Integration of Geosteering into an Automated Wellbore Placement System, Possibilities and Challenges

D. Holbrough, M. Forshaw, S. Wessling, Saskia Idzerda, R. Gelfort, S. Austin
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Abstract

The benefits of geosteering for accurate wellbore placement in reservoirs are well documented, with an emphasis on comprehensive reservoir mapping capabilities and related well path adjustments. Similarly, drilling-related processes such as well re-design, proximity scanning, and downlinking are important. The integration of geosteering and drilling processes adds complexity and challenges to designing automated wellbore placement systems. Automated systems need to contain sufficiently robust technologies and algorithms to avoid unintended and frequent exceptions. Equally, the human element must be considered to design an automated system with a great user experience. To gain user acceptance, an automated system must have the characteristics of predictability, transparency, adaptability, and automation levels that are validated prior to utilization. Without this, the result will be wellbore misplacement by engineers who blindly trust immature automated systems. This paper provides an overview of processes and tasks within a comprehensive wellbore placement system, including the directional drilling and geosteering services as used by stakeholders who own well placement execution. We will provide an overview of the potential of automation and pitfalls to be avoided. The experience of many expert engineers from complementary disciplines has been used to develop a comprehensive concept as a framework to implement an automated wellbore placement system. The paper also provides an analogy to the automotive industry which has developed reliable and robust systems for navigation, lane and speed control over the last few decades. The comparison highlights a fundamental difference to the petroleum industry of having multiple stakeholders involved in the process of wellbore placement. Consequently, communication between all the stakeholders during operations, notably proposals and approvals, must be designed into the system from the beginning. Automation concepts to achieve great user experience are demonstrated on components of a wellbore placement process, including the illustration of lessons learned from recent development initiatives. Based on the demonstration, we conclude that an iterative development process is essential to ensure acceptance by the user community.
地质导向与自动井筒定位系统集成的可能性与挑战
地质导向技术在油藏中精确定位井筒方面的优势已经得到了充分的证明,其重点是全面的油藏测绘能力和相关的井眼轨迹调整。同样,与钻井相关的过程,如井重新设计、近距离扫描和下行也很重要。地质导向和钻井过程的集成增加了自动化井筒定位系统设计的复杂性和挑战。自动化系统需要包含足够健壮的技术和算法,以避免意外和频繁的异常。同样,在设计具有良好用户体验的自动化系统时,必须考虑人的因素。为了获得用户的接受,自动化系统必须具有可预见性、透明性、适应性和在使用之前验证的自动化级别的特征。如果没有这一点,工程师就会盲目地相信不成熟的自动化系统,导致井筒错位。本文概述了综合井筒定位系统的流程和任务,包括定向钻井和地质导向服务,这些服务是由拥有定位执行权的利益相关者使用的。我们将概述自动化的潜力和要避免的陷阱。许多来自互补学科的专家工程师的经验已经被用来开发一个全面的概念,作为实施自动化井筒放置系统的框架。本文还提供了一个与汽车工业的类比,在过去的几十年里,汽车工业已经开发出可靠而强大的导航、车道和速度控制系统。这一对比凸显了石油行业在井筒布置过程中涉及多个利益相关者的一个根本区别。因此,在操作期间所有涉众之间的沟通,特别是建议和批准,必须从一开始就设计到系统中。在井筒布置过程的各个环节中,演示了实现卓越用户体验的自动化概念,包括从最近的开发计划中吸取的经验教训。基于演示,我们得出结论,迭代开发过程对于确保用户社区的接受是必不可少的。
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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