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Biodiesel production by transesterification in two steps: Kinetic effect or shift in the equilibrium conversion?

机译:生物柴油通过替代酯化的两步生产:动力学效果或均衡转换的变化?

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In continuous biodiesel production plants, practically all technologies carry out the transesterification in two steps, feeding methanol and catalyst in each of them. The glycerine phase is separated after the first one. The explanation normally given to justify this procedure is that the glycerine separation after the first step shifts the equilibrium towards products, thus increasing the conversion. The reacting mixture is a system with partial miscibility, being the compositions of the biodiesel and glycerine phases different depending upon the global composition of methanol, catalyst, soaps, water, etc. The results presented in this work make it possible to conclude that the most important cause of the conversion improvement when performing the reaction in two steps is a change in the catalyst and methanol distribution between the biodiesel and glycerine phases. The separation of the glycerine phase leads to a positive impact on the kinetic of the second reaction step, since it allows that both the catalyst and the methanol concentrate in the biodiesel phase. This is due to the small quantity of glycerine phase present in the system in the second reaction step. Therefore, the higher concentrations of catalyst and methanol in the biodiesel phase significantly increase the rate of transesterification and decrease the mass transfer limitations.
机译:在连续生物柴油生产厂中,实际上所有技术以两个步骤进行酯交换,在它们中的每一个中喂养甲醇和催化剂。甘油相在第一个后分离。通常给予该方法的解释是第一步之后的甘油分离使朝向产品的平衡转变,从而增加转化。反应混合物是具有部分混溶性的系统,是根据全球甲醇,催化剂,肥皂,水等的全球组成不同的生物柴油和甘油相的组成。在这项工作中提出的结果使得最多可以得出结论在两个步骤中进行反应时转化改善的重要原因是生物柴油和甘油相之间的催化剂和甲醇分布的变化。甘油相的分离导致对第二反应步骤的动力学的正面影响,因为它允许催化剂和甲醇浓缩在生物柴油相中。这是由于在第二反应步骤中的系统中存在的少量甘油相。因此,生物柴油相中较高浓度的催化剂和甲醇显着增加了酯交换速率并降低了传质限制​​。

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