• Title/Summary/Keyword: Gas Hydrate

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Geomechanical Model Analysis for the Evaluation of Mechanical Stability of Unconsolidated Sediments during Gas Hydrate Development and Production (가스하이드레이트 개발생산과정에서의 미고결 퇴적층의 역학적 안정성 평가를 위한 지오메카닉스모델 해석)

  • Kim, Hyung-Mok;Rutqvist, Jonny
    • Tunnel and Underground Space
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    • v.24 no.2
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    • pp.143-154
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    • 2014
  • In this study, we simulated both dissociation of gas hydrate and mechanical deformation of hydrate-bearing sedimentary formation using geomechanical model. The geomechanical model analysis consists of two distinct codes of TOUGH+Hydrate and FLAC3D. The model is characterized by the fact that changes of temperature, pressure, saturation and their influence on the consequent evolution of effective stress, stiffness and strength of hydrate-bearing sediments during gas production could be well simulated. We compared the results of simulation for two different production methods, and showed that combination of depressurization and thermal stimulation results in the enhancement of production rate especially at early stage. We also presented that the hydrate dissociation-induced geomechanical deformation in unconsolidated clay is much larger than that in sandstone.

Mechanical and Electrical Properties of Hydrate-bearing Sediments (하이드레이트 함유 퇴적물의 역학적 성질 및 지구물리 특성)

  • Lee, J.Y.;Francisca, F.;Santamarina, J.C.;Ruppel, C.
    • 한국신재생에너지학회:학술대회논문집
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    • 2007.11a
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    • pp.594-596
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    • 2007
  • Using an oedometer cell instrumented to measure the evolution of electromagnetic properties, small strain stiffness, and temperature, we conducted consolidation tests on four types of sediments. The tested specimens include sediments with different gas hydrate saturation at four stages of loading. The test results show that the electromagnetic and mechanical properties of hydrate-bearing marine sediments are governed by the vertical effective stress, stress history, porosity, hydrate saturation, fabric, ionic concentration of the pore fluid, and temperature. The results also show that permittivity and electrical conductivity data can be combined to estimate hydrate volume fraction in laboratory sediments, methodology that might eventually be extended for estimation of hydrate concentrations in field settings.

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The Status of the Development of Production Technology of the Gas Hydrate (가스하이드레이트 생산기술 개발동향 분석)

  • An, Seung-Hee;Park, Seoung-Soo;Shin, Hoon-Chang;Kim, Byung-Joo;Lee, Jeong-Hwan
    • 한국신재생에너지학회:학술대회논문집
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    • 2008.10a
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    • pp.216-219
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    • 2008
  • As a future clean substitute energy, the Gas hydrate development projects are world widely carried out to prepare the shortage of petroleum and natural gas resources. The OIIP of gas hydrate is estimated approximately 10 Trillion LNG equivalent ton and it reaches almost the amount of 5 thousand years use for the world people. To develop the commercial production technology, several research projects like Malik and Alaska project have been carried by several advanced countries and teams, but nobody have succeeded it yet due to the technical problems and the high risks. The technologies developed up to now for the hydrate production are categorized to four methods, such as depressurization method, thermal recovery method, inhibitor injection method and replacement method. As these methods are highly related to the costs and the environmental problems, many other researches including the safety, environment and disaster prevention are actively fulfilled as well.

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Productivity Analysis for Multi-Wells Depressurization of Gas Hydrate Bearing Sediments in Ulleung Basin, East Sea of Korea (동해 울릉분지 가스하이드레이트 퇴적층 내 다중정 감압에 따른 생산성 분석)

  • Moon, Seo-Yoon;Shin, Hyo-Jin;Lim, Jong-Se
    • Ocean and Polar Research
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    • v.43 no.4
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    • pp.295-306
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    • 2021
  • A field scale productivity analysis is required for the development of gas hydrate in marine sedimentary layers to verify the field applicability of production techniques and to improve productivity. In this study, the productivity resulting from the application of depressurization using multi-wells for the development of gas hydrate in the Ulleung Basin, East Sea of Korea, was determined. A numerical analysis model reflecting the conditions of candidate sites for the Ulleung Basin was constructed, and the productivity and dissociation behavior were comparatively analyzed. The pressure propagation and gas hydrate dissociation region by the multi-wells were wider and the productivity was higher than that of a single well. Different depressurization effects according to the spacing of multi-wells affected productivity. The results provide basic data for productivity analysis when establishing a field test production plan for the Ulleung Basin.

