Techno-economic analysis of low-temperature electrolysis' waste-heat utilization

被引:3
|
作者
Swarts, Thomas [1 ]
Morren, Johan [1 ]
van den Akker, Wouter [1 ]
Slootweg, J. G. [1 ]
van Voorden, Arjan [2 ]
机构
[1] Eindhoven Univ Technol, Elect Energy Syst, Eindhoven, Netherlands
[2] Stedin, Rotterdam, Netherlands
关键词
waste-heat; low temperature electrolysis; AWE; green hydrogen; sector-coupling; system integration; POWER-TO-GAS; DESIGN;
D O I
10.1109/POWERTECH55446.2023.10202802
中图分类号
TP301 [理论、方法];
学科分类号
081202 ;
摘要
Low temperature electrolysis will be an indispensable system integration asset in future low-carbon energy systems but is known for its inefficiency and associated waste-heat production. Low temperature electrolysis' waste-heat could be used in e.g. 4th or 5th generation district heating systems. However, its economical feasibility is uncertain due to spatial, temporal and temperature imbalances between waste-heat supply and heat demand. Therefore, this study proposes a model that addresses these hurdles and is able to calculate, under varying circumstances, the distance between low temperature electrolyzers and district heating systems at which waste-heat utilization is still profitable. The model contains a detailed description of the waste-heat extraction system, an electrochemical and thermodynamic model of an alkaline water electrolyzer, and an optimal dispatch strategy of the electrolyzer based on electricity and hydrogen prices. Results show that the economically feasible distance between electrolyzers and district heating system increases with the electrolyzer's capacity and stack temperature. The model can be used to strategically site electrolyzers by private owners or system operators.
引用
收藏
页数:6
相关论文
共 50 条
  • [21] WASTE-HEAT UTILIZATION
    NICHOLS, BL
    PROCEEDINGS OF THE ACADEMY OF POLITICAL SCIENCE, 1973, 31 (02) : 87 - 97
  • [22] Techno-economic optimization of high-temperature heat pumps for waste heat recovery
    Vannoni, Alberto
    Sorce, Alessandro
    Traverso, Alberto
    Massardo, Aristide Fausto
    ENERGY CONVERSION AND MANAGEMENT, 2023, 290
  • [23] Techno-Economic Analysis of Waste Heat Recovery in Automotive Manufacturing Plants
    Paramita, Putu Diah Prajna
    Daniarta, Sindu
    Imre, Attila R.
    Kolasinski, Piotr
    APPLIED SCIENCES-BASEL, 2025, 15 (02):
  • [24] Techno-economic analysis of biomass-to-biomethanol (BtS) via low-temperature steam gasification
    Li, De-Xun
    Liu, Jia-Bao
    Farahani, Mohammad Reza
    Gao, Wei
    Huo, Yuhong
    ENERGY SOURCES PART B-ECONOMICS PLANNING AND POLICY, 2018, 13 (02) : 91 - 95
  • [25] waste heat recovery in low temperature networks versus domestic heat pumps - A techno-economic and environmental analysis (vol 219, 119675, 2021)
    Arnaudo, Monica
    Dalgren, Johan
    Topel, Monika
    Laumert, Bjorn
    ENERGY, 2021, 221
  • [26] Techno-economic analysis and experimental validation of solar-assisted low-temperature water electrolysis for green hydrogen production: Insights from Afyonkarahisar
    Yilmaz, Ceyhun
    Ozdemir, Safiye Nur
    Kocak, Umut
    Tokgoz, Nehir
    Fuel, 2025, 383
  • [27] Exergy, economic, and climate performance evaluation of an efficient clean cogeneration system driven by low-temperature waste-heat
    Li, Chengyun
    Wang, Lili
    Chen, Chao
    Zhang, Xuxue
    Zhao, Wenying
    Xiang, Shuguang
    JOURNAL OF CLEANER PRODUCTION, 2023, 403
  • [28] Techno-economic evaluation of green hydrogen production with low-temperature water electrolysis technologies directly coupled with renewable power sources
    Shin, Haeseong
    Jang, Dohyung
    Lee, Sangdon
    Cho, Hyun-Seok
    Kim, Kyong-Hwan
    Kang, Sanggyu
    ENERGY CONVERSION AND MANAGEMENT, 2023, 286
  • [29] Suppression of Heat leakage by Cooling Thermoelectric Device for Low-Temperature Waste-Heat Thermoelectric Generation
    Ishiyama, Toshihiko
    Yamada, Hiroaki
    2015 IEEE INTERNATIONAL TELECOMMUNICATIONS ENERGY CONFERENCE (INTELEC), 2015,
  • [30] Techno-economic analysis on low-temperature and high-pressure cryo-adsorption hydrogen storage
    Wu, J. K.
    Chen, S.
    Yu, M.
    Zhang, X. J.
    Jiang, L.
    FUEL, 2025, 381