4.7 Article

Large-scale high-temperature solar energy storage using natural minerals

Journal

SOLAR ENERGY MATERIALS AND SOLAR CELLS
Volume 168, Issue -, Pages 14-21

Publisher

ELSEVIER
DOI: 10.1016/j.solmat.2017.04.013

Keywords

Concentrated Solar Power; Natural carbonates; Multicyde conversion; CaL-CSP storage; CaL-CO2 capture; Particle size

Funding

  1. FEDER funds [CTQ2014-52763-C2-1-R, CTQ2014-52763-C2-2-R]
  2. Andalusian Regional Government (Junta de Andalucia-FEDER) [TEP-7858]
  3. Marie Curie-Junta de Andalucia Posdoc Talentia grant
  4. Spanish Government Agency Ministerio de Economia y Competitividad

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The present work is focused on thermochemical energy storage (TCES) in Concentrated Solar Power (CSP) plants by means of the Calcium-Looping (CaL) process using cheap, abundant and non-toxic natural carbonate minerals. CaL conditions for CSP storage involve calcination of CaCO3 in the solar receiver at relatively low temperature whereas carbonation of CaO is carried out at high temperature and high CO2 concentration to use the heat of reaction for power production by means of a CO2 closed power cycle. Under these conditions, large CaO particles derived from limestone to be used in industrial processes are rapidly deactivated due to pore plugging, which limits the extent of the reaction. This is favored by the relatively small pores of the CaO skeleton generated by low temperature calcination, the large thickness of the CaCO3 layer built upon the CaO surface and the very fast carbonation kinetics. On the other hand, at CaL conditions for CSP storage does not limit carbonation of CaO derived from dolomite (dolime). Dolime is shown to exhibit a high multicycle conversion regardless of particle size, which is explained by the presence of inert MgO grains that allow the reacting gas to percolate inside the porous particles.

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