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A practical approach for optimization of infill well placement in tight gas reservoirs

机译:优化致密气藏中填充井位置的实用方法

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Despite their low production rates, tight gas wells contribute significantly to the Nation's energy supply. Because permeabilities in tight reservoirs can be as low as fractions of a millidarcy, or even in the microdarcy range, drainage areas are small and many more wells are needed to drain tight gas fields than conventional gas fields. Infill drilling has been the most common and effective means to revitalize tight gas fields, by adding new reserves and accelerating recovery. Given the marginal nature of tight gas fields, optimization of infill well placement is extremely important to ensure economic viability of infill drilling programs.However, optimal placement of infill wells in tight gas fields is challenging. First, the reservoirs are usually quite complex and reservoir characteristics are often not well understood, even though most of these fields are mature. Second, data are usually scarce. It is not uncommon for only production data to be available in a marginal, tight gas field. Third, these fields often contain a large number of existing wells, which can require the evaluation of hundreds of potential infill drilling candidates. Finally, interference between wells affects placement of infill drilling wells and must be considered in the evaluation. Given the marginal nature of these gas fields, a conventional evaluation approach, such as detailed reservoir characterization and simulation, is usually prohibitively time-consuming and costly. Thus, a rapid and cost-effective approach to optimal infill drilling design that adequately addresses these issues would be quite valuable to operators.In this paper, we present a systematic methodology for efficient design of an infill drilling scheme for marginal gas reservoirs. The approach consists of two major components. The first is a sequential inversion algorithm for rapid history matching. The algorithm is conditional to the correlation between permeability and porosity, if any. The inversion provides not only the spatial distribution of both permeability and pore volume, but also the spatial distribution of remaining gas in place. The second component of the approach is a successive selection strategy for infill candidate locations. The method fully addresses well interference between existing and infill wells, as well as interference between infill wells. It is rapid and cost effective. Synthetic and field examples are provided to demonstrate the applicability and power of the method.
机译:尽管生产率很低,但气密井却为国家的能源供应做出了重要贡献。由于致密油藏的渗透率可能低至毫达西的几分之一,甚至在微达西范围内,因此排水面积很小,与常规气田相比,需要更多的井来排放致密气田。通过增加新储量和加快采收率,填充钻井已成为振兴致密气田的最常用和最有效的手段。鉴于致密气田的边际性质,优化填充井的位置对于确保填充钻井计划的经济可行性极为重要,但是,在致密气田中优化填充井的工作具有挑战性。首先,储层通常很复杂,即使其中大多数油田都已经成熟,但储层特征往往还是不被很好地理解。其次,数据通常是稀缺的。在边缘狭窄的气田中仅可获得生产数据的情况并不少见。第三,这些领域通常包含大量现有的井,这可能需要评估数百个潜在的填充钻探候选对象。最后,井之间的干扰会影响填充钻井的位置,因此必须在评估中加以考虑。考虑到这些气田的边际性质,常规评估方法(例如详细的储层表征和模拟)通常非常耗时且成本高昂。因此,一种快速,经济有效的方法来充分解决这些问题将对操作员来说是非常有价值的。在本文中,我们提出了一种系统设计的方法,可以有效地设计边际气藏的填充钻井方案。该方法包括两个主要部分。第一个是用于快速历史匹配的顺序反演算法。该算法以渗透率和孔隙率之间的相关性为条件(如果有)。反演不仅提供渗透率和孔隙体积的空间分布,而且还提供剩余气体就位的空间分布。该方法的第二部分是用于填充候选位置的连续选择策略。该方法完全解决了现有井与填充井之间的井干扰以及填充井之间的干扰。它快速且具有成本效益。提供了合成实例和现场实例,以证明该方法的适用性和功效。

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