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Heli-borne gravity gradiometry in rugged terrain

机译:崎terrain地形中的直升机载重力梯度仪

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For airborne gravity gradiometry in rugged terrain, helicopters offer a significant advantage over fixed-wing aircraft: their ability to maintain much lower ground clearances. Crucially, this provides both better signal-to-noise and better spatial resolution than is possible with a fixed-wing survey in the same terrain. Comparing surveys over gentle terrain at Margaret Lake, Canada, and over rugged terrain at Mount Aso, Japan, demonstrates that there is some loss of spatial resolution in the more rugged terrain. The slightly higher altitudes forced by rugged terrain make the requirements for terrain correction easier than for gentle terrain. Transforming the curvature gradients measured by the Falcon gravity gradiometer into gravity and the complete set of tensor components is done by a Fourier method over gentle terrain and an equivalent source method for rugged terrain. The Fourier method is perfectly stable and uses iterative padding to improve the accuracy of the longer wavelengths. The equivalent source method relies on a smooth model inversion, and the source distribution must be designed to suit the survey design.
机译:对于崎terrain地形中的机载重力梯度测量,直升机比固定翼飞机具有显着的优势:保持较低的地面间隙的能力。至关重要的是,与在相同地形上进行固定翼测量相比,这提供了更好的信噪比和更好的空间分辨率。比较加拿大玛格丽特湖平缓地形和日本阿苏山崎地形的调查结果,可以发现在崎的地形中空间分辨率有所下降。崎terrain不平的地形迫使海拔略高,与平缓的地形相比,更容易进行地形校正。将通过Falcon重力梯度仪测量的曲率梯度转换为重力和张量分量的完整集,这是通过在平缓地形上使用傅立叶方法和在崎terrain地形上使用等效源方法完成的。傅里叶方法是完全稳定的,并使用迭代填充来提高较长波长的精度。等效源方法依赖于平滑的模型反演,并且必须设计源分布以适合调查设计。

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