2006 AIChE Annual Meeting
(409d) An Automated Feasibility Evaluation Algorithm for Reactive Distillation
Authors
The automated algorithm for evaluating these criteria requires only reaction and phase equilibrium information. The algorithm finds all of the azeotropes in the system by an isovolatility curve search [5] and determines their dynamic properties [6]. It then applies the algorithm of Rook et al.[7] to find the distillation boundaries and distillation regions. Then, the algorithm calculates which distillation regions the reaction equilibrium manifold lies in and determines if any of the simple column configurations (rectifier, stripper, MVC, continuous single-feed) can produce pure products. If the simple columns are not feasible, then the algorithm will calculate and plot the critical composition region and the regions where upper bounds are greater than lower bounds for various entrainer flow rates. Based on these plots, the user can decide if the system is feasible and what entrainer flow rate is required. Less computation-intensive tests for batch columns can be performed by predicting the still pot trajectory from an arbitrary feed composition under an assumption of constant product composition. This assumption gives the still pot trajectory as the intersection between a linear variation and reaction equilibrium. If residue curves connect every point of the still pot trajectory to pure products (or a heterogenous azeotrope that splits to a product), then the assumption is correct and pure products can be feasibly produced from the given feed composition.
References
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4. Chin J, Choe J, Lee JW. Feasible products in complex batch reactive distillation. AIChE Journal, in press (2006).
5. Westerberg AW, Wahnschafft O. The Synthesis of Distillation-Based Separation Systems. Advances in Chemical Engineering, Volume 23 p64-171 Academic Press Inc, San Diego 1996.
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7. Rooks RE, Julka V, Doherty MF, Malone MF. Structure of Distillation Regions for Multicomponent Azeotropic Mixtures. AIChE Journal 1998; 44: 1382-1391