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Hyperelastic Constitutive Relationship for the Strain-Rate Dependent Behavior of Shoulder and Other Joint Cartilages

机译:肩部应变率依赖性行为的超塑性本构型关系

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Non-linear finite deformations of articular cartilages under physiological loading conditions can be attributed to hyperelastic behavior. This paper contains experimental results of indentation tests in finite deformation and proposes an empirical based new generalized hyperelastic constitutive model to account for strain-rate dependency for humeral head cartilage tissues. The generalized model is based on existing hyperelastic constitutive relationships that are extensively used to represent biological tissues in biomechani-cal literature. The experimental results were obtained for three loading velocities, corresponding to low (1x10~(-3) s~(-1)), moderate and high strain-rates (1x10~(-1) s~(-1)), which represent physiological loading rates that are experienced in daily activities such as lifting, holding objects and sporting activities. Hyperelastic material parameters were identified by non-linear curve fitting procedure. Analysis demonstrated that the material behavior of cartilage can be effectively decoupled into strain-rate independent (elastic) and dependent parts. Further, experiments conducted using different indenters indicated that the parameters obtained are significantly affected by the indenter size, potentially due to structural inhomogeneity of the tissue. The hyperelastic constitutive model developed in this paper opens a new avenue for the exploration of material properties of cartilage tissues.
机译:在生理负载条件下关节软骨的非线性有限变形可归因于高速行为。本文含有有限变形中的压痕试验的实验结果,提出了一种经验基于的新的广泛性高弹性组成模型,以考虑肱骨头部软骨组织的应变率依赖性。广义模型基于现有的超级塑性本构关系,其广泛用于代表生物核酸文献中的生物组织。获得了三种加载速度的实验结果,对应于低(1×10〜(-3)S〜(-1)),中等和高应变率(1×10〜(-1)s〜(-1))代表在日常活动中经历的生理加载率,如提升,持有物体和体育活动。通过非线性曲线配合程序识别出高度塑料参数。分析证明了软骨的材料行为可以有效地分离成应变率独立(弹性)和依赖部件。此外,使用不同压痕进行的实验表明所获得的参数受到压紧尺寸的显着影响,可能是由于组织的结构性不均匀性。本文开发的超弹性本构模型开辟了软骨组织材料性质的新途径。

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