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Numerical analysis of thermal effects during carbon dioxide injection with enhanced gas recovery: a theoretical case study for the Altmark gas field

机译:二氧化碳注入提高气体采收率期间热效应的数值分析:Altmark气田的理论案例研究

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Prediction about reservoir temperature change during carbon dioxide injection requires consideration of all, often subtle, thermal effects. In particular, Joule-Thomson cooling (JTC) and the viscous heat dissipation (VHD) effect are factors that cause flowing fluid temperature to differ from the static formation temperature. In this work, warm-back behavior (thermal recovery after injection completed), as well as JTC and VHD effects, at a multi-layered depleted gas reservoir are demonstrated numerically. OpenGeoSys (OGS) is able to solve coupled partial differential equations for pressure, temperature and mole-fraction of each component of the mixture with a combination of monolithic and staggered approaches. The Galerkin finite element approach is adapted for space discretization of governing equations, whereas for temporal discretization, a generalized implicit single-step scheme is used. For numerical modeling of warm-back behavior, we chose a simplified test case of carbon dioxide injection. This test case is numerically solved by using OGS and FeFlow simulators independently. OGS differs from FeFlow in the capability of representing multi-componential effects on warm-back behavior. We verify both code results by showing the close comparison of shut-in temperature profiles along the injection well. As the JTC cooling rate is inversely proportional to the volumetric heat capacity of the solid matrix, the injection layers are cooled faster as compared to the non-injection layers. The shut-in temperature profiles are showing a significant change in reservoir temperature; hence it is important to account for thermal effects in injection monitoring.
机译:对二氧化碳注入过程中储层温度变化的预测需要考虑所有(通常是细微的)热效应。特别地,焦耳-汤姆逊冷却(JTC)和粘性散热(VHD)效应是导致流动流体温度不同于静态地层温度的因素。在这项工作中,通过数值展示了多层贫气气藏的回暖行为(注入完成后的热采收)以及JTC和VHD效应。 OpenGeoSys(OGS)能够通过整体方法和交错方法的组合来求解混合物中每种成分的压力,温度和摩尔分数的耦合偏微分方程。 Galerkin有限元方法适用于控制方程的空间离散化,而对于时间离散化,则使用广义隐式单步方案。对于回热行为的数值模拟,我们选择了二氧化碳注入的简化测试案例。通过独立使用OGS和FeFlow模拟器在数值上解决了该测试案例。 OGS与FeFlow的不同之处在于能够表现出对回火行为的多组分影响。我们通过显示沿注入井的封闭温度曲线的紧密比较来验证这两个代码结果。由于JTC冷却速率与固体基质的体积热容量成反比,因此与非注入层相比,注入层的冷却速度更快。关闭的温度曲线显示储层温度发生了显着变化。因此,重要的是要考虑喷射监控中的热效应。

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