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March 14, 2026Case Studies in Construction Materials0 citationsOpen Access

Effects of Ultrafine Glass Powder on the Reliability Analysis and Life Prediction of Cement Mortar under Multi-concentration Sulfate Attack

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YSYuzhou SunHenan University of EngineeringLZLI ZhilongDHDandan HouZhongyuan University of Technology

Key Points

  • This study investigates how ultrafine glass powder affects the sulfate resistance and reliability of cement mortar.
  • Replaced cement with varying amounts of ultrafine glass powder.
  • Conducted mass change analysis, scanning electron microscopy, and X-ray diffraction.
  • Developed a two-parameter Weibull distribution model for reliability prediction.
  • Optimal ultrafine glass powder content of 10% increases flexural strength by 11.34%.
  • Compressive strength improves by 8.62% and 6.85% after 120 days in sodium sulfate solutions.
  • Mass loss in UGP-modified mortar is significantly lower than in the undoped group.

Abstract

In this paper, the influence mechanism of ultrafine glass powder (UGP) on the sulfate resistance of cement mortar is studied by replacing cement with different of equal quality amounts. The reliability analysis of UGP-modified cement mortar in sulfate environment is systematically discussed by mass change analysis, scanning electron microscope (SEM), X-ray diffraction (XRD) and nanoindentation, etc. The results show that the proper amount of UGP can significantly improve the sulfate resistance of cement mortar, and the effect is the best when the content of UGP is 10%. Compared with the undoped UGP group, the flexural strength and compressive strength increased by 11.34%, 8.62% and 6.63%, 6.85% respectively after 120 days of erosion in 5% and 10% sodium sulfate solutions, and the mass loss was the smallest. A two-parameter Weibull distribution model via relative dynamic elastic modulus is developed to predict the reliability life of UGP-modified cement mortar. The results show that 10% UGP content can significantly prolong the service life of cement mortar in sulfate environment. UGP effectively consumes Ca(OH) 2 through pozzolanic reaction, which promotes the formation of C-S-H gel and reduces the formation of expansion products such as gypsum (CaSO 4 ·2H 2 O) and ettringite (AFt), as well as optimizes pore structure and enhances material compactness and microscopic mechanical properties.

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Cite This Study

Sun et al. (2026) studied this question.

synapsesocial.com/papers/69b4fc59b39f7826a300d2bahttps://doi.org/10.1016/j.cscm.2026.e05973
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