In the present study the evolution of mechanical strength and the leaching behavior of major and trace elements from activated incinerator bottom ash/Portland cement mixtures were investigated. Chemical and mechanical activation were applied with the purpose of improving the reactivity of bottom ash in cement blends. Chemical activation made use of NaOH, KOH, CaCl2 or CaSO4, which were selected for the experimental campaign on the basis of the results from previous studies. The results indicated that CaCl2 exhibited by far the best effects on the evolution of the hydration process in the mixtures: a positive effect on mechanical strength was also observed when CaSO4 was used as the activator, while the gain in strength produced by KOH and NaOH was irrelevant. Geochemical modeling of the leaching solutions provided information on the mineral phases responsible for the release of major elements from the hardened materials and also indicated the important role played by surface sorption onto amorphous Fe and Al minerals in dictating the leaching of Pb. The leaching of the other trace metal cations investigated (Cu, Ni and Zn) could not be explained by any pure mineral included in the thermodynamic database used, suggesting they were present in the materials in the form of complex minerals or phase assemblages for which no consistent thermodynamic data are presently available in the literature. (C) 2010 Elsevier Ltd. All rights reserved.

Mechanical properties and leaching modeling of activated incinerator bottom ash in Portland cement blends / Onori, Roberta; Polettini, Alessandra; Pomi, Raffaella. - In: WASTE MANAGEMENT. - ISSN 0956-053X. - 31:2(2011), pp. 298-310. (Intervento presentato al convegno Conference on WASCON tenutosi a Lyon, FRANCE nel JUN 03-05, 2009) [10.1016/j.wasman.2010.05.021].

Mechanical properties and leaching modeling of activated incinerator bottom ash in Portland cement blends

ONORI, ROBERTA;POLETTINI, Alessandra;POMI, Raffaella
2011

Abstract

In the present study the evolution of mechanical strength and the leaching behavior of major and trace elements from activated incinerator bottom ash/Portland cement mixtures were investigated. Chemical and mechanical activation were applied with the purpose of improving the reactivity of bottom ash in cement blends. Chemical activation made use of NaOH, KOH, CaCl2 or CaSO4, which were selected for the experimental campaign on the basis of the results from previous studies. The results indicated that CaCl2 exhibited by far the best effects on the evolution of the hydration process in the mixtures: a positive effect on mechanical strength was also observed when CaSO4 was used as the activator, while the gain in strength produced by KOH and NaOH was irrelevant. Geochemical modeling of the leaching solutions provided information on the mineral phases responsible for the release of major elements from the hardened materials and also indicated the important role played by surface sorption onto amorphous Fe and Al minerals in dictating the leaching of Pb. The leaching of the other trace metal cations investigated (Cu, Ni and Zn) could not be explained by any pure mineral included in the thermodynamic database used, suggesting they were present in the materials in the form of complex minerals or phase assemblages for which no consistent thermodynamic data are presently available in the literature. (C) 2010 Elsevier Ltd. All rights reserved.
2011
additives; cao-al2o3-caso4-h2o system; chemical activators; concrete; early hydration; fly-ash; pollution-control residues; pozzolanic reaction; products; solubility
01 Pubblicazione su rivista::01a Articolo in rivista
Mechanical properties and leaching modeling of activated incinerator bottom ash in Portland cement blends / Onori, Roberta; Polettini, Alessandra; Pomi, Raffaella. - In: WASTE MANAGEMENT. - ISSN 0956-053X. - 31:2(2011), pp. 298-310. (Intervento presentato al convegno Conference on WASCON tenutosi a Lyon, FRANCE nel JUN 03-05, 2009) [10.1016/j.wasman.2010.05.021].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/354060
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