地质力学合作——解决钻井挑战的整体方法

M. Omer, Tosin Odunlami, Carlos Iturrious
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摘要

随着能源需求的不断增长,中东地区的运营商现在正专注于开发非常规资源。为了优化水力压裂增产效果,大多数深层气井都需要沿水平应力最小的方向进行横向钻井。然而,由于井眼不稳定、差异卡钻和高过平衡压力造成的表皮损伤,这增加了卡钻的风险,这使得这些井的钻井具有挑战性且成本高昂。中东地区的另一个主要挑战是由于碳酸盐岩储层的天然裂缝造成的井漏。目前,全球油气行业每年的漏失损失约为8.5 -9亿美元(Marinescu 2014)。本文提出了一个案例研究,其中整体方法;将地质力学与钻井技术相结合,解决了非常规和天然裂缝油藏的钻井挑战。最终,该方法帮助客户解决了卡钻问题,同时提出了一种基于物理/工程的方法,通过密封裂缝来减少损失,从而为优化钻井和减少相关非生产时间(NPT)的危害提供了路线图。本文展示了一种综合方法,将井筒稳定性分析、控压钻井(MPD)相结合,提出了一种新的基于物理/工程的方法来解决井漏问题。首先建立了一维井筒稳定性模型,以确定安全的井下作业压力极限,并有效评估与计划井筒方向相关的钻井风险。通过准确确定所需的井底压力来防止井筒稳定性问题,控压钻井技术可以降低过平衡压力,保持井底压力恒定,并通过即时调整井下压力来加快反应时间,从而改善钻井危害。双颗粒可生物降解系统被用作漏失材料(LCM)。以预定速率流动的较大尺寸的圆柱形颗粒将在裂缝间隙形成桥或塞,提供机械稳定性,较小的球形颗粒将通过有效密封裂缝开口来密封桥中的间隙。从经验来看,孤立地实施这些方法和技术并没有产生令人满意的结果。这表明,为了有效解决非常规和天然裂缝油藏带来的钻井挑战,需要从早期规划阶段就利用各个学科的优势进行合作。对于本文重点介绍的案例研究,该井及时钻至TD,同时保持了井眼的完整性,从而证实了该方法的可行性。此外,双颗粒可生物降解LCM的物理和工程设计工作流程展示了如何在不损害地层表皮的情况下有效地减少漏失
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Geomechanics in Partnership – A Holistic Approach to Solving Drilling Challenges
With rising energy demand, operators in the Middle East are now focusing on developing unconventional resources. To optimize hydraulic fracture stimulation, most of these deep gas wells are required to be drilled laterally and in the direction of the minimum horizontal stress. However, this poses an increased risk of stuck pipe due to hole instability, differential sticking and skin damage due to high overbalance pressures, which makes drilling these wells challenging and costly. Another major challenge in the Middle East is lost circulation due to natural fractures in carbonate reservoirs. Lost circulation currently accounts for loss of approximately $850-900 million USD per year globally across the industry (Marinescu 2014). This paper presents a case study where a holistic approach; combining geomechanics and drilling technologies were employed to address the drilling challenges specific to unconventional and naturally fractured reservoirs. Ultimately, this approach helped the client to mitigate stuck pipe issues, while proposing a physics/engineering-basedmethodology to reduce losses by sealing fractures, hence providing a roadmap to optimized drilling and mitigation of hazards with associated Non-Productive Time (NPT). The paper demonstrates a holistic approach, combining wellbore stability analysis, managed pressure drilling (MPD) and proposes a novel physics/engineering-based methodology for addressing lost circulation challenges. A 1-D wellbore stability model is initially developed to determine the safe operating downhole pressure limits and to effectively assess the drilling risks associated with the planned wellbore orientation. By accurately determining the required bottomhole pressure to prevent wellbore stability problems, managed pressure drilling technology can be implemented to provide improved drilling hazard mitigation by enabling reduced overbalance pressures, constant bottomhole pressure, and faster reaction time by instantaneously adjusting downhole pressures. A bi-particulate bio-degradable system is used as a lost circulation material (LCM). The bigger size cylindrical particles flowing at a pre-defined rate will form a bridge or a plug across the fracture aperture, providing mechanical stability and the smaller spherical particles will seal the gaps in the bridge there by providing an effective sealing of the fracture opening. From experience, implementing these methodologies and technologies in isolation has not provided satisfactory results. This indicates that a partnership which leverages the strengths of the individual disciplines from the early planning stages is necessary to effectively address the drilling challenges posed by unconventional and naturally fractured reservoirs. For the case study highlighted in this paper, the well was drilled to TD in a timely manner, while maintaining the integrity of the hole, hence confirming the viability of this approach. In addition, the physics and engineering design workflow for bi-particulate bio-degradable LCM demonstrates how it can be effectively deployed to mitigate lost circulation without skin damage to the formation
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