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A review on the performance of nanoparticles suspended with refrigerants and lubricating oils in refrigeration systems

机译:制冷剂和润滑油中悬浮的纳米颗粒在制冷系统中的性能研究进展

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摘要

Recently scientists used nanoparticles in refrigeration systems because of theirs remarkable improvement in thermo-physical, and heat transfer capabilities to enhance the efficiency and reliability of refrigeration and air conditioning system. In this paper thermal-physical properties of nanoparticles suspended in refrigerant and lubricating oil of refrigerating systems were reviewed. Heat transfer performance of different nanorefrigerants with varying concentrations was reviewed and review results are presented as well. Pressure drop and pumping power of a refrigeration system with nanorefrigerants were obtained from different sources and reported in this review. Along with these, pool boiling heat transfer performance of CNT refrigerant was reported. Moreover, challenges and future direction of nanofluids/nanorefrigerants have been reviewed and presented in this paper. Based on results available in the literatures, it has been found that nanorefrigerants have a much higher and strongly temperature-dependent thermal conductivity at very low particle concentrations than conventional refrigerant. This can be considered as one of the key parameters for enhanced performance for refrigeration and air conditioning systems. Because of its superior thermal performances, latest upto date literatures on this property has been summarized and presented in this paper as well. The results indicate that HFC 134a and mineral oil withTiO_2 nanoparticles works normally and safely in the refrigerator with better performance. The energy consumption of the HFC 134a refrigerant using mineral oil and nanoparticles mixture as lubricant saved 26.1% energy with 0.1% mass fraction TiO_2 nanoparticles compared to the HFC 134a and POE oil system. It was identified that fundamental properties (i.e. density, specific heat capacity, and surface tension) of nanorefrigerants were not experimentally determined yet. It may be noted as well that few barriers and challenges those have been identified in this review must be addressed carefully before it can be fully implemented in refrigeration and air conditioning systems.
机译:最近,科学家在制冷系统中使用了纳米颗粒,因为它们在热物理和传热能力方面有了显着改善,从而提高了制冷和空调系统的效率和可靠性。本文综述了悬浮在制冷系统的制冷剂和润滑油中的纳米颗粒的热物理性质。审查了不同浓度的不同纳米制冷剂的传热性能,并给出了审查结果。带有纳米制冷剂的制冷系统的压降和泵送功率是从不同来源获得的,并在本综述中进行了报道。伴随着这些,还报道了CNT制冷剂的池沸腾传热性能。此外,本文对纳米流体/纳米制冷剂的挑战和未来方向进行了回顾和介绍。基于文献中可获得的结果,已经发现,在非常低的颗粒浓度下,纳米制冷剂具有比常规制冷剂高得多且强烈依赖温度的热导率。这可以被认为是增强制冷和空调系统性能的关键参数之一。由于其优异的热性能,因此也总结并介绍了有关该性能的最新文献。结果表明,HFC 134a和含TiO_2纳米粒子的矿物油在冰箱中正常,安全地工作,性能更好。与HFC 134a和POE油体系相比,使用矿物油和纳米颗粒混合物作为润滑剂的HFC 134a制冷剂的能耗为0.1%质量分数的TiO_2纳米颗粒,节省了26.1%的能量。可以确定的是,纳米制冷剂的基本性能(即密度,比热容和表面张力)尚未通过实验确定。还要指出的是,在制冷和空调系统中完全实施之前,必须仔细解决在本次审查中发现的障碍和挑战。

著录项

  • 来源
    《Renewable & Sustainable Energy Reviews》 |2011年第1期|p.310-323|共14页
  • 作者单位

    Department of Mechanical Engineering, University of Malaya, 50603 Kuala Lumpur, Malaysia;

    Department of Mechanical Engineering, University of Malaya, 50603 Kuala Lumpur, Malaysia;

    Department of Mechanical Engineering, University of Malaya, 50603 Kuala Lumpur, Malaysia;

    Department of Mathematics, Bangladesh University of Engineering and Technology (BUET), Dhaka 1000, Bangladesh;

    Department of Mechanical Engineering, College of Engineering, Universiti Tenega Nasinal, Km 7,Jalan Kajang-Puchong, 43009 Kajang, Selangor, Malaysia;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    nanorefrigerants; heat transfer; challenges of nanofluids;

    机译:纳米制冷剂;传播热量;纳米流体的挑战;
  • 入库时间 2022-08-18 01:24:25

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