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Insight into Hydraulic Fracture Geometries Using Fracture Modeling Honoring Field Data Measurements and Post-Fracture Production

机译:使用裂缝模型尊重现场数据测量和断裂后生产的液压骨折几何形状

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Using planar fracture models to match treatment pressure and improve understanding of the fracture geometry generation is not a new concept.Knowledge gained from this exercise has historically been used to improve engineered fracture completions and production,and maximize net present value (NPV);however,at some point during the progression from vertical to horizontal wellbores,many within the industry have forgotten about the learnings that can still be gained from current fracture models.Engineered completions have been largely replaced by spreadsheet efficiencies relevant to operations rather than production in too many cases.Some images of unconventional well stimulation treatments portray fractures growing in every direction,forming patterns that resemble shattered windshields,and have often excluded the known physics related to rock geomechanics,reservoir properties,and geology.Excuses to dismiss modeling are numerous and are gaining the reasoning of conformists.Unconventional resource plays might or might not contain large numbers of natural fractures;but,current fracture models can still be used to gain insight into the fracture geometries being generated.While the development of complex fracture models continues to evolve,the industry can still gain insight to fracture geometry and resulting production using current planar fracture modeling.Caveats to this process are that it requires: 1.Valid measured data to establish model constraints.2.The engineer to understand the basic physics of how fractures are generated and when (and when not) to twist the"knobs"in the model.3.The engineer to understand which"knobs"should be used based on real diagnostics information.4.The actual single well production to be an integral part of the process.This paper demonstrates the results of honoring data measurements from a multitude of potential sources,including downhole microseismic data,downhole deformation tiltmeters,offset pressure monitoring,DTS,DAS,diagnostic fracture injection test (DFIT) analysis,injection as well as production data with bottomhole pressure measurements,etc.,and the resulting observations and conclusions.Several industry examples are discussed to help frame the vast amount of information possible to help engineers do a better job of including more diagnostics into routine operations to provide additional insight and ultimately result in improved models and completion designs.This paper is not intended to merely demonstrate the results of the work but to spark an interest in bringing more intense engineering back to fracture stimulation modeling for horizontal completions.
机译:使用平面骨折模型匹配处理压力,提高了裂缝几何形状产生的理解是不是从本练习获得了新的concept.Knowledge历来用来改善工程断裂完井和生产,并最大化净现值(NPV);然而,在从垂直到水平井眼在发展过程中的一些点,行业内许多人忘记了,可仍然可以从当前骨折models.Engineered完井获得了所学的知识已基本通过相关操作,而不是生产的电子表格的效率在很多情况下取代非常规井增产处理。有的图像描绘骨折在每一个方向生长,从而形成类似于粉碎挡风玻璃,并常常排除有关岩石地质力学,储层性质,和geology.Excuses驳回建模已知物理图案数量众多,并且获得对conformists.Unconventional再推理源播放可能会或可能不会含有大量的天然裂缝;但是,目前的骨折模型仍然可以用来洞察断裂的几何形状是generated.While复杂骨折模型开发的不断发展,该行业仍然可以洞察到裂缝几何形状和使用当前的平面断裂modeling.Caveats该方法得到的生产是它需要:1.Valid测量数据来建立模型constraints.2.The工程师理解的基本物理如何产生裂缝和时(当不)扭曲的model.3.The工程师“结”,以了解哪些“旋钮”应基于实际诊断中使用information.4.The实际单井产量是process.This的一个组成部分用纸演示从的潜在来源的大量数据履行测量,包括井下微震数据,井下变形倾斜仪,偏移压力监测,DTS,DAS,诊断骨折的结果注射试验(DFIT)分析,注入以及与井底压力测量等,并将得到的意见和conclusions.Several行业的例子生产数据的可能的大量信息进行讨论帮助框架,以帮助工程师做一个更好的工作包括更多的诊断为日常操作提供额外的洞察力,并最终导致改进型号,并完成designs.This本文并不打算仅仅论证工作的结果,但在带来更激烈的工程回压裂建模水平激发兴趣落成。

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