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Performance Investigation of High Temperature Application of Molten Solar Salt Nanofluid in a Direct Absorption Solar Collector

机译:熔融太阳盐纳米流体在直接吸收式太阳能集热器中高温应用的性能研究

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摘要

Nanofluids have great potential in a wide range of fields including solar thermal applications, where molten salt nanofluids have shown great potential as a heat transfer fluid (HTF) for use in high temperature solar applications. However, no study has investigated the use of molten salt nanofluids as the HTF in direct absorption solar collector systems (DAC). In this study, a two dimensional CFD model of a direct absorption high temperature molten salt nanofluid concentrating solar receiver has been developed to investigate the effects design and operating variables on receiver performance. It has been found that the Carnot efficiency increases with increasing receiver length, solar concentration, increasing height and decreasing inlet velocity. When coupled to a power generation cycle, it is predicted that total system efficiency can exceed 40% when solar concentrations are greater than 100×. To impart more emphasis on the temperature rise of the receiver, an adjusted Carnot efficiency has been used in conjunction with the upper temperature limit of the nanofluid. The adjusted total efficiency also resulted in a peak efficiency for solar concentration, which decreased with decreasing volume fraction, implying that each receiver configuration has an optimal solar concentration.
机译:纳米流体在包括太阳能热应用在内的广泛领域中具有巨大潜力,其中熔融盐纳米流体作为高温太阳能应用中的传热流体(HTF)表现出巨大潜力。但是,尚无研究调查将熔融盐纳米流体用作直接吸收式太阳能收集器系统(DAC)中的HTF。在这项研究中,直接吸收高温熔融盐纳米流体聚光太阳能接收器的二维CFD模型已经开发出来,以研究影响设计和操作变量对接收器性能的影响。已经发现卡诺效率随着接收器长度的增加,太阳光的聚集,高度的增加和入口速度的降低而增加。预计与太阳能发电周期结合使用时,如果太阳能浓度大于100倍,则总系统效率将超过40%。为了更加强调接收器的温度升高,已将调整后的卡诺效率与纳米流体的温度上限结合使用。调整后的总效率还会导致太阳能集中度的峰值效率,该效率随体积分数的减小而降低,这意味着每个接收器配置都具有最佳的太阳能集中度。

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