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Parameter estimation from flowing fluid temperature logging data in unsaturated fractured rock using multiphase inverse modeling

机译:基于多相逆模型的非饱和裂隙岩石流动流体测温数据参数估计

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摘要

A simple conceptual model has been recently developed for analyzing pressure and temperature data from flowing fluid temperature logging (FFTL) in unsaturated fractured rock. Using this conceptual model, we developed an analytical solution for FFTL pressure response, and a semianalytical solution for FFTL temperature response. We also proposed a method for estimating fracture permeability from FFTL temperature data. The conceptual model was based on some simplifying assumptions, particularly that a single-phase airflow model was used. In this paper, we develop a more comprehensive numerical model of multiphase flow and heat transfer associated with FFTL. Using this numerical model, we perform a number of forward simulations to determine the parameters that have the strongest influence on the pressure and temperature response from FFTL. We then use the iTOUGH2 optimization code to estimate these most sensitive parameters through inverse modeling and to quantify the uncertainties associated with these estimated parameters. We conclude that FFTL can be utilized to determine permeability, porosity, and thermal conductivity of the fracture rock. Two other parameters, which are not properties of the fractured rock, have strong influence on FFTL response. These are pressure and temperature in the borehole that were at equilibrium with the fractured rock formation at the beginning of FFTL. We illustrate how these parameters can also be estimated from FFTL data.
机译:最近开发了一个简单的概念模型,用于分析非饱和裂隙岩石中流动流体温度测井(FFTL)的压力和温度数据。使用此概念模型,我们开发了FFTL压力响应的解析解决方案和FFTL温度响应的半解析解决方案。我们还提出了一种根据FFTL温度数据估算裂缝渗透率的方法。概念模型基于一些简化的假设,尤其是使用了单相气流模型。在本文中,我们开发了与FFTL相关的更全面的多相流动和传热数值模型。使用此数值模型,我们执行了许多正向仿真,以确定对FFTL的压力和温度响应影响最大的参数。然后,我们使用iTOUGH2优化代码通过逆建模来估计这些最敏感的参数,并量化与这些估计的参数相关的不确定性。我们得出的结论是,FFTL可用于确定裂隙岩的渗透率,孔隙率和热导率。另外两个不是裂隙岩石特性的参数对FFTL响应有很大影响。这些是井眼中的压力和温度,与FFTL开始时的裂缝岩层处于平衡状态。我们说明了如何也可以从FFTL数据估算这些参数。

著录项

  • 来源
    《Water resources research》 |2009年第4期|177-193|共17页
  • 作者单位

    Earth Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, California, USA;

    Earth Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, California, USA;

    Earth Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, California, USA;

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  • 正文语种 eng
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