Integration of liquid air energy storage into the spanish power grid

被引:45
作者
Legrand, Mathieu [1 ]
Miguel Rodriguez-Anton, Luis [1 ]
Martinez-Arevalo, Carmen [1 ]
Gutierrez-Martin, Fernando [1 ]
机构
[1] Univ Politecn Madrid, ETS Ingn & Diseho Ind, Dept Ingn Mec Quim & Diseno Ind, Ronda Valencia 3, Madrid 28012, Spain
关键词
Renewable energy; Liquid air energy storage (LAES); Round-trip efficiency; Power grid balance; Levelized cost of storage; LARGE-SIZED ELEMENTS; THERMAL STORAGE; THERMODYNAMIC ANALYSIS; LEVELIZED COST; COMPRESSED-AIR; PERFORMANCE; SYSTEM; DESIGN; NUMBER; LAES;
D O I
10.1016/j.energy.2019.115965
中图分类号
O414.1 [热力学];
学科分类号
摘要
The European energy transition implies a relevant increase of renewable energies in the electric power generation mix. Integrating additional renewables is becoming more challenging due to their variability. Spain's peninsular situation aggravates this problem because it is an electric island. Within this framework, Liquid Air Energy Storage (LAES) is a promising technology for balancing the power grid. This work proposes a transient thermodynamic modelling of a 100 MW LAES plant. The cycle incorporates a packed-bed cold-storage system to enhance the charge/discharge efficiency. The appearance of a thermocline in the cold-storage unit is relevant regarding the round-trip efficiency. An economic study based on the simulation results is performed considering different scenarios of renewables grid penetration (photovoltaic and wind power). Depending on the installed LAES capacity, the levelized cost of delivered energy is evaluated. The results suggest that it is more interesting to store photovoltaic energy in the daytime peak hours and release energy during the night-time valleys to maximize the use of storage plants. This allows the levelized cost of energy and storage to be reduced to values as low as 150 and 50 (sic)/MWh respectively. These prices are competitive with compressed air energy storage and even with pumped-hydro storage. (C) 2019 Elsevier Ltd. All rights reserved.
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页数:12
相关论文
共 47 条
  • [1] Performance evaluation of various cryogenic energy storage systems
    Abdo, Rodrigo F.
    Pedro, Hugo T. C.
    Koury, Ricardo N. N.
    Machado, Luiz
    Coimbra, Carlos F. M.
    Porto, Matheus P.
    [J]. ENERGY, 2015, 90 : 1024 - 1032
  • [2] Performance assessment of heat transfer and friction characteristics of a packed bed heat storage system embedded with internal grooved cylinders
    Agrawal, Piyush
    Gautam, Abhishek
    Kunwar, Anshul
    Kumar, Manoj
    Chamoli, Sunil
    [J]. SOLAR ENERGY, 2018, 161 : 148 - 158
  • [3] [Anonymous], 2016, World Energy Outlook
  • [4] Anton A, 2019, EL INDEP
  • [5] Liquid air energy storage: Potential and challenges of hybrid power plants
    Antonelli, Marco
    Barsali, Stefano
    Desideri, Umberto
    Giglioli, Romano
    Paganucci, Fabrizio
    Pasini, Gianluca
    [J]. APPLIED ENERGY, 2017, 194 : 522 - 529
  • [6] State of the art of thermal storage for demand-side management
    Arteconi, A.
    Hewitt, N. J.
    Polonara, F.
    [J]. APPLIED ENERGY, 2012, 93 : 371 - 389
  • [7] Pure and Pseudo-pure Fluid Thermophysical Property Evaluation and the Open-Source Thermophysical Property Library CoolProp
    Bell, Ian H.
    Wronski, Jorrit
    Quoilin, Sylvain
    Lemort, Vincent
    [J]. INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2014, 53 (06) : 2498 - 2508
  • [8] Thermal analysis and exergy evaluation of packed bed thermal storage systems
    Bindra, Hitesh
    Bueno, Pablo
    Morris, Jeffrey F.
    Shinnar, Reuel
    [J]. APPLIED THERMAL ENGINEERING, 2013, 52 (02) : 255 - 263
  • [9] Brett Gareth, 2014, EPJ Web of Conferences, V79, DOI 10.1051/epjconf/20147903002
  • [10] 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