Joint Inversion of GNSS and GRACE for Terrestrial Water Storage Change in California

被引:32
|
作者
Carlson, G. [1 ]
Werth, S. [1 ]
Shirzaei, M. [1 ]
机构
[1] Virginia Polytech Inst & State Univ, Dept Geol Sci, Blacksburg, VA 24061 USA
基金
美国国家航空航天局; 美国国家科学基金会;
关键词
elastic loading; GNSS; GRACE; drought monitoring; California; terrestrial water storage change; SAN-ANDREAS FAULT; GROUNDWATER DEPLETION; CONTINENTAL WATER; DATA ASSIMILATION; GPS; DEFORMATION; VALLEY; EARTH; DISPLACEMENTS; DROUGHT;
D O I
10.1029/2021JB023135
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
Global Navigation Satellite System (GNSS) vertical displacements measuring the elastic response of Earth's crust to changes in hydrologic mass have been used to produce terrestrial water storage change ( increment TWS) estimates for studying both annual increment TWS as well as multi-year trends. However, these estimates require a high observation station density and minimal contamination by nonhydrologic deformation sources. The Gravity Recovery and Climate Experiment (GRACE) is another satellite-based measurement system that can be used to measure regional TWS fluctuations. The satellites provide highly accurate increment TWS estimates with global coverage but have a low spatial resolution of similar to 400 km. Here, we put forward the mathematical framework for a joint inversion of GNSS vertical displacement time series with GRACE increment TWS to produce more accurate spatiotemporal maps of increment TWS, accounting for the observation errors, data gaps, and nonhydrologic signals. We aim to utilize the regional sensitivity to increment TWS provided by GRACE mascon solutions with higher spatial resolution provided by GNSS observations. Our approach utilizes a continuous wavelet transform to decompose signals into their building blocks and separately invert for long-term and short-term mass variations. This allows us to preserve trends, annual, interannual, and multi-year changes in TWS that were previously challenging to capture by satellite-based measurement systems or hydrological models, alone. We focus our study in California, USA, which has a dense GNSS network and where recurrent, intense droughts put pressure on freshwater supplies. We highlight the advantages of our joint inversion results for a tectonically active study region by comparing them against inversion results that use only GNSS vertical deformation as well as with maps of increment TWS from hydrological models and other GRACE solutions. We find that our joint inversion framework results in a solution that is regionally consistent with the GRACE increment TWS solutions at different temporal scales but has an increased spatial resolution that allows us to differentiate between regions of high and low mass change better than using GRACE alone.
引用
下载
收藏
页数:24
相关论文
共 50 条
  • [11] The 2009 exceptional Amazon flood and interannual terrestrial water storage change observed by GRACE
    Chen, J. L.
    Wilson, C. R.
    Tapley, B. D.
    WATER RESOURCES RESEARCH, 2010, 46
  • [12] Akaike's Bayesian Information Criterion for the Joint Inversion of Terrestrial Water Storage Using GPS Vertical Displacements, GRACE and GLDAS in Southwest China
    Liu, Yongxin
    Fok, Hok Sum
    Tenzer, Robert
    Chen, Qiang
    Chen, Xiuwan
    ENTROPY, 2019, 21 (07)
  • [13] Accuracy of scaled GRACE terrestrial water storage estimates
    Landerer, F. W.
    Swenson, S. C.
    WATER RESOURCES RESEARCH, 2012, 48
  • [14] Retrieving snow mass from GRACE terrestrial water storage change with a land surface model
    Niu, Guo-Yue
    Seo, Ki-Weon
    Yang, Zong-Liang
    Wilson, Clark
    Su, Hua
    Chen, Jianli
    Rodell, Matthew
    GEOPHYSICAL RESEARCH LETTERS, 2007, 34 (15)
  • [15] Development of a Daily GRACE Mascon Solution for Terrestrial Water Storage
    Croteau, M. J.
    Nerem, R. S.
    Loomis, B. D.
    Sabaka, T. J.
    JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 2020, 125 (03)
  • [16] Analysis of terrestrial water storage changes from GRACE and GLDAS
    Syed, Tajdarul H.
    Famiglietti, James S.
    Rodell, Matthew
    Chen, Jianli
    Wilson, Clark R.
    WATER RESOURCES RESEARCH, 2008, 44 (02)
  • [17] Improved estimation of terrestrial water storage changes from GRACE
    Han, SC
    Shum, CK
    Jekeli, C
    Alsdorf, D
    GEOPHYSICAL RESEARCH LETTERS, 2005, 32 (07) : 1 - 5
  • [18] The influence of ENSO on global terrestrial water storage using GRACE
    Phillips, T.
    Nerem, R. S.
    Fox-Kemper, Baylor
    Famiglietti, J. S.
    Rajagopalan, B.
    GEOPHYSICAL RESEARCH LETTERS, 2012, 39
  • [19] Detecting terrestrial water storage variations in northwest China by GRACE
    Cao, Yanping
    Nan, Zhuotong
    LAND SURFACE REMOTE SENSING II, 2014, 9260
  • [20] Mapping terrestrial water storage changes in Canada using GRACE and GRACE- FO
    Fatolazadeh, Farzam
    Goita, Kalifa
    SCIENCE OF THE TOTAL ENVIRONMENT, 2021, 779