Techno-economic analysis of high-power solid oxide electrolysis cell system

被引:19
作者
Bui, Tuananh [1 ,2 ]
Lee, Dongkeun [1 ]
Ahn, Kook Young [1 ,2 ]
Kim, Young Sang [1 ,2 ]
机构
[1] Korea Inst Machinery & Mat KIMM, Dept Zero Carbon Fuel & Power Generat, 156 Gajeongbuk Ro, Daejeon, South Korea
[2] Univ Sci & Technol UST, KIMM Campus,156 Gajeongbuk Ro, Daejeon 34103, South Korea
关键词
Solid oxide electrolysis cell (SOEC); High -power SOEC; Economic analysis; Levelized cost of hydrogen (LCOH); HIGH-TEMPERATURE ELECTROLYSIS; HYDROGEN-PRODUCTION SYSTEM; ENERGY-STORAGE; EFFICIENCY;
D O I
10.1016/j.enconman.2023.116704
中图分类号
O414.1 [热力学];
学科分类号
摘要
Water electrolysis using solid oxide electrolysis cells is a promising method for hydrogen production because it is highly efficient, clean, and scalable. Recently, a lot of researches focusing on development of high-power stack system have been introduced. However, there are very few studies of economic analysis for this promising system. Consequently, this study proposed 20-kW-scale high-power solid oxide electrolysis cells system configurations, then conducted economic analysis. Especially, the economic context was in South Korea. For comparison, a low-power system with similar design was used as a reference; the levelized cost of hydrogen of each system was calculated based on the revenue requirement method. Furthermore, a sensitivity analysis was also performed to identify how the economic variables affect the hydrogen production cost in a specific context. The results show that a high-power system is superior to a low-power system from an economic perspective. The stack cost is the dominant component of the capital cost, but the electricity cost is the factor that contributes the most to the hydrogen cost. In the first case study, it was found that, if a high-power system can be installed inside a nuclear power plant, the cost of hydrogen produced can reach $3.65/kg when the electricity cost is 3.28 is an element of/kWh and the stack cost is assumed to be $574/kW. The second case study indicated that the hydrogen cost can decrease by 24% if the system is scaled up to a 2-MW scale.
引用
收藏
页数:10
相关论文
共 37 条
  • [1] A developed control strategy for mitigating wind power generation transients using superconducting magnetic energy storage with reactive power support
    Aly, Mohamed M.
    Abdel-Akher, Mamdouh
    Said, Sayed M.
    Senjyu, Tomonobu
    [J]. INTERNATIONAL JOURNAL OF ELECTRICAL POWER & ENERGY SYSTEMS, 2016, 83 : 485 - 494
  • [2] Development of a High-Fidelity Model for an Electrically Driven Energy Storage Flywheel Suitable for Small Scale Residential Applications
    Amiryar, Mustafa E.
    Pullen, Keith R.
    Nankoo, Daniel
    [J]. APPLIED SCIENCES-BASEL, 2018, 8 (03):
  • [3] [Anonymous], 1999, HYDROGEN ENERGY CARR
  • [4] Bejan A, 1995, Thermal design and optimization
  • [5] High Temperature Electrolysis at EIFER, main achievements at cell and stack level
    Brisse, Annabelle
    Schefold, Josef
    [J]. WHEC 2012 CONFERENCE PROCEEDINGS - 19TH WORLD HYDROGEN ENERGY CONFERENCE, 2012, 29 : 53 - 63
  • [6] A Novel Solid Oxide Electrolysis Cell with Micro-/Nano Channel Anode for Electrolysis at Ultra-High Current Density over 5 A cm-2
    Cao, Junwen
    Li, Yifeng
    Zheng, Yun
    Wang, Shubo
    Zhang, Wenqiang
    Qin, Xiangfu
    Geng, Ga
    Yu, Bo
    [J]. ADVANCED ENERGY MATERIALS, 2022, 12 (28)
  • [7] Compressed air energy storage integrated with floating photovoltaic plant
    Cazzaniga, R.
    Cicu, M.
    Rosa-Clot, M.
    Rosa-Clot, P.
    Tina, G. M.
    Ventura, C.
    [J]. JOURNAL OF ENERGY STORAGE, 2017, 13 : 48 - 57
  • [8] Choksey J.S., 2021, WHATS DIFFERENCE GRA
  • [9] Hydrogen production for energy: An overview
    Dawood, Furat
    Anda, Martin
    Shafiullah, G. M.
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2020, 45 (07) : 3847 - 3869
  • [10] A stochastic self-scheduling program for compressed air energy storage (CAES) of renewable energy sources (RESs) based on a demand response mechanism
    Ghalelou, Afshin Najafi
    Fakhri, Alireza Pashaei
    Nojavan, Sayyad
    Majidi, Majid
    Hatami, Hojat
    [J]. ENERGY CONVERSION AND MANAGEMENT, 2016, 120 : 388 - 396