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PYROLYSIS AND CO_2 GASIFICATION OF COMPOSITE POLYMER ABSORBENT WASTE FOR SYNGAS PRODUCTION

机译:用于合成气生产的复合聚合物吸收剂的热解和CO_2气化

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Development of alternative carbonaceous sources for energy production is essential to alleviate the dependence on depleting fossil fuels which led to increasing atmospheric CO_2 and thus global warming. While biomass utilization for energy and chemical production has been extensively studied in the literature, such studies on municipal solid wastes is difficult to interpret due to the heterogeneous nature of the waste. Understanding of the influence of individual components is necessary for comprehensive development of waste-to-energy pathway. One such waste that is complicated and has often been ignored in the literature is composite polymer absorbent material waste which can also be considered as a potential feedstock for thermochemical pathway of energy production. Composite polymer absorbent materials are ubiquitously used these days in the form of sanitary napkins, diapers, water blockers, fire blockers and surgical pads due to their high water-absorptive nature. Pyrolysis and CO_2 gasification is ideal for such materials due to its versatile feedstock intake and uniform product output in the form of syngas with adjustable composition. CO_2 gasification also provides the added benefit of CO_2 utilization which provides carbon offset to this process. In the present study, a mixture of cellulose, absorbent material (sodium polyacrylate), polypropylene and polystyrene in a fixed proportion, to model approximate composition of a diaper, was examined for its pyrolysis and CO_2 gasification capability for viable syngas production. The influence of individual components into the syngas yield from the composite waste gasification was also investigated. A fixed-bed, semi-batch reactor facility along with gas chromatography was employed to analyse the syngas yield and compositional evolution. Pyrolysis was done under nitrogen atmosphere and gasification was done under CO_2 atmosphere. CO_2 gasification provided net CO_2 consumption which means a net reduction in carbon emissions per joule of energy produced. The sample was tested under four isothermal conditions of 973, 1073, and 1173 K to understand the impact of operational conditions on the syngas yield. Influence of individual component of the composite absorbent waste on the syngas yield and composition was also analyzed by comparing these syngas characteristics with that of the yield from gasification of its individual components separately at 1173 K. These investigations provided us with novel results on the behavior and capabilities of these composite polymer absorbent wastes and which opens up a new avenue towards efficient utilization of solid waste resources for sustainable energy production in the form of syngas which can also be used for various chemicals production such as methanol, gasoline and other petrochemical products.
机译:开发用于能源生产的替代碳源对于减轻对消耗化石燃料的依赖性至关重要,化石燃料的消耗导致了大气CO_2的增加,从而导致了全球变暖。尽管在文献中对生物质用于能源和化学生产的利用进行了广泛的研究,但由于废物的异质性,因此难以解释这种对城市固体废物的研究。全面理解废物转化为能源的途径,必须了解各个组成部分的影响。一种此类复杂且在文献中经常被忽略的废料是复合聚合物吸收材料废料,也可以将其视为产生能量的热化学途径的潜在原料。如今,复合聚合物吸收材料以其高吸水性而以卫生巾,尿布,阻水剂,阻火剂和手术垫的形式无处不在。热解和CO_2气化是此类材料的理想选择,因为它具有通用的进料口和均匀的合成气形式的可调节组成的合成气形式的产品输出。 CO_2气化还提供了利用CO_2的额外好处,这为该过程提供了碳补偿。在本研究中,研究了纤维素,吸收性材料(聚丙烯酸钠),聚丙烯和聚苯乙烯的固定比例混合物,以模拟尿布的近似组成,分析了其热解和CO_2气化能力,以生产可行的合成气。还研究了各个组分对复合废气气化对合成气收率的影响。使用固定床,半间歇式反应器设备以及气相色谱仪来分析合成气的收率和组成演变。在氮气氛下进行热解,在CO_2气氛下进行气化。 CO_2气化提供了CO_2净消耗量,这意味着每焦耳产生的能量净减少了碳排放量。在973、1073和1173 K的四个等温条件下对样品进行了测试,以了解操作条件对合成气收率的影响。通过比较这些合成气特性与其在1173 K下分别气化其单个成分的产率,还分析了复合吸收性废物中各个成分对合成气收率和组成的影响。这些研究为我们的行为和行为提供了新的结果这些复合聚合物吸收性废物的功能,为有效利用固体废物资源以可持续的能源生产形式提供了新途径,合成气也可用于各种化学生产,例如甲醇,汽油和其他石化产品。

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