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The effects of topology upon fluid-flow and heat-transfer within cellular copper structures

机译:拓扑结构对多孔铜结构内流体流动和传热的影响

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The fluid-flow and heat-transfer features of cellular metal lattice structures made from copper by transient liquid phase (TLP) bonding and brazing of plane weave copper meshes (screens) were experimentally characterized under steady-state forced air convection. Due to the inherent structural anisotropy of this metal textile derived structure, the characterizations were performed for several configurations to identify the preferable orientation for maximizing thermal performance as a heat dissipation medium. Results show that the friction factor of bonded wire screens is not simply a function of porosity as stochastic materials such as open-celled metal foams and packed beds, but also a function of orientation (open area ratio). The overall heat transfer depends on porosity and surface area density, but only weakly on orientation. Comparisons with stochastic metal foams and other heat dissipation media such as packed beds, louvered fins and microtruss lattice cellular materials suggest that wire-screen meshes compete favorably with the best available heat dissipation media. The overall thermal efficiency index of the copper textiles-based media is approximately three times larger than that of stochastic copper foams, principally because of the lower pressure drop encountered during coolant propagation through the periodic wire-screen structure.
机译:在稳态强制空气对流下,通过瞬态液相(TLP)粘结和平面编织铜丝网(筛网)的钎焊,对由铜制成的蜂窝状金属晶格结构的流体流动和传热特性进行了实验表征。由于这种金属纺织品衍生结构的固有结构各向异性,因此对几种配置进行了表征,以识别出最佳的取向,以最大化作为散热介质的热性能。结果表明,键合金属丝网的摩擦系数不仅是作为多孔材料(如开孔金属泡沫和填充床)的孔隙率的函数,而且还取决于取向(开口率)的函数。总的热传递取决于孔隙率和表面积密度,但仅取决于取向。与随机金属泡沫和其他散热介质(如填充床,百叶窗式散热片和微桁架格状蜂窝材料)的比较表明,丝网筛网可与最佳的散热介质竞争。铜纺织品基介质的总热效率指数大约是随机泡沫铜的三倍,这主要是由于在冷却剂通过周期性金属丝网结构传播期间遇到的压降较低。

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