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一种简便、基于生物的新型方法,用于合成共价功能化石墨烯纳米片纳米冷却剂,以提高热物理和传热性能。

A facile, bio-based, novel approach for synthesis of covalently functionalized graphene nanoplatelet nano-coolants toward improved thermo-physical and heat transfer properties.

机构信息

Department of Mechanical Engineering, Faculty of Engineering, University of Malaya, Kuala Lumpur 50603, Malaysia.

Nanotechnology & Catalysis Research Centre (NANOCAT), IPS Building, University Malaya, 50603 Kuala Lumpur, Malaysia.

出版信息

J Colloid Interface Sci. 2018 Jan 1;509:140-152. doi: 10.1016/j.jcis.2017.07.052. Epub 2017 Jul 17.

Abstract

In this study, we synthesized covalently functionalized graphene nanoplatelet (GNP) aqueous suspensions that are highly stable and environmentally friendly for use as coolants in heat transfer systems. We evaluated the heat transfer and hydrodynamic properties of these nano-coolants flowing through a horizontal stainless steel tube subjected to a uniform heat flux at its outer surface. The GNPs functionalized with clove buds using the one-pot technique. We characterized the clove-treated GNPs (CGNPs) using X-ray photoelectron spectroscopy (XPS) and transmission electron microscopy (TEM). We then dispersed the CGNPs in distilled water at three particle concentrations (0.025, 0.075 and 0.1wt%) in order to prepare the CGNP-water nanofluids (nano-coolants). We used ultraviolet-visible (UV-vis) spectroscopy to examine the stability and solubility of the CGNPs in the distilled water. There is significant enhancement in thermo-physical properties of CGNPs nanofluids relative those for distilled water. We validated our experimental set-up by comparing the friction factor and Nusselt number for distilled water obtained from experiments with those determined from empirical correlations, indeed, our experimental set-up is reliable and produces results with reasonable accuracy. We conducted heat transfer experiments for the CGNP-water nano-coolants flowing through the horizontal heated tube in fully developed turbulent condition. Our results are indeed promising since there is a significant enhancement in the Nusselt number and convective heat transfer coefficient for the CGNP-water nanofluids, with only a negligible increase in the friction factor and pumping power. More importantly, we found that there is a significant increase in the performance index, which is a positive indicator that our nanofluids have potential to substitute conventional coolants in heat transfer systems because of their overall thermal performance and energy savings benefits.

摘要

在这项研究中,我们合成了共价功能化的石墨烯纳米片(GNP)水悬浮液,这些悬浮液具有高度稳定性和环境友好性,可用作传热系统中的冷却剂。我们评估了这些纳米冷却剂在水平不锈钢管中流动时的传热和流体动力学特性,这些冷却剂在其外表面受到均匀热通量的作用。使用一锅法对 GNP 进行丁香花蕾功能化。我们使用 X 射线光电子能谱(XPS)和透射电子显微镜(TEM)对丁香处理的 GNP(CGNP)进行了表征。然后,我们将 CGNP 分散在蒸馏水中,浓度为三个粒子浓度(0.025、0.075 和 0.1wt%),以制备 CGNP-水纳米流体(纳米冷却剂)。我们使用紫外-可见(UV-vis)光谱检查 CGNP 在蒸馏水中的稳定性和溶解度。与蒸馏水相比,CGNP 纳米流体的热物理性质有显著提高。我们通过将实验获得的蒸馏水的摩擦系数和努塞尔数与经验相关性确定的值进行比较,验证了我们的实验装置。事实上,我们的实验装置是可靠的,并且可以产生具有合理准确性的结果。我们在完全发展的湍流条件下进行了 CGNP-水纳米冷却剂在水平加热管中的传热实验。我们的结果确实很有希望,因为 CGNP-水纳米流体的努塞尔数和对流传热系数有显著提高,而摩擦系数和泵送功率仅略有增加。更重要的是,我们发现性能指数有显著提高,这是一个积极的指标,表明我们的纳米流体由于其整体热性能和节能效益,有可能替代传热系统中的传统冷却剂。

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