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Effect of nanofluid properties and mass-flow rate on heat transfer of parabolic-trough concentrating solar system

机译:纳米流体性质和质量流率对抛物槽式聚光太阳系传热的影响

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Sustainable power generation, energy security, and global warming are big challenges to the world today. The issues may be addressed through the use of renewable energy resources, among them, concentrated solar energy. The performance of a parabolic-trough collectors receiver is here investigated analytically through water and therminol-VP1-based CuO, ZnO, Alsub2/subOsub3/sub, TiOsub2/sub, Cu, Al, and SiC nanofluids. Increased volumetric concentrations of nanoparticle is found to enhance heat transfer, with heat transfer coefficient the maximum in W-Cu and VP1-SiC, the minimum in W-TiOsub2/sub and VP1-ZnO at 0.8 kg/s flow rate. Changing mass flow rate also affects heat transfer coefficient, which increases to the maxima of 23.30% in W-SiC and 23.51% in VP1-SiC when mass-flow rate increased in laminar flow. Heat transfer enhancement drops in the period when laminar flow transitions into turbulent flow. The maximum heat transfer enhancements by W-Cu and VP1-SiC nanofluids during turbulent flow were found to be 9.49% and 10.14%, respectively. The heat transfer enhancements of nanofluids seem to remain constant when compared with base fluids, during either laminar flow or turbulent flow (because in base fluids and nanofluids, heat transfer enhances at the same rate as mass flow rate increases).
机译:可持续发电,能源安全和全球变暖是当今世界面临的巨大挑战。这些问题可以通过使用可再生能源来解决,其中包括集中式太阳能。通过水和基于热敏酚VP1的CuO,ZnO,Al 2 O 3 ,TiO 2 < / sub>,Cu,Al和SiC纳米流体。发现增加的纳米颗粒的体积浓度可增强传热,在0.8 kg / s时,传热系数在W-Cu和VP1-SiC中最大,在W-TiO 2 和VP1-ZnO中最小。流量。质量流量的变化也会影响传热系数,当层流中的质量流量增加时,W-SiC的最大值达到23.30%,VP1-SiC的最大值达到23.51%。当层流转变为湍流时,传热增强降低。发现W-Cu和VP1-SiC纳米流体在湍流过程中的最大传热增强分别为9.49%和10.14%。与基础流体相比,在层流或湍流期间,纳米流体的传热增强似乎保持恒定(由于在基础流体和纳米流体中,传热以与质量流量增加相同的速率增强)。

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