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Acoustic Ray Tracing Comparisons in the Context of Geodetic Precise off-shore Positioning Experiments

机译:大地精确海洋定位实验中的声线追踪比较

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The GNSS-Acoustics (GNSS-A) method couples acoustics with GNSS to allow the precise localization of a seafloor reference in a global frame. This method can extend on-shore GNSS networks and allows the monitoring of hazardous oceanic tectonic phenomena. The goal of this study is to test the influence of both acoustics ray tracing techniques and spatial heterogeneities of acoustic wave speed on positioning accuracy. We test three different ray tracing methods: the eikonal method (3D sound speed field), the Snell-Descartes method (2D sound speed profile), and an equivalent sound speed method. We also compare the processing execution time. The eikonal method is compatible with the Snell-Descartes method (by up to 10ppm in term of propagation time difference) but takes approximately a thousand times longer to run. We used the 3D eikonal ray tracing to characterize the influence of a lateral sound speed gradient on acoustic ray propagation and positioning accuracy. For a deep water ( 3,000m) situation, frequent in subduction zones such as the Lesser Antilles, not accounting for lateral sound speed gradients can induce an error of up to 5 cm in the horizontal positioning of a seafloor transponder, even when the GNSS-A measurements are made over the barycenter of a seafloor transponder array.
机译:GNSS-声学(GNSS-A)方法将声学与GNSS耦合在一起,以允许在整体框架中精确定位海底参考。这种方法可以扩展陆上GNSS网络,并可以监视危险的海洋构造现象。这项研究的目的是测试声线追踪技术和声波速度的空间异质性对定位精度的影响。我们测试了三种不同的射线跟踪方法:eikonal方法(3D声速场),Snell-Descartes方法(2D声速曲线)和等效声速法。我们还比较了处理执行时间。 eikonal方法与Snell-Descartes方法兼容(在传播时间差方面达10ppm),但运行时间大约长一千倍。我们使用3D eikonal射线追踪来表征横向声速梯度对声线传播和定位精度的影响。对于深水(3,000m)的情况,经常在俯冲区域(如小安的列斯群岛)内,不考虑横向声速梯度的影响,即使在GNSS-在海底应答器阵列的重心上进行测量。

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