An optimal standalone wind-photovoltaic power plant system for green hydrogen generation: Case study for hydrogen refueling station

被引:10
|
作者
Rizk-Allah, Rizk M. [1 ,2 ]
Hassan, Islam A. [3 ]
Snasel, Vaclav [1 ]
Hassanien, Aboul Ella [4 ,5 ]
机构
[1] VSB Tech Univ Ostrava, Fac Elect Engn & Comp Sci, Poruba Ostrava 70800, Czech Republic
[2] Menoufia Univ, Fac Engn, Dept Basic Engn Sci, Shibin Al Kawm 32511, Egypt
[3] Zagazig Univ, Fac Engn, Dept Mech Engn, Zagazig 44511, Egypt
[4] Kuwait Univ, Coll Business Adm CBA, Kuwait, Kuwait
[5] Cairo Univ, Fac Comp & AI, Cairo, Egypt
关键词
Hydrogen refueling station; Renewable energy power; Levelized hydrogen cost; Optimization; Sustainability; TECHNOECONOMIC EVALUATION; ELECTRIC VEHICLES; RENEWABLE ENERGY; OPTIMAL-DESIGN; WASTE-WATER; TRANSPORT;
D O I
10.1016/j.rineng.2024.102234
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Sustainability goals include the utilization of renewable energy resources to supply the energy needs in addition to wastewater treatment to satisfy the water demand. Moreover, hydrogen has become a promising energy carrier and green fuel to decarbonize the industrial and transportation sectors. In this context, this research investigates a wind-photovoltaic power plant to produce green hydrogen for hydrogen refueling station and to operate an electrocoagulation water treatment unit in Ostrava, Czech Republic's northeast region. The study conducts a techno-economic analysis through HOMER Pro (R) software for optimal sizing of the power station components and to investigate the economic indices of the plant. The power station employs photovoltaic panels and wind turbines to supply the required electricity for electrolyzers and electrocoagulation reactors. As an offgrid system, lead acid batteries are utilized to store the surplus electricity. Wind speed and solar irradiation are the key role site dependent parameters that determine the cost of hydrogen, electricity, and wastewater treatment. The simulated model considers the capital, operating, and replacement costs for system components. In the proposed system, 240 kg of hydrogen as well as 720 kWh electrical energy are daily required for the hydrogen refueling station and the electrocoagulation unit, respectively. Accordingly, the power station annually generates 6,997,990 kWh of electrical energy in addition to 85595 kg of green hydrogen. Based on the economic analysis, the project's NPC is determined to be <euro>5.49 M and the levelized cost of Hydrogen (LCH) is 2.89 <euro>/kg excluding compressor unit costs. This value proves the effectiveness of this power system, which encourages the utilization of green hydrogen for fuel-cell electric vehicles (FCVs). Furthermore, emerging electrocoagulation studies produce hydrogen through wastewater treatment, increasing hydrogen production and lowering LCH. Therefore, this study is able to provide practicable methodology support for optimal sizing of the power station components, which is beneficial for industrialization and economic development as well as transition toward sustainability and autonomous energy systems.
引用
收藏
页数:12
相关论文
共 50 条
  • [41] Strategic integration of national grid or solar photovoltaic power with the on-site hydrogen vehicle refueling station at the hydrogen energy laboratory, BCSIR, Bangladesh
    Salam, Md Abdus
    Shaikh, Md Aftab Ali
    Ahmed, Kawsar
    Sweety, Mirza Nusrat
    Saha, Pallabe
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2024, 86 : 153 - 165
  • [42] Optimal Energy Management in a Standalone Microgrid, with Photovoltaic Generation, Short-Term Storage, and Hydrogen Production
    Cecilia, Andreu
    Carroquino, Javier
    Roda, Vicente
    Costa-Castello, Ramon
    Barreras, Felix
    ENERGIES, 2020, 13 (06)
  • [43] Optimal Power Flow with Transmission Switching for Power System with Wind/Photovoltaic Generation
    Jiang, Jiayin
    Han, Xueshan
    Wang, Junxiong
    Zhu, Xingxu
    Sun, Donglei
    Ma, Yanfei
    2017 CHINESE AUTOMATION CONGRESS (CAC), 2017, : 5802 - 5806
  • [44] Distributionally robust planning method for expressway hydrogen refueling station powered by a wind-PV system
    Yang, Yuyan
    Xu, Xiao
    Luo, Yichen
    Liu, Junyong
    Hu, Weihao
    RENEWABLE ENERGY, 2024, 225
  • [45] Wind-hydrogen standalone uninterrupted power supply plant for all-climate application
    Solomin, E.
    Kirpichnikova, I.
    Amerkhanov, R.
    Korobatov, D.
    Lutovats, M.
    Martyanov, A.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2019, 44 (07) : 3433 - 3449
  • [46] Optimization of green hydrogen production in hydroelectric-photovoltaic grid connected power station
    Zghaibeh, Manaf
    Ben Belgacem, Ikram
    Barhoumi, El Manaa
    Baloch, Mazhar Hussain
    Chauhdary, Sohaib Tahir
    Kumar, Laveet
    Arici, Muesluem
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2024, 52 : 440 - 453
  • [47] An estimation of green hydrogen generation from wind energy: A case study from KSA
    AlZohbi, G.
    AlShuhail, L.
    Almoaikel, A.
    ENERGY REPORTS, 2023, 9 : 262 - 267
  • [48] Mapping the Optimal Sites for Offshore Wind Power Plants and Green Hydrogen Production: South and Southeast Brazilian Case Study
    Paula, Karen De
    Pumalloclla, Hayro
    Pourakbari-Kasmaei, Mahdi
    Melo, Joel D.
    Falcao, Djalma
    IEEE International Symposium on Industrial Electronics, 2023, 2023-June
  • [49] Designing an optimal multi-energy system with fast charging and hydrogen refueling station under uncertainties
    Er, Gulfem
    Soykan, Gurkan
    Canakoglu, Ethem
    SUSTAINABLE ENERGY GRIDS & NETWORKS, 2024, 39
  • [50] Case Study of a Potential Green Hydrogen Plant in Indonesia
    Prakoso, Muhammad Helmi
    Ulum, Muhammad Bahrul
    Saksama, Adetya Niam
    PROCEEDINGS 2024 IEEE 6TH GLOBAL POWER, ENERGY AND COMMUNICATION CONFERENCE, IEEE GPECOM 2024, 2024, : 387 - 393