Numerical comparison of a solar dish concentrator with different cavity receivers and working fluids
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Date
Authors
Loni, Reyhaneh
Asli-Ardeh, E. Askari
Ghobadian, B.
Bellos, Evangelos
Le Roux, Willem Gabriel
Journal Title
Journal ISSN
Volume Title
Publisher
Elsevier
Abstract
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/m2, in order to determine the most suitable cavity for a specific solar dish. The system is investigated for inlet temperatures ranging from 40 °C to 90 °C with water as working fluid, and from 40 °C to 300 °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.
Description
Keywords
Solar dish, Cavity absorber, Exergy analysis, Pressure drop, Thermal oil, Desalination, Drops, Collector efficiency, Volumetric flow rate, Low-temperature applications, Hemispherical cavities, Concentrating technology, Temperature, Pumps, High temperature applications, Fluids, Electric power generations, Efficiency
Sustainable Development Goals
SDG-07: Affordable and clean energy
SDG-09: Industry, innovation and infrastructure
SDG-12: Responsible consumption and production
SDG-13: Climate action
SDG-09: Industry, innovation and infrastructure
SDG-12: Responsible consumption and production
SDG-13: Climate action
Citation
Loni, R., Askari Asli-Ardeh, E., Ghobadian, B. et al. 2018, 'Numerical comparison of a solar dish concentrator with different cavity receivers and working fluids', Journal of Cleaner Production, vol. 198, pp. 1013-1030.
