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在共流和逆流液流水热流动预处理中木聚糖水解的动力学建模。

Kinetic modeling of xylan hydrolysis in co- and countercurrent liquid hot water flow-through pretreatments.

机构信息

Thayer School of Engineering at Dartmouth College, 8000 Cummings Hall, Hanover, NH 03755, United States.

出版信息

Bioresour Technol. 2013 Feb;130:117-24. doi: 10.1016/j.biortech.2012.11.109. Epub 2012 Dec 11.

Abstract

A kinetic model for xylan hydrolysis in liquid hot water flow-through pretreatment was developed. The model utilized a declining xylan hydrolysis rate constant with increasing conversion in combination with direct xylooligomer degradation. The model was able to describe experimental results from flow-through pretreatment of corn stover and triticale straw at various pretreatment temperatures, and was applied to predict and compare the performance of xylan hydrolysis in co- and countercurrent flow-through pretreatments. Countercurrent pretreatment resulted in higher concentration of solubilized xylan and 3-6-fold less degradation. Maintaining a temperature gradient along the reactor axis reduced degradation compared to a fixed reactor temperature. Biomass bed shrinking during pretreatment increased the final concentration of solubilized xylan by about 10%. Model predictions were sensitive to the packing density of biomass bed. The model is useful for evaluating biomass flow-through pretreatments and has utility in design of flow-through reactors.

摘要

建立了一种在液热流动预处理中木聚糖水解的动力学模型。该模型利用木聚糖水解速率常数随转化率增加而下降的原理,结合直接木寡糖降解,能够描述不同预处理温度下玉米秸秆和黑麦草秸秆在液流中的预处理实验结果,并应用于预测和比较木聚糖在逆流和并流液流预处理中的水解性能。逆流预处理导致可溶木聚糖浓度更高,降解程度降低 3-6 倍。与固定反应器温度相比,沿反应器轴保持温度梯度可降低降解程度。预处理过程中生物质床的收缩使可溶木聚糖的最终浓度增加了约 10%。模型预测对生物质床的堆积密度敏感。该模型可用于评估生物质液流预处理,并在液流反应器的设计中具有实用价值。

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