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Meso-level simulation of gas hydrate dissociation in low-permeability sediments

Meso-level simulation of gas hydrate dissociation in low-permeability sediments
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摘要 This paper presents a meso-level simulation of gas hydrate dissociation in low-permeability marine sediments. Interstitial pores are defined to describe fluid flow and particle movement. The proposed model couples multiphase fluid flow with particle movement to simulate the thermodynamics of gas hydrate dissociation triggered by sharp temperature rises. Hydrates respond quickly to temperature rise in low-permeability sediments. Dissociation causes pore pressure to rise rapidly to equilibrium then steadily increase above equilibrium pressure. Lower permeability sediment builds up greater excess pore pressure as the dissipation of pore pressure is constrained. This paper presents a meso-level simulation of gas hydrate dissociation in low-permeability marine sediments. Interstitial pores are defined to describe fluid flow and particle movement. The proposed model couples multiphase fluid flow with particle movement to simulate the thermodynamics of gas hydrate dissociation triggered by sharp temperature rises. Hydrates respond quickly to temperature rise in low-permeability sediments. Dissociation causes pore pressure to rise rapidly to equilibrium then steadily increase above equilibrium pressure. Lower permeability sediment builds up greater excess pore pressure as the dissipation of pore pressure is constrained.
出处 《Theoretical & Applied Mechanics Letters》 CAS 2014年第6期35-41,共7页 力学快报(英文版)
基金 supported by the National Basic Research Program of China(2013CB035902) the National Natural Science Foundation of China(51038007) the State Key Laboratory of Hydroscience and Engineering Project(2013-KY-04 and 2014-KY-03)
关键词 gas hydrate dissociation particle movements pore pressure discrete elementmodel gas hydrate dissociation, particle movements, pore pressure, discrete elementmodel
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