Thermodynamic equilibrium study of altering methane partial oxidation for fischer-tropsch synfuel production

Thermodynamic equilibrium assessment for methane partial oxidation (MPO) and concomitant parallel side reactions was conducted by employing the Gibbs free energy minimization approach in order to study the tuning of syngas H2/CO ratio appropriate for downstream Fischer–Tropsch synthesis (FTS). The i...

Full description

Saved in:
Bibliographic Details
Main Authors: Siang, T. J., Jalil, A. A., Abdulrasheed, A. A., Hambali, H. U., Nabgan, W.
Format: Article
Published: Elsevier Ltd. 2020
Subjects:
Online Access:http://eprints.utm.my/id/eprint/86669/
https://dx.doi.org/10.1016/j.energy.2020.117394
Tags: Add Tag
No Tags, Be the first to tag this record!
id my.utm.86669
record_format eprints
spelling my.utm.866692020-09-30T09:01:46Z http://eprints.utm.my/id/eprint/86669/ Thermodynamic equilibrium study of altering methane partial oxidation for fischer-tropsch synfuel production Siang, T. J. Jalil, A. A. Abdulrasheed, A. A. Hambali, H. U. Nabgan, W. TP Chemical technology Thermodynamic equilibrium assessment for methane partial oxidation (MPO) and concomitant parallel side reactions was conducted by employing the Gibbs free energy minimization approach in order to study the tuning of syngas H2/CO ratio appropriate for downstream Fischer–Tropsch synthesis (FTS). The influences of operating conditions including CH4/O2 ratio (5:1–1:2), pressure (1–50 bar) and temperature (200–1000 °C) on MPO performance in terms of reactant equilibrium conversion, product and side product yields and H2/CO ratio were scrutinized. The results reveal that indirect combustion-reforming pathway was possibly the main contributory factor to the syngas yield during MPO. The lower CH4/O2 ratios possessed a positive effect on syngas yield. Carbon formation was favored at low temperatures but it could be suppressed as CH4/O2 ratios reduced at elevated temperatures. Although a rising pressure was disadvantageous for MPO performance but the quantity of carbon deposit was hindered since these processes involved gas volume expansion. A temperature at least of 800 °C and CH4/O2 ratio of 2:1 or 3:2 are the preferable operating conditions for MPO reaction to achieve the carbon-free region meanwhile maximizing the syngas yield with H2/CO ratio of 2 that appropriate for FTS process. Elsevier Ltd. 2020-05 Article PeerReviewed Siang, T. J. and Jalil, A. A. and Abdulrasheed, A. A. and Hambali, H. U. and Nabgan, W. (2020) Thermodynamic equilibrium study of altering methane partial oxidation for fischer-tropsch synfuel production. Energy, 198 . ISSN 0360-5442 https://dx.doi.org/10.1016/j.energy.2020.117394 DOI:10.1016/j.energy.2020.117394
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TP Chemical technology
spellingShingle TP Chemical technology
Siang, T. J.
Jalil, A. A.
Abdulrasheed, A. A.
Hambali, H. U.
Nabgan, W.
Thermodynamic equilibrium study of altering methane partial oxidation for fischer-tropsch synfuel production
description Thermodynamic equilibrium assessment for methane partial oxidation (MPO) and concomitant parallel side reactions was conducted by employing the Gibbs free energy minimization approach in order to study the tuning of syngas H2/CO ratio appropriate for downstream Fischer–Tropsch synthesis (FTS). The influences of operating conditions including CH4/O2 ratio (5:1–1:2), pressure (1–50 bar) and temperature (200–1000 °C) on MPO performance in terms of reactant equilibrium conversion, product and side product yields and H2/CO ratio were scrutinized. The results reveal that indirect combustion-reforming pathway was possibly the main contributory factor to the syngas yield during MPO. The lower CH4/O2 ratios possessed a positive effect on syngas yield. Carbon formation was favored at low temperatures but it could be suppressed as CH4/O2 ratios reduced at elevated temperatures. Although a rising pressure was disadvantageous for MPO performance but the quantity of carbon deposit was hindered since these processes involved gas volume expansion. A temperature at least of 800 °C and CH4/O2 ratio of 2:1 or 3:2 are the preferable operating conditions for MPO reaction to achieve the carbon-free region meanwhile maximizing the syngas yield with H2/CO ratio of 2 that appropriate for FTS process.
format Article
author Siang, T. J.
Jalil, A. A.
Abdulrasheed, A. A.
Hambali, H. U.
Nabgan, W.
author_facet Siang, T. J.
Jalil, A. A.
Abdulrasheed, A. A.
Hambali, H. U.
Nabgan, W.
author_sort Siang, T. J.
title Thermodynamic equilibrium study of altering methane partial oxidation for fischer-tropsch synfuel production
title_short Thermodynamic equilibrium study of altering methane partial oxidation for fischer-tropsch synfuel production
title_full Thermodynamic equilibrium study of altering methane partial oxidation for fischer-tropsch synfuel production
title_fullStr Thermodynamic equilibrium study of altering methane partial oxidation for fischer-tropsch synfuel production
title_full_unstemmed Thermodynamic equilibrium study of altering methane partial oxidation for fischer-tropsch synfuel production
title_sort thermodynamic equilibrium study of altering methane partial oxidation for fischer-tropsch synfuel production
publisher Elsevier Ltd.
publishDate 2020
url http://eprints.utm.my/id/eprint/86669/
https://dx.doi.org/10.1016/j.energy.2020.117394
_version_ 1680321079134912512
score 13.211869