首页> 外文期刊>Cellulose Chemistry and Technology: International Journal for Physics, Chemistry and Technology of Cellulose and Lignin >OPTIMIZATION OF ACID HYDROLYSIS OF PINEAPPLE LEAF RESIDUE AND BIOCONVERSION TO ETHANOL BY SACCHAROMYCES CEREVISIAE
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OPTIMIZATION OF ACID HYDROLYSIS OF PINEAPPLE LEAF RESIDUE AND BIOCONVERSION TO ETHANOL BY SACCHAROMYCES CEREVISIAE

机译:糖酵母葡萄糖葡萄糖酸叶残基酸水解及生物转化对乙醇的优化

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In this study, response surface methodology (RSM) with central composite design (CCD) was employed to optimize the dilute acid hydrolysis of pineapple leaf residue pretreated by milling and drying in an oven at 110 degrees C overnight. The three manipulated variables were sulfuric acid concentration (0.2-5 M), temperature (110-130 degrees C), and hydrolysis time (30-120 min). The maximal 23.33 g/L RSM-predicted glucose yield was obtained at 0.24 M sulfuric acid concentration, 111 degrees C temperature, and 94 min hydrolysis time. A verification experiment indicated a highly reproducible glucose yield of 20.89 g/L (10.5% deviation from model prediction). The glucose resulting under optimal conditions was finally fermented to ethanol by using baker's yeast (Saccharomyces cerevisiae). The fermentation conditions were as follows: 1.5 g yeast per 50 mL substrate incubated at 30 +/- 2 degrees C. The highest ethanol yield of 9.75 g/L (0.47 g/g glucose) at 72 h was over 90% of the theoretical ethanol yield produced from glucose fermentation, which was 10.74 g (0.51 g/g glucose). The ethanol yield achieved appears quite attractive and demonstrates that pineapple leaves have excellent potential as an alternative feedstock for ethanol production.
机译:在该研究中,使用具有中央复合设计(CCD)的响应面方法(RSM)来优化通过研磨和在110℃下在烘箱中磨削和干燥过夜预处理的菠萝叶残留物的稀酸水解。三种操纵变量是硫酸浓度(0.2-5μm),温度(110-130℃)和水解时间(30-120分钟)。最大23.33g / L RSM预测的葡萄糖产率在0.24米硫酸浓度,111℃温度和94分钟水解时间获得。验证实验表明,高度可再现的葡萄糖产率为20.89g / L(从模型预测偏差10.5%)。通过使用面包师的酵母(Saccharomyces Cerevisiae),最终将导致最佳条件下的葡萄糖溶解于乙醇。发酵条件如下:每50ml酸底物为3.5g酵母,在30 +/- 2℃下培养。72小时的最高乙醇产率为9.75克/升(0.47g / g葡萄糖)的含量超过了理论的90%以上由葡萄糖发酵产生的乙醇产率为10.74g(0.51g / g葡萄糖)。所实现的乙醇产量看起来非常有吸引力,并证明菠萝叶具有优异的潜力作为乙醇生产的替代原料。

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