Openhole Multistage Completion Evaluation Incorporating Deployment of Downhole Shut-in Tool Application in Sour Carbonate Gas Wells, Field Application

Mauricio Espinosa, Jairo Leal, R. Zbitowsky, E. Pacheco
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引用次数: 1

Abstract

This paper highlights the first successful application of a field deployment of a high-temperature (HT) downhole shut-in tool (DHSIT) in multistage fracturing completions (MSF) producing retrograde gas condensate and from sour carbonate reservoirs. Many gas operators and service providers have made various attempts in the past to evaluate the long-term benefit of MSF completions while deploying DHSIT devices but have achieved only limited success (Ref. 1 and 2). During such deployments, many challenges and difficulties were faced in the attempt to deploy and retrieve those tools as well as to complete sound data interpretation to successfully identify both reservoir, stimulation, and downhole productivity parameters, and especially when having a combination of both heterogeneous rocks having retrograde gas pressure-volume-temperature (PVT) complexities. Therefore, a robust design of a DHSIT was needed to accurately shut-in the well, hold differential pressure, capture downhole pressure transient data, and thereby identify acid fracture design/conductivity, evaluate total KH, reduce wellbore storage effects, properly evaluate transient pressure effects, and then obtain a better understanding of frac geometry, reservoir parameters, and geologic uncertainties. Several aspects were taken into consideration for overcoming those challenges when preparing the DHSIT tool design including but not limited to proper metallurgy selection, enough gas flow area, impact on well drawdown, tool differential pressure, proper elastomer selection, shut-in time programming, internal completion diameter, and battery operation life and temperature. This paper is based on the first successful deployment and retrieval of the DHSIT in a 4-½" MSF sour carbonate gas well. The trial proved that all design considerations were important and took into consideration all well parameters. This project confirmed that DHSIT devices can successfully withstand the challenges of operating in sour carbonate MSF gas wells as well as minimize operational risk. This successful trial demonstrates the value of utilizing the DHSIT, and confirms more tangible values for wellbore conductivity post stimulation. All this was achieved by the proper metallurgy selection, maximizing gas flow area, minimizing the impact on well drawdown, and reducing well shut-in time and deferred gas production. Proper battery selection and elastomer design also enabled the tool to be operated at temperatures as high as 350 °F. The case study includes the detailed analysis of deployment and retrieval lessons learned, and includes equalization procedures, which added to the complexity of the operation. The paper captures all engineering concepts, tool design, setting packer mechanism, deployment procedures, and tool equalization and retrieval along with data evaluation and interpretation. In addition to lessons learned based on the field trial, various recommendations will be presented to minimize operational risk, optimize shut-in time and maximize data quality and interpretation. Utilizing the lessons learned and the developed procedures presented in this paper will allow for the expansion of this technology to different gas well types and formations as well as standardize use to proper evaluate the value of future MSF completions and stimulation designs.
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含酸碳酸盐岩气井裸眼多级完井评价及井下关井工具的应用,现场应用
本文重点介绍了高温(HT)井下关井工具(DHSIT)在生产逆行凝析气和含酸碳酸盐岩储层的多级压裂完井(MSF)中的首次成功现场应用。过去,许多天然气运营商和服务提供商在部署DHSIT设备的同时,进行了各种各样的尝试,以评估MSF完井的长期效益,但只取得了有限的成功(参考文献1和2)。在此类部署过程中,在尝试部署和回收这些工具以及完成可靠的数据解释以成功识别储层、增产措施和井下产能参数方面,面临着许多挑战和困难。特别是当两种非均质岩石具有逆行气体压力-体积-温度(PVT)复杂性时。因此,DHSIT需要一个强大的设计,以准确关井,保持压差,捕获井下压力瞬态数据,从而确定酸裂缝设计/导流能力,评估总KH,减少井筒储存影响,正确评估瞬态压力影响,然后更好地了解裂缝几何形状,储层参数和地质不确定性。在准备DHSIT工具设计时,为了克服这些挑战,需要考虑几个方面,包括但不限于适当的冶金选择、足够的气流面积、对井降的影响、工具压差、适当的弹弹体选择、关井时间规划、内部完井直径、电池工作寿命和温度。本文基于在一口4- 1 / 2”MSF含酸碳酸盐岩气井中首次成功部署和回收DHSIT。试验证明,所有设计考虑因素都很重要,并考虑了所有井参数。该项目证实,DHSIT设备能够成功应对含酸碳酸盐岩MSF气井的作业挑战,并将作业风险降至最低。这次成功的试验证明了使用DHSIT的价值,并确认了增产后井筒导流能力的更多切实价值。所有这些都是通过适当的冶金选择、最大化气体流动面积、最小化对井降的影响、减少关井时间和延迟产气来实现的。适当的电池选择和弹性体设计也使该工具能够在高达350°F的温度下工作。案例研究包括对部署和检索经验教训的详细分析,并包括均衡程序,这增加了操作的复杂性。本文涵盖了所有的工程概念、工具设计、坐封封隔器机制、部署程序、工具均衡和检索以及数据评估和解释。除了从现场试验中吸取的经验教训外,还将提出各种建议,以最大限度地降低操作风险,优化关井时间,最大限度地提高数据质量和解释。利用本文所介绍的经验教训和开发的程序,可以将该技术扩展到不同的气井类型和地层,并标准化使用,以正确评估未来MSF完井和增产设计的价值。
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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