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A Layer-cell Tomography Method for Near-surface Velocity Model Building Using First Arrivals

机译:一种使用第一个到达的近地表面速度模型建筑的层细胞断层扫描方法

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Variations in the topography and thickness of the near-surface low-velocity weathering zone negatively impact the quality of onshore seismic data and images. Such impact can be mitigated using accurate near-surface velocity models. We propose to estimate near-surface velocities using a layer-cell tomography method which sequentially combines the model parameterizations of multiscale deformable-layer tomography (DLT) and cell tomography. We first estimate the long-wavelength velocity variations using multiscale DLT, which maps the undulating geometry of the weathering base where the angular coverage of first-arrival raypaths is limited. Then we convert the solution model of multiscale DLT into a cell model, and further determine the short-wavelength velocity variations using cell tomography. We test the proposed layer-cell tomography method using synthetic datasets and a field dataset. The results indicate that the new method improves the resolution of the velocity model from the multiscale DLT, and reduces the artifacts in the velocity solution compared to those observed in the cell tomography method. Reverse time migration of the synthetic data shows that using the velocity model from the layer-cell tomography method gives more accurate images of reflectors. For the field dataset test, the layer-cell tomography method yields a high-resolution near-surface velocity model that could be validated by the improvements in the tomostatic correction results.
机译:近表面低速风化区域的地形和厚度的变化对陆上地震数据和图像的质量产生了负面影响。可以使用精确的近表面速度模型来缓解这种影响。我们建议使用层单元断层扫描方法估算近表面速度,该方法顺序地结合了多尺度可变形层断层扫描(DLT)和细胞断层扫描的模型参数化。我们首先估计使用多尺度DLT的长波长速度变化,其映​​射着静止射线路径的角度覆盖率的耐候基座的起伏几何形状。然后,我们将MultiScale DLT的解决方案模型转换为单元模型,并进一步使用细胞断层扫描确定短波长速度变化。我们使用合成数据集和现场数据集测试所提出的层单元断层扫描方法。结果表明,新方法改善了来自多尺度DLT的速度模型的分辨率,并与细胞断层扫描方法中观察到的那些减少了速度溶液中的伪影。综合数据的相反时间迁移表明,使用来自层单元断层扫描方法的速度模型提供了更准确的反射器图像。对于现场数据集测试,层单元断层扫描方法产生高分辨率的近表面速度模型,可以通过树木校正结果的改进来验证。

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