Thermodynamic Evaluation and Carbon Footprint Analysis of the Application of Hydrogen-Based Energy-Storage Systems in Residential Buildings

被引:19
|
作者
Adametz, Patrick [1 ]
Poetzinger, Christian [2 ]
Mueller, Stefan [3 ]
Mueller, Karsten [1 ]
Preissinger, Markus [2 ]
Lechner, Raphael [3 ]
Brueggemann, Dieter [2 ]
Brautsch, Markus [3 ]
Arlt, Wolfgang [1 ]
机构
[1] Friedrich Alexander Univ Erlangen Nurnberg, Dept Chem & Biol Engn, Inst Separat Sci & Technol, Egerlandstr 3, D-91058 Erlangen, Germany
[2] Univ Bayreuth, Chair Engn Thermodynam & Transport Proc, Ctr Energy Technol, Univ Str 30, D-95440 Bayreuth, Germany
[3] Ostbayer Tech Hsch Amberg Weiden, Inst Energy Technol, Kaiser Wilhelm Ring 23a, D-92224 Amberg, Germany
关键词
carbon footprint; energy storage systems; hydrogen; residential buildings; thermodynamics; FUEL-CELLS; PHOTOVOLTAIC SYSTEMS; BATTERY SYSTEMS; METAL-HYDRIDES; POWER-SYSTEMS; HYBRID SYSTEM; PERFORMANCE; STRATEGIES; CARRIERS; ELECTROLYSIS;
D O I
10.1002/ente.201600388
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
This study represents a thermodynamic evaluation and carbon footprint analysis of the application of hydrogenbased energy storage systems in residential buildings. In the system model, buildings are equipped with photovoltaic (PV) modules and a hydrogen storage system to conserve excess PV electricity from times with high solar irradiation to times with low solar irradiation. Short-term storages enable a degree of self-sufficiency of approximately 60% for a single-family house (SFH) [multifamily house (MFH):38%]. Emissions can be reduced by 40% (SFH) (MFH: 30%) compared to households without PV modules. These results are almost independent of the applied storage technology. For seasonal storage, the degree of self-sufficiency ranges between 57 and 83% (SFH). The emission reductions highly depend on the storage technology, as emissions caused by manufacturing the storage dominate the emission balance. Compressed gas or liquid organic hydrogen carriers are the best options, enabling emission reductions of 40%.
引用
收藏
页码:495 / 509
页数:15
相关论文
共 50 条
  • [1] Assessment of hydrogen-based long term electrical energy storage in residential energy systems
    Lubello, Pietro
    Pasqui, Mattia
    Mati, Alessandro
    Carcasci, Carlo
    [J]. SMART ENERGY, 2022, 8
  • [2] An integrated energy analysis framework for evaluating the application of hydrogen-based energy storage systems in achieving net zero energy buildings and cities in Canada
    Wu, You
    Zhong, Lexuan
    [J]. ENERGY CONVERSION AND MANAGEMENT, 2023, 286
  • [3] Hydrogen-Based Energy Storage Systems: A Review
    Shatnawi, Maad
    Al Qaydi, Nasir
    Aljaberi, Nawf
    Aljaberi, Maitha
    [J]. 2018 7TH INTERNATIONAL CONFERENCE ON RENEWABLE ENERGY RESEARCH AND APPLICATIONS (ICRERA), 2018, : 697 - 700
  • [4] Carbon Footprint and Life Cycle Cost Assessment of a Hydrogen-Based Energy Storage System for Ships with a Case Study
    Seddiek, Ibrahim S.
    Ammar, Nader R.
    [J]. NAVAL ENGINEERS JOURNAL, 2023, 135 (03) : 107 - 120
  • [5] The role of hydrogen-based power systems in the energy transition of the residential sector
    Maestre, Victor M.
    Ortiz, Alfredo
    Ortiz, Inmaculada
    [J]. JOURNAL OF CHEMICAL TECHNOLOGY AND BIOTECHNOLOGY, 2022, 97 (03) : 561 - 574
  • [6] Dynamic simulation of hydrogen-based zero energy buildings with hydrogen energy storage for various climate conditions
    Mansir, Ibrahim B.
    Hani, E. H. Bani
    Ayed, Hamdi
    Diyoke, Chidiebere
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2022, 47 (62) : 26501 - 26514
  • [7] The Economic Impact and Carbon Footprint Dependence of Energy Management Strategies in Hydrogen-Based Microgrids
    Rey, Jesus
    Segura, Francisca
    Andujar, Jose Manuel
    Ferrario, Andrea Monforti
    [J]. ELECTRONICS, 2023, 12 (17)
  • [8] Optimal coordination of hydrogen-based integrated energy systems with combination of hydrogen and water storage
    Dong, Xiangxiang
    Wu, Jiang
    Xu, Zhanbo
    Liu, Kun
    Guan, Xiaohong
    [J]. APPLIED ENERGY, 2022, 308
  • [9] Thermodynamic and economic analysis of a hybrid ocean thermal energy conversion/photovoltaic system with hydrogen-based energy storage system
    Khosravi, A.
    Syri, Sanna
    Assad, M. E. H.
    Malekan, M.
    [J]. ENERGY, 2019, 172 : 304 - 319
  • [10] Techno-economic analysis of green hydrogen as an energy-storage medium for commercial buildings
    Urs, Rahul Rajeevkumar
    Chadly, Assia
    Al Sumaiti, Ameena
    Mayyas, Ahmad
    [J]. CLEAN ENERGY, 2023, 7 (01): : 84 - 98