2023
DOI: 10.1021/acs.iecr.3c00192
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Syngas Quality Enhancement by CO2 Injection during the Co-Gasification of Biomass and Plastic

Abstract: Gasification technologies have been considered to be viable waste enhancement avenues for diverting mixed nonrecycled plastic-containing waste from landfills. The main objective of this work was to investigate CO2 utilization with the air gasification of mixed plastics and biomass. High-density polyethylene (HDPE) was co-gasified with Douglas fir, air, and CO2 in a semibatch updraft gasifier with supporting thermogravimetric analyzer (TGA) testing. Possible reaction mechanisms of the mixed feedstock with CO2 i… Show more

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Cited by 2 publications
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“…The H 2 /CO ratio was determined to be 0.87 at a temperature of 750 • C in the bubbling fluidized-bed reactor and 0.93 at a temperature of 800 • C in the fixed-bed reactor. These values closely resemble those obtained in the references cited [49][50][51] and suggest that, as the temperature increases, the proportion of hydrogen relative to carbon monoxide also rises, particularly in the fixed-bed reactor. This occurrence can be explained by alterations in reaction kinetics and the thermodynamic properties of the reactions involved in hydrogen production, namely thermal cracking [52].…”
Section: Discussionsupporting
confidence: 85%
“…The H 2 /CO ratio was determined to be 0.87 at a temperature of 750 • C in the bubbling fluidized-bed reactor and 0.93 at a temperature of 800 • C in the fixed-bed reactor. These values closely resemble those obtained in the references cited [49][50][51] and suggest that, as the temperature increases, the proportion of hydrogen relative to carbon monoxide also rises, particularly in the fixed-bed reactor. This occurrence can be explained by alterations in reaction kinetics and the thermodynamic properties of the reactions involved in hydrogen production, namely thermal cracking [52].…”
Section: Discussionsupporting
confidence: 85%