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An analytical pressure model to guide downhole sensor placement for carbon dioxide sequestration monitoring.

机译:一种分析压力模型,可指导井下传感器的位置进行二氧化碳封存监测。

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摘要

Injecting CO2 into saline aquifers is currently the most viable approach to mitigate global greenhouse gas effect. Various monitoring techniques are required to achieve 99% accuracy in determining the location of the injected CO2 plume. Sensor locations are critical to the monitoring quality necessary to meet this requirement but have scarcely been discussed. The pressure profile needs to be modeled accurately at the initial stage of CO2 injection to guide sensor locations. The objective of this thesis was to develop an analytical solution for CO2 sequestration based on time and distance. This will guide the locations of downhole pressure sensors and optimize the sensor density.;This work establishes a comprehensive pressure model, in which three flow regimes were fitted on sequences of time domain in each boundary condition, assuming a radial and homogenous saline aquifer. The model includes transient and pseudo steady- state flows to solve early time pressure. The flow front equation divides the aquifer into two flow regions. The analytical solution that applied to two field cases was compared and confirmed with the results from reservoir simulations. Sensitive analyses were performed on major aquifer parameters.;The application of this work was to determine downhole pressure sensor locations. Distributed pressure sensors have the potential to be implemented in CO2 sequestration operations with a moderate cost. Sensor ranking was optimized by an error weighting matrix based on a covariance matrix and experimental measurement distribution in this work. Sensor placement was guided through regression analysis performed on two flow regions. With the input of sensor physical errors, various ranges of monitoring accuracy can be achieved with different sensor placement densities.
机译:目前,向盐水层中注入二氧化碳是减轻全球温室气体影响的最可行方法。在确定注入的二氧化碳羽流的位置时,需要各种监测技术来实现99%的精度。传感器位置对于满足此要求所必需的监视质量至关重要,但很少讨论。在二氧化碳注入的初始阶段,需要对压力曲线进行精确建模,以引导传感器位置。本文的目的是开发一种基于时间和距离的二氧化碳隔离分析解决方案。这将指导井下压力传感器的位置并优化传感器密度。这项工作建立了一个全面的压力模型,在该模型中,在三个边界条件下,在每个边界条件下都在时域序列上拟合了三个流态,并假定了径向和均匀的盐水层。该模型包括瞬态和伪稳态流以解决早期压力。流动前沿方程将含水层分为两个流动区域。比较了适用于两个现场案例的分析解决方案,并通过油藏模拟的结果进行了确认。对主要含水层参数进行了敏感分析。这项工作的应用是确定井下压力传感器的位置。分布式压力传感器有潜力以适中的成本用于二氧化碳封存操作中。在这项工作中,通过基于协方差矩阵的误差加权矩阵和实验测量分布来优化传感器排名。通过对两个流动区域进行回归分析来指导传感器的放置。通过输入传感器物理误差,可以使用不同的传感器放置密度实现各种范围的监视精度。

著录项

  • 作者

    Mao, Yilin.;

  • 作者单位

    Missouri University of Science and Technology.;

  • 授予单位 Missouri University of Science and Technology.;
  • 学科 Petroleum engineering.;Energy.;Environmental science.
  • 学位 M.S.
  • 年度 2014
  • 页码 89 p.
  • 总页数 89
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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