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Process design of continuous biodiesel production by reactive distillation: comparison between homogeneous and heterogeneous catalysts

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Process design of continuous biodiesel production by reactive distillation: comparison between homogeneous and heterogeneous catalysts. / Boon-anuwat, Natja-nan; Kiatkittipong , Worapon ; Aiouache, Farid et al.
In: Chemical Engineering and Processing: Process Intensification, Vol. 92 , 06.2015, p. 33-44.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Boon-anuwat, N, Kiatkittipong , W, Aiouache, F & Assabumrungrat, S 2015, 'Process design of continuous biodiesel production by reactive distillation: comparison between homogeneous and heterogeneous catalysts', Chemical Engineering and Processing: Process Intensification, vol. 92 , pp. 33-44. https://doi.org/10.1016/j.cep.2015.03.025

APA

Boon-anuwat, N., Kiatkittipong , W., Aiouache, F., & Assabumrungrat, S. (2015). Process design of continuous biodiesel production by reactive distillation: comparison between homogeneous and heterogeneous catalysts. Chemical Engineering and Processing: Process Intensification, 92 , 33-44. https://doi.org/10.1016/j.cep.2015.03.025

Vancouver

Boon-anuwat N, Kiatkittipong W, Aiouache F, Assabumrungrat S. Process design of continuous biodiesel production by reactive distillation: comparison between homogeneous and heterogeneous catalysts. Chemical Engineering and Processing: Process Intensification. 2015 Jun;92 :33-44. Epub 2015 Mar 26. doi: 10.1016/j.cep.2015.03.025

Author

Boon-anuwat, Natja-nan ; Kiatkittipong , Worapon ; Aiouache, Farid et al. / Process design of continuous biodiesel production by reactive distillation : comparison between homogeneous and heterogeneous catalysts. In: Chemical Engineering and Processing: Process Intensification. 2015 ; Vol. 92 . pp. 33-44.

Bibtex

@article{457dab131ca64abab0a5726ce09f00e8,
title = "Process design of continuous biodiesel production by reactive distillation: comparison between homogeneous and heterogeneous catalysts",
abstract = "Biodiesel production by reactive distillation processing is an attractive option to overcome the thermodynamic limitations inherently associated with conventional processes. Process simulations of transesterification of soybean oil and methanol were performed using the commercial package Aspen Plus (R). Four different continuous processes were designed and simulated by using homogeneous alkali-based catalysts and heterogeneous acid-based catalysts in both conventional reactor/distillation and reactive distillation. Effects of important operating and design parameters on performance of each process were analyzed and optimum conditions were determined. The proposed homogeneous alkali-catalyzed RD for biodiesel production did not only eliminate the requirement of separation and purification of the products but also improved the biodiesel yield at reduced methanol in the feed and at lower energy consumption in comparison with the conventional approach of sequential reaction and distillation. It was demonstrated that the heterogeneous magnesium methoxide, instead of homogeneous catalyst, offered significant benefits such as reaching less number of unit operations, reducing energy consumption, and not requiring neutralization, waste water disposal or salt waste processing. The energy requirement of the reactive distillation process catalyzed by magnesium methoxide was about 153 kWh/t biodiesel or 139.2 kWh/t biodiesel with an allocated purity of 98 wt% to glycerol by-product",
author = "Natja-nan Boon-anuwat and Worapon Kiatkittipong and Farid Aiouache and Suttichai Assabumrungrat",
year = "2015",
month = jun,
doi = "10.1016/j.cep.2015.03.025",
language = "English",
volume = "92 ",
pages = "33--44",
journal = "Chemical Engineering and Processing: Process Intensification",
issn = "0255-2701",
publisher = "Elsevier",

}

RIS

TY - JOUR

T1 - Process design of continuous biodiesel production by reactive distillation

T2 - comparison between homogeneous and heterogeneous catalysts

AU - Boon-anuwat, Natja-nan

AU - Kiatkittipong , Worapon

AU - Aiouache, Farid

AU - Assabumrungrat, Suttichai

PY - 2015/6

Y1 - 2015/6

N2 - Biodiesel production by reactive distillation processing is an attractive option to overcome the thermodynamic limitations inherently associated with conventional processes. Process simulations of transesterification of soybean oil and methanol were performed using the commercial package Aspen Plus (R). Four different continuous processes were designed and simulated by using homogeneous alkali-based catalysts and heterogeneous acid-based catalysts in both conventional reactor/distillation and reactive distillation. Effects of important operating and design parameters on performance of each process were analyzed and optimum conditions were determined. The proposed homogeneous alkali-catalyzed RD for biodiesel production did not only eliminate the requirement of separation and purification of the products but also improved the biodiesel yield at reduced methanol in the feed and at lower energy consumption in comparison with the conventional approach of sequential reaction and distillation. It was demonstrated that the heterogeneous magnesium methoxide, instead of homogeneous catalyst, offered significant benefits such as reaching less number of unit operations, reducing energy consumption, and not requiring neutralization, waste water disposal or salt waste processing. The energy requirement of the reactive distillation process catalyzed by magnesium methoxide was about 153 kWh/t biodiesel or 139.2 kWh/t biodiesel with an allocated purity of 98 wt% to glycerol by-product

AB - Biodiesel production by reactive distillation processing is an attractive option to overcome the thermodynamic limitations inherently associated with conventional processes. Process simulations of transesterification of soybean oil and methanol were performed using the commercial package Aspen Plus (R). Four different continuous processes were designed and simulated by using homogeneous alkali-based catalysts and heterogeneous acid-based catalysts in both conventional reactor/distillation and reactive distillation. Effects of important operating and design parameters on performance of each process were analyzed and optimum conditions were determined. The proposed homogeneous alkali-catalyzed RD for biodiesel production did not only eliminate the requirement of separation and purification of the products but also improved the biodiesel yield at reduced methanol in the feed and at lower energy consumption in comparison with the conventional approach of sequential reaction and distillation. It was demonstrated that the heterogeneous magnesium methoxide, instead of homogeneous catalyst, offered significant benefits such as reaching less number of unit operations, reducing energy consumption, and not requiring neutralization, waste water disposal or salt waste processing. The energy requirement of the reactive distillation process catalyzed by magnesium methoxide was about 153 kWh/t biodiesel or 139.2 kWh/t biodiesel with an allocated purity of 98 wt% to glycerol by-product

U2 - 10.1016/j.cep.2015.03.025

DO - 10.1016/j.cep.2015.03.025

M3 - Journal article

VL - 92

SP - 33

EP - 44

JO - Chemical Engineering and Processing: Process Intensification

JF - Chemical Engineering and Processing: Process Intensification

SN - 0255-2701

ER -