Title :
New thermal wave aspects on burn evaluation of skin subjected to instantaneous heating
Author :
Liu, Jing ; Chen, Xu ; Xu, Lisa X.
Author_Institution :
Dept. of Thermal Eng., Tsinghua Univ., Beijing, China
fDate :
4/1/1999 12:00:00 AM
Abstract :
Comparative studies on the well-known Pennes´ equation and the newly developed thermal wave model of bioheat transfer (TWMBT) were performed to investigate the wave like behaviors of bioheat transfer occurred in thermal injury of biological bodies. The one-dimensional TWMBT in a finite medium was solved using separation of variables and the analytical solution showed distinctive wave behaviors of bioheat transfer in skin subjected to instantaneous heating. The finite difference method was used to simulate and study practical problems involved in burn injuries in which skin was stratified as three layers with various thermal physical properties. Deviations between the TWMBT and the traditional Pennes´ equation imply that, for high flux heating with extremely short duration (i.e., flash fire), the TWMBT which accounts for finite thermal wave propagation may provide realistic predictions on burn evaluation. A general heat flux criterion has been established to determine when the thermal wave propagation dominates the principal heat transfer process and the TWMBT can be used for tissue temperature prediction and burn evaluation. A preliminary interpretation on the mechanisms of the wave like behaviors of heat transfer in living tissues was conducted. The application of thermal wave theory can also be possibly extended to other medical problems which involve instantaneous heating or cooling.
Keywords :
biothermics; finite difference methods; heat transfer; physiological models; skin; Pennes´ equation; bioheat transfer; biological bodies; flash fire; high flux heating; instantaneous heating; medical problems; skin burn evaluation; thermal physical properties; thermal wave aspects; thermal wave propagation; Biological system modeling; Cooling; Equations; Finite difference methods; Fires; Heat transfer; Heating; Injuries; Skin; Temperature; Body Temperature; Burns; Energy Metabolism; Fourier Analysis; Heat; Humans; Hyperthermia, Induced; Models, Biological; Skin; Surface Properties; Thermodynamics;
Journal_Title :
Biomedical Engineering, IEEE Transactions on