Numerical simulation on gas production from methane hydrate sediment by depressurization in a reactor with ice formation

2020 ◽  
Vol 20 ◽  
pp. 100680
Author(s):  
Yazhou Shao ◽  
Longbin Yang ◽  
Qun Zhang ◽  
Shidong Wang ◽  
Kunfang Wang ◽  
...  
2015 ◽  
Author(s):  
Takero Yoshida ◽  
Georgios Fytianos ◽  
Hiroyuki Oyama ◽  
Toru Sato

Mud erosion in the subsea stratified sand-mud beds is a concern for production of methane gas from methane hydrate. It is expected that eroded mud may lead to well blockage. The goal of our work is to model of mud erosion that damages gas production. To approach this, we have developed a numerical simulation code and mud erosion is investigated to estimate model parameters. The water velocity in pore space is simulated by the Lattice Boltzmann Method (LBM). The paper shows the procedure to obtain erosion rate from distribution of shear stress on the mud surface.


Energy ◽  
2021 ◽  
Vol 221 ◽  
pp. 119919
Author(s):  
Jing-Yu Kan ◽  
Yi-Fei Sun ◽  
Bao-Can Dong ◽  
Qing Yuan ◽  
Bei Liu ◽  
...  

Author(s):  
Ah-Ram Kim ◽  
Gye-Chun Cho ◽  
Joo-Yong Lee ◽  
Se-Joon Kim

Methane hydrate has been received large attention as a new energy source instead of oil and fossil fuel. However, there is high potential for geomechanical stability problems such as marine landslides, seafloor subsidence, and large volume contraction in the hydrate-bearing sediment during gas production induced by depressurization. In this study, a thermal-hydraulic-mechanical coupled numerical analysis is conducted to simulate methane gas production from the hydrate deposits in the Ulleung basin, East Sea, Korea. The field-scale axisymmetric model incorporates the physical processes of hydrate dissociation, pore fluid flow, thermal changes (i.e., latent heat, conduction and advection), and geomechanical behaviors of the hydrate-bearing sediment. During depressurization, deformation of sediments around the production well is generated by the effective stress transformed from the pore pressure difference in the depressurized region. This tendency becomes more pronounced due to the stiffness decrease of hydrate-bearing sediments which is caused by hydrate dissociation.


2010 ◽  
Author(s):  
Kyuro Sasaki ◽  
Shinzi Ono ◽  
Yuichi Sugai ◽  
Norio Tenma ◽  
Takao Ebinuma ◽  
...  

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