Articolo in rivista, 2022, ENG, 10.14356/kona.2022007

Carbonation Kinetics of Fine CaO Particles in a Sound-Assisted Fluidized Bed for Thermochemical Energy Storage

Raganati, Federica; Ammendola, Paola

CNR

The calcium-looping process, relying on the reversible calcination/carbonation of CaCO3, is one of the most promising solution to perform thermochemical energy storage (TCES) for concentrating solar power (CSP) plants. Indeed, CaO precursors such as limestone can rely on the high energy density, low cost, large availability and nontoxicity. In this work, the study of the sound-assisted carbonation of fine CaO particles (< 50 mu m) for TCES-CSP has been furthered. In particular, a kinetic study has been performed to analyze the effect of the particular carbonation conditions to be used in TCES-CSP applications, i.e. involving carbonation under high CO2 partial pressure and at high temperature. All the experimental tests have been performed in a lab-scale sound assisted fluidized bed reactor applying high intensity acoustic field with proper frequency (150 dB-120 Hz). The carbonation kinetics has been analyzed by applying a simple kinetic model, able to properly describe the fast (under kinetic control) and slow (under diffusion control) stage of the reaction. In particular, the reaction rate, the intrinsic carbonation kinetic constant and the characteristic product layer thickness have been evaluated, also highlighting their dependence on the temperature between 800 and 845 degrees C; a value of 49 kJ mol(-1) has been obtained for the activation energy. Finally, a good agreement between the conversion-time profiles, evaluated from the applied kinetic models, and the experimental data has been obtained.

Kona 39 , pp. 240–250

Keywords

calcium looping, fine particles, Concentrating Solar Power (CSP), Thermochemical Energy Storage (TCES), sound-assisted fluidization, kinetics

CNR authors

Ammendola Paola, Raganati Federica

CNR institutes

STEMS – Istituto di Scienze e Tecnologie per l'Energia e la Mobilità Sostenibili

ID: 465767

Year: 2022

Type: Articolo in rivista

Creation: 2022-03-30 09:34:15.000

Last update: 2022-03-30 09:37:24.000

External links

OAI-PMH: Dublin Core

OAI-PMH: Mods

OAI-PMH: RDF

DOI: 10.14356/kona.2022007

External IDs

CNR OAI-PMH: oai:it.cnr:prodotti:465767

DOI: 10.14356/kona.2022007

ISI Web of Science (WOS): 000767330800001