复杂分支井智能完井的高清建模

Ghazi D. AlQahtani, W. Shaker, Menhal Ismail, Shaalan Tareq, Ayub Jibran, Hoti Saud
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引用次数: 0

摘要

分支井的分支数量可以从2个到10个以上不等。为了控制分支段的产量,先进的完井设备,如流入控制阀(icv)和用于实时压力测量的双端口永久井下监测系统(PDHMS),安装在每个分支段的母孔中,以调节从单个或集体分支段流入油井生产油管的油藏流体。采用先进完井工具的多分支井成为油藏工程中的复杂井(以下简称“复杂井”)。最近的复杂井涉及多种设计和结构,其水平段的油藏暴露可达数千米。新一代智能多分支完井是Manara型井,该井使用膨胀封隔器将分支井分成若干段或隔室,Manara站在每个段上,用于量化液体速率、含水率和实时油藏压力测量。每个工位都配有电气控制阀,用于控制分段水平上不需要的流体产量。在这项工作中,建立了一个新的工作流程,利用GigaPOWERS (GP)模拟器和组成全油田模型对具有复杂建模特征的Manara井进行建模和历史匹配。建立的段级历史匹配工作流包括四个重要的里程碑。第一种是提前完井设计,在预处理工具的帮助下,将物理完井细节转换为基于网格的完井细节。第二步包括为GP模拟器生成三个复杂的、相关良好的输入文件。第三步是验证高频性能数据的过程,包括复杂井站的流量、节流尺寸和压力。最后一步是在每个独立站点的段级别上进行历史匹配练习,以获得最终的历史匹配模型。传统的历史匹配程序一般包括三个层次的匹配;场,群,井。在此工作流程中,首次使用超过6100万个网格单元的全域组成模型进行站级匹配。通过高频性能数据,在三边井组成的6个台站的分段级上实现了高清晰度历史匹配。GP中的复杂井建模包括多个组件的压降计算。压降与摩擦力、重力、加速度和先进工具(即ICV)有关。复杂井的建模涉及段级的几个模拟前和模拟后环境特征,这些特征应该完全一致。所获得的结果可以为复杂井的增量速率、现金流和敏感性预测案例提供准确的价值主张的业务影响评估。
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High Definition Modeling for Complex Multilateral Well with Smart Completions
Multilateral wells may vary in the number of laterals from two to even more than ten laterals. To control production on a lateral level, advance completion equipment, such as Inflow Control Valves (ICVs) and dual ported Permanent Down-hole Monitoring Systems (PDHMS) for real-time pressure measurements, are installed in the motherbore against each lateral to regulate reservoir fluids into the production tubing of the well from individual or collective set of laterals. Multilateral wells equipped with advance completion tools become complex wells (hereinafter called the "complex wells") in reservoir engineering. Recent complex wells involve multiple designs and architecture for which the reservoir exposure for laterals sums can be thousands of meters. A new generation of smart multilateral well completions are Manara type wells where the laterals are divided into a number of segments or compartments using oil swell packers and Manara stations are placed against each segment for quantifying liquid rate, water cut and real-time reservoir pressure measurements. Each station is equipped with electrical control valve for controlling unwanted fluid production at a segment level. In this work, a new workflow is established to model and history match Manara well with complex modeling features using the GigaPOWERS (GP) simulator and a compositional full field model. The established segment level history matching workflow includes four important milestones to achieve. The first is advance well completion design at which the physical well completion details are translated and converted into a grid based completion details with the help of pre-processing tools. The second step covers the generation of three complex well-related input files for the GP simulator. The third step is the process of validating high frequency performance data including flow rate, choke size and pressure for the complex well stations. The last step involves conducting the history matching exercise on a segment level for every individual station to achieve the final history match model. The conventional history match procedure includes generally three levels to match; field, group and well. In this workflow, station level match is done for the first time with a full field compositional model with a size of more than 61 million grid cells. The high definition history match is achieved at segment level for six stations that constitute a trilateral well with high frequency performance data. Complex well modeling in GP includes pressure drop calculations for several components. The pressure drops are related to friction, gravity, acceleration and advanced tools (i.e. ICV). Modeling a complex well involves several pre- and post-simulation environment features at the segment level that should work in complete consistency. The achieved outcome enables a business impact evaluation for an accurate value proposition for complex well incremental rates, cash flow streams and sensitivity prediction cases.
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