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1.
Acta Bioeng Biomech ; 23(1): 59-68, 2021.
Artigo em Inglês | MEDLINE | ID: mdl-34846046

RESUMO

PURPOSE: The aim of the study was to investigate the viscoelastic response in the low and high physiological strain with the use of experimental and modeling approach. METHODS: Viscoelastic response in the low, transition and high physiologic strain (3, 6 and 9%) with consideration of simulated biological environment (0.9% saline solution, 37 °C) was measured in relaxation tests. Preconditioning of tendons was considered in the testing protocol and the applied range of load was obtained from tensile testing. The quasi-linear viscoelasticity theory was used to fit experimental data to obtain constants (moduli and times of relaxation), which can be used for description of the viscoelastic behavior of tendons. The exponential non-linear elastic representation of the stress response in ramp strain was also estimated. RESULTS: Differences between stress relaxation process can be seen between tendons stretched to the physiological strain range (3%) and exceeding this range (6 and 9%). The strains of 6% and 9% showed a similar stress relaxation trend displaying relatively rapid relaxation for the first 70 seconds, whereas the lowest strain of 3% displayed relatively slow relaxation. CONCLUSIONS: Results of the model fitting showed that the quasi-linear viscoelastic model gives the best fit in the range of low physiological strain level.


Assuntos
Modelos Biológicos , Tendões , Animais , Elasticidade , Estresse Mecânico , Suínos , Viscosidade
2.
Acta Bioeng Biomech ; 19(2): 93-102, 2017.
Artigo em Inglês | MEDLINE | ID: mdl-28869629

RESUMO

PURPOSE: The aim of the study was an estimation of the possibility of using hyperelastic material models to fit experimental data obtained in the tensile test for the swine skin tissue. METHODS: The uniaxial tensile tests of samples taken from the abdomen and back of a pig was carried out. The mechanical properties of the skin such as the mean Young's modulus, the mean maximum stress and the mean maximum elongation were calculated. The experimental data have been used to identify the parameters in specific strain-energy functions given in seven constitutive models of hyperelastic materials: neo-Hookean, Mooney-Rivlin, Ogden, Yeoh, Martins, Humphrey and Veronda-Westmann. An analysis of errors in fitting of theoretical and experimental data was done. RESULTS: Comparison of load -displacement curves for the back and abdomen regions of skin taken showed a different scope of both the mean maximum loading forces and the mean maximum elongation. Samples which have been prepared from the abdominal area had lower values of the mean maximum load compared to samples from the spine area. The reverse trend was observed during the analysis of the values of elongation. An analysis of the accuracy of model fitting to the experimental data showed that, the least accurate were the model of neo- -Hookean, model of Mooney-Rivlin for the abdominal region and model of Veronda-Westmann for the spine region. CONCLUSIONS: An analysis of seven hyperelastic material models showed good correlations between the experimental and the theoretical data for five models.


Assuntos
Testes de Dureza/métodos , Modelos Biológicos , Fenômenos Fisiológicos da Pele , Animais , Força Compressiva/fisiologia , Simulação por Computador , Módulo de Elasticidade/fisiologia , Dureza/fisiologia , Técnicas In Vitro , Reprodutibilidade dos Testes , Sensibilidade e Especificidade , Estresse Mecânico , Suínos , Resistência à Tração/fisiologia
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