Thermodynamic and kinetic investigation of a technical grade manganese-iron binary oxide for thermochemical energy storage

被引:68
作者
Wokon, Michael [1 ]
Block, Tina [2 ]
Nicolai, Sven [3 ]
Linder, Marc [4 ]
Schmuecker, Martin [2 ]
机构
[1] German Aerosp Ctr DLR eV, Inst Engn Thermodynam, D-51147 Cologne, Germany
[2] German Aerosp Ctr DLR eV, Inst Mat Res, D-51147 Cologne, Germany
[3] VITO Flemish Inst Technol Res NV, Boeretang 200, B-2400 Mol, Belgium
[4] German Aerosp Ctr DLR eV, Inst Engn Thermodynam, Pfaffenwaldring 38-40, D-70569 Stuttgart, Germany
关键词
Thermochemical energy storage; Redox reaction; Manganese-iron oxide; Thermodynamic equilibrium; Thermal hysteresis; Gas-solid reaction kinetics; CONCENTRATING SOLAR POWER; MN2O3/MN3O4 REDOX COUPLE; MN-FE OXIDES; OXYGEN-CARRIERS; SYSTEMS; CYCLE; EXPLOITATION; PERFORMANCE;
D O I
10.1016/j.solener.2017.05.045
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
Thermochemical energy storage (TCS) based on gas-solid reactions constitutes a promising concept to exploit reaction enthalpies for thermal energy storage. This concept facilitates the development of efficient storage solutions with higher energy densities compared to widely investigated sensible and latent thermal energy storage systems. Multivalent metal oxides are capable of undergoing a reversible redox reaction at high temperatures, which is why those storage materials are considered particularly suitable for the operating temperature range of concentrated solar power plants with central receiver systems to increase the total plant efficiency and ensure dispatchability of electricity. In the scope of this work a granular manganese-iron oxide with a Fe/Mn molar ratio of 1:3 has been selected as a potentially suitable storage material, which is non-toxic, abundant and economical. For this reason a preparation route from technical grade raw materials has been chosen. The reversible redox reaction is investigated with respect to the thermodynamic and kinetic characteristics by means of simultaneous thermal analysis in dynamic and isothermal series of measurements. Those revealed that the observed presence of a strong divergence of the reactive temperature range from the actual thermodynamic equilibrium can mainly be attributed to kinetic limitations. Expressions for the effective reaction rates are deduced from experimental data for the reduction and oxidation step, describing the dependence of the reaction rate on temperature and oxygen partial pressure, respectively. The expressions are valid for the temperature ranges in proximity to the equilibrium, which are relevant for the targeted operating conditions of the storage reactor in air. The storage material provides good cycling stability in terms of reversibility and widely maintained reactivity throughout 100 redox cycles in air. Future work comprises material modifications, which are expected to further enhance the mechanical stability of the particles. Overall, the manganese-iron oxide of the chosen composition exhibits a redox reactivity practical for regenerator-type storage systems combining a high temperature TCS zone and a lower temperature non-reactive zone merely used for sensible thermal energy storage. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:471 / 485
页数:15
相关论文
共 44 条
[1]   Exploitation of thermochemical cycles based on solid oxide redox systems for thermochemical storage of solar heat. Part 4: Screening of oxides for use in cascaded thermochemical storage concepts [J].
Agrafiotis, Christos ;
Roeb, Martin ;
Sattler, Christian .
SOLAR ENERGY, 2016, 139 :695-710
[2]   Exploitation of thermochemical cycles based on solid oxide redox systems for thermochemical storage of solar heat. Part 1: Testing of cobalt oxide-based powders [J].
Agrafiotis, Christos ;
Roeb, Martin ;
Schmuecker, Martin ;
Sattler, Christian .
SOLAR ENERGY, 2014, 102 :189-211
[3]   Kinetics of Mn2O3-Mn3O4 and Mn3O4-MnO Redox Reactions Performed under Concentrated Thermal Radiative Flux [J].
Alonso, Elisa ;
Hutter, Christian ;
Romero, Manuel ;
Steinfeld, Aldo ;
Gonzalez-Aguilar, Jose .
ENERGY & FUELS, 2013, 27 (08) :4884-4890
[4]   Screening of thermochemical systems based on solid-gas reversible reactions for high temperature solar thermal energy storage [J].
Andre, Laurie ;
Abanades, Stephane ;
Flamant, Gilles .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2016, 64 :703-715
[5]   Volumetric receivers in Solar Thermal Power Plants with Central Receiver System technology: A review [J].
Avila-Marin, Antonio L. .
SOLAR ENERGY, 2011, 85 (05) :891-910
[6]   Mn-Fe Oxides with Support of MgAl2O4, CeO2, ZrO2 and Y2O3-ZrO2 for Chemical-Looping Combustion and Chemical-Looping with Oxygen Uncoupling [J].
Azimi, Golnar ;
Leion, Henrik ;
Mattisson, Tobias ;
Ryden, Magnus ;
Snijkers, Frans ;
Lyngfelt, Anders .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2014, 53 (25) :10358-10365
[7]   Investigation of Different Mn-Fe Oxides as Oxygen Carrier for Chemical-Looping with Oxygen Uncoupling (CLOU) [J].
Azimi, Golnar ;
Leion, Henrik ;
Ryden, Magnus ;
Mattisson, Tobias ;
Lyngfelt, Anders .
ENERGY & FUELS, 2013, 27 (01) :367-377
[8]  
Barin I., 1995, THERMOCHEMICAL DATA, V1, DOI DOI 10.1002/9783527619825
[9]   Metal oxides for thermochemical energy storage: A comparison of several metal oxide systems [J].
Block, Tina ;
Schmuecker, Martin .
SOLAR ENERGY, 2016, 126 :195-207
[10]   Kinetic modelling of the first step of Mn2O3/MnO thermochemical cycle for solar hydrogen production [J].
Botas, J. A. ;
Marugan, J. ;
Molina, R. ;
Herradon, C. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2012, 37 (24) :18661-18671