首页> 外文期刊>Physics in medicine and biology. >An analytical study of 'Poisson conduction shape factors' for two thermally significant vessels in a finite, heated tissue
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An analytical study of 'Poisson conduction shape factors' for two thermally significant vessels in a finite, heated tissue

机译:有限加热组织中两个热显着血管的“泊松传导形状因子”的分析研究

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To conveniently and properly account for the vessel to vessel and vessel to tissue heat transfer rates to predict in vivo tissue temperature distributions, this paper analyses two different types of Poisson conduction shape factors (PCSFs) for unheated and/or uniformly heated, non-insulated, finite tissue domains. One is related to the heat transfer rate from one vessel to another (vessel-vessel PCSF (VVPCSF)) and the other is related to the vessel to tissue heat transfer rates (vessel-tissue PCSF (VTPCSF)). Two alternative formulations for the VTPCSFs are studied; one is based on the difference between the vessel wall and tissue boundary temperatures, and the other on the difference between the vessel wall and the average tissue temperatures. The effects of a uniforrn source term and of the diameters and locations of the two vessels on the PCSFs are studied for two different cases: one, when the vessel wall temperatures are lower than the tissue boundary temperature, i.e., the vessels cool the tissue, and vice versa. Results show that, first, the VVPCSFs are only geometry dependent and they do not depend on the applied source term and the vessel wall and tissue boundary temperatures. Conversely, the VTPCSFs are strong functions of the source term and of the temperatures of the vessel walls and tissue boundary. These results suggest that to account for the vessel to vessel heat transfer rates, the VVPCSFs can be evaluated solely based on the vessel network geometry. However, to account for the vessel to tissue heat transfer rates, the VTPCSFs should be used iteratively while solving for the tissue temperature distributions. Second, unlike the tissue boundary temperature-based VTPCSFs which may become singular only in heated tissues, the average tissue temperature-based VTPCSFs have the potential to become singular in both unheated and heated tissues. These results suggest that caution should be exercised in the use of the VTPCSFs since they may approach singularity by virtue of their definition and thus may introduce large errors in the evaluation of tissue temperature distribution. Presented results are new and complementary to the previous shape factor results since these include the effect of (1) source term and (2) unequal vessel-tissue heat transfer rates from the two vessels to the tissue.
机译:为了方便,正确地计算血管到血管以及血管到组织的传热速率,以预测体内组织温度分布,本文针对未加热和/或均匀加热,未绝缘的两种不同类型的泊松传导形状因子(PCSF)进行了分析。 ,有限的组织域。一个与从一个容器到另一个容器的传热速率(血管-血管PCSF(VVPCSF))有关,另一个与容器到组织的传热速率(血管-组织PCSF(VTPCSF))有关。研究了VTPCSF的两种替代配方;一种基于血管壁和组织边界温度之间的差异,另一种基于血管壁和平均组织温度之间的差异。对于两种不同情况,研究了单源源项以及两个容器的直径和位置对PCSF的影响:一种,当容器壁温度低于组织边界温度,即容器冷却组织时,反之亦然。结果表明,首先,VVPCSF仅取决于几何形状,并且不取决于所应用的源项以及血管壁和组织边界温度。相反,VTPCSF是源项以及血管壁和组织边界温度的强大函数。这些结果表明,要考虑容器之间的传热速率,可以仅基于容器网络几何形状来评估VVPCSF。但是,要考虑到血管到组织的传热速率,在求解组织温度分布时,应迭代使用VTPCSF。其次,与基于组织边界温度的VTPCSF仅在受热的组织中可能变得单一不同,基于组织温度的平均VTPCSF在未加热和受热的组织中都有可能变得单一。这些结果表明,在使用VTPCSF时应谨慎行事,因为它们的定义可能会接近奇点,从而可能在组织温度分布评估中引入较大的误差。提出的结果是新的并且是对先前形状因子结果的补充,因为这些结果包括(1)源项和(2)从两个血管到组织的不相等的血管-组织传热速率的影响。

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