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Impacts of Pyrolytic Interactions during the Co-pyrolysis of Biomass/Plastic: Synergies in Lignocellulose-Polyethylene System

机译:生物质/塑料共热解过程中热解相互作用的影响:木质纤维素-聚乙烯系统中的协同作用。

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Multiple pyrolytic interactions in the cellulose-hemicellulose-lignin-polyethylene system were thoroughly investigated using a novel approach, which evaluates the pyrolytic interaction impacts through product recovery tests and the in-situ pyrolysate monitoring by evolved gas analysis-mass spectrometry. Fast pyrolysis of neat cellulose, xylan, milled wood lignin, beech wood, polyethylene, and their mixtures was conducted at 650 ℃ using the combined approach. Interactions in the cellulose/polyethylene, xylan/polyethylene, and milled wood lignin/ polyethylene systems enhanced the production of CO and C2-C3 hydrocarbons, and simultaneously inhibited that of solids such as heavy tar, wax, and coke. Polyethylene worked as a dispersant of biomass upon injection, and the improved gasification was mainly due to the enhanced hydrogen-exchange between hydrogen-rich polyethylene pyrolysates and carbon-centered radicals in vapor phase. The results suggested that pyrolytic interactions in the biomass components (cellulose-hemicellulose-lignin) occur preferentially before contact with polyethylene, and then the beech wood pyrolysates further interact with the polyethylene pyrolysates. Thus, this novel approach allowed advanced evaluation of pyrolytic interactions and can be applied to different combinations and compositions in the cellulose-hemicellulose-lignin-plastic system. It will help understand the nature of co-pyrolysis systems and predict the significance of co-pyrolysis in practical energy and chemical feedstock production.
机译:使用一种新方法彻底研究了纤维素-半纤维素-木质素-聚乙烯系统中的多种热解相互作用,该方法通过产物回收率测试和通过演化气体分析-质谱法现场监测热解产物来评估热解相互作用的影响。使用联合方法,在650℃下对纯纤维素,木聚糖,磨木素,山毛榉木,聚乙烯及其混合物进行快速热解。纤维素/聚乙烯,木聚糖/聚乙烯和磨碎的木质素/聚乙烯系统中的相互作用增强了CO和C2-C3烃的产生,同时抑制了重焦油,蜡和焦炭等固体的产生。聚乙烯在注入时起生物质的分散剂的作用,改善的气化主要是由于富氢聚乙烯热解产物和气相中以碳为中心的自由基之间的氢交换增强。结果表明,生物质组分(纤维素-半纤维素-木质素)中的热解相互作用优先发生在与聚乙烯接触之前,然后山毛榉木的热解产物进一步与聚乙烯的热解产物相互作用。因此,该新颖方法允许对热解相互作用进行高级评估,并可应用于纤维素-半纤维素-木质素-塑料体系中的不同组合和组成。这将有助于理解共热解系统的性质,并预测共热解在实际能源和化学原料生产中的重要性。

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