Model-data fusion of hydrologic simulations and GRACE terrestrial water storage observations to estimate changes in water table depth

被引:15
作者
Stampoulis, Dimitrios [1 ,2 ]
Reager, John T. [1 ]
David, Cedric H. [1 ]
Andreadis, Konstantinos M. [1 ,3 ]
Famiglietti, James S. [1 ,4 ]
Farr, Tom G. [1 ]
Trangsrud, Amy R. [1 ]
Basilio, Ralph R. [1 ]
Sabo, John L. [2 ]
Osterman, Gregory B. [1 ]
Lundgren, Paul R. [1 ]
Liu, Zhen [1 ]
机构
[1] CALTECH, Jet Prop Lab, Pasadena, CA 91125 USA
[2] Arizona State Univ, Future H2O, Knowledge Enterprise Dev, Tempe, AZ 85281 USA
[3] Univ Massachusetts, Dept Civil & Environm Engn, Amherst, MA 01003 USA
[4] Univ Saskatchewan, Global Inst Water Secur, Saskatoon, SK, Canada
关键词
groundwater; water table depth trends; Variable Infiltration Capacity model; GRACE observations; data integration; water resources management; GROUNDWATER-DEPENDENT ECOSYSTEMS; LAND-SURFACE MODEL; DATA ASSIMILATION; SOIL-MOISTURE; SATELLITE; DEPLETION; DYNAMICS; DROUGHT; PATTERNS; FLUXES;
D O I
10.1016/j.advwatres.2019.04.004
中图分类号
TV21 [水资源调查与水利规划];
学科分类号
081501 ;
摘要
Despite numerous advances in continental-scale hydrologic modeling and improvements in global Land Surface Models, an accurate representation of regional water table depth (WTD) remains a challenge. Data assimilation of observations from the Gravity Recovery and Climate Experiment (GRACE) mission leads to improvements in the accuracy of hydrologic models, ultimately resulting in more reliable estimates of lumped water storage. However, the usually shallow groundwater compartment of many models presents a problem with GRACE assimilation techniques, as these satellite observations also represent changes in deeper soils and aquifers. To improve the accuracy of modeled groundwater estimates and allow the representation of WTD at finer spatial scales, we implemented a simple, yet novel approach to integrate GRACE data, by augmenting the Variable Infiltration Capacity (VIC) hydrologic model. First, the subsurface model structural representation was modified by incorporating an additional (fourth) soil layer of varying depth (up to 1000 m) in VIC as the bottom 'groundwater' layer. This addition allows the model to reproduce water storage variability not only in shallow soils but also in deeper groundwater, in order to allow integration of the full GRACE-observed variability. Second, a Direct Insertion scheme was developed that integrates the high temporal (daily) and spatial (similar to 6.94 km) resolution model outputs to match the GRACE resolution, performs the integration, and then disaggregates the updated model state after the assimilation step. Simulations were performed with and without Direct Insertion over the three largest river basins in California and including the Central Valley, in order to test the augmented model's ability to capture seasonal and inter-annual trends in the water table. This is the first-ever fusion of GRACE total water storage change observations with hydrologic simulations aiming at the determination of water table depth dynamics, at spatial scales potentially useful for local water management.
引用
收藏
页码:13 / 27
页数:15
相关论文
共 50 条
  • [41] Monitoring Terrestrial Water Storage Changes with the Tongji-Grace2018 Model in the Nine Major River Basins of the Chinese Mainland
    Chen, Zhiwei
    Zhang, Xingfu
    Chen, Jianhua
    REMOTE SENSING, 2021, 13 (09)
  • [42] Two Decades of Terrestrial Water Storage Changes in the Tibetan Plateau and Its Surroundings Revealed through GRACE/GRACE-FO
    Xiang, Longwei
    Wang, Hansheng
    Steffen, Holger
    Jiang, Liming
    Shen, Qiang
    Jia, Lulu
    Su, Zhenfeng
    Wang, Wenliang
    Deng, Fan
    Qiao, Baojin
    Cui, Haifu
    Gao, Peng
    REMOTE SENSING, 2023, 15 (14)
  • [43] Monitoring water storage changes in Middle and Low Parana river basin using GRACE, GRACE FO, TRMM and GLDAS data
    Cornero, Cecilia
    Pereira, Aylen
    Matos, Ana C. O. C.
    Pacino, M. Cristina
    Blitzkow, Denizar
    REVISTA DE TELEDETECCION, 2021, (58): : 53 - 70
  • [44] Understanding Terrestrial Water Storage Changes Derived from the GRACE/GRACE-FO in the Inner Niger Delta in West Africa
    Fatolazadeh, Farzam
    Goita, Kalifa
    WATER, 2025, 17 (08)
  • [45] Spatiotemporal Changes in China's Terrestrial Water Storage From GRACE Satellites and Its Possible Drivers
    Xu, Lei
    Chen, Nengcheng
    Zhang, Xiang
    Chen, Zeqiang
    JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2019, 124 (22) : 11976 - 11993
  • [46] Challenges in applying water budget framework for estimating groundwater storage changes from GRACE observations
    Akl, Mohamed
    Thomas, Brian F.
    JOURNAL OF HYDROLOGY, 2024, 639
  • [47] Assimilation of Gridded GRACE Terrestrial Water Storage Estimates in the North American Land Data Assimilation System
    Kumar, Sujay V.
    Zaitchik, Benjamin F.
    Peters-Lidard, Christa D.
    Rodell, Matthew
    Reichle, Rolf
    Li, Bailing
    Jasinski, Michael
    Mocko, David
    Getirana, Augusto
    De Lannoy, Gabrielle
    Cosh, Michael H.
    Hain, Christopher R.
    Anderson, Martha
    Arsenault, Kristi R.
    Xia, Youlong
    Ek, Michael
    JOURNAL OF HYDROMETEOROLOGY, 2016, 17 (07) : 1951 - 1972
  • [48] Statistical Applications to Downscale GRACE-Derived Terrestrial Water Storage Data and to Fill Temporal Gaps
    Sahour, Hossein
    Sultan, Mohamed
    Vazifedan, Mehdi
    Abdelmohsen, Karem
    Karki, Sita
    Yellich, John A.
    Gebremichael, Esayas
    Alshehri, Fahad
    Elbayoumi, Tamer M.
    REMOTE SENSING, 2020, 12 (03)
  • [49] Spatial and Temporal Variations of Terrestrial Water Storage in Upper Indus Basin Using GRACE and Altimetry Data
    Hussain, Dostdar
    Kao, Huan-Chin
    Khan, Aftab Ahmed
    Lan, Wen-Hau
    Imani, Moslem
    Lee, Chi-Ming
    Kuo, Chung-Yen
    IEEE ACCESS, 2020, 8 : 65327 - 65339
  • [50] Controls of Terrestrial Water Storage Changes Over the Central Congo Basin Determined by Integrating PALSAR ScanSAR, Envisat Altimetry, and GRACE Data
    Lee, Hyongki
    Jung, Hahn Chul
    Yuan, Ting
    Beighley, R. Edward
    Duan, Jianbin
    REMOTE SENSING OF THE TERRESTRIAL WATER CYCLE, 2015, 206 : 117 - 129