Terrestrial Water Storage Change Retrieved by GRACE and Its Implication in the Tibetan Plateau: Estimating Areal Precipitation in Ungauged Region

The Tibetan Plateau (TP) is referred to as the water tower of Asia, where water storage and precipitation have huge impacts on most major Asian rivers. Based on gravity recovery and climate experiment data, this study analyzed the terrestrial water storage (TWS) changes and estimated areal precipita...

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Main Authors: Yao Jia, Huimin Lei, Hanbo Yang, Qingfang Hu
Format: Article
Language:English
Published: MDPI AG 2020-09-01
Series:Remote Sensing
Subjects:
Online Access:https://www.mdpi.com/2072-4292/12/19/3129
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spelling doaj-c53d9b7e58a045d1b03139d3540c79072020-11-25T03:41:47ZengMDPI AGRemote Sensing2072-42922020-09-01123129312910.3390/rs12193129Terrestrial Water Storage Change Retrieved by GRACE and Its Implication in the Tibetan Plateau: Estimating Areal Precipitation in Ungauged RegionYao Jia0Huimin Lei1Hanbo Yang2Qingfang Hu3Department of Hydraulic Engineering, Tsinghua University, Beijing 100084, ChinaDepartment of Hydraulic Engineering, Tsinghua University, Beijing 100084, ChinaDepartment of Hydraulic Engineering, Tsinghua University, Beijing 100084, ChinaState Key Laboratory of Hydro-Water Resources and Hydraulic Engineering, Nanjing Hydraulic Research Institute, Nanjing 210029, ChinaThe Tibetan Plateau (TP) is referred to as the water tower of Asia, where water storage and precipitation have huge impacts on most major Asian rivers. Based on gravity recovery and climate experiment data, this study analyzed the terrestrial water storage (TWS) changes and estimated areal precipitation based on the water balance equation in four different basins, namely, the upper Yellow River (UYE), the upper Yangtze River (UYA), the Yarlung Zangbo River (YZ), and the Qiangtang Plateau (QT). The results show that the TWS change exhibits different patterns in the four basins and varies from −13 to 2 mm/year from 2003 to 2017. The estimated mean annual precipitation was 260 ± 19 mm/year (QT), 697 ± 26 mm/year (UYA), 541 ± 36 mm/year (UYE), and 1160 ± 39 mm/year (YZ) which performed better than other precipitation products in the TP. It indicates a potential method for estimating basin-scale precipitation through integrating basin average precipitation from the water balance equation in the poorly gauged and ungauged regions.https://www.mdpi.com/2072-4292/12/19/3129Tibetan Plateauterrestrial water storageGRACEprecipitation estimation
collection DOAJ
language English
format Article
sources DOAJ
author Yao Jia
Huimin Lei
Hanbo Yang
Qingfang Hu
spellingShingle Yao Jia
Huimin Lei
Hanbo Yang
Qingfang Hu
Terrestrial Water Storage Change Retrieved by GRACE and Its Implication in the Tibetan Plateau: Estimating Areal Precipitation in Ungauged Region
Remote Sensing
Tibetan Plateau
terrestrial water storage
GRACE
precipitation estimation
author_facet Yao Jia
Huimin Lei
Hanbo Yang
Qingfang Hu
author_sort Yao Jia
title Terrestrial Water Storage Change Retrieved by GRACE and Its Implication in the Tibetan Plateau: Estimating Areal Precipitation in Ungauged Region
title_short Terrestrial Water Storage Change Retrieved by GRACE and Its Implication in the Tibetan Plateau: Estimating Areal Precipitation in Ungauged Region
title_full Terrestrial Water Storage Change Retrieved by GRACE and Its Implication in the Tibetan Plateau: Estimating Areal Precipitation in Ungauged Region
title_fullStr Terrestrial Water Storage Change Retrieved by GRACE and Its Implication in the Tibetan Plateau: Estimating Areal Precipitation in Ungauged Region
title_full_unstemmed Terrestrial Water Storage Change Retrieved by GRACE and Its Implication in the Tibetan Plateau: Estimating Areal Precipitation in Ungauged Region
title_sort terrestrial water storage change retrieved by grace and its implication in the tibetan plateau: estimating areal precipitation in ungauged region
publisher MDPI AG
series Remote Sensing
issn 2072-4292
publishDate 2020-09-01
description The Tibetan Plateau (TP) is referred to as the water tower of Asia, where water storage and precipitation have huge impacts on most major Asian rivers. Based on gravity recovery and climate experiment data, this study analyzed the terrestrial water storage (TWS) changes and estimated areal precipitation based on the water balance equation in four different basins, namely, the upper Yellow River (UYE), the upper Yangtze River (UYA), the Yarlung Zangbo River (YZ), and the Qiangtang Plateau (QT). The results show that the TWS change exhibits different patterns in the four basins and varies from −13 to 2 mm/year from 2003 to 2017. The estimated mean annual precipitation was 260 ± 19 mm/year (QT), 697 ± 26 mm/year (UYA), 541 ± 36 mm/year (UYE), and 1160 ± 39 mm/year (YZ) which performed better than other precipitation products in the TP. It indicates a potential method for estimating basin-scale precipitation through integrating basin average precipitation from the water balance equation in the poorly gauged and ungauged regions.
topic Tibetan Plateau
terrestrial water storage
GRACE
precipitation estimation
url https://www.mdpi.com/2072-4292/12/19/3129
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AT hanboyang terrestrialwaterstoragechangeretrievedbygraceanditsimplicationinthetibetanplateauestimatingarealprecipitationinungaugedregion
AT qingfanghu terrestrialwaterstoragechangeretrievedbygraceanditsimplicationinthetibetanplateauestimatingarealprecipitationinungaugedregion
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