Chen Yao, Ding Jow-Lian, Babaiasl Mahdieh, Yang Fan, Swensen John P
School of Mechanical and Materials Engineering, Washington State University, Pullman, WA, 99164-2920, USA.
School of Mechanical and Materials Engineering, Washington State University, Pullman, WA, 99164-2920, USA.
J Mech Behav Biomed Mater. 2022 Jul;131:105218. doi: 10.1016/j.jmbbm.2022.105218. Epub 2022 Apr 6.
Characterization and modeling of the mechanical behavior of biological tissues are critical to many biomedical related applications. For research and development, various soft materials have often been used as a tissue substitute. Among them, the mineral oil-based synthetic polymer styrene-ethylene-butylene-styrene (SEBS) gel has gained some popularity due to its superior mechanical and physical properties. Tissue materials or their simulants are often characterized with quasi-static loading and are treated and modeled as a nonlinear hyperelastic material. As tissues are often subjected to loadings with a wide range of strain rates, understanding of the mechanical behavior and development a predictive capability for such loadings are essential. In this work, a comprehensive study of the mechanical behavior of SEBS gels with different chemical compositions and polymer concentrations was conducted under uniaxial compression loadings over a wide range of strain rates, from 1×10/s to 6×10/s. In addition to experiments, a comprehensive but simple visco-pseudo-hyperelasticity model was developed. The model was demonstrated to be able to capture all the material features observed in the experiments, such as rate sensitivity, strain-induced softening, and permanent deformation after unloading. Because of its simple functional form, the model can be conveniently used for practical applications such as prediction of the rate dependence of the shear modulus.
生物组织力学行为的表征和建模对于许多生物医学相关应用至关重要。在研发过程中,各种软材料常被用作组织替代品。其中,基于矿物油的合成聚合物苯乙烯-乙烯-丁烯-苯乙烯(SEBS)凝胶因其优异的机械和物理性能而受到一定关注。组织材料或其模拟物通常通过准静态加载进行表征,并被视为非线性超弹性材料进行处理和建模。由于组织经常承受各种应变率的载荷,了解其力学行为并开发针对此类载荷的预测能力至关重要。在这项工作中,对具有不同化学成分和聚合物浓度的SEBS凝胶在1×10⁻³/s至6×10²/s的宽应变率范围内进行单轴压缩加载时的力学行为进行了全面研究。除了实验之外,还开发了一个全面但简单的粘弹性-伪超弹性模型。该模型被证明能够捕捉实验中观察到的所有材料特性,如速率敏感性、应变诱导软化和卸载后的永久变形。由于其简单的函数形式,该模型可方便地用于实际应用,如预测剪切模量的速率依赖性。