The R&D - Validity of Gas hydrates (가스 하이드레이트 R&D 타당성 평가)

  • Kim Yu Jeong;Kim Seong Yong;Huh Dae-Gee
    • 한국신재생에너지학회:학술대회논문집
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    • 2005.06a
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    • pp.647-650
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    • 2005
  • Gas hydrates draw great at tent ion recently as a new clean energy resources substituting conventional oil and gas hydrate its presumed huge amount of volume reaching 10 trillion tons of gas and environmentally friendly characteristics. Gas hydrate can contribute to the rapidly increasing consumption of natural gas in Korea and achieve the self support target by 2010 which is $30\%$ of total natural gas demand. This paper shows the importance and benefit of Gas hydrate comparing with new & renewable energy in Korea

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A Study on Gas Hydrate Replacement Method for Organic Methane Recovery in Ocean Sediment (해저 퇴적토 내 유기성 메탄 회수를 위한 가스하이드레이트 치환기법 연구)

  • Shin, Dong Hyung;Park, Dae Won
    • Journal of the Korea Organic Resources Recycling Association
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    • v.26 no.4
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    • pp.5-10
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    • 2018
  • In this study, the effect of physico-chemical factors (e.g., pressure, electrolyte, and organic matter) in the gas hydrate deposit on CH4-CO2 replacement process was investigated experimentally. The higher initial pressure during gas injection led the higher reaction rate at the first time, but finally it did not. Electrolytes and organic matter have some effects on reforming process after dissociation of gas hydrate. It is expected that further research using real marine sediments with actual gas hydrate will enable the development of technologies applicable to the characteristics of domestic seabed geology. Ultimately, it is expected that it will be possible to recover and utilize methane as an organic resource through application of domestic gas hydrate deposit in the Ulleung Basin, East Sea.

Gas hydrate stability field in the southwestern Ulleung Basin, East Sea (동해 울릉분지 남서부 해역에서의 가스 하이드레이트 안정영역)

  • Ryu Byong Jae;Don Sun woo;Chang Sung Hyong;Oh Jin yong
    • The Korean Journal of Petroleum Geology
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    • v.7 no.1_2 s.8
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    • pp.1-6
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    • 1999
  • Natural gas hydrate, a solid compound of natural gas (mainly methane) and water in the low temperature and high pressure, is widely distributed in permafrost region and deep sea sediments. Gas hydrate stability field (GHSF), which corresponds to the conditions of a stable existence of solid gas hydrate without dissociation, depends on temperature, pressure, and composition of gas and interstitial water. Gas hydrate-saturated sediment are easily recognized by the bottom simulating reflector (BSR), a strong-amplitude sea bottom-mimic reflector in seismic profiles. It is known that BSR is associated with the basal boundary of the GHSF, The purpose of this study is to define the GHSF and its occurrence in the southwestern part of Ulleung Basin, East Sea. The hydrothermal gradient is measured using the expandable bathythermograph (XBT) and the geothermal gradient data are utilized from previous drilling results for the adjacent area. By the laboratory work using methane and NaCl $3.0 wt{\%}$ solution, it is shown that the equilibrium pressures of the gas hydrate reach to 2,920.2 kPa at 274.15 K and to 18,090 kPa at 289.95 K for the study area. Consequently, it is interpreted that the lower boundary of the GHSF is about 210 m beneath 400-m-deep sea bottom and about 480 m beneath 1,100-m-deep sea bottom. The resultant boundary is well matched with the depth of the BSR obtained from the seismic data analysis for the study area.

