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Multi-objective exergy-based optimization of continuous glycerol ketalization to synthesize solketal as a biodiesel additive in subcritical acetone

机译:基于多目标基于能级的连续甘油缩酮化优化,以在次临界丙酮中合成Solketal作为生物柴油添加剂

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This study was aimed at exergetically investigating and optimizing a continuous reactor applied to valorize glycerol into solketal as a biodiesel additive with subcritical acetone in the presence of Purolite PD206. The effects of reaction temperature (20-100 degrees C), acetone to glycerol molar ratio (15), feed flow rate (0.10.5 mL/min), pressure (1120 bar), and catalyst mass (0.52.5 g) were evaluated on the exergetic performance parameters of the reactor. In order to optimize the operating conditions of the reactor, adaptive neuro-fuzzy inference system (ANFIS) was coupled with non-dominated sorting genetic algorithm-II (NSGA-II). The ANFIS was applied to develop objective functions on the basis of the process parameters. The developed objective functions were then fed into the NSGA-II to find the optimum operating conditions of the process by simultaneously maximizing universal and functional exergetic efficiencies and minimizing normalized exergy destruction. Overall, the process parameters significantly affected the exergetic performance of the reactor. The ANFIS approach successfully modeled the objective functions with a correlation coefficient higher than 0.99. The optimal ketalization conditions of glycerol were: reaction temperature = 40.66 degrees C, acetone to glycerol molar ratio = 4.97, feed flow rate = 0.49 mL/min, pressure = 42.31?bar, and catalyst mass = 0.50 g. These conditions could be applied in pilot- or industrial-scale reactors for converting glycerol into value-added solketal in a resource-efficient, cost-effective, and environmentally-friendly manner.
机译:这项研究的目的是,在Purolite PD206的存在下,对可连续使用的反应器进行研究和优化,该反应器用于将甘油作为生物柴油添加剂与亚临界丙酮一起增值至甘油中。反应温度(20-100摄氏度),丙酮与甘油的摩尔比(15),进料流速(0.10.5 mL / min),压力(1120 bar)和催化剂质量(0.52.5 g)的影响为评估反应堆的高能性能参数。为了优化反应堆的运行条件,将自适应神经模糊推理系统(ANFIS)与非主导排序遗传算法II(NSGA-II)结合使用。 ANFIS用于基于过程参数开发目标功能。然后,将开发的目标函数输入到NSGA-II中,以通过同时最大化通用和功能性能效效率以及最小化标准化的(火用)破坏来找到过程的最佳操作条件。总体而言,工艺参数显着影响反应器的高能性能。 ANFIS方法成功地建立了相关系数高于0.99的目标函数模型。甘油的最佳缩酮化条件为:反应温度= 40.66℃,丙酮与甘油的摩尔比= 4.97,进料流速= 0.49mL / min,压力=42.31Δbar,催化剂质量= 0.50g。这些条件可用于中试规模或工业规模的反应器中,以资源节约,成本有效和环境友好的方式将甘油转化为增值的缩酮。

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