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May 28, 2026Buildings0 citationsOpen Access

Enhancing Construction Efficiency and Structural Integrity of Ambient-Cured UHPC Incorporating Sulfoaluminate Cement Through Liquid Superplasticizer Optimization

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ASAnwar SaleemEXErgang XiongMSM. Samuel

Key Points

  • The study evaluates how different forms of superplasticizers impact the performance of ultra-high-performance concrete with sulfoaluminate cement.
  • Conducted a paired experimental design comparing liquid superplasticizers and powder superplasticizers across 32 mixtures.
  • Examined variables including binder compositions, water-to-binder ratios, and superplasticizer dosages.
  • Performed microstructural analysis using Scanning Electron Microscopy, X-ray Diffraction, and Fourier Transform Infrared spectroscopy.
  • Liquid superplasticizers improved workability and compressive strength by 45% and 10.03%, respectively.
  • Microstructural analysis showed a 23% decrease in porosity and increased formation of amorphous C-S-H gel with liquid forms.
  • Identified kinetic mismatches in hydration rates leading to improved particle dispersion with liquid superplasticizers.

Abstract

The addition of sulfoaluminate cement (SAC) to ultra-high-performance concrete (UHPC) enables sustainable high-speed construction due to the high 7-day strength without thermal curing. The fast hydration of SAC, however, endangers the admixture efficacy, which may compromise the structural integrity of the infrastructure components. This study investigates the effect of the physical form of polycarboxylate ether (PCE) superplasticizers on the performance of UHPC with the incorporation of SAC in ambient conditions. A paired experimental design of 32 mixtures compared liquid superplasticizers (LSPs) and powder superplasticizers (PSPs) in various binder compositions (OPC/SAC of 1/4–4/1) and water-to-binder ratios (0.18–0.21) at a constant dosage of admixtures of 1% except where w/b 0.18 (1.5% superplasticizers and 1% retarders were used). Findings indicate that LSPs enhance workability and compressive strength by 45% and 10.03%, respectively. The underlying mechanism is explained by comprehensive microstructural characterization through the use of Scanning Electron Microscopy (SEM), X-ray Diffraction (XRD) and Fourier Transform Infrared (FTIR) spectroscopy. SEM study showed a 23% decrease in porosity, and XRD patterns showed the increased formation of amorphous C-S-H gel for LSPs. The higher levels of Al3+ incorporated into the gel structure (C-A-S-H) of the liquid forms was also verified by FTIR spectra. Mechanically, the research reveals one of the kinetic mismatches, where the rate of SAC hydration is greater than the rate of powder dissolution, which leads to a failure to fully disperse and shear-controlled failures. LSPs, in contrast, make it possible to disperse particles immediately, so the matrices become more dense and shift to axial failure. These results provide practical guidelines to infrastructure engineers to use liquid superplasticizer in SAC-based systems in order to achieve sustainability and reliability in terms of performance in precast and fast-track construction projects.

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Cite This Study

Saleem et al. (2026) studied this question.

synapsesocial.com/papers/6a17dd4e3fad632b0f9da09bhttps://doi.org/10.3390/buildings16112130
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