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Flow of suspensions of carbon nanotubes carrying phase change materials through microchannels and heat transfer enhancement

机译:携带相变材料的碳纳米管悬浮液通过微通道的流动和传热的增强

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This work explores the potential of nano-encapsulated phase change materials (PCMs) in applications related to microelectronics cooling. PCMs (wax or meso-erythritol) were encapsulated in carbon nanotubes (CNTs) by a method of self-sustained diffusion at room temperature and pressure. These nano-encapsulated wax nanoparticles alone allowed heat removal over a relatively wide range of temperatures (different waxes have melting temperatures in the range 40-80 °C). On the other hand, nano-encapsulated meso-erythritol nanoparticles allowed heat removal in the range 118-120 °C. The combination of these two PCMs (wax and meso-erythritol) could extend the temperature range to 40-120 °C, when both types of nanoparticles (wax and meso-erythritol intercalated) would be suspended in the same carrier fluid (an oil). The nanoparticles possess a short response time of the order of 10"7 s. Such nano-encapsulation can also prevent the PCM from sticking to the wall. In this work, experiments with wax-intercalated CNTs, stable aqueous suspensions of CNTs with concentrations up to 3 wt% with and without nano-encapsulated wax were prepared using a surfactant sodium dodecyl benzene sulfonate (NaDDBS). These suspensions were pumped through two channels of 603 nm or 1803 μm in diameter subjected to a constant heat flux at the wall. It was found that the presence of the surfactant in CNT suspensions results in a pseudo-slip at the channel wall which enhances the flow rate at a fixed pressure drop. When aqueous solutions of the surfactant were employed (with no CNTs added), the enhanced convection alone was responsible for a ~2 °C reduction in temperature in comparison with pure water flows. When CNTs with nano-encapsulated wax were added, an additional ~1.90 °C reduction in temperature due to the PCM fusion was observed when using 3 wt% CNT suspensions. In addition, suspensions of meso-erythritol-intercalated CNTs in alpha-olefin oil were used as coolants in flows through the 1803 μm-diameter microchannel. These suspensions (1.5 wt% CNT) revealed a temperature reduction due to the PCM fusion of up to 3.2 °C, and a fusion temperature in the range 118-120 °C.
机译:这项工作探索了纳米封装相变材料(PCM)在与微电子冷却相关的应用中的潜力。通过在室温和压力下自我维持扩散的方法,将PCM(蜡或中赤藓糖醇)封装在碳纳米管(CNT)中。仅这些纳米包封的蜡纳米颗粒就可以在相对较宽的温度范围内除热(不同的蜡的熔融温度在40-80°C范围内)。另一方面,纳米囊封的中赤藓糖醇纳米颗粒可在118-120°C的范围内除热。当两种类型的纳米粒子(插入蜡和中赤藓糖醇)都悬浮在相同的载液(一种油)中时,这两种PCM(蜡和中赤藓糖醇)的组合可以将温度范围扩展到40-120°C 。纳米粒子具有大约10“ 7 s的短响应时间。这种纳米封装还可以防止PCM粘附到壁上。在这项工作中,使用蜡嵌入的CNT进行实验,浓度稳定的CNT的水性水悬浮液使用表面活性剂十二烷基苯磺酸钠(NaDDBS)制备3wt%有无纳米蜡的溶液,将这些悬浮液泵送通过直径603 nm或1803μm的两个通道,并在壁上进行恒定的热通量。发现在CNT悬浮液中存在表面活性剂会导致通道壁出现假滑动,从而在固定压降下提高流速,当使用表面活性剂水溶液(不添加CNT)时,对流增强与纯水流相比,单独的温度降低了约2°C;当添加具有纳米封装蜡的CNT时,由于PCM熔融,温度又降低了约1.90°C如使用3重量%的CNT悬浮液时观察到的。此外,在α-烯烃油中插入了中层赤藓糖醇的CNT悬浮液在流经1803μm直径微通道的流动中用作冷却剂。这些悬浮液(1.5 wt%CNT)显示出由于PCM熔化而导致的温度降低,最高可达3.2°C,熔化温度在118-120°C范围内。

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