Crystal-chemistry of phases in glass-ceramics prepared by reheating of municipal bottom ashes at different temperatures and duration times

Municipal solid waste (MSW) is commonly treated at high temperatures ( T ); the most abundant product is the so-called granular bottom ash (BA), a complex inorganic residue that shares several features with silicate rocks but also release harmful components. To overcome these aspects, new glass-ceramics were prepared by reheating BA at variable high- T (from 1000 to 1300 °C) and dwell times ( t ) (2/16 h); these 15 run-products (sample at 1100 °C-16 h was lost) were analysed by XRPD, SEM, EPMA, and leaching potential. XRPD reveals that BA and the 15 obtained materials contain a glass phase, which increases as T and t approach their maximum values; at the lowest T and t , several crystalline phases are observed that progressively disappear as the T and t increase. The complementary SEM and EPMA characterisations corroborate the XRPD results. The measured glass fraction by image analysis increases with T and t increase. As T moves from relatively low to high (also as t increases), the produced glass-ceramics change from crystal- to glass-dominated products; silicate crystalline phases inherited from the starting BA progressively dissolve, while spinel-group minerals persist or newly (chromite) crystallise, acting as key hosts for Fe, Cr, and Zn. Leaching tests performed on representative glass-rich products from 1200 °C demonstrate effective immobilisation of environmentally relevant elements, with concentrations below regulatory limits. The proposed approach allows for concentrating metallic elements in spinel structures at T ≥ 1200 °C; they are easily separable after comminution and magnetic sorting from the most abundant silicate glassy matrix.

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Publication Details

Journal
Waste Management
Published
2026-09-18
DOI
https://doi.org/10.1016/j.wasman.2026.115867
Primary Topic
Recycling and utilization of industrial and municipal waste in materials production
Type
article
Field-Weighted Citation Impact
0.00

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article

Crystal-chemistry of phases in glass-ceramics prepared by reheating of municipal bottom ashes at different temperatures and duration times

Francesco Radica, Gianluca Iezzi, Giovanna Montesano, Paola Stabile et al.
Waste Management
Recycling and utilization of industrial and municipal waste in materials production
article

Crystal-chemistry of phases in glass-ceramics prepared by reheating of municipal bottom ashes at different temperatures and duration times

Francesco Radica, Gianluca Iezzi, Giovanna Montesano, Paola Stabile, Roberto Ercoli, G. Bianchini, M.R. Carroll, E. Paris
article en

Abstract

Municipal solid waste (MSW) is commonly treated at high temperatures ( T ); the most abundant product is the so-called granular bottom ash (BA), a complex inorganic residue that shares several features with silicate rocks but also release harmful components. To overcome these aspects, new glass-ceramics were prepared by reheating BA at variable high- T (from 1000 to 1300 °C) and dwell times ( t ) (2/16 h); these 15 run-products (sample at 1100 °C-16 h was lost) were analysed by XRPD, SEM, EPMA, and leaching potential. XRPD reveals that BA and the 15 obtained materials contain a glass phase, which increases as T and t approach their maximum values; at the lowest T and t , several crystalline phases are observed that progressively disappear as the T and t increase. The complementary SEM and EPMA characterisations corroborate the XRPD results. The measured glass fraction by image analysis increases with T and t increase. As T moves from relatively low to high (also as t increases), the produced glass-ceramics change from crystal- to glass-dominated products; silicate crystalline phases inherited from the starting BA progressively dissolve, while spinel-group minerals persist or newly (chromite) crystallise, acting as key hosts for Fe, Cr, and Zn. Leaching tests performed on representative glass-rich products from 1200 °C demonstrate effective immobilisation of environmentally relevant elements, with concentrations below regulatory limits. The proposed approach allows for concentrating metallic elements in spinel structures at T ≥ 1200 °C; they are easily separable after comminution and magnetic sorting from the most abundant silicate glassy matrix.

Waste ManagementVol. 227
Ministero dell'Istruzione e del Merito
Openalex Percentile: Top 14%
Recycling and utilization of industrial and municipal waste in materials production
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