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首页> 外文期刊>Journal of Energy Resources Technology >Dynamical Simulation of High-Pressure Gas Kick in Ultra-Deepwater Riserless Drilling
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Dynamical Simulation of High-Pressure Gas Kick in Ultra-Deepwater Riserless Drilling

机译:超深水钻孔中高压气体踢的动力模拟

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摘要

During riserless drilling for ultra-deepwater gas wells, well control challenges induced by high-pressure gas kick will be faced. A two-phase flow model with consideration of high-pressure gas invasion during riserless drilling was proposed, and the model was proved to be more accurate for predicting high-pressure gas kick during riserless drilling by reproducing field data and comparison with published models. Then, a dynamical simulation of high-pressure gas kick in ultra-deepwater riserless drilling was presented. Results showed that during ultra-deepwater riserless drilling, the bottom hole pressure will be underestimated, while pit gain will be over-estimated without considering the gas acceleration effect. With the consideration of gas acceleration effect at high-pressure well bottom, the gas influx rate increases rapidly with the kick time and tends to be stable after a period of time as negative pressure difference at well bottom increases. During riserless drilling, according to the timeliness and effectivity of kick detection methods, pit gain is prior for kick detection, following bottom hole pressure, standpipe pressure, and return rate. Moreover, if early gas kick was not detected, the rapid increase in change rate of standpipe pressure and return rate can be regarded as an indicator, showing that gas is reaching mud line. Besides, the effects of shutoff time, drilling displacement, drilling fluid density increases, geothermal gradient, and reservoir permeability on kick indicators and wellbore pressure have been discussed. The research results could provide important theoretical bases and technical guidance for well control aspects of riserless drilling.
机译:在无狭钻井期间,对超深水煤气井进行钻井,良好的控制挑战将面临高压气体踢源。提出了一种两相流程模型,考虑到无筛钻井期间的高压气体侵蚀,并且通过再现现场数据并与已发表的模型进行比较,该模型被证明更准确地预测在无异石钻井期间的高压气体踢。然后,提出了超深水钻孔中高压气体钻孔的动态模拟。结果表明,在超深水无异石钻孔期间,底部孔压力将低估,而坑收益将过度估计,而不考虑气体加速度效果。随着在高压阱底部的气体加速度效应的考虑,气体流入速率随着返回时间而迅速增加,并且在一段时间后趋于稳定,因为井底的负压差增加。在无狭钻井期间,根据踢的检测方法的及时性和有效性,坑收益是在踢球检测之前,底部孔压力,立管压力和返回率。此外,如果未检测到早期气体踢,则可以将待命压力和返回率的变化率的快速增加视为指标,显示气体正在达到泥浆线。此外,已经讨论了截止时间,钻孔位移,钻孔流体密度增加,地热梯度和储层渗透性对踢腿指示剂和井眼压力的影响。研究成果可以为无狭钻井的良好控制方面提供重要的理论基础和技术指导。

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