Optimizing the separation of xylose/xylan from eucalyptus woodchips in the autohydrolysis process

溶解矿浆 纤维素 牙髓(牙) 化学 制浆造纸工业 溶解 木糖 卡帕数 色谱法 水解 响应面法 木聚糖 半纤维素 硫酸盐法 牛皮纸 有机化学 病理 工程类 发酵 医学
作者
Jianping Ni,Yinchun Liang,Chen Gong,Shujie Fan,Bin Yang,Yu Zhang,Chunzu Cheng,Zhenhua Su,Xiaolu Chen
出处
期刊:Canadian Journal of Chemical Engineering [Wiley]
卷期号:102 (2): 622-632 被引量:1
标识
DOI:10.1002/cjce.25065
摘要

Abstract Effective separation of various components in biomass is critical for biorefinery. Autohydrolysis is a commercialized unit operation to remove hemicelluloses, such as xylan, in producing high‐quality cellulose (the so‐called dissolving pulp) in the pre‐hydrolysis kraft process. In the present study, the autohydrolysis of eucalyptus woodchips was investigated for the purpose of producing dissolving pulps, with a focus on the production of cellulose acetate grade dissolving pulp. First, the effects of liquid‐to‐solid ratio, maximum temperature, and time on hemicelluloses removal were comprehensively studied, and the total xylose saccharides concentration and total xylose saccharides yield were determined as a function of the P factor and log( R o ). The three‐variable Box–Behnken design of the response surface methodology was followed to optimize the autohydrolysis conditions, aiming to achieving the maximum removal of xylan. The as‐obtained optimal conditions were: liquid‐to‐solid ratio of 5.5 mL · g −1 , maximum temperature of 165°C, and time of 120 min, with its P factor of 867 h and log( R o ) of 4.03. Under these conditions, the total xylose saccharides concentration was 16.43 g · L −1 . Furthermore, the autohydrolysis yield was investigated. The results showed that the purity of as‐prepared cellulose substrate as a result of autohydrolysis at a P factor of 867 h (log( R o ) of 4.03) can meet the stringent requirement of cellulose acetate grade dissolving pulp. Furthermore, the pre‐hydrolysis liquor compositions were compared between the typical autohydrolysis conditions for rayon grade dissolving pulp (a P factor of 690 h and log( R o ) of 3.91) and the optimal conditions (a P factor of 867 h and log( R o ) of 4.03).
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