• DocumentCode
    1432392
  • Title

    Phenomenological evolution equations for heat-induced shrinkage of a collagenous tissue

  • Author

    Chen, Silvia Sihui ; Wright, Neil T. ; Humphrey, Jay D.

  • Author_Institution
    Dept. of Mech. Eng., Maryland Univ., Baltimore, MD, USA
  • Volume
    45
  • Issue
    10
  • fYear
    1998
  • Firstpage
    1234
  • Lastpage
    1240
  • Abstract
    Optimization of clinical heat treatments for various pathologies requires accurate numerical modeling of the heat transfer, evolution of thermal damage, and associated changes in the material properties of the tissues. This paper presents two phenomenological equations that quantify time-dependent thermal damage in a uniaxial collagenous tissue. Specifically, an empirical rule-of-mixtures model is shown to describe well heat-induced axial shrinkage (a measure of underlying denaturation) in chordae tendineae which results from a spectrum of thermomechanical loading histories. Likewise an exponential decay model is shown to describe well the partial recovery (e.g., renaturation) of chordae when it is returned to body temperature following heating. Together these models provide the first quantitative descriptors of the evolution of heat-induced damage and subsequent recovery in collagen. Such descriptors are fundamental to numerical analyses of many heat treatments because of the prevalence of collagen in many tissues and organs.
  • Keywords
    hyperthermia; physiological models; proteins; accurate numerical modeling; chordae tendineae; clinical heat treatments optimization; collagenous tissue; empirical rule-of-mixtures model; exponential decay model; heat transfer; heat-induced shrinkage; organs; pathologies treatment; phenomenological evolution equations; renaturation; thermomechanical loading histories; time-dependent thermal damage; underlying denaturation; uniaxial collagenous tissue; Equations; Heat recovery; Heat transfer; Heat treatment; History; Material properties; Numerical models; Pathology; Temperature; Thermomechanical processes; Absorption; Biomechanics; Body Water; Burns; Collagen; Heat; Models, Biological;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/10.720201
  • Filename
    720201