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低温喷雾冷却引起的随时间变化的表面热通量估算方法。

Methodology for estimation of time-dependent surface heat flux due to cryogen spray cooling.

作者信息

Tunnell James W, Torres Jorge H, Anvari Bahman

机构信息

Department of Bioengineering, Rice University, Houston, TX 77251, USA.

出版信息

Ann Biomed Eng. 2002 Jan;30(1):19-33. doi: 10.1114/1.1432691.

Abstract

Cryogen spray cooling (CSC) is an effective technique to protect the epidermis during cutaneous laser therapies. Spraying a cryogen onto the skin surface creates a time-varying heat flux, effectively cooling the skin during and following the cryogen spurt. In previous studies mathematical models were developed to predict the human skin temperature profiles during the cryogen spraying time. However, no studies have accounted for the additional cooling due to residual cryogen left on the skin surface following the spurt termination. We formulate and solve an inverse heat conduction (IHC) problem to predict the time-varying surface heat flux both during and following a cryogen spurt. The IHC formulation uses measured temperature profiles from within a medium to estimate the surface heat flux. We implement a one-dimensional sequential function specification method (SFSM) to estimate the surface heat flux from internal temperatures measured within an in vitro model in response to a cryogen spurt. Solution accuracy and experimental errors are examined using simulated temperature data. Heat flux following spurt termination appears substantial; however, it is less than that during the spraying time. The estimated time-varying heat flux can subsequently be used in forward heat conduction models to estimate temperature profiles in skin during and following a cryogen spurt and predict appropriate timing for onset of the laser pulse.

摘要

冷冻喷雾冷却(CSC)是一种在皮肤激光治疗期间保护表皮的有效技术。将冷冻剂喷到皮肤表面会产生随时间变化的热通量,在冷冻剂喷射期间及之后有效地冷却皮肤。在先前的研究中,已开发出数学模型来预测冷冻剂喷射期间人体皮肤的温度分布。然而,尚无研究考虑到喷射终止后残留在皮肤表面的冷冻剂所带来的额外冷却效果。我们制定并求解了一个逆热传导(IHC)问题,以预测冷冻剂喷射期间及之后随时间变化的表面热通量。该IHC公式使用介质内部测量的温度分布来估计表面热通量。我们采用一维序列函数指定方法(SFSM),根据体外模型中响应冷冻剂喷射而测量的内部温度来估计表面热通量。使用模拟温度数据检查解的准确性和实验误差。喷射终止后的热通量看起来很大;然而,它小于喷射期间的热通量。随后,估计的随时间变化的热通量可用于正向热传导模型,以估计冷冻剂喷射期间及之后皮肤中的温度分布,并预测激光脉冲开始的合适时机。

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