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Syngas production from co-pyrolysis and co-gasification of polystyrene and paper with CO_2

机译:聚苯乙烯和纸与CO_2的共热解和共气化生产合成气

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Co-pyrolysis and CO2 co-gasification of paper and polystyrene blends in different mixture ratios were studied at 1173 K using a laboratory scale tube reactor and thermogravimetric analysis. The chemical composition and yield of the syngas produced was analyzed by a micro gas chromatograph to understand the influence of mixture components. Co-pyrolysis positively impacted the syngas yield exhibiting a synergistic influence on cracking reactions leading to increased gaseous yield having almost double the amounts of hydrogen yield. Co-gasification using CO2 increased the total gas yield with enhanced synergistic conversion. This effect provided a nonlinear impact on the combustible gases in the gaseous yields when compared to the separate gasification of these feedstocks. The synergistic enhancement of co-pyrolysis conversion in paper-polystyrene led to lower char present for CO2 to react during CO2 co-gasification that lead to lower CO during the gasification of this blended char residue. The mixtures of paper with polystyrene provided increased product gas yields and enhanced conversion with an increase in polystyrene content. The results showed the effectiveness of producing high energy density syngas from co-gasification which can alleviate material handling issues present in segregation of waste, such as plastics and biomass providing uniform valuable product from diverse waste feedstocks with minimal need for classification.
机译:使用实验室规模的管式反应器和热重分析法研究了纸和聚苯乙烯共混物在不同混合比下的共热解和CO2气化。通过微型气相色谱仪分析所产生的合成气的化学组成和收率,以了解混合物成分的影响。共热解对合成气收率产生积极影响,对裂化反应产生协同影响,导致气态收率增加,氢气收率几乎翻了一番。使用CO2进行共气化可提高协同转化率,从而提高总气体产率。与这些原料的单独气化相比,这种效应对气态产量中的可燃气体产生了非线性影响。纸-聚苯乙烯中共热解转化的协同增强导致CO2共气化过程中CO2反应时存在的焦炭含量降低,导致混合焦炭残渣的气化过程中CO含量降低。纸与聚苯乙烯的混合物可提高产物气的收率,并随着聚苯乙烯含量的增加而提高转化率。结果表明,通过共气化生产高能量密度合成气的有效性可以缓解废物分类中存在的材料处理问题,例如塑料和生物质,可以从多种废物原料中提供均匀有价值的产品,而无需进行分类。

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