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首页> 外文期刊>Journal of Energy Resources Technology >Transient Simulation of Wellbore Pressure and Temperature During Gas-Well Testing
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Transient Simulation of Wellbore Pressure and Temperature During Gas-Well Testing

机译:气井测试过程中井筒压力和温度的瞬态模拟

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摘要

An abnormal phenomenon may occur during gas-well testing: the wellhead pressure initially rises and then drops when shutting-in a well; the wellhead pressure initially drops and then rises when opening a well. To determine why and how this phenomenon occurs, a transient nonisothermal wellbore flow model for gas-well testing is developed. Governing equations are based on depth- and time-dependent mass, momentum equations, and the gas state equation. Temperature is predicted using the unsteady-state heat transfer model of Hasan. Boundary conditions include the restriction of formation inflow and wellhead throttling to the flow. The difference equations are established based on the implicit central finite difference method. The model can simulate the influences of temperature and flux (mass velocity). The model also considers the effects of formation inflow and surface throttling on the system. The results indicate wellhead pressure under flowing temperature is higher than that under static temperature, thus causing the abnormal phenomenon. A larger pressure difference makes the abnormal phenomenon more significant. Without considering temperature variation, simulated wellhead pressure would not exhibit the abnormity. Without considering flux variation, simulated pressure curve is not smooth. A new model has thus been validated using a gas field example.
机译:气井测试过程中可能会出现异常现象:关闭井口时,井口压力先升高然后降低;打开井时,井口压力先下降,然后上升。为了确定这种现象发生的原因和方式,开发了用于气井测试的瞬态非等温井眼流动模型。控制方程基于与深度和时间有关的质量,动量方程和气态方程。使用Hasan的非稳态传热模型预测温度。边界条件包括地层流入的限制和井口对流的节流。基于隐式中心有限差分法建立差分方程。该模型可以模拟温度和通量(质量速度)的影响。该模型还考虑了地层流入和地表节流对系统的影响。结果表明,流动温度下的井口压力高于静态温度下的井口压力,从而引起异常现象。较大的压力差使异常现象更加明显。不考虑温度变化,模拟的井口压力将不会表现出异常。如果不考虑通量变化,模拟压力曲线将不平滑。因此,已使用气田实例验证了新模型。

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