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Optimization-based design of dividing wall columns with extended and multiple dividing walls for three- and four-product separations

机译:基于优化的墙壁柱的设计,延伸和多划分墙的三种和四分类分离

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While dividing wall columns can be considered an established technology and success story of distillation process intensification, the application of the technology is still limited in relation to the vast number of existing distillation columns. This can at least to some extent be traced back to potential controllability issues and the complexity of the process design. While the first issue is especially related to internal vapor splits, which require an accurate design and consideration of column hydrodynamics, the latter issue becomes more severe with an increasing number of products and column sections, for which the number of degrees of freedom and design alternatives increase exponentially. While modified design concepts for dividing wall columns that allow for an external control of vapor splits have been proposed, similar to four-product dividing wall columns, there is still a lack of computationally efficient tools for the design and optimization of these energy-efficient thermally coupled distillation processes. The current article presents an optimization-based approach for the design of such complex and integrated distillation processes, enabling a case-specific economic assessment and benchmarking. The application is demonstrated for different case studies, including the separation of an azeotropic quaternary system in a multi-dividing wall column.
机译:在分割墙柱的同时可以被视为蒸馏过程强化的既定技术和成功故事,而该技术的应用仍然有限于大量现有蒸馏塔。这至少可以在某种程度上追溯到潜在的可控性问题和过程设计的复杂性。虽然第一个问题特别是与内部蒸汽分裂有关,但需要准确的设计和考虑列流体动力学,后者随着越来越多的产品和列部分,后一种问题变得更加严重,自由度和设计替代品的数量呈指数增长。虽然已经提出了用于分割允许外部控制蒸汽分裂的壁柱的修改设计概念,类似于四个产品分割墙柱,但仍然缺乏用于设计和优化这些节能热的计算有效工具耦合蒸馏过程。本文提出了一种基于优化的方法,用于设计这种复杂和集成蒸馏过程,实现具体情况特定的经济评估和基准。对不同案例研究证明了应用,包括在多分壁柱中分离共沸季度系统。

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