his paper reports a complete characterization of the lowest fractions of bottom ash derived from co-combustion of municipal solid waste with sewage sludge (COBA), with the aim to suggest suitable reuse strategies of this by-product. X-Ray Microanalysis is coupled with mineralogical characterization, based on X-Ray Diffraction and Rietveld refinement, to extract information about COBA crystalline and amorphous phases. The composition of different particle size fractions shows that amount of amorphous increases with the increase of fractions sizes. In particular, the finest COBA size fraction (<300 μm) shows more leachable heavy metals (i.e. Pb, and Zn) compared to the investigated fraction with the highest sizes (1400 µm). On the basis of their composition, lowest particle size fractions show a better hydraulic behavior compared to bottom ash obtained from incineration of only municipal solid waste, suggesting possible attractive COBA applications, as for example, Portland cement substitution. In addition, COBA with size fractions in the range of 1000–1400 μm are proposed to be used to produce glass and ceramic. Finally, due to its high amount of reactive amorphous phase (about 73% for fraction size of 1400 μm) COBA is used, in combination with other by-products (coal fly ash and flue gas desulphurization residues), to stabilize municipal solid waste incinerator fly ash produced at the same incinerator plant, following the azure chemistry principle of use a waste to stabilize another waste.

Bottom ash derived from municipal solid waste and sewage sludge co-incineration: First results about characterization and reuse

Assi A.;Bilo F.;Federici S.;Zacco A.;Depero L. E.;Bontempi E.
2020-01-01

Abstract

his paper reports a complete characterization of the lowest fractions of bottom ash derived from co-combustion of municipal solid waste with sewage sludge (COBA), with the aim to suggest suitable reuse strategies of this by-product. X-Ray Microanalysis is coupled with mineralogical characterization, based on X-Ray Diffraction and Rietveld refinement, to extract information about COBA crystalline and amorphous phases. The composition of different particle size fractions shows that amount of amorphous increases with the increase of fractions sizes. In particular, the finest COBA size fraction (<300 μm) shows more leachable heavy metals (i.e. Pb, and Zn) compared to the investigated fraction with the highest sizes (1400 µm). On the basis of their composition, lowest particle size fractions show a better hydraulic behavior compared to bottom ash obtained from incineration of only municipal solid waste, suggesting possible attractive COBA applications, as for example, Portland cement substitution. In addition, COBA with size fractions in the range of 1000–1400 μm are proposed to be used to produce glass and ceramic. Finally, due to its high amount of reactive amorphous phase (about 73% for fraction size of 1400 μm) COBA is used, in combination with other by-products (coal fly ash and flue gas desulphurization residues), to stabilize municipal solid waste incinerator fly ash produced at the same incinerator plant, following the azure chemistry principle of use a waste to stabilize another waste.
2020
2020
Altre Amm. Pubb. Italiane
PE4_18 Characterization methods of materials
PE8_9 Materials engineering (biomaterials, metals, ceramics, polymers, composites,…)
PE8_3 Civil engineering, maritime/hydraulic engineering, geotechnics, waste treatment
Esperti anonimi
Inglese
Internazionale
ELETTRONICO
116
147
156
10
This research was funded by Ministero dell’Ambiente e della Tutela del Territorio e del Mare and supported by Regione Lombardia , INSTM , CSMT and University of Brescia , project: Energy recovery of waste sludge and their re-use as an alternative to some natural resources, for the production of “Green” composites, RENDERING, CUP: D71I18000170008. The activity was also partially financed by FANGHI project, financed by Regione Lombardia , in the frame of the call HUB Ricerca e Innovazione.
Bottom ash, Heavy metals, Municipal solid waste, Sewage sludgeStabilization
Ateneo di appartenenza
https://www-sciencedirect-com.proxy.unibs.it/science/article/pii/S0956053X20304098?via=ihub
no
Goal 13: Climate action
Goal 3: Good health and well-being for people
Goal 11: Sustainable cities and communities
Goal 12: Responsible consumption and production
6
info:eu-repo/semantics/article
262
Assi, A.; Bilo, F.; Federici, S.; Zacco, A.; Depero, L. E.; Bontempi, E.
1 Contributo su Rivista::1.1 Articolo in rivista
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11379/533670
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