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Optimization of Integrated Reservoir, Wellbore, and Power Plant Models for Enhanced Geothermal Systems.

机译:优化地热系统的综合油藏,井眼和电厂模型。

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摘要

Geothermal energy has the potential to become a substantially greater contributor to the U.S. energy market. An adequate investment in Enhanced Geothermal Systems (EGS) technology will be necessary in order to realize the potential of geothermal energy. This study presents an optimization of a waterbased Enhanced Geothermal System (EGS) modeled for AltaRock Energy's Newberry EGS Demonstration location. The optimization successfully integrates all three components of the geothermal system: (1) the present wellbore design, (2) the reservoir design, and (3) the surface plant design.;Since the Newberry EGS Demonstration will use an existing well (NWG 55-29), there is no optimization of the wellbore design, and the aim of the study for this component is to replicate the present wellbore conditions and design. An in-house wellbore model is used to accurately reflect the temperature and pressure changes that occur in the wellbore fluid and the surrounding casing, cement, and earth during injection and production. For the reservoir design, the existing conditions, such as temperature and pressure at depth and rock density, are incorporated into the model, and several design variables are investigated. The engineered reservoir is modeled using the reservoir simulator TOUGH2 while using the graphical interface PetraSim for visualization. Several fracture networks are investigated with the goal of determining which fracture network yields the greatest electrical output when optimized jointly with the surface plant. A topological optimization of the surface is completed to determine what type of power plant is best suited for this location, and a parametric optimization of the surface plant is completed to determine the optimal operating conditions.;The conditions present at the Newberry, Oregon EGS project site are the basis for this optimization. The subsurface conditions are favorable for the production of electricity from geothermal energy with rock temperatures exceeding 300°C at a well depth of 3 km. This research was completed in collaboration with AltaRock Energy, which has provided our research group with data from the Newberry well. The purpose of this thesis is to determine the optimal conditions for operating an Enhanced Geothermal System for the production of electricity at Newberry.;It was determined that a fracture network consisting of five fractured zones carrying 15 kg/s of fluid is the best reservoir design out of those investigated in this study. Also, it was found that 100 m spacing between the fractured zones should be implemented as opposed to only 50 m of spacing. A double-flash steam power plant provides the best method of utilization of the geothermal fluid. For the maximum amount of electricity generation over the 30-year operating lifetime, the cyclone separator should operate at 205°C and the flash vessel should operate at 125°C.
机译:地热能有潜力成为美国能源市场的重要贡献者。为了实现地热能的潜力,有必要对增强型地热系统(EGS)技术进行充分的投资。这项研究提出了一种针对AltaRock Energy的Newberry EGS示范地点的水基增强地热系统(EGS)的优化方案。该优化成功地整合了地热系统的所有三个组成部分:(1)当前的井眼设计,(2)储层设计和(3)地表植物设计。由于Newberry EGS示范将使用现有的井(NWG 55 -29),没有对井眼设计进行优化,该部分的研究目的是复制当前的井眼条件和设计。内部井眼模型用于准确反映在注入和生产过程中井眼流体以及周围的套管,水泥和泥土中发生的温度和压力变化。对于储层设计,将现有条件(例如深度处的温度和压力以及岩石密度)纳入模型,并研究了几个设计变量。使用储层模拟器TOUGH2对工程储层进行建模,同时使用图形界面PetraSim进行可视化。为了确定与地面设备一起优化时哪个断裂网络产生最大的电输出,研究了多个断裂网络。完成表面的拓扑优化以确定最适合此位置的发电厂类型,并完成表面设备的参数优化以确定最佳运行条件。;俄勒冈州Newberry EGS项目中的条件站点是此优化的基础。地下条件有利于在3 km的井深处利用地热能发电,岩石温度超过300°C。这项研究是与AltaRock Energy合作完成的,AltaRock Energy为我们的研究小组提供了Newberry井的数据。本文的目的是确定在纽伯里运行电力生产的增强型地热系统的最佳条件。确定由5个裂缝区组成的裂缝网络承载15 kg / s的流体是最佳储层设计在这项研究中调查的那些。而且,发现应该在裂缝区域之间实现100 m的间距,而不是仅仅50 m的间距。双闪蒸汽发电厂提供了利用地热流体的最佳方法。为了在30年的使用寿命中产生最大的发电量,旋风分离器应在205°C下运行,而闪蒸容器应在125°C下运行。

著录项

  • 作者

    Peluchette, Jason.;

  • 作者单位

    West Virginia University.;

  • 授予单位 West Virginia University.;
  • 学科 Engineering Chemical.;Engineering Geological.;Engineering Geophysical.
  • 学位 M.S.
  • 年度 2013
  • 页码 48 p.
  • 总页数 48
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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