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天然气水合物似海底反射层(BSR)AVA特征:双相介质模型

机译:天然气水合物似海底反射层(BSR)AVA特征:双相介质模型

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摘要

The bottom simulating reflector (BSR) in gas hydrate-bearing sediments is a physical interface which is composed of solid, gas, and liquid and is influenced by temperature and pressure. Deep sea floor sediment is a porous, unconsolidated, fluid saturated media. Therefore, the reflection and transmission coefficients computed by the Zoeppritz equation based on elastic media do not match reality. In this paper, a two-phase media model is applied to study the reflection and transmission at the bottom simulating reflector in order to find an accurate wave propagation energy distribution and the relationship between reflection and transmission and fluid saturation on the BSR. The numerical experiments show that the type I compressional (fast) and shear waves are not sensitive to frequency variation and the velocities change slowly over the whole frequency range. However, type II compressional (slow) waves are more sensitive to frequency variation and the velocities change over a large range. We find that reflection and transmission coefficients change with the amount of hydrate and free gas. Frequency, pore fluid saturation, and incident angle have different impacts on the reflection and transmission coefficients. We can use these characteristics to estimate gas hydrate saturation or detect lithological variations in the gas hydrate-bearing sediments.
机译:气体水合物沉积物中的底部模拟反射器(BSR)是由固体,气体和液体构成的物理界面,受温度和压力的影响。深海地板沉积物是多孔,未溶胀的流体饱和介质。因此,基于弹性介质的Zoeppritz方程计算的反射和传输系数与现实不匹配。在本文中,应用了两相媒体模型来研究底部模拟反射器的反射和传输,以便找到精确的波传播能量分布和BSR上的反射和传输与流体饱和的关系。数值实验表明,I型压缩(快)和剪切波对频率变化不敏感,并且速度在整个频率范围内缓慢变化。然而,II型压缩(慢速)波对频率变化更敏感,并且速度在大范围内变化。我们发现反射和透射系数随水合物和空气量而变化。频率,孔隙流体饱和度和入射角对反射和透射系数产生不同的影响。我们可以利用这些特性来估计天然气水合物饱和度或检测气体水合物沉积物中的岩性变化。

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