使用多井光纤进行增产的实时井筒数字化

Xinyang Li, A. Chavarria, Y. Oukaci
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摘要

分布式光纤传感(DFOS)为增产增产和井距评估提供实时数据采集、监测和诊断。其中包括在处理井中使用高频声学的分布式声学传感(DAS)测量,以及在偏移监测井中使用低频应变/温度传感。这项综合研究的目的是展示多井光纤传感在实时压裂诊断和增产优化方面的价值。通过整合近场注入和远场应变响应,我们可以评估整个油藏的开发情况。在处理井和附近的观察井中都可以获得纤维,这使我们能够研究近井注入剖面和远场应变裂缝扩展。定量应变水平明显响应井距、井位和处理井增产设计的影响。监测井应变测量裂缝密度和触发刺激跨度,并逐级与近场的声波信号进行比较。在每个阶段的处理过程中进行DAS解释,以表明完井设计的有效性和效率。结果表明,利用DAS数据进行数字化转换,这是一种非常有效的工具,可以更好地了解压裂处理的性能。此外,声学和应变测量也验证了其实时运行监测的诊断能力。在本次演讲中,我们展示了近场声学和远场应变测量如何更好地了解完井效率。这是通过评估治疗中定量DAS注射信号的远场反应。该分析利用了在处理井和附近监测井上安装光纤的优势。利用相对声强度对处理井进行近场流体和支撑剂分配。同时,偏移光纤还能很好地记录断裂扩展引起的应变变化。利用这些光纤数据,可以从近场注入剖面中发现优势簇和阶段偏差。同时,从应变中识别出的远场裂缝数量可以进一步对增产储层进行地质力学评估,并评估完井设计的有效性。多口配备DAS光纤的井不仅可以为每口光纤井提供单一的诊断工具,而且可以对增产效果、完井效率、井间相互作用和油藏描述进行重要的综合评估。近场和远场测量的可用性是评价储层性质的重要工具。在这里,我们展示了不同的有利位置如何帮助阐明非常规油藏的压裂方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Realtime Wellbore Digitalization for Stimulations Using Multi-Well Fiber Optics
Distributed Fiber-optic Sensing (DFOS) provides real-time data acquisition, monitoring and diagnostics for well stimulation and well spacing assessment. These include measurements of Distributed Acoustic Sensing (DAS) with high frequency acoustics in treatment wells, and low frequency strain/temperature sensing in offset monitor ones. The goal of this integrated study is to show the value of multi-well fiber sensing for real time fracturing diagnostics and stimulation optimization. By integrating near field injection to far field strain responses we assess overall reservoir development. The availability of fibers on both the treatment well and a nearby observation well allows us to investigate the near-wellbore injection profile and the far-field strain fracture propagation. Quantitative strain levels clearly respond to the effects of well distance, location and treatment well stimulation design. Monitoring well strain measurements of fracture density and triggered stimulated span were logged and compared to acoustic signals in the nearfield stage by stage. DAS interpretation was conducted during the treatment of each stage indicating the effectiveness and efficiency of the completion design. Results show that this is a very effective tool to better understand the performance of the fracturing treatment by digital transformation using DAS data. In addition, acoustic and strain measurements also validated its diagnostic capability for real-time operation monitoring. In this presentation we show how the near-field acoustic and far-field strain measurements allow for better understanding of the completion efficiency. This is by assessing the far field response to quantified DAS injected signals in the treatment. This analysis takes advantage of fiber installation on both the treatment and nearby monitor well. The fluid and proppant allocations in the near field were performed on the treatment well using relative acoustic intensities. Meanwhile, the fracture propagation induced strain change is recorded by the offset fiber well. Using this fiber data reveals dominant clusters and stage bias from near-field injection profile. Simultaneously the far-field identified fracture counts from strain further enable a geomechanical assessment of the stimulated reservoir and assess the effectiveness of the completion design. Multiple DAS fiber equipped wells not only provide single diagnostic tool for each of the fiber well, but also demonstrate significant integrated assessment of the stimulation effectiveness, completion efficiency, well interaction, and reservoir description. Availability of near and far field measurements constitutes an important tool to assess properties of the reservoir. Here we show how different vantage points can help illuminate a fracturing program in unconventional reservoirs.
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