Jiang S C, Zhang X X
Key Laboratory of Thermal Science and Power Engineering, Department of Thermal Engineering, Tsinghua University, 100084 Beijing, PR China.
Lasers Med Sci. 2005 Dec;20(3-4):122-31. doi: 10.1007/s10103-005-0359-5. Epub 2005 Nov 19.
A two-dimensional model was developed to model the effects of dynamic changes in the physical properties on tissue temperature and damage to simulate laser-induced interstitial thermotherapy (LITT) treatment procedures with temperature monitoring. A modified Monte Carlo method was used to simulate photon transport in the tissue in the non-uniform optical property field with the finite volume method used to solve the Pennes bioheat equation to calculate the temperature distribution and the Arrhenius equation used to predict the thermal damage extent. The laser light transport and the heat transfer as well as the damage accumulation were calculated iteratively at each time step. The influences of different laser sources, different applicator sizes, and different irradiation modes on the final damage volume were analyzed to optimize the LITT treatment. The numerical results showed that damage volume was the smallest for the 1,064-nm laser, with much larger, similar damage volumes for the 980- and 850-nm lasers at normal blood perfusion rates. The damage volume was the largest for the 1,064-nm laser with significantly smaller, similar damage volumes for the 980- and 850-nm lasers with temporally interrupted blood perfusion. The numerical results also showed that the variations in applicator sizes, laser powers, heating durations and temperature monitoring ranges significantly affected the shapes and sizes of the thermal damage zones. The shapes and sizes of the thermal damage zones can be optimized by selecting different applicator sizes, laser powers, heating duration times, temperature monitoring ranges, etc.
开发了一个二维模型来模拟物理性质的动态变化对组织温度和损伤的影响,以模拟激光诱导间质热疗(LITT)治疗过程并进行温度监测。采用改进的蒙特卡罗方法模拟光子在非均匀光学性质场中的组织内传输,用有限体积法求解佩恩斯生物热方程来计算温度分布,并用阿伦尼乌斯方程预测热损伤程度。在每个时间步长上迭代计算激光光传输、热传递以及损伤累积。分析了不同激光源、不同施照器尺寸和不同照射模式对最终损伤体积的影响,以优化LITT治疗。数值结果表明,在正常血液灌注率下,对于1064nm激光,损伤体积最小,而对于980nm和850nm激光,损伤体积大得多且相似。在血液灌注暂时中断时,对于1064nm激光,损伤体积最大,而对于980nm和850nm激光,损伤体积显著小得多且相似。数值结果还表明,施照器尺寸、激光功率、加热持续时间和温度监测范围的变化显著影响热损伤区的形状和大小。通过选择不同的施照器尺寸、激光功率、加热持续时间、温度监测范围等,可以优化热损伤区的形状和大小。