Parametric study of absorption refrigeration with vapor compression refrigeration cycle using wet, isentropic and azeotropic working fluids: Conventional and advanced exergy approach

被引:44
|
作者
Ustaoglu, Abid [1 ]
机构
[1] Bartin Univ, Dept Mech Engn, TR-74100 Bartin, Turkey
关键词
Advanced exergy; Endogenous/exogenous; Avoidable/unavoidable; Absorption-compression cascade-refrigeration; THERMODYNAMIC PROPERTIES; HEAT-SOURCES; PERFORMANCE; SYSTEM; ENERGY; POWER; MIXTURES; COSTS; AIR;
D O I
10.1016/j.energy.2020.117491
中图分类号
O414.1 [热力学];
学科分类号
摘要
Advanced exergy analysis was carried out for absorption-compression refrigeration-cycles with a working fluid selection and parametric analysis. The exergy-destruction was split into endogenous-exogenous and avoidable-unavoidable-parts to reveal the interdependency within the components and determine the improvement potential. The results show that the largest exergy-destruction occurs in the generator, accounting for 53.8% of the total destruction. The largest irreversibility occurs for R507a/NH3-H2O while the lowest destruction occurs for R152a/NH3-H2O with an approximate reduction of 0.62 kW. The largest irreversibility occurs in the azeotropic-fluids while the lowest occurs in wet fluids. More than one-half of overall exergy-destruction rates of the systems falls into the part of the avoidable-destruction with 52.5% of overall irreversibility. The major part of the avoidable-destruction occurs in the generator with 11.47 kW and it accounts for 57.8% of the total avoidable part, meaning that it has the highest improvement potential. The parametric analysis of the advanced exergy shows that the avoidable-part of the exergy-destruction can be minimized to a considerable extent employing a temperature of the condenser below 40 degrees C and generator temperature larger from 100 degrees C. (C) 2020 Elsevier Ltd. All rights reserved.
引用
收藏
页数:15
相关论文
共 37 条
  • [31] Energy and exergy analysis of an air-cooled waste heat-driven absorption refrigeration cycle using R290/oil as working fluid
    Gao, Yu
    He, Guogeng
    Chen, Peidong
    Zhao, Xin
    Cai, Dehua
    ENERGY, 2019, 173 : 820 - 832
  • [32] Working fluids selection and parametric optimization of an Organic Rankine Cycle coupled Vapor Compression Cycle (ORC-VCC) for air conditioning using low grade heat
    Nasir, Muhammad Tauseef
    Kim, Kyung Chun
    ENERGY AND BUILDINGS, 2016, 129 : 378 - 395
  • [33] Thermo-economic and environmental evaluation of a novel SOFC based trigeneration system using organic Rankine cycle and cascaded vapor compression-absorption refrigeration system
    Khan, Yunis
    Singh, Pawan Kumar
    THERMAL SCIENCE AND ENGINEERING PROGRESS, 2025, 57
  • [34] A Theoretical Comparative Study of Vapor-Compression Refrigeration Cycle using Al2O3 Nanoparticle with Low-GWP Refrigerants
    Li, Shengyu
    Lu, Jun
    ENTROPY, 2022, 24 (12)
  • [35] Comparison of experimental performance of absorption refrigeration cycle using NH3/LiNO3+H2O working fluids with different water component proportions
    Zhou, Sai
    He, Guogeng
    Liang, Xiao
    Li, Yanfei
    Pang, Qicong
    Cai, Dehua
    INTERNATIONAL JOURNAL OF REFRIGERATION, 2022, 139 : 25 - 40
  • [36] Preliminary Study on Vapor Compression Refrigeration Cycle with an Internal Phase -Separating Loop Using A R290/R600a Mixture in Air Conditioner
    Mustaqim
    Fajar, Berkah
    Utomo, Tony Suryo
    Winoto, S. H.
    10TH INTERNATIONAL MEETING OF ADVANCES IN THERMOFLUIDS (IMAT 2018): SMART CITY: ADVANCES IN THERMOFLUID TECHNOLOGY IN TROPICAL URBAN DEVELOPMENT, 2019, 2062
  • [37] Proposal and 3E (energy, exergy, and exergoeconomic) assessment of a cogeneration system using an organic Rankine cycle and an Absorption Refrigeration System in the Northeast Brazil: Thermodynamic investigation of a facility case study
    Souza, R. J.
    Dos Santos, C. A. C.
    Ochoa, A. A., V
    Marques, A. S.
    Neto, J. L. M.
    Michima, P. S. A.
    ENERGY CONVERSION AND MANAGEMENT, 2020, 217