Evolution of Hydrate Dissociation by Warm Brine Stimulation Combined Depressurization in the South China Sea

To evaluate the gas production performance of the hydrate accumulations in the South China Sea, a numerical simulation with warm brine stimulation combined depressurization has been conducted. A dual horizontal well system is considered as the well configuration in this work. In order to reduce ener...

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Main Authors: Zhao-Yang Chen, Bo Li, Jing-Chun Feng, Xiao-Sen Li, Gang Li
Format: Article
Language:English
Published: MDPI AG 2013-10-01
Series:Energies
Subjects:
Online Access:http://www.mdpi.com/1996-1073/6/10/5402
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spelling doaj-b6478cc8bc8548c0ae8bfba703c10fac2020-11-24T20:42:59ZengMDPI AGEnergies1996-10732013-10-016105402542510.3390/en6105402Evolution of Hydrate Dissociation by Warm Brine Stimulation Combined Depressurization in the South China SeaZhao-Yang ChenBo LiJing-Chun FengXiao-Sen LiGang LiTo evaluate the gas production performance of the hydrate accumulations in the South China Sea, a numerical simulation with warm brine stimulation combined depressurization has been conducted. A dual horizontal well system is considered as the well configuration in this work. In order to reduce energy input and improve energy utilization, warm brine (<30 °C) instead of hot brine (>50 °C) is injected into the reservoir for hydrate dissociation. The effect of the intrinsic permeability of the hydrate reservoir, the salinity and the temperature of the injected brine to gas hydrate exploitation have been investigated. The numerical simulation results indicate that the average gas production rate Qavg is about 1.23 ´ 105 ST m3/day for the entire hydrate deposit, which has the same order of magnitude compared with the commercially viable production rate. The injected brine can be pumped out from the upper production well directly after the hydrate between the two wells is dissociated completely. Thus, the effective region of heat and inhibitor stimulation is limited. The sensitivity analyses indicate that the dissociation rate of hydrate can be enhanced by increasing the temperature of the injected brine and raising the salinity of the injected brine. The parametric study of permeability shows that the hydrate of the reservoir with the larger permeability has a higher dissociation rate.http://www.mdpi.com/1996-1073/6/10/5402numerical simulationmarine hydratewarm brine stimulationdual horizontal wellsSouth China Sea gasproduction
collection DOAJ
language English
format Article
sources DOAJ
author Zhao-Yang Chen
Bo Li
Jing-Chun Feng
Xiao-Sen Li
Gang Li
spellingShingle Zhao-Yang Chen
Bo Li
Jing-Chun Feng
Xiao-Sen Li
Gang Li
Evolution of Hydrate Dissociation by Warm Brine Stimulation Combined Depressurization in the South China Sea
Energies
numerical simulation
marine hydrate
warm brine stimulation
dual horizontal wells
South China Sea gas
production
author_facet Zhao-Yang Chen
Bo Li
Jing-Chun Feng
Xiao-Sen Li
Gang Li
author_sort Zhao-Yang Chen
title Evolution of Hydrate Dissociation by Warm Brine Stimulation Combined Depressurization in the South China Sea
title_short Evolution of Hydrate Dissociation by Warm Brine Stimulation Combined Depressurization in the South China Sea
title_full Evolution of Hydrate Dissociation by Warm Brine Stimulation Combined Depressurization in the South China Sea
title_fullStr Evolution of Hydrate Dissociation by Warm Brine Stimulation Combined Depressurization in the South China Sea
title_full_unstemmed Evolution of Hydrate Dissociation by Warm Brine Stimulation Combined Depressurization in the South China Sea
title_sort evolution of hydrate dissociation by warm brine stimulation combined depressurization in the south china sea
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2013-10-01
description To evaluate the gas production performance of the hydrate accumulations in the South China Sea, a numerical simulation with warm brine stimulation combined depressurization has been conducted. A dual horizontal well system is considered as the well configuration in this work. In order to reduce energy input and improve energy utilization, warm brine (<30 °C) instead of hot brine (>50 °C) is injected into the reservoir for hydrate dissociation. The effect of the intrinsic permeability of the hydrate reservoir, the salinity and the temperature of the injected brine to gas hydrate exploitation have been investigated. The numerical simulation results indicate that the average gas production rate Qavg is about 1.23 ´ 105 ST m3/day for the entire hydrate deposit, which has the same order of magnitude compared with the commercially viable production rate. The injected brine can be pumped out from the upper production well directly after the hydrate between the two wells is dissociated completely. Thus, the effective region of heat and inhibitor stimulation is limited. The sensitivity analyses indicate that the dissociation rate of hydrate can be enhanced by increasing the temperature of the injected brine and raising the salinity of the injected brine. The parametric study of permeability shows that the hydrate of the reservoir with the larger permeability has a higher dissociation rate.
topic numerical simulation
marine hydrate
warm brine stimulation
dual horizontal wells
South China Sea gas
production
url http://www.mdpi.com/1996-1073/6/10/5402
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