Dynamic simulation and optimal heat management policy of a coupled solar reforming-heat storage process

被引:6
作者
Pantoleontos, G. [1 ]
Koutsonikolas, D. [1 ]
Lorentzou, S. [1 ]
Karagiannakis, G. [1 ]
Lekkos, C. P. [1 ]
Konstandopoulos, A. G. [1 ,2 ]
机构
[1] Ctr Res & Technol Hellas APTL CPERI CERTH, Chem Proc & Energy Resources Inst, Aerosol & Particle Technol Lab, 6th Km Charilaou Thermi,POB 361, Thessaloniki 57001, Greece
[2] Aristotle Univ Thessaloniki AUTH, Dept Chem Engn, Thessaloniki 54124, Greece
关键词
Solar reforming; Solar thermochemical storage; Coupled processes; Dynamic optimization; THERMOCHEMICAL ENERGY-STORAGE; HYDROGEN-PRODUCTION; EXERGY ANALYSIS; SYSTEM; OPTIMIZATION; DESIGN; MODEL; CATALYSTS; SUPPORTS; BEHAVIOR;
D O I
10.1016/j.cherd.2017.05.024
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
This work is a first simplified approach on the exploitation of "direct" solar heat during on-sun operation, and stored solar-heat through thermochemical energy storage involving redox pair cycles during off-sun operation, for the production of solar hydrogen using concentrated solar energy. The coupling of the processes in a compact solar reforming-thermochemical heat storage system is conducted in terms of a lumped dynamic model; for the determination of the syngas composition in the reforming unit, thermodynamic equilibrium is assumed, while the required heat to facilitate the endothermic reforming reactions is provided by either solar heat (on-sun operation), or a combination of stored energy and an optimal linear profile of external heat provision (off-sun operation). The optimal heat management policy for the reduction or the oxidation step (during the solar heat storage and release process) ensures a steady H-2 molar fraction for most of the operating time. It is revealed that the coupled scheme suggested is an in-principle viable option for sustainable H-2 production, since reforming needs are entirely complemented by solar heat also supplying the required energy input for the storage unit, which in turn may provide almost 25% of the overall reforming energy needs under off-sun operation. (C) 2017 Published by Elsevier B.V. on behalf of Institution of Chemical Engineers.
引用
收藏
页码:600 / 616
页数:17
相关论文
共 52 条
  • [1] Exploitation of thermochemical cycles based on solid oxide redox systems for thermochemical storage of solar heat. Part 2: Redox oxide-coated porous ceramic structures as integrated thermochemical reactors/heat exchangers
    Agrafiotis, Christos
    Roeb, Martin
    Schmuecker, Martin
    Sattler, Christian
    [J]. SOLAR ENERGY, 2015, 114 : 440 - 458
  • [2] Exploitation of thermochemical cycles based on solid oxide redox systems for thermochemical storage of solar heat. Part 3: Cobalt oxide monolithic porous structures as integrated thermochemical reactors/heat exchangers
    Agrafiotis, Christos
    Tescari, Stefania
    Roeb, Martin
    Schmuecker, Martin
    Sattler, Christian
    [J]. SOLAR ENERGY, 2015, 114 : 459 - 475
  • [3] Solar thermal reforming of methane feedstocks for hydrogen and syngas production-A review
    Agrafiotis, Christos
    von Storch, Henrik
    Roeb, Martin
    Sattler, Christian
    [J]. RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2014, 29 : 656 - 682
  • [4] The multiple roles for catalysis in the production of H2
    Armor, JN
    [J]. APPLIED CATALYSIS A-GENERAL, 1999, 176 (02) : 159 - 176
  • [5] Desalination unit coupled with solar collectors and a storage tank: modelling and simulation
    Ben Bacha, H.
    Dammak, T.
    Ben Abdalah, A. A.
    Maalej, A. Y.
    Ben Dhia, H.
    [J]. DESALINATION, 2007, 206 (1-3) : 341 - 352
  • [6] Modelling of methane dry reforming over Ni/Al2O3 catalyst in a fixed-bed catalytic reactor
    Benguerba, Yacine
    Dehimi, Lila
    Virginie, Mirella
    Dumas, Christine
    Ernst, Barbara
    [J]. REACTION KINETICS MECHANISMS AND CATALYSIS, 2015, 114 (01) : 109 - 119
  • [7] Frictional and heat transfer characteristics of flow in square porous tubes of wall-flow monoliths
    Bissett, Edward J.
    Kostoglou, Margaritis
    Konstandopoulos, Athanasios G.
    [J]. CHEMICAL ENGINEERING SCIENCE, 2012, 84 : 255 - 265
  • [8] Metal oxides for thermochemical energy storage: A comparison of several metal oxide systems
    Block, Tina
    Schmuecker, Martin
    [J]. SOLAR ENERGY, 2016, 126 : 195 - 207
  • [9] Conventional and advanced exergoenvironmental analysis of a steam methane reforming reactor for hydrogen production
    Boyano, A.
    Morosuk, T.
    Blanco-Marigorta, A. M.
    Tsatsaronis, G.
    [J]. JOURNAL OF CLEANER PRODUCTION, 2012, 20 (01) : 152 - 160
  • [10] Revisiting the BaO2/BaO redox cycle for solar thermochemical energy storage
    Carrillo, A. J.
    Sastre, D.
    Serrano, D. P.
    Pizarro, P.
    Coronado, J. M.
    [J]. PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2016, 18 (11) : 8039 - 8048