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An advanced computational bioheat transfer model for a human body with an embedded systemic circulation

机译:具有嵌入式系统循环的人体高级计算生物热传递模型

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摘要

In the present work, an elaborate one-dimensional thermofluid model for a human body is presented. By contrast to the existing pure conduction-/perfusion-based models, the proposed methodology couples the arterial fluid dynamics of a human body with a multi-segmental bioheat model of surrounding solid tissues. In the present configuration, arterial flow is included through a network of elastic vessels. More than a dozen solid segments are employed to represent the heat conduction in the surrounding tissues, and each segment is constituted by a multilayered circular cylinder. Such multi-layers allow flexible delineation of the geometry and incorporation of properties of different tissue types. The coupling of solid tissue and fluid models requires subdivision of the arterial circulation into large and small arteries. The heat exchange between tissues and arterial wall occurs by convection in large vessels and by perfusion in small arteries. The core region, including the heart, provides the inlet conditions for the fluid equations. In the proposed model, shivering, sweating, and perfusion changes constitute the basis of the thermoregulatory system. The equations governing flow and heat transfer in the circulatory system are solved using a locally conservative Galerkin approach, and the heat conduction in the surrounding tissues is solved using a standard implicit backward Euler method. To investigate the effectiveness of the proposed model, temperature field evolutions are monitored at different points of the arterial tree and in the surrounding tissue layers. To study the differences due to flow-induced convection effects on thermal balance, the results of the current model are compared against those of the widely used modelling methodologies. The results show that the convection significantly influences the temperature distribution of the solid tissues in the vicinity of the arteries. Thus, the inner convection has a more predominant role in the human body heat balance than previously thought. To demonstrate its capabilities, the proposed new model is used to study different scenarios, including thermoregulation inactivity and variation in surrounding atmospheric conditions.
机译:在目前的工作中,提出了一种用于人体的精细的一维热流体模型。与现有的基于纯传导/灌注的模型相比,所提出的方法将人体的动脉流体动力学与周围实体组织的多段生物热模型结合在一起。在本构型中,通过弹性血管网络包括动脉血流。十几个实心段用于表示周围组织中的热传导,每个段由多层圆柱体组成。这样的多层允许几何形状的灵活描绘和不同组织类型的特性的结合。实体组织和流体模型的耦​​合需要将动脉循环细分为大动脉和小动脉。组织与动脉壁之间的热交换通过大血管中的对流和小动脉中的灌注发生。包括心脏在内的核心区域为流体方程式提供了入口条件。在提出的模型中,发抖,出汗和灌注变化构成了体温调节系统的基础。使用局部保守的Galerkin方法求解控制循环系统中流动和传热的方程,并使用标准的隐式向后欧拉方法求解周围组织中的热传导。为了研究所提出模型的有效性,在动脉树的不同点以及周围组织层中监测温度场的变化。为了研究由于流动引起的对流效应对热平衡造成的差异,将当前模型的结果与广泛使用的建模方法进行了比较。结果表明,对流显着影响动脉附近实体组织的温度分布。因此,内部对流在人体热平衡中的作用比以前认为的要重要。为了证明其功能,建议的新模型用于研究不同的场景,包括温度调节不活跃以及周围大气条件的变化。

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