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首页> 外文期刊>Energy Sources >Optimization of batch Novozym435-catalyzed transesterification of waste cooking oil with methanol for biodiesel production in a solvent-free medium
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Optimization of batch Novozym435-catalyzed transesterification of waste cooking oil with methanol for biodiesel production in a solvent-free medium

机译:在无溶剂介质中优化Novozym435435对废食用油与甲醇的间歇式酯交换反应以生产生物柴油

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摘要

In this study, response surface methodology based on face center composite - 1/2 factorial fraction design (FCCD) of experiments was employed to optimize the batch transesterification process of waste cooking oil as one of the most abundant and readily available domestic wastes with methanol using immobilized Candida antarctica lipase (Novozym435) to maximize the production of high-purity biodiesel. Statistically significant second-order quadratic model equations (p < 0.0001) were elucidated through multiple regression analysis to describe the interrelationships between response of interest (biodiesel yield wt% and % conversion, i.e. the transesterification efficiency) and five independent variables (methanol:oil molar ratio, enzyme concentration wt%, reaction temperature degrees C, reaction time h, and mixing rate rpm). The statistical significance of the effect of these variables (factors) and their interactions on the transesterification efficiency was evaluated and the validity of the predicted models was confirmed. The optimum operating conditions were found to be: 3.63:1 M:O, 8.94 wt% Novozym435, 45.23 degrees C, 2.76 h, and 535.84 rpm. This produced 97 wt% biodiesel yield with % conversion of approximate to 91.79%. An overall acceptable agreement was achieved between the produced biodiesel fuel properties at the aforementioned optimal operating conditions and the Egyptian petrodiesel and international biodiesel standards.
机译:在这项研究中,采用基于面心复合材料-1/2因子分数设计(FCCD)的响应面方法,优化了废食用油的间歇式酯交换工艺,该废食用油是使用甲醇处理的最丰富,最容易获得的生活垃圾之一。固定化南极假丝酵母脂肪酶(Novozym435),以最大程度地生产高纯度生物柴油。通过多元回归分析阐明具有统计意义的二阶二次模型方程(p <0.0001),以描述目标响应(生物柴油收率wt%和转化率,即酯交换效率)与五个独立变量(甲醇:油摩尔比)之间的相互关系。比例,酶浓度wt%,反应温度C,反应时间h和混合速率rpm)。评估了这些变量(因子)及其相互作用对酯交换效率的影响的统计学意义,并确认了预测模型的有效性。发现最佳操作条件为:3.63:1 M:O,8.94 wt%Novozym435、45.23摄氏度,2.76 h和535.84 rpm。这产生了97重量%的生物柴油产率,转化率约为91.79%。在上述最佳运行条件下生产的生物柴油燃料特性与埃及石油柴油和国际生物柴油标准之间达成了总体可接受的协议。

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