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Flow Boiling Heat Transfer of HFE7000 in Manifold Microchannels through Integrating Three-dimensional Flow and Silicon Nanowires

机译:通过整合三维流动和硅纳米线流动沸腾HFE7000

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In this study we presented and characterized a compact silicon based manifold microchannel heat sink with embedded SiNWs in order to enhance heat transfer and reduce flow instability during two phase flow boiling. The manifold consists of parallel longitudinal microchannels etched in a silicon substrate and transverse microchannels etched on a transparent glass substrate. The microchannels in the silicon substrate were then etched with silicon nanowires. In this work, flow boiling heat transfer of HFE 7000 in such SiNWs embedded manifold microchannels were investigated. Two series of experiments with relatively small mass fluxes were carried out under different heat fluxes at a constant subcooled inlet temperature. The heat transfer and pressure drop characteristics were compared under different experimental conditions as well as the flow instability during the phase change process. A heat flux of about 141.5 W/cm2was reached with a relatively small mass flux of 116 kg/m2s. A remarkable performance of flow instability control was observed for HFE 7000 over both the single phase and the two-phase periods. Before the onset of nucleation, the temperature variations over a period of 100s are were about 0.2 °C. After the onset of nucleation, the maximum temperature fluctuations were still within 0.5 °C. This implies that our manifold microchannel design benefits from a strong impingement effect which delivers the coolant evenly to every corner of the hotspot and forms a more uniform temperature distribution.
机译:在这项研究中,我们呈现并表征了一种具有嵌入的SinW的紧凑型硅基歧管微型通道散热器,以增强传热并减少两种相流沸腾期间的流量不稳定性。歧管由蚀刻在硅衬底和蚀刻在透明玻璃基板上的横向微通道的平行纵向微通道组成。然后用硅纳米线蚀刻硅基板中的微通道。在这项工作中,研究了HFE 7000在这种SINWS嵌入式歧管微通道中的流沸热传热。在恒定的过冷入口温度下在不同的热通量下进行两种具有相对较小的质量助熔剂的实验。在不同的实验条件下比较热传递和压降特性以及相变过程中的流动不稳定性。热通量约为141.5 w / cm 2 达到了116千克/米的相对较小的质量通量 2 s。对于单相和两相期间,HFE 7000观察到流动不稳定控制的显着性能。在成核开始之前,100s的温度变化为约0.2℃。在成核开始后,最大温度波动仍然在0.5°C范围内。这意味着我们的歧管微通道设计受益于强烈的冲击效果,这使得冷却剂均匀地将冷却剂均匀地传递给热点的每个角落,并形成更均匀的温度分布。

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