Global Optimization of Reactive Distillation Processes Using Bat Algorithm

Reactive distillation (RD) is an important process intensification approach with several advantages. It can improve the reaction selectivity and yield, overcome the thermodynamic restrictions, and reduce the cost/energy. However, the optimal design of RD relies on highly nonlinear and multivariable...

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Main Authors: J. Lu, J. Tang, X. Chen, M. Cui, Z. Fei, Z. Zhang, X. Qiao
Format: Article
Language:English
Published: AIDIC Servizi S.r.l. 2017-10-01
Series:Chemical Engineering Transactions
Online Access:https://www.cetjournal.it/index.php/cet/article/view/264
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spelling doaj-8b511f6f15d147ffbf225121edcaf0e62021-02-17T21:23:04ZengAIDIC Servizi S.r.l.Chemical Engineering Transactions2283-92162017-10-016110.3303/CET1761211Global Optimization of Reactive Distillation Processes Using Bat Algorithm J. LuJ. TangX. ChenM. CuiZ. FeiZ. ZhangX. QiaoReactive distillation (RD) is an important process intensification approach with several advantages. It can improve the reaction selectivity and yield, overcome the thermodynamic restrictions, and reduce the cost/energy. However, the optimal design of RD relies on highly nonlinear and multivariable optimization including continuous and integer design variables. The objective function is generally non-convex with several constraints. For this problem, the conventional derivative-based optimization algorithms are faced with convergence problems and fail to guarantee the global optimal solution. Stochastic optimization algorithms appear to be a better alternative for the optimal design of RD because of the high robustness and efficiency. Bat algorithm (BA), which combines advantages of other existing algorithms, is a potential stochastic optimization algorithm. In this work, the BA was used to optimize the RD for the production of methyl acetate (MeAc). The link between Matlab and Aspen Plus was also created to ensure that each solution was provided from rigorous simulations. The total annual cost (TAC) was set as the objective function. Product purity constraints were achieved through Aspen plus instead of algorithms to simplify the process. BA can find the global optimal solution within less computation time than other stochastic algorithms or sequential optimization. https://www.cetjournal.it/index.php/cet/article/view/264
collection DOAJ
language English
format Article
sources DOAJ
author J. Lu
J. Tang
X. Chen
M. Cui
Z. Fei
Z. Zhang
X. Qiao
spellingShingle J. Lu
J. Tang
X. Chen
M. Cui
Z. Fei
Z. Zhang
X. Qiao
Global Optimization of Reactive Distillation Processes Using Bat Algorithm
Chemical Engineering Transactions
author_facet J. Lu
J. Tang
X. Chen
M. Cui
Z. Fei
Z. Zhang
X. Qiao
author_sort J. Lu
title Global Optimization of Reactive Distillation Processes Using Bat Algorithm
title_short Global Optimization of Reactive Distillation Processes Using Bat Algorithm
title_full Global Optimization of Reactive Distillation Processes Using Bat Algorithm
title_fullStr Global Optimization of Reactive Distillation Processes Using Bat Algorithm
title_full_unstemmed Global Optimization of Reactive Distillation Processes Using Bat Algorithm
title_sort global optimization of reactive distillation processes using bat algorithm
publisher AIDIC Servizi S.r.l.
series Chemical Engineering Transactions
issn 2283-9216
publishDate 2017-10-01
description Reactive distillation (RD) is an important process intensification approach with several advantages. It can improve the reaction selectivity and yield, overcome the thermodynamic restrictions, and reduce the cost/energy. However, the optimal design of RD relies on highly nonlinear and multivariable optimization including continuous and integer design variables. The objective function is generally non-convex with several constraints. For this problem, the conventional derivative-based optimization algorithms are faced with convergence problems and fail to guarantee the global optimal solution. Stochastic optimization algorithms appear to be a better alternative for the optimal design of RD because of the high robustness and efficiency. Bat algorithm (BA), which combines advantages of other existing algorithms, is a potential stochastic optimization algorithm. In this work, the BA was used to optimize the RD for the production of methyl acetate (MeAc). The link between Matlab and Aspen Plus was also created to ensure that each solution was provided from rigorous simulations. The total annual cost (TAC) was set as the objective function. Product purity constraints were achieved through Aspen plus instead of algorithms to simplify the process. BA can find the global optimal solution within less computation time than other stochastic algorithms or sequential optimization.
url https://www.cetjournal.it/index.php/cet/article/view/264
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AT jtang globaloptimizationofreactivedistillationprocessesusingbatalgorithm
AT xchen globaloptimizationofreactivedistillationprocessesusingbatalgorithm
AT mcui globaloptimizationofreactivedistillationprocessesusingbatalgorithm
AT zfei globaloptimizationofreactivedistillationprocessesusingbatalgorithm
AT zzhang globaloptimizationofreactivedistillationprocessesusingbatalgorithm
AT xqiao globaloptimizationofreactivedistillationprocessesusingbatalgorithm
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