Proposal of a novel multi-generation system based on dual-loop absorption power and compression refrigeration cycle

被引:0
|
作者
Masoumifard, Mohammad [1 ]
Ghaebi, Hadi [2 ,3 ]
Kazemi, Admin [1 ]
Bahramkhoo, Moharam [1 ]
机构
[1] Islamic Azad Univ, Dept Mech Engn, Bandar Anzali Branch, Bandar Anzali, Iran
[2] Univ Mohaghegh Ardabili, Dept Mech Engn, Ardebil, Iran
[3] Univ Mohaghegh Ardabili, Energy Management Res Ctr EMRC, Ardebil, Iran
关键词
Multi-generation; Dual-loop cycle; Absorption refrigeration; Absorption power; Proton exchange membrane electrolyzer; Energy and exergy; ORGANIC RANKINE-CYCLE; TRIGENERATION SYSTEM; WASTE HEAT; MULTIOBJECTIVE OPTIMIZATION; THERMODYNAMIC ANALYSIS; HYDROGEN-PRODUCTION; WORKING FLUIDS; KALINA CYCLE; ENERGY; EJECTOR;
D O I
10.1016/j.ijrefrig.2024.07.001
中图分类号
O414.1 [热力学];
学科分类号
摘要
One of the promising approaches to compensate for imminent depletion of fossil energy resources and their adverse global impacts is enhancing the efficiency of systems utilizing low-temperature heat sources. The initial target of the research is to present a promising system for simultaneous production of power, refrigeration, heat, and hydrogen utilizing a combination of the absorption power cycle, the vapor compression refrigeration cycle, and a proton exchange membrane electrolyzer. On this subject, a comprehensive modeling of the energy and exergy of the proposed set-up is presented, and its thermodynamic performance is scrutinized. Furthermore, a comprehensive study of various parameters is performed to evaluate their impacts on system performance. The research aims to enhance and optimize the use of energy and various resources, contributing to the development of more sustainable efficient energy systems. Thermodynamic analysis of the multiple generation system shows that under baseline conditions and initial design, the system has the capability to produce net electrical power of approximately 17.12 kW, cooling power of about 201.5 kW, heating power of around 697.1 kW, and produce pure hydrogen at a rate of 0.153 kilograms per hour. The system exhibits an energy efficiency ratio of 1.364 and an exergy efficiency of 36.58 %. Moreover, optimization with single and multiple objectives with different weighting coefficients reveals that higher values of these parameters can be obtained. In other words, in the MOOM optimization mode, exergy efficiency increases to 7.16 %, and the energy performance ratio rises to 85.73 % compared to the BM mode. Additionally, through a parametric assessment to define the effect of input parameters on system performance, it demonstrates that increasing the temperature of the heat source may simultaneously increase the exergy efficiency and energy performance ratio of the system. The Grassmann diagram also indicates that the total exergy of the input fuel is about 196.9 kW. From this amount, approximately 121.5 kW are destroyed through the components of the system. Furthermore, about 3.39 kW are lost through the absorber coolant and waste from the hydrogen production unit. About 72.4 kW are attributed to products.
引用
收藏
页码:212 / 226
页数:15
相关论文
共 50 条
  • [31] Assessment of a novel multi-generation solar CPV/T system combining adsorption and organic rankine cycle subsystems
    Albaik, Ibrahim
    Alamri, Yassir A.
    Elsheniti, Mahmoud B.
    Al-Dadah, Raya
    Mahmoud, Saad
    Ismail, Mohamed A.
    SOLAR ENERGY, 2022, 236 : 455 - 472
  • [32] Proposal and assessment of a combined cooling and power system based on the regenerative supercritical carbon dioxide Brayton cycle integrated with an absorption refrigeration cycle for engine waste heat recovery
    Wu, Chuang
    Xu, Xiaoxiao
    Li, Qibin
    Li, Jun
    Wang, Shunsen
    Liu, Chao
    ENERGY CONVERSION AND MANAGEMENT, 2020, 207 (207)
  • [33] Numerical investigation and optimization of a proposed heat-driven compression/absorption hybrid refrigeration system combined with a power cycle
    Wei, Chen
    Hao, Xu
    Tianjiao, Bi
    Bin, Zhang
    Yan, He
    ENERGY, 2022, 246
  • [34] Techno-environmental assessment and machine learning-based optimization of a novel dual-source multi-generation energy system
    Javaherian, Amirreza
    Ghasemzadeh, Nima
    Javanshir, Nima
    Yari, Mortaza
    Vajdi, Mohammad
    Nami, Hossein
    PROCESS SAFETY AND ENVIRONMENTAL PROTECTION, 2023, 176 : 537 - 559
  • [35] Thermoeconomic Analysis of Novel Vapor Compression-Absorption Multi-Target-Temperature Cascade Refrigeration System
    Mishra, Shubham Kumar
    Sharma, Ajay
    Verma, Ashutosh Kumar
    Yadav, Laxmikant
    JOURNAL OF THERMAL SCIENCE AND ENGINEERING APPLICATIONS, 2023, 15 (04)
  • [36] Comparative investigation and multi objective design optimization of a cascaded vapor compression absorption refrigeration system operating with different refrigerants in the vapor compression cycle
    Turgut, Mert Sinan
    Turgut, Oguz Emrah
    HEAT AND MASS TRANSFER, 2019, 55 (02) : 467 - 488
  • [37] Thermal analysis of a novel configuration of double effect absorption system cascaded with ejector and injection enhanced compression refrigeration cycle
    Siddique, Sefat Mahmud
    Uzzaman, M. Muhtasim
    Ehsan, M. Monjurul
    Khan, Yasin
    ENERGY CONVERSION AND MANAGEMENT, 2025, 326
  • [38] Comparative investigation and multi objective design optimization of a cascaded vapor compression absorption refrigeration system operating with different refrigerants in the vapor compression cycle
    Mert Sinan Turgut
    Oguz Emrah Turgut
    Heat and Mass Transfer, 2019, 55 : 467 - 488
  • [39] Development of a novel dual-loop optimization method for the engine electric turbocompound system based on particle swarm algorithm
    Zhao, Rongchao
    Huang, Lei
    Wang, Zhen
    Zhuge, Weilin
    Ding, Zhanming
    Zhang, Yangjun
    ENERGY, 2023, 284
  • [40] Proposal and thermo-economic analysis of a novel multi-generation system producing heating, power and clean water under energetically self-sufficient operation
    Xi, Huan
    Li, Ming-Jia
    Hung, Tzu-Chen
    Feng, Yong-Qiang
    INTERNATIONAL JOURNAL OF GREEN ENERGY, 2023, 20 (13) : 1459 - 1472