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Along-Orbit Analysis of GRACE Follow-On Inter-Satellite Laser Ranging Measurements for Sub-Monthly Surface Mass VariationsWe examined the sensitivity of GRACE Follow-On (GRACE-FO) laser ranging interferometer
(LRI) measurements to sub-monthly time-variable gravity (TVG) signals caused by transient, high-frequency mass changes in the Earth system. GRACE-FO LRI provides complementary inter-satellite ranging measurements with higher precision over a wider range of frequencies than the baseline K-band microwave ranging system. The common approach for studying mass variation relies on the inverted TVG or mascon solutions over a period of, for example, one month or 10 days which are adversely affected by temporal aliasing and/or smoothing. In this article, we present the alternative along-orbit analysis methodology in terms of line-of-sight gravity difference (LGD) to fully exploit the higher precision LRI measurements for examination of sub-monthly mass changes. The discrepancy between “instantaneous” LGD LRI observations and monthly mean LGD (from Level-2 data) at satellite altitude indicates the sub-monthly gravitational variability not captured by monthly-mean solutions. In conjunction with the satellite ocean altimetry observations, high frequency non-tidal atmosphere and ocean models, and hydrology models, we show that the LGD LRI observations detect the high-frequency oceanic mass variability in the Argentine Basin and the Gulf of Carpentaria, and sub-monthly variations in surface (river) water in the Amazon Basin. We demonstrate the benefits gained from repeat ground track analysis of GRACE-FO LRI data in the case of the Amazon surface water flow. The along-orbit analysis methodology based on LGD LRI time series presented here is especially suitable for quantifying temporal and spatial evolution of extreme, rapidly changing mass variations.
Document ID
20220007912
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
Khosro Ghobadi-Far ORCID
(University of Newcastle Australia Newcastle, New South Wales, Australia)
Shin-Chan Han ORCID
(University of Newcastle Australia Newcastle, New South Wales, Australia)
Christopher M. McCullough ORCID
(Jet Propulsion Lab La Cañada Flintridge, California, United States)
David N. Wiese ORCID
(Jet Propulsion Lab La Cañada Flintridge, California, United States)
Richard D. Ray ORCID
(Goddard Space Flight Center Greenbelt, Maryland, United States)
Jeanne Sauber ORCID
(Goddard Space Flight Center Greenbelt, Maryland, United States)
Linus Shihora
(Jet Propulsion Lab La Cañada Flintridge, California, United States)
Henryk Dobslaw ORCID
(Helmholtz Centre Potsdam - GFZ German Research Centre for Geosciences Potsdam, Brandenburg, Germany)
Date Acquired
May 20, 2022
Publication Date
February 1, 2022
Publication Information
Publication: Journal of Geophysical Research. Solid Earth
Publisher: American Geophysical Union/ Wiley
Volume: 127
Issue: 2
Issue Publication Date: February 1, 2022
ISSN: 2169-9313
e-ISSN: 2169-9356
Subject Category
Geophysics
Funding Number(s)
WBS: 967701.02.03.01.87
CONTRACT_GRANT: 80NM0018D0004P00002
OTHER: Australian Research Council DP160104095
OTHER: Australian Research Council DP170100224
CONTRACT_GRANT: NASA GRACERFO19-0010
CONTRACT_GRANT: NASA 80NM0018D0004
OTHER: German Research Foundation (DO 1311/4-1)
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
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