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Two-way Valorization of Blast Furnace Slag: Synthesis of Precipitated Calcium Carbonate and Zeolitic Heavy Metal Adsorbent
Published on: February 21, 2017
Activated coal gangue supplementary cementitious materials: mineral phase evolution, mechanical response, and
Zeting Shi1, Mengdan Huo1, Anqi Guo1
1Institute of Resources and Environment Engineering, State Environmental Protection Key Laboratory of Efficient Utilization Technology of Coal Waste Resources, Shanxi University Taiyuan 030006 P. R. China gaojianming@sxu.edu.cn.
Abstract:
Utilizing coal gangue as a supplementary cementitious material (SCM) provides an effective strategy to reduce clinker consumption, mitigate cement-related CO2 emissions, and promote solid waste valorization. However, the unclear mineralogical evolution and structural strengthening mechanisms of these CaO-regulated coal gangue blended cement systems under thermal activation hinder the high-value utilization of low-carbon blended cement systems. This study investigated the phase reconstruction, structural strengthening, and hydration of gangue systems calcined at 600-1000 °C and raw systems blended with 3-15 wt% CaO calcined at 800-1000 °C. Results show that 900 °C is the optimum activation equilibrium, inducing complete dehydroxylation of kaolinite into amorphous metakaolin. Optimizing the CaO dosage to 12 wt% maximized the reactivity of thermally activated coal gangue, enabling its effective use as a reactive SCM in a blended Portland cement system; at a 30% cement replacement level, the 28 d compressive strength reached 36.5 MPa, exceeding that of the neat cement reference. Notably, thermochemical regulation promoted the intergrowth of AFt-like needle-shaped products and C-(A)-S-H gel-like phases, contributing to the formation of a dense three-dimensional hydration-product network and improved mechanical performance. This work establishes a composition-process-mineralogy-performance technical pathway, providing a theoretical foundation for high-performance, low-carbon cement.
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