Reversible solid-oxide cell stack based power-to-x-to-power systems: Comparison of thermodynamic performance

被引:54
|
作者
Wang, Ligang [1 ,2 ]
Zhang, Yumeng [2 ,3 ]
Perez-Fortes, Mar [1 ]
Aubin, Philippe [1 ]
Lin, Tzu-En [4 ]
Yang, Yongping [3 ]
Marechal, Francois [2 ]
Van Herle, Jan [1 ]
机构
[1] Swiss Fed Inst Technol Lausanne, Grp Energy Mat, Lausanne, Switzerland
[2] Swiss Fed Inst Technol Lausanne, Ind Proc & Energy Syst Engn, Lausanne, Switzerland
[3] North China Elect Power Univ, Natl Res Ctr Thermal Power Engn & Technol, Beijing, Peoples R China
[4] Natl Chiao Tung Univ, Inst Biomed Engn, Hsinchu, Taiwan
基金
欧盟地平线“2020”; 中国国家自然科学基金;
关键词
Electrical storage; Power-to-x; Reversible solid-oxide cell; Ammonia; Methanol; Sector coupling; FUEL-CELL; METHANE SYSTEMS; ENERGY-STORAGE; ELECTROLYSIS; AMMONIA; DESIGN; RECIRCULATION;
D O I
10.1016/j.apenergy.2020.115330
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The increasing penetration of variable renewable energies poses new challenges for grid management. The economic feasibility of grid-balancing plants may be limited by low annual operating hours if they work either only for power generation or only for power storage. This issue might be addressed by a dual-function power plant with power-to-x capability, which can produce electricity or store excess renewable electricity into chemicals at different periods. Such a plant can be uniquely enabled by a solid-oxide cell stack, which can switch between fuel cell and electrolysis with the same stack. This paper investigates the optimal conceptual design of this type of plant, represented by power-to-x-to-power process chains with x being hydrogen, syngas, methane, methanol and ammonia, concerning the efficiency (on a lower heating value) and power densities. The results show that an increase in current density leads to an increased oxygen flow rate and a decreased reactant utilization at the stack level for its thermal management, and an increased power density and a decreased efficiency at the system level. The power-generation efficiency is ranked as methane (65.9%), methanol (60.2%), ammonia (58.2%), hydrogen (58.3%), syngas (53.3%) at 0.4 A/cm(2), due to the benefit of heat-to-chemical-energy conversion by chemical reformulating and the deterioration of electrochemical performance by the dilution of hydrogen. The power-storage efficiency is ranked as syngas (80%), hydrogen (74%), methane (72%), methanol (68%), ammonia (66%) at 0.7 A/cm(2), mainly due to the benefit of co-electrolysis and the chemical energy loss occurring in the chemical synthesis reactions. The lost chemical energy improves plant-wise heat integration and compensates for its adverse effect on power-storage efficiency. Combining these efficiency numbers of the two modes results in a rank of round-trip efficiency: methane (47.5%) > syngas (43.3%) hydrogen (42.6%) > methanol (40.7%) > ammonia (38.6%). The pool of plant designs obtained lays the basis for the optimal deployment of this balancing technology for specific applications.
引用
收藏
页数:9
相关论文
共 50 条
  • [1] Reversible solid-oxide cell stack based power-to-x-to-power systems: Economic potential evaluated via plant capital-cost target
    Zhang, Yumeng
    Wang, Ningling
    Tong, Xiaofeng
    Duan, Liqiang
    Lin, Tzu-En
    Marechal, Francois
    Van Herle, Jan
    Wang, Ligang
    Yang, Yongping
    [J]. APPLIED ENERGY, 2021, 290
  • [2] Impact of power-electronics systems on the performance and durability of tubular solid-oxide fuel cell
    Acharya, K
    Mazumder, SK
    Burra, RK
    [J]. APEC 2004: NINETEENTH ANNUAL IEEE APPLIED POWER ELECTRONICS CONFERENCE AND EXPOSITION, VOLS 1-3, 2004, : 1515 - 1520
  • [3] Performance comparison of three solid oxide fuel cell power systems
    Jia, Junxi
    Abudula, Abuliti
    Wei, Liming
    Shi, Yue
    [J]. INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2013, 37 (14) : 1821 - 1830
  • [4] Triple-mode grid-balancing plants via biomass gasification and reversible solid-oxide cell stack: Concept and thermodynamic performance
    Wang, Ligang
    Zhang, Yumeng
    Li, Chengzhou
    Perez-Fortes, Mar
    Lin, Tzu-En
    Marechal, Francois
    Van Herle, Jan
    Yang, Yongping
    [J]. APPLIED ENERGY, 2020, 280
  • [5] Performance assessment of a power-to-gas process based on reversible solid oxide cell
    Er-rbib, Hanaa
    Kezibri, Nouaamane
    Bouallou, Chakib
    [J]. FRONTIERS OF CHEMICAL SCIENCE AND ENGINEERING, 2018, 12 (04) : 697 - 707
  • [6] Performance assessment of a power-to-gas process based on reversible solid oxide cell
    Hanaâ Er-rbib
    Nouaamane Kezibri
    Chakib Bouallou
    [J]. Frontiers of Chemical Science and Engineering, 2018, 12 : 697 - 707
  • [7] Biogas-to-Power Systems Based on Solid Oxide Fuel Cells: Thermodynamic Analysis of Stack Integration Strategies
    Baldinelli, Arianna
    Desideri, Umberto
    Fantozzi, Francesco
    Cinti, Giovanni
    [J]. ENERGIES, 2024, 17 (15)
  • [8] Energy and exergy analysis of simple solid-oxide fuel-cell power systems
    Chan, SH
    Low, CF
    Ding, OL
    [J]. JOURNAL OF POWER SOURCES, 2002, 103 (02) : 188 - 200
  • [9] Application of solid-oxide fuel cell in distributed power generation
    Saha, A. K.
    Chowdhury, S.
    Chowdhury, S. P.
    Song, Y. H.
    [J]. IET RENEWABLE POWER GENERATION, 2007, 1 (04) : 193 - 202
  • [10] A thermally self-sustained micro solid-oxide fuel-cell stack with high power density
    Zongping Shao
    Sossina M. Haile
    Jeongmin Ahn
    Paul D. Ronney
    Zhongliang Zhan
    Scott A. Barnett
    [J]. Nature, 2005, 435 : 795 - 798