Influence of Gypsum on Fly Ash Activation and Ettringite Stability in Low-Alkalinity Flowable Stabilized Soil
Jianke Pu, Zhiyu Wang, Tianqi Wu, Junyi Duan, Juan Du, Zhecong Shen, Che Liu, Jiyu Duan, Kuangliang Qian, Junying Lai, Xiaoqian QianAbstract
Incorporating massive excavated waste soil typically creates an inherently low-alkalinity environment that severely suppresses pozzolanic reactivity. To overcome this bottleneck, this study develops a high-performance controlled low-strength material by incorporating gypsum as a critical activator into the cement-fly ash system. The investigation integrates macro-scale engineering evaluations with microstructural characterization to elucidate the synergistic hydration mechanisms under reduced pH conditions. The results demonstrate that the mixture achieves an optimal balance, maintaining a high flowability retention rate of 74.5% at 60 min. It exhibits superior mechanical and durability performance: its 56 day compressive strength was 31.7% higher than the cement-only mix, alongside an exceptional 56 day softening coefficient of 92.5%. Microstructural investigations suggest that the proposed gypsum-induced “salt activation” circumvents the alkaline deficiency by accelerating fly ash dissolution, generating massive Calcium−(Alumino)−Silicate−Hydrate gels. Moreover, competitive hydration from the ongoing silicate release effectively prevents the transformation of ettringite to monosulfoaluminate, supporting a proposed “ettringite protection” effect that preserves a robust interlocking skeleton. This microstructural synergy provides a scientific and practical basis for designing resource-efficient, highly durable geomaterials from challenging low-alkalinity solid wastes.