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Experimental Study of Workability and Mechanical Performance of Cellulose Nanofiber-Modified Underwater Non-Dispersible Concrete

delete2026-08-13
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OA
AI
Y
Yuanhai Zhang
C
Chengcao Yu
D
Dongjian Zheng *
J
Jingran He
R
Ruofan Gao *
Z
Zhongqing Xie
DOI:10.3390/buildings16163216delete
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Abstract

Abstract

En 中文
This study investigates cellulose nanofiber (CNF) suspension as a nano-reinforcement for underwater non-dispersible concrete, aiming to improve the balance among workability, washout resistance, and compressive-strength performance. An L9 orthogonal array was employed to evaluate the dosage-dependent responses of CNF suspension, hydroxypropyl methylcellulose (HPMC), and a polycarboxylate ether-based water-reducing admixture (PCE). Within the investigated range, increasing the as-received CNF-suspension dosage from 0.15% to 0.60% was associated with an increase in the factor-level mean 28-day underwater-to-air compressive-strength ratio from 0.75 to 0.79 and a decrease in suspension pH from 11.92 to 11.73, suggesting higher underwater strength retention and lower alkaline dispersion. CNF suspension showed favorable dosage-dependent responses in the washout-related and compressive-strength indicators, while HPMC and PCE contributed to the overall regulation of measured workability and compressive-strength performance. Among the nine mixtures, Group 5 was identified as a balanced engineering-oriented candidate, combining a slump of 245 mm, a slump flow of 465 mm, and 7- and 28-day underwater-to-air strength ratios of 0.94 and 0.82, respectively. SEM observations revealed pores, interfacial gaps, and locally distributed acicular, plate-like, and filament-like features, providing qualitative microstructural context for the measured responses. Overall, the results support the potential of CNF suspension as a promising nano-reinforcement for underwater non-dispersible concrete with a favorable balance of workability, washout-related performance, and compressive-strength retention.
Keywords:
underwater non-dispersible concrete
cellulose nanofibers
workability
mechanical performance
microstructure

Journal

Buildings cover
Buildings
IF:
3.1
Papers:
1.7W
Citations:
2.5W

Organization

H
hohai university
Scholars:
4.7K
Papers: 2.0K
Citations: 0
J
jinan university
Scholars:
4.2W
Papers: 2.6W
Citations: 38
G
guangdong university of technology
Scholars:
2.8W
Papers: 1.9W
Citations: 36
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