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Pore-scale multiphase flow modeling and imaging of CO2 exsolution in Sandstone

机译:砂岩中CO2 exsolution的孔隙尺度多相流动建模与成像

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This study utilizes synchrotron X-ray micro-tomography and pore scale modeling to investigate the process of gas exsolution and how it affects non-wetting phase relative permeability. Exsolved gas distributions are measured on Domengine and Boise sandstone samples using synchrotron X-ray micro-tomography. Observed gas phase distributions are compared to a new model that simulates the growth and distribution of exsolved gas phase at the pore-scale. Water relative permeability curves are calculated using a Stokes flow simulator with modeled and observed gas distributions, under various conditions, such as rock geometry, and pressure depletion rates. By comparing the actual bubble distributions with modeled distributions, we conclude that exsolved gas is more likely to form and accumulate at locations with higher water velocities. This suggests that convective delivery of CO2 to the gas bubble is a primary mechanism for bubble growth, as compared to diffusive transport through the aqueous phase. For carbonated brine flowing up a fault at half a meter per day, with 5% exsolved gas, the water relative permeability is estimated to be 0.6 similar to 0.8 for various sandstones. The reduction of water mobility reduces upward brine migration when even a small amount of exsolution occurs.
机译:本研究利用同步X射线微断层扫描和孔径模型来研究气体泄露的过程及其影响如何影响非润湿相相相相相相渗透性。使用Synchrotron X射线微断层扫描在Domennine和Boise砂岩样品上测量exsolved气体分布。将观察到的气相分布与模拟孔径以渗出气相的生长和分布的新模型进行比较。在各种条件下,使用具有模型和观测的气体分布的斯托克斯流模拟器计算水相对渗透曲线,例如岩石几何形状和压力耗尽率。通过比较具有建模分布的实际气泡分布,我们得出结论,exsolved气体更有可能在具有更高水速度的位置形成和累积。这表明二氧​​化碳与气泡的对流递送是泡沫生长的主要机制,与通过水相扩散运输相比。对于每天半米的碳酸盐水流过5%的渗透气体,估计水相对渗透率为0.6,对于各种砂岩的0.8。当甚至发生少量的exsolution时,水迁移率的降低减少了向上盐水迁移。

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