Advanced Mud Logging: Key to Safe and Efficient Well Delivery

D. Blue, T. Blakey, M. Rowe
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引用次数: 5

Abstract

The high costs and high potential risks associated with drilling deepwater wells have prompted the development of an advanced computerized mud logging system. This paper highlights select technologies within the system and its application to three core areas of operation—circulating, making connections, and tripping—to provide early identification of fluid influxes and losses, thus helping ensure safe and efficient well delivery. The advanced mud logging system includes a kick-detection system, flowback monitoring, trip monitoring software, and mud accounting software based on a new methodology. The kick-detection system uses advanced flowmeters to enable stricter control of the drilling process; fluid influxes or losses are detected by integrating the variance for predicted and measured flow and alarming, with as little as a barrel gained or lost. Flowback monitoring uses sophisticated algorithms in conjunction with the same high-accuracy flowmeters to monitor influxes while making connections. These algorithms drive a complex alarm system tuned to trigger on minimal flow variance, pit volumes, and the rate of modification of each compared to a historical baseline. Additionally, trip-monitoring software automates the tracking of pipe displacements in real time to warn of a well control event, instead of relying on spreadsheets or handwritten calculations. Mud accounting software tracks drilling fluid balance across the entire pit system for redundant influx and loss detection and accounts for volume changes based on circulating rates. Application of the advanced mud logging system in the deepwater Gulf of Mexico (GOM) provided earlier detection of well control events—up to 10 minutes earlier than conventional well monitoring techniques. Flowback monitoring demonstrated the ability to identify minimal flow when making connections, which would be difficult to detect by visual inspection. The ability to trend flowback profiles consistently has allowed operators to reduce the pump's off time while making connections in less than 5 minutes, without jeopardizing the ability to confirm a static well. Additionally, the advanced system enables drilling operations to proceed without increasing mud weight and exacerbating wellbore damage during a ballooning event. This paper presents a case study in which the history of well control events documented in the literature was reviewed to help identify areas of improvement.
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先进的泥浆测井:安全高效的关键
深水井钻井的高成本和高潜在风险促使了先进的计算机化泥浆测井系统的发展。本文重点介绍了系统中的一些技术及其在三个核心操作领域的应用,即循环、接箍和起下钻,以早期识别流体流入和漏失,从而帮助确保安全高效的油井交付。先进的泥浆测井系统包括井涌探测系统、反排监测、起下钻监测软件和基于新方法的泥浆核算软件。井涌检测系统采用先进的流量计,能够对钻井过程进行更严格的控制;通过整合预测流量和测量流量的方差并发出警报,可以检测流体流入或损失,最多只增加或损失一桶。反排监测使用复杂的算法与同样的高精度流量计相结合,在连接时监测流入。这些算法驱动一个复杂的报警系统,通过调整来触发最小的流量变化、坑体积以及与历史基线相比的每一个修改率。此外,起下钻监测软件可以自动实时跟踪管柱位移,以警告井控事件,而不是依赖电子表格或手写计算。泥浆核算软件跟踪整个坑系统的钻井液平衡,以检测冗余流入和漏失,并根据循环速率计算体积变化。先进的录井系统在墨西哥湾深水(GOM)的应用,比传统的井监测技术提前10分钟检测到井控事件。反排监测表明,在连接时能够识别最小流量,这很难通过目测检测到。由于能够持续监测反排曲线,作业公司可以在不到5分钟的时间内完成连接,减少泵的停机时间,而不会影响确认静井的能力。此外,先进的系统使钻井作业能够在不增加泥浆重量的情况下进行,也不会在发生膨胀时加剧对井筒的破坏。本文介绍了一个案例研究,其中回顾了文献中记录的井控事件的历史,以帮助确定改进的领域。
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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