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首页> 外文期刊>Journal of natural gas science and engineering >Numerical simulations of vertical growth of hydraulic fractures and brine migration in geological formations above the Marcellus shale
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Numerical simulations of vertical growth of hydraulic fractures and brine migration in geological formations above the Marcellus shale

机译:Marcellus页岩上方水力裂缝垂直扩展和盐水运移的数值模拟

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One of the critical environmental questions about hydraulic fracturing in shales is the potential for contamination of ground and surface water. There are two specific concerns arising from hydraulic treatments: 1) whether hydraulic fractures extend upward through overlying strata to reach overlying aquifers containing drinking water, and 2) whether injected fluids push native fluids upward into these overlying aquifers. In this work, the extent of likely fracture growth through overlying layers during hydraulic treatment of the Marcellus shale was estimated using a hydraulic fracture model. A wide range of material and fluid flow properties in a multi-layered geologic model was considered. The model was based on conditions and characteristics applicable to the Marcellus shale in that part of the Appalachian basin within southwestern Pennsylvania. Predictions of vertical termination frequencies for hydraulic fractures were used in a multi-layer model of the strata and natural fractures for studying brine migration through the natural and induced fracture network. NFFLOW, the software for explicitly modeling flow within networks of fractures, was utilized to compute transient flow rates according to the schedule of injected fluid during hydraulic fracturing. To aid our analysis, the modeled sequence of geologic strata was capped with a fictitious unfractured, but moderately-permeable layer, which serves as a monitoring zone. The analysis assumes one well lateral was placed in the middle of the Marcellus shale with hydraulic fractures penetrating layers in the model. The newly-developed geomechanical module within NFFLOW was used to represent stress-sensitivity of the fractures. This allows the opening and closing of fracture apertures with changes in fluid pressures within fracture segments. Pressure increases in the formations overlying the Tully limestone, indicating fluid flow, was observed due to the hydraulic stimulation; and the impact of these increased pressures on brine migration towards the surface was considered. (C) 2015 Elsevier B.V. All rights reserved.
机译:页岩水力压裂的关键环境问题之一是可能污染地下水和地表水。水力处理引起两个特别的问题:1)水力压裂是否通过上覆地层向上延伸,到达包含饮用水的上覆含水层; 2)注入的流体是否将天然流体向上推动到这些上覆含水层中。在这项工作中,使用水力压裂模型估算了马塞勒斯页岩水压处理过程中可能通过上覆层引起的裂缝扩展程度。考虑了多层地质模型中的各种材料和流体流动特性。该模型基于适用于宾夕法尼亚州西南部阿巴拉契亚盆地那部分的Marcellus页岩的条件和特征。水力裂缝垂直终止频率的预测被用于地层和天然裂缝的多层模型中,以研究盐水通过天然裂缝和诱导裂缝网络的运移。 NFFLOW是用于对裂缝网络中的流动进行显式建模的软件,用于根据水力压裂过程中注入流体的时间表来计算瞬时流量。为了帮助我们进行分析,在地质层的建模序列上覆盖了一个虚拟的未破裂但中等渗透性的层,该层用作监测区域。分析假设在马塞勒斯页岩的中部放置一口井,其中水力裂缝穿透了模型中的层。 NFFLOW中新开发的岩土力学模块用于表示裂缝的应力敏感性。这允许随着裂缝段内流体压力的变化而打开和关闭裂缝孔。由于水力刺激,在塔利石灰岩上空地层中的压力增加,表明流体流动。并考虑了这些增加的压力对盐水向地面迁移的影响。 (C)2015 Elsevier B.V.保留所有权利。

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