Bulletin of the Chinese Ceramic Society, Volume. 44, Issue 3, 852(2025)
Pore Structure Evolution of Sulfoaluminate Cement Mortar Based on Low Field Nuclear Magnetic Resonance
[3] [3] CHEN H, GUO Z H, HOU P K, et al. The influence of surface treatment on the transport properties of hardened calcium sulfoaluminate cement-based materials[J]. Cement and Concrete Composites, 2020, 114: 103784.
[7] [7] JI Y L, PEL L, SUN Z P. The microstructure development during bleeding of cement paste: an NMR study[J]. Cement and Concrete Research, 2019, 125: 105866.
[8] [8] MCDONALD P J, ISTOK O, JANOTA M, et al. Sorption, anomalous water transport and dynamic porosity in cement paste: a spatially localised 1H NMR relaxation study and a proposed mechanism[J]. Cement and Concrete Research, 2020, 133: 106045.
[9] [9] QU Z Y, YAN Y, PEL L, et al. Quantifying early age hydration and micro-structure evolution of fast setting binder using 1H NMR[J]. Cement and Concrete Research, 2023, 174: 107343.
[10] [10] SHE A M, LI G, TAN L Z, et al. Comprehensive analysis of early-stage hydration and microstructure evolution in sufflaminate cement: insights from low-field NMR and isothermal calorimetry[J]. Journal of Building Engineering, 2023, 80: 108076.
[12] [12] LOTHENBACH B, SCRIVENER K, SNELLINGS R. A practical guide to microstructural analysis of cementitious materials[M]. Boca Raton: CRC Press, 2016.
[13] [13] XUE S B, MENG F Q, ZHANG P, et al. Influence of water re-curing on microstructure of heat-damaged cement mortar characterized by low-field NMR and MIP[J]. Construction and Building Materials, 2020, 262: 120532.
[15] [15] BLIGH M W, DEURYDICE M N, LLOYD R R, et al. Investigation of early hydration dynamics and microstructural development in ordinary Portland cement using 1H NMR relaxometry and isothermal calorimetry[J]. Cement and Concrete Research, 2016, 83: 131-139.
[16] [16] CAI J C, PERFECT E, CHENG C L, et al. Generalized modeling of spontaneous imbibition based on Hagen-Poiseuille flow in tortuous capillaries with variably shaped apertures[J]. Langmuir, 2014, 30(18): 5142-5151.
[17] [17] COMITI J, RENAUD M. A new model for determining mean structure parameters of fixed beds from pressure drop measurements: application to beds packed with parallelepipedal particles[J]. Chemical Engineering Science, 1989, 44(7): 1539-1545.
[20] [20] NAGEL S M, STRANGFELD C, KRUSCHWITZ S. Application of 1H proton NMR relaxometry to building materials-a review[J]. Journal of Magnetic Resonance Open, 2021, 6: 100012.
[21] [21] MA H Y. Mercury intrusion porosimetry in concrete technology: tips in measurement, pore structure parameter acquisition and application[J]. Journal of Porous Materials, 2014, 21(2): 207-215.
[23] [23] ZHOU C S, REN F Z, WANG Z D, et al. Why permeability to water is anomalously lower than that to many other fluids for cement-based material?[J]. Cement and Concrete Research, 2017, 100: 373-384.
[24] [24] REN F Z, ZHOU C S, ZENG Q, et al. Quantifying the anomalous water absorption behavior of cement mortar in view of its physical sensitivity to water[J]. Cement and Concrete Research, 2021, 143: 106395.
Get Citation
Copy Citation Text
WANG Dan, XUE Shanbin, BAI Rufei, GUO Zheming. Pore Structure Evolution of Sulfoaluminate Cement Mortar Based on Low Field Nuclear Magnetic Resonance[J]. Bulletin of the Chinese Ceramic Society, 2025, 44(3): 852
Received: Sep. 12, 2024
Accepted: Apr. 24, 2025
Published Online: Apr. 24, 2025
The Author Email: XUE Shanbin (xueshanbin@qut.edu.cn)