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Journal ArticleDOI

Spherical harmonic modelling to ultra-high degree of Bouguer and isostatic anomalies

Georges Balmino, +3 more
- 01 Jul 2012 - 
- Vol. 86, Iss: 7, pp 499-520
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TLDR
In this paper, the Earth's topography harmonic expansion was used to obtain a spherical harmonic model of the topography of the Earth, which was then used for the estimation of induced gravity perturbations.
Abstract
The availability of high-resolution global digital elevation data sets has raised a growing interest in the feasibility of obtaining their spherical harmonic representation at matching resolution, and from there in the modelling of induced gravity perturbations. We have therefore estimated spherical Bouguer and Airy isostatic anomalies whose spherical harmonic models are derived from the Earth’s topography harmonic expansion. These spherical anomalies differ from the classical planar ones and may be used in the context of new applications. We succeeded in meeting a number of challenges to build spherical harmonic models with no theoretical limitation on the resolution. A specific algorithm was developed to enable the computation of associated Legendre functions to any degree and order. It was successfully tested up to degree 32,400. All analyses and syntheses were performed, in 64 bits arithmetic and with semi-empirical control of the significant terms to prevent from calculus underflows and overflows, according to IEEE limitations, also in preserving the speed of a specific regular grid processing scheme. Finally, the continuation from the reference ellipsoid’s surface to the Earth’s surface was performed by high-order Taylor expansion with all grids of required partial derivatives being computed in parallel. The main application was the production of a 1′ × 1′ equiangular global Bouguer anomaly grid which was computed by spherical harmonic analysis of the Earth’s topography–bathymetry ETOPO1 data set up to degree and order 10,800, taking into account the precise boundaries and densities of major lakes and inner seas, with their own altitude, polar caps with bedrock information, and land areas below sea level. The harmonic coefficients for each entity were derived by analyzing the corresponding ETOPO1 part, and free surface data when required, at one arc minute resolution. The following approximations were made: the land, ocean and ice cap gravity spherical harmonic coefficients were computed up to the third degree of the altitude, and the harmonics of the other, smaller parts up to the second degree. Their sum constitutes what we call ETOPG1, the Earth’s TOPography derived Gravity model at 1′ resolution (half-wavelength). The EGM2008 gravity field model and ETOPG1 were then used to rigorously compute 1′ × 1′ point values of surface gravity anomalies and disturbances, respectively, worldwide, at the real Earth’s surface, i.e. at the lower limit of the atmosphere. The disturbance grid is the most interesting product of this study and can be used in various contexts. The surface gravity anomaly grid is an accurate product associated with EGM2008 and ETOPO1, but its gravity information contents are those of EGM2008. Our method was validated by comparison with a direct numerical integration approach applied to a test area in Morocco–South of Spain (Kuhn, private communication 2011) and the agreement was satisfactory. Finally isostatic corrections according to the Airy model, but in spherical geometry, with harmonic coefficients derived from the sets of the ETOPO1 different parts, were computed with a uniform depth of compensation of 30 km. The new world Bouguer and isostatic gravity maps and grids here produced will be made available through the Commission for the Geological Map of the World. Since gravity values are those of the EGM2008 model, geophysical interpretation from these products should not be done for spatial scales below 5 arc minutes (half-wavelength).

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References
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Alternative methods to smooth the Earth's gravity field

TL;DR: In this paper, a convolution on the sphere with corresponding convolution theorems for one and two-dimensional functions is developed for isotropic smoothing operators or filters.
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Potential anomalies on a sphere: Applications to the thickness of the lunar crust

TL;DR: In this paper, a new technique for calculating potential anomalies on a sphere due to finite amplitude relief has been developed, by raising the topography to the nth power and expanding this field into spherical harmonics.
Book ChapterDOI

Gravity and Topography of the Terrestrial Planets

TL;DR: A general review of the mathematical formalism that is used in describing gravity and topography of the terrestrial planets is given in this article, where the basic properties of Earth, Venus, Mars, Mercury, and the Moon are characterized.
Journal ArticleDOI

The development and analysis of geopotential coefficient models to spherical harmonic degree 360

TL;DR: In this paper, two new geopotential coefficient models to spherical harmonic degree 360 are developed using recent advances made in theoretical modeling methods, satellite gravitational models, and expanded and improved terrestrial data.
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