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Multi-objective optimization of transesterification in biodiesel production catalyzed by immobilized lipase

机译:固定化脂肪酶催化的生物柴油生产中酯交换的多目标优化

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In order to comply with criteria of green energy concepts and sustainability, a multi-objective analysis was performed for the transesterification of waste cooking oil (WCO) using immobilized lipase. Response surface methodology and artificial neural networks, followed by multiple response optimization through a desirability function approach were applied to individually and simultaneously evaluate the fatty acid methyl esters (FAME) content and the exergy efficiency. Reaction time and concentrations of methanol, immobilized lipase and water were considered as the design variables in maximizing FAME content and exergy efficiency. The maximum individual desirability of FAME content was predicted to be 95.7% corresponding to a methanol to WCO molar ratio of 6.7, catalyst concentration of 45%, water content of 9% and reaction time of 25 h. However, based on the simultaneously optimization of both the FAME content and the exergy efficiency, the maximum overall desirability was found at a methanol to WCO molar ratio of 6.7, catalyst concentration of 35%, water content of 12% and reaction time of 20 h to achieve FAME content of 88.6% and exergy efficiency of 80.1%, respectively. (c) 2016 Society of Chemical Industry and John Wiley & Sons, Ltd
机译:为了符合绿色能源概念和可持续性的标准,使用固定化脂肪酶对废物烹饪油(WCO)的酯交换进行多目标分析。响应面方法和人工神经网络,随后通过期望函数方法进行多重反应优化,以单独地应用,同时评估脂肪酸甲酯(MAME)含量和漏洞效率。甲醇,固定化脂肪酶和水的反应时间和浓度被认为是最大化的名称含量和漏洞效率方面的设计变量。最大的含量含量的可取性预计为对应于甲醇的95.7%,与Wo摩尔比为6.7,催化剂浓度为45%,水含量为9%,反应时间为25小时。然而,基于同时优化的名称含量和高级效率,在甲醇至WCO摩尔比为6.7,催化剂浓度为35%,水含量为12%的含水量和20小时的反应时间的最大总体期望。达到88.6%的名称含量,高度效率为80.1%。 (c)2016化学工业协会和约翰瓦里和儿子有限公司

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