A study on the combination of satellite, airborne, and terrestrial gravity data

被引:48
|
作者
Kern, M [1 ]
Schwarz, KP [1 ]
Sneeuw, N [1 ]
机构
[1] Univ Calgary, Dept Geomat Engn, Calgary, AB T2N 1N4, Canada
关键词
least-squares spectral combination; quasi-deterministic weight determination; gravity field determination;
D O I
10.1007/s00190-003-0313-x
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Satellite gravity missions, such as CHAMP, GRACE and GOCE, and airborne gravity campaigns in areas without ground gravity will enhance the present knowledge of the Earth's gravity field. Combining the new gravity information with the existing marine and ground gravity anomalies is a major task for which the mathematical tools have to be developed. In one way or another they will be based on the spectral information available for gravity data and noise. The integration of the additional gravity information from satellite and airborne campaigns with existing data has not been studied in sufficient detail and a number of open questions remain. A strategy for the combination of satellite, airborne and ground measurements is presented. It is based on ideas independently introduced by Sjoberg and Wenzel in the early 1980s and has been modified by using a quasi-deterministic approach for the determination of the weighting functions. In addition, the original approach of Sjoberg and Wenzel is extended to more than two measurement types, combining the Meissl scheme with the least-squares spectral combination. Satellite (or geopotential) harmonics, ground gravity anomalies and airborne gravity disturbances are used as measurement types, but other combinations are possible. Different error characteristics and measurement-type combinations and their impact on the final solution are studied. Using simulated data, the results show a geoid accuracy in the centimeter range for a local test area.
引用
收藏
页码:217 / 225
页数:9
相关论文
共 50 条
  • [11] Domain Transformation, Boundary Problems and Optimization Concepts in the Combination of Terrestrial and Satellite Gravity Field Data
    Holota, P.
    Nesvadba, O.
    OBSERVING OUR CHANGING EARTH, 2009, 133 : 219 - +
  • [12] A theory on geoid modelling by spectral combination of data from satellite gravity gradiometry, terrestrial gravity and an Earth Gravitational Model
    L. E. Sjöberg
    M. Eshagh
    Acta Geodaetica et Geophysica Hungarica, 2012, 47 : 13 - 28
  • [14] A THEORY ON GEOID MODELLING BY SPECTRAL COMBINATION OF DATA FROM SATELLITE GRAVITY GRADIOMETRY, TERRESTRIAL GRAVITY AND AN EARTH GRAVITATIONAL MODEL
    Sjoberg, L. E.
    Eshagh, M.
    ACTA GEODAETICA ET GEOPHYSICA HUNGARICA, 2012, 47 (01): : 13 - 28
  • [15] COMBINATION OF SATELLITE ALTIMETRIC DATA AND GRAVITY ANOMALY DATA
    HADGIGEORGE, G
    BLAHA, G
    TRANSACTIONS-AMERICAN GEOPHYSICAL UNION, 1977, 58 (12): : 1119 - 1120
  • [16] Combination of Terrestrial and Satellite Gravity Data for the Characterization of the Southwestern Coastal Region of Cameroon: Appraisal for Hydrocarbon Exploration
    Kamto, Paul Gautier
    Lemotio, Willy
    Tokam, Alain-Pierre Kamga
    Yap, Loudi
    INTERNATIONAL JOURNAL OF GEOPHYSICS, 2021, 2021
  • [17] A Stokesian Approach for the Comparative Analysis of Satellite Gravity Models and Terrestrial Gravity Data
    Huang, Jianliang
    Veronneau, Marc
    GRAVITY, GEOID AND HEIGHT SYSTEMS, 2014, 141 : 101 - 107
  • [18] THE OSGB SCIENTIFIC NETWORK - COMBINATION OF SATELLITE AND TERRESTRIAL DATA
    ASHKENAZI, V
    CRANE, SA
    WILLIAMS, JW
    ANNALES DE GEOPHYSIQUE, 1981, 37 (01): : 49 - 54
  • [19] Impact of terrestrial data on future satellite gravity field solutions
    Kusche, J
    Ilk, KH
    Rudolph, S
    TOWARDS AN INTEGRATED GLOBAL GEODETIC OBSERVING SYSTEM (IGGOS), 2000, 120 : 189 - 192
  • [20] A new Philippine geoid model from airborne and terrestrial gravity data
    Gatchalian, Ronaldo Cruz
    Forsberg, Rene
    Olesen, Arne Vestergaard
    TERRESTRIAL ATMOSPHERIC AND OCEANIC SCIENCES, 2021, 32 (05): : 913 - 920