基于金属氧化物的纳米流体的热物理性质研究:聚光太阳能发电厂中的应用

Fatah Boufoudi, S. Zouaoui, S. Mihoub
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引用次数: 0

摘要

太阳能是一种不排放温室气体的可再生能源。太阳是免费的,取之不尽,用之不竭,世界各地都有。利用太阳光生产能源有两种方法。第一种技术是利用光伏板将太阳光转化为电能,第二种技术是利用聚光太阳能发电站(CSP)将太阳光转化为热能。为了提高这些太阳能发电站的性能以实现高效率,已经开展了多项研究,我们的研究也是如此。在这项工作中,我们就纳米颗粒对纳米流体热物理性质的影响进行了数值研究,目的是确定在聚光太阳能电站中用作传热流体的最佳纳米流体。所研究的纳米粒子是金属氧化物(SIO2、MgO 和 Fe3O4),它们分散在 Therminol VP-1 和 Syltherm 800 中。考察的热物理性质包括密度、热导率和热容量。在评估了纳米粒子对热物理性质的影响后,我们使用 SAM(系统顾问模型)软件研究了基于纳米流体的 CSP 发电厂的行为。 获得的结果非常令人鼓舞,表明与纯基础流体相比,在基础流体中添加纳米颗粒可改善其热物理性质,热导率的改善率超过 9%。我们还发现,纳米流体(Fe3O4 /Therminol Vp1)最适合用作聚光太阳能发电厂的导热流体,其效率和产生的热能分别为 40.87% 和 588164 MWht。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigation of the Thermophysical Properties of Nanofluids Based on Metal Oxides: Application in Concentrated Solar Power Plants
Solar energy is a renewable source of energy that does not emit greenhouse gases. The sun is free, inexhaustible and available all over the world. The sun's rays can be used to produce energy in two ways. The first technique converts the sun's rays into electricity using photovoltaic panels, while the second converts the sun's rays into heat using concentrated solar power plants (CSP). Several studies have been carried out with the aim of improving the performance of these solar power plants in order to achieve high efficiency, which is the case in our study. In this work a numerical study was carried out on the effect of nanoparticles on the thermophysical properties of nanofluids with the aim of determining the most optimal nanofluid for use as a heat transfer fluid in concentrated solar power plants. The nanoparticles examined were metal oxides (SIO2, MgO and Fe3O4), which were dispersed in Therminol VP-1 and Syltherm 800. The thermophysical properties examined were density, thermal conductivity and heat capacity. To carry out this study, we set the temperature from 200 to 400°C at the same operating temperature as the concentrating solar power plant.After evaluating the effect of nanoparticles on the thermophysical properties, we studied the behaviour of the CSP plant based on nanofluids using SAM (System Advisor Model) software.  The results obtained are very encouraging and show that the addition of nanoparticles to a base fluid improves its thermophysical properties compared with the pure base fluid, and the rate of improvement in thermal conductivity exceeds 9%. We also found that the nanofluid (Fe3O4 /Therminol Vp1) is the best selected for use as a heat transfer fluid in concentrated solar power plants with an efficiency and thermal energy produced equal to 40.87% and 588164 MWht, respectively.
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Journal of Technology Innovations and Energy
Journal of Technology Innovations and Energy Social Sciences and Management Studies-
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期刊介绍: Journal of Technology Innovations and Energy aims to report the latest developments and share knowledge on the various topics related to innovative technologies in energy and environment.
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