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SPE 125532 Modeling Well Performance in Shale-Gas Reservoirs

机译:SPE 125532页岩气藏井性能

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The paper focuses on modeling well performance in shale-gas reservoirs using numerical simulation. Stimulation treatments in many shale-gas reservoirs create very complex fracture networks. These fracture networks are required to achieve economic production rates from rock with a matrix permeability of le-4 to le-5 md. The primary issues with modeling production from shale-gas reservoirs are accurately describing gas flow from the tight shale matrix into the fracture network, properly characterizing the matrix block size (or fracture density) and the conductivity of the network fractures, and evaluating the impacts of stress sensitive network fracture conductivity and gas desorption. This paper contrasts numerical reservoir simulation approaches using discrete modeling of the tight matrix and fracture network to that of dual porosity models. The paper illustrates that discretely gridding the network fractures is required to accurately model fluid flow in shale- gas reservoirs (with complex fracture networks) and show that dual porosity solutions do not adequately capture the transient flow in the very low permeability matrix blocks. The paper also illustrates the impact of gas desorption on the production profile and ultimate gas recovery in various shale reservoirs, showing that in some shale-gas reservoirs desorption may be a minor component of gas recovery. In addition, the paper details the impact of stress sensitive network fracture conductivity on well productivity. The reservoir simulations show that as closure stress increases in the fracture network, significant reductions in network fracture conductivity are likely, decreasing ultimate gas recovery. However, the effects of stress sensitive network fracture conductivity may not be evident in the initial well performance (1-2 years) and could lead to optimistic gas recovery forecasts. The paper presents selected examples from Barnett shale horizontal wells that incorporate microseismic fracture mapping and production data to illustrate the application of the production modeling to evaluate well performance in unconventional gas reservoirs.
机译:本文侧重于使用数值模拟模拟页岩气藏的井性能。许多页岩气储层中的刺激治疗产生非常复杂的骨折网络。这些裂缝网络需要从岩石到LE-5 MD的基质渗透率来实现经济生产率。来自页岩气储层的建模生产的主要问题是准确地描述了从紧张的页岩基质到骨折网络中的气体流动,正确地表征基质块尺寸(或断裂密度)和网络骨折的导电性,并评估了影响的影响应力敏感网络断裂电导率和气体解吸。本文对与双孔隙模型的离散模型与裂缝模型的离散建模对比数值储层模拟方法。本文说明了网络骨折所需的离散地网,以准确地模拟页岩气藏(复杂骨折网络)中的流体流动,并表明双孔隙率溶液不会充分捕获极低渗透矩阵块中的瞬态流动。本文还说明了天然气解吸对各种页岩储层中的生产型材和最终气体回收的影响,表明在一些页岩气储层中,解吸可以是气体回收的次要成分。此外,纸张详细介绍了应力敏感网络断裂电导率对良好生产率的影响。储层模拟表明,随着裂缝网络的闭合应力增加,网络骨折导电性的显着降低可能降低了终极气体回收率。然而,在初始井的性能(1-2岁)中,应力敏感网络断裂电导率的影响可能不会明显,并且可能导致乐观的气体回收预测。本文介绍了Barnett Shale水平孔的所选实例,该井包含微震断裂映射和生产数据,以说明生产建模的应用,以评估非传统气体储层的良好性能。

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