Li Jingcui, Wan Jifang, Liu Hangming, Yi Xianzhong, He Yuxian, Chen Kang, Zhao Xinbo
CNPC Engineering Technology R&D Company Limited, Beijing 102206, China.
School of Mechanical Engineering, Yangtze University, Jingzhou 434023, China.
Materials (Basel). 2022 Dec 31;16(1):386. doi: 10.3390/ma16010386.
The casing leakage phenomenon seriously affects the safety and economic problems of oil and gas production and transportation. In this paper, the numerical simulation study of the casing's micro-leakage flow field and acoustic field is carried out by taking the oil and gas well casing as the research object. The CFD numerical model of the casing micro-leakage is established, and the influence of the size of the leakage hole, the shape of the leakage hole, and the pressure difference between the inside and outside the casing on the microleakage flow field is analyzed. An acoustic-vibroacoustic coupling calculation model based on Fluent and LMS Virtual LAB is established, and the sound pressure value and distribution at different frequencies are calculated. The results show that the flow rate of the leakage hole increases with the pressure difference between the inside and the outside leakage hole and the area of the leakage hole. Moreover, the flow rate of the circular leakage hole is higher for the same leakage hole area. The simulation model based on the equivalent sound source can be used to calculate and analyze the sound field in the tubing. By sound field computation based on the near-field equivalent sound source, when the frequency is 32,000 Hz, the amplitude of sound pressure is maximum. In addition, the sound pressure is greatly reduced once the sound wave passes through the tubing pipeline. Lastly, the sound pressure is higher at the position facing the leakage hole in the tubing, making detecting the leakage sound field signal easier. The results can provide a reference for further research on oil casing microleakage detection technology.
套管泄漏现象严重影响油气生产和输送的安全性与经济性问题。本文以油气井套管为研究对象,开展了套管微泄漏流场与声场的数值模拟研究。建立了套管微泄漏的CFD数值模型,分析了泄漏孔尺寸、泄漏孔形状以及套管内外压差对微泄漏流场的影响。建立了基于Fluent和LMS Virtual LAB的声学 - 振动声学耦合计算模型,计算了不同频率下的声压值及分布。结果表明,泄漏孔的流量随泄漏孔内外压差和泄漏孔面积的增大而增大。且对于相同的泄漏孔面积,圆形泄漏孔的流量更高。基于等效声源的仿真模型可用于计算和分析油管内的声场。通过基于近场等效声源的声场计算,当频率为32000 Hz时,声压幅值最大。此外,声波一旦穿过油管管道,声压会大幅降低。最后,油管中面对泄漏孔的位置声压较高,使得泄漏声场信号检测更容易。研究结果可为进一步开展油套管微泄漏检测技术研究提供参考。