Thermo-economic analysis of SOFC-CLC cogeneration system based on CO2 separation with natural cooling

被引:0
|
作者
Zhang, Hongsheng [1 ]
Li, Hanlin [1 ]
Yang, Xiaoyu [2 ]
Zhang, Yipeng [1 ]
Liu, Yifeng [1 ]
Duan, Chenghong [1 ]
Qin, Jiyun [3 ]
机构
[1] Beijing Univ Chem Technol, Coll Mech & Elect Engn, Beijing 100029, Peoples R China
[2] China Natl Oil & Gas Explorat & Dev Co Ltd, Beijing 100034, Peoples R China
[3] Shanghai Maritime Univ, China Inst FTZ Supply Chain, Shanghai 201306, Peoples R China
关键词
Chemical looping combustion; Cogeneration; Solid oxide fuel cell; Thermodynamic analysis; Economic analysis; OXIDE FUEL-CELL; LOOPING HYDROGEN GENERATION; TECH-ECONOMIC ASSESSMENT; PERFORMANCE ANALYSIS; POWER PRODUCTION; CCHP SYSTEM; CYCLE; OPTIMIZATION; ENERGY; CAPTURE;
D O I
10.1016/j.enconman.2024.119172
中图分类号
O414.1 [热力学];
学科分类号
摘要
An advanced cogeneration system combining CLC (Chemical Looping Combustion) and SOFC (Solid Oxide Fuel Cell) is proposed to reduce CO2 separation energy consumption in this paper. The method can separate CO2 without energy consumption to achieve minimum carbon dioxide emissions through natural cooling and improve energy conversion efficiency. SOFC is used to efficiently transform chemical energy of fuel into electrical energy, and the CO2 separation is achieved without energy consumption by CLC technology to significantly reduce CO2 emission during the energy conversion process. Besides, absorption heat pump is utilized for the recovery of lowgrade cold-end waste heat to achieve dual goals of minimum CO2 emissions and zero waste heat emissions. The performances are evaluated from an energy, economic and exergy perspective. The study demonstrates that the efficiencies of power generation, exergy and thermal are 66.22 %, 74.01 % and 91.04 % under the design parameters. Compared to the reference system, the efficiencies of power generation, exergy and thermal are enhanced by 3.05 %, 4.36 %, and 3.53 %. The three components with the highest exergy losses are the SOFC, CLC and direct current-accommodation converter (DC-AC), and accounts for 28.07 %, 27.16 % and 17.63 %. The levelized cost of exergy (LCOE) is 0.1026 $/kWh. The dynamic payback period is 7.03 years, which is reduced by 2.35 years compared to the reference system. Additionally, a sensitivity analysis is conducted. As fuel utilization rate, SOFC operating pressure and SOFC operating temperature increase, the thermal efficiency remains around 91 %, and exergy efficiency rises from 68.26 %, 61.84 % and 69.57 % to 74.00 %, 73.51 % and 73.01 %, and power generation efficiency improves from 60.18 %, 54.62 % and 62.76 % to 66.22 %, 66.89 % and 66.48 %, while the heating load decreases from 75.88 kW, 88.80 kW and 69.38 kW to 61.40 kW, 59.67 kW and 61.09 kW. With an increase in current density, exergy efficiency and power generation efficiency decrease from 73.34 % and 66.71 % to 71.84 % and 65.14 %, and the heating load increases from 60.42 kW to 63.65 kW. As the split ratio increases, the thermal efficiency, exergy efficiency and heating load increase from 77.77 %, 72.57 % and 25 kW to 91.04 %, 72.88 % and 61.40 kW, while the power generation efficiency decreases from 67.66 % to 66.22 %.
引用
收藏
页数:19
相关论文
共 50 条
  • [1] Thermo-Economic Analysis on Integrated CO2, Organic Rankine Cycles, and NaClO Plant Using Liquefied Natural Gas
    Tjahjono, Tri
    Ehyaei, Mehdi Ali
    Ahmadi, Abolfazl
    Hoseinzadeh, Siamak
    Memon, Saim
    ENERGIES, 2021, 14 (10)
  • [2] Comprehensive analysis and thermo-economic optimization of the dry cooling system for supercritical CO2 power cycle
    Yu, Yuanyuan
    Li, Xiaoxiao
    Wu, Chuang
    Liu, Chao
    Feng, Junjie
    CASE STUDIES IN THERMAL ENGINEERING, 2024, 62
  • [3] Thermo-economic analysis of a micro-cogeneration system based on a rotary steam engine (RSE)
    Alanne, Kari
    Saari, Kari
    Kuosa, Maunu
    Jokisalo, Juha
    Martin, Andrew R.
    APPLIED THERMAL ENGINEERING, 2012, 44 : 11 - 20
  • [4] Thermo-economic evaluation of a solar and SOFC-based power and freshwater co-production system
    Zhou, Xianqi
    You, Huailiang
    Li, Guoxiang
    Han, Jitian
    Xiao, Yan
    Hu, Bin
    Chen, Ze-Hang
    Chen, Daifen
    APPLIED THERMAL ENGINEERING, 2025, 271
  • [5] Designing and optimizing a novel cogeneration system for an office building based on thermo-economic and environmental analyses
    Rad, Ehsan Amiri
    Maddah, Saeed
    Mohammadi, Saeed
    RENEWABLE ENERGY, 2020, 151 : 342 - 354
  • [6] Preliminary conceptual design and thermo-economic analysis of a combined cooling, heating and power system based on supercritical carbon dioxide cycle
    Fan, Gang
    Li, Hang
    Du, Yang
    Zheng, Shaoxiong
    Chen, Kang
    Dai, Yiping
    ENERGY, 2020, 203
  • [7] Performance analysis of an SOFC/HCCI engine hybrid system: System simulation and thermo-economic comparison
    Park, Sung Ho
    Lee, Young Duk
    Ahn, Kook Young
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2014, 39 (04) : 1799 - 1810
  • [8] Thermo-Economic Analysis of a Novel Power System Including Medical-Waste Plasma Gasification, SOFC, Biomass-Fired Power Generation, and CCS
    Lu, Di
    Chen, Heng
    Li, Bo
    An, Jizhen
    Pan, Peiyuan
    Xu, Gang
    Zhao, Qinxin
    Liu, Tong
    ENERGY TECHNOLOGY, 2023, 11 (08)
  • [9] Thermo-economic analysis of a direct supercritical CO2 electric power generation system using geothermal heat
    Wang, Xingchao
    Pan, Chunjian
    Romero, Carlos E.
    Qiao, Zongliang
    Banerjee, Arindam
    Rubio-Maya, Carlos
    Pan, Lehua
    FRONTIERS IN ENERGY, 2022, 16 (02) : 246 - 262
  • [10] Thermo-economic analysis of a combined cooling, heating and power system based on self-evaporating liquid carbon dioxide energy storage
    Xu, Wenpan
    Zhao, Pan
    Gou, Feifei
    Liu, Aijie
    Wu, Wenze
    Wang, Jiangfeng
    APPLIED ENERGY, 2022, 326