Mercury solubility and its modeling in an artificial natural gas at high pressures

Getting to know of mercury (Hg) behavior will contribute to proper handling and removal of Hg in natural gas processing facilities. Hg solubility was measured in an artificial natural gas, composed of 88.80 vol. % methane, 5.10 vol. % ethane, and 6.10 % vol. % carbon dioxide, by a flow-type apparatu...

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Main Authors: Yamada, Junya, Tsuji, Tomoya, Shibuya, Takehiro, Kobayashi, Atsushi, Suzuki, Iwane
Format: Article
Published: Elsevier B.V. 2023
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Online Access:http://eprints.utm.my/107116/
http://dx.doi.org/10.1016/j.fluid.2023.113735
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spelling my.utm.1071162024-08-27T08:17:38Z http://eprints.utm.my/107116/ Mercury solubility and its modeling in an artificial natural gas at high pressures Yamada, Junya Tsuji, Tomoya Shibuya, Takehiro Kobayashi, Atsushi Suzuki, Iwane T Technology (General) Getting to know of mercury (Hg) behavior will contribute to proper handling and removal of Hg in natural gas processing facilities. Hg solubility was measured in an artificial natural gas, composed of 88.80 vol. % methane, 5.10 vol. % ethane, and 6.10 % vol. % carbon dioxide, by a flow-type apparatus up to 6.031 MPa at (268 to 303) K. The Hg mole fraction ranged from 4.991 × 10–9 to 8.125 × 10–7 in the vapor phase. The Hg solubilities decreased with increasing pressure, and the pressure dependencies were similar to that in pure methane. The experimental data were correlated with the Peng–Robinson equation of state (PR-EOS) developed in the previous studies, where the attractive parameter of Hg was evaluated from the saturated vapor pressure, and binary parameters among the other constituents of the artificial natural gas determined from the VLE data available in the literature. The calculation results were acceptable and agreed with the experimental data without any additional corrections. The maximum and the minimum the absolute relative deviation (ARD) and the average absolute relative deviation (AARD) were 9.72, 0.0542, and 3.20 %, respectively. Elsevier B.V. 2023 Article PeerReviewed Yamada, Junya and Tsuji, Tomoya and Shibuya, Takehiro and Kobayashi, Atsushi and Suzuki, Iwane (2023) Mercury solubility and its modeling in an artificial natural gas at high pressures. Fluid Phase Equilibria, 568 (NA). NA-NA. ISSN 0378-3812 http://dx.doi.org/10.1016/j.fluid.2023.113735 DOI : 10.1016/j.fluid.2023.113735
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 T Technology (General)
spellingShingle T Technology (General)
Yamada, Junya
Tsuji, Tomoya
Shibuya, Takehiro
Kobayashi, Atsushi
Suzuki, Iwane
Mercury solubility and its modeling in an artificial natural gas at high pressures
description Getting to know of mercury (Hg) behavior will contribute to proper handling and removal of Hg in natural gas processing facilities. Hg solubility was measured in an artificial natural gas, composed of 88.80 vol. % methane, 5.10 vol. % ethane, and 6.10 % vol. % carbon dioxide, by a flow-type apparatus up to 6.031 MPa at (268 to 303) K. The Hg mole fraction ranged from 4.991 × 10–9 to 8.125 × 10–7 in the vapor phase. The Hg solubilities decreased with increasing pressure, and the pressure dependencies were similar to that in pure methane. The experimental data were correlated with the Peng–Robinson equation of state (PR-EOS) developed in the previous studies, where the attractive parameter of Hg was evaluated from the saturated vapor pressure, and binary parameters among the other constituents of the artificial natural gas determined from the VLE data available in the literature. The calculation results were acceptable and agreed with the experimental data without any additional corrections. The maximum and the minimum the absolute relative deviation (ARD) and the average absolute relative deviation (AARD) were 9.72, 0.0542, and 3.20 %, respectively.
format Article
author Yamada, Junya
Tsuji, Tomoya
Shibuya, Takehiro
Kobayashi, Atsushi
Suzuki, Iwane
author_facet Yamada, Junya
Tsuji, Tomoya
Shibuya, Takehiro
Kobayashi, Atsushi
Suzuki, Iwane
author_sort Yamada, Junya
title Mercury solubility and its modeling in an artificial natural gas at high pressures
title_short Mercury solubility and its modeling in an artificial natural gas at high pressures
title_full Mercury solubility and its modeling in an artificial natural gas at high pressures
title_fullStr Mercury solubility and its modeling in an artificial natural gas at high pressures
title_full_unstemmed Mercury solubility and its modeling in an artificial natural gas at high pressures
title_sort mercury solubility and its modeling in an artificial natural gas at high pressures
publisher Elsevier B.V.
publishDate 2023
url http://eprints.utm.my/107116/
http://dx.doi.org/10.1016/j.fluid.2023.113735
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score 13.2014675