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Effect of the curing process on the thermomechanical properties of calcium aluminate cement paste under thermal cycling at high temperatures for thermal energy storage applications

Identificadores
URI: http://hdl.handle.net/20.500.12251/3000
Ver/Abrir: https://www.scopus.com/inward/record.uri?eid=2-s2.0-85141465479&doi=10.1016%2fj.est.2022.106039&partnerID=40&md5=123ad5258551156d048ae8c65ee7477c
ISSN: 2352-152X
DOI: 10.1016/j.est.2022.106039
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Autor
Boquera Marcelo, Laura; Castro Ricot, José Ramón; Pisello, Anna Laura; Fabiani, Claudia; D'Alessandro, Antonella; [et al.]
Fecha
2022
Materia/s

Eficiencia energética

Central termosolar

Almacenamiento de energía

Hormigón

Conductividad térmica

Ensayos (propiedades o materiales)

Materia/s Unesco

3322.02 Generación de Energía

3322.05 Fuentes no Convencionales de Energía

3305.05 Tecnología del Hormigón

Resumen

Future perspectives to improve the energy efficiency of concentrating solar power (CSP) plants are focused on increasing temperatures above 600 °C. Among the different components of a CSP plant, the thermal energy storage (TES) medium must withstand high operating temperatures. Concrete was identified as an exciting candidate for its mechanical and thermal properties, needing further experimental research about this specific application. A fundamental concrete element is the cement binder, bringing cohesion to the composite components. As a requisite, the cement needs to be heat-resistant, and calcium aluminate cement (CAC) suits this demand. This cement is characterised by curing temperature-driven crystallisation changes, triggering an alteration of material properties. Considering that at 60 °C, the metastable hexagonal crystallisation is converted into a stable cubic crystallisation, seven curing cases were proposed in this study. After the curing process, thermo-mechanical properties of calcium aluminate cement paste were tested before and after thermal cycles from 290 °C to 650 °C. The results showed that, despite thermal cycling, the immediate hydration at 60 °C results in a higher thermal conductivity and compressive strength than standard curing at 20 °C. © 2022 The Authors

Future perspectives to improve the energy efficiency of concentrating solar power (CSP) plants are focused on increasing temperatures above 600 °C. Among the different components of a CSP plant, the thermal energy storage (TES) medium must withstand high operating temperatures. Concrete was identified as an exciting candidate for its mechanical and thermal properties, needing further experimental research about this specific application. A fundamental concrete element is the cement binder, bringing cohesion to the composite components. As a requisite, the cement needs to be heat-resistant, and calcium aluminate cement (CAC) suits this demand. This cement is characterised by curing temperature-driven crystallisation changes, triggering an alteration of material properties. Considering that at 60 °C, the metastable hexagonal crystallisation is converted into a stable cubic crystallisation, seven curing cases were proposed in this study. After the curing process, thermo-mechanical properties of calcium aluminate cement paste were tested before and after thermal cycles from 290 °C to 650 °C. The results showed that, despite thermal cycling, the immediate hydration at 60 °C results in a higher thermal conductivity and compressive strength than standard curing at 20 °C. © 2022 The Authors

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