Collaborative Real-Time Analysis to Reduce Non-Productive Time

Garrett C. Guidry, Kyle Spezia, G. Salmon
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引用次数: 2

Abstract

Operators often use real-time operation centers (RTOC) as a funnel point for data streams transmitted from multiple rigs during the well construction process. A RTOC is typically staffed by subject matter experts (SMEs), with the primary goals of interpreting real-time wellbore conditions and relaying actionable recommendations to help reduce nonproductive time (NPT) and well control incidents. Automation is a strong industry trend. Autonomous systems are being developed to flag potential NPT events before they occur; however, these systems are not yet widely used. In the absence of these systems, workflows among complementary disciplines have been developed to identify potential NPT events in large data streams transmitted to a RTOC. This paper presents example scenarios from deepwater prospects with potential actionable recommendations. Robust data streams transmitted to a RTOC can be received by the overlapping disciplines of hydraulics optimization, drilling optimization, and geomechanics. Staff from each discipline filter through the raw data to capture incoming information relevant to their respective output analysis. A key goal of each discipline is to mitigate the risk of NPT through real-time identification of warning trends observed during deepwater drilling in narrow pressure window situations. The multidisciplinary overlapping efforts produce a process that is much more effective than is possible with each discipline operating independently. Because real-time geomechanics seeks to update the bounding conditions of the downhole pressure operating windows, collaborative workflows are structured around validation and calibration of the real-time geomechanical model. Collaborative workflows are presented for specific operations during the well construction process in which NPT events are likely to occur, such as tripping out of the hole and drilling. In the examples, real-time calculated equivalent circulating density (ECD) models, hole cleaning parameters, swab pressure models, and torque/drag plots provide input to the real-time geomechanical model. Outputs of this analysis are actionable recommendations, such as an extended flow check, check trip, or mud weight increase. The workflows were developed based on lessons learned from information in a central database and the resulting best practices from multiple deepwater wells. Decision makers are provided with data-supported recommendations at crucial junctures; these recommendations typically involve costly rig time. The trade-off between increased rig time and benefits gained from the recommendation is difficult to quantify. The workflows derived from a library of NPT events address the perception of wasted rig time and provide context to real-time interpretations. Combined plots supporting the recommendation provide confidence for the driller that the increased rig time is time justified.
协作实时分析,减少非生产时间
在钻井过程中,作业者经常使用实时操作中心(RTOC)作为多台钻机传输数据流的漏斗点。RTOC通常由主题专家(sme)组成,其主要目标是解释实时井眼状况,并提出可行的建议,以帮助减少非生产时间(NPT)和井控事故。自动化是一个强大的行业趋势。正在开发自主系统,以便在潜在的《不扩散核武器条约》事件发生之前进行标记;然而,这些系统尚未得到广泛应用。在没有这些系统的情况下,已经开发了互补学科之间的工作流程,以识别传输到RTOC的大数据流中的潜在NPT事件。本文介绍了深水勘探的示例场景,并提出了潜在的可行建议。传输到RTOC的稳健数据流可以被水力学优化、钻井优化和地质力学等交叉学科接收。每个学科的工作人员通过原始数据进行筛选,以获取与各自输出分析相关的传入信息。每个学科的一个关键目标是通过实时识别在窄压力窗情况下深水钻井期间观察到的预警趋势来降低NPT风险。多学科的重叠努力产生了一个比每个学科独立运作更有效的过程。由于实时地质力学旨在更新井下压力操作窗口的边界条件,因此协作工作流程围绕实时地质力学模型的验证和校准进行构建。针对在建井过程中可能发生NPT事件的具体操作,例如起下钻和钻井,提出了协同工作流程。在实例中,实时计算的等效循环密度(ECD)模型、井眼清洗参数、抽汲压力模型和扭矩/阻力图为实时地质力学模型提供了输入。该分析的输出是可操作的建议,例如延长流量检查,检查起下钻或增加泥浆比重。该工作流程是根据中央数据库中的信息和多口深水井的最佳实践经验制定的。在关键时刻向决策者提供数据支持的建议;这些建议通常涉及昂贵的钻井时间。增加钻井时间和从该建议中获得的收益之间的权衡很难量化。来自NPT事件库的工作流程解决了钻井时间浪费的问题,并提供了实时解释的背景。支持该建议的综合图为钻井人员提供了信心,使他们相信增加的钻机时间是合理的。
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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