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Impact of Uncertainty on Thermal and Chemical Tracers for EGS Characterization: A Framework for Thermo-Chemical Smart Tracers

机译:不确定性对ems表征热和化学示踪剂的影响:热化学智能示踪剂的框架

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A major issue to overcome when characterizing a deep fractured reservoir is that of data limitation due to accessibility and affordability. Geological characterization data include, but are not limited to, measurements of fracture density, orientation, extent, and aperture. All of which are taken at the field scale through a very sparse limited number of deep boreholes. These types of data are often reduced to probability distribution functions for predictive modeling and simulation in a stochastic discrete framework. Stochastic discrete fracture network (SDFN) models enable, through Monte Carlo simulations, the probabilistic assessment of flow and transport phenomena that are not adequately captured using continuum models. Despite the fundamental uncertainties inherited within the probabilistic reduction of the sparse data collected, very little work has been conducted on quantifying uncertainty on the reduced probabilistic distribution functions. Using nested Monte Carlo simulations, we investigated the impact of parameter uncertainties of the discrete fracture network on the flow, heat and mass transport using physical characteristics such as the hydraulic conductivity tensor, production temperatures and peak arrival time.
机译:在表征深层骨折水库时克服的主要问题是由于可访问性和可负担性而具有数据限制的问题。地质表征数据包括但不限于裂缝密度,定向,范围和孔径的测量。所有这些都是通过非常稀疏的有限数量的深层钻孔在现场等级中进行。这些类型的数据通常被降低到随机离散框架中的预测建模和仿真的概率分布函数。随机离散断裂网络(SDFN)模型通过Monte Carlo仿真,通过使用连续型模型无法充分捕获的流动和运输现象的概率评估。尽管在收集的稀疏数据的概率降低内遗产了基本的不确定性,但在量化概率分布函数上的不确定性方面已经进行了很少的工作。使用嵌套蒙特卡罗模拟,我们研究了使用液压导电性张量,生产温度和峰值到达时间等物理特性对流量,热和质量运输的参数不确定性的影响。

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