Dynamic Simulation of a Reactive Distillation Process for n-Butyl Acetate Production Using CHEMCAD

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The dynamic simulation of a reactive distillation process developed with the aid of CHEMCAD for the production of n-butyl acetate has been carried out in this research work. Originally, the by-product of the process was water. The developed model of the system was first simulated for steady state using a reflux ratio of 3 and a reboiler duty of 1.4 kW in order to have initial values for the mole fractions of the components involved. The model was converted to a dynamic type by activating the “Dynamics” in the “Convergence” tab of the “Run” menu of CHEMCAD. The dynamic model of the system was run using different (positive and negative) step changes applied to the input variables, which were reflux ratio and reboiler duty, of the process. The results obtained from the steady-state simulation showed that only n-butyl acetate and unconverted acetic acid were existing in the reboiler section of the column initially. The dynamic simulation of the process showed that the system was a stable one because it could get settled after some running time of its dynamic model for all the step changes in the two input variables considered. It was also discovered from the simulations carried out that the dynamic responses of the system to negative step changes in reflux ratio were smoother than those obtained when positive step changes were applied to the same input variable. Moreover, the applications of negative step changes to the reboiler duty resulted in decreases in the mole fractions of n-butyl acetate present in the bottom section of the column while the applications of positive changes to the same reboiler duty gave rise to increases in the mole fraction values of the desired product that was collected through the reboiler section of the column. It was discovered from the results obtained that the higher the reboiler duty of the system that was applied in the production of n-butyl acetate from the esterification reaction involving acetic acid and n-butanol, the faster the system was approaching its dynamic steady state.

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154-166

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May 2017

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© 2017 Trans Tech Publications Ltd. All Rights Reserved

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[1] J. He, B. Xu, W. Zhang, C. Zhou, and X. Chen, Experimental study and process simulation of n-butyl acetate produced by transesterification in a catalytic distillation column, Chemical Engineering and Processing, 49 (2010) 132-137.

DOI: 10.1016/j.cep.2009.12.004

Google Scholar

[2] J. Hanika, J. Kolena, and Q. Smejkal, Butylacetate via reactive distillation - modelling and experiment. Chemical Engineering Science, 54 (1999) 5205-5209.

DOI: 10.1016/s0009-2509(99)00241-9

Google Scholar

[3] S. Steinigeweg, and J. Gmehling, n-Butyl acetate synthesis via reactive distillation: thermodynamic aspects, reaction kinetics, pilot-plant experiments, and simulation studies, Industrial & Engineering Chemistry Research. 41 (2002) 5483-5490.

DOI: 10.1021/ie020179h

Google Scholar

[4] V.H. Agreda, L. R. Partin, and W.H. Heise, High purity methyl acetate via reactive distillation, Chemical Engineering Progress, 86(2) (1990) 40-46.

Google Scholar

[5] D. Barbosa, and M.F. Doherty, The simple distillation of homogeneous reactive mixtures, Chemical Engineering Science, 43 (1988) 541-550.

DOI: 10.1016/0009-2509(88)87015-5

Google Scholar

[6] B. Bessling, G. Schembecker, and K.H. Simmrock, Design of processes with reactive distillation line diagrams, Industrial and Engineering Chemistry Research, 36(8) (1997) 3032-3042.

DOI: 10.1021/ie960727p

Google Scholar

[7] B. Bessling, J.M. Loning, A. Ohligschläger, G. Schembecker and K. Sundmacher, Investigations on the synthesis of methyl acetate in a heterogeneous reactive distillation process, Chemical Engineering Technology, 21 (1998) 393-400.

DOI: 10.1002/(sici)1521-4125(199805)21:5<393::aid-ceat393>3.0.co;2-9

Google Scholar

[8] A. Giwa, Steady-state modeling of n-butyl acetate transesterification process using Aspen Plus: conventional versus integrated, ARPN Journal of Engineering and Applied Sciences, 7 (2012) 1555-1564.

Google Scholar

[9] A. Giwa, Methyl acetate reactive distillation process modeling, simulation and optimization using Aspen Plus. ARPN Journal of Engineering and Applied Sciences, 8 (2013) 386-392.

Google Scholar

[10] S.O. Giwa, A. Giwa, and H. Hapoglu, Investigating the effects of some parameters on hydrogen sulphide stripping column using Aspen HYSYS, ARPN Journal of Engineering and Applied Sciences, 8 (2013) 338-347.

Google Scholar

[11] A. Giwa, S.O. Giwa, and H. Hapoglu, Adaptive Neuro-Fuzzy Inference Systems (ANFIS) modeling of reactive distillation process, ARPN Journal of Engineering and Applied Sciences, 8 (2013) 473-479.

