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Vascularization with line-to-line trees in counterflow heat exchange

机译:在逆流热交换中使用线到线树进行血管化

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Here we report the heat and fluid flow characteristics of counterflow heat exchangers with tree-shaped line-to-line flow channels. The flow structures of the hot and cold sides are sequences of point-to-line trees that alternate with upside-down trees. The paper shows under what conditions the tree vascularization offers greater heat flow access than corresponding conventional designs with parallel single-scale channels. The analytical part is based on assuming fully developed laminar flow in every channel and negligible longitudinal conduction in the solid. The numerical part consists of simulations of three-dimensional convection coupled with conduction in the solid. It is shown that tree vascularization offers greater heat flow access (smaller global thermal resistance) than parallel channels when the number of pairing levels increases and the available pumping power or pressure drop is specified. When the solid thermal conductivity increases, the heat transfer effectiveness decreases because of the effect of longitudinal heat conduction. The nonuniformity in fluid outlet temperature becomes more pronounced when the number of pairing levels increases and the pumping power (or pressure drop number) increases. The nonuniformity in outlet fluid temperature decreases when the solid thermal conductivity increases.
机译:在这里,我们报告了具有树形线对线流动通道的逆流热交换器的热和流体流动特性。热侧和冷侧的流动结构是点对线树的序列,这些树与倒置树交替。本文表明,在什么条件下,树木的血管形成比具有平行单尺度通道的相应常规设计提供了更大的热流通道。分析部分基于假设每个通道中的层流充分发展,而固体中的纵向传导可忽略不计。数值部分包括三维对流和固体中传导的模拟。结果表明,当配对数量增加并且指定了可用的泵送功率或压降时,树木的血管形成比平行通道提供更多的热流通道(较小的全局热阻)。当固体导热率增加时,由于纵向导热的影响,传热效率降低。当配对水平的数量增加并且泵浦功率(或压降数量)增加时,流体出口温度的不均匀性变得更加明显。当固体热导率增加时,出口流体温度的不均匀性降低。

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