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Process intensification of catalytic liquid-liquid solid processes: Continuous biodiesel production using an immobilized lipase in a centrifugal contactor separator

机译:催化液 - 液固体工艺的过程强化:使用离心式接触器分离器中的固定化脂肪酶的连续生物柴油生产

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Biodiesel or fatty acid methyl ester (FAME) synthesis from sunflower oil and methanol using an immobilized lipase, an example of a liquid-liquid solid reaction, was studied in batch and various continuous reactor set-ups including the use of a centrifugal contactor separator (CCCS). The latter is an example of a highly intensified device, integrating liquid-liquid reactions and subsequent phase separations. An exploratory study in batch was performed to optimize enzyme and buffer concentrations. Close to quantitative biodiesel yields were obtained at 30 degrees C when using 20% (w/w) of enzyme after a batch time of about 250 min. Subsequent continuous biodiesel synthesis was performed in a stirred tank reactor (CSTR) and a CCCS device. In the latter case, the immobilized enzyme was present in the annular, outer zone of the device. Average biodiesel yields in the CSTR and CCCS were similar (72%-mol respectively) when using a weight hourly space velocity (WHSV) of 3.3 and 3.03 h(-1) respectively, at 30 degrees C. Cascade experiments were performed in a CSTR followed by a CCCS with the immobilized enzyme present in both reactors. The cascade was run for 9 h without any operation issues and an average FAME yield of 85%-mol was obtained. The advantage of the use of the cascade compared to a single CSTR is an improved yield combined with an efficient separation of the biodiesel layer and the glycerol. The biodiesel yield was about constant during the run, indicating that enzyme deactivation was negligible. The performance of the various reactor configurations were modelled successfully using standard balances for continuous reactors in combination with a kinetic model derived from the batch experiments. (C) 2017 The Author(s). Published by Elsevier B.V.
机译:使用固定化脂肪酶的生物柴油或脂肪酸甲酯(MADE)从葵花籽油和甲醇中合成液 - 液体固体反应的一个例子,以及各种连续反应器设置,包括使用离心接触器分离器( CCCS)。后者是高强化装置的实例,整合液体 - 液体反应和随后的相分离。进行批次进行探索性研究以优化酶和缓冲浓度。当在约250分钟的分批时间后使用20%(w / w)酶时,在30℃下获得近于定量生物柴油产率。随后的连续生物柴油合成在搅拌釜反应器(CSTR)和CCCS装置中进行。在后一种情况下,固定化酶存在于器件的环形外区域中。当使用分别使用3.3和3.03h(-1)的重量小时空速(WHSV)时,CSTR和CCCs中的平均生物柴油产率分别类似(分别为72%-MOL),在30℃下,在CSTR中进行级联实验其次是用两种反应器中存在的固定化酶的CCC。级联在没有任何操作问题的情况下运行9小时,并且获得了85%-mol的平均名称产量。与单个CSTR相比使用级联的优点是改善的产率与生物柴油层和甘油的有效分离结合。在运行期间,生物柴油产率约为恒定,表明酶失活可忽略不计。使用与批量实验的动力学模型组合使用标准余量成功地建模各种反应器配置的性能。 (c)2017年作者。 elsevier b.v出版。

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