Influence of Refrigerant Type, Nanoparticle’s Concentration and Size on the Performance and Exergy Efficiency of the Vapour Compression Refrigeration System Using Al2O3 Based Nanolubricant

IF 2.7 Q3 NANOSCIENCE & NANOTECHNOLOGY Journal of Nanofluids Pub Date : 2023-04-01 DOI:10.1166/jon.2023.1953
M. Ogbonnaya, O. Ajayi, M. A. Waheed
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Abstract

Vapour compression refrigeration systems (VCRS) are commonly used in the tropic region for the cooling and preservation of household and industrial items. The performance, power consumption and exergy efficiency of the vapour compression refrigeration system (VCRS) can be improved by replacing the lubricant with nanolubricants. In this study, nanolubricants were prepared at different mass concentrations of 1%, 3%, 5%, 10%, and 20% using aluminium oxide (Al2O3) nanoparticles of nominal diameter 10 nm, 20–30 nm and 80 nm. Scanning electron microscopy (SEM) and X-ray diffraction analyses were carried out on the aluminium oxide (Al2O3) nanoparticles. Using R600a and R134a refrigerants to investigate heat transfer behaviour of nanorefrigerant, the addition of nanoparticles into the VCRS enhanced the performance and exergy efficiency of the system. This was achieved by reducing the energy consumed and destroyed within the compressor of VCRS. Smaller nominal diameter nanoparticles of 10 nm performed better and possess better exergy efficiency for nanoR600a while the 20–30 nm had the best performance for nanoR134a refrigerant. The average value of coefficient of performance (COP) obtained was observed to be higher for R600a using 10 nm sized nanoparticles compared with R134a.
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制冷剂类型、纳米粒子浓度和尺寸对Al2O3基纳米润滑剂蒸汽压缩制冷系统性能和火用效率的影响
蒸汽压缩制冷系统(VCRS)通常用于热带地区,用于家用和工业物品的冷却和保存。用纳米润滑剂代替润滑剂可以提高蒸汽压缩制冷系统的性能、功耗和火用效率。在本研究中,使用标称直径为10 nm、20–30 nm和80 nm的氧化铝(Al2O3)纳米颗粒,在1%、3%、5%、10%和20%的不同质量浓度下制备了纳米润滑剂。对氧化铝(Al2O3)纳米粒子进行了扫描电子显微镜(SEM)和X射线衍射分析。使用R600a和R134a制冷剂研究了纳米制冷剂的传热行为,在VCRS中添加纳米颗粒提高了系统的性能和火用效率。这是通过减少VCRS压缩机内消耗和破坏的能量来实现的。标称直径较小的10 nm纳米颗粒对纳米R600a表现更好,具有更好的火用效率,而20–30 nm对纳米R134a制冷剂表现最好。观察到与R134a相比,使用10nm尺寸的纳米颗粒的R600a获得的性能系数(COP)的平均值更高。
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来源期刊
Journal of Nanofluids
Journal of Nanofluids NANOSCIENCE & NANOTECHNOLOGY-
自引率
14.60%
发文量
89
期刊介绍: Journal of Nanofluids (JON) is an international multidisciplinary peer-reviewed journal covering a wide range of research topics in the field of nanofluids and fluid science. It is an ideal and unique reference source for scientists and engineers working in this important and emerging research field of science, engineering and technology. The journal publishes full research papers, review articles with author''s photo and short biography, and communications of important new findings encompassing the fundamental and applied research in all aspects of science and engineering of nanofluids and fluid science related developing technologies.
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