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Modelling of tissue thermal injury formation process with application of direct sensitivity method

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Języki publikacji
EN
Abstrakty
EN
In the paper, numerical analysis of thermal processes proceeding in a biological tissue is presented. The tissue is subjected to the external heat impulse and a 2D problem is taken into account. In order to determine the influence of variations of thermophysical parameters of the tissue on the value of tissue injury integral and the area of the lesion, a direct approach of sensitivity analysis is applied. The process of thermal injury formation is also analyzed. At the stage of numerical simulation, the boundary element method is used. In the final part of the paper, an example of numerical simulation is shown.
Rocznik
Strony
947--957
Opis fizyczny
Bibliogr. 21 poz., rys.
Twórcy
autor
  • Silesian University of Technology, Institute of Computational Mechanics and Engineering, Gliwice, Poland
Bibliografia
  • 1. Abraham J.P., Sparrow E.M., 2007, A thermal-ablation bioheat model including liquid-to vapor phase change, pressure- and necrosis-dependent perfusion, and moisture-dependent properties, International Journal of Heat and Mass Transfer, 50, 2537-2544
  • 2. Brebia C.A., Dominquez J., 1992, Boundary elements, an introductory course, Computational Mechanics Publications, McGraw-Hill Book Company, London
  • 3. Davies C.R., Saidel G.M., Harasaki H., 1997, Sensitivity analysis of one-dimensional heat transfer in tissue with temperature-dependent perfusion, Journal of Biomechanical Engineering, Transactions of The ASME, 119, 77-80
  • 4. Dems K., 1986, Sensitivity analysis in thermal problems. Part I: Variation of material parameters within fixed domain, Journal of Thermal Stresses, 9, 303-324
  • 5. Glenn T.N., Rastegar S., Jacques S.L., 1996, Finite element analysis of temperature controlled coagulation in laser irradiated tissue, IEEE Transactions on Biomedical Engineering, 43, 79-87
  • 6. Henriques F.C., 1947, Studies of thermal injuries, V. The predictability and the significance of thermally induced rate process leading to irreversible epidermal injury, Archives of Pathology, 43, 489-502
  • 7. Jasiński M., 2009, Sensitivity analysis of transient bioheat transfer with perfusion rate dependent on tissue injury, Computer Assisted Mechanics and Engineering Science, 16, 267-277
  • 8. Jasiński M., 2012, Numerical modeling of burn wound formation process, 10th World Congress on Computational Mechanics (WCCM 2012), Sao Paulo, Brasil, 1-10
  • 9. Jasiński M., 2013, Investigation of tissue thermal damage process with application of direct sensitivity method, MCB: Molecular and Cellular Biomechanics, 10, 3, 183-199
  • 10. Kleiber M., 1997, Parameter Sensitivity in Nonlinear Mechanics, J.Willey & Sons Ltd, Chicester
  • 11. Majchrzak E., 2013, Application of different variants of the BEM in numerical modeling of bioheat transfer processes, MCB: Molecular and Cellular Biomechanics, 10, 3, 201-232
  • 12. Majchrzak E., Jasiński M., 2002, Numerical analysis of bioheat transfer processes in tissue domain subjected to a strong external heat source, [In:] Boundary Elements Techniques, Z. Yao, M.H. Aliabadi (Edit.), Tsinghua University Press, Springer
  • 13. Majchrzak E., Jasiński M., 2004, Sensitivity analysis of burn integrals, Computer Assisted Mechanics and Engineering Science, 11, 125-136
  • 14. Majchrzak E., Kałuża G., 2006, Sensitivity analysis of biological tissue freezing process with respect to the radius of spherical cryoprobe, Journal of Theoretical and Applied Mechanics, 44, 2, 381-392
  • 15. Majchrzak E., Mochnacki B., Jasiński M., 2003, Numerical modelling of bioheat transfer in multi-layer skin tissue domain subjected to a flash fire, Computational Fluid and Solid Mechanics, 1/2, 1766-1770
  • 16. Majchrzak E., Mochnacki B., Dziewoński M., Jasiński M., 2011, Numerical modelling of hyperthermia and hypothermia processes, Advanced Materials Research, 268/270, 257-262
  • 17. Mochnacki B., Majchrzak E., 2003, Sensitivity of the skin tissue on the activity of external heat sources, CMES: Computer Modeling in Engineering and Sciences, 4, 3/4, 431-438
  • 18. Mochnacki B., Piasecka-Belkhayat A., 2013, Numerical modeling of skin tissue heating using the interval finite difference method, MCB: Molecular and Cellular Biomechanics, 10, 3, 233-244
  • 19. Oden J.T., Diller K.R., Bajaj C., Browne J.C., Hazle J., Babuska I., Bass J., Biduat L., Demkowicz L., Elliott A., Feng Y., Fuentes D., Prudhomme S., Rylander M. N., Stafford R. J., Zhang Y., 2007, Dynamic data-driven finite element models for laser treatment of cancer, Numerical Methods for Partial Differential Equations, 23, 904-922
  • 20. Piasecka-Belkhayat A., 2011, Interval boundary element method for transient diffusion problem in two-layered domain, Journal of Theoretical and Applied Mechanics, 49, 1, 265-276
  • 21. Torvi D.A., Dale J.D., 1994, A finite element model of skin subjected to a flash fire, Journal of Mechanical Engineering, 116, 250-255
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-58930b8b-29c2-4cc6-85a6-e9f6077de3ef
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