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A Gibbs energy-driving force method for the optimal design of non-reactive and reactive distillation columns

机译:用于非反应性和反应蒸馏塔的最佳设计的GIBBS能量驱动力方法

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摘要

A simple Gibbs energy-driving force method for the design of non-reactive and reactive distillation columns has been developed. Based on the binary driving force concept and the equilibrium Gibbs energy computation, a systematic procedure for the design of non-reactive distillation columns (NRDC) and reactive distillation columns (RDC) is proposed. The design method exploits the connection between the driving force values and the equilibrium Gibbs energy to determine the number of stages, the optimal feed location, and the heat required at the top and bottom of the column and the minimum reflux ratio. The final design guarantees an optimal operation since maximum thermodynamic efficiency is achieved. The maximum thermodynamic efficiency criterion is equivalent to the minimum entropy condition required for a stable operation of the distillation columns. The method is applied for the design of two non-reactive systems: a) Benzene-Toluene ideal system and b) Ethanol-Water non-ideal system. A reactive distillation column considering the isomerization of n-butane in the presence of an inert compound is designed. The optimal thermal feed condition obtained through the maximum separation efficiency guarantees that the final designs obtained correspond to the minimum energy requirements for the design target of separation. (C) 2019 Elsevier Ltd. All rights reserved.
机译:已经开发了一种简单的GIBBS能量驱动力方法,用于设计非反应性和反应蒸馏塔。基于二元驱动力概念和平衡GIBBS能量计算,提出了一种用于设计非反应蒸馏塔(NRDC)和反应蒸馏塔(RDC)的系统方法。设计方法利用驱动力值和平衡吉布斯能量之间的连接来确定柱的阶段,最佳馈送位置和柱的顶部和底部所需的热量和最小回流比。最终设计保证了最佳运行,因为实现了最大的热力学效率。最大热力学效率标准等效于蒸馏塔稳定运行所需的最小熵条件。该方法应用于两个非反应性系统的设计:a)苯 - 甲苯理想体系和B)乙醇 - 水非理想系统。设计了考虑在存在惰性化合物存在下正丁烷的异构化的反应性蒸馏塔。通过最大分离效率获得的最佳热进料条件可确保获得的最终设计对应于分离设计目标的最小能量要求。 (c)2019 Elsevier Ltd.保留所有权利。

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