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Multi-time-scale heat transfer modeling of turbid tissues exposed to short-pulsed irradiations.

机译:暴露于短脉冲辐射下的浑浊组织的多时间尺度传热模型。

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摘要

A combined hyperbolic radiation and conduction heat transfer model is developed to simulate multi-time-scale heat transfer in turbid tissues exposed to short-pulsed irradiations. An initial temperature response of a tissue to an ultrashort pulse irradiation is analyzed by the volume-average method in combination with the transient discrete ordinates method for modeling the ultrafast radiation heat transfer. This response is found to reach pseudo steady state within 1ns for the considered tissues. The single pulse result is then utilized to obtain the temperature response to pulse train irradiation at the microsecond/millisecond time scales. After that, the temperature field is predicted by the hyperbolic heat conduction model which is solved by the MacCormack's scheme with error terms correction. Finally, the hyperbolic conduction is compared with the traditional parabolic heat diffusion model. It is found that the maximum local temperatures are larger in the hyperbolic prediction than the parabolic prediction. In the modeled dermis tissue, a 7% non-dimensional temperature increase is found. After about 10 thermal relaxation times, thermal waves fade away and the predictions between the hyperbolic and parabolic models are consistent.
机译:建立了一个双曲线辐射与传导热交换的组合模型,以模拟在短脉冲辐射下的浑浊组织中的多尺度热交换。通过体积平均法与瞬态离散纵坐标法相结合来分析组织对超短脉冲辐射的初始温度响应,以对超快辐射传热进行建模。对于所考虑的组织,发现此响应在1ns内达到伪稳态。然后利用单个脉冲结果来获得对微秒/毫秒时间标度下的脉冲序列辐照的温度响应。此后,通过双曲型导热模型预测温度场,该模型由具有误差项校正的MacCormack方案求解。最后,将双曲线传导与传统的抛物线热扩散模型进行了比较。发现在双曲线预测中最大局部温度大于抛物线预测。在建模的真皮组织中,发现7%的无量纲温度升高。经过约10次热弛豫时间后,热波消失,双曲线和抛物线模型之间的预测是一致的。

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