A Breakthrough in Completion Technology—Development of Interventionless Hydrostatic-Set Isolation Packer for High-Pressure, Ultradeep Well

S. Gupta, J. Singh, A. Rudic, Agnes Tan, D. Chua, K. G. Goh, Abhinandan Tripathi
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Abstract

An ultradeep well, as commonly drilled in the Gulf of Mexico, can run up to 35,000 ft of total depth. The pressure at such depths is extremely high, at approximately 22,500 psi. These wells require highly specialized rigs with expensive day rates; therefore, a significant part of the cost to drill and complete a well is the rig time. As such, minimizing the rig time results in significant cost savings. Often, these wells have a high deviation angle and "S" curve, placing the completion packers at the limits of wireline access. Therefore, completion planning is critical for a successful well completion execution and to reduce the rig time and operational risks. One way to eliminate multiple trips is to set the packer using interventionless methods. Many commercial products are available with designs using hydrostatic setting by means of atmospheric chamber(s), pressure pulse telemetry, and hydro-mechanical-chemical devices. However, these are not designed for the pressure demands of ultradeep wells. After careful consideration of the available products, a new high-performance, modular, removable, interventionless high-pressure-rated production packer that conforms with API SPEC 11D1 (2009) V0 validation grade was developed. Under a tight development schedule, the new product was developed to meet the needs of ultradeep well completions. The packer comprises slips for anchoring and elastomeric elements to provide a sealing capability for zonal isolation. A packer setting module was developed to be attached to the bottom of the packer and set the packer by enabling a fixed volume of high-pressure control fluid to flow from the packer setting chamber to the atmospheric chamber through an intricate flow conduit. An analytical calculation was performed to estimate the resistance coefficient for each feature of the flow conduit, which helped to calculate the macro-level flow characteristics (flow rate, overall packer setting time, and setting piston speed) and the micro-level flow characteristics (Reynolds number, differential pressure, kinetic head, and head losses at steady-state conditions) as well as to optimize the setting mechanism design. The same characteristics for transient flow were evaluated using computational fluid dynamics (CFD) analysis. An experimental proof-of-concept test was conducted on a small-scale version of the flow conduit and, to understand and validate the analytical flow behavior prediction and further optimize the flow conduit, an in-situ high-speed data-acquisition monitoring system was designed to record transient behavior at a high rate of 20,000 samples per second. The measured characteristics from the experimental test matched well with the analytical calculations and CFD analysis. Component-level testing was conducted on the packer element to verify element integrity at 15,000- and 20,000-psi isolation differential pressures. The component-level test was successful, enabling further rigorous testing per API SPEC 11D1 (2009) V0 validation grade, and the packer was successfully set at hydrostatic pressures of 5,000 and 27,500 psi and was validated for the full operating envelope in the unplugged condition, with an isolation differential pressure of 15,000 psi and an axial load of 600,000 lbf in a temperature range from 100 to 300°F. As a result, a breakthrough in technology was achieved by developing a high-pressure hydrostatic packer providing interventionless zonal isolation for an ultradeep well.
高压超深井无干预静液坐封隔离封隔器的研制
在墨西哥湾通常钻探的一口超深井,总深度可达35000英尺。这种深度的压力非常高,约为22500 psi。这些井需要高度专业化的钻机,日费昂贵;因此,钻井和完井成本的很大一部分是钻机时间。因此,最小化钻井时间可以显著节省成本。通常,这些井具有大斜度和“S”型曲线,将完井封隔器置于电缆进入的极限。因此,完井计划对于成功完成完井作业、减少钻井时间和作业风险至关重要。避免多次下钻的一种方法是使用无干预方法坐封封隔器。许多商业产品都有使用静压设置的设计,通过大气室、压力脉冲遥测和水-机械-化学装置。然而,这些都不是为超深井的压力需求而设计的。经过对现有产品的仔细考虑,开发出了一种新的高性能、模块化、可拆卸、无干预的高压额定生产封隔器,符合API SPEC 11D1 (2009) V0验证等级。在紧张的开发进度下,新产品的开发是为了满足超深井完井的需求。封隔器包括用于锚定的卡瓦和弹性元件,为层间隔离提供密封能力。开发了一个封隔器坐封模块,连接到封隔器底部,通过一个复杂的流动管道,使固定体积的高压控制流体从封隔器坐封室流向大气室,从而坐封封隔器。通过分析计算,估算了流道各特性的阻力系数,从而计算出宏观流动特性(流量、封隔器整体坐封时间和坐封活塞速度)和微观流动特性(雷诺数、压差、动态水头和稳态条件下的水头损失),并优化坐封机构设计。利用计算流体动力学(CFD)分析对瞬态流动的相同特性进行了评估。为了理解和验证分析的流动行为预测,并进一步优化流动管道,设计了一个现场高速数据采集监测系统,以每秒20,000个样本的高速率记录瞬态行为。实验测试的实测特性与分析计算和CFD分析吻合较好。在15,000 psi和20,000 psi的隔离压差下,对封隔器元件进行了组件级测试,以验证元件的完整性。组件级测试取得了成功,根据API SPEC 11D1 (2009) V0验证等级进行了进一步的严格测试,封隔器在静水压力为5,000和27,500 psi的情况下成功坐封,并在无堵塞条件下进行了完整的操作验证,隔离压差为15,000 psi,轴向载荷为600,000 lbf,温度范围为100°F至300°F。因此,开发出了一种高压静液封隔器,为超深井提供了无需干预的分层隔离,实现了技术上的突破。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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