泥浆脉冲遥测工具的侵蚀和结构完整性:数值模拟和实地研究

Elyyan Mohammad, Peng Yuan, Sami Muhammad, Hao Zhang, Xu Huang
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引用次数: 2

摘要

深水勘探和生产是业内最复杂的挑战之一,需要大量的资金投入和长期的承诺。海底油田在钻井、固井和作业过程中面临着特殊的挑战。任何停机都意味着项目延迟和生产损失。因此,在钻井作业过程中,获得高保真随钻测量(MWD)和随钻测井(LWD)工具的实时数据非常重要。泥浆脉冲遥测是一种广泛使用的将MWD和LWD数据传输到地面的方法。这些实时数据的可用性对于钻井作业的经济成功至关重要。因此,维护可操作的遥测系统,为井下钻井提供快速可靠的数据速率是非常重要的。然而,由于砂蚀导致的遥测系统故障可能会造成昂贵的损失,并给运营商带来停机和维护成本。因此,需要不断准确预测这些井下系统的位置和侵蚀速率。在本研究中,我们在早期工作的基础上,对泥浆脉冲遥测工具的侵蚀进行了全面调查,包括数值模拟和现场数据。在目前的工作中,我们进一步进行了数值分析:我们预测了高侵蚀速率的位置,并模拟了由于沙蚀及其对流体流动的影响而导致的设备拓扑变化。这一步的重要性在于捕捉几何形状变化对腐蚀速率的影响,使我们能够准确地估计工具的可靠性。此外,我们还研究了该工具的结构完整性以及砂蚀对其的影响。利用有限元分析(FEA)对侵蚀刀具的几何形状进行结构完整性分析。为了验证模型,模拟结果将与现场试验的侵蚀模式进行比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Erosion and Structural Integrity of Mud Pulse Telemetry Tools: Numerical Simulation and Field Studies
Deepwater exploration and production presents some of the industry's most complex challenges, requiring huge capital investment and long-term commitment. Subsea fields face exceptional challenges during drilling, cementing, and operations. Any downtime means project delay and lost production. Consequently, it is important to have real-time data from high-fidelity measurement-while-drilling (MWD) and logging-while-drilling (LWD) tools during drilling operations. Mud pulse telemetry is a widely used method to transmit MWD and LWD data to the surface. Availability of this real-time data is important for the economic success of the drilling operation. Consequently, it is important to maintain operational telemetry systems that provide fast and reliable data rates for downhole drilling. However, telemetry system failure due to sand erosion can be costly and cause downtime and maintenance costs to the operators. Hence, there is a constant need for accurate prediction of the location and erosion rate of these downhole systems. In this study, we build on our earlier work, where we presented a comprehensive investigation on erosion of mud pulse telemetry tools consisting of numerical simulations and field data. In the current work, we take the numerical analysis further: we predict the location of the high erosion rates and model equipment topological changes due to sand erosion and its impact to fluid flow. The importance of this step is to capture the effect of changing geometry on the erosion rate, enabling us to estimate the reliability of the tool accurately. In addition, we investigate the structural integrity of the tool and the effect that sand erosion has on it. Structural integrity analysis of the eroded tool geometry is performed using finite element analysis (FEA). For model validation, simulation results will be compared with erosion patterns from field tests.
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