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Numerical comparison of a solar dish concentrator with different cavity receivers and working fluids

机译:不同腔接收器和工作流体的太阳能碟式集中器的数值比较

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摘要

Solar concentrating technologies can produce heat for applications such as solar heating, solar cooling, industrial processes, desalination and electric power generation. For a solar dish collector, various solar receivers and working fluids at different flow rates can be used in different applications. In this work, three different cavity receivers are investigated for application in a solar dish collector using either water or Behran oil. A numerical model is used in the analysis, which is validated with experimental results from a hemispherical cavity receiver using oil as working fluid. The model is applied to compare hemispherical, cylindrical and cubical receivers under the same operating conditions using either water or oil, at a volumetric flow rate of 100 ml/s and solar irradiance of 800 W/m(2), in order to determine the most suitable cavity for a specific solar dish. The system is investigated for inlet temperatures ranging from 40 degrees C to 90 degrees C with water as working fluid, and from 40 degrees C to 300 degrees C with Behran oil as working fluid. Emphasis is placed on the calculation of useful heat production, as well as pressure drop which influences pumping power. The exergetic efficiency criterion and the overall efficiency criterion are used in order to evaluate the useful heat production and the pumping power simultaneously. The high exergetic efficiency of the hemispherical cavity with thermal oil at high temperatures makes this case a promising choice for high-temperature solar dish collector applications. Moreover, water is found to be the best candidate for low-temperature applications since it leads to the higher thermal efficiency with lower pumping power demand. (C) 2018 Elsevier Ltd. All rights reserved.
机译:太阳能集中技术可以为太阳能加热,太阳能冷却,工业过程,脱盐和发电等应用产生热量。对于太阳能集热器,可以在不同应用中使用各种太阳能接收器和不同流速的工作流体。在这项工作中,研究了三种不同的腔体接收器,这些接收器可用于使用水或Behran油的太阳能集热器中。分析中使用了数值模型,该模型已通过使用油作为工作流体的半球形空腔接收器的实验结果进行了验证。该模型用于比较在相同工作条件下使用水或油,体积流量为100 ml / s和太阳辐照度为800 W / m的半球形,圆柱形和立方形接收器,以便确定最适合特定太阳能电池的腔体。研究了该系统的进水温度,以水为工作流体的温度范围为40摄氏度至90摄氏度,以Behran油为工作流体的温度范围为40摄氏度至300摄氏度。重点放在计算有用的热量以及影响抽力的压降的计算上。为了充分评估有用的热量产生和泵送功率,使用了能效标准和总效率标准。半球形腔体在高温下具有导热油的高能量效率,使这种情况成为高温太阳能集热器应用的有希望的选择。此外,发现水是低温应用的最佳选择,因为水可带来更高的热效率和更低的泵浦功率需求。 (C)2018 Elsevier Ltd.保留所有权利。

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