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Altimetry-Derived Gravity Predictions of Bathymetry by the Gravity-Geologic Method

机译:重力-地质方法的测高法测深重力预测

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摘要

The gravity-geologic method (GGM) was implemented for 2′ by 2′ bathymetric determinations in a 1.6° longitude-by-1.0° latitude region centered on the eastern end of the Shackleton Fracture Zone in the Drake Passage, Antarctica. The GGM used the Bouguer slab approximation to process satellite altimetry-derived marine free-air gravity anomalies and 6,548 local shipborne bathymetric sounding measurements from the Korea Ocean Research and Development Institute to update the surrounding off-track bathymetry. The limitations of the Bouguer slab for modeling the gravity effects of variable density, rugged bathymetric relief at distances up to several kilometers, were mitigated by establishing ‘tuning’ densities that stabilized the GGM predictions. Tests using two-thirds of the shipborne bathymetric measurements to estimate the remaining third indicated that the tuning densities minimized root-mean-square deviations to about 29 m. The optimum GGM bathymetry model honoring all the ship observations correlated very well with widely available bathymetry models, despite local differences that ranged up to a few kilometers. The great analytical simplicity of GGM facilitates accurately and efficiently updating bathymetry as new gravity and bathymetric sounding data become available. Furthermore, the availability of marine free-air gravity anomaly data ensures that the GGM is more effective than simply extrapolating or interpolating ship bathymetry coverage into unmapped regions.
机译:在以南极德雷克通道的沙克尔顿断裂带东端为中心的经度1.6°乘以1.0°的纬度区域中,通过2'测深法对2'进行了重力地质方法(GGM)。 GGM使用布格平板近似法处理了来自卫星测高仪的海洋自由重力异常和大洋海洋研究与发展研究所的6,548个本地船载测深测深,以更新周围的离地测深。通过建立“调谐”密度来稳定GGM的预测,可以缓解布格平板对可变密度的重力效应进行建模的局限性,在长达几公里的距离上可以实现坚固的测深。使用三分之二的船载测深测量值进行测试以估计其余三分之一的测量结果表明,调整密度将均方根偏差最小化到大约29 m。尽管有几公里的局部差异,但满足所有船舶观测结果的最佳GGM水深模型与广泛使用的水深模型非常相关。随着新的重力和测深探测数据的出现,GGM的极大的分析简便性有助于准确有效地更新测深。此外,海洋自由空气重力异常数据的可用性确保GGM比简单地将航海测深范围外推或内插到未映射区域更为有效。

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