Solar Energy on Demand: A Review on High Temperature Thermochemical Heat Storage Systems and Materials

被引:432
作者
Carrillo, Alfonso J. [1 ]
Gonzalez-Aguilar, Jose [2 ]
Romero, Manuel [2 ]
Coronado, Juan M. [3 ]
机构
[1] Univ Politecn Valencia, CSIC, Inst Tecnol Quim, Ave Naranjos S-N, E-46022 Valencia, Spain
[2] IMDEA Energy Inst, Ave Ramon de la Sagra 3, Madrid 28935, Spain
[3] CSIC, Inst Catalisis & Petroleoquim, Marie Curie 2, Madrid 28049, Spain
关键词
AIR BRAYTON CYCLE; FLUIDIZED-BED REACTOR; OXIDE REDOX SYSTEMS; PHASE-CHANGE MATERIALS; MANGANESE-IRON OXIDE; HYDROGEN-PRODUCTION; STRUCTURED BODIES; PEROVSKITE OXIDES; CHEMICAL-STORAGE; POWER-PLANTS;
D O I
10.1021/acs.chemrev.8b00315
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Among renewable energies, wind and solar are inherently intermittent and therefore both require efficient energy storage systems to facilitate a round-the-clock electricity production at a global scale. In this context, concentrated solar power (CSP) stands out among other sustainable technologies because it offers the interesting possibility of storing energy collected from the sun as heat by sensible, latent, or thermochemical means. Accordingly, continuous electricity generation in the power block is possible even during off-sun periods, providing CSP plants with a remarkable dispatchability. Sensible heat storage has been already incorporated to commercial CSP plants. However, because of its potentially higher energy storage density, thermochemical heat storage (TCS) systems emerge as an attractive alternative for the design of next-generation power plants, which are expected to operate at higher temperatures. Through these systems, thermal energy is used to drive endothermic chemical reactions, which can subsequently release the stored energy when needed through a reversible exothermic step. This review analyzes the status of this prominent energy storage technology, its major challenges, and future perspectives, covering in detail the numerous strategies proposed for the improvement of materials and thermochemical reactors. Thermodynamic calculations allow selecting high energy density systems, but experimental findings indicate that sufficiently rapid kinetics and long-term stability trough continuous cycles of chemical transformation are also necessary for practical implementation. In addition, selecting easy-to-handle materials with reduced cost and limited toxicity is crucial for large-scale deployment of this technology. In this work, the possible utilization of materials as diverse as metal hydrides, hydroxides, or carbonates for thermochemical storage is discussed. Furthermore, special attention is paid to the development of redox metal oxides, such as Co3O4/CoO, Mn2O3/Mn3O4, and perovskites of different compositions, as an auspicious new class of TCS materials due to the advantage of working with atmospheric air as reactant, avoiding the need of gas storage tanks. Current knowledge about the structural, morphological, and chemical modifications of these solids, either caused during redox transformations or induced wittingly as a way to improve their properties, is revised in detail. In addition, the design of new reactor concepts proposed for the most efficient use of TCS in concentrated solar facilities is also critically considered. Finally, strategies for the harmonic integration of these units in functioning solar power plants as well as the economic aspects are also briefly assessed.
引用
收藏
页码:4777 / 4816
页数:40
相关论文
共 253 条
  • [61] Enhancement of hydrogen sorption in magnesium hydride using expanded natural graphite
    Chaise, A.
    de Rango, P.
    Marty, Ph.
    Fruchart, D.
    Miraglia, S.
    Olives, R.
    Garrier, S.
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2009, 34 (20) : 8589 - 8596
  • [62] Design and optimization of an ammonia synthesis system for ammonia-based solar thermochemical energy storage
    Chen, Chen
    Lovegrove, Keith M.
    Sepulveda, Abdon
    Lavine, Adrienne S.
    [J]. SOLAR ENERGY, 2018, 159 : 992 - 1002
  • [63] Modeling of ammonia synthesis to produce supercritical steam for solar thermochemical energy storage
    Chen, Chen
    Aryafar, Hamarz
    Lovegrove, Keith M.
    Lavine, Adrienne S.
    [J]. SOLAR ENERGY, 2017, 155 : 363 - 371
  • [64] Ammonia Synthesis for Producing Supercritical Steam in the Context of Solar Thermochemical Energy Storage
    Chen, Chen
    Aryafar, Hamarz
    Warrier, Gopinath
    Lovegrove, Keith M.
    Lavine, Adrienne S.
    [J]. SOLARPACES 2015: INTERNATIONAL CONFERENCE ON CONCENTRATING SOLAR POWER AND CHEMICAL ENERGY SYSTEMS, 2016, 1734
  • [65] Preparation of Tunable (BaSrMg)O for Oxygen Chemisorption: Formation Mechanism and Characterization
    Chen, Xuncai
    Jung, Taesung
    Park, Jongho
    Kim, Woo-Sik
    [J]. INORGANIC CHEMISTRY, 2015, 54 (11) : 5419 - 5425
  • [66] Preparation of single-phase three-component alkaline earth oxide of (BaSrMg)O: a high capacity and thermally stable chemisorbent for oxygen separation
    Chen, Xuncai
    Jung, Taesung
    Park, Jongho
    Kim, Woo-Sik
    [J]. JOURNAL OF MATERIALS CHEMISTRY A, 2015, 3 (01) : 258 - 265
  • [67] ANALYSIS OF GAS DISSOCIATION SOLAR THERMAL POWER-SYSTEM
    CHUBB, TA
    [J]. SOLAR ENERGY, 1975, 17 (02) : 129 - 136
  • [68] DESIGN OF A SMALL THERMOCHEMICAL RECEIVER FOR SOLAR THERMAL POWER
    CHUBB, TA
    NEMECEK, JJ
    SIMMONS, DE
    [J]. SOLAR ENERGY, 1979, 23 (03) : 217 - 221
  • [69] Coronado J. M., 2016, 2016 SOLARPACES INT
  • [70] Thermochemical energy storage and conversion: A-state-of-the-art review of the experimental research under practical conditions
    Cot-Gores, Jaume
    Castell, Albert
    Cabeza, Luisa F.
    [J]. RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2012, 16 (07) : 5207 - 5224