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用于增强纳米流体传热的氧化铜纳米颗粒对碳纳米管的表面改性

Surface modification of carbon nanotubes with copper oxide nanoparticles for heat transfer enhancement of nanofluids.

作者信息

Manasrah Abdallah D, Almanassra Ismail W, Marei Nedal N, Al-Mubaiyedh Usamah A, Laoui Tahar, Atieh Muataz A

机构信息

Department of Chemical and Petroleum Engineering, University of Calgary 2500 University Drive NW Calgary Alberta Canada T2N 1N4.

Chemical Engineering Department, King Fahd University of Petroleum & Minerals Dhahran Saudi Arabia.

出版信息

RSC Adv. 2018 Jan 8;8(4):1791-1802. doi: 10.1039/c7ra10406e. eCollection 2018 Jan 5.

Abstract

Over the last few years, nanoparticles have been used as thermal enhancement agents in many heat transfer based fluids to improve the thermal conductivity of the fluids. Recently, many experiments have been carried out to prepare different types of nanofluids (NFs) showing a tremendous increase in thermal conductivity of the base fluids with the addition of a small amount of nanoparticles. However, little experimental work has been proposed to calculate the flow behaviour and heat transfer of nanofluids and the exact mechanism for the increase in effective thermal conductivity in heat exchangers. This study mainly focuses on the development of nanomaterial composites by incorporating copper oxide nanoparticles (CuO) onto the surfaces of carbon nanotubes (CNTs). The CNT-CuO nanocomposite was used to prepare water-based heat transfer NFs. The morphological surfaces and loading contents of the CNT-CuO nanocomposite were characterized using field emission scanning electron microscopy (FE-SEM), transmission electron microscopy (TEM), X-ray photoelectron spectroscopy (XPS) and thermogravimetric analysis (TGA) while the physical and thermal properties of the water-based nanofluids were characterized using differential scanning calorimetry (DSC), the Mathis TCi system and a viscosity meter for measuring the heat capacity, thermal conductivity and viscosity of the synthesized NFs, respectively. The heat transfer and the pressure drop studies of the NFs were conducted by a horizontal steel tube counter-flow heat exchanger under turbulent flow conditions. The experimental results showed that the developed NFs with different concentrations of modified CNTs (0.01, 0.05 and 0.1 wt%) have yielded a significant increase in specific heat capacity (102% higher than pure water) and thermal conductivity (26% higher than pure water) even at low concentration. The results also revealed that the heat rate of the NF was higher than that of the base liquid (water) and increased with increasing the concentration of nanoparticles. Furthermore, no significant effect of the nanoparticles on the pressure drop of the system was observed.

摘要

在过去几年中,纳米颗粒已被用作许多基于传热的流体中的热增强剂,以提高流体的热导率。最近,人们进行了许多实验来制备不同类型的纳米流体(NFs),结果表明,添加少量纳米颗粒后,基础流体的热导率大幅提高。然而,很少有实验工作致力于计算纳米流体的流动行为和传热情况,以及热交换器中有效热导率增加的确切机制。本研究主要聚焦于通过将氧化铜纳米颗粒(CuO)结合到碳纳米管(CNTs)表面来开发纳米材料复合材料。CNT-CuO纳米复合材料被用于制备水基传热纳米流体。使用场发射扫描电子显微镜(FE-SEM)、透射电子显微镜(TEM)、X射线光电子能谱(XPS)和热重分析(TGA)对CNT-CuO纳米复合材料的形态表面和负载含量进行了表征,同时分别使用差示扫描量热法(DSC)、Mathis TCi系统和粘度计对合成纳米流体的热容量、热导率和粘度进行测量,以此表征水基纳米流体的物理和热性能。纳米流体的传热和压降研究是在水平钢管逆流热交换器的湍流条件下进行的。实验结果表明,即使在低浓度下,含有不同浓度改性碳纳米管(0.01、0.05和0.1 wt%)的纳米流体的比热容(比纯水高102%)和热导率(比纯水高26%)也显著增加。结果还表明,纳米流体的热流率高于基础液体(水),并且随着纳米颗粒浓度的增加而增加。此外,未观察到纳米颗粒对系统压降有显著影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6e5b/9077096/dc0e6a968e42/c7ra10406e-f1.jpg

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