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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >Layer-by-layer assembled carbon nanotube-polyethyleneimine coatings inside copper-sintered heat pipes for enhanced thermal performance
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Layer-by-layer assembled carbon nanotube-polyethyleneimine coatings inside copper-sintered heat pipes for enhanced thermal performance

机译:铜烧结热管内的层逐层组装碳纳米管 - 聚乙烯亚胺涂层,用于增强热性能

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摘要

Biporous structures at the nano-microscale are promising candidates for controlling phase change heat transfer, through their enhanced capillary wicking and fluid transportation. However, existing methods for fabricating biporous structures involve complex process which is not suitable for small-scale thermal devices such as heat pipes, owing to their confined and non-flat inner structures. Herein, we report the biporous structures inside copper-sintered heat pipes, enabled by layer-by-layer (LbL) assembled multiwalled carbon nanotube (MWCNT)-polyethyleneimine (PEI) coating for enhanced thermal performance. The repetitive filling and removing of the oppositely charged solutions with MWCNT-PEI and carboxylic-functionalized MWCNTs assembled the nanoporous MWCNT-PEI coatings (10, 20, and 40 bilayers) on the microporous copper-sintered inner surfaces. The fiber-like MWCNT networks structurally manipulated morphology and thickness of biporous structures, while the hydrophilic PEI shells chemically optimized wettability. A reduced thermal resistance (similar to 14.3%) was observed for MWCNT-PEI coating in 10 bilayers, due to the enhanced capillary wicking, interfacial contact areas, and bubble dynamics, whereas the 40 bilayers did not exhibit improved thermal performance owing to the redundant nanoporous layers causing reduced volume of microporous structures and increased thermal resistance. The LbL-assembled MWCNT-PEI coatings would act as functional layers to improve the performance of miniaturized and thin-film-based thermal devices. (C) 2018 Elsevier Ltd. All rights reserved.
机译:纳米微尺寸的双相结构是有助于控制相变热传递的候选者,通过增强的毛细管芯吸和流体运输。然而,由于其狭窄和非平坦的内部结构,制造双孔结构的现有方法包括复杂的过程,该方法不适用于小型热装置,例如热管,而且由于其狭窄和非平坦的内部结构。在此,我们在铜烧结的热管内报告了双孔结构,通过层 - 逐层(LBL)组装的多壁碳纳米管(MWCNT) - 聚亚掺丝(PEI)涂层而实现,以提高热性能。重复填充和去除具有MWCNT-PEI和羧官能化的MWCNT的相对电荷的溶液,在微孔铜烧结的内表面上组装了纳米多孔MWCNT-PEI涂层(10,20和40双层)。纤维状MWCNT网络结构性地操纵的双孔结构的形态和厚度,而亲水性PEI壳化学优化的润湿性。由于增强的毛细血管芯吸,界面接触区域和泡沫动力学,在10个双层中的MWCNT-PEI涂层观察到降低的热阻(类似于14.3%)。由于冗余纳米多孔层导致微孔结构的体积减少和增加的热阻。 LBL组装的MWCNT-PEI涂层将充当功能层,以改善基于小型化和基于薄膜的热器件的性能。 (c)2018年elestvier有限公司保留所有权利。

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