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首页> 外文期刊>Chemical engineering journal >Lowering the pyrolysis temperature of lignocellulosic biomass by H2SO4 loading for enhancing the production of platform chemicals
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Lowering the pyrolysis temperature of lignocellulosic biomass by H2SO4 loading for enhancing the production of platform chemicals

机译:通过H2SO4载荷降低木质纤维素生物质的热解温度,用于增强平台化学品的生产

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摘要

Fast pyrolysis is a promising method for the production of liquid fuels and chemicals from lignocellulosic biomass. However, the catalytic effects of inherent alkali and alkaline earth metals and the high temperature used for the fast pyrolysis of biomass can drastically promote uncontrolled C-C/C-O bond cleavages and poly-condensation reactions, resulting in the formation of considerable amounts of undesired light oxygenated organic compounds, permanent gases and char. Here, we demonstrate that H2SO4 loading can lower the pyrolysis temperature of biomass from 500 to 300 degrees C with higher yield of platform chemicals. The pyrolysis of H2SO4 loaded biomass at 300 degrees C is capable of selectively breaking C-O bonds in polysaccharides and effectively suppressing the formation of light oxygenated organic compounds, permanent gases and char. Approximately 50-60 wt% biomass feedstocks are primarily converted into anhydrosugars (mainly levoglucosan and xylosan) and their dehydrated products (mainly levoglucosenone and furfural). It is inferred that H2SO4 combined with the inherent alkali and alkaline earth metals (AAEM) in raw biomass can simultaneously inhibits the catalytic functions of AAEM and H2SO4 for achieving oriented conversion of hemicellulose and cellulose at low temperature. This study provides a very simple, atom-economical and energy-efficient pyrolytic strategy for enhancing the production of platform chemicals from biomass.
机译:快速热解是从木质纤维素生物质生产液体燃料和化学品的有希望的方法。然而,固有碱和碱土金属的催化作用和用于生物质的快速热解的高温可以大大促进不受控制的CC / CO键裂解和聚缩合反应,导致形成大量不需要的光氧化有机物化合物,永久气体和炭。在此,我们证明H2SO4负载能够以更高的平台化学品的产量从500至300摄氏度降低生物质的热分解温度。在300摄氏度下的H 2 SO 4加载生物质的热解能够选择性地破坏多糖中的C-O键,并有效地抑制光含氧有机化合物,永久气体和炭的形成。大约50-60wt%的生物量原料主要被转化为anhydroozars(主要是左葡葡聚糖和Xylosan)及其脱水产物(主要是左葡聚糖酮和糠醛)。推断,H2SO4与原料生物质中固有的碱和碱土金属(AAEM)结合,可以同时抑制AAEM和H2SO4的催化功能,以实现低温下的半纤维素和纤维素的取向转化。本研究提供了一种非常简单,原子经济和节能的热解策略,用于增强生物质的平台化学品的生产。

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