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Fabrication of copper-based microchannel devices and analysis of their flow and heat transfer characteristics

机译:铜基微通道器件的制造及其流动和传热特性分析

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摘要

Metal-based microchannel heat exchangers (MHEs) offer potential solutions to high heat flux removal applications, such as cooling of high-performance microelectronic and energy-efficient lighting modules. Efficient fabrication of metal-based MHEs and quantitative flow and heat transfer measurements on them are critical for establishing the economic and technical feasibility of such devices. In this paper, all-Cu MHE prototypes were fabricated. Results of flow and heat transfer testing made on these Cu-based MHE prototypes are reported. Efficient fabrication of Cu-based high-aspect-ratio microscale structures (HARMSs) was achieved through direct molding replication using surface-engineered metallic mold inserts. Replicated Cu HARMSs were assembled through solid-state bonding to form all-Cu MHE prototypes. Flow and heat transfer testing of the Cu MHE prototypes was conducted to determine the average rate of heat transfer from the solid Cu body to water flowing within the enclosed microchannel array. Experimentally observed flow and heat transfer data are analyzed and shown to agree with known macroscale correlations once surface roughness and entrance length effects are taken into account.
机译:金属基微通道热交换器(MHE)为高热通量去除应用提供了潜在的解决方案,例如高性能微电子和节能照明模块的冷却。有效地制造基于金属的MHE并对其进行定量的流量和传热测量对于建立此类设备的经济和技术可行性至关重要。在本文中,制造了全铜MHE原型。报告了在这些基于铜的MHE原型上进行的流动和传热测试的结果。铜基高纵横比微结构(HARMSs)的有效制造是通过使用表面工程金属模具插件直接模制复制而实现的。复制的Cu HARMS通过固态键合组装而成,形成全Cu MHE原型。进行了Cu MHE原型的流动和传热测试,以确定从固态Cu体到封闭微通道阵列中流动的水的平均传热速率。一旦考虑到表面粗糙度和入口长度的影响,对实验观察到的流量和传热数据进行分析,并显示出与已知的宏观尺度相关性。

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