首页> 外文期刊>ACS Omega >Catalytic Pyrolysis of Lignocellulosic Biomass: The Influence of the Catalyst Regeneration Sequence on the Composition of Upgraded Pyrolysis Oils over a H-ZSM-5/Al-MCM-41 Catalyst Mixture
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Catalytic Pyrolysis of Lignocellulosic Biomass: The Influence of the Catalyst Regeneration Sequence on the Composition of Upgraded Pyrolysis Oils over a H-ZSM-5/Al-MCM-41 Catalyst Mixture

机译:木质纤维素生物量的催化热解:催化剂再生序列对H-ZSM-5 / Al-MCM-41催化剂混合物升级的热解油组合物的影响

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Catalyst regeneration is economically attractive, and it saves resources. Thus, it is important to determine the influence of catalyst regeneration on the chemical composition of upgraded oil. The catalyst was regenerated several times, and the regenerated catalyst was reloaded in the reactor to proceed with the next run. The composition of the derived upgraded pyrolysis oils in relation to catalyst regeneration was determined. The results revealed that the catalyst cracking abilities decreased with an increased number of reaction cycles. The opposite trends of the organic fraction and water yields indicated that the deoxygenation process occurred via H_(2)O production. A decrease in the CO and CO_(2) yields revealed that the deoxygenation in catalytic pyrolysis with a catalyst mixture occurred via decarbonylation, decarboxylation, and dehydration mechanisms. The chemical formula of bio-oil changed from CH_(0.17)O_(0.91) for a noncatalytic experiment to CH_(0.14)O_(0.66) for a catalytic pyrolysis experiment after five reaction cycles, which indicated that the oxygen in the bio-oil decreased at the expense of hydrogen. The high heating value (HHV) of bio-oils decreased as the number of reaction cycles increased, albeit the minimum value of 22.41 wt % in the 6th reaction cycle was still higher than the value for the noncatalytic experiment. Compared to the HHVs of diesel fuel and gasoline petrol, the values of the produced bio-oil with catalyst mixtures were still low. The catalyst regained 94% of the surface area for the fresh catalyst, which indicated that the regeneration procedure was effective.
机译:催化剂再生在经济上具有高度吸引力,并节省资源。因此,重要的是确定催化剂再生对升级油化学成分的影响。将催化剂进行几次再生,再生催化剂在反应器中重新加载,以进行下一次运行。确定了衍生的升级的热解油的组成与催化剂再生。结果表明,催化剂裂化能力随着反应循环的数量增加而降低。有机级分和水产率的相反趋势表明,通过H_(2)o生产发生脱氧过程。 CO和CO_(2)产量的减少表明,通过脱氧羰基化,脱羧和脱水机制发生催化剂混合物的催化热解中的脱氧。生物油的化学配方从CH_(0.17)O_(0.91)变为非催化实验对5个反应循环后催化热解实验的CH_(0.14)O_(0.66),这表明生物油中的氧气以氢气为代价降低。随着反应循环的数量增加,生物油的高加热值(HHV)降低,第六反应循环中的最小值22.41重量%仍然高于非催化实验的值。与柴油燃料和汽油汽油的HHV相比,产生的生物油的值仍然低。催化剂可获得94%的新鲜催化剂的表面积,表明再生方法是有效的。

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