Comparing a 41-year model hindcast with decades of wave measurements from the Baltic Sea

被引:62
|
作者
Bjorkqvist, Jan-Victor [1 ]
Lukas, Ingvar [2 ]
Alari, Victor [3 ]
van Vledder, Gerbrant Ph. [4 ]
Hulst, Sander [2 ]
Pettersson, Heidi [1 ]
Behrens, Arno [5 ]
Mannik, Aarne [3 ,6 ,7 ]
机构
[1] Finnish Meteorol Inst, Marine Res, POB 503, FI-00101 Helsinki, Finland
[2] BMT ARGOSS, Spacelab 45, NL-3824 MR Amersfoort, Netherlands
[3] Tallinn Univ Technol, Dept Marine Syst, Akad Tee 15a, EE-12611 Tallinn