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Challenges in Developing Part Field Models to Assess Waterflood Performance for the Upper Burgan Reservoir, Greater Burgan Field, Kuwait

机译:发展零件现场模型的挑战评估伯根根储层的水运性能,更大伯根田,科威特

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The Burgan Sands constitute the major reservoir in the giant Greater Burgan field. The Upper Burgan Sands contain significant volumes of oil, several billions of barrels, and have generally poorer and more variable reservoir quality and poorer continuity than the bulk of the Burgan sequence. Secondary water flooding is currently under consideration. This paper describes the challenges in developing part field models that are appropriate for waterflood simulation studies and that are, as far as is practicable, conditioned to the available dynamic data. The general approach to choosing "type areas" to represent typical portions of the field will be described. The process of developing geo-cellular models and conditioning them to dynamic data will then be illustrated. The existing geological and simulation models are considered too coarse to provide a proper basis for modelling the Upper Burgan. The extent to which this resolution has allowed geological models to be conditioned to dynamic data has been limited. A rock typing exercise integrated available core, log, and production data. Speed zones and flow barriers were identified. Calculated flow capacities and productivity indices generally matched field data well. Pressure breaks in the RFT profiles correlated well with vertical flow barriers. In addition, Permeability anisotropy ratios (Kv/Kh) were developed from detailed RCA and probe permeameter data acquired in key wells. Subsequently, MicroModels at whole core scale were developed and simulated to generate representative Kv/Kh ratios by Facies. Based on sedimentology studies and rock typing work, and the existing structural model, detailed geo-cellular models were produced. Dynamic models were then developed and conditioned to selected dynamic data. The approach used to condition these models to pressure transient data, local water movement as indicated by a detailed water encroachment survey, and to the pressure breaks seen on RFTs is described. This process both confirmed the plausibility of the geo-model and reduced uncertainty in permeability anisotropy. The field was segmented into equi-uniform polygons, on which waterflood patterns were evaluated, number of wells and throughputs determined, and the volumes of water to be handled estimated. A series of numerical simulation models were developed, through variations on the reservoir quality, reservoir connectivity, oil type, and development options. Generated water-cut vs. recovery factor profiles were utilized in a hybrid approach combining analytic and numerical evaluations to determine production profiles and potential waterflood recovery factors over time for each of the polygons, and the whole field. The work demonstrates a methodology by which relatively quick but comprehensive and robust evaluation of the potential value of a waterflood development could be made. It allows for sensitivity assessments and a degree of optimization.
机译:Burgan Sands构成了巨大的伯根根领域的主要水库。上部伯根砂砂含有大量的油,几十亿桶,并且普遍较差,更可变的水库质量和较差的连续性,而不是伯根序列的大部分。目前正在考虑二次水洪水。本文介绍了开发适合水灌木模拟研究的零件现场模型中的挑战,并且尽可能可行,可以调节到可用的动态数据。将描述选择“类型区域”以表示字段的典型部分的一般方法。然后示出了开发地理蜂窝模型的过程并将其调节到动态数据。现有地质和仿真模型被认为太粗糙,为建模上伯根根建立了适当的基础。该分辨率允许将地质模型调节到动态数据的程度受到限制。摇滚键入锻炼综合可用核心,日志和生产数据。鉴定了速度区和流动障碍。计算流量和生产率指数通常匹配现场数据。 RFT曲线中的压力断裂与垂直流动屏障相比好。此外,渗透性各向异性比率(KV / KH)是由在关键井中获得的详细的RCA和探针渗透计数据中产生的。随后,开发并模拟整个核心标度的微模芯,以通过相位产生代表性KV / KH比率。基于沉积物研究和岩石打字工作,以及现有的结构模型,产生了详细的地理细胞模型。然后开发动态模型并将其调节到选定的动态数据。描述了将这些模型调节到压力瞬态数据的方法,描述了由详细的水侵占调查所示的局部水运动,并描述RFT上所示的压力断裂。这一过程既确认了地质模型的合理性,并降低了渗透性各向异性的不确定性。该领域被分段为平等均匀的多边形,在该多边形中进行了评估,井和吞吐量的数量,以及估计的水量。通过储层质量,水库连接,油类和开发选择的变化,开发了一系列数值模拟模型。生成的水切口与恢复因子谱中使用分析和数值评估的混合方法,以确定每个多边形以及整个领域的生产曲线和潜在的水泡回收因子。该工作证明了一种方法,通过该方法,可以进行对水运开发潜在价值的相对较快但全面的且稳健的评估。它允许敏感性评估和一定程度的优化。

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