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Continuum Description of the Poissons Ratio of Ligament and Tendon Under Finite Deformation

机译:有限变形下韧带和腱的泊松比的连续描述

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摘要

Ligaments and tendons undergo volume loss when stretched along the primary fiber axis, which is evident by the large, strain-dependent Poisson's ratios measured during quasi-static tensile tests. Continuum constitutive models that have been used to describe ligament material behavior generally assume incompressibility, which does not reflect the volumetric material behavior seen experimentally. We developed a strain energy equation that describes large, strain dependent Poisson's ratios and nonlinear, transversely isotropic behavior using a novel method to numerically enforce the desired volumetric behavior. The Cauchy stress and spatial elasticity tensors for this strain energy equation were derived and implemented in the FEBio finite element software (). As part of this objective, we derived the Cauchy stress and spatial elasticity tensors for a compressible transversely isotropic material, which to our knowledge have not appeared previously in the literature. Elastic simulations demonstrated that the model predicted the nonlinear, upwardly concave uniaxial stress-strain behavior while also predicting a strain-dependent Poisson's ratio. Biphasic simulations of stress relaxation predicted a large outward fluid flux and substantial relaxation of the peak stress. Thus, the results of this study demonstrate that the viscoelastic behavior of ligaments and tendons can be predicted by modeling fluid movement when combined with a large Poisson's ratio. Further, the constitutive framework provides the means for accurate simulations of ligament volumetric material behavior without the need to resort to micromechanical or homogenization methods, thus facilitating its use in large scale, whole joint models.
机译:沿主纤维轴拉伸时,韧带和肌腱会发生体积损失,这在准静态拉伸试验中测得的应变相关泊松比很大,这一点很明显。用来描述韧带材料行为的连续体本构模型通常采用不可压缩性,这不能反映实验中看到的体积材料行为。我们开发了一种应变能方程,该方程描述了一种新的方法来数值执行所需的体积行为,该方程描述了大的,应变相关的泊松比和非线性的横向各向同性行为。此应变能方程的柯西应力和空间弹性张量已导出并在FEBio有限元软件()中实现。作为此目标的一部分,我们推导出了可压缩的横向各向同性材料的柯西应力和空间弹性张量,据我们所知,这些文献以前没有出现过。弹性仿真表明,该模型预测了非线性的,向上凹入的单轴应力-应变行为,同时还预测了应变相关的泊松比。应力松弛的双相模拟预测较大的向外流体通量和峰值应力的显着松弛。因此,这项研究的结果表明,当与大的泊松比结合使用时,可以通过对流体运动进行建模来预测韧带和肌腱的粘弹性行为。此外,本构框架提供了精确模拟韧带体积材料行为的手段,而无需诉诸微机械或均质化方法,从而有利于其在大规模,整体关节模型中的使用。

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