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Effect of siderurgical aggregates on concrete exposed to saline environments

Identificadores
URI: http://hdl.handle.net/20.500.12251/2976
Ver/Abrir: https://www.scopus.com/inward/record.uri?eid=2-s2.0-85137584840&doi=10.1016%2fj.conbuildmat.2022.129061&partnerID=40&md5=8724b2b663af7a9a52d6b61bdc700bd6
ISSN: 0950-0618
DOI: 10.1016/j.conbuildmat.2022.129061
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Autor
Tamayo, P.; Rico, J.; López Gayarre, F.; Fiol Oliván, Francisco; Panzera, T. H.; [et al.]
Fecha
2022
Materia/s

Hormigón estructural (HE)

Durabilidad

Hormigón siderúrgico

Ensayos (propiedades o materiales)

Resistencia mecánica

Propiedades mecánicas

Patologías - Construcción

Materia/s Unesco

3305.05 Tecnología del Hormigón

3305.33 Resistencia de Estructuras

3312.08 Propiedades de Los Materiales

3312.09 Resistencia de Materiales

3312.12 Ensayo de Materiales

3313.04 Material de Construcción

Resumen

Using recovered waste to obtain high-performance structural concrete is possible and justified by the saving in natural resources and the avoidance of deposit in landfills. The technical justification for these new and ecological concretes must be based on proving their mechanical performance and durability. The former has been widely studied, while the latter has been very vaguely studied, with controversies being found in this regard. This research aims to shed light on the ability of concrete with siderurgical aggregates to resist processes that lead to early deterioration or alteration of its microstructure. To this end, concrete with siderurgical aggregates and limestone reference concrete were subjected to traditional durability tests, as well as novel tests consisting of exposure to saline environments. The results obtained show that the concretes with siderurgical aggregates exhibit a similar behavior in terms of gas and water permeability, accelerated carbonation and resistance to freeze-thaw cycles (except for total replacements) to the limestone reference concrete. Exposure to a salt spray chamber and to seawater show the same effect in terms of chloride profiles, while the steel reinforcements embedded in the concrete did not suffer corrosion for any of the exposure times. These results open the door to using these concretes in maritime work, both onshore and offshore. © 2022

Using recovered waste to obtain high-performance structural concrete is possible and justified by the saving in natural resources and the avoidance of deposit in landfills. The technical justification for these new and ecological concretes must be based on proving their mechanical performance and durability. The former has been widely studied, while the latter has been very vaguely studied, with controversies being found in this regard. This research aims to shed light on the ability of concrete with siderurgical aggregates to resist processes that lead to early deterioration or alteration of its microstructure. To this end, concrete with siderurgical aggregates and limestone reference concrete were subjected to traditional durability tests, as well as novel tests consisting of exposure to saline environments. The results obtained show that the concretes with siderurgical aggregates exhibit a similar behavior in terms of gas and water permeability, accelerated carbonation and resistance to freeze-thaw cycles (except for total replacements) to the limestone reference concrete. Exposure to a salt spray chamber and to seawater show the same effect in terms of chloride profiles, while the steel reinforcements embedded in the concrete did not suffer corrosion for any of the exposure times. These results open the door to using these concretes in maritime work, both onshore and offshore. © 2022

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