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Radionuclide Gas Transport through Nuclear Explosion-Generated Fracture Networks

机译:放射性核气体通过核爆炸断裂网络的传输

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摘要

Underground nuclear weapon testing produces radionuclide gases which may seep to the surface. Barometric pumping of gas through explosion-fractured rock is investigated using a new sequentially-coupled hydrodynamic rock damage/gas transport model. Fracture networks are produced for two rock types (granite and tuff) and three depths of burial. The fracture networks are integrated into a flow and transport numerical model driven by surface pressure signals of differing amplitude and variability. There are major differences between predictions using a realistic fracture network and prior results that used a simplified geometry. Matrix porosity and maximum fracture aperture have the greatest impact on gas breakthrough time and window of opportunity for detection, with different effects between granite and tuff simulations highlighting the importance of accurately simulating the fracture network. In particular, maximum fracture aperture has an opposite effect on tuff and granite, due to different damage patterns and their effect on the barometric pumping process. From stochastic simulations using randomly generated hydrogeologic parameters, normalized detection curves are presented to show differences in optimal sampling time for granite and tuff simulations. Seasonal and location-based effects on breakthrough, which occur due to differences in barometric forcing, are stronger where the barometric signal is highly variable.
机译:地下核武器测试产生的放射性核素气体可能会渗入地表。使用新的顺序耦合流体动力岩石损伤/气体传输模型研究了通过爆炸性岩石的气压大气压抽运。产生两种岩石类型(花岗岩和凝灰岩)和三个埋藏深度的断裂网络。裂缝网络被集成到由不同振幅和可变性的表面压力信号驱动的流动和传输数值模型中。使用实际裂缝网络进行的预测与使用简化几何体的先前结果之间存在主要差异。基质孔隙度和最大裂缝孔径对气体突破时间和探测机会窗口的影响最大,而花岗岩和凝灰岩模拟之间的不同影响突显了精确模拟裂缝网络的重要性。特别是,由于不同的破坏方式及其对气压泵送过程的影响,最大裂缝孔径对凝灰岩和花岗岩的作用相反。通过使用随机生成的水文地质参数的随机模拟,给出了归一化的检测曲线,以显示花岗岩和凝灰岩模拟的最佳采样时间的差异。当气压变化很大时,季节性和基于位置的突破效果会由于气压强迫的差异而更加强烈。

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