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首页> 外文期刊>International Journal of Heat and Mass Transfer >Multifunctional heat exchangers derived from three-dimensional micro-lattice structures
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Multifunctional heat exchangers derived from three-dimensional micro-lattice structures

机译:三维微晶格结构衍生的多功能换热器

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摘要

A micro-scale cross-flow heat exchanger is constructed from a hollow nickel micro-lattice structure, which is fabricated by conformally electroplating nickel onto a sacrificial polymer micro-lattice formed from self-propagating photopolymer waveguides. The periodic unit cell of the hollow nickel micro-lattice structure tested here includes lattice members with a diameter <1 mm and a nominal pore size <9 mm. The heat transfer performance of the micro-lattice-based heat exchanger is analyzed in terms of thermal conductance per unit volume, which is equal to the value of overall heat transfer coefficient multiplied by surface area to volume ratio. Calculated values range from 0.84 to 1.58W/cm~3K for Reynolds number ranges of between 3400 ± 200 and 6500 ± 500 for hot water flow inside the hollow lattice members and 85 + 6 and 240 ± 20 for cold water flow around the lattice members. Based on a developed correlation, the experimental heat transfer data is used to predict the thermal performance of larger and smaller micro-lattice-based heat exchangers, as well as various micro-lattice feature dimensions that are tunable with the fabrication process (node-to-node spacing, inner diameter, etc.). The micro-lattice heat exchanger was tested under quasi-static compression and the results illustrate the multifunctional capability for load bearing and energy absorption applications. This work demonstrates a multifunctional heat exchanger with a fully-scalable fabrication process which is useful for size and weight constrained heat transfer applications, including those in the automotive and aerospace industries.
机译:微型错流换热器由中空镍微晶格结构构成,该结构是通过将镍保形电镀到由自蔓延光敏聚合物波导形成的牺牲聚合物微晶格上制成的。在此测试的中空镍微晶格结构的周期晶胞包括直径<1 mm和标称孔径<9 mm的晶格构件。基于每单位体积的导热系数来分析基于微晶格的热交换器的导热性能,该导热系数等于总导热系数的值乘以表面积与体积之比。对于空心格栅内部的热水流动,雷诺数范围为3400±200至6500±500,对于雷诺数范围,计算值的范围为0.84至1.58W / cm〜3K,对于围绕格栅构件的冷水流速,其计算值为85 + 6和240±20 。基于已开发的相关性,实验传热数据可用于预测较大和较小的基于微晶格的换热器的热性能,以及可根据制造过程进行调整的各种微晶格特征尺寸(从节点到-节点间距,内径等)。在准静态压缩下对微晶格热交换器进行了测试,结果说明了其在承重和能量吸收应用方面的多功能性。这项工作演示了一种具有完全可缩放制造过程的多功能热交换器,该热交换器可用于尺寸和重量受限的传热应用,包括汽车和航空航天工业中的那些应用。

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