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Erosion of Mud Pulse Telemetry Tools: Numerical Simulation and Field Studies

机译:泥浆脉冲遥测工具的侵蚀:数值模拟与现场研究

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The economic success of many drilling operations depends on the availability and reliability of realtime information about the drilling process. Mud pulse telemetry is currently the most common method of transmitting measurement-while-drilling (MWD) and logging-while-drilling (LWD) data. Advances in downhole sensing for drilling optimization and formation evaluation are placing heavy demands on telemetry systems to provide fast and reliable data rates from greater depths. However, solid particle erosion poses a significant problem for telemetry tools, where solid particle (such as sand) impingement could damage the tool string and shorten the service life of the tools. Therefore, a comprehensive investigation on erosion of mud pulse telemetry tools consisting of numerical simulation and field tests is often required to optimize the tool design. In the field, many factors can influence telemetry tool erosion such as material properties, sand size, geometry, flow velocity, operating pressure, and turbulence. These factors interact with each other, making the experimental study of all influencing parameters very challenging and time-consuming. In this work, computational fluid dynamics (CFD) simulations were used to study the effect of several parameters on the erosion rate, even in complex geometries where setting up an experimental study is difficult. The erosion rate was determined using the widely used Oka erosion model. Parameter studies were then performed to find the influence of flow rate and sand concentration on the erosion rate. Simulation was also performed to support the deployment of new engineered materials. For model validation, simulation results were compared with erosion patterns from field tests, showing good agreement between field observations and simulation results. Based on findings from the parameter studies, a formula of key performance indication (KPI) parameter was developed to evaluate the erosion performance of the mud pulse telemetry tools deployed in the field. After completing the field experiments, 3D laser scans of the deployed tools with different materials were performed. In addition, KPI values were calculated based on the scanning results to evaluate the actual erosion performance. Evaluation revealed that the new engineered alloy was eight times more erosionresistant than stainless steel, which was consistent with the CFD simulation results. The results of this study indicate that CFD simulation provided an alternate way to predict solid particle erosion on logging tools in downhole environments. By using the high-fidelity erosion model, the tool erosion rate could be accurately predicted. Based on this conclusion, the erosion risk can be mitigated by providing guidance on repair and maintenance intervals and planning the drilling process to avoid premature tool failures. This approach will eventually improve the reliability and safety of downhole tool and reduce non-productive time (NPT) and costs.
机译:许多钻探操作的经济成功取决于关于钻井过程的实时信息的可用性和可靠性。 Mud Pulse遥测是目前最常用的方法是在钻孔(MWD)和钻孔时发送测量的最常见方法和钻孔(LWD)数据。钻井优化的井下感应的进步和地层评估在遥测系统中对遥测系统进行了重大需求,以提供更大的深度的快速可靠的数据速率。然而,固体粒子侵蚀对遥测工具构成了重大问题,其中固体粒子(如沙子)冲击可能会损坏工具串并缩短工具的使用寿命。因此,通常需要对由数值模拟和现场测试组成的泥浆脉冲遥测工具侵蚀的全面调查,以优化工具设计。在该领域中,许多因素可以影响遥测工具侵蚀,例如材料特性,砂尺寸,几何形状,流速,操作压力和湍流。这些因素相互互动,使得所有影响参数的实验研究非常具有挑战性和耗时。在这项工作中,使用计算流体动力学(CFD)模拟用于研究几个参数对侵蚀速率的影响,即使在难以建立实验研究的复杂几何形状中。使用广泛使用的OKA侵蚀模型确定侵蚀速率。然后进行参数研究以发现流速和砂浓度对侵蚀率的影响。还执行了模拟以支持新工程材料的部署。对于模型验证,将仿真结果与现场测试的侵蚀模式进行了比较,在现场观测和仿真结果之间显示出良好的一致性。根据参数研究的发现,开发了一种关键性能指示(KPI)参数的公式,以评估部署在该领域的泥浆脉冲遥测工具的侵蚀性能。在完成现场实验后,进行具有不同材料的展开工具的3D激光扫描。此外,基于扫描结果计算KPI值,以评估实际的侵蚀性能。评价显示,新的工程合金比不锈钢渗透剂的八倍,这与CFD仿真结果一致。该研究的结果表明,CFD仿真提供了一种替代方法来预测井下环境中的测井工具上的固体粒子侵蚀。通过使用高保真侵蚀模型,可以准确地预测工具侵蚀率。基于此结论,通过提供修理和维护间隔的指导并规划钻井过程以避免早产工具故障,可以减轻侵蚀风险。这种方法最终将提高井下工具的可靠性和安全性,并减少非生产时间(NPT)和成本。

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