Thermal Damage Analysis in Biological Tissues Under Optical Irradiation: Application to the Skin
被引:0
作者:
Félix Fanjul-Vélez
论文数: 0引用数: 0
h-index: 0
机构:University of Cantabria,Applied Optical Techniques Group, ETSII y de Telecomunicación, TEISA Department
Félix Fanjul-Vélez
Noé Ortega-Quijano
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h-index: 0
机构:University of Cantabria,Applied Optical Techniques Group, ETSII y de Telecomunicación, TEISA Department
Noé Ortega-Quijano
José Ramón Solana-Quirós
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h-index: 0
机构:University of Cantabria,Applied Optical Techniques Group, ETSII y de Telecomunicación, TEISA Department
José Ramón Solana-Quirós
José Luis Arce-Diego
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h-index: 0
机构:University of Cantabria,Applied Optical Techniques Group, ETSII y de Telecomunicación, TEISA Department
José Luis Arce-Diego
机构:
[1] University of Cantabria,Applied Optical Techniques Group, ETSII y de Telecomunicación, TEISA Department
[2] University of Cantabria,Thermodynamics and Statistical Physics Group, Applied Physics Department
来源:
International Journal of Thermophysics
|
2009年
/
30卷
关键词:
Arrhenius analysis;
Bio-heat equation;
CEM 43 °C approach;
Optical treatment;
Thermal damage;
Thermo-optical properties;
D O I:
暂无
中图分类号:
学科分类号:
摘要:
The use of optical sources in medical praxis is increasing nowadays. In this study, different approaches using thermo-optical principles that allow us to predict thermal damage in irradiated tissues are analyzed. Optical propagation is studied by means of the radiation transport theory (RTT) equation, solved via a Monte Carlo analysis. Data obtained are included in a bio-heat equation, solved via a numerical finite difference approach. Optothermal properties are considered for the model to be accurate and reliable. Thermal distribution is calculated as a function of optical source parameters, mainly optical irradiance, wavelength and exposition time. Two thermal damage models, the cumulative equivalent minutes (CEM) 43 °C approach and the Arrhenius analysis, are used. The former is appropriate when dealing with dosimetry considerations at constant temperature. The latter is adequate to predict thermal damage with arbitrary temperature time dependence. Both models are applied and compared for the particular application of skin thermotherapy irradiation.