Measurements of diffusion coefficient of methane in water/brine under high pressure

The diffusion coefficient of methane in water plays an important role in the formation and dissociation of methane hydrate. However, most of the previous studies on the diffusion coefficient of methane in brine are performed at room temperature and low pressures, which is quite different from the fo...

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Main Authors: Yen-An Chen, Che-Kang Chu, Yan-Ping Chen, Lee-Shin Chu, Shiang-Tai Lin, Li-Jen Chen
Format: Article
Language:English
Published: Chinese Geoscience Union 2018-01-01
Series:Terrestrial, Atmospheric and Oceanic Sciences
Online Access: http://tao.cgu.org.tw/media/k2/attachments/v295p577.pdf
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spelling doaj-551b921afff84b2eaea798e38fc77a002020-11-25T02:22:47ZengChinese Geoscience UnionTerrestrial, Atmospheric and Oceanic Sciences1017-08392311-76802018-01-0129557758710.3319/TAO.2018.02.23.02Measurements of diffusion coefficient of methane in water/brine under high pressureYen-An ChenChe-Kang ChuYan-Ping ChenLee-Shin ChuShiang-Tai LinLi-Jen ChenThe diffusion coefficient of methane in water plays an important role in the formation and dissociation of methane hydrate. However, most of the previous studies on the diffusion coefficient of methane in brine are performed at room temperature and low pressures, which is quite different from the formation condition of methane hydrate. In this study, we measure the diffusion coefficient of methane in pure water and brine in capillary tube at 10.3 MPa and temperature ranging from 283.15 to 308.15 K. We use the Raman spectrum to measure the ratio of C-H bound signal of methane to the O-H bound signal of water, to estimate the concentration of methane dissolves in water/brine. The Raman spectrum is collected at different time and different positions away from the liquid-gas interface. Diffusion coefficient is determined by fitting the experimental data with the concentration profiles solved from Fick’s second law and semi-infinity boundary condition. By this method, we can evaluate the diffusion coefficient at different temperatures or salinities. The diffusion coefficient of methane in water/brine increases as the temperature increases. The diffusion coefficient of methane in brine is lower than that in pure water. Molecular dynamics (MD) simulation is also performed in this study to calculate the diffusion coefficient of methane in water/brine. The MD results can successfully predict the tendency of temperature effect and adding electrolyte. http://tao.cgu.org.tw/media/k2/attachments/v295p577.pdf
collection DOAJ
language English
format Article
sources DOAJ
author Yen-An Chen
Che-Kang Chu
Yan-Ping Chen
Lee-Shin Chu
Shiang-Tai Lin
Li-Jen Chen
spellingShingle Yen-An Chen
Che-Kang Chu
Yan-Ping Chen
Lee-Shin Chu
Shiang-Tai Lin
Li-Jen Chen
Measurements of diffusion coefficient of methane in water/brine under high pressure
Terrestrial, Atmospheric and Oceanic Sciences
author_facet Yen-An Chen
Che-Kang Chu
Yan-Ping Chen
Lee-Shin Chu
Shiang-Tai Lin
Li-Jen Chen
author_sort Yen-An Chen
title Measurements of diffusion coefficient of methane in water/brine under high pressure
title_short Measurements of diffusion coefficient of methane in water/brine under high pressure
title_full Measurements of diffusion coefficient of methane in water/brine under high pressure
title_fullStr Measurements of diffusion coefficient of methane in water/brine under high pressure
title_full_unstemmed Measurements of diffusion coefficient of methane in water/brine under high pressure
title_sort measurements of diffusion coefficient of methane in water/brine under high pressure
publisher Chinese Geoscience Union
series Terrestrial, Atmospheric and Oceanic Sciences
issn 1017-0839
2311-7680
publishDate 2018-01-01
description The diffusion coefficient of methane in water plays an important role in the formation and dissociation of methane hydrate. However, most of the previous studies on the diffusion coefficient of methane in brine are performed at room temperature and low pressures, which is quite different from the formation condition of methane hydrate. In this study, we measure the diffusion coefficient of methane in pure water and brine in capillary tube at 10.3 MPa and temperature ranging from 283.15 to 308.15 K. We use the Raman spectrum to measure the ratio of C-H bound signal of methane to the O-H bound signal of water, to estimate the concentration of methane dissolves in water/brine. The Raman spectrum is collected at different time and different positions away from the liquid-gas interface. Diffusion coefficient is determined by fitting the experimental data with the concentration profiles solved from Fick’s second law and semi-infinity boundary condition. By this method, we can evaluate the diffusion coefficient at different temperatures or salinities. The diffusion coefficient of methane in water/brine increases as the temperature increases. The diffusion coefficient of methane in brine is lower than that in pure water. Molecular dynamics (MD) simulation is also performed in this study to calculate the diffusion coefficient of methane in water/brine. The MD results can successfully predict the tendency of temperature effect and adding electrolyte.
url http://tao.cgu.org.tw/media/k2/attachments/v295p577.pdf
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