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首页> 外文期刊>Geophysics: Journal of the Society of Exploration Geophysicists >Body-wave reconstruction from ambient seismic noise correlations in an underground mine
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Body-wave reconstruction from ambient seismic noise correlations in an underground mine

机译:利用地下矿井中周围地震噪声的相关性重建体波

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The reconstruction of seismic Green's functions from correlations of ambient seismic noise has recently developed as a promising approach for exploring the earth's interiors without the requirement of costly active seismic sources. This approach is widely used for imaging the crust at a kilometer scale. However, few studies report noise-based Green's function reconstruction at smaller scales in industrial environments. We have investigated the possibility of constructing seismic Green's functions between sensors in an active underground mine (Garpenberg, Sweden) by crosscorrelating seismic noise generated by mining activities. We have determined with realistic numerical simulations that the mining excavations in an underground mine lead to a regime of strong scattering, which is favorable for constructing seismic Green's functions by crosscorrelating seismic noise. One month of continuous data was recorded by 18 seismic sensors located more than 1 km below surface. A variety of broadband (10-3000 Hz) seismic sources were present, but the seismic wave-fields are directional and often monochromatic, so that the conditions for constructing Green's functions by crosscorrelating ambient seismic noise were not ideal (isotropic illumination and spectrally white). We developed a stacking scheme that dismissed data during periods when the seismic noise was dominated by monochromatic signals or when noise sources were not in stationary phase locations. Estimates of the seismic Green's functions were retrieved for a broad frequency range (20-400 Hz) for almost all of the correlation pairs when we used the selective stacking scheme. We used the direct body waves present at low frequencies (less than 100 Hz) in the reconstructed seismic Green's functions to invert for the 3D S-wave velocity structure of the mine. Our results revealed the existence of a high-velocity zone and a low-velocity zone that corresponded with known ore bodies.
机译:从周围地震噪声的相关性重建格林格林函数的功能,最近已发展成为一种探索地球内部的有前途的方法,而无需昂贵的活动地震源。这种方法被广泛用于以千米为单位对地壳进行成像。但是,很少有研究报告在工业环境中以较小规模进行基于噪声的格林函数重构。我们研究了通过相互关联采矿活动产生的地震噪声来构造活跃地下矿井(瑞典加彭贝格)中传感器之间构造地震格林函数的可能性。通过实际的数值模拟,我们确定了地下矿山中的采矿开挖会导致强烈散射,这有利于通过相互关联地震噪声来构造地震格林函数。位于地下1公里以上的18个地震传感器记录了一个月的连续数据。存在各种各样的宽带(10-3000 Hz)地震源,但是地震波场是定向的且通常是单色的,因此通过将环境地震噪声互相关来构造格林函数的条件不是理想的(各向同性照明和光谱白色) 。我们开发了一种堆叠方案,可以在地震噪声被单色信号主导或噪声源不在固定相位位置的时期内消除数据。当我们使用选择性堆叠方案时,几乎所有相关对都在一个很宽的频率范围内(20-400 Hz)获得了地震格林函数的估计。我们在重建的地震格林函数中使用了存在于低频(小于100 Hz)中的直接体波来对矿山的3D S波速度结构进行反演。我们的结果表明存在与已知矿体相对应的高速带和低速带。

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