Biodegradation of Sulphide in Biogas by Biofilm on Salak Fruit Seeds: Accuracy of Quasi-steady-state Approximation
This study tried to explore the quantitative description of removal of hydroden sulphide (H2S) by bio-filtration. H2S is degraded by bacteria immobilized on the packing materials of Salak fruit seeds inside a column. Two kinetics models are proposed. In both models, the biofilm formed on the packing...
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EDP Sciences
2018-01-01
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Series: | MATEC Web of Conferences |
Online Access: | https://doi.org/10.1051/matecconf/201815603017 |
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doaj-320f3536618f453093575016ec00e01f2021-04-02T10:50:06ZengEDP SciencesMATEC Web of Conferences2261-236X2018-01-011560301710.1051/matecconf/201815603017matecconf_rsce2018_03017Biodegradation of Sulphide in Biogas by Biofilm on Salak Fruit Seeds: Accuracy of Quasi-steady-state ApproximationLestari Retno A. S.Sediawan Wahyudi B.SartoThis study tried to explore the quantitative description of removal of hydroden sulphide (H2S) by bio-filtration. H2S is degraded by bacteria immobilized on the packing materials of Salak fruit seeds inside a column. Two kinetics models are proposed. In both models, the biofilm formed on the packing material is assumed to be thin, so intra-film gradient of H2S concentration can be neglected. In model 1, material balances of H2S in the bio-film as well as in the flowing gas are set-up. The growth of the bio-film is modelled by Monod’s equation. A set of three simultaneous partial differential equations are obtained. Model 2 is set-up using the same concepts as in model1, but the gas phase is assumed to be quasi-steady-state. This assumption reduces the partial differential equation in model 1 to be an ordinary differential equation which is easier to be solved. The comparisons of the results of model 1 and model 2 can be applied to justify the applications of quasi-steady-state approximation. It turned out that the differences of calculated H2S concentration results are approximately small, around 6 ppm. Hence, it can be concluded that quasi-steady-state approximation in the gas phase is suggested to be applied.https://doi.org/10.1051/matecconf/201815603017 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Lestari Retno A. S. Sediawan Wahyudi B. Sarto |
spellingShingle |
Lestari Retno A. S. Sediawan Wahyudi B. Sarto Biodegradation of Sulphide in Biogas by Biofilm on Salak Fruit Seeds: Accuracy of Quasi-steady-state Approximation MATEC Web of Conferences |
author_facet |
Lestari Retno A. S. Sediawan Wahyudi B. Sarto |
author_sort |
Lestari Retno A. S. |
title |
Biodegradation of Sulphide in Biogas by Biofilm on Salak Fruit Seeds: Accuracy of Quasi-steady-state Approximation |
title_short |
Biodegradation of Sulphide in Biogas by Biofilm on Salak Fruit Seeds: Accuracy of Quasi-steady-state Approximation |
title_full |
Biodegradation of Sulphide in Biogas by Biofilm on Salak Fruit Seeds: Accuracy of Quasi-steady-state Approximation |
title_fullStr |
Biodegradation of Sulphide in Biogas by Biofilm on Salak Fruit Seeds: Accuracy of Quasi-steady-state Approximation |
title_full_unstemmed |
Biodegradation of Sulphide in Biogas by Biofilm on Salak Fruit Seeds: Accuracy of Quasi-steady-state Approximation |
title_sort |
biodegradation of sulphide in biogas by biofilm on salak fruit seeds: accuracy of quasi-steady-state approximation |
publisher |
EDP Sciences |
series |
MATEC Web of Conferences |
issn |
2261-236X |
publishDate |
2018-01-01 |
description |
This study tried to explore the quantitative description of removal of hydroden sulphide (H2S) by bio-filtration. H2S is degraded by bacteria immobilized on the packing materials of Salak fruit seeds inside a column. Two kinetics models are proposed. In both models, the biofilm formed on the packing material is assumed to be thin, so intra-film gradient of H2S concentration can be neglected. In model 1, material balances of H2S in the bio-film as well as in the flowing gas are set-up. The growth of the bio-film is modelled by Monod’s equation. A set of three simultaneous partial differential equations are obtained. Model 2 is set-up using the same concepts as in model1, but the gas phase is assumed to be quasi-steady-state. This assumption reduces the partial differential equation in model 1 to be an ordinary differential equation which is easier to be solved. The comparisons of the results of model 1 and model 2 can be applied to justify the applications of quasi-steady-state approximation. It turned out that the differences of calculated H2S concentration results are approximately small, around 6 ppm. Hence, it can be concluded that quasi-steady-state approximation in the gas phase is suggested to be applied. |
url |
https://doi.org/10.1051/matecconf/201815603017 |
work_keys_str_mv |
AT lestariretnoas biodegradationofsulphideinbiogasbybiofilmonsalakfruitseedsaccuracyofquasisteadystateapproximation AT sediawanwahyudib biodegradationofsulphideinbiogasbybiofilmonsalakfruitseedsaccuracyofquasisteadystateapproximation AT sarto biodegradationofsulphideinbiogasbybiofilmonsalakfruitseedsaccuracyofquasisteadystateapproximation |
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