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A new nonlinear viscoelastic model and mathematical solution of solids for improving prediction accuracy.


ABSTRACT: We developed an innovative material nonlinear viscoelastic model with physical mechanism and mathematical solution to improve existing ones. The relaxation modulus transits from the glassy stage to the rubbery stage through a time-dependent viscosity in a continuous spectrum considering the nonlinear strain hardening. Experimental results of differential solid materials including asphalt concrete, agarose gel, vaginal tissue, polymer, agar, bone, spider silk, and hydrogel demonstrate that the developed model is superior to generalized Maxwell model or Prony series for more accurate prediction outside of the range for data fitting while using much less model parameters. Numerical simulation results indicate that the new model has improved accuracy. It is stable numerically, and does not reduce computation speed. Therefore, the model may be used to simulate a broad range of viscoelastic solids for predicting experimental data and responses with improved accuracy.

SUBMITTER: Xu Q 

PROVIDER: S-EPMC7010732 | biostudies-literature | 2020 Feb

REPOSITORIES: biostudies-literature

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A new nonlinear viscoelastic model and mathematical solution of solids for improving prediction accuracy.

Xu Qinwu Q   Engquist Björn B   Solaimanian Mansour M   Yan Kezhen K  

Scientific reports 20200210 1


We developed an innovative material nonlinear viscoelastic model with physical mechanism and mathematical solution to improve existing ones. The relaxation modulus transits from the glassy stage to the rubbery stage through a time-dependent viscosity in a continuous spectrum considering the nonlinear strain hardening. Experimental results of differential solid materials including asphalt concrete, agarose gel, vaginal tissue, polymer, agar, bone, spider silk, and hydrogel demonstrate that the de  ...[more]

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