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Gas-pressurized torrefaction for multi-source organic solid wastes: An ML-based synergistic optimization of
Jia Fu1, Xianzhe Liu2, Linlin Yi3
1School of Safety Science and Emergency Management, Wuhan University of Technology, Wuhan 430070, China; State Key Laboratory of Coal Combustion, School of Energy and Power Engineering, Huazhong University of Science and Technology, Wuhan 430074, China.
Abstract:
Dechlorination pretreatment is required for the energy recovery of chlorine-containing multi-source organic solid wastes (MSW). Gas-pressurized torrefaction (GP) enables efficient dechlorination and MSW upgrading at low temperatures, yet high dechlorination efficiency (DCE) often comes at the expense of char yield (CY), creating a persistent dilemma between chlorine removal and energy recovery. In this study, LSBT models were developed to jointly predict DCE and CY using feedstock properties and torrefaction variables. The final models achieved test-set R2 values of 0.94 for DCE and 0.96 for CY. Temperature was the primary predictor, while volatile matter was a key feedstock-related variable. Within the coverage of the compiled dataset, the models identified a temperature-pressure interaction that was consistent with the enhanced dechlorination observed under closed GP conditions, particularly for organic-chlorine feedstocks. Model-based optimization indicated that, relative to AP torrefaction, GP could reduce the predicted DCE-qualification temperature by 30-60 °C for selected feedstocks. The predicted operating windows also indicated higher CY and more selective chlorine removal for PVC and corn stalks. This work establishes a data-driven predictive framework for operating condition optimization of torrefaction, paving the way toward sustainable and selective upgrading of chlorine-rich organic solid wastes.
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