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A Small Deformation Thermoporomechanics Finite Element Model and Its Application to Arterial Tissue Fusion.
Fankell, D P; Regueiro, R A; Kramer, E A; Ferguson, V L; Rentschler, M E.
Affiliation
  • Fankell DP; Department of Mechanical Engineering, University of Colorado Boulder, Boulder, CO 80309.
  • Regueiro RA; Department of Civil, Environmental, and Architectural Engineering, University of Colorado Boulder, Boulder, CO 80309.
  • Kramer EA; Department of Mechanical Engineering, University of Colorado Boulder, Boulder, CO 80309.
  • Ferguson VL; Department of Mechanical Engineering, University of Colorado Boulder, Boulder, CO 80309.
  • Rentschler ME; Department of Mechanical Engineering, University of Colorado Boulder, 1111 Engineering Drive UCB 427, Boulder, CO 80309 e-mail: .
J Biomech Eng ; 140(3)2018 03 01.
Article in En | MEDLINE | ID: mdl-28975262
ABSTRACT
Understanding the impact of thermally and mechanically loading biological tissue to supraphysiological levels is becoming of increasing importance as complex multiphysical tissue-device interactions increase. The ability to conduct accurate, patient specific computer simulations would provide surgeons with valuable insight into the physical processes occurring within the tissue as it is heated or cooled. Several studies have modeled tissue as porous media, yet fully coupled thermoporomechanics (TPM) models are limited. Therefore, this study introduces a small deformation theory of modeling the TPM occurring within biological tissue. Next, the model is used to simulate the mass, momentum, and energy balance occurring within an artery wall when heated by a tissue fusion device and compared to experimental values. Though limited by its small strain assumption, the model predicted final tissue temperature and water content within one standard deviation of experimental data for seven of seven simulations. Additionally, the model showed the ability to predict the final displacement of the tissue to within 15% of experimental results. These results promote potential design of novel medical devices and more accurate simulations allowing for scientists and surgeons to quickly, yet accurately, assess the effects of surgical procedures as well as provide a first step toward a fully coupled large deformation TPM finite element (FE) model.
Subject(s)

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Arteries / Temperature / Finite Element Analysis / Mechanical Phenomena Type of study: Prognostic_studies Language: En Journal: J Biomech Eng Year: 2018 Document type: Article

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Arteries / Temperature / Finite Element Analysis / Mechanical Phenomena Type of study: Prognostic_studies Language: En Journal: J Biomech Eng Year: 2018 Document type: Article
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