Reaction Mechanisms and Early-Stage Properties of Sustainable Calcium Carbide Residue-Granulated Blast Furnace Slag-Fly Ash Alkali-Activated Composites. [PDF]
Pan H, Yan X, Wagland ST, Liu Q.
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Effect of sodium hydroxide dosage on strength development in cement-fly ash mortars: Experimental and ANN-based prediction. [PDF]
Xu J, Liu FP, Zhao JX, Tan SC, Gong AM.
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Mechanism and field validation of fly-ash grouting for mitigating mining-induced surface subsidence. [PDF]
Ding C, Qin Y, Cao C.
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Multi-scale theoretical modeling with molecular simulation framework for fly ash-based high-performance concrete. [PDF]
Vairagade VS.
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Monitoring and Retrofitting of Reinforced Concrete Beam Incorporating Refuse-Derived Fuel Fly Ash Through Piezoelectric Sensors. [PDF]
Kumar J, Sharma D, Bansal T, Choi SJ.
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Durability and damage evolution of cement-fly ash stabilized aeolian sand gravel under high-temperature curing and freeze-thaw cycles. [PDF]
Wang B, Zhao Y, Zheng P, Liu J, Zhu S.
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Fly ash effects: I. The morphological effect of fly ash
Cement and Concrete Research, 2003The morphological effect is an important part of fly ash effects. The paper analyzes emphatically this effect and points out that it is composed of the filling role, surface role and lubricating role. For different fly ash, these roles are different. They must be considered synthetically when the morphological effect is analyzed. Analyzing result shows
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Selenium, at concentrations exceeding 200 parts per million (ppm) (dry weight), has been found in white sweet clover voluntarily growing on beds of fly ash in central New York State. Guinea pigs fed such clover concentrated selenium in their tissues.
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