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March 10, 2026Cement and Concrete Composites10 citationsOpen Access

Effects of low pressure and low humidity on hydration and freeze-thaw resistance of air-entrained concrete with fly ash and GGBS

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XLXueqi LiTBTianwen BaiTLTiejun Liu

Key Points

  • This research aims to understand how low pressure and low humidity affect the properties of air-entrained concrete containing fly ash and GGBS.
  • Isothermal calorimetry to assess hydration
  • X-ray diffraction for material characterization
  • Thermogravimetric analysis for moisture content evaluation
  • Proton nuclear magnetic resonance for microstructural insights
  • Freeze-thaw testing to determine durability under environmental stress
  • GGBS-blended concrete shows 85.9% modulus retention after 200 freeze-thaw cycles, superior to FA's 64.9%
  • Low humidity causes 80-95% of strength loss in concrete
  • GGBS maintains air void spacing below 200 μm, critical for durability
  • FA supports strength but leads to air void deterioration at spacings above 230 μm
  • Recommended mix includes 20-30% GGBS and below 5% FA for optimal performance

Abstract

The hydration and freeze-thaw resistance of air-entrained cement-based materials incorporating supplementary cementitious materials (SCMs) under combined low pressure and low humidity remain poorly understood. This study investigates the effects of fly ash (FA) and ground granulated blast furnace slag (GGBS) in the hydration, air void stability, and freeze-thaw durability of air-entrained concrete through isothermal calorimetry, X-ray diffraction, thermogravimetric analysis, proton nuclear magnetic resonance, air void analysis, and freeze-thaw testing. GGBS specimens, despite high moisture sensitivity in strength development, maintain superior air void stability with spacing factors below 200 μm. In contrast, FA specimens demonstrate strength stability through carbon-induced densification but suffer air void deterioration with spacing exceeding 235 μm. After 200 freeze-thaw cycles at 60 kPa and 60% relative humidity, GGBS-blended concrete achieves 85.9% modulus retention and 89% strength retention, significantly outperforming FA-blended concrete with 64.9% and 64% retention, respectively. Low humidity dominates environmental deterioration, contributing 80-95% of strength loss, while low pressure primarily affects air bubble stability. Recommended mix proportions for plateau environments are 65-85% cement with 20-30% GGBS replacement and FA content below 5%, achieving both adequate compressive strength and superior freeze-thaw resistance. • Low humidity contributes 80-95% of strength loss in concrete • GGBS maintains air void spacing 230 μm spacing) • GGBS concrete achieves 85.9% RDME vs 64.9% for FA concrete after 200 cycles • Concrete for plateau environments requires 20-30% GGBS replacement with FA below 5%

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69af94e870916d39fea4c012https://doi.org/10.1016/j.cemconcomp.2026.106566
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