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Tree-shaped vascular wall designs for localized intense cooling

机译:树状血管壁设计,可进行局部剧烈冷却

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This paper is a proposal to embed tree-shaped vasculatures in a wall designed such that the wall withstands without excessive hot spots the intense heating that impinges on it. The vasculature is a quilt of square-shaped panels, each panel having a tree vasculature that connects the center with the perimeter. The coolant may flow in either direction, center-perimeter, or perimeter-center, although here only the center-perimeter flow direction is illustrated. Numerical simulations of conjugate heat and fluid flow in three directions show that it is possible to determine all the optimal geometric features of vasculatures with up to three levels of bifurcation (n = 3). The global performance is evaluated in terms of the overall thermal resistance, pressure difference, flow resistance and pumping power. The improvements in global performance diminish as the number of bifurcation levels increases. No flow architecture is universally superior. The dendritic designs are superior at the low and high ends of the pressure difference range. The radial designs are superior at intermediate pressure difference numbers.
机译:本文提出了将树状脉管系统嵌入到设计的墙壁中的建议,该墙壁应设计成使墙壁能够承受没有过多热点的强烈加热。脉管系统是正方形面板的被子,每个面板均具有将中心与周边相连的树木脉管。冷却剂可以沿任何方向,中心周长或周长中心流动,尽管此处仅示出了中心周长流动方向。在三个方向上共轭热和流体流动的数值模拟表明,可以确定最多三个分叉水平(n = 3)的脉管系统的所有最佳几何特征。根据整体热阻,压差,流阻和泵浦功率评估整体性能。随着分叉级别数量的增加,全局性能的改善会逐渐减弱。没有流程架构具有普遍优势。树枝状设计在压差范围的低端和高端具有优势。径向设计在中间压差值方面表现优异。

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