients. From the short-time boundary layer solution, both the lateral expansion and the applied load are found to decrease with the square root of time. The predicted deformations, flow fields and stresses are consistent with the analysis of the short time and equilibrium biphasic (i.e., the solid matrix has no attached electric charges) []. These results provide a better understanding of the manner in which fixed electric charges and mobile ions within the tissue contribute to the observed material responses.
机译:在某些特殊的一维情况下,三阶本构定律已成功地模拟了带电荷的水合,多孔可渗透的软生物组织的变形和运输行为,以关节软骨为代表。由于这些方程的非线性和其他数学上的复杂性,这种材料变形的问题很少能通过解析得到解决。使用摄动过程,我们已将三阶方程关于较小的轴向压缩应变线性化,并获得了该材料的机械电化学(MEC)场的平衡解和短时边界层解。在2D无限制压缩测试下。目前的结果表明,决定变形行为的关键物理参数是渗透压与弹性应力的比值,这导致可测量的弹性系数发生变化。从短时边界层解中,发现横向扩展和施加的载荷均随时间的平方根减小。预测的变形,流场和应力与短时间和平衡双相的分析(即,固体基质没有附着的电荷)一致[]。这些结果更好地了解了组织内固定电荷和活动离子对观察到的物质反应的贡献方式。

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