A novel modeling and simulation technique of photo-thermal interactions between lasers and living biological tissues undergoing multiple changes in phase

Knowledge of heat transfer in biological bodies has many therapeutic applications involving either raising or lowering of temperature, and often requires precise monitoring of the spatial distribution of thermal histories that are produced during a treatment protocol. Extremes of temperature into the freezing and burning ranges are useful in surgical procedures for selective killing and/or removal of target tissues. For example, the primary objective of hyperthermia is to raise the temperature of the diseased tissue to a therapeutic value, typically 41- 44 degrees C, and then thermally destroy it. The present paper therefore aims to develop a mathematical model for effective simulation of photo--thermal interactions between laser rays and biological tissues. In particular, damage of biological tissues when subjected to single point laser diathermy is numerically investigated using a unique enthalpy-based approach for modeling multiple phase change, (namely, melting of fat and vaporization of water content of the tissues) and the associated release/absorption of latent heat in conjunction with unsteady state heat conduction mechanisms. The governing equations of bio-heat transfer coupled with initial and boundary conditions are solved using a finite volume approach in conjunction with line by a line tri-diagonal matrix algorithm (TDMA) solver. Temperature responses of tissues subject to laser heating are quantitatively investigated in detail using the present model, and the resultant solutions are expected to be immensely useful in a variety of Bio-thermal practices in medicine and surgery.

[1]  M. M. Chen,et al.  Effect of surface tension gradient driven convection in a laser melt pool: Three‐dimensional perturbation model , 1988 .

[2]  Jyh-Chen Chen,et al.  Thermocapillary flows of surface melting due to a moving heat flux , 1991 .

[3]  B. Basu,et al.  Numerical study of steady-state laser melting problem , 1988 .

[4]  Andrei V. Ivanov,et al.  Physical and mathematical models of the heat action of laser radiation on biotissues , 1995, Other Conferences.

[5]  S. Patankar Numerical Heat Transfer and Fluid Flow , 2018, Lecture Notes in Mechanical Engineering.

[6]  Zhong-Shan Deng,et al.  Analytical study on bioheat transfer problems with spatial or transient heating on skin surface or inside biological bodies. , 2002, Journal of biomechanical engineering.

[7]  Robert E. Nordquist,et al.  Ablation of skin tissue by holmium:YAG laser , 1994, SPIE LASE.

[8]  Jyoti Mazumder,et al.  A two-dimensional transient model for convection in laser melted pool , 1984 .

[9]  J. Mazumder,et al.  Three-dimensional axisymmetric model for convection in laser-melted pools , 1987 .

[10]  Vaughan R Voller,et al.  ENTHALPY-POROSITY TECHNIQUE FOR MODELING CONVECTION-DIFFUSION PHASE CHANGE: APPLICATION TO THE MELTING OF A PURE METAL , 1988 .

[11]  S. Kou,et al.  Three-dimensional convection in laser melted pools , 1986 .

[12]  Vasili A. Mostovnikov,et al.  Primary photophysical processes which define the biological and therapeutic effect of low-intensity laser radiation , 1995, Other Conferences.