Heat Transfer Analysis of Methane Hydrate Sediment Dissociation in a Closed Reactor by a Thermal Method

The heat transfer analysis of hydrate-bearing sediment involved phase changes is one of the key requirements of gas hydrate exploitation techniques. In this paper, experiments were conducted to examine the heat transfer performance during hydrate formation and dissociation by a thermal method using...

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Published in:Energies
Main Authors: Jiafei Zhao, Chuanxiao Cheng, Yongchen Song, Weiguo Liu, Yu Liu, Kaihua Xue, Zihao Zhu, Zhi Yang, Dayong Wang, Mingjun Yang
Format: Text
Language:English
Published: Molecular Diversity Preservation International 2012
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Online Access:https://doi.org/10.3390/en5051292
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author Jiafei Zhao
Chuanxiao Cheng
Yongchen Song
Weiguo Liu
Yu Liu
Kaihua Xue
Zihao Zhu
Zhi Yang
Dayong Wang
Mingjun Yang
author_facet Jiafei Zhao
Chuanxiao Cheng
Yongchen Song
Weiguo Liu
Yu Liu
Kaihua Xue
Zihao Zhu
Zhi Yang
Dayong Wang
Mingjun Yang
author_sort Jiafei Zhao
collection MDPI Open Access Publishing
container_issue 5
container_start_page 1292
container_title Energies
container_volume 5
description The heat transfer analysis of hydrate-bearing sediment involved phase changes is one of the key requirements of gas hydrate exploitation techniques. In this paper, experiments were conducted to examine the heat transfer performance during hydrate formation and dissociation by a thermal method using a 5L volume reactor. This study simulated porous media by using glass beads of uniform size. Sixteen platinum resistance thermometers were placed in different position in the reactor to monitor the temperature differences of the hydrate in porous media. The influence of production temperature on the production time was also investigated. Experimental results show that there is a delay when hydrate decomposed in the radial direction and there are three stages in the dissociation period which is influenced by the rate of hydrate dissociation and the heat flow of the reactor. A significant temperature difference along the radial direction of the reactor was obtained when the hydrate dissociates and this phenomenon could be enhanced by raising the production temperature. In addition, hydrate dissociates homogeneously and the temperature difference is much smaller than the other conditions when the production temperature is around the 10 °C. With the increase of the production temperature, the maximum of ΔToi grows until the temperature reaches 40 °C. The period of ΔToi have a close relation with the total time of hydrate dissociation. Especially, the period of ΔToi with production temperature of 10 °C is twice as much as that at other temperatures. Under these experimental conditions, the heat is mainly transferred by conduction from the dissociated zone to the dissociating zone and the production temperature has little effect on the convection of the water in the porous media.
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genre Methane hydrate
genre_facet Methane hydrate
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op_source Energies; Volume 5; Issue 5; Pages: 1292-1308
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spelling ftmdpi:oai:mdpi.com:/1996-1073/5/5/1292/ 2025-01-16T23:04:52+00:00 Heat Transfer Analysis of Methane Hydrate Sediment Dissociation in a Closed Reactor by a Thermal Method Jiafei Zhao Chuanxiao Cheng Yongchen Song Weiguo Liu Yu Liu Kaihua Xue Zihao Zhu Zhi Yang Dayong Wang Mingjun Yang 2012-05-02 application/pdf https://doi.org/10.3390/en5051292 EN eng Molecular Diversity Preservation International https://dx.doi.org/10.3390/en5051292 https://creativecommons.org/licenses/by/3.0/ Energies; Volume 5; Issue 5; Pages: 1292-1308 methane hydrate thermal method dissociation temperature difference heat transfer Text 2012 ftmdpi https://doi.org/10.3390/en5051292 2023-07-31T20:28:49Z The heat transfer analysis of hydrate-bearing sediment involved phase changes is one of the key requirements of gas hydrate exploitation techniques. In this paper, experiments were conducted to examine the heat transfer performance during hydrate formation and dissociation by a thermal method using a 5L volume reactor. This study simulated porous media by using glass beads of uniform size. Sixteen platinum resistance thermometers were placed in different position in the reactor to monitor the temperature differences of the hydrate in porous media. The influence of production temperature on the production time was also investigated. Experimental results show that there is a delay when hydrate decomposed in the radial direction and there are three stages in the dissociation period which is influenced by the rate of hydrate dissociation and the heat flow of the reactor. A significant temperature difference along the radial direction of the reactor was obtained when the hydrate dissociates and this phenomenon could be enhanced by raising the production temperature. In addition, hydrate dissociates homogeneously and the temperature difference is much smaller than the other conditions when the production temperature is around the 10 °C. With the increase of the production temperature, the maximum of ΔToi grows until the temperature reaches 40 °C. The period of ΔToi have a close relation with the total time of hydrate dissociation. Especially, the period of ΔToi with production temperature of 10 °C is twice as much as that at other temperatures. Under these experimental conditions, the heat is mainly transferred by conduction from the dissociated zone to the dissociating zone and the production temperature has little effect on the convection of the water in the porous media. Text Methane hydrate MDPI Open Access Publishing Energies 5 5 1292 1308
spellingShingle methane hydrate
thermal method
dissociation
temperature difference
heat transfer
Jiafei Zhao
Chuanxiao Cheng
Yongchen Song
Weiguo Liu
Yu Liu
Kaihua Xue
Zihao Zhu
Zhi Yang
Dayong Wang
Mingjun Yang
Heat Transfer Analysis of Methane Hydrate Sediment Dissociation in a Closed Reactor by a Thermal Method
title Heat Transfer Analysis of Methane Hydrate Sediment Dissociation in a Closed Reactor by a Thermal Method
title_full Heat Transfer Analysis of Methane Hydrate Sediment Dissociation in a Closed Reactor by a Thermal Method
title_fullStr Heat Transfer Analysis of Methane Hydrate Sediment Dissociation in a Closed Reactor by a Thermal Method
title_full_unstemmed Heat Transfer Analysis of Methane Hydrate Sediment Dissociation in a Closed Reactor by a Thermal Method
title_short Heat Transfer Analysis of Methane Hydrate Sediment Dissociation in a Closed Reactor by a Thermal Method
title_sort heat transfer analysis of methane hydrate sediment dissociation in a closed reactor by a thermal method
topic methane hydrate
thermal method
dissociation
temperature difference
heat transfer
topic_facet methane hydrate
thermal method
dissociation
temperature difference
heat transfer
url https://doi.org/10.3390/en5051292