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The Nonlinear Material Properties of Liver Tissue Determined From No-Slip Uniaxial Compression Experiments

机译:从防滑单轴压缩实验确定的肝组织的非线性材料特性

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The mechanical response of soft tissue is commonly characterized from unconfined uniaxial compression experiments on cylindrical samples. However, friction between the sample and the compression platens is inevitable and hard to quantify. One alternative is to adhere the sample to the platens, which leads to a known no-slip boundary condition, but the resulting nonuniform state of stress in the sample makes it difficult to determine its material parameters. This paper presents an approach to extract the nonlinear material properties of soft tissue (such as liver) directly from no-slip experiments using a set of computationally determined correction factors. We assume that liver tissue is an isotropic, incompressible hyperelastic material characterized by the exponential form of strain energy function. The proposed approach is applied to data from experiments on bovine liver tissue. Results show that the apparent material properties, i.e., those determined from no-slip experiments ignoring the no-slip conditions, can differ from the true material properties by as much as 50% for the exponential material model. The proposed correction approach allows one to determine the true material parameters directly from no-slip experiments and can be easily extended to other forms of hyperelastic material models.
机译:软组织的机械反应通常通过对圆柱样品的无限制单轴压缩实验来表征。但是,样品与压盘之间的摩擦是不可避免的,并且难以量化。一种选择是将样品粘附到压板上,这导致已知的防滑边界条件,但是样品中所产生的应力不均匀状态使其难以确定其材料参数。本文提出了一种使用一组计算确定的校正因子直接从防滑实验中提取软组织(例如肝脏)的非线性材料特性的方法。我们假设肝脏组织是各向同性的,不可压缩的超弹性材料,其特征是应变能函数的指数形式。所提出的方法适用于牛肝组织实验数据。结果表明,表观材料特性,即通过无滑动实验忽略了防滑条件而确定的那些,与指数材料模型的真实材料特性相差多达50%。提出的校正方法可以直接从防滑实验确定真实的材料参数,并且可以轻松地扩展到其他形式的超弹性材料模型。

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