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A fast and simple algorithm for the calculation of convective heat transfer by large vessels in three-dimensional inhomogeneous tissues

机译:计算三维异质组织中大血管对流传热的快速简便算法

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摘要

Three-dimensional anatomical data of tissues and vessel structures are decomposed into elementary cubic nodes by a special digitizing routine with vessels represented by connected strings of vessel nodes. Vessel cross sections may be irregularly shaped and/or tapered. Conductive and convective heat transfer was calculated through use of the heat balance technique on each cubic node, resulting in an explicit finite-difference computational scheme. Employing a three-time-level scheme, the Fourier stability criterion is circumvented allowing arbitrary time steps to be defined in the algorithm. Time steps as large as 100 times the Fourier restricted one still result in stable and convergent calculations of the stationary temperature distribution. Vessels with different flows and diameters are incorporated by performing a vessel-specific second discretization step in time. Using the new algorithm as a mathematical tool the thermal equilibration lengths of vessel segments have been established under a broad range of geometrical and flow conditions. Validation followed from comparing transient and stationary temperature distributions derived by the proposed algorithm to those from an accurate cylindrical numerical model. Predicted values for the thermal equilibration lengths are compared to an analytical expression and phantom experiments.
机译:通过特殊的数字化例程将组织和血管结构的三维解剖数据分解为基本立方节点,其中血管由相连的血管节点串表示。血管横截面可以是不规则形状和/或锥形的。通过在每个立方节点上使用热平衡技术来计算传导和对流的热传递,从而得出显式的有限差分计算方案。采用三级方案,规避了傅立叶稳定性准则,从而允许在算法中定义任意时间步长。高达傅立叶限制的100倍的时间步长仍然可以稳定,收敛地计算固定温度分布。通过及时执行特定于容器的第二离散化步骤,可以合并具有不同流量和直径的容器。使用新算法作为数学工具,已经在广泛的几何和流动条件下确定了容器段的热平衡长度。通过比较由所提出的算法得出的瞬态和静态温度分布与精确圆柱数值模型的温度分布进行验证。将热平衡长度的预测值与分析表达式和幻像实验进行比较。

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