超深定向电阻率测量的过去、现在和未来应用:挪威大陆架的一个案例

Supriya Sinha, A. Walmsley, N. Clegg, Brígido Vicuña, Hsu-hsiang Wu, A. McGill, Téo Paiva dos Reis, Marianne Therese Nygård, Gunn Åshild Ulfsnes, Monica Vik Constable, F. Antonsen, B. Danielsen
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引用次数: 0

摘要

近十年来,随着超深方位角电阻率(UDAR)随钻测井(LWD)工具的引入,油气行业从距离井筒几米的实时地层边界测绘发展到了几十米的范围。这项创新技术可以早期识别电阻率边界,并促进主动地质导向,从而优化井眼位置。此外,还绘制了可能永远不会相交的边界和次级目标,从而改进了侧道、多边井和未来井的井规划。现代工具设计和反演算法可以实现油藏的三维测绘,并探索这些工具对测点前方电磁场的敏感性,从而获得超前的电阻率。在过去的十年中,技术的进步改变了井眼规划、钻井和完井的方式,油藏模型也得到了更新。本文介绍了一个案例研究,总结了过去十年来UDAR测量和反演的进展。该案例研究展示了从作业前规划、服务设计到一维(1D)和三维(3D)反演执行的整个工作流程,以及水平井的未来展望潜力。预井模拟为预测高度非均质地层中工具的实时响应提供了指导。这可以确定井筒一维反演可以绘制井上下主要边界的距离。预计在井趾处会出现断层,UDAR被用作避免离开油藏的保障措施。在这种复杂的地质环境下,标准的一维反演方法过于简单。因此,还探索了井筒周围和发射机前方的三维反演,以证明这种理解可以为断层和储层的地质停止带来的改进。成功的地质导向需要训练有素的人员来处理复杂的情况。地质导向训练模拟器(GTS)可能是有效的训练工具,用于解释从现实的3D模型场景中知道“真相”的反转。该团队可以学习如何在限度内最好地利用UDAR技术和反演结果,而不是将解释扩展到可接受的不确定性水平之外。还将讨论如何在未来实时更新对反演不确定性的理解。UDAR技术和一维到三维反演结果在未来的持续成功,将在很大程度上取决于反演的不确定性管理,以避免错误的决策,并可能降低油井的经济效益。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Past, Present, and Future Applications of Ultradeep Directional Resistivity Measurements: A Case History From the Norwegian Continental Shelf
With the introduction of ultradeep azimuthal resistivity (UDAR) logging-while-drilling (LWD) tools toward the beginning of the last decade, the oil and gas industry went from real-time mapping of formation boundaries a few meters from the wellbore to tens of meters away. This innovation allowed early identification of resistivity boundaries and promoted proactive geosteering, allowing for optimization of the wellbore position. Additionally, boundaries and secondary targets that may never be intersected are mapped, allowing for improved well planning for sidetracks, multilaterals, and future wells. Modern tool design and inversion algorithms allow mapping the reservoir in 3D and exploring the sensitivity of these tools to the electromagnetic field ahead of the measure point for look-ahead resistivity. Improvements in the technology over the past decade have changed the way wellbores are planned, drilled, and completed, and reservoir models are updated. This paper presents a case study summarizing the advances in UDAR measurements and inversions over the last decade. The case study presents the whole workflow from prejob planning, service design, and execution of one-dimensional (1D) and three-dimensional (3D) inversion in addition to the future potential of look ahead in horizontal wells. Prewell simulations provide a guide to expected real-time tool responses in highly heterogeneous formations. This identifies how far from the wellbore 1D inversions can map major boundaries above and below the well. A fault was expected toward the toe of the well, and UDAR was used as a safeguard to avoid exiting the reservoir. Standard 1D inversion approaches are too simplistic in this complex geologic setting. Thus, 3D inversion around the wellbore and ahead of the transmitter is also explored to demonstrate the improvements this understanding can bring regarding geostopping toward the fault and reservoir understanding in general. Successful geosteering requires personnel trained to handle complex scenarios. Geosteering training simulators (GTS) could be efficient tools for training to interpret inversions where the “truth” is known from realistic 3D model scenarios. The team can learn how to best exploit UDAR technology and inversion results within its limits and not extend the interpretation beyond acceptable uncertainty levels. It will also be addressed how the understanding of inversion uncertainty could be updated in real time in the future. The continued future success of UDAR technology and 1D to 3D inversion results for look-ahead and look-around applications will depend heavily on uncertainty management of the inversions to avoid wrong decisions and potentially reduced well economy.
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