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Effects of methanol co-feeding in ethanol synthesis from syngas using alkali-doped MoS2 catalysts

机译:碱掺杂MoS2催化剂上甲醇共进料在合成气乙醇合成中的作用

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Gasification of biomass to syngas followed by catalytic conversion of syngas over mixed alcohol catalysts is an alternative pathway to produce bioethanol. Significant improvements in catalyst and process development need to be achieved to make this process commercially attractive. It is known that ethanol is produced from methanol by means of a CO insertion mechanism in the case of mixed alcohol MoS2 catalysts. Thus, an improvement in the industrial process could be to recycle methanol produced in the reactor. This paper examines experimentally the influence of methanol co-feeding for a wide range of methanol concentration in the feed at different reaction temperatures. The results reveal that CO conversion and productivity of ethanol and higher alcohol increase linearly with methanol concentration in the feed for a given reaction temperature, while hydrocarbon productivity increases exponentially. Therefore, there is a trade-off between increasing alcohol productivity and the selective conversion of methanol to alcohols. When the concentration of methanol in the feed changes from 0% to 8% mole concentration, ethanol and higher alcohol productivity increase more than two-fold. The addition of methanol has a positive influence in the ethanol selectivity only at low methanol content in the feed. (C) 2015 Elsevier B.V. All rights reserved.
机译:将生物质气化为合成气,然后在混合醇催化剂上将合成气催化转化为生产生物乙醇的替代途径。为了使该方法具有商业吸引力,需要实现催化剂和方法开发的重大改进。已知在混合醇MoS 2催化剂的情况下,通过CO插入机理由甲醇产生乙醇。因此,工业过程的改进可以是再循环反应器中产生的甲醇。本文实验研究了在不同反应温度下,甲醇共进料对进料中甲醇浓度范围较宽的影响。结果表明,在给定的反应温度下,CO转化率以及乙醇和高级醇的产率随进料中甲醇浓度线性增加,而烃类产率则呈指数增长。因此,在提高醇生产率和甲醇选择性转化为醇之间需要权衡。当进料中甲醇的浓度从0%更改为8%摩尔浓度时,乙醇和更高的酒精生产率提高了两倍以上。仅在进料中甲醇含量低时,甲醇的添加才对乙醇选择性产生积极影响。 (C)2015 Elsevier B.V.保留所有权利。

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