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Modeling Fluid Flow in Tight Unconventional Reservoirs: Nano Scale Mobility/Trapability Mechanistic Approach!

机译:紧密无传统水库中的模拟液体流动:纳米尺度移动/艰苦机械方法!

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Fluid flow through UCRs (Unoconventional Reservoirs) is governed by several mechanisms such as viscous, convection (comprises of diffusion and advection), sorption (comprises of absorption and adsorption), capillary and inertial forces taking places in two different domains - inorganic (rock) domain and organic (kerogen) domain. These mechanisms act in two main pore scale levels, Micro- and Nanopores, in addition to the Macro scale level considered to host the flow within fractures and fissures whenever encountered (naturally existing or induced). This research aims at building a comprehensive model, based on thorough understanding of these fluid flow complexities of UCRs. The developed modeling technique assumed to predict fluid flow by coupling the effect of both displacement and trapability forces and relating these forces within the three pore scale levels (Macro, Micro and Nano). A fundamental model for the above mentioned mechanisms has been established. Sensitivity study to determine the contributions of these specific mechanisms along with a criterion to develop tight UCRs is presented. A new and unique flow behavioral model to enable predicting flow characteristics through tight UCRs within nanopores has been established. This model will be used in estimating realistic hydrocarbon-inplace, reserves, and profiling production performance using different potential methods. This research has the following specific outcomes: (1) Comprehensive workflow and methods of UCR characterization. (2) A model to predict the fluid flow behavior through UCRs. (3) A criterion to predict the effects of different flow parameters (displacement & trapability) on fluid flow behavior in UCRs. (4) A new field-development scheme suitable for tight UCRs.
机译:通过UCRS(无核储层)的流体流动由诸如粘性,对流(包括扩散和平整)的若干机制来控制,吸附(包括吸收和吸附),毛细管和惯性力量在两个不同的结构域中取出的地方 - 无机(岩石)结构域和有机(Kerogen)域。这些机制在两个主要的孔隙率水平,微观和纳米孔中起作用,除了宏观尺度水平之外,每当遇到(自然存在或诱导的裂缝中的骨折和裂缝中宿主的流量。本研究旨在建立一个综合模型,基于对UCRS的这些流体流动复杂性的彻底了解。开发的建模技术假设通过耦合位移和艰苦力力的效果并在三个孔隙级(宏,微纳米)内耦合这些力来预测流体流动。已经建立了上述机制的基本模型。介绍了敏感性研究,以确定这些特定机制的贡献以及制定紧密UCR的标准。已经建立了一种新的和独特的流动行为模型,以实现通过纳米孔内的紧密UCR来预测流动特性。使用不同的潜在方法,该模型将用于估计现实的烃类储料,储备和分析生产性能。本研究具有以下特定结果:(1)综合工作流程和UCR表征方法。 (2)通过UCR预测流体流动行为的模型。 (3)预测不同流动参数(位移和艰苦)对UCR中流体流动作用的标准。 (4)一种适用于紧密UCR的新型现场开发方案。

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