A World-First: 3-Legged Lateral with Smart Completion, Smart Liners and Inflow-Tracers Across Low-Permeability Multi-Stacked Reservoirs

Shihabeldin Gharbawi, Dr. Kristian Mogensen, Abdelkader Aissaoui, Y. Bigno, O. Khan, Gaya Almazrouei, Shawn Almstrong, Meenakshi Subramanian, Alya Al Salati, O. Keshtta, A. Shokry
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Abstract

In a giant, mature UAE offshore field, consisting of complex multi-stacked heterogeneous reservoirs, the western part has been less developed, due to contrasted reservoir properties and low-permeability layers. The development in that part of the field was re-visited, to account for reservoir challenges and surface limitations. The objective was to achieve production mandates, understand reservoir behavior, while minimizing well count and expenditures associated with interventions and surveillance activities. To evaluate this challenging area of the field, a unique multi-lateral well was designed, targeting three distinct reservoirs, and allowing to concurrently produce and understand them in a viable manner. The reservoirs have poor characteristics, with permeability lower than 10 mD, except for the deeper one, which has some high permeability streaks. Accounting for the tight formations, each horizontal leg had to be stimulated efficiently, despite being inaccessible with coiled-tubing. In addition, well production had to be reliably back-allocated to each drain, and meet pre-defined reservoir guidelines. Despite contrasting properties, all three drains had to be produced at reasonable rates, avoiding that one drain would dominate the other two. And finally, enhanced reservoir understanding was required within each drain, with qualitative indication of their flow profile and associated reservoir conformance. The 3-legged multi-lateral oil producer was drilled and completed successfully. In each of the three horizontal laterals, totaling more than 15,000 feet length, drop-off limited-entry ‘Smart Liners’ were installed, to allow bull-heading stimulation. This offered an effective high-volume matrix acidizing method, adapted to the contrasted properties and tight zones encountered along the laterals. The well was equipped with permanent downhole gauges and inflow control valves (ICV's) to dynamically monitor downhole contributions, modulate production from each drain, avoiding well delivery to be dominated by the highest potential reservoir and control unwanted water/gas production to the surface. To complete the picture, chemical in-flow tracers were installed, in the tubing and within each drain, to monitor the laterals’ flow profiles and performance, and measure the individual contribution from each reservoir. This aimed to determine the efficiency of the ‘Smart Liners’ design and proved a cost-effective option to quantify the contribution from the laterals, compared to running regular PLTs. The resulting pilot is the first well in the world to combine a smart completion with three limited entry ‘smart liners’ utilizing drop-off technique and chemical inflow tracers. The pilot well, which behavior is being evaluated over 2021, provides a groundbreaking approach to evaluate and unlock hydrocarbon resources in a poorly developed area of the field, allowing a significant optimization of well count and of associated capital and operating expenditures.
世界首创:采用智能完井、智能尾管和流入示踪剂的3腿分支井,可穿越低渗透多层油藏
阿联酋是一个大型成熟海上油田,由复杂的多层非均质储层组成,由于储层物性差异和低渗透层,西部开发程度较低。考虑到储层的挑战和地面的限制,对该油田的开发进行了重新考察。目标是完成生产任务,了解油藏动态,同时最大限度地减少井数和与干预和监测活动相关的支出。为了评估这一具有挑战性的区域,设计了一口独特的多分支井,针对三个不同的储层,并允许以可行的方式同时生产和了解它们。储层特征较差,渗透率均低于10 mD,但深层储层存在一些高渗透条纹。考虑到致密地层,尽管连续油管无法进入,但每个水平分支都必须进行高效增产。此外,井的产量必须可靠地分配到每个泄油口,并满足预先定义的油藏准则。尽管有不同的特性,但所有三个排水管必须以合理的速度产生,避免一个排水管支配其他两个排水管。最后,需要加强对每个泄油口内储层的了解,对其流动剖面和相关的储层一致性进行定性指示。3腿多分支采油器顺利钻完井。在三个总长度超过15,000英尺的水平分支中,每一个分支都安装了下入受限的“智能尾管”,以实现多头增产。这提供了一种有效的大容量基质酸化方法,适用于对比性质和横向遇到的致密层。该井配备了永久性井下仪表和流入控制阀(ICV),以动态监测井下贡献,调节每个排液口的产量,避免由潜力最大的储层控制井的输送,并控制不需要的水/气生产到地面。为了完成这幅图,在油管和每个泄油口内安装了化学流动示踪剂,以监测分支的流动剖面和性能,并测量每个储层的单独贡献。该研究旨在确定“智能尾管”设计的效率,并证明与常规的plt相比,这是一种经济有效的选择,可以量化分支井的贡献。该试验井是世界上第一口将智能完井与三个有限进井“智能尾管”相结合的井,该尾管采用了下放技术和化学流入示踪剂。该试验井将在2021年进行评估,为油田欠发达地区的油气资源评估和开发提供了一种开创性的方法,可以显著优化井数以及相关的资本和运营支出。
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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