首页> 外文会议>IADC/SPE Drilling Conference and Exhibition >Differentiate Drilling Fluid Thermal Expansion, Well bore Ballooning and Real Kick during Flow Check with an Innovative Combination of Transient Simulation and Pumps off Annular Pressure While Drilling
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Differentiate Drilling Fluid Thermal Expansion, Well bore Ballooning and Real Kick during Flow Check with an Innovative Combination of Transient Simulation and Pumps off Annular Pressure While Drilling

机译:钻孔钻孔流体热膨胀,井膨胀和实际踢在流动检查期间,通过瞬态仿真的创新组合,钻探环形压力

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To achieve a high level of drilling efficiency, it is paramount to correctly identify reasons of drilling events from available data in a timely fashion. Many surface or downhole events share common root causes. Drilling fluid thermal expansion, wellbore ballooning and formation kick share similarities in terms of surface observation such as pit gain volumes. However, resolution for each of them is completed in a totally different manner. Treating a wellbore ballooning effect in the same way as a kick will likely result in losing the current borehole after days or weeks of unsuccessful operations. In this study, pressure while drilling technologies and software simulations are discussed to analyze variances in the wellbore parameters over time to investigate drilling fluid thermal expansion, wellbore ballooning and formation influx during flow checks in riserless drilling operations. A transient simulation software was used to study the fraction of gas in the annulus and fluid level inside the drillstring on several flow checks following flow and gas bubbles at the well head. Availability of continuous pumps off annular pressure while drilling measurement helps calibrate the simulations and verify its validity. A new workflow combining modelling, simulations and downhole annular pressure profiling measurement was successfully applied to a riserless pilot hole deep water well Gulf of Mexico. The flow contribution from each drilling fluid thermal expansion, wellbore ballooning, formation influx and u-tube flow was identified and decomposed. Transient flow simulator working together with pressure while drilling data gave the operator an exact knowledge of wellbore dynamics in an operation usually performed with limited information. This proved extremely valuable in the pursuit of drilling prospect.
机译:为了实现高水平的钻井效率,可以将钻探事件的原因及时地确定钻探事件的原因至关重要。许多表面或井下事件共享常见的根本原因。钻井液热膨胀,井筒膨胀和形成踢在表面观察方面的相似性,如坑增益量。但是,它们中的每一个的分辨率都以完全不同的方式完成。以与踢球相同的方式处理井筒膨胀效果可能导致在几天或几周内失败的操作后失去当前钻孔。在这项研究中,讨论了压力,同时讨论了钻井技术和软件模拟,以随着时间的推移来分析井筒参数的差异,以研究流动的流体热膨胀,井筒膨胀和形成流入在无狭钻孔操作中。瞬态仿真软件用于研究钻头内钻头内的环和液位中的气体分数,然后在井头的流动和气泡之后检查。钻孔测量的同时连续泵的可用性有助于校准模拟并验证其有效性。结合建模,模拟和井下环形压力分析测量的新工作流程成功地应用于墨西哥的无异石飞行员深水井。鉴定并分解了每个钻井液热膨胀,井筒膨胀,形成流入和U形管流动的流动贡献。瞬态流量模拟器与压力一起工作,同时钻井数据给出了操作者在通常用有限信息执行的操作中进行井筒动力学的精确知识。这在追求钻井前景时证明了非常有价值。

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