Recent Advances in Thermochemical Energy Storage via Solid-Gas Reversible Reactions at High Temperature

被引:61
|
作者
Andre, Laurie [1 ]
Abanades, Stephane [2 ]
机构
[1] Univ Bourgogne Franche Comte, Univ Bourgogne, CNRS, Inst Chim Mol,UMR 6302, 9 Ave Alain Savary, F-21000 Dijon, France
[2] PROMES CNRS, Proc Mat & Solar Energy Lab, 7 Rue Four Solaire, F-66120 Font Romeu, France
关键词
thermochemical energy storage; solid-gas reaction; redox systems; carbonate; hydroxide; perovskite; concentrated solar power; FLUIDIZED-BED REACTOR; DOPED CALCIUM MANGANITES; MANGANESE-IRON OXIDE; HEAT-STORAGE; METAL-OXIDES; LINO3-DOPED MG(OH)(2); PEROVSKITE OXIDES; CYCLING STABILITY; REDOX MATERIALS; SYSTEM;
D O I
10.3390/en13225859
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 exploitation of solar energy, an unlimited and renewable energy resource, is of prime interest to support the replacement of fossil fuels by renewable energy alternatives. Solar energy can be used via concentrated solar power (CSP) combined with thermochemical energy storage (TCES) for the conversion and storage of concentrated solar energy via reversible solid-gas reactions, thus enabling round the clock operation and continuous production. Research is on-going on efficient and economically attractive TCES systems at high temperatures with long-term durability and performance stability. Indeed, the cycling stability with reduced or no loss in capacity over many cycles of heat charge and discharge of the material is pursued. The main thermochemical systems currently investigated are encompassing metal oxide redox pairs (MOx/MOx-1), non-stoichiometric perovskites (ABO(3)/ABO(3-delta)), alkaline earth metal carbonates and hydroxides (MCO3/MO, M(OH)(2)/MO with M = Ca, Sr, Ba). The metal oxides/perovskites can operate in open loop with air as the heat transfer fluid, while carbonates and hydroxides generally require closed loop operation with storage of the fluid (H2O or CO2). Alternative sources of natural components are also attracting interest, such as abundant and low-cost ore minerals or recycling waste. For example, limestone and dolomite are being studied to provide for one of the most promising systems, CaCO3/CaO. Systems based on hydroxides are also progressing, although most of the recent works focused on Ca(OH)(2)/CaO. Mixed metal oxides and perovskites are also largely developed and attractive materials, thanks to the possible tuning of both their operating temperature and energy storage capacity. The shape of the material and its stabilization are critical to adapt the material for their integration in reactors, such as packed bed and fluidized bed reactors, and assure a smooth transition for commercial use and development. The recent advances in TCES systems since 2016 are reviewed, and their integration in solar processes for continuous operation is particularly emphasized.
引用
收藏
页数:23
相关论文
共 50 条
  • [41] A Review about the Recent Advances in Selected NonThermal Plasma Assisted Solid-Gas Phase Chemical Processes
    Palma, Vincenzo
    Cortese, Marta
    Renda, Simona
    Ruocco, Concetta
    Martino, Marco
    Meloni, Eugenio
    NANOMATERIALS, 2020, 10 (08) : 1 - 56
  • [42] The key role of the A-site composition of oxy-hydroxyapatites in high-temperature solid-gas exchange reactions
    Guillou, Sophie
    Douard, Nathalie
    Tadier, Solene
    Gremillard, Laurent
    Bernache-Assollant, Didier
    Marchat, David
    JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2022, 147 (23) : 13135 - 13150
  • [43] REFRACTORY OXIDES: HIGH-TEMPERATURE SOLID-GAS AND SOLID-LIQUID BEHAVIOR.
    Beruto, Dario
    Barco, Luigi
    Passerone, Alberto
    Oxides and Oxide Films, 1981, 6 : 1 - 84
  • [44] Editorial: Recent Advances in Solar-Driven Thermochemical Fuel Production and Thermal Energy Storage
    Carrillo, Alfonso J.
    Bayon, Alicia
    Coronado, Juan M.
    Mastronardo, Emanuela
    FRONTIERS IN ENERGY RESEARCH, 2022, 10
  • [45] Recent Progress on Redox Materials for High-Temperature Thermochemical Heat Storage
    Carrillo, Alfonso J.
    Serra, Jose Manuel
    ADVANCED ENERGY AND SUSTAINABILITY RESEARCH, 2025,
  • [46] Application of lithium orthosilicate for high-temperature thermochemical energy storage
    Takasu, Hiroki
    Ryu, Junichi
    Kato, Yukitaka
    APPLIED ENERGY, 2017, 193 : 74 - 83
  • [47] State of the art on the high-temperature thermochemical energy storage systems
    Chen, Xiaoyi
    Zhang, Zhen
    Qi, Chonggang
    Ling, Xiang
    Peng, Hao
    ENERGY CONVERSION AND MANAGEMENT, 2018, 177 : 792 - 815
  • [48] Observations of solid-gas reactions by means of high-resolution transmission electron microscopy
    Goringe, M
    Rawcliffe, A
    Burden, A
    Hutchison, J
    Doole, R
    FARADAY DISCUSSIONS, 1996, 105 : 85 - 102
  • [49] Solar combined cycle with high-temperature thermochemical energy storage
    Ortiz, C.
    Tejada, C.
    Chacartegui, R.
    Bravo, R.
    Carro, A.
    Valverde, J. M.
    Valverde, J.
    ENERGY CONVERSION AND MANAGEMENT, 2021, 241
  • [50] Magnesium-manganese oxides for high temperature thermochemical energy storage
    Randhir, Kelvin
    King, Keith
    Rhodes, Nathan
    Li, Like
    Hahn, David
    Mei, Renwei
    AuYeung, Nicholas
    Klausner, James
    JOURNAL OF ENERGY STORAGE, 2019, 21 : 599 - 610