通过灌浆稳定甲烷水合物储层过程中形成的多孔灌浆体的异质性和各向异性研究

Methane Pub Date : 2024-05-21 DOI:10.3390/methane3020018
Yuchen Liu, Masanori Kurihara
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摘要

为了解决甲烷水合物(MH)降压过程中的出砂问题,我们提出了一种通过抑制剂预注和注浆在井筒周围形成具有足够渗透性和强度的多孔注浆体的方法,并在之前的研究中使用硅砂和替代水合物(如 TBAB-水合物和异丁烷水合物)制作的人工岩心验证了该方法的有效性和潜力。然而,上述所有人工岩心都是在高度均匀的条件下制作、注入、固化的,并在垂直方向测量其物理性质,这与实际储层条件不同。为了研究灌浆在更真实的流体流动中的影响,我们使用水平一维岩心、一维立方体模型和模拟近井筒的二维横截面模型进行了进一步的实验。这些实验表明:(1) 与之前的实验一样,产生的气体在一定程度上抑制了灌浆的效果;(2) 由于流体密度以及灌浆颗粒和浊积沉积物的分布,灌浆储层将具有异质性和各向异性,但仍可获得足够的渗透率和令人满意的强度。上述一系列实验表明,我们的方法具有有效生产实际 MH 的潜力,即使在异质和各向异性灌浆储层中也能防止出现砂问题。
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A Study on the Heterogeneity and Anisotropy of the Porous Grout Body Created in the Stabilization of a Methane Hydrate Reservoir through Grouting
To solve the sand problem during the depressurization of methane hydrate (MH), we proposed a method to build a porous grout body with sufficient permeability and strength around the wellbore through inhibitor pre-injection and grouting, and verified its effectiveness and potential in our previous research using artificial cores created with silica sand and alternative hydrates such as TBAB- hydrate and iso-butane hydrate. However, all of the artificial cores mentioned above were created with high homogeneity, injected, cured, and had their physical properties measured in the vertical direction, which differs from real reservoir conditions. To investigate the effects of grouting in a more realistic fluid flow, we conducted further experiments using horizontal 1D cores, 1D cubic models, and a 2D cross-sectional model mimicking the near wellbore. These experiments revealed that (1) the generated gas somewhat suppressed the effects of grouting as in the case of previous experiments, and (2) grouted reservoirs would be heterogenous and anisotropic due to the fluid densities and the distribution of grout particles and turbidite sediments, but sufficient permeability and satisfactory strength could still be attained. The above series of experiments demonstrated that our method has the potential to effectively produce actual MH, preventing sand problems even in heterogeneous and anisotropic grouted reservoirs.
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