Abstract
Local environments of main constituent elements (Si, Al, O, Mg, and Ca) in slow-cooled (crystalline) and rapid-quenched (amorphous) blast furnace slags have been investigated using multi-nuclear solid-state NMR spectroscopy. The framework of the amorphous slag has a depoly- merized, chain-like network (Q 2) of Si0 4 tetrahedra branched with A10 4 tetrahedra. A10 4 tetrahedra are more polymerized than Si0 4 tetra- hedra: Q 3 and/or Q 4. A 170 MQMAS spectrum demonstrates that oxygens occupy structurally inequivalent multiple sites due to a difference in their connectivities. 25Mg and 43Ca MQMAS spectra show that Mg 2+ and Ca 2+ ions also occur in multiple sites, and the average coordination number is estimated to about 6 and 7, respectively. Especially, Ca 2+ ions act as charge balancers of [A10 4]" as well as network modifiers. The corresponding spectra of the crystalline slag prove the existence of melilite and a small amount of merwinite.. A difference in chemical structure between the amorphous and crystalline slags is the coordination state of Mg 2+ and Ca 2+ ions rather than the framework of T0 4(T=Si orAl). Chemical structure of the amorphous slag has been also studied by means of MD simulation. Our calculation manifests that the structural properties at 300K agree well with the NMR results. At 1873K, the coordination number of the tetrahedral cations almost remains unchanged, while 5-fold Al species slightly increase. The Q n distributions of A10 4 tetrahedra are also modified. The small amount but significant incorporation of A1 20 3 influences the network connectivities, which should affect macroscopic properties such as viscosity.
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Kanehashi, K., Shimoda, K., & Saito, K. (2009). Local structure of crystalline and amorphous blast furnace slags by solid-state NMR and MD Simulation. Tetsu-To-Hagane/Journal of the Iron and Steel Institute of Japan, 95(4), 321–330. https://doi.org/10.2355/tetsutohagane.95.321
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