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Hydrogen-rich gas production by continuous pyrolysis and in-line catalytic reforming of pine wood waste and HDPE mixtures

机译:通过连续热解和在线催化重整松木废料和HDPE混合物生产富氢气体

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The continuous pyrolysis-reforming of pine sawdust and high density polyethylene mixtures (25, 50 and 75 wt% HDPE) has been performed in a two-stage reaction system provided with a conical spouted bed reactor (CSBR) and a fluidized bed reactor. The influence HDPE co-feeding has on the conversion, yields and composition of the reforming outlet stream and catalyst deactivation has been studied at a reforming temperature of 700 degrees C, with a space time of 16.7 g(cat) min gfe(eding)(-1) and a steam/(biomass + HDPE) mass ratio of 4, and a comparison has been made between these results and those recorded by feeding pine sawdust and HDPE separately. Co-feeding plastics enhances the hydrogen production, which increases from 10.9 g of H-2 per 100 g of feed (only pine sawdust in the feed) to 37.3 g of H-2 per 100 g of feed (only HDPE in the feed). Catalyst deactivation by coke is attenuated when HDPE is co-fed due to the lower content of oxygenated compounds in the reaction environment. The higher yield of hydrogen achieved with this two-step (pyrolysis-reforming) strategy, its ability to jointly valorise biomass and plastic mixtures and the lower temperatures required compared to gasification make this promising process for producing H-2 from renewable raw materials and wastes. (C) 2017 Elsevier Ltd. All rights reserved.
机译:松木屑和高密度聚乙烯混合物(HDPE含量分别为25、50和75重量%)的连续热解重整已在两步反应系统中进行,该系统配有锥形喷头床反应器(CSBR)和流化床反应器。 HDPE共进料对重整出口物流的转化率,收率和组成的影响,在700℃重整温度,16.7 g(cat)min gfe(eding)(时空)的重整温度下研究了催化剂失活( -1)且蒸汽/(生物质+ HDPE)质量比为4,并且已将这些结果与分别喂入松木屑和HDPE记录的结果进行了比较。共同进料的塑料提高了氢气的产生,从每100克饲料中10.9克H-2(仅在饲料中为松木屑)增加到每100克饲料37.3克H-2(仅在饲料中为HDPE) 。当共同进料HDPE时,由于反应环境中含氧化合物的含量较低,焦炭引起的催化剂失活减弱。通过这种两步式(热解重整)策略可实现更高的氢气收率,与生物气一起对生物质和塑料混合物进行平均增值的能力以及所需的较低温度,这使这种从可再生原料和废料生产H-2的方法很有希望。 (C)2017 Elsevier Ltd.保留所有权利。

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