Integrating Effective Services into MRC Technology to Rejuvenate Mature Reservoir with Low Permeability and Low Resistivity

Feng Li, Xiong Xie, Li Huang, Luyao Zhou, B. Chang, Chao Wang, Fei Wang, Chengwen He
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Abstract

In China, the main sandstone reservoir M of the LF oilfield entered the mature development stage with high water cut (average 93%) and 66.1% recovery. Remaining oil exists vertically in the H layer at the top section of this massive bottomwater reservoir and laterally at margins of current development area with less well control. The H layer consists of several thin (0.5 to 2 m) sand sublayers interbedded with calcareous tight sublayers with low permeability; the effective oil drainage radius of single borehole is 100 to 150 m. Maximum reservoir contact (MRC) technology was employed to increase drainage area and volumetric sweep efficiency for optimal production and recovery to rejuvenate this mature reservoir. In an original hole with 98 to 99.9% water cut targeted for a workover operation, two new laterals were sidetracked to comprise a three-lateral MRC configuration with openhole completion to develop the SL1 target sublayer of the H layer. The success of MRC wells depends on an efficient openhole sidetrack and azimuth turning. Moreover, multilaterals need to precisely chase the sweet zone in the reservoir. Drilling into overlying shale causes borehole collapse, and penetrating the underlying tight zone causes fast bottom water breakthrough. Low resistivity contrast increases the difficulty of distinguishing the target zone from the shoulders. Sparse well control and limited seismic resolution bring high structural and stratigraphic uncertainties. Accordingly, effective services were equipped to overcome these challenges to achieve the required engineering and reservoir objectives. The new-generation hybrid rotary steerable system (RSS) tool provides stable, rapid, and accurate steering control, even with high dogleg severity, to achieve engineering objectives. With a balance between resolution and depth of investigation (DOI), high-definition deep-looking resistivity inversion uses the Metropolis coupled Markov chain Monte Carlo method to clearly identify multiple layers (more than three) within an approximately 6 m DOI, formation resistivity distribution, anisotropy, and dip, even in this low-resistivity-contrast environment. Reservoir details could be clearly unveiled to help MRC lateral steering along the thin target. Furthermore, a wide-range-displacement electrical submersible pump (ESP) helps optimize openhole performance. Six new laterals were drilled in three MRC wells. Hybrid RSS tools provided 100% openhole sidetrack success rate, and laterals were turned laterally with 15 to 70° azimuth change and 200- to 570-m displacement to maximize the drainage area. Deep-looking inversion revealed high-definition reservoir details by delineating three key boundaries and four adjacent layers' profiles simultaneously and identifying target zone's thickness and property variation. The target sand is 0.5 to 2 m thick with resistivity of 2 to 9 ohm-m, surrounded by interbeds with resistivity 8 to 10 ohm-m. Within the refined 3D reservoir model, the horizontal laterals efficiently chased the top section of effective target sand while avoiding high-risk shoulders. Total 4298-m horizontal footage was achieved in six laterals with net-to-gross 91% in the SL1 thin, low-permeability reservoir. With the proper ESP configuration, approximately 688,500 bbl of oil have been produced as of December 2018. Especially in two workover MRC wells, after approximately 2.5 years of production, the current water cut is 96 to 97%, lower than water cut (98 to 99.9%) before the workover operation, and daily oil production increased significantly. Integrated drilling, logging, and production services provided MRC efficiency to rejuvenate this thin, low-permeability and low-resistivity mature reservoir.
将有效服务整合到MRC技术中,为低渗透低电阻率成熟油藏注入活力
中国LF油田主力砂岩储层M进入成熟开发阶段,含水较高(平均93%),采收率达到66.1%。剩余油垂直分布在该大型底水油藏顶部的H层,横向分布在当前开发区域的边缘,井控较少。H层由几个0.5 ~ 2 m的薄砂亚层与低渗透的钙质致密亚层相互交织而成;单孔有效排油半径为100 ~ 150 m。采用最大储层接触(MRC)技术增加泄油面积和体积扫描效率,以实现最佳产量和采收率,使该成熟储层恢复活力。在一个含水率为98 ~ 99.9%的原始井中,为了进行修井作业,我们对两个新分支进行了侧钻,形成了一个三分支MRC结构,并进行了裸眼完井,以开发H层的SL1目标子层。MRC井的成功取决于有效的裸眼侧钻和方位转弯。此外,多边井需要精确地追踪储层中的甜层。钻入上覆页岩导致井眼坍塌,钻穿下伏致密带导致井底水快速突破。低电阻率对比增加了从肩部区分目标带的难度。稀疏的井控和有限的地震分辨率带来了较高的构造和地层不确定性。因此,有效的服务可以克服这些挑战,实现所需的工程和油藏目标。新一代混合旋转导向系统(RSS)工具提供稳定、快速、准确的转向控制,即使在狗腿严重程度很高的情况下,也能实现工程目标。在分辨率和勘探深度(DOI)之间取得平衡的情况下,高分辨率深部电阻率反演利用Metropolis耦合马尔可夫链蒙特卡罗方法,即使在低电阻率对比环境下,也能清晰地识别出DOI约6 m范围内的多层(超过三层)、地层电阻率分布、各向异性和倾角。可以清楚地揭示储层细节,以帮助MRC沿着薄靶区进行横向转向。此外,大排量电潜泵(ESP)有助于优化裸眼作业性能。在3口MRC井中钻了6个新分支。混合RSS工具提供了100%的裸眼侧钻成功率,并且可以横向转向15 ~ 70°的方位变化和200 ~ 570 m的位移,以最大限度地提高泄油面积。深层反演通过同时圈定3个关键边界和4个相邻层剖面,识别目标层厚度和物性变化,揭示了高清晰的储层细节。目标砂厚0.5 ~ 2m,电阻率2 ~ 9 ω -m,被电阻率8 ~ 10 ω -m的互层包围。在精细的三维储层模型中,水平井有效地追赶有效目标砂的顶部,同时避免了高风险的砂肩。在SL1薄、低渗透油藏中,6条分支井的总水平进尺为4298米,净重比为91%。通过适当的ESP配置,截至2018年12月,该油田的石油产量约为688500桶。特别是在两口MRC修井中,经过大约2.5年的生产,目前的含水率为96 ~ 97%,低于修井作业前的含水率(98 ~ 99.9%),日产量显著增加。综合钻井、测井和生产服务为这一薄层、低渗透、低电阻率的成熟油藏提供了MRC效率。
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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