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首页> 外文期刊>Journal of Geophysical Research. Biogeosciences >Seismic velocity studies of a gas hydrate bottom-simulating reflector on the northern Cascadia continental margin: Amplitude modeling and full waveform inversion
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Seismic velocity studies of a gas hydrate bottom-simulating reflector on the northern Cascadia continental margin: Amplitude modeling and full waveform inversion

机译:北卡斯卡迪亚大陆边缘的天然气水合物模拟底部反射器的地震速度研究:振幅模拟和全波形反演

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On the northern Cascadia subduction margin, the multichannel seismic amplitudeversus-offset (AVO) behavior of a bottom-simulating reflector (BSR) suggests a P wave velocity change from high-velocity hydrate-bearing sediment to lower velocity sediment containing a small amount of free gas. The observed nonlinear AVO behavior, constant or slightly decreasing amplitudes at near-to-mid offsets and a large-amplitude increase at far offsets, can be reproduced in the models if an S wave velocity enhancement is assumed as expected from hydrate cementation. THe AVO behavior of the hydrate BSR is found not to be as useful as was earlier thought for determining the amount of free gas below the BSR. This is because Poisson's ratio change below the BSR due to gas is likely very small in high-porosity unconsolidated sediments. The uncertainty in the models is large, as there is no reliable S wave velocity information for the sediments containing hydrate or gas. AVO modeling alone is not sufficient to distinguish different velocity models across the BSR. Our interpretation of the BSR amplitude behavior is that a P wave velocity increase above the BSR is the main cause of the BSR reflection amplitude increase at large incidence angles. Caution must be taken in applying AVO analysis, as little is known about S wave velocities. However, subtle differences in BSR amplitude behavior and reflection waveform can provide constraints through very careful full waveform inversion. A well-defined reference velocity-depth profile is also required to represent water-saturated sediment unaffected by either hydrate or free gas. Using full waveform velocity inversion, a highresolution velocity model for the hydrate BSR has been derived. The best fit model for the seismic data near the Ocean Drilling Program (ODP) sites 889/890 consists of high-velocity zone above the BSR and a thin low-velocity layer below, in agreement with the ODP downhole velocity data.
机译:在卡斯卡迪亚北部俯冲带边缘,底部模拟反射器(BSR)的多通道地震振幅与偏移(AVO)行为表明,P波速度从高速含水沉积物变为低速含少量游离水的沉积物加油站。如果假设水合物固结的S波速度提高是预期的,则可以在模型中复制观察到的非线性AVO行为,即在近中偏移处的振幅恒定或略有减小,在远偏移处的振幅大幅增加。发现水合物BSR的AVO行为没有像早先所认为的那样有用,它可以确定BSR以下的游离气体量。这是因为在高孔隙率未固结沉积物中,由于气体引起的泊松比变化低于BSR,可能很小。模型中的不确定性很大,因为对于包含水合物或气体的沉积物没有可靠的S波速度信息。仅AVO建模不足以在整个BSR中区分不同的速度模型。我们对BSR振幅行为的解释是,在大入射角处,P波速度增加到BSR以上是BSR反射振幅增加的主要原因。由于对S波速度了解甚少,因此在应用AVO分析时必须谨慎。但是,BSR振幅行为和反射波形之间的细微差异可通过非常仔细的完整波形反转提供约束。还需要一个定义明确的参考速度-深度曲线来表示不受水合物或自由气体影响的水饱和沉积物。使用全波形速度反演,已经导出了水合物BSR的高分辨率速度模型。与ODP井下速度数据一致,海洋钻探计划(ODP)889/890站附近地震数据的最佳拟合模型包括BSR上方的高速区和下方的薄弱低层。

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