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Simulation of slip flow and phase change in nanopores.

机译:纳米孔中滑流和相变的模拟。

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摘要

Unlike conventional oil and gas reservoirs, unconventional petroleum systems are dominated by nanometer pores. At the nanoscale, laws that govern fluid flow and phase transition are different from those established for micrometer-sized pores, and research is needed to develop new data, methods, and correlations. For this dissertation, we developed pore-scale models to simulate fluid slip flow through complex porous media and phase transition in nanopores with a pore size distribution.;Slip flow is a well-recognized phenomenon that enhances the rate of liquid or gas flow at micrometer and nanometer scales. However, the ability to conduct porous media flow simulation with the slip boundary condition using the lattice-Boltzmann method is not well established. The traditional LB method simulates the no-slip boundary condition, and therefore only predicts the intrinsic permeability of a porous medium; by modifying the commonly adopted bounce-back scheme, a new LB model that captures the general first-order slip boundary condition has been derived and developed. The new LB slip flow model was validated by the analytical solutions for 1D channels and asymptotic solutions for 2D square arrays of cylinders. With this new model, slip flows through simple cubic (SC), body-centered cubic (BCC) and face-centered cubic (FCC) arrays of spheres were simulated for the first time, and correlations for the apparent permeability were established. This new LB slip model, built on an existing parallel LB framework, is capable of high-performance computing.;In nanopores, phase transition is affected by capillary pressure and fluid-surface interactions. Although models that relate phase behavior to the dimension of the pores have been developed, understanding of phase transition in unconventional reservoirs is still hindered by lack of experimental data and proper account of the effect of pore size distributions. Through nanofluidic experiments, we observed that phase change should follow a sequence dictated by the pore size, and phase changes that are earlier in the sequence will change the composition of the remaining fluids and their phase transition points. A vapor-liquid equilibrium calculation procedure that accounts for the effect of capillary pressure was developed to model depressurizations of a light oil and a retrograde gas confined in nanoporous media. This procedure allows us to quantitatively predict the state of phases in a nanopore system with a pore size distribution for given pressure, temperature, fluid composition, and depressurization process.
机译:与常规油气储层不同,非常规石油系统以纳米孔隙为主。在纳米尺度上,控制流体流动和相变的规律与为微米级孔隙建立的规律不同,需要进行研究以开发新的数据,方法和相关性。在本文中,我们开发了孔隙尺度模型,以模拟通过复杂多孔介质的流体滑流和具有孔径分布的纳米孔中的相变。滑流是公认的现象,可以提高微米级液体或气体的流速和纳米尺度。但是,使用格-玻尔兹曼方法在滑移边界条件下进行多孔介质流动模拟的能力尚未很好地建立。传统的LB方法模拟了无滑移边界条件,因此只能预测多孔介质的固有渗透率。通过修改常用的回弹方案,已获得并开发了捕获一般一阶滑移边界条件的新LB模型。通过用于一维通道的解析解和用于圆柱的二维正方形阵列的渐近解验证了新的LB滑流模型。使用该新模型,首次模拟了通过简单立方(SC),体心立方(BCC)和面心立方(FCC)球体阵列的滑流,并建立了表观渗透率的相关性。这种新的LB滑动模型建立在现有的并行LB框架上,能够进行高性能计算。在纳米孔中,相变会受到毛细管压力和流体-表面相互作用的影响。尽管已经建立了将相行为与孔隙尺寸相关的模型,但是由于缺乏实验数据和对孔径分布的影响的适当考虑,仍然难以理解非常规储层的相变。通过纳米流体实验,我们观察到相变应遵循孔径所决定的序列,而序列中较早的相变将改变其余流体的组成及其相变点。开发了一种考虑毛细管压力影响的气液平衡计算程序,以模拟受限于纳米多孔介质中的轻质油和逆行气体的降压。对于给定的压力,温度,流体成分和降压过程,该程序使我们能够定量地预测具有孔径分布的纳米孔系统中的相态。

著录项

  • 作者

    Wang, Lei.;

  • 作者单位

    Colorado School of Mines.;

  • 授予单位 Colorado School of Mines.;
  • 学科 Petroleum engineering.;Mechanical engineering.;Chemical engineering.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 136 p.
  • 总页数 136
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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