Synthesis of sustainable chemicals from waste tea powder and Polystyrene via Microwave-Assisted in-situ catalytic Co-Pyrolysis: Analysis of pyrolysis using experimental and modeling approaches
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Date
2022
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Journal ISSN
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Publisher
Elsevier Ltd
Abstract
In the current study, catalytic co-pyrolysis was performed on waste tea powder (WTP) and polystyrene (PS) wastes to convert them into value-added products using KOH catalyst. The feed mixture influenced the heating rates (17–75 °C/min) and product formation. PS promoted the formation of oil and WTP enhanced the char formation. The maximum oil yield (80 wt%) was obtained at 15 g:5 g, and the maximum char yield (44 wt%) was achieved at 5 g:25 g (PS:WTP). The pyrolysis index (PI) increased with the increase in feedstock quantity. High PI was noticed at 25 g:5 g, and low PI was at 5 g:5 g (PS:WTP). Low energy consumption and low pyrolysis time enhanced the PI value. Significant interactions were noticed during co-pyrolysis. The obtained bio-oil was analyzed using GC–MS and a plausible reaction mechanism is presented. Catalyst and co-pyrolysis synergy promoted the formation of aliphatic and aromatic hydrocarbons by reducing the oxygenated products. © 2022 Elsevier Ltd
Description
Keywords
Aromatic hydrocarbons, Catalysts, Energy utilization, Potassium hydroxide, Pyrolysis, Copyrolysis, Experimental approaches, Microwave-assisted, Polystyrene waste, Pyrolysis analysis, Synergistic effect, Tea powder, Waste tea, Waste tea powder, ]+ catalyst, Polystyrenes, biofuel, catalysis, catalyst, experimental study, fuel consumption, heating, oxygenation, pyrolysis, sustainability, polystyrene derivative, heat, microwave radiation, powder, tea, Biofuels, Catalysis, Hot Temperature, Microwaves, Powders, Tea
Citation
Bioresource Technology, 2022, 362, , pp. -
