首页> 外文期刊>Journal of geophysical research. Solid earth: JGR >Interferometric synthetic aperture radar-GPS integration: Interseismic strain accumulation across the Hunter Mountain fault in the eastern California shear zone
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Interferometric synthetic aperture radar-GPS integration: Interseismic strain accumulation across the Hunter Mountain fault in the eastern California shear zone

机译:干涉式合成孔径雷达-GPS集成:东加利福尼亚剪切带亨特山断层间的地震应变累积

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The principal limitations of interferometric synthetic aperture radar (InSAR) to measure subtle, long-wavelength deformation are uncertainties associated with the satellite orbits. We propose a method to remove orbital phase errors from the InSAR data by integrating InSAR and continuous GPS time series. We model the along-track variation of the baseline errors as second-order polynomials and estimate the coefficients using the continuous GPS measurements. We apply this method to a 600 km long region encompassing the Basin and Range and the eastern California shear zone. Comparison of the corrected InSAR velocities with independent GPS data shows that this method removes the long-wavelength InSAR errors. The InSAR data reveal a region of sharp variation in the line-of-sight velocity across the Hunter Mountain fault. We model the deformation as interseismic elastic strain accumulation across a strike-slip fault. The modeling suggests a fault slip rate of 4.9 ± 0.8 mm/yr and a locking depth of 2 f 0.4 km. The shallow locking depth suggests that the Hunter Mountain fault is a transfer fault between low angle normal faults in the area.
机译:干涉式合成孔径雷达(InSAR)用于测量细微的长波长变形的主要局限性是与卫星轨道相关的不确定性。我们提出了一种通过整合InSAR和连续GPS时间序列从InSAR数据中去除轨道相位误差的方法。我们将基线误差沿轨迹的变化建模为二阶多项式,并使用连续GPS测量来估计系数。我们将此方法应用于包括盆地和山脉以及加利福尼亚东部剪切带在内的600公里长区域。校正后的InSAR速度与独立GPS数据的比较表明,该方法消除了长波长InSAR误差。 InSAR数据揭示了跨越Hunter Mountain断层的视线速度的急剧变化区域。我们将变形建模为跨走滑断层的地震弹性应变累积。该模型表明断层滑动率为4.9±0.8 mm / yr,锁定深度为2 f 0.4 km。浅层锁定深度表明猎人山断层是该地区低角度正断层之间的转移断层。

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