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Calculation of the wellbore temperature and pressure distribution during supercritical CO_2 fracturing flowback process

机译:超临界CO_2压裂返排过程中井筒温度和压力分布的计算

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Supercritical CO2 fracturing is a new type of waterless technology developed in recent years. When the supercritical CO2 flows back after fracturing, the formation water is lifted by the upward movement of CO2. Since the pressure gradually decreases along the wellbore and the temperature also decreases due to the CO2 expansion, it is easy to result in the formation of hydrate under the conditions of high pressure and low temperature. In order to prevent the clogging of the wellbore due to CO2 hydrate, the wellbore temperature and pressure need to be predicted and regulated. Based on the Span-Wagner CO2 gas state equation and the Fenghour gas transport equation, combined with the classical wellbore flow heat transfer model, a supercritical CO2 fracturing flowback wellbore flow model with heat source and sink considered is developed, the dual coupling solution of axial and radial borehole is realized by iterating the pressure and temperature and coupling of tubing-annulus-formation. The results show that the wellbore pressure and temperature both decrease from the bottom to the top of the well, which is similar to the flow in oil and gas production. The parameters such as discharge output, tubing size, formation temperature gradient and pressure gradient have a great influence on the wellbore temperature and pressure. The reduction of the discharge output and the increase of the tubing size can effectively keep the wellbore temperature high and reduce the risk of CO2 hydrate formation. The discharge time has almost no effect on the wellbore pressure, and only slightly affects the wellbore temperature. The results can provide guidance for the study of supercritical CO2 fracturing flowback. (C) 2019 Elsevier Ltd. All rights reserved.
机译:超临界CO2压裂是近年来开发的一种新型的无水技术。当超临界CO2压裂后回流时,地层水因CO2的向上运动而被提升。由于压力沿井眼逐渐降低,并且由于CO 2膨胀,温度也降低,因此在高压和低温条件下很容易导致水合物的形成。为了防止由于CO 2水合物而造成的井眼堵塞,需要预测和调节井眼的温度和压力。基于Span-Wagner的CO2气态方程和Fenghour输气方程,结合经典的井筒流传热模型,建立了考虑热源和汇的超临界CO2压裂返排井筒流模型,提出了轴向双重耦合方案。径向钻孔是通过迭代压力和温度并耦合油管-环形空间来实现的。结果表明,井眼压力和温度都从井底到井顶下降,这与油气生产中的流量相似。诸如排量,油管尺寸,地层温度梯度和压力梯度等参数对井眼温度和压力有很大影响。排放量的减少和油管尺寸的增加可以有效地使井筒温度保持较高,并减少形成CO2水合物的风险。排放时间对井眼压力几乎没有影响,而对井眼温度的影响很小。研究结果可为超临界CO2压裂返排研究提供指导。 (C)2019 Elsevier Ltd.保留所有权利。

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