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Analytical solution of the parabolic and hyperbolic heat transfer equations with constant and transient heat flux conditions on skin tissue

机译:恒定和瞬态热通量条件在皮肤组织上的抛物线和双曲线热传递方程的解析解

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摘要

In this article, the parabolic (Pennes bioheat equation) and hyperbolic (thermal wave) bioheat transfer models for constant, periodic and pulse train heat flux boundary conditions are solved analytically by applying the Laplace transform method for skin as a semi-infinite and finite domain. The bioheat transfer analysis with transient heat flux on skin tissue has only been studied by Pennes equation for a semi-infinite domain. For modeling heat transfer in short duration of an initial transient, or when the propagation speed of the thermal wave is finite, there are major differences between the results of parabolic and hyperbolic heat transfer equations. The non-Fourier bioheat transfer equation describes the thermal behavior in the biological tissues better than Fourier equation. The outcome of transient heat flux condition shows that by penetrating into the depths beneath the skin subjected to heat, the amplitude of temperature response decreases significantly. The blood perfusion rate can be predicted using the phase shift between the surface temperature and transient surface heat flux. The thermal damage of the skin is studied by applying both the parabolic and hyperbolic bioheat transfer equations.
机译:在本文中,通过应用皮肤的拉普拉斯变换方法作为半无限和有限域,解析地解决了恒定,周期性和脉冲串热通量边界条件的抛物线(Pennes生物热方程)和双曲线(热波)生物热传递模型。 。皮肤组织上具有瞬态热通量的生物传热分析仅通过Pennes方程研究了一个半无限域。为了在初始瞬态的短时间内模拟传热,或者当热波的传播速度有限时,抛物线和双曲线传热方程的结果之间存在很大差异。非傅立叶生物热传递方程比傅立叶方程更好地描述了生物组织中的热行为。瞬态热通量条件的结果表明,通过进入受热的皮肤下方的深度,温度响应的幅度将显着降低。可以使用表面温度和瞬时表面热通量之间的相移来预测血液灌注速率。通过应用抛物线和双曲线生物热传递方程来研究皮肤的热损伤。

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