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Numerical simulation of temperature field in crack of supercritical carbon dioxide fracturing

机译:超临界二氧化碳压裂裂缝温度场的数值模拟

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Supercritical carbon dioxide (SC‐CO2) fracturing technology has far‐reaching application potential for unconventional resources which is beneficial to water protection and CO2 sequestration. In this paper, temperature field in the crack of SC‐CO2 fracturing which will affect flow behavior of SC‐CO2 and the carrying capacity for proppants has been studied. A generalized and pragmatic numerical method coupled with the physical properties model of CO2 and heat and mass transfer in the formation rock has been established to calculate the variations of temperature and density in the crack during fracturing. Porous medium model was used to describe the formation rock which would make the calculation more accurate. Rules of influence distance of the rock with time and injection displacement were analyzed. Distribution of temperature in XY plane is symmetrical, while temperature on the bottom wall is much less than that of the top wall in XZ plane. Decrease in injection temperature and increase in injection displacement will make the temperature of SC‐CO2 lower at the same position which is beneficial to the proppant transportation. Therefore, low injection temperature and high displacement are suggested in the application in order to make a longer proppant bed. Besides, the density of SC‐CO2 is relatively high in the formation of low rock porosity which will make the fracturing more effective. The results obtained in this paper will provide reference for SC‐CO2 fracturing design which could promote the development of this technology.
机译:超临界二氧化碳(SC-CO2)压裂技术对非传统资源具有深远的应用潜力,这些资源有利于防水和CO2封存。本文研究了SC-CO2压裂裂缝中的温度场,其将影响SC-CO2的流动性和支撑剂的承载能力。已经建立了与CO 2的物理性质模型耦合的广义和语用数值方法,并建立了地层岩体中的热量和传质,以计算压裂期间裂缝中温度和密度的变化。多孔介质模型用于描述形成岩石,这将使计算更准确。分析了岩石与时间和注射排量的影响规则。 XY平面温度分布是对称的,而底壁的温度远小于XZ平面上的顶壁的温度。注射温度降低,注射位移的增加将使SC-CO2的温度降低在相同的位置,这些位置有利于支撑剂运输。因此,在施用中提出了低注射温度和高位移,以制造更长的支撑剂床。此外,SC-CO2的密度在形成低岩孔隙的形成中相对较高,这将使压裂更有效。本文获得的结果将为SC-CO2压裂设计提供参考,这可以促进该技术的发展。

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