Performance Analysis of a Diabatic Compressed Air Energy Storage System Fueled with Green Hydrogen

被引:8
作者
Migliari, Luca [1 ]
Micheletto, Davide [1 ]
Cocco, Daniele [1 ]
机构
[1] Univ Cagliari, Dept Mech Chem & Mat Engn, Via Marengo 2, I-09123 Cagliari, Italy
关键词
CAES; hydrogen; photovoltaic; energy storage; power flexibility; ancillary services; renewable energy; energy shift; energy independence; energy transition; CAES; ELECTRICITY;
D O I
10.3390/en16207023
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 integration of an increasing share of Renewable Energy Sources (RES) requires the availability of suitable energy storage systems to improve the grid flexibility and Compressed Air Energy Storage (CAES) systems could be a promising option. In this study, a CO2-free Diabatic CAES system is proposed and analyzed. The plant configuration is derived from a down-scaled version of the McIntosh Diabatic CAES plant, where the natural gas is replaced with green hydrogen, produced on site by a Proton Exchange Membrane electrolyzer powered by a photovoltaic power plant. In this study, the components of the hydrogen production system are sized to maximize the self-consumption share of PV energy generation and the effect of the design parameters on the H2-CAES plant performance are analyzed on a yearly basis. Moreover, a comparison between the use of natural gas and hydrogen in terms of energy consumption and CO2 emissions is discussed. The results show that the proposed hydrogen fueled CAES can effectively match the generation profile and the yearly production of the natural gas fueled plant by using all the PV energy production, while producing zero CO2 emissions.
引用
收藏
页数:17
相关论文
共 41 条
  • [1] Optimal operation scheduling of wind power integrated with compressed air energy storage (CAES)
    Abbaspour, M.
    Satkin, M.
    Mohammadi-Ivatloo, B.
    Lotfi, F. Hoseinzadeh
    Noorollahi, Y.
    [J]. RENEWABLE ENERGY, 2013, 51 : 53 - 59
  • [2] Projecting the levelized cost of large scale hydrogen storage for stationary applications
    Abdin, Zainul
    Khalilpour, Kaveh
    Catchpole, Kylie
    [J]. ENERGY CONVERSION AND MANAGEMENT, 2022, 270
  • [3] Review of hydrogen safety during storage, transmission, and applications processes
    Abohamzeh, Elham
    Salehi, Fatemeh
    Sheikholeslami, Mohsen
    Abbassi, Rouzbeh
    Khan, Faisal
    [J]. JOURNAL OF LOSS PREVENTION IN THE PROCESS INDUSTRIES, 2021, 72
  • [4] Development and testing of a 100 kW fuel-flexible micro gas turbine running on 100% hydrogen
    Banihabib, Reyhaneh
    Lingstaedt, Timo
    Wersland, Magnus
    Kutne, Peter
    Assadi, Mohsen
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2024, 49 : 92 - 111
  • [5] An improved energy management operation strategy for integrating adiabatic compressed air energy storage with renewables in decentralized applications
    Bazdar, Elaheh
    Nasiri, Fuzhan
    Haghighat, Fariborz
    [J]. ENERGY CONVERSION AND MANAGEMENT, 2023, 286
  • [6] Energy storage for mitigating the variability of renewable electricity sources: An updated review
    Beaudin, Marc
    Zareipour, Hamidreza
    Schellenberglabe, Anthony
    Rosehart, William
    [J]. ENERGY FOR SUSTAINABLE DEVELOPMENT, 2010, 14 (04) : 302 - 314
  • [7] A review on compressed air energy storage: Basic principles, past milestones and recent developments
    Budt, Marcus
    Wolf, Daniel
    Span, Roland
    Yan, Jinyue
    [J]. APPLIED ENERGY, 2016, 170 : 250 - 268
  • [8] An overview of hydrogen safety sensors and requirements
    Buttner, William J.
    Post, Matthew B.
    Burgess, Robert
    Rivkin, Carl
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2011, 36 (03) : 2462 - 2470
  • [9] A Method to Estimate the Performance Map of a Centrifugal Compressor Stage
    Casey, Michael
    Robinson, Chris
    [J]. JOURNAL OF TURBOMACHINERY-TRANSACTIONS OF THE ASME, 2013, 135 (02):
  • [10] Cevik S., 2022, IMF working paper, P174