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MATHEMATICAL MODELS FOR ANALYZING TISSUE ABLATION USING SHORT PULSE LASERS

机译:使用短脉冲激光分析组织消融的数学模型

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Mathematical modeling of biological tissue ablation performed using a short pulse laser and the corresponding experimental analysis is of fundamental importance to the understanding and predicting the temperature distribution and heat affected zone for advancing surgical application of lasers. The objective of this paper is to use mathematical models to predict the thermal ablated zones during irradiation of freshly excised mouse skin tissue samples by a novel approach using a focused laser beam from a short pulse laser source. Suggested mathematical model is Stefan kind free boundary problem for the heat equation in unknown region. Temperature of the skin satisfies the classical heat equation subjected to Neumann boundary condition on the known boundary, while along the time-dependent unknown boundary, which characterizes the ablation depth, two conditions are met: (1) temperature is equal to the ablation temperature and (2) classical Stefan condition is satisfied. The latter expresses the conservation of energy at the ablation moment. A method of integral equations is used to reduce the Stefan problem to a system of two Volterra kind integral equations for temperature and ablation depth. MATLAB is used subsequently for the numerical solution. Experiments are performed using two lasers- a diode laser having a wavelength of 1552 nm and pulsewidth of 1.3 ps. The surface temperature distribution is measured using an imaging camera. After irradiation, histological studies of laser irradiated tissues are performed using frozen sectioning technique to determine the extent of thermal damage caused by the laser beam. The ablation depth and width is calculated based on the interpolated polygon technique using image processing software. The surface temperature distribution and the ablation depth obtained from the mathematical models are compared with the experimental measurements and are in very good agreement. A parametric study of various laser parameters such as time-average power, pulse repetition rate, pulse energy, and irradiation time is performed to determine the necessary ablation threshold parameters.
机译:使用短脉冲激光进行的生物组织消融的数学建模和相应的实验分析对理解和预测温度分布和热影响区域来推进激光器的外科施用来进行基本的重要性。本文的目的是使用数学模型在通过使用来自短脉冲激光源的聚焦激光束的新方法通过新的方法来预测热消耗的区域。建议的数学模型是未知区域中热方程的斯特曼种类自由边界问题。皮肤的温度满足了在已知边界上进行Neumann边界条件的经典热方程,而沿着时间依赖的未知边界,其表征消融深度,满足两个条件:(1)温度等于消融温度和(2)满足古典斯特凡条件。后者表达了消融时刻的能量守恒。整体方程的方法用于将Stefan问题减少到用于温度和消融深度的两个Volterra种积分方程的系统。随后使用MATLAB用于数值解决方案。使用两个激光器进行实验 - 二极管激光器波长为1552nm,脉冲宽度为1.3 ps。使用成像相机测量表面温度分布。在照射后,使用冷冻切片技术进行激光照射组织的组织学研究,以确定由激光束引起的热损坏程度。基于使用图像处理软件的内插多边形技术计算消融深度和宽度。将从数学模型获得的表面温度分布和消融深度与实验测量进行比较,并且非常良好。执行各种激光参数的参数研究,例如时间平均功率,脉冲重复率,脉冲能量和照射时间以确定必要的消融阈值参数。

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