利用先进的生产测井工具对受再循环影响的斜度电潜井进行精确的生产剖面分析

G. Agrawal, Ajit Kumar, Siddhartha Mishra, Shaktim Dutta, Isha Khambra, S. Chaudhary, K. Sarma, M. Srinivasa Murthy
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引用次数: 1

摘要

目标/范围:XYZ是位于印度西部大陆架的孟买海上盆地的边缘油田之一。该油田的油井采用了电潜泵增产。利用传统的生产测井对这些井进行了常规的生产剖面分析,以确定是否有产水区,并根据需要进行后续的油井干预。方法、步骤、工艺:在少数低油藏压力、低排量、大套管尺寸的斜度井中,观察到大量的再循环,因此旋转器读数受到很大影响。在这种情况下,常规生产测井的定量解释是非常困难的。只有基于温度和含率测量的定性解释可能不能完全实现目标。在其中一口斜井中,由于套管尺寸过大,观察到大量的再循环。ESP井通常不会进行再循环,因为该井的能量压力降很高。由于循环,传统的生产测井给解释带来了困难。仅通过温度和含率测量进行定性解释。因此,一种先进的生产测井工具——流量扫描成像仪(FSI*)被推荐用于大斜度井和水平井,该工具具有5个小管、6组电子和光学探头,可以描绘出受井眼轨迹影响的流量,用于定量解释受再循环影响的井。结果、观察、结论:在下一口井中,在安装ESP之前进行生产分析,完井方式与上一口井类似。因此,预计井内会出现较大的再循环现象。在这口有再循环的斜井中提出了FSI,用于生产剖面,也用于发现井筒内复杂的流动情况。在多旋流器和探头的帮助下,FSI有助于正确地显示井下流动状况。利用FSI数据进行定量解释。此外,在油管内(较小的横截面面积),由于迷你旋转器不会在井筒内塌陷,因此预计不会发生再循环。在传统的生产测井中,由于油管内的全径旋流器坍塌,通常无法实现。由于使用了多个传感器,FSI可以比常规生产测井更好地了解流动状况。随后使用FSI的干预结果显示出显著的石油收益。新型/附加信息:FSI应用于斜度ESP井中,用于生产分析,精确量化,更好地了解流动状况,并采取改进的油井干预决策。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Accurate Production Profiling in Deviated ESP Wells Affected with Recirculation with Advanced Production LoggingTool
Objectives/Scope: XYZ is one of the marginal fields of Mumbai Offshore Basin located in western continental shelf of India. Wells in this field were put on ESP for increasing the production. Regular production profiling with traditional production logging was done in these wells to ascertain the water producing zones if any and do the subsequent well intervention if required. Methods, Procedures, Process: In few deviated wells with low reservoir pressure, low flow rates and large casing size, massive recirculation was observed due to which spinner readings were highly affected. In such scenarios, quantitative interpretation with conventional production logging is highly difficult. Only qualitative interpretation based on temperature and holdup measurements can be made which might not completely fulfill the objective. In one of the deviated wells, massive recirculation was observed due to large casing size. Recirculation on ESP wells is generally not expected due to high energy pressure drawdown exerted on the well. Traditional production logging imposed difficulty in interpretation due to recirculation. Only qualitative interpretation was made from temperature and holdup measurements. Hence advanced production logging tool called Flow Scan Imager (FSI*) with 5 minispinners, 6 sets of electrical and optical probes, designed for highly deviated and horizontal wells to delineate flow affected due to well trajectory, was suggested for quantitative interpretation in such wells suffering with recirculation. Results, Observations, Conclusions: In the next well, production profiling was to be done before ESP installation in similar completion as the last well. Therefore, huge recirculation phenomenon was expected in the well. FSI was proposed in this deviated well with recirculation for production profiling and also for finding out the complex flow regime inside the wellbore. FSI helped in proper visualization of the downhole flow regime with the help of multispinners and probes. Quantitative interpretation was made with the help of FSI data. Also, quantification was confirmed inside the tubing (lesser cross section area) where no recirculation is expected as the mini spinner does not collapse inside the wellbore. In traditional production logging, it is generally not possible due to the collapsing of full bore spinners inside tubing. Better understanding of the flow regime can be obtained with FSI than conventional production logging due to the presence of multiple sensors. Later interventions using FSI results have shown significant oil gains. Novel/Additive Information: FSI was used in deviated ESP wells with recirculation for production profiling, accurate quantification, better understanding of flow regimes and to take improved well intervention decisions.
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