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Sound speed of thermohaline fine structure in the Kuroshio Current inferred from automatic sound speed analysis

机译:热卤素精细结构的声速,在自动声速分析中推断

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Fine-scale thermohaline structure within ocean column can be mapped seismically in the Kuroshio Current, off the Muroto Peninsula of Shikoku Island, Japan. In this paper, we present the application of automatic sound speed picking analysis to the multi-channel seismic reflection data acquired in a different period to estimate time-lapse sound speed distribution across the Kuroshio Current. This method is based on an optimal velocity trajectory solving by the eikonal equation with a finite-difference algorithm. In contrast to the seismic inversion technique, this automatic analysis enables us to obtain contrast sound speed profiles without heavy dependency on sound speed or temperature data directly measured at discrete locations. As a result, this method can visualise sound speed profiles of fine-scale thermohaline structure developed at interleaving or diapycnal mixing processes of different water masses in the Kuroshio Current. The images of all profiles mapped from automatic sound speed analysis distinguish water masses and their fine-scale internal structure such as cold and warm water eddies, thermohaline staircases and internal waves revealing acoustic contrasts at interfaces across where sound speed and temperature change. Applying our approach for individual seismic line acquired in different time-steps for 3D seismic data can provide time-space variant images of fine-scale thermohaline structure for studies of oceanographic processes as well as large-scale ocean current and climate systems.
机译:海洋柱内的细度热卤素结构可在日本世纪岛的库托托半岛的Kuroshio Current中映射。在本文中,我们介绍了自动声音速度拣选分析在不同时段中获取的多通道地震反射数据的应用,以估算KUROSHIO电流的延时声速分布。该方法基于具有有限差分算法的Eikonal方程的最佳速度轨迹。与地震反转技术相比,这种自动分析使我们能够获得对比声速谱,而不会对直接位于离散位置直接测量的声速或温度数据的重大依赖性。结果,该方法可以可视化在Kuroshio电流中不同水块的交织或二染料混合过程中开发的微量热卤素结构的声速谱。从自动声速分析映射的所有曲线的图像区分水质量和它们的微尺度内部结构,如冷热水漩涡,热羊毛岩石阶段和内部波,在声速和温度变化的接口处显示出声学对比。应用我们在不同时间步骤中获得的各个地震线的方法,用于3D地震数据的不同时间步骤可以为海洋过程以及大型海洋电流和气候系统的研究提供微量热卤素结构的时空变化图像。

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