Hydrate growth kinetics: A study on the relation between energy release rates and gas consumption rates during methane hydrate formation and growth.

Master's thesis in Industrial economics The relation between mass transfer, energy transfer and growth rates has been examined during methane hydrate formation in stirred cell reactors. This was done to improve understanding rate determining factors during hydrate formation and growth. In stirr...

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Main Author: Nordbø, Therese
Format: Master Thesis
Language:English
Published: University of Stavanger, Norway 2013
Subjects:
Online Access:http://hdl.handle.net/11250/182230
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spelling ftunivstavanger:oai:uis.brage.unit.no:11250/182230 2023-06-11T04:14:01+02:00 Hydrate growth kinetics: A study on the relation between energy release rates and gas consumption rates during methane hydrate formation and growth. Nordbø, Therese 2013 application/pdf http://hdl.handle.net/11250/182230 eng eng University of Stavanger, Norway Masteroppgave/UIS-TN-IØRP/2013; http://hdl.handle.net/11250/182230 industriell økonomi methane hydrates growth VDP::Technology: 500 VDP::Social science: 200::Economics: 210 Master thesis 2013 ftunivstavanger 2023-05-29T16:03:24Z Master's thesis in Industrial economics The relation between mass transfer, energy transfer and growth rates has been examined during methane hydrate formation in stirred cell reactors. This was done to improve understanding rate determining factors during hydrate formation and growth. In stirred cell reactor heat transfer and heat transfer rates will be functions of stirring rate and through boundary layers at the wall. The heat transfer rate is also function of temperature gradients. Experiments have thus been conducted at three different stirring rates and temperatures levels to evaluate the effect of stirring and temperature gradients on heat transfer. Experiments have been conducted using two different cell setups, a smaller cell having a volume of 141.4 ml and with inner diameter of 60 mm, outer diameter of 90 mm and a height of 50 mm, and a larger cell having a volume of 318.1 ml and with an inner diameter of 90 mm, outer diameter of 120 mm and a height of 50 mm. The cell systems were connected to a high pressure methane reservoir via a pressure reduction valve and a flow meter and operated in an open mode to maintain constant pressure throughout the experiments. In the smaller cell hydrate formation and growth was studied at three different experimental temperatures of 6, 7 and 8 °C and at stirring rates of 500, 700 and 1200 rpm using either 50 ml or 100 ml distilled water (DW). In the larger cell experiments were conducted at 8 °C and 700 rpm to examine effects of cell size and radial heat flow. The volume of water was either 112.5 ml or 225 ml for the large cell experiments. Hydrate growth rates were estimated analyzing the amount of gas passing through the flow-meter per time unit and the amount of heat released (exothermic reaction) through temperature measurements. The analysis was terminated when heat release was observed to decay and prior to complete conversion of water into hydrates to reduce effects of increasing hydrate mass on heat transfer. The growth rate was initially relatively fast and ... Master Thesis Methane hydrate University of Stavanger: UiS Brage
institution Open Polar
collection University of Stavanger: UiS Brage
op_collection_id ftunivstavanger
language English
topic industriell økonomi
methane hydrates
growth
VDP::Technology: 500
VDP::Social science: 200::Economics: 210
spellingShingle industriell økonomi
methane hydrates
growth
VDP::Technology: 500
VDP::Social science: 200::Economics: 210
Nordbø, Therese
Hydrate growth kinetics: A study on the relation between energy release rates and gas consumption rates during methane hydrate formation and growth.
topic_facet industriell økonomi
methane hydrates
growth
VDP::Technology: 500
VDP::Social science: 200::Economics: 210
description Master's thesis in Industrial economics The relation between mass transfer, energy transfer and growth rates has been examined during methane hydrate formation in stirred cell reactors. This was done to improve understanding rate determining factors during hydrate formation and growth. In stirred cell reactor heat transfer and heat transfer rates will be functions of stirring rate and through boundary layers at the wall. The heat transfer rate is also function of temperature gradients. Experiments have thus been conducted at three different stirring rates and temperatures levels to evaluate the effect of stirring and temperature gradients on heat transfer. Experiments have been conducted using two different cell setups, a smaller cell having a volume of 141.4 ml and with inner diameter of 60 mm, outer diameter of 90 mm and a height of 50 mm, and a larger cell having a volume of 318.1 ml and with an inner diameter of 90 mm, outer diameter of 120 mm and a height of 50 mm. The cell systems were connected to a high pressure methane reservoir via a pressure reduction valve and a flow meter and operated in an open mode to maintain constant pressure throughout the experiments. In the smaller cell hydrate formation and growth was studied at three different experimental temperatures of 6, 7 and 8 °C and at stirring rates of 500, 700 and 1200 rpm using either 50 ml or 100 ml distilled water (DW). In the larger cell experiments were conducted at 8 °C and 700 rpm to examine effects of cell size and radial heat flow. The volume of water was either 112.5 ml or 225 ml for the large cell experiments. Hydrate growth rates were estimated analyzing the amount of gas passing through the flow-meter per time unit and the amount of heat released (exothermic reaction) through temperature measurements. The analysis was terminated when heat release was observed to decay and prior to complete conversion of water into hydrates to reduce effects of increasing hydrate mass on heat transfer. The growth rate was initially relatively fast and ...
format Master Thesis
author Nordbø, Therese
author_facet Nordbø, Therese
author_sort Nordbø, Therese
title Hydrate growth kinetics: A study on the relation between energy release rates and gas consumption rates during methane hydrate formation and growth.
title_short Hydrate growth kinetics: A study on the relation between energy release rates and gas consumption rates during methane hydrate formation and growth.
title_full Hydrate growth kinetics: A study on the relation between energy release rates and gas consumption rates during methane hydrate formation and growth.
title_fullStr Hydrate growth kinetics: A study on the relation between energy release rates and gas consumption rates during methane hydrate formation and growth.
title_full_unstemmed Hydrate growth kinetics: A study on the relation between energy release rates and gas consumption rates during methane hydrate formation and growth.
title_sort hydrate growth kinetics: a study on the relation between energy release rates and gas consumption rates during methane hydrate formation and growth.
publisher University of Stavanger, Norway
publishDate 2013
url http://hdl.handle.net/11250/182230
genre Methane hydrate
genre_facet Methane hydrate
op_relation Masteroppgave/UIS-TN-IØRP/2013;
http://hdl.handle.net/11250/182230
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