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Experimental analysis of water-based nanofluids using boron nitride nanotubes with improved thermal properties

机译:水性纳米流体用氮化硼纳米管具有改进的热性能实验分析

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Nowadays, the use of nanofluids as alternative to commonly-used industrial heat transfer fluids is a topic of increasing interest. Analysing the improved efficiency of heat transfer processes according to advanced nanomaterials and obtaining stable nanofluids is one of the most interesting challenges. This paper presents a study of nanofluids based on boron nitride nanotubes and using an aqueous solution of Triton X-100 (which acts as a surfactant) as the base fluid. UV-vis spectroscopy, particle size measurements (size between 150 and 170 nm) and potential (at about 25 mV) showed that stable nanofluids were obtained. Surface tension measurements were also performed. The surface tension of water was weakly affected by the presence of any amount of nanoparticles and was mainly governed by the presence of surfactant. The rheological properties of the fluids were also analysed, as were their isobaric specific heat and thermal conductivity values. A Newtonian behaviour was observed for the base fluid and the nanofluids, with no significant increase in viscosity. The isobaric specific heat increased by 8% and thermal conductivity by 10% compared with the base fluid. Thus, the results obtained are interesting because while thermal properties improved with nanoparticle content, rheological behaviour did not change. Consequently, the nanofluids studied in the current paper do not raise the pressure drop and pumping power significantly and may therefore be a good option for thermal system applications. (C) 2018 Elsevier B.V. All rights reserved.
机译:如今,使用纳米流体作为常用工业传热流体的替代是越来越多的兴趣的主题。根据先进的纳米材料和获得稳定的纳米流体来分析传热过程的提高效率是最有趣的挑战之一。本文介绍了基于氮化硼纳米管的纳米流体,并使用Triton X-100(用作表面活性剂)作为基础流体的水溶液。 UV-Vis光谱,粒度测量(尺寸在150至170nm之间)和电位(约25mV),显示得稳定的纳米流体。还进行了表面张力测量。水的表面张力受任何量的纳米颗粒的存在弱,并且主要通过表面活性剂的存在来控制。还分析了流体的流变性质,以及它们的等异细热和导热率值。为基础液和纳米流体观察到牛顿行为,粘度没有显着增加。与基础流体相比,等管状比热量增加了8%,导热率为10%。因此,获得的结果是有趣的,因为在纳米粒子含量提高的热性质时,流变行为没有变化。因此,在本纸上研究的纳米流体不会显着提高压降和泵送功率,因此可以是热系统应用的良好选择。 (c)2018年elestvier b.v.保留所有权利。

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