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首页> 外文期刊>Applied biochemistry and biotechnology, Part A. enzyme engineering and biotechnology >A Study of the Effects of Aeration and Agitation on the Properties and Production of Xanthan Gum from Crude Glycerin Derived from Biodiesel Using the Response Surface Methodology
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A Study of the Effects of Aeration and Agitation on the Properties and Production of Xanthan Gum from Crude Glycerin Derived from Biodiesel Using the Response Surface Methodology

机译:响应面法研究曝气和搅拌对生物柴油制甘油粗制黄原胶性质和产量的影响

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The effects of aeration and agitation on the properties and production of xanthan gum from crude glycerin biodiesel (CGB) by Xanthomonas campestris mangiferaeindicae 2103 were investigated and optimized using a response surface methodology. The xanthan gum was produced from CGB in a bioreactor at 28 °C for 120 h. Optimization procedures indicated that 0.97 vvm at 497.76 rpm resulted in a xanthan gum production of 5.59 g L~(?1) and 1.05 vvm at 484.75 rpm maximized the biomass to 3.26 g L~(?1). Moreover, the combination of 1.05 vvm at 499.40 rpm maximized the viscosity of xanthan at 0.5 % (m/v), 25 °C, and 25 s~(?1) (255.40 mPa s). The other responses did not generate predictive models. Low agitation contributed to the increase of xanthan gum production, biomass, viscosity, molecular mass, and the pyruvic acid concentration. Increases in the agitation contributed to the formation of xanthan gum with high mannose concentration. Decreases in the aeration contributed to the xanthan gum production and the formation of biopolymer with high mannose and glucose concentrations. Increases in aeration contributed to increased biomass, viscosity, and formation of xanthan gum with greater resistance to thermal degradation. Overall, aeration and agitation of CGB fermentation significantly influenced the production of xanthan gum and its properties.
机译:使用响应面方法研究并优化了曝气和搅拌对黄原胶生物柴油(CGB)2103粗制甘油生物柴油(CGB)的黄原胶性能和生产的影响。黄原胶是由CGB在生物反应器中于28°C下反应120小时制得的。优化程序表明,在497.76 rpm下0.97 vvm的黄原胶产量为5.59 g L〜(?1),在1.04 vvm上484.75 rpm的产量使生物量最大化,达到3.26 g L〜(?1)。而且,在499.40rpm下1.05vvm的组合使黄原胶在0.5%(m / v),25℃和25s〜(Δ1)(255.40mPa·s)下的粘度最大化。其他响应未生成预测模型。低搅拌有助于增加黄原胶的产量,生物量,粘度,分子量和丙酮酸浓度。搅拌的增加有助于形成高甘露糖浓度的黄原胶。曝气的减少促进了黄原胶的产生以及高甘露糖和葡萄糖浓度的生物聚合物的形成。充气的增加有助于增加生物量,粘度和黄原胶的形成,并具有更高的抗热降解性。总体而言,CGB发酵的通气和搅拌会显着影响黄原胶的生产及其性能。

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