Kinetics and thermodynamics of synthesis of palm oil-based trimethylolpropane triester using microwave irradiation

Enhancement of reaction performance utilizing microwave irradiation has drawn so much interest due to its shorter reaction time and low catalyst loading. These advantages are particularly significant from kinetics and thermodynamics perspectives. This study aimed to investigate the kinetics and ther...

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Main Authors: Mohamad Aziz, Nur Atiqah, Abd Hamid, Hamidah, Yunus, Robiah, Abbas, Zulkifly, Omar, Rozita, Rashid, Umer, Muhammad Syam, Azhari
Format: Article
Language:English
Published: Elsevier 2020
Online Access:http://psasir.upm.edu.my/id/eprint/89516/
http://psasir.upm.edu.my/id/eprint/89516/1/MICROWAVE.pdf
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author Mohamad Aziz, Nur Atiqah
Abd Hamid, Hamidah
Yunus, Robiah
Abbas, Zulkifly
Omar, Rozita
Rashid, Umer
Muhammad Syam, Azhari
author_facet Mohamad Aziz, Nur Atiqah
Abd Hamid, Hamidah
Yunus, Robiah
Abbas, Zulkifly
Omar, Rozita
Rashid, Umer
Muhammad Syam, Azhari
author_sort Mohamad Aziz, Nur Atiqah
building UPM Institutional Repository
collection Online Access
description Enhancement of reaction performance utilizing microwave irradiation has drawn so much interest due to its shorter reaction time and low catalyst loading. These advantages are particularly significant from kinetics and thermodynamics perspectives. This study aimed to investigate the kinetics and thermodynamics of microwave-assisted transesterification of palm oil-based methyl ester into biolubricant. The transesterification reaction of palm oil methyl ester (PME) and trimethylolpropane (TMP) was conducted at 110–130 °C for 90 min under vacuum condition. Sodium methoxide was employed as the catalyst at 0.6 wt% of reactants fixed at molar ratio of 4:1 (PME: TMP). The experimental data were fitted with the second-order reversible reaction kinetics mechanisms. The data were solved via Runge-Kutta 4,5 order using MATLAB software. Analysis on the data revealed that the reaction rate constants at temperatures of 110–140 ℃ were in the range of 0.01–0.63 [(w/w)(min)]−1, with standard errors of 0.0026–0.0228 within 99.99% prediction interval. Microwave-assisted reaction obtained 17.0 kcal/mol of activation energy. This method reduced activation energy by 49% as compared to the conventional heating. Activation energy and time-periodic energy assessment showed that the reaction was endothermic. The reaction at 130 °C is the easiest to activate. The positive Gibbs free energy (ΔG > 0) found using Eyring-Polanyi equation indicated that the transesterification was non-spontaneous and endergonic.
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spelling upm-895162021-08-18T01:46:16Z http://psasir.upm.edu.my/id/eprint/89516/ Kinetics and thermodynamics of synthesis of palm oil-based trimethylolpropane triester using microwave irradiation Mohamad Aziz, Nur Atiqah Abd Hamid, Hamidah Yunus, Robiah Abbas, Zulkifly Omar, Rozita Rashid, Umer Muhammad Syam, Azhari Enhancement of reaction performance utilizing microwave irradiation has drawn so much interest due to its shorter reaction time and low catalyst loading. These advantages are particularly significant from kinetics and thermodynamics perspectives. This study aimed to investigate the kinetics and thermodynamics of microwave-assisted transesterification of palm oil-based methyl ester into biolubricant. The transesterification reaction of palm oil methyl ester (PME) and trimethylolpropane (TMP) was conducted at 110–130 °C for 90 min under vacuum condition. Sodium methoxide was employed as the catalyst at 0.6 wt% of reactants fixed at molar ratio of 4:1 (PME: TMP). The experimental data were fitted with the second-order reversible reaction kinetics mechanisms. The data were solved via Runge-Kutta 4,5 order using MATLAB software. Analysis on the data revealed that the reaction rate constants at temperatures of 110–140 ℃ were in the range of 0.01–0.63 [(w/w)(min)]−1, with standard errors of 0.0026–0.0228 within 99.99% prediction interval. Microwave-assisted reaction obtained 17.0 kcal/mol of activation energy. This method reduced activation energy by 49% as compared to the conventional heating. Activation energy and time-periodic energy assessment showed that the reaction was endothermic. The reaction at 130 °C is the easiest to activate. The positive Gibbs free energy (ΔG > 0) found using Eyring-Polanyi equation indicated that the transesterification was non-spontaneous and endergonic. Elsevier 2020 Article PeerReviewed text en http://psasir.upm.edu.my/id/eprint/89516/1/MICROWAVE.pdf Mohamad Aziz, Nur Atiqah and Abd Hamid, Hamidah and Yunus, Robiah and Abbas, Zulkifly and Omar, Rozita and Rashid, Umer and Muhammad Syam, Azhari (2020) Kinetics and thermodynamics of synthesis of palm oil-based trimethylolpropane triester using microwave irradiation. Journal of Saudi Chemical Society, 24 (8). pp. 522-566. ISSN 1319-6103 https://www.sciencedirect.com/science/article/pii/S1319610320300685 10.1016/j.jscs.2020.05.006
spellingShingle Mohamad Aziz, Nur Atiqah
Abd Hamid, Hamidah
Yunus, Robiah
Abbas, Zulkifly
Omar, Rozita
Rashid, Umer
Muhammad Syam, Azhari
Kinetics and thermodynamics of synthesis of palm oil-based trimethylolpropane triester using microwave irradiation
title Kinetics and thermodynamics of synthesis of palm oil-based trimethylolpropane triester using microwave irradiation
title_full Kinetics and thermodynamics of synthesis of palm oil-based trimethylolpropane triester using microwave irradiation
title_fullStr Kinetics and thermodynamics of synthesis of palm oil-based trimethylolpropane triester using microwave irradiation
title_full_unstemmed Kinetics and thermodynamics of synthesis of palm oil-based trimethylolpropane triester using microwave irradiation
title_short Kinetics and thermodynamics of synthesis of palm oil-based trimethylolpropane triester using microwave irradiation
title_sort kinetics and thermodynamics of synthesis of palm oil-based trimethylolpropane triester using microwave irradiation
url http://psasir.upm.edu.my/id/eprint/89516/
http://psasir.upm.edu.my/id/eprint/89516/
http://psasir.upm.edu.my/id/eprint/89516/
http://psasir.upm.edu.my/id/eprint/89516/1/MICROWAVE.pdf