首页> 外文期刊>Journal of Fluids Engineering: Transactions of the ASME >Fluid-Structure Interaction Analysis of Pulsatile Blood Flow and Heat Transfer in Living Tissues During Thermal Therapy
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Fluid-Structure Interaction Analysis of Pulsatile Blood Flow and Heat Transfer in Living Tissues During Thermal Therapy

机译:热疗过程中活组织中脉动血流和热传递的流固耦合分析

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The current numerical investigation tackles the fluid-structure interaction in a blood vessel subjected to a prescribed heating scheme on tumor tissues under thermal therapy. A pulsating incompressible laminar blood flow was employed to examine its impact on the flow and temperature distribution within the blood vessel. In addition, the arterial wall was modeled using the volume-averaged porous media theory. The motion of a continuous and deformable arterial wall can be described by a continuous displacement field resulting from blood pressure acting on the tissue. Moreover, discretization of the transport equations was achieved using a finite element scheme based on the Galerkin method of weighted residuals. The numerical results were validated by comparing them against documented studies in the literature. Three various heating schemes were considered: constant temperature, constant wall flux, and a step-wise heat flux. The first two uniform schemes were found to exhibit large temperature variation within the tumor, which might affect the surrounding healthy tissues. Meanwhile, larger vessels and flexible arterial wall models render higher variation of the temperature within the treated tumor, owing to the enhanced mixing in the vicinity of the bottom wall.
机译:当前的数值研究解决了在热疗法下在肿瘤组织上经受规定的加热方案的血管中的流体-结构相互作用。使用脉动的不可压缩的层流来检查其对血管内流量和温度分布的影响。此外,使用体积平均多孔介质理论对动脉壁进行建模。连续且可变形的动脉壁的运动可以通过作用在组织上的血压产生的连续位移场来描述。此外,使用基于加权残差的Galerkin方法的有限元方案实现了输运方程的离散化。通过将其与文献中的记录研究进行比较,验证了数值结果。考虑了三种不同的加热方案:恒定温度,恒定壁通量和逐步热通量。发现前两个统一方案在肿瘤内显示出较大的温度变化,这可能会影响周围的健康组织。同时,由于底壁附近的混合增强,较大的血管和柔性的动脉壁模型使被治疗的肿瘤内的温度变化更大。

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