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Practical Reservoir Management Strategy to Optimize Waterflooded Pools with Minimum Capital Employed

机译:实用水库管理策略,以优化最低资本的水运池优化

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In this consistently low oil price environment, where infill drilling and new field developments struggle to meet economic metrics, production optimization continues to be a focus and driver for the industry. Currently, waterflooding contributes significantly to global oil production and is one of the main non- thermal techniques that can be applied to increase pool recovery. Although proper reservoir management of assets under Waterflood (WF) is critical to reaching the highest recovery factor (RF) possible, it is difficult to achieve and maintain given the inherent dynamic nature of the production mechanism. Further, to achieve optimum reservoir management while providing the opportunity to leverage alternative enhanced oil recovery (EOR) technology, the existing subsurface and surface infrastructure should be fully optimized. By optimizing the subsurface and surface infrastructure in parallel with achieving optimum reservoir management it will result in higher capital efficiency while improving key economic metrics such as operating expenditure (Opex), reserve replacement ratio, depreciation depletion & amortization (DD&A), and overall earnings. Given the existing challenges that include reservoir conformance problems, lack of reservoir energy, excess fluid production, wellbore and pipeline integrity issues, and infrastructure constraints, how to fully optimize the current infrastructure while achieving optimum reservoir management in parallel is the main question and challenge. Husky Energy’s medium oil reservoir management strategy has been highly successful in reinforcing WF as a sustainable long-term recovery method. This paper will present a practical workflow to tackle the challenges highlighted by using a systematic reservoir and production engineering approach with minimum additional capital expenditure (Capex). First, a robust framework was developed to answer three main questions: "What is happening?", "Why is it happening?" and "How can it be improved?". Then, a comprehensive dynamic surveillance methodology, consisting of both numerical and analytical techniques and a 10-step workflow for optimizing a WF project, is discussed. This is followed by the results achieved by employing this strategy in three of Husky’s WF fields; the Wainwright Sparky, Wildmere Lloydminster and Marsden-Manitou Sparky pools located in the Lloydminster oil block. The positive impact that this reservoir management process has had on all key financial metrics will be discussed. As an example, since the beginning of the optimization initiative the Wainwright and Wildmere pool production has increased 21% and 23% respectively, while the Opex has decreased by 33% and 42%, respectively. Further, since implementing a similar strategy in 2016 at the Marsden-Manitou WF, its production has increased by 30% and its Opex has decreased by more than 18%. Finally, this paper will present a WF protocol check list that has been developed as a guideline for engineers who need to optimize pool performance even in a capital constrained environment.
机译:在这一始终如一的低油价环境中,筛分钻井和新的现场发展斗争以满足经济指标,生产优化仍然是该行业的重点和司机。目前,水上型贡献了全球石油生产的贡献,是可以应用于增加池恢复的主要原型之一。虽然水泡(WF)下资产的适当水库管理对于达到最高的恢复因子(RF)至关重要,但由于生产机制的固有动态性质,难以实现和维护。此外,为了实现最佳的水库管理,同时提供利用替代增强的石油回收(EOR)技术的机会,应全面优化现有的地下和表面基础设施。通过与实现最佳油藏管理进行优化的地下和表面基础设施,它将导致更高的资本效率,同时提高经营支出(OPEX),储备替代率,折旧耗尽和摊销(DD&A)和总体收益等关键经济指标。鉴于包括储层一致性问题的现有挑战,缺乏水库能源,过量的流体生产,井筒和管道诚信问题以及基础设施限制,如何完全优化当前基础设施,同时同时平行实现最佳水库管理是主要的问询和挑战。哈士奇能源的中型石油储层管理战略在加强WF作为可持续的长期恢复方法方面得到了高度成功。本文将展示一个实用的工作流程,以解决利用系统水库和生产工程方法,以最低额外的资本支出(CAPEX)来解决突出的挑战。首先,开发了一个强大的框架来回答三个主要问题:“发生了什么?”,“为什么发生?”和“怎样才能改善?”。然后,讨论了综合动态监测方法,包括数值和分析技术和用于优化WF项目的10步工作流程。其次是通过在赫斯基的三个哈士奇的WF领域采用这一战略来实现的结果; Wainwright Sparky,Wildmere Lloydminster和Marsden-Manitou Sparky Pools位于Lloydminster油箱。将讨论该水库管理进程所有关键金融指标的积极影响。作为一个例子,由于优化倡议的开始,威拓和野外池产量分别增加了21%和23%,而OPEX分别降低了33%和42%。此外,由于2016年在Marsden-Manitou WF在2016年实施类似的策略,其产量增加了30%,其OPEX减少了18%以上。最后,本文将提出WF协议检查列表,该列表已成为需要优化池性能的工程师的指导性,即使在资本受限的环境中也是如此。

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