有机朗肯循环和磁化纳米流体聚光太阳能集热器的研究

S. S. Howard
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引用次数: 0

摘要

摘要:研究了磁化纳米流体在抛物槽聚光太阳能集热器(CSP)-集成有机朗肯循环(ORC)和热储能(TES)系统中的性能。研究了不同太阳辐射、不同入射角和不同纳米流体浓度下,AI2O3、CuO、Fe3O4和SiO2磁化纳米流体作为热传导流体在ORC和TES集成聚光太阳能发电(CSP)中循环的特性。为了提高ORC效率,在ORC回路中采用了由R1234ze、R245fa、R125、R236fa组成的环保型四元制冷剂。结果表明,CSP集热器吸收和收集的功率和储存的热能随太阳辐射的增加而增强。研究还发现,提高CSP混合系统效率的主要因素是太阳辐射的增加、磁化纳米流体浓度的增加以及导热油作为基础流体的磁场。此外,研究还得出结论,在相似的条件下,纳米流体CuO的性能优于其他纳米流体al2o3、Fe3O4和sio2。最后,发现该模型的预测与文献报道的数据比较公平;然而,模型的预测与实验数据之间存在一些差异。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Study of Concentrated Solar Power Collectors with Organic Rankine Cycle and Magnetized Nanofluids 
Email: dr.ssami@transpacenergy.com Abstract: The performance of “magnetized nanofluids in a Parabolic Trough Concentrating Solar Collector (CSP)-integrated Organic Rankine Cycle (ORC) and a Thermal Energy Storage (TES) systems are studied. The characteristics of magnetized nanofluids AI2O3, CuO, Fe3O4 and SiO2 as heat transport fluid circulating in integrated Concentrating Solar Power (CSP) with ORC and TES under different solar radiations, angles of incidence and different nanofluid concentrations have been presented. An environmentally refrigerant quaternary was used in the ORC loop to enhance the ORC efficiency composed of R1234ze, R245fa, R125, R236fa was used. The results showed that the power absorbed and collected by the CSP collector and thermal energy stored is enhanced with the increase of solar radiation. It was also observed that the CSP hybrid system efficiency has been enhanced mainly by the increase of solar radiations, higher magnetized nanofluid concentrations and the magnetic fields over the thermal oil as base fluid. Also, the study concluded that the nanofluid CuO outperformed the other nanofluids-Al2O3, Fe3O4 and SiO2-at similar conditions. Finally, it was found that the model’s prediction compared fairly with data reported in the literature; however, some discrepancies existed between the model’s prediction and the experimental data”.
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