Monitoring River Basin Development and Variation in Water Resources in Transboundary Imjin River in North and South Korea Using Remote Sensing

被引:13
|
作者
Kim, Donghwan [1 ]
Lee, Hyongki [1 ]
Jung, Hahn Chul [2 ,3 ]
Hwang, Euiho [4 ]
Hossain, Faisal [5 ]
Bonnema, Matthew [6 ]
Kang, Hyuk [2 ,7 ]
Getirana, Augusto [2 ,7 ]
机构
[1] Univ Houston, Dept Civil & Environm Engn, Houston, TX 77204 USA
[2] NASA, Goddard Space Flight Ctr, Hydrol Sci Lab, Greenbelt, MD 20771 USA
[3] Sci Syst & Applicat Inc, Lanham, MD 20706 USA
[4] K Water Inst, K Water, Water Resources Satellite Res Ctr, Daejeon 34350, South Korea
[5] Univ Washington, Dept Civil & Environm Engn, Seattle, WA 98195 USA
[6] CALTECH, Jet Prop Lab, 4800 Oak Grove Dr, Pasadena, CA 91109 USA
[7] Univ Maryland, Earth Syst Sci Interdisciplinary Ctr, College Pk, MD 20740 USA
关键词
remote sensing; transboundary river; international river basin; Korea; water variability; CONFLICT; SCANSAR; AREA;
D O I
10.3390/rs12010195
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
This paper presents methods of monitoring river basin development and water variability for the transboundary river in North and South Korea. River basin development, such as dams and water infrastructure in transboundary rivers, can be a potential factor of tensions between upstream and downstream countries since dams constructed upstream can adversely affect downstream riparians. However, because most of the information related to North Korea has been limited to the public, the information about dams constructed and their locations were inaccurate in many previous studies. In addition, water resources in transboundary rivers can be exploited as a political tool. Specifically, due to the unexpected water release from the Hwanggang Dam, upstream of the transboundary Imjin River in North and South Korea, six South Koreans died on 6 September 2009. The Imjin River can be used as a political tool by North Korea, and seven events were reported as water conflicts in the Imjin River from 2001 to 2016. In this paper, firstly, we have updated the information about the dams constructed over the Imjin River in North Korea using multi-temporal images with a high spatial resolution (15-30 cm) obtained from Google Earth. Secondly, we analyzed inter- and intra-water variability over the Hwanggang Reservoir using open-source images obtained from the Global Surface Water Explorer. We found a considerable change in water surface variability before and after 2008, which might result from the construction of the Hwanggang Dam. Thirdly, in order to further investigate intra-annual water variability, we present a method monitoring water storage changes of the Hwanggang Reservoir using the area-elevation curve (AEC), which was derived from multi-sensor Synthetic Aperture Radar (SAR) images (Sentinel-1A and -1B) and the Shuttle Radar Topography Mission (SRTM) Digital Elevation Model (DEM). Since many previous studies for estimating water storage change have depended on satellite altimetry dataset and optical images for deriving AEC, the method adopted in this study is the only application for such inaccessible areas since no altimetry ground track exists for the Hwanggang Reservoir and because clouds can block the study area for wet seasons. Moreover, this study has newly proven that unexpected water release can occur in dry seasons because the water storage in the Hwanggang Reservoir can be high enough to conduct a release that can be used as a geopolitical tool. Using our method, potential risks can be mitigated, not in response to a water release, but based on pre-event water storage changes in the Hwanggang Reservoir.
引用
收藏
页数:19
相关论文
共 50 条
  • [21] WATER RESOURCES OF THE SOUTH NATION RIVER BASIN - SUMMARY.
    Chin, V.I.
    Wang, K.T.
    Vallery, D.J.
    Water Resources Report - Ontario Ministry of the Environment, Water Resources Branch, 1980,
  • [23] Remote Sensing Monitoring of Soil Moisture Content in Xilin River Basin
    Yu, Hongbo
    Zhang, Qiaofeng
    PROCEEDINGS OF THE 7TH ANNUAL MEETING OF RISK ANALYSIS COUNCIL OF CHINA ASSOCIATION FOR DISASTER PREVENTION, 2016, 128 : 800 - 804
  • [24] Developing transboundary river basin monitoring programmes using the DPSIR indicator framework
    Timmerman, J. G.
    Beinat, E.
    Termeer, C. J. A. M.
    Cofino, W. P.
    JOURNAL OF ENVIRONMENTAL MONITORING, 2011, 13 (10): : 2808 - 2818
  • [25] Groundwater prospecting in a part of Tamirabarani River basin, South India using Remote Sensing and GIS
    Subramani, T.
    Prabaharan, S.
    Karunanidhi, D.
    INDIAN JOURNAL OF GEO-MARINE SCIENCES, 2015, 44 (09) : 1401 - 1408
  • [26] The Evolution Rules of Water Resources in the North Part of Haihe River Basin
    Zhai Jiaqi
    Pei Yuansheng
    Zhao Yong
    PROCEEDINGS OF THE 35TH IAHR WORLD CONGRESS, VOLS III AND IV, 2013,
  • [27] Sustainable development and management of water resources in the Hei River basin of north-west China
    Wang, XQ
    Gao, QZ
    INTERNATIONAL JOURNAL OF WATER RESOURCES DEVELOPMENT, 2002, 18 (02) : 335 - 352
  • [28] Flood monitoring using microwave remote sensing in a part of Nuna river basin, Odisha, India
    Sananda Kundu
    S. P. Aggarwal
    Nanette Kingma
    Arun Mondal
    Deepak Khare
    Natural Hazards, 2015, 76 : 123 - 138
  • [29] Flood monitoring using microwave remote sensing in a part of Nuna river basin, Odisha, India
    Kundu, Sananda
    Aggarwal, S. P.
    Kingma, Nanette
    Mondal, Arun
    Khare, Deepak
    NATURAL HAZARDS, 2015, 76 (01) : 123 - 138
  • [30] The dynamic variation of water resources and its tendency in the Tarim River Basin
    Xu Hailiang
    Ye Mao
    Song Yudong
    Journal of Geographical Sciences, 2005, 15 (4) : 467 - 474