Improving Operational Efficiency Using Automated Time Analysis for Multi-Well Pad Fracturing

F. Siddiqui, M. Kamyab, M. Lowder
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Abstract

The economic success of unconventional reservoirs relies on driving down completion costs. Manually measuring the operational efficiency for a multi-well pad can be error-prone and time-prohibitive. Complete automation of this analysis can provide an effortless real-time insight to completion engineers. This study presents a real-time method for measuring the time spent on each completion activity, thereby enabling the identification and potential cost reduction avenues. Two data acquisition boxes are utilized at the completion site to transmit both the fracturing and wireline data in real-time to a cloud server. A data processing algorithm is described to determine the start and end of these two operations for each stage of every well on the pad. The described method then determines other activity intervals (fracturing swap-over, wireline swap-over, and waiting on offset wells) based on the relationship between the fracturing and wireline segments of all the wells. The processed data results can be viewed in real-time on mobile or computers connected to the cloud. Viewing the full operational time log in real-time helps engineers analyze the whole operation and determine key performance indicators (KPIs) such as the number of fractured stages per day, pumping percentage, average fracture, and wireline swap-over durations for a given time period. In addition, the performance of the day and night crews can be evaluated. By plotting a comparison of KPIs for wireline and fracturing times, trends can be readily identified for improving operational efficiency. Practices from best-performing stages can be adopted to reduce non-pumping times. This helps operators save time and money to optimize for more efficient operations. As the number of wells increases, the complexity of manual generation of time-log increases. The presented method can handle multi-well fracturing and wireline operations without such difficulty and in real-time. A case study is also presented, where an operator in the US Permian basin used this method in real-time to view and optimize zipper operations. Analysis indicated that the time spent on the swap over activities could be reduced. This operator set a realistic goal of reducing 10 minutes per swap-over interval. Within one pad, the goal was reached utilizing this method, resulting in reducing 15 hours from the total pad time. The presented method provides an automated overview of fracturing operations. Based on the analysis, timely decisions can be made to reduce operational costs. Moreover, because this method is automated, it is not limited to single well operations but can handle multi-well pad completion designs that are commonplace in unconventionals.
利用自动化时间分析提高多井台压裂作业效率
非常规油藏的经济成功依赖于降低完井成本。手动测量多井平台的作业效率容易出错,而且耗时。这种分析的完全自动化可以为完井工程师提供毫不费力的实时洞察。该研究提出了一种实时测量每次完井作业所花费时间的方法,从而能够识别和降低潜在成本的途径。完井现场使用了两个数据采集盒,将压裂和电缆数据实时传输到云服务器。描述了一种数据处理算法,用于确定区块上每口井的每个阶段这两种操作的开始和结束。然后,根据所有井的压裂和电缆段之间的关系,该方法确定其他活动间隔(压裂切换、电缆切换和等待邻井)。处理后的数据结果可以在移动设备或连接到云的计算机上实时查看。实时查看完整的作业时间日志可以帮助工程师分析整个作业过程,并确定关键性能指标(kpi),例如每天的压裂段数、泵送百分比、平均裂缝数以及给定时间段内电缆切换时间。此外,还可以评估白天和夜间工作人员的表现。通过绘制电缆和压裂时间的kpi对比图,可以很容易地确定提高作业效率的趋势。可以采用性能最佳的压裂段来减少不抽油的时间。这有助于运营商节省时间和金钱,以优化更高效的操作。随着井数的增加,人工生成时间日志的复杂性也随之增加。该方法可以轻松、实时地处理多井压裂和电缆作业。本文还介绍了一个案例研究,美国二叠纪盆地的一家运营商使用该方法实时查看和优化拉链作业。分析表明,在交换活动上花费的时间可以减少。该运营商设定了一个现实的目标,即每次切换间隔减少10分钟。在一个垫块内,利用这种方法达到了目标,从而使总垫块时间减少了15个小时。该方法提供了压裂作业的自动化概述。根据分析,可以及时做出决策以降低运营成本。此外,由于该方法是自动化的,它不仅限于单井作业,还可以处理非常规油藏中常见的多井群完井设计。
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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