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Updated: Jan 7, 2026

Reducing Willow Wood Fuel Emission by Low Temperature Microwave Assisted Hydrothermal Carbonization
Published on: May 19, 2019
New model of municipal solid waste incineration fly ash treatment and its comprehensive benefits
Chujie Qi1, Runhao Zhang2, Wenxiang Zhou1
1School of Environment, Nanjing Normal University, Nanjing 210023 China; Jiangsu Engineering Lab of Water and Soil Eco-remediation, Nanjing 210023, China.
Abstract:
Municipal solid waste incineration fly ash (MSWI FA), characterized by high concentrations of chlorides, heavy metals, and dioxins, presents significant environmental challenges. This study developed a synergistic washing-hydrothermal oxidation process for safe resource recovery. Optimized three-stage countercurrent washing (L/S ratio of 4 mL/g, 750 rpm, 25 °C, 20 min) yielded 79.86% chloride removal efficiency, meeting the 2% residual chloride threshold. Subsequent hydrothermal treatment (300 °C, 90 min, pH 7.0, L/S ratio of 4 mL/g) enhanced residual metal fractions (Cu: +36.32%, Zn: +40.61%, Cd: +38.81%) versus washed ash, with leached concentrations complying with GB 8978-1996. Dioxin toxicity equivalence was reduced by 99.7% (1.87 μg-TEQ/kg to 5.4 ng-TEQ/kg), far below the 50 ng-TEQ/kg regulatory limit. Life cycle assessment confirmed superior environmental performance over landfilling, particularly in heavy metal emissions and human toxicity mitigation. Risk analysis validated effective leached metal toxicity reduction. Carbon accounting bounded by the resource-based production of ceramic pellets from treated fly ash demonstrates a double offset: substitution of carbon-intensive building materials with enhanced carbon sequestration for net life-cycle carbon reductions. Economic projections indicate USD 363 million revenue potential by 2030. Thus, the synergistic washing-hydrothermal oxidation process developed herein enables efficient dechlorination, heavy metal stabilization, and deep dioxin degradation in MSWI FA. This integrated approach delivers significant environmental, carbon-reduction, and economic benefits, enabling viable fly ash resource utilization.
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