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An experimental study on energetic performance evaluation of a parabolic trough solar collector operating with Al_2O_3/water and GO/ water nanofluids

机译:用Al_2O_3 /水和去/水纳米流体运行抛物线槽太阳能收集器能量性能评价的实验研究

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The parabolic trough solar collector (PTSC) is one of the most developed and commercialized technologies in solar heating systems. The main purpose of this study is to utilize two samples of water-based nanofluids (0.2 wt %) made of graphene oxide (GO) and alumina (Al2O3) nanoparticles in a PTSC. First, the stability and thermophysical properties of the nanofluids were investigated by focusing on the morphology of their constituent nanoparticles. In one of the results, the values of thermal conductivity and dynamic viscosity in the GO nanofluid were obtained 9.1% and 23.4% higher than Al2O3 nanofluid. Next, the nanofluids were tested in the PTSC at three volume flow rates (1, 3, and 5 L/min). Compared to pure water, the best enhancement in thermal efficiency was observed at 1 L/min about 63.2% in GO nanofluid and 32.1% in Al2O3 nanofluid. Also, the best energetic performance (the ratio of useful energy provided to pumping energy required) of the system was realized at 1 L/min. The operational effectiveness of the nanofluids in the collector was decreased with increasing flow rate. This behavior was observed more severely in the GO nanofluid, as it showed lower energetic productivity than pure water at flow rate of 5 L/min. (C) 2021 Elsevier Ltd. All rights reserved.
机译:抛物面槽太阳能收集器(PTSC)是太阳能加热系统中最开发和商业化的技术之一。本研究的主要目的是利用PTSC中的石墨烯(GO)和氧化铝(Al 2 O 3)纳米颗粒制成的两种水基纳米流体(0.2wt%)样品。首先,通过重点关注其组成纳米颗粒的形态来研究纳米流体的稳定性和热物理性质。在其中一个结果中,获得了Go纳米流体中的导热率和动态粘度的值9.1%和23.4%高于Al 2 O 3纳米流体。接下来,在PTSC下以三个体积流速(1,3和5L / min)在PTSC中测试纳米流体。与纯水相比,在纳米流体的1升/分钟内观察到热效率的最佳增强,在Al 2 O 3纳米流体中32.1%。此外,在1L / min的情况下实现了系统的最佳能量性能(提供给泵送能量的有用能量的比率)。随着流速的增加,收集器中纳米流体的操作效果降低。在Go纳米流体中更严重地观察到这种行为,因为它显示比纯水更低,流速为5升/分钟。 (c)2021 elestvier有限公司保留所有权利。

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