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Extracting the isotropic uniaxial stress-strain relationship of hyperelastic soft materials based on new nonlinear indentation strain and stress measure

机译:基于新型非线性压痕应变和应力测量的超弹性软材料提取各向同性单轴应力 - 应变关系

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摘要

Instrumented indentation technique has been increasingly utilized to measure the mechanical properties of soft polymers and biological tissues. However, the indentation behaviors of these materials has not been well understood, especially the parameter identification of their hyperelastic material properties. In this paper, we developed a spherical indentation data analysis method to directly extract the isotropic uniaxial stress-strain relationship of hyperelastic soft materials from the measured spherical indentation load-displacement curves. The proposed method mainly included new measure of indentation stress and strain, which was built based on the Hertz load-displacement relationship and further revised by considering the non-Hertzian effects of neo-Hookean hyperelastic contact problems. Numerical and actual indentation experiments showed the proposed definition of indentation strain can properly evaluate the amount of nonlinear strain for neo-Hookean, Yeoh and Arruda-Boyce hyperelastic materials. Meanwhile, the proposed spherical indentation data analysis method was applicable only in certain deformation range for Yeoh and Arruda-Boyce hyperelastic materials, because their nonlinear material parameters might cause very complicated contact pressure distributions. Building a universal data processing technique for characterizing the hyperelastic mechanical properties of soft materials through indentation experiments still needed further investigations.
机译:仪表化压痕技术越来越多地利用来测量软聚合物和生物组织的机械性能。然而,这些材料的压痕行为尚未得到很好地理解,尤其是它们的性高速材料特性的参数鉴定。在本文中,我们开发了一种球形压痕数据分析方法,直接提取来自测量的球形压痕负载 - 位移曲线的高弹性软材料的各向同性单轴应力 - 应变关系。该方法主要包括基于赫兹负载 - 位移关系构建的压痕应力和应变的新措施,并通过考虑新妓女的超弹性接触问题的非偏心效应进一步修订。数值和实际压痕实验表明,缩进菌株的定义可以适当地评估新鞍部,yeoh和Aruda-Boyce超弹性材料的非线性菌株的量。同时,所提出的球形压痕数据分析方法是仅适用于一定的变形范围为杨和阿鲁达-博伊斯超弹性材料,因为它们的非线性材料参数可能会导致非常复杂的接触压力分布。建立一种通用数据处理技术,用于通过压痕实验表征软材料的超塑性力学性能仍然需要进一步调查。

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