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Comparative performance analysis of ice plant test rig with TiO 2-R-134a nano refrigerant and evaporative cooled condenser

机译:TiO 2 -R-134a纳米制冷剂和蒸发冷却冷凝器的制冰厂试验台的比较性能分析

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The nanoparticle is used in chillers for increasing system performance. The increasing concentration of nanoparticles (TiO2) in refrigerant increases the performances of the system due decreasing compressor work done and enhance heat transfer rate. For hot and dry climate condition, performances of air-cooled condenser minimize, and C. O. P. decreases extensively in chillers due to heat transfer rate decreases in the condenser. In the condenser, nano-refrigerants are not cool at the desired level, and the system was faulty. These drawbacks of the nano-particles mixed refrigerator have promoted the research and improving heat rejection rate in the condenser. In this article, vapour compression refrigeration system coupled with evaporative cooling pad, and nano-refrigerant, for improving the performance of the system in hot & dry weather is proposed and compared experimentally. Combined evaporative cooling system and ice plant test rig have been proposed for the appropriate heat rejection offered in the condenser due to a faulty system run at high pressure. The experimental investigations revealed that the performance characteristics of the evaporatively-cooled condenser are significantly enhanced. Maximum C.O.P. increases by about 51% in the hot and dry climate condition than the normal system.
机译:纳米颗粒用于冷却器中以提高系统性能。制冷剂中纳米颗粒(TiO2)浓度的增加会降低压缩机的工作量并提高热传递率,从而提高系统的性能。对于炎热和干燥的气候条件,空冷式冷凝器的性能会降至最低,并且由于冷凝器中的传热速率降低,冷却器中的C. O. P.会大幅下降。在冷凝器中,纳米制冷剂未达到所需水平,因此系统出现故障。纳米颗粒混合制冷机的这些缺点促进了冷凝器的研究并提高了散热率。本文提出并结合蒸汽蒸发制冷垫和纳米制冷剂的蒸汽压缩制冷系统,以改善该系统在干热天气下的性能,并进行了实验比较。由于在高压下运行的系统有故障,已经提出了将蒸发冷却系统和制冰厂试验台相结合的建议,用于冷凝器中提供适当的散热。实验研究表明,蒸发冷却冷凝器的性能特征得到了显着提高。最高C.O.P.在炎热和干燥的气候条件下比正常系统增加约51%。

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