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Recovery of aluminum, magnetic ferrous metals and glass through enhanced industrial-scale treatment of different MSWI bottom ashes. | LitMetric

Recovery of aluminum, magnetic ferrous metals and glass through enhanced industrial-scale treatment of different MSWI bottom ashes.

Waste Manag

Christian Doppler Laboratory for a Recycling-based Circular Economy, Institute of Chemical, Environmental and Bioscience Engineering, TU Wien, Getreidemarkt 9/166, 1060 Vienna, Austria.

Published: December 2024

AI Article Synopsis

  • - The EU aims to boost recycling targets for packaging materials, including metals and glass, as part of fostering a circular economy and exploring the potential of recovering metals from incineration bottom ashes (IBA).
  • - An industrial-scale experiment evaluated the recoverable amounts of aluminum, magnetic ferrous metals, and glass over 4 mm from different types of IBA, highlighting that fluidized bed IBA significantly outperformed grate IBA in recoverable glass content and metal separation.
  • - Enhanced treatment methods can recover over 95% of aluminum and magnetic ferrous metals from IBA, indicating that adopting advanced processing techniques, particularly for fluidized bed IBA, can effectively contribute to recycling efforts and the transition to a circular economy. *

Article Abstract

To foster a circular economy, the EU will increase recycling targets for packaging materials, including aluminum, ferrous metals and glass. Recovery of packaging metals from incineration bottom ashes (IBA) from municipal solid waste incineration can contribute to achieving these targets. Nevertheless, recoverable metal and glass amounts from IBA, and in particular IBA from fluidized bed combustion, are rarely investigated. Therefore, this work aims to assess the recoverable amounts of aluminum, magnetic ferrous metals and glass > 4 mm from different types of IBA through enhanced treatment. In an industrial-scale treatment experiment with one batch of IBA from grate and one from fluidized bed combustion, masses and compositions of all output flows of the treatment plant were determined. Material flow analysis was used to study the distribution of the investigated materials during the treatment process. Results show that glass separation was not feasible for the grate IBA, which only contained 7 % glass > 4 mm. The fluidized bed IBA contained 42 % glass > 4 mm, of which 72 % were recovered. More aluminum and magnetic ferrous metals > 4 mm were found in the fluidized bed IBA, also exhibiting less mineral agglomeration compared to those from grate IBA. The study demonstrated that enhanced industrial IBA treatment can recover > 95 % of aluminum and magnetic ferrous metals > 4 mm, not observing significant differences between these metals. Thus, a cutting-edge IBA treatment can enable the recovery of recyclable material from IBA and therefore contribute to a circular economy. Furthermore, fluidized bed IBA shows advantages regarding its recycling options compared to grate IBA.

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Source
http://dx.doi.org/10.1016/j.wasman.2024.10.025DOI Listing

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