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关于纳米流体热导率增强的讨论。

Discussion on the thermal conductivity enhancement of nanofluids.

作者信息

Xie Huaqing, Yu Wei, Li Yang, Chen Lifei

机构信息

School of Urban Development and Environmental Engineering, Shanghai Second Polytechnic University, Shanghai 201209, China.

出版信息

Nanoscale Res Lett. 2011 Feb 9;6(1):124. doi: 10.1186/1556-276X-6-124.

Abstract

Increasing interests have been paid to nanofluids because of the intriguing heat transfer enhancement performances presented by this kind of promising heat transfer media. We produced a series of nanofluids and measured their thermal conductivities. In this article, we discussed the measurements and the enhancements of the thermal conductivity of a variety of nanofluids. The base fluids used included those that are most employed heat transfer fluids, such as deionized water (DW), ethylene glycol (EG), glycerol, silicone oil, and the binary mixture of DW and EG. Various nanoparticles (NPs) involving Al2O3 NPs with different sizes, SiC NPs with different shapes, MgO NPs, ZnO NPs, SiO2 NPs, Fe3O4 NPs, TiO2 NPs, diamond NPs, and carbon nanotubes with different pretreatments were used as additives. Our findings demonstrated that the thermal conductivity enhancements of nanofluids could be influenced by multi-faceted factors including the volume fraction of the dispersed NPs, the tested temperature, the thermal conductivity of the base fluid, the size of the dispersed NPs, the pretreatment process, and the additives of the fluids. The thermal transport mechanisms in nanofluids were further discussed, and the promising approaches for optimizing the thermal conductivity of nanofluids have been proposed.

摘要

由于这种有前景的传热介质所呈现出的引人入胜的传热增强性能,人们对纳米流体的兴趣与日俱增。我们制备了一系列纳米流体并测量了它们的热导率。在本文中,我们讨论了各种纳米流体热导率的测量和增强情况。所使用的基础流体包括那些最常用的传热流体,如去离子水(DW)、乙二醇(EG)、甘油、硅油以及DW和EG的二元混合物。各种纳米颗粒(NPs),包括不同尺寸的Al2O3 NPs、不同形状的SiC NPs、MgO NPs、ZnO NPs、SiO2 NPs、Fe3O4 NPs、TiO2 NPs、金刚石NPs以及经过不同预处理的碳纳米管,都被用作添加剂。我们的研究结果表明,纳米流体的热导率增强可能受到多方面因素的影响,包括分散纳米颗粒的体积分数、测试温度、基础流体的热导率、分散纳米颗粒的尺寸、预处理过程以及流体的添加剂。进一步讨论了纳米流体中的热传输机制,并提出了优化纳米流体热导率的有前景的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/068b/3211170/4a885828381c/1556-276X-6-124-1.jpg

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