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Hydrocarbons in shallow sediments of the western Ulleung Basin (서부 울릉분지 천부 퇴적층의 탄화수소)

  • Ryu, Byong-Jae;Kim, Ji-Hoon;Lee, Young-Joo;Kim, Il-Soo
    • 한국신재생에너지학회:학술대회논문집
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    • 2007.11a
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    • pp.597-599
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    • 2007
  • Studies on the hydrocarbons in shallow sediments of the East Sea of Korea have been carried out by the Korea Institute of Geoscience and Mineral Resources (KIGAM) since 2000. 4946 L-km of 2D multichannel reflection seismic data, 3250 L-km of high-resolution Chirp profiles and 16 selected piston cores were analyzed to determine the presence of hydrocarbons in shallow sediments of the western deep-water Ulleung Basin. The seismic data show a number of blanking zones that probably reflect widespread fluid and gas venting. The blanking zones are often associated with velocity pull-up structures. These upwelling structures are interpreted to be the result of high-velocity natural gas hydrate. There are also several bottom-simulating reflectors that are associated with free gas and probably overlying gas hydrate. Numerous pockmarks were also observed in the Chirp profiles. They are seafloor depressions caused by the removal of near-seafloor soft sediments by escaping of fluid and gas. In piston cores, cracks generally oriented parallel to bedding suggest significant gas content some of which may have been contained in gas hydrate in situ.

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Salinity Effect on the Equilibria and Kinetics of the Formation of CO2 and R-134a Gas Hydrates in Seawater

  • Johanna, Lianna;Kim, A Ram;Jeong, Guk;Lee, Jea-Keun;Lee, Tae Yun;Lim, Jun-Heok;Won, Yong Sun
    • Korean Journal of Materials Research
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    • v.26 no.7
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    • pp.382-387
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    • 2016
  • Gas hydrates are crystalline solids in which gas molecules (guests) are trapped in water cavities (hosts) that are composed of hydrogen-bonded water molecules. During the formation of gas hydrates in seawater, the equilibria and kinetics are then affected by salinity. In this study, the effects of salinity on the equilibria of $CO_2$ and R134-a gas hydrates has been investigated by tracing the changes of operating temperature and pressure. Increasing the salinity by 1.75% led to a drop in the equilibrium temperature of about $2^{\circ}C$ for $CO_2$ gas hydrate and $0.38^{\circ}C$ for R-134a gas hydrate at constant equilibrium pressure; in other words, there were rises in the equilibrium pressure of about 1 bar and 0.25 bar at constant equilibrium temperature, respectively. The kinetics of gas hydrate formation have also been investigated by time-resolved in-situ Raman spectroscopy; the results demonstrate that the increase of salinity delayed the formation of both $CO_2$ and R134-a gas hydrates. Therefore, various ions in seawater can play roles of inhibitors for gas hydrate formation in terms of both equilibrium and kinetics.

A Case Study and Investigation on the Resource Assesment of Gas Hydrate (가스하이드레이트 부존량 평가 기술분석 및 적용사례)

  • Shin, Chang-Hoon;Han, Jeong-Min;Lee, Jeong-Hwan
    • 한국신재생에너지학회:학술대회논문집
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    • 2009.06a
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    • pp.682-685
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    • 2009
  • Several studies are being carried out to develop the reliable methods for the gas hydrate resource evaluation around the world. In this study, some case studies and investigations on the resource assesment of several advanced research teams were tried and then detail information on the evaluation scheme and technology of each team and nation are explained and analyzed for the future study and development. On top of that, main concepts and major parameters which can affect the quantity of assessment are examined and arranged for applying to our Donghae gas hydrate field case. Finally, the major concepts and methodology for this evaluation are brought forth and a schematic diagram for the main steps are come up with as well.

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