Brújula Home

Institutional repository of the Universidad Loyola

View Item 
  •   Brújula Home
  • PRODUCCIÓN CIENTÍFICA Y TRANSFERENCIA
  • Departamento de Salud
  • Artículos
  • View Item
  •   Brújula Home
  • PRODUCCIÓN CIENTÍFICA Y TRANSFERENCIA
  • Departamento de Salud
  • Artículos
  • View Item
    • español
    • English
JavaScript is disabled for your browser. Some features of this site may not work without it.

Browse

All of BrújulaCommunities and CollectionsAuthorsTitlesKeywordsAuthor profilesThis CollectionAuthorsTitlesKeywords

My Account

Login

Statistics

View Usage Statistics

Añadido Recientemente

Novedades
Repository
How to publish
Visibility
FAQs

Kinetics and cyclability of limestone (CaCO3) in presence of steam during calcination in the CaL scheme for thermochemical energy storage

Author:
Arcenegui-Troya, Juan; Sánchez-Jiménez, Pedro Enrique; Perejón, Antonio; Moreno, Virginia; Valverde, José Manuel; [et al.]
URI:
https://hdl.handle.net/20.500.12412/6388
ISSN:
1385-8947
DOI:
10.1016/j.cej.2021.129194
Date:
2021-08-01
Keyword(s):

Calcium looping

Concentrated solar power

Kinetics

Limestone

Steam

Thermochemical energy storage

Abstract:

In the present work, we explore the use of steam in the CaCO3 calcination step of the Calcium Looping process devised for thermochemical energy storage (CaL-TCES). Steam produces a double benefit: firstly, it fastens calcination, allowing a reduction of the temperature needed to attain full calcination in short residence times, as those required in practice, resulting in energy savings. This behaviour is justified on the basis of a kinetics study results obtained from a non-parametric kinetic analysis, which demonstrate that the presence of steam during calcination can reduce the apparent activation energy from 175 kJ/mol to 142 kJ/mol with a steam's partial pressure of 29%. In addition, the results obtained for multicycle CaL-TCES tests show that steam alleviates the deactivation of the sorbent, which is one of the main limiting factors of this technology. This behaviour is explained in terms of the effect of steam on the microstructure of the regenerated CaO. Importantly, the values of residual conversion attained by calcining in steam are higher than those without steam.

In the present work, we explore the use of steam in the CaCO3 calcination step of the Calcium Looping process devised for thermochemical energy storage (CaL-TCES). Steam produces a double benefit: firstly, it fastens calcination, allowing a reduction of the temperature needed to attain full calcination in short residence times, as those required in practice, resulting in energy savings. This behaviour is justified on the basis of a kinetics study results obtained from a non-parametric kinetic analysis, which demonstrate that the presence of steam during calcination can reduce the apparent activation energy from 175 kJ/mol to 142 kJ/mol with a steam's partial pressure of 29%. In addition, the results obtained for multicycle CaL-TCES tests show that steam alleviates the deactivation of the sorbent, which is one of the main limiting factors of this technology. This behaviour is explained in terms of the effect of steam on the microstructure of the regenerated CaO. Importantly, the values of residual conversion attained by calcining in steam are higher than those without steam.

Show full item record
Collections
  • Artículos
Files in this item
Thumbnail
10.Vapor de agua CaCO3.pdf (5.248Mb)
Share
Export to Mendeley
Statistics
Usage statistics
Metrics and citations  
Go to Brújula home

Universidad Loyola

Library

Contact

Facebook Loyola BibliotecaTwitter Loyola Biblioteca

The content of the Repository is protected with a Creative Commons license:

Attribution-NonCommercial-NoDerivatives 4.0 Internacional

Creative Commons Image