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Bioconversion of waste cooking oil glycerol from cabbage extract to lactic acid by Rhizopus microsporus

机译:小根霉菌将白菜提取物中的废食用油甘油生物转化为乳酸

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Glycerol from spent oil was processed by transesterification for biodiesel production. Although glycerol contains many types of impurities, it can be used as a C-source for lactic acid production by fungi, such as Rhizopus microsporus . In this study, we found that wild type R. microsporus (LTH23) produced more lactic acid than the mutant strains on cabbage glycerol media (CG media). More lactic acid was produced on CG media than on cabbage extract media (C media) by about two-fold in batch fermentation conditions. In addition, we found that lactic acid production in a fed-batch process was also slightly higher than in a batch process. To study the combined effects of pH, urea, and glycerol waste concentration on lactic acid production, a response surface methodology was used. The optimum pH, urea, and glycerol waste concentrations were pH 6.5, 3.75 g/L, and 17 g/L, respectively. The maximum lactic acid production predicted by this equation model was 4.03 g/L.
机译:通过酯交换反应将废油中的甘油进行处理,以生产生物柴油。尽管甘油含有许多类型的杂质,但它可以用作真菌(如小根霉)生产乳酸的碳源。在这项研究中,我们发现在甘蓝素甘油培养基(CG培养基)上,野生型小孢子菌(LTH23)比突变菌株产生的乳酸更多。在分批发酵条件下,CG培养基产生的乳酸比卷心菜提取物培养基(C培养基)产生的乳酸多两倍。此外,我们发现分批进料过程中的乳酸产量也略高于分批过程中的乳酸产量。为了研究pH,尿素和甘油废料浓度对乳酸生产的综合影响,使用了响应面方法。最适pH,尿素和甘油废物浓度分别为pH 6.5、3.75 g / L和17 g / L。通过该方程模型预测的最大乳酸产量为4.03 g / L。

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