实时流量测量的引入,为克服大位移井酸化增产过程中遇到的挑战开辟了新的途径

Laurie S. Duthie, Hussain Saiood, H. Al-Marri, D. Ahmed
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引用次数: 0

摘要

在大位移水平井中,基质酸化和流体充填的挑战通常被夸大了,需要不断的创新。优化实时流体放置,增加储层接触,建立均匀的流体分布,以便在裸眼段更好地生产/注入,这些都是可以从这些创新中受益的领域。选择了配备牵引器和新型实时井下流量测量功能的连续油管(CT)作为解决方案。连续油管牵引器有助于达到目的,而流量测量可以更清楚地了解井下注入模式。实时获取流体方向和速度,并用于识别高/低进气口区域。随后应用这些数据来相应地调整增产转移计划。在一口注水井中,在开始基质增产处理之前获得了基线数据。在初始剖面图中,压裂液在低进气口处被挤过CT。连续油管实时流量工具是在大位移注水井的基质增产处理中与井下牵引器一起使用的。流动工具测量了基线注入剖面,然后将其与流动性数据相关联。预增产剖面的结果显示,70%的注入进入了3000英尺(24500英尺)的趾部,而30%的注入分布在裸眼段的其余部分。获得的流动数据能够识别出低流动性和粘性流体的井筒部分,从而为后续增产泵送顺序的调整提供额外的信息。增产措施的实时优化使增产后的注入速度比增产前提高了4倍以上。连续油管牵引器与实时流量测量工具的结合,为大位移注水井增产提供了一种有效的手段。实时流量工具背后的基本技术是一个同步系统,该系统具有一系列加热元件和沿着工具的温度传感器,以确定流体的方向和平均速度。这最终可以更准确地将增产措施放置到目标区域。该技术也可以应用于大位移油藏,然而,为了获得最佳的工具性能,必须首先用惰性流体进行驱替。
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Introduction of Real-Time Flow Measurements Opens New Paths to Overcome Challenges Encountered During the Acid Stimulation of Extended Reach Wells
Challenges are usually exaggerated related to matrix acid stimulation and fluid placement in extended reach horizontal wells and demand a constant flow of innovation. The optimization of real time fluid placement, increasing the reservoir contact and establishing uniform fluid distribution for better production/ injection across the openhole interval is one area that can benefit from these new innovations. Coiled tubing (CT) equipped with a tractor and new real-time downhole flow measurement capabilities was selected as the solution. While a CT tractor facilitates the reach, flow measurements provide a clearer understanding of downhole injectivity patterns. Real-time fluid direction and velocity are acquired and used to identify high/low intake zones. The data is subsequently applied to adjust the stimulation diversion schedule accordingly. In a water injection well, baseline data was acquired before commencing a matrix stimulation treatment. The treatment was squeezed through the CT at the depths highlighted as low intake during the initial profiling. The coiled tubing real-time flow tool was deployed during the matrix stimulation treatment of the extended reach water injection well with a downhole tractor. The flow tool measured the baseline injection profile which was then correlated with the mobility data. Results from the pre-stimulation profile showed that 70% of injection was entering in a 3,000 ft. section near the toe (24,500 ft.), whereas 30% of injection was spread across the remainder of the open-hole interval. The acquired flow data was able to identify sections of the wellbore featuring low mobility and viscous fluids, which in turn provided additional information for the adjustment of the subsequent stimulation pumping sequence. The real-time optimization of stimulation treatment helped to increase the post-stimulation injection rate by over 4 times the pre-stimulation rate. The combination of CT tractor with real-time flow measurement tool provides an efficient means to stimulate extended-reach water injector wells. The basic technology behind the real time flow tool is a synchronized system with a series of heating elements and temperature sensors along the tool to determine the direction and mean velocity of the fluid. This ultimately allows for a more accurate placement of stimulation treatment to the targeted zones. The technology can also be applied for extended reach oil producers, however, for optimum tool performance, the well should first be displaced with an inert fluid.
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