Physical Oceanography and Hydrodynamic Modelling in Tembesi Reservoir Waters, Batam

被引:0
作者
Lubis, Muhammad Zainuddin [1 ]
Budiana [2 ]
Gustin, Oktavianto [1 ]
Puspita, Widya Rika [2 ]
Hastuti, Amandangi Wahyuning [3 ]
Antoni, Satria [4 ]
Rahimah, Insaniah [5 ]
Kausarian, Husnul [6 ]
Prasetyo, Budhi Agung [7 ]
机构
[1] Politekn Negeri Batam, Geomat Engn, Batam, Indonesia
[2] Politekn Negeri Batam, Elect Engn, Batam, Indonesia
[3] Yamaguchi Univ, Grad Sch Sci & Technol Innovat, Ube, Yamaguchi, Japan
[4] King Abdulaziz Univ, Marine Geol, Jeddah, Saudi Arabia
[5] Matauli Coll Fisheries & Marine, Socioecon Fishery, Sibolga, Indonesia
[6] Univ Islam Riau, Dept Geol Engn, Riau, Indonesia
[7] Inst Teknol Sumatera, Marine Environm Sci, Lampung, Indonesia
来源
2020 3RD INTERNATIONAL CONFERENCE ON APPLIED ENGINEERING (ICAE) | 2020年
关键词
physical Oceanography; hydrodynamic modelling; Tembesi reservoir; wind speed; water level;
D O I
10.1109/ICAE50557.2020.9350549
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Land areas in the territorial waters will often be affected by sea-level flooding or commonly referred to as rob. This research was conducted to see the physical condition of the waters and to do a hydrodynamic model (2D) in the waters of the Tembesi Reservoir, Batam, Indonesia. This research was conducted using primary and secondary data to produce physical conditions of waters and hydrodynamic (2D) models. The results showed the depth of waters has a minimum value of depth of -1.05 meters and a maximum value of depth of -5.95 meters. The percentage of wind speed below 1 Knot is 3.23%, and the independent variable in the percentage of wind data processing is 1.61%, with the lowest wind speed in the range of 0.1-1 Knots. Water level models produced in conditions during the filling process before the water discharge from the outlet is 0.023 meters and relatively small currents range from 0.0012 cm/s. Elevation of the final water level to the final flow when the conditions during the filling process before the water is discharged, resulting in highest water elevation, compared to when the water condition in the reservoir has been discharged from the outlet into the sea.
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页数:4
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共 16 条
  • [1] Chlorophyll-a, and Sea Surface Temperature (SST) as proxies for Climate Changes: Case Study in Batu Ampar waters, Riau Islands
    Antoni, S.
    Bantan, R. A.
    Al-Dubai, T. A.
    Lubis, M. Z.
    Anurogo, W.
    Silaban, R. D.
    [J]. 11TH ACEH INTERNATIONAL WORKSHOP AND EXPO ON SUSTAINABLE TSUNAMI DISASTER RECOVERY, 2019, 273
  • [2] Dewi R. C., 2019, JMG, V5, P46
  • [3] Gufran M., 2019, J SERAMBI ENG, V4, P416
  • [4] Habibie M. N., 2012, JURNAL METEOROLOGI D, V13
  • [5] Indeswari L., 2018, JURNAL TEKNIK ITS, V7
  • [6] Visualizing Marine Environmental Changes to the Saemangeum Coast
    Kim, Jinah
    Park, Jinah
    [J]. IEEE COMPUTER GRAPHICS AND APPLICATIONS, 2012, 32 (06) : 82 - 87
  • [7] P-ρ-T measurements of H2O up to 260 GPa under laser-driven shock loading
    Kimura, T.
    Ozaki, N.
    Sano, T.
    Okuchi, T.
    Sano, T.
    Shimizu, K.
    Miyanishi, K.
    Terai, T.
    Kakeshita, T.
    Sakawa, Y.
    Kodama, R.
    [J]. JOURNAL OF CHEMICAL PHYSICS, 2015, 142 (16)
  • [8] Lubis M. Z., 2018, 2018 INT C APPL ENG
  • [9] Lubis M. Z., 2020, J PHYS C SOLID STATE, V1442
  • [10] Pasaribu R. A., 2020, IOP C SERIES EARTH E, V429