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Hydration mechanisms of calcium sulfoaluminate (CSA) cements: the role of barium carbonate in sulfate-carbonate balance

Jinyan Shi, Xuezhen Zhu, Baoju Liu, Paula M. Carmona-Quiroga, Ana Fernández-Jiménez, Luís Tambara iD

DOI10.1617/s11527-026-03251-w
PublisherSpringer Science and Business Media LLC
Journal / SourceMaterials and Structures
Published2026-09
Metadata Deposited2026-08-29 (updated: 2026-09-09)
Subject—
Languageen
ISSN1359-5997, 1871-6873
Typejournal-article
Volume / Issue / Pages59 / 7 / —
Citations0
References deposited45
Access / license metadataOpen license identified License 1 ↗A reuse license does not by itself establish whether the full text is freely readable.

Abstract

Abstract This study investigates the partial and total replacement of CaSO 4 by BaCO 3 in calcium sulfoaluminate (CSA) cement systems through a systematic compositional series to examine the coupled effects of decreasing initial sulfate content, carbonate incorporation, and BaSO 4 formation on hydration. Six pastes with different BaCO 3 /CaSO 4 ratios were evaluated by isothermal calorimetry, X-ray diffraction, FTIR, thermogravimetry, SEM–EDS, and nitrogen adsorption. The progressive replacement of CaSO 4 by BaCO 3 altered hydration kinetics and phase assemblage as a function of replacement level. At 25% substitution, hydration was accelerated without reducing 28-day compressive strength compared with the CaSO 4 -containing reference. At higher replacement levels, barite and carbonate-AFm phases formed, ettringite stability decreased, and residual BaCO 3 increased. At 75% substitution, enhanced strätlingite formation was associated with improved compressive strength, whereas complete replacement led to slower hydration, higher amorphous content, and monocarbonate-containing phase assemblages. The results provide mechanistic insight into how sulfate availability, carbonate incorporation, sulfate immobilisation through BaSO 4 formation, and phase stability jointly control hydration pathways in CSA systems.