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Humin based by-products from biomass processing as a potential carbonaceous source for synthesis gas production

机译:来自生物质加工的胡敏副产品可作为合成气生产的潜在碳源

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Lignocellulosic biomass is addressed as potential sustainable feedstock for green fuels and chemicals. (Hemi) cellulose is the largest constituent of the material. Conversion of these polysaccharides to biobased platform chemicals is important in green chemical/fuel production and biorefinery. Hydroxymethyl furfural, furfural and levulinic acid are substantial building blocks from (poly) saccharides. Synthesis of these molecules involves acid catalysed hydrolysis/dehydration reactions which leads large formation of insoluble by-products, called humins. Humin obtained from dehydration of glucose is used in this study. Fractionisation of humin was investigated using various solvents (e.g., acetone, H2O, and NaOH 1%). Characterisation of humin using various techniques including ATR-IR, HR-SEM, solid state NMR, elemental analysis, Raman spectroscopy, pyrolysis, etc. confirms its furan rich structure with aliphatic oxygenate linkages. The influence of thermal treatment on humin was investigated. Humin undergoes a lot of changes both in morphology and structure. Humin loses ca. 45 wt% when preheated to 700 degrees C (prior to the gasification temperature) and contains above 92 wt% C in mainly aromatic/graphitic structures. Valorisation of humin via dry reforming was studied. Non-catalytic dry reforming of humin is very difficu however, alkali catalysts (e.g. Na2CO3) can enhance the reaction rate tremendously.
机译:木质纤维素生物质被认为是绿色燃料和化学品的潜在可持续原料。 (半)纤维素是材料的最大成分。这些多糖向生物基平台化学品的转化在绿色化学品/燃料生产和生物炼制中很重要。羟甲基糠醛,糠醛和乙酰丙酸是(多)糖类的重要组成部分。这些分子的合成涉及酸催化的水解/脱水反应,这导致大量形成不溶性副产物,称为腐殖质。通过葡萄糖脱水获得的腐殖质被用于这项研究中。使用多种溶剂(例如丙酮,H2O和1%NaOH)研究了腐殖质的分级分离。使用包括ATR-IR,HR-SEM,固态NMR,元素分析,拉曼光谱,热解等在内的多种技术对腐殖质进行表征,证实了其富含脂肪族氧合键的呋喃结构。研究了热处理对人体的影响。腐殖质在形态和结构上都发生了许多变化。胡敏输掉约。预热至700摄氏度(气化温度之前)时为45 wt%,主要是芳香族/石墨结构中的含量超过92 wt%。研究了通过干重整使人红素变价。腐殖质的非催化干重整非常困难。但是,碱催化剂(例如Na2CO3)可以大大提高反应速度。

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