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Vascular graph model to simulate the cerebral blood flow in realistic vascular networks.

机译:血管图模型可模拟现实血管网络中的脑血流量。

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摘要

At its most fundamental level, cerebral blood flow (CBF) may be modeled as fluid flow driven through a network of resistors by pressure gradients. The composition of the blood as well as the cross-sectional area and length of a vessel are the major determinants of its resistance to flow. Here, we introduce a vascular graph modeling framework based on these principles that can compute blood pressure, flow and scalar transport in realistic vascular networks. By embedding the network in a computational grid representative of brain tissue, the interaction between the two compartments can be captured in a truly three-dimensional manner and may be applied, among others, to simulate oxygen extraction from the vessels. Moreover, we have devised an upscaling algorithm that significantly reduces the computational expense and eliminates the need for detailed knowledge on the topology of the capillary bed. The vascular graph framework has been applied to investigate the effect of local vascular dilation and occlusion on the flow in the surrounding network.
机译:在最基本的水平上,脑血流(CBF)可以建模为通过压力梯度通过电阻器网络驱动的流体流。血液的成分以及血管的横截面积和长度是其流动阻力的主要决定因素。在这里,我们介绍基于这些原理的血管图建模框架,该框架可以计算现实的血管网络中的血压,流量和标量运输。通过将网络嵌入代表大脑组织的计算网格中,可以以真正的三维方式捕获两个隔室之间的相互作用,并且可以将其应用于模拟从血管中提取的氧气。此外,我们设计了一种升级算法,该算法可显着减少计算费用并消除对毛细管床拓扑结构的详细了解的需要。血管图框架已用于研究局部血管扩张和阻塞对周围网络中血流的影响。

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