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Quantitative stability analyses of multiwall carbon nanotube nanofluids following water/ice phase change cycling

机译:水/冰相变循环后多壁碳纳米管纳米流体的定量稳定性分析

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Multiwall carbon nanotube nanofluids are regularly investigated for phase change enhancement between liquid and solid states owing to their improved heat transfer properties. The potential applications are numerous, the most notable being latent heat thermal energy storage, but the success of all nanofluid-assisted technologies hinges greatly on the ability of nanoparticles to remain stably dispersed after repeated phase change cycles. In this report, the stability of aqueous nanofluids made from oxygen-functionalized multiwall carbon nanotubes (f-MWCNTs) was profiled over the course of 20 freeze/thaw cycles. Sonication was used after each cycle to redisperse clusters formed from the crystallization process. This study offers a quantitative evaluation of f-MWCNT-nanofluid stability as a result of phase change through optical characterization of concentration and particle size. It also provides insight into the integrity of the surface functionalities through zeta potential and XPS analyses. Concentration and particle size measurements showed moderate and consistent recoverability of f-MWCNT dispersion following ultrasonication. XPS measurements of solid-state MWCNTs exposed to freeze/thaw cycling in water, and zeta potential analyses of the nanofluids indicate that the surface oxygen content is preserved throughout phase change and over repeated cycles. These results suggest a resilience of oxygen-functionalized MWCNTs to the freezing and thawing of water, which is ideal for their utilization as phase change enhancers.
机译:由于其改善的传热性能,定期研究多壁碳纳米管纳米流体以进行液体和固态之间的相变增强。潜在的应用是众多,最值得注意的是潜热热能存储,但所有纳米流体辅助技术的成功大大铰接在重复相变循环后纳米颗粒保持稳定分散的能力。在本报告中,在20次冷冻/解冻循环过程中,在氧官能化多壁碳纳米管(F-MWCNTs)制成的含水纳米流体的稳定性。在每个循环后使用超声处理到从结晶过程形成的重新分割簇。该研究提供了通过浓度和粒度的光学表征的相变的相变的F-MWCNT-纳米流体稳定性的定量评估。它还通过Zeta电位和XPS分析提供对表面功能的完整性的洞察。浓度和粒度测量显示超声溶解后F-MWCNT分散的中等和一致的可回收性。 XPS测量在水中暴露于冷冻/解冻循环的固态MWCNT,纳米流体的Zeta电位分析表明,表面氧含量在整个相变和重复循环中被保存。这些结果表明,氧官能化MWCNT的浓缩和解冻水的韧性,这是它们作为相变增强剂的利用的理想选择。

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