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通过统计学优化的同步糖化发酵工艺从金诺橘(Citrus reticulata)废物中生产增强的乙醇。

Enhanced ethanol production from Kinnow mandarin (Citrus reticulata) waste via a statistically optimized simultaneous saccharification and fermentation process.

机构信息

Department of Grain Science and Industry, Kansas State University, Manhattan, KS 66506, USA.

出版信息

Bioresour Technol. 2011 Jan;102(2):1593-601. doi: 10.1016/j.biortech.2010.08.111. Epub 2010 Sep 21.

Abstract

Dried, ground, and hydrothermally pretreated Kinnow mandarin (Citrus reticulata) waste was used to produce ethanol via simultaneous saccharification and fermentation (SSF). Central composite design was used to optimize cellulase and pectinase concentrations, temperature, and time for SSF. The D-limonene concentration determined with high-performance liquid chromatography (HPLC) for fresh, dried, and pretreated biomass was 0.76%, 0.32%, and 0.09% (v/w), respectively. Design Expert software suggested that the first-order effect of all four factors and the second-order effect of cellulase and pectinase concentrations were significant for ethanol production. The validation experiment using 6 FPU gds(-1) cellulase and 60 IU gds(-1) pectinase at 37 °C for 12 h in a laboratory batch fermenter resulted in ethanol concentration and productivity of 42 g L(-1) and 3.50 g L(-1) h(-1), respectively. Experiments using optimized parameters resulted in an ethanol concentration similar to that predicted by the model equation and also helped reduce fermentation time.

摘要

干制、粉碎和水热预处理的橘红枳实废弃物被用于通过同步糖化和发酵(SSF)生产乙醇。采用中心复合设计对 SSF 的纤维素酶和果胶酶浓度、温度和时间进行了优化。高效液相色谱法(HPLC)测定新鲜、干燥和预处理生物量中的 D-苎烯浓度分别为 0.76%、0.32%和 0.09%(v/w)。Design Expert 软件表明,对于乙醇生产,所有四个因素的一阶效应和纤维素酶及果胶酶浓度的二阶效应均具有显著意义。在实验室分批发酵罐中,使用 6 FPU gds(-1)纤维素酶和 60 IU gds(-1)果胶酶,在 37°C 下反应 12 h 的验证实验得到了 42 g L(-1)的乙醇浓度和 3.50 g L(-1) h(-1)的产率。使用优化参数进行的实验得到的乙醇浓度与模型方程预测值相似,同时有助于缩短发酵时间。

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