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DEM MODELLING OF METHANE HYDRATE BEARING SAND

机译:甲烷水合物轴承砂的DEM建模

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Methane gas hydrates are crystalline compounds formed from water and methane under certain pressure and temperature. They are mostly found in marine continental margin sediments and beneath the permafrost and considered as the future non-conventional energy resource. In order to develop innovative techniques for the safe extraction of methane gas from Methane Hydrate (MH) it is important to understand the shear behaviour of methane hydrate bearing sand. It has been reported that the pore scale habits of MH have a significant influence on the shear behaviour of methane hydrate bearing sand. In this paper, an attempt has been made to capture the effect of pore scale habits on the shear behaviour of methane hydrate bearing sand using the Discrete Element Method. Two modelling approaches (i) pore filling, leading to load bearing, and (ii) cementation, bonding of the interparticle contact, have been simulated using PFC3D. A series of triaxial monotonic tests were carried on an assembly of particles for different methane hydrate saturations. Both the approaches have captured, qualitatively, the stress ratio- axial strain behaviour similar to the laboratory experiments. The DEM simulation results highlight that MH saturation has a profound influence on the shear behaviour of hydrate bearing sand. It was shown that the cementation habit closely captures the variation of peak deviator stress with MH saturation similar to the laboratory experiments. Moreover, the evolution of micro-mechanical parameter (e.g. contact force and bond breakage) during shear loading has been presented and discussed.
机译:甲烷水合物是在一定压力和温度下由水和甲烷形成的结晶化合物。它们主要存在于海洋大陆边缘沉积物中和多年冻土之下,被认为是未来的非常规能源。为了开发用于安全地从甲烷水合物(MH)中提取甲烷气体的创新技术,重要的是要理解带有甲烷水合物的砂的剪切行为。据报道,MH的孔垢习惯对含甲烷水合物砂的剪切行为有重要影响。在本文中,已经尝试使用离散元方法来捕获孔隙尺度习惯对含甲烷水合物砂的剪切行为的影响。使用PFC3D已模拟了两种建模方法(i)孔隙填充(导致载荷)和(ii)胶结作用(颗粒间接触的结合)。针对不同的甲烷水合物饱和度,对一组粒子进行了一系列的三轴单调测试。两种方法在质量上都捕获了类似于实验室实验的应力比-轴向应变行为。 DEM模拟结果表明,MH饱和度对含水合物砂岩的剪切行为具有深远的影响。结果表明,与实验室实验相似,胶结习惯密切记录了MH饱和度时峰值偏应力的变化。此外,已经提出并讨论了剪切载荷过程中微机械参数(例如接触力和粘结断裂)的演变。

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