Analysis of cascade vapor compression refrigeration system using nanorefrigerants: Energy, exergy, and environmental (3E)

被引:1
|
作者
Yilmaz, Metin [1 ]
Cimsit, Canan [2 ]
Keven, Arzu [2 ]
Karaali, Rabi [3 ]
机构
[1] Kocaeli Univ, Inst Nat & Appl Sci, Dept Mech Engn, Umuttepe, Kocaeli, Turkiye
[2] Kocaeli Univ, Golcuk Vocat Sch, Golcuk, Kocaeli, Turkiye
[3] Bayburt Univ, Engn Fac, Mech Engn, Bayburt, Turkiye
关键词
Cascade refrigeration system; Nanoparticles; Energy; Exergy; Environmental;
D O I
10.1016/j.csite.2024.104373
中图分类号
O414.1 [热力学];
学科分类号
摘要
Nanorefrigerants are considered the most efficient heat transfer fluids for improving heat transfer properties in the refrigeration and air conditioning equipment. For the first time in this study, energy, exergy, and environmental evaluation (3E) analyses were performed by the addition of different nanoparticles to a low GWP refrigerant pair such as R290/R1233ZDE in a cascade refrigeration system. CNT, CuO, and, TiO 2 nanoparticles were added to the refrigerant. The effect of nanoparticles on the cascade refrigeration system was analyzed using a model based on density changes. A detailed thermodynamic analysis was performed of the cascade refrigeration system at different evaporator temperatures and mass ratios. The power consumption of the compressor decreases as the evaporator temperature increases for all types of nanoparticles, resulting in an increase in COP values. The analyses showed that CuO nanoparticles had the highest performance. It has been observed that the energy and exergy efficiency increase as compressor work decreases with increasing mass ratios in all nanorefrigerants. In addition, the results indicated that all nanorefrigerants emit lower monthly CO 2 emissions compared to the pure refrigerants. The nanorefrigerants play a crucial role in reducing energy consumption and promoting environmental protection compared to traditional refrigerants.
引用
下载
收藏
页数:10
相关论文
共 50 条
  • [21] Exergy, economic and environmental analysis of organic Rankine cycle based vapor compression refrigeration system
    Ashwni
    Sherwani, Ahmad Faizan
    Tiwari, Deepak
    INTERNATIONAL JOURNAL OF REFRIGERATION, 2021, 126 : 259 - 271
  • [22] Advanced Exergy Analysis of a Compression-Absorption Cascade Refrigeration System
    Colorado-Garrido, Dario
    JOURNAL OF ENERGY RESOURCES TECHNOLOGY-TRANSACTIONS OF THE ASME, 2019, 141 (04):
  • [23] Energy and exergy analysis of an integrated organic Rankine cycle-vapor compression refrigeration system
    Saleh, B.
    APPLIED THERMAL ENGINEERING, 2018, 141 : 697 - 710
  • [24] Energy, exergy, economic and environmental analyses of a cascade absorption-compression refrigeration system using two-stage compression with complete intercooling
    Zhang, Hanyue
    Pan, Xi
    Chen, Jianye
    Xie, Junlong
    APPLIED THERMAL ENGINEERING, 2023, 225
  • [25] EXERGY ANALYSIS OF A COMPRESSION REFRIGERATION SYSTEM
    KUMAR, S
    PREVOST, M
    BUGAREL, R
    HEAT RECOVERY SYSTEMS & CHP, 1989, 9 (02): : 151 - 157
  • [26] Energy and exergy analysis of subcooling the condenser outlet refrigerant in a compression-absorption cascade refrigeration system
    Salajeghe, M.
    Ameri, M.
    INTERNATIONAL JOURNAL OF EXERGY, 2015, 18 (02) : 234 - 250
  • [27] Energy-exergy-economic-environmental (4E) analysis and multi-objective optimization of a cascade refrigeration system
    Prajapati, Parth
    Patel, Vivek
    Raja, Bansi D.
    Jouhara, Hussam
    THERMAL SCIENCE AND ENGINEERING PROGRESS, 2024, 54
  • [28] Energy and exergy analysis of a two-stage cascade refrigeration system
    Mohammadi, S. M. Hojjat
    Ameri, Mehran
    BUILDING SERVICES ENGINEERING RESEARCH & TECHNOLOGY, 2016, 37 (04): : 395 - 412
  • [29] ASSESSMENT OF AN INTEGRATED ORGANIC RANKINE CYCLE (ORC)-VAPOR COMPRESSION REFRIGERATION (VCR) SYSTEM USING THE ENERGY, CONVENTIONAL EXERGY, AND ADVANCED EXERGY ANALYSIS
    Aktemur, Cenker
    Hacipasaoglu, Servet Giray
    HEAT TRANSFER RESEARCH, 2021, 52 (15) : 15 - 40
  • [30] Energy and exergy analysis of low GWP refrigerants in cascade refrigeration system
    Sun, Zhili
    Wang, Qifan
    Xie, Zhiyuan
    Liu, Shengchun
    Su, Dandan
    Cui, Qi
    ENERGY, 2019, 170 : 1170 - 1180