利用嵌入式离散裂缝模型EDFM高效建模数百万条天然和水力裂缝的非常规井动态

Wei Yu, Anuj Gupta, R. Vaidya, K. Sepehrnoori
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引用次数: 1

摘要

近年来,为了纳入更多的数据和物理特性,以及处理先进的完井设计和开发方案,天然裂缝油藏动态建模的复杂性不断增加。虽然这些复杂的模型可以为困难的问题提供更多的见解,但它们带来了更高的计算成本。这种限制使资产团队无法处理大量的井/裂缝场景,这些场景正确地代表了地质的不确定性。该研究提出了一种强大的非侵入式嵌入式离散裂缝模型(EDFM)方法,可以有效地处理数百口水平井的数百万条天然裂缝和水力裂缝,这在文献中从未建模过。具体来说,我们使用黑色油藏模拟器建立了一个三维地质模型,水平面积为100平方英里,11层厚度为165英尺。不考虑骨折的基质细胞总数超过300万个。总共在两个目标层中模拟了400口水平井,井长为6000英尺。每层包含200口井。每口井有112条水力裂缝,裂缝簇间距为50英尺,水力裂缝总数为44800条。此外,我们还生成了3个案例,分别为10K、100K和100万条三维天然裂缝,倾角为70 ~ 90度。自然骨折100万例,细胞总数超过4200万。研究了该井在有天然裂缝和没有天然裂缝情况下的性能。这项工作对油田开发规划中的井缝间距优化过程具有重要价值。非侵入式EDFM方法已被证明是一种有效的裂缝建模工具,可用于模拟百万级复杂水力/天然裂缝,大大提高了精度,减少了计算时间。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Efficient Modeling of Unconventional Well Performance with Millions of Natural and Hydraulic Fractures Using Embedded Discrete Fracture Model EDFM
The complexity of dynamic modeling for naturally fractured reservoirs has increased in recent years to incorporate more data and physics, as well as to handle advanced completion designs and development scenarios. While these complex models can provide more insight to difficult problems, they come with higher computational costs. Such a limitation prohibits an asset team from working with a large number of well/fracture scenarios that correctly represent geological uncertainty. This study presents a powerful non-intrusive Embedded Discrete Fracture Model (EDFM) method to efficiently handle millions of natural and hydraulic fractures with hundreds of horizontal wells, which has never been modeled in the literature. Specifically, we built a 3D geological model using a black oil reservoir simulator with 100 square miles in the horizontal area and 11 layers of 165 ft thickness. The total number of matrix cells without considering fractures is over 3 million. In total, 400 horizontal wells with well length of 6000 ft were modeled in two target layers. Each layer contains 200 wells. Each well has 112 hydraulic fractures with cluster spacing of 50 ft. The total number of hydraulic fractures is 44,800. In addition, we generated three cases with 10K, 100K and 1 million 3D natural fractures with dip angle from 70 to 90 degrees. For the case with 1 million natural fractures, the total number of cells is over 42 million. Well performance for the field example, with and without natural fractures, was investigated. This work adds significant value to the well and fracture spacing optimization process during field development planning. The non-intrusive EDFM method has been proven to be an efficient fracture modeling tool for simulating million-level complex hydraulic/natural fractures, which significantly improves accuracy and reduces computational time.
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