Google Scholar

[12] A. Giwa, S.O. Giwa, and A.A. Adeyi, Dynamics and servo control of biodiesel purity from a reactive distillation process, International Journal of Scientific & Engineering Research, 6 (2015) 146-156.

Google Scholar

[13] A. Giwa, A. Bello, and S.O. Giwa, Performance analyses of fatty acids in reactive distillation process for biodiesel production, International Journal of Scientific & Engineering Research, 5 (2014) 529-540.

Google Scholar

[14] A. Giwa, A. Bello, and S.O. Giwa, Artificial neural network modeling of a reactive distillation process for biodiesel production, International Journal of Scientific & Engineering Research, 6 (2015) 1175- 1191.

Google Scholar

[15] A. Giwa, and S. Karacan, Simulation and optimization of ethyl acetate reactive packed distillation process using Aspen Hysys, The Online Journal of Science and Technology, 2 (2012) 57-63.

Google Scholar

[16] A. Giwa, and S. Karacan, Nonlinear black-box modeling of a reactive distillation process, International Journal of Engineering Research & Technology, 1 (2012) 548-557.

Google Scholar

[17] A. Giwa, and S. Karacan, Decoupling Control of a reactive distillation process using Tyreus-Luyben Technique, ARPN Journal of Engineering and Applied Sciences, 7 (2012) 1263-1272.

Google Scholar

[18] A. Giwa, and S.O. Giwa, Isopropyl myristate production process optimization using response surface methodology and MATLAB, International Journal of Engineering Research & Technology, 2 (2013) 853-862.

Google Scholar

[19] A. Giwa, and S.O. Giwa, Estimating the optimum operating parameters of olefin metathesis reactive distillation process, ARPN Journal of Engineering and Applied Sciences, 8 (2013) 614-624.

Google Scholar

[20] A. Giwa, S.O. Giwa, İ. Bayram, and S. Karacan, Simulations and economic analyses of ethyl acetate productions by conventional and reactive distillation processes using Aspen Plus, International Journal of Engineering Research & Technology, 2 (2013).

Google Scholar

[21] A. Giwa, Solving the dynamic models of reactive packed distillation process using difference formula approaches, ARPN Journal of Engineering and Applied Sciences, 9 (2014) 98-108.

Google Scholar

[22] A. Giwa, and S.O. Giwa, Modelling and simulation of a reactive distillation process for fuel additive production, Journal of Environmental Science, Computer Science and Engineering & Technology, Section C: Engineering & Technology, 5 (2016).

Google Scholar

[23] A. Giwa, and S. Karacan, Modeling and simulation of a reactive packed distillation column using delayed neural networks, Chaotic Modeling and Simulation, 2 (2012) 101-108.

Google Scholar

[24] A. Giwa, and S.O. Giwa, Layer-recurrent neural network modelling of reactive distillation process, Chaotic Modeling and Simulation, 2 (2013) 647-656.

Google Scholar

[25] A. Giwa, and S. Karacan, Development of dynamic models for a reactive packed distillation column, International Journal of Engineering, 6 (2012) 118-128.

Google Scholar

[26] R.C. Anene, and A. Giwa, Modelling, simulation and sensitivity analysis of a fatty acid methyl ester reactive distillation process using aspen plus, International Journal of Engineering Research in Africa, 27 (2016) 36-50.

DOI: 10.4028/www.scientific.net/jera.27.36

Google Scholar

[27] S.O. Giwa, A.A. Adeyi, and A. Giwa, Application of model predictive control to renewable energy development via reactive distillation process, International Journal of Engineering Research in Africa, 27 (2016) 95-110.

DOI: 10.4028/www.scientific.net/jera.27.95

Google Scholar

[28] B.A. Ogunnaike, and W.H. Ray, Process Dynamics, Modeling, and Control, Oxford University Press, (1994) 1269 p., New York.

Google Scholar

[29] S. Steinigeweg, and J. Gmehling Transesterification processes by combination of reactive distillation and pervaporation, Chemical Engineering and Processing 43 (2004) 447–456.

DOI: 10.1016/s0255-2701(03)00129-6

Google Scholar

[30] H. Tian, Z. Huang, T. Qiu, X. Wang and Y. Wu, Reactive distillation for producing n-butyl acetate: experiment and simulation, Chinese Journal of Chemical Engineering, 20(5) (2012) 980-987.

DOI: 10.1016/s1004-9541(12)60426-1

Google Scholar

[31] A. Giwa, and S.O. Giwa, Optimization of transesterification reaction integrated distillation column using Design Expert and Excel Solver, International Journal of Advanced Scientific and Technical Research, 2(6) (2012) 423-435.

Google Scholar

[32] Chemstations, CHEMCAD 6. 5. 7. 8139. Chemstations Inc, (2015), Texas.

Google Scholar