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Computational prediction of hyperelastic constitutive model of damaged hydrogel (soft composite) materials under high-strain loading – a nonlinear FE approach
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DOI:10.1080/15376494.2026.2695256.png)
Abstract
En 中文
The influence of cracks on the hydrogel material’s strength characteristic (stretch-to-stress ratio) is numerically investigated using a hyperelastic material model under variable strain loadings (from nominal to high). Material deformation is modeled using higher-order polynomials in conjunction with finite element steps, and a customized MATLAB code is used to evaluate the hydrogel’s constitutive behavior. The model incorporates Yeoh’s hyperelastic constitutive relationship to compute the stretch-stress characteristics under uniaxial tensile and high-strain loading conditions. A computational model is proposed to evaluate the constitutive behavior of a soft material, utilizing a few experimental exponents and validated by comparing with published data. The validation results show that the outcomes deviate by up to 1.23%. Solving a series of numerical examples has also highlighted the current model’s utility for understanding the influence of damage on the stress-strain responses of hyperelastic components. These examples demonstrate a thorough study of tensile properties to assess the mechanical behavior in hyperelastic polymeric composite components. The findings contribute to the improved design of polymeric components in high-performance engineering applications, including those in the biomedical and medicinal fields.
Keywords:
FEM
hyperelastic material
MATLAB
stretch-stress response
Yeoh’s model
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