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Numerical Studies of Methane Gas Production from Hydrate Decomposition by Depressurization in porous media

机译:多孔介质抑制水合物分解的甲烷气体生产的数值研究

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As a kind of potential new sources of energy, the dissociation processes of gas hydrates using the depressurization method has been investigated by experimental observations and numerical simulations. In this study, on the basis of summarizing the existing model, a one-dimensional mathematical model containing four phase (water phase, gas phase, hydrate phase, ice phase) and three constituents (water, gas, hydrate) using the finite difference method (FDM) was established for methane hydrates decomposition by depressurization in porous media. This paper focuses on the ice generation and distribution characteristics through changing the parameters of the relevant settings, and analyzes the effect of ice generation on the pressure, temperature, penneability, cumulative gas production and other parameters. The results show that, generation of ice increases gradually in the hydrates decomposition process, and occurred early near the side area because of the large pressure gradient. The absolute permeability and instantaneous gas generation rate at the early stage decline with ice generation, and the local pressure rise.
机译:作为一种潜在的新能源来源,通过实验观察和数值模拟研究了使用减压法的气体水合物的解离过程。在这项研究中,在总结现有模型的基础上,使用有限差分法含有四相(水相,气相,水合物相,冰相)和三种成分(水,气,水合物)的一维数学模型(FDM)通过多孔介质中的减压来建立用于甲烷水合物分解。本文通过改变相关设置的参数来侧重于冰生成和分布特性,并分析了冰生成对压力,温度,牙线,累积气体生产和其他参数的影响。结果表明,由于大的压力梯度,冰块在水合物分解过程中逐渐增加,冰逐渐增加,并且由于大的压力梯度,在侧面区域附近发生。早期渗透率和瞬时气体产生率与冰发电,局部压力升高。

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