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Steady State Simulation of Extractive Distillation System Using Aspen Plus

机译:使用Aspen Plus进行萃取精馏系统的稳态模拟

摘要

In this project work, we report Aspen-plus simulation results of an azeotropic system viz. isopropanol-water which forms a minimum boiling azeotrope. Because of its large scale industrial application, separation of isopropanol-water mixture using the distillation process gained prominence. In this work, two routes were followed leading to the simulation. The first involved more conventional extractive distillation mechanism where Dimethyl sulfoxide (DMSO) was used as an entrainer. A percentage purity of 99.9% was achieved w.r.t isopropanol in the distillate or top product. However, a significant percentage of DMSO remained in the bottom product. Since the recovery of DMSO was critical, another auxiliary column was configured with the main scheme and a recovery of more than 99% was achieved as the bottom product from the second column. Since this process involved two distillation columns, a relatively more contemporary and modern distillation mechanism was resorted to viz. divided wall distillation process. Improvisations were made in the flow sheet to mimic divided wall distillation mechanism as Aspen-plus don’t have such specific simulator. The results were comparable to what was achieved in extractive distillation process.
机译:在本项目工作中,我们报告了共沸体系的Aspen-plus模拟结果。异丙醇-水,形成最低沸点的共沸物。由于其大规模的工业应用,使用蒸馏方法分离异丙醇-水混合物获得了极大的关注。在这项工作中,遵循两条路线进行了仿真。首先涉及更常规的萃取蒸馏机理,其中将二甲基亚砜(DMSO)用作夹带剂。在馏出液或顶部产物中,异丙醇的相对纯度为99.9%。但是,大部分DMSO保留在底部产品中。由于DMSO的回收至关重要,因此使用主方案配置了另一个辅助塔,并且从第二个塔的塔底产物获得了99%以上的回收率。由于此过程涉及两个蒸馏塔,因此诉诸了一种相对更现代和现代的蒸馏机制。分壁蒸馏工艺。由于Aspen-plus没有这种特定的模拟器,因此在流程图中进行了改进以模仿分隔壁蒸馏机制。结果与萃取蒸馏过程中获得的结果相当。

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    Bala Pritam Kumar;

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  • 年度 2015
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