Energy, exergy, economic and exergoenvironmental analyses of polygeneration system integrated gas cycle, absorption chiller, and Copper-Chlorine thermochemical cycle to produce power, cooling, and hydrogen

被引:33
作者
Fan, Guangli [1 ]
Ahmadi, A. [2 ]
Ehyaei, M. A. [3 ]
Das, Biplab [4 ]
机构
[1] Xijing Univ, Xian 710123, Shaanxi, Peoples R China
[2] Iran Univ Sci & Technol, Sch New Technol, Dept Energy Syst Engn, Tehran, Iran
[3] Islamic Azad Univ, Dept Mech Engn, Pardis Branch, Pardis New City, Iran
[4] Natl Inst Technol Silchar, Dept Mech Engn, Asaam 788010, India
关键词
Energy; Exergy; Cu-Cl; Economic; Gas cycle; Absorption chiller; OXIDE FUEL-CELL; ORGANIC RANKINE-CYCLE; CU-CL CYCLE; MULTIOBJECTIVE OPTIMIZATION; EXERGOECONOMIC ANALYSIS; COMBINED HEAT; THERMODYNAMIC ANALYSIS; ENVIRONMENTAL-IMPACT; GENETIC ALGORITHM; WASTE HEAT;
D O I
10.1016/j.energy.2021.120008
中图分类号
O414.1 [热力学];
学科分类号
摘要
The proposed cogeneration system consists of a gas cycle, an absorption chiller, a heat recovery steam generator (HRSG), and Copper-Chlorine (Cu-Cl) thermochemical cycle that is applied for power, cooling, and hydrogen production. The configuration of these cycles is somehow that the exhaust hot gas from the gas cycle operates a heat recovery steam generator (HRSG), which is considered to produce steam for the Cu-Cl cycle. Then, the rest of the heat of hot gas energy is recovered by an absorption chiller for producing a cooling capacity. In this cycle, minimum exhaust heat from the gas turbine delivers to the atmosphere and causes less thermal population and clean power generation. Moreover, providing cooling capacity and hydrogen production associated with this cogeneration is applicable to store hydrogen as a clean fuel. A comprehensive performance assessment of this cogeneration system has been carried out based on energy, exergy, economic, and exergoenvironmental analyses. The results revealed while energy and exergy efficiencies for the gas cycle alone are 19% and 15%, respectively, and with using this proposed plant, these values can be improved up to about 43% and 44%, respectively. Economic analysis of this system shows the simple payback period (SPP) value for the stand-alone gas cycle is about 7.2 years, whereas this index for the combined gas and Cu-Cl cycles is about 3.1 years and for the whole system is 2.4 years. The results of exergoenvironment analysis reveal that the highest exergy stability factor (exergy destruction) of 0.8 belongs to the Cu-Cl cycle and the lowest exergy stability value of about 0.03 belongs to the absorption chiller cycle. (c) 2021 Elsevier Ltd. All rights reserved.
引用
收藏
页数:15
相关论文
共 85 条
  • [1] Exergoeconomic analysis and optimization of combined heat and power production: A review
    Abusoglu, Aysegul
    Kanoglu, Mehmet
    [J]. RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2009, 13 (09) : 2295 - 2308
  • [2] Energy, exergy, economic and exergoenvironmental analyses of gas and air bottoming cycles for production of electricity and hydrogen with gas reformer
    Ahmadi, A.
    Jamali, D. H.
    Ehyaei, M. A.
    Assad, M. El Haj
    [J]. JOURNAL OF CLEANER PRODUCTION, 2020, 259
  • [3] Akbari MAER., 2019, Int J Energy Power Eng, V13, P630
  • [4] Al-Tahaineh H., 2013, Energy and Power, V3, P106
  • [5] Development and assessment of a novel integrated nuclear plant for electricity and hydrogen production
    Al-Zareer, Maan
    Dincer, Ibrahim
    Rosen, Marc A.
    [J]. ENERGY CONVERSION AND MANAGEMENT, 2017, 134 : 221 - 234
  • [6] Energy, exergy and exergoeconomic analysis of a steam power plant: A case study
    Ameri, Mohammad
    Ahmadi, Pouria
    Hamidi, Armita
    [J]. INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2009, 33 (05) : 499 - 512
  • [7] [Anonymous], 2019, J MATER SCI, DOI [DOI 10.1007/s10853-019-04196-y, DOI 10.1017/jmo.2019.91]
  • [8] Energy and exergy analyses of a new four-step copper-chlorine cycle for geothermal-based hydrogen production
    Balta, M. Tolga
    Dincer, Ibrahim
    Hepbasli, Arif
    [J]. ENERGY, 2010, 35 (08) : 3263 - 3272
  • [9] Bejan A., 2016, IRREVERSIBLE THERMOD, V4th
  • [10] Bejan A., 1995, Thermal Design and Optimization