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An extended biphasic model for charged hydrated tissues with application to the intervertebral disc

机译:带电水化组织的扩展双相模型及其在椎间盘上的应用

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Finite element models for hydrated soft biological tissue are numerous but often exhibit certain essential deficiencies concerning the reproduction of relevant mechanical and electro-chemical responses. As a matter of fact, singlephasic models can never predict the interstitial fluid flow or related effects like osmosis. Quite a few models have more than one constituent, but are often restricted to the small-strain domain, are not capable of capturing the intrinsic viscoelasticity of the solid skeleton, or do not account for a collagen fibre reinforcement. It is the goal of this contribution to overcome these drawbacks and to present a thermodynamically consistent model, which is formulated in a very general way in order to reproduce the behaviour of almost any charged hydrated tissue. Herein, the Theory of Porous Media (TPM) is applied in combination with polyconvex Ogden-type material laws describing the anisotropic and intrinsically viscoelastic behaviour of the solid matrix on the basis of a generalised Maxwell model. Moreover, other features like the deformation-dependent permeability, the possibility to include inhomogeneities like varying fibre alignment and behaviour, or osmotic effects based on the simplifying assumption of Lanir are also included. Finally, the human intervertebral disc is chosen as a representative for complex soft biological tissue behaviour. In this regard, two numerical examples will be presented with focus on the viscoelastic and osmotic capacity of the model.
机译:水合的软生物组织的有限元模型很多,但通常在有关机械和电化学反应的再现方面表现出某些基本缺陷。事实上,单相模型永远无法预测组织液流动或相关影响,例如渗透。不少模型具有一个以上的组成部分,但通常仅限于小应变域,不能捕获固体骨架的固有粘弹性,或者不能说明胶原纤维的增强。该贡献的目标是克服这些缺点并提供一种热力学一致的模型,该模型以非常通用的方式制定,以便再现几乎所有带电的水合组织的行为。本文中,多孔介质理论(TPM)与基于广义Maxwell模型描述固体基质的各向异性和固有粘弹性行为的多凸Ogden型材料定律相结合。此外,还包括其他特征,如与变形有关的渗透性,包括不均匀性(如变化的纤维排列和行为)的可能性,或基于Lanir简化假设的渗透效应。最后,选择人椎间盘作为复杂的软生物组织行为的代表。在这方面,将给出两个数值示例,重点放在模型的粘弹性和渗透能力上。

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