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Propagation velocity and time laws of backpressure wave in the wellbore during managed pressure drilling

机译:受控压力钻井过程中井筒中反压波的传播速度和时间规律

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摘要

When gas invasion, especially overflow, occurs at the bottom hole in the process of managed pressure drilling (MPD), it is common to apply backpressure on the wellbore by adjusting the backpressure pump and throttle valve, so as to rebuild bottom hole pressure balance. If it is still thought that the wellhead backpressure is loaded to the bottom hole instantaneously, there will be larger errors between the calculated wellbore parameters and the actual wellbore flow parameters, which will result in well control failure and even well blowout. In this paper, a pressure wave propagation equation suitable for the gas–liquid two-phase flow in the annulus was established based on the global averaged gas–liquid two-phase flow model to investigate the propagation velocity and time of backpressure wave in the wellbore. Then, gas–liquid interaction was introduced to carry out coupling solution on the equation set. It is shown that pressure wave velocity increases with the increase of drilling mud density, but decreases with the increase of void fraction and virtual mass force coefficient. It changes drastically at first, and then slows down. What's more, when the void fraction is greater than 0.1 or the virtual mass force coefficient exceeds 0.2, the momentum between gas phase and liquid phase is fully exchanged, and the pressure wave velocity decreases slowly, approaching a stable value. In Well Penglai 9 in the Sichuan Basin, for example, the average time of single pressure wave propagation is about 50?s, and the total propagation time of 4 rounds is about 200?s, which accounts for more than 67% of the total time of system control response. It is indicated that the propagation velocity and time of the pressure wave in the annulus calculated by this method can greatly improve the accuracy of managed pressure response time of MPD drilling system and the control precision of adaptive throttle valve.
机译:在有序压力钻井(MPD)过程中,当井底发生气体入侵,特别是溢流时,通常通过调节背压泵和节流阀在井筒上施加背压,以重建井底压力平衡。如果仍然认为井口背压是瞬间加载到井底的,那么在计算出的井眼参数和实际井眼流量参数之间会存在较大的误差,这将导致井控故障甚至井喷。本文基于整体平均气液两相流模型,建立了适用于环空内气液两相流的压力波传播方程,研究了井筒中反压波的传播速度和时间。 。然后,引入气液相互作用,对方程组进行耦合解。结果表明,压力波速度随钻探泥浆密度的增加而增加,随孔隙率和虚质量力系数的增加而减小。首先,它急剧变化,然后变慢。此外,当空隙率大于0.1或虚拟质量力系数超过0.2时,气相和液相之间的动量被充分交换,并且压力波速度缓慢下降,接近稳定值。以四川盆地蓬莱9井为例,单次压力波传播的平均时间约为50?s,四轮总传播时间约为200?s,占总数的67%以上。系统控制响应时间。结果表明,该方法计算得到的压力波在环空中的传播速度和时间,可以大大提高MPD钻井系统管理压力响应时间的精度,提高自适应节流阀的控制精度。

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