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Study of phase behavior and physical properties of a natural gas reservoir with high carbon dioxide content

机译:高二氧化碳含量天然气储层的相行为和物理性质研究

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摘要

The discovery of natural gas reservoirs with high and varying CO2 content (5% to 98%) in China has attracted worldwide attention. In this paper, the phase diagram of natural gas with different CO2 content was calculated and drawn by PVT Sim 100 which was fitted by experimental data based on the Ruska PVT 2730 apparatus. Both the real critical parameters and the pseudo-critical parameters were calculated and compared. Also, the phase state of natural gas along the wellbore in a representative well under both shut-in and flowing conditions was analyzed. In addition, to clarifying the phase transition process, videos of a gas sample showed variation between supercritical state to gas-liquid state with isobaric cooling and heating up between 35 degrees C and 25 degrees C. Moreover, the compressibility factor (Z-factor) of the natural gas with different CO2 content was chosen as one of the key physical parameters of natural gas to measure at pressures ranging from atmospheric pressure to 45 MPa and temperatures ranging from 40 degrees C to 140 degrees C experimentally. Results show that the Z factor decreases with the increase of CO2 content in natural gas at isothermal conditions, and increases with the increase of temperature. Furthermore, a new model is proposed to predict pressure and Z factor. The varying CO2-CH4 concentrations of this reservoir are relevant to gas compositions which may arise in depleted natural gas reservoirs used for geologic carbon sequestration. (c) 2015 Society of Chemical Industry and John Wiley & Sons, Ltd
机译:在中国,二氧化碳含量高(5%至98%)的天然气藏的发现引起了全世界的关注。本文利用PVT Sim 100计算并绘制了不同CO2含量的天然气的相图,该图根据Ruska PVT 2730装置的实验数据进行拟合。计算并比较了实际关键参数和伪关键参数。此外,还分析了在关井条件和流动条件下沿代表性井中的天然气沿井眼的相态。此外,为弄清相变过程,气体样品的视频显示了在等压冷却和加热至35摄氏度至25摄氏度之间时,超临界状态到气液状态之间的变化。此外,压缩系数(Z系数)选择具有不同CO2含量的天然气中的一部分作为天然气的关键物理参数之一,以实验方法在大气压至45 MPa的压力和40摄氏度至140摄氏度的温度范围内进行测量。结果表明,在等温条件下,Z因子随天然气中CO2含量的增加而降低,随温度的升高而增加。此外,提出了一种新的模型来预测压力和Z因子。该储层中不断变化的CO2-CH4浓度与在地质封存中用尽的天然气储层中可能产生的气体成分有关。 (c)2015年化学工业协会和John Wiley&Sons,Ltd

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