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March 14, 2026Applied Sciences1 citationsOpen Access

High Temperature Resistance of Fly Ash-Enhanced Alkali Activated Portland Cement Mortar: Microstructural Evolution and Strength Retention

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PKPavlo V. KryvenkoIRIgor RudenkoOKOleksandr Konstantynovskyi

Key Points

  • This research aims to enhance the high-temperature resistance of Portland cement by incorporating fly ash and sodium water glass activation.
  • Partial clinker replacement with fly ash (12.0–16.5 wt%)
  • Physico-chemical analysis to assess microstructural changes
  • Evaluation of compressive strength at 28 days and after high-temperature exposure
  • Residual strength of the optimized cement system was ≥ 50% after high-temperature exposure
  • Compressive strength at 28 days was ≥ 80 MPa
  • Fly ash enhanced the formation of stable, high-temperature resistant phases, improving structural integrity.

Abstract

The limited high-temperature resistance of Ordinary Portland Cement (OPC) remains a critical challenge for fire-exposed and industrial concrete structures. Its performance deterioration above 500 °C is associated with dehydration and recrystallization of hydration products, leading to structural degradation of the cement matrix. To address this limitation, partial clinker replacement with fly ash combined with sodium water glass activation was proposed to enhance thermal stability. Physico-chemical analysis revealed the absence of portlandite and the formation of C-A-S-H and zeolite-like N–C–A–S–H phases in the fly ash-containing alkali-activated Portland cement. Upon heating, C-A-S-H phases sintered into stable high-temperature calcium aluminosilicate phases and zeolite-like phases underwent topotactic recrystallization into feldspathoid-type structures, preserving matrix integrity at high temperatures. The optimized composition region of cement system (fly ash—12.0–16.5 wt. %, density of water glass—1220–1240 kg/m3) was characterized by residual strength ≥ 50%, while compressive strength at 28 days was ≥80 MPa, exceeding the residual performance typically reported for conventional OPC systems under similar conditions (5–35%). The study was devoted to revealing the potential of low-emission Portland cements in high-temperature-resistant concretes through the utilization of fly ash. The mechanism that controls the compressive strength and temperature resistance of such cements has been demonstrated.

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Cite This Study

Kryvenko et al. (2026) studied this question.

synapsesocial.com/papers/69b4fc1fb39f7826a300cc06https://doi.org/10.3390/app16062676
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