Separation of large scale water storage patterns over Iran using GRACE, altimetry and hydrological data

被引:146
作者
Forootan, E. [1 ]
Rietbroek, R. [1 ]
Kusche, J. [1 ]
Sharifi, M. A. [2 ]
Awange, J. L. [3 ]
Schmidt, M. [4 ]
Omondi, P. [5 ]
Famiglietti, J. [6 ]
机构
[1] Univ Bonn, IGG, D-53115 Bonn, Germany
[2] Univ Tehran, Surveying & Geomat Engn Dept, Tehran 14174, Iran
[3] Curtin Univ, Inst Geosci Res, Western Australian Ctr Geodesy, Perth, WA 6845, Australia
[4] German Geodet Res Inst DGFI, Munich, Germany
[5] IGAD Climate Predict & Applicat Ctr ICPAC, Nairobi, Kenya
[6] Univ Calif Irvine, UC Ctr Hydrol Modeling, Irvine, CA USA
关键词
GRACE-TWS; Signal separation; Independent components; Terrestrial and surface water storage; Groundwater; Iran; GRAVITY-FIELD; GROUNDWATER DEPLETION; CLIMATE EXPERIMENT; SEA-LEVEL; VARIABILITY; CIRCULATION; MANAGEMENT; RECOVERY; DECLINE; SIGNALS;
D O I
10.1016/j.rse.2013.09.025
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Extracting large scale water storage (WS) patterns is essential for understanding the hydrological cycle and improving the water resource management of Iran, a country that is facing challenges of limited water resources. The Gravity Recovery and Climate Experiment (GRACE) mission offers a unique possibility of monitoring total water storage (TWS) changes. An accurate estimation of terrestrial and surface WS changes from GRACE-TWS products, however, requires a proper signal separation procedure. To perform this separation, this study proposes a statistical approach that uses a priori spatial patterns of terrestrial and surface WS changes from a hydrological model and altimetry data. The patterns are then adjusted to GRACE-TWS products using a least squares adjustment (LSA) procedure, thereby making the best use of the available data. For the period of October 2002 to March 2011, monthly GRACE-TWS changes were derived over a broad region encompassing Iran. A priori patterns were derived by decomposing the following auxiliary data into statistically independent components: (i) terrestrial WS change outputs of the Global Land Data Assimilation System (GLDAS); (ii) steric-corrected surface WS changes of the Caspian Sea; (iii) that of the Persian and Oman Gulfs; (iv) WS changes of the Aral Sea; and (v) that of small lakes of the selected region. Finally, the patterns of (i) to (v) were adjusted to GRACE-TWS maps so that their contributions were estimated and GRACE-TWS signals separated. After separation, our results indicated that the annual amplitude of WS changes over the Caspian Sea was 152 mm, 101 mm over both the Persian and Oman Gulfs, and 71 mm for the Aral Sea. Since January 2005, terrestrial WS in most parts of Iran, specifically over the center and northwestern parts, exhibited a mass decrease with an average linear rate of similar to 15 mm/yr. The estimated linear trends of groundwater storage for the drought period of 2005 to March 2011, corresponding to the six main basins of Iran: Khazar, Persian and Oman Gulfs, Urmia, Markazi, Hamoon, and Srakhs were -6.7, -6.1, -11.2, -9.1, -3.1, and -4.2 mm/yr, respectively. The estimated results after separation agree fairly well with 256 in-situ piezometric observations. (C) 2013 Elsevier Inc. All rights reserved.
引用
收藏
页码:580 / 595
页数:16
相关论文
共 81 条
[1]   The survey of climatic drought trend in Iran [J].
Abarghouei, Hossein Bari ;
Zarch, Mohammad Amin Asadi ;
Dastorani, Mohammad Taghi ;
Kousari, Mohammad Reza ;
Zarch, Mehdi Safari .
STOCHASTIC ENVIRONMENTAL RESEARCH AND RISK ASSESSMENT, 2011, 25 (06) :851-863
[2]   Assessing the impact of climate change on water resources in Iran [J].
Abbaspour, Karim C. ;
Faramarzi, Monireh ;
Ghasemi, Samaneh Seyed ;
Yang, Hong .
WATER RESOURCES RESEARCH, 2009, 45
[3]  
AIJM Van Dijk, 2011, 19 INT C MOD SIM PER
[4]  
[Anonymous], 1988, Dev. Atmos. Sci
[5]  
Ardakani R., 2009, P REG CTR URB WAT MA
[6]  
Avsar N.B., 2012, ANAL REGIONAL TIME V
[7]   Understanding the decline of water storage across the Ramser-Lake Naivasha using satellite-based methods [J].
Awange, J. L. ;
Forootan, E. ;
Kusche, J. ;
Kiema, J. B. K. ;
Omondi, P. A. ;
Heck, B. ;
Fleming, K. ;
Ohanya, S. O. ;
Goncalves, R. M. .
ADVANCES IN WATER RESOURCES, 2013, 60 :7-23
[8]   On the suitability of the 4° x 4° GRACE mascon solutions for remote sensing Australian hydrology [J].
Awange, J. L. ;
Fleming, K. M. ;
Kuhn, M. ;
Featherstone, W. E. ;
Heck, B. ;
Anjasmara, I. .
REMOTE SENSING OF ENVIRONMENT, 2011, 115 (03) :864-875
[9]   Continental mass change from GRACE over 2002-2011 and its impact on sea level [J].
Baur, O. ;
Kuhn, M. ;
Featherstone, W. E. .
JOURNAL OF GEODESY, 2013, 87 (02) :117-125
[10]   Recent hydrological behavior of the East African great lakes region inferred from GRACE, satellite altimetry and rainfall observations [J].
Becker, Melanie ;
LLovel, William ;
Cazenave, Anny ;
Guentner, Andreas ;
Cretaux, Jean-Francois .
COMPTES RENDUS GEOSCIENCE, 2010, 342 (03) :223-233