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首页> 外文期刊>Letters in heat and mass transfer >Temperature response in biological tissue by alternating heating and cooling modalities with sinusoidal temperature oscillation on the skin
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Temperature response in biological tissue by alternating heating and cooling modalities with sinusoidal temperature oscillation on the skin

机译:通过交替加热和冷却方式以及皮肤上正弦波温度振荡的生物组织中的温度响应

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摘要

This study investigates the transient temperature response in biological tissue immersed in warm and cold water alternately with a sinusoidal temperature oscillation on the skin surface to simulate the contrast therapy which uses alternatively heat and cold modalities in subacute and chronic conditions. In addition, this type of analysis is also applied to assessing the blood perfusion rate in the skin through noninvasive technology by imposing a periodic temperature load onto the skin surface and then measuring the phase shift of the resulting surface heat flux. Based on the Pennes bio-heat transfer equation, the Laplace transform is used to derive an exact solution to the temperature variation in the tissue from the initial oscillation to the final steady periodic oscillation. Furthermore, the solutions to special cases under no perfusion rate, constant temperature, and the combination of these two assumptions are demonstrated in this study. The results show that both a larger perfusion rate and a greater tissue depth decrease the amplitude of the sinusoidal temperature response. Meanwhile, a larger perfusion rate can reduce the phase angle related to the sinusoidal surface temperature oscillation and surface heat flux.
机译:这项研究调查了浸泡在冷热水中的生物组织的瞬态温度响应,交替地在皮肤表面产生了正弦波的温度振荡,以模拟对比疗法,该疗法在亚急性和慢性条件下交替使用冷热模式。此外,这种分析还可以通过无创技术,通过在皮肤表面施加周期性的温度负荷,然后测量所得表面热通量的相移,来评估皮肤中的血液灌注率。基于Pennes生物热传递方程,拉普拉斯变换可用于得出组织温度从初始振荡到最终稳定周期性振荡的精确解。此外,本研究证明了在无灌注率,恒定温度以及这两个假设相结合的特殊情况下的解决方案。结果表明,较大的灌注速率和较大的组织深度都会降低正弦温度响应的幅度。同时,较大的灌注速率可以减小与正弦表面温度振荡和表面热通量有关的相位角。

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