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Along‐orbit analysis of GRACE Follow‐On inter‐satellite laser ranging measurements for sub‐monthly surface mass variations

Authors

Ghobadi‐Far,  Khosro
External Organizations;

Han,  Shin‐Chan
External Organizations;

McCullough,  Christopher M.
External Organizations;

Wiese,  David N.
External Organizations;

Ray,  Richard D.
External Organizations;

Sauber,  Jeanne
External Organizations;

/persons/resource/linus

Shihora,  Linus
1.3 Earth System Modelling, 1.0 Geodesy, Departments, GFZ Publication Database, Deutsches GeoForschungsZentrum;

/persons/resource/dobslaw

Dobslaw,  H.
1.3 Earth System Modelling, 1.0 Geodesy, Departments, GFZ Publication Database, Deutsches GeoForschungsZentrum;

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Citation

Ghobadi‐Far, K., Han, S., McCullough, C. M., Wiese, D. N., Ray, R. D., Sauber, J., Shihora, L., Dobslaw, H. (2022): Along‐orbit analysis of GRACE Follow‐On inter‐satellite laser ranging measurements for sub‐monthly surface mass variations. - Journal of Geophysical Research: Solid Earth, 127, 2, e2021JB022983.
https://doi.org/10.1029/2021JB022983


Cite as: https://gfzpublic.gfz.de/pubman/item/item_5009817
Abstract
We 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 (KBR) system. The common approach for studying mass variation relies on the inverted TVG or mascon solutions over a period of, e.g., one month or 10 days which are adversely affected by temporal aliasing and/or smoothing. In this paper, 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 atmosphere and non-tidal ocean models, and hydrology models, we show that the LGD LRI time series detects 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.