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Optimal design of extractive distillation for acetic acid dehydration with N-methyl acetamide

机译:N-甲基乙酰胺对乙酸脱水萃取蒸馏的优化设计

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摘要

A distinctive strategy for entrainer recycling is proposed in this work for acetic acid (AA) dehydration by extractive distillation by using N methyl acetamide (NMA). The use of standard entrainers such as DMF or DMSO has the main drawback of forming an azeotrope with acetic acid. However, the vapour liquid equilibrium AA - NMA exhibits a tangential pinch point at NMA end composition. The new strategy rises from the thermodynamic analysis of the ternary diagram that which involves no azeotrope. As a result, acetic acid with high purity can be obtained by the recycling of the entrainer with a relaxed constraint in its purity. Optimization studies are discussed by using two approaches: two-step optimization method with Sequential Quadratic Programming (TSOM case) and the multi-objective genetic algorithm. The multi-objective genetic algorithm allowed the computation of the optimal acetic acid dehydration with an impurity of 3% in the recycled entrainer. Significant cost savings are achieved thanks to the optimization of both columns together. Energy consumption is reduced by 12.8% and 56.9% whereas TAC is saved by 28.4% and 56.3% compared with optimal case TSOM (impurity content 1%) and a published ‘Case Ref” (impurity content 0.01%), respectively.
机译:在这项工作中提出了一种独特的夹带剂再循环策略,该方法通过使用N甲基乙酰胺(NMA)进行萃取蒸馏对乙酸(AA)进行脱水。使用标准夹带剂如DMF或DMSO的主要缺点是与乙酸形成共沸物。然而,汽液平衡AA-NMA在NMA末端组成处显示出切向收缩点。新策略源自三元图的热力学分析,其中不涉及共沸物。结果,可以通过对夹带剂进行再循环而获得纯度高的乙酸,其纯度受到严格的限制。通过两种方法讨论了优化研究:采用顺序二次规划的两步优化方法(TSOM情况)和多目标遗传算法。多目标遗传算法可以计算出最佳的乙酸脱水,其中循环夹带物中的杂质为3%。通过同时优化两个色谱柱,可节省大量成本。与最佳情况TSOM(杂质含量为1%)和已发布的“ Case Ref”(杂质含量为0.01%)相比,能耗分别降低了12.8%和56.9%,而TAC分别节省了28.4%和56.3%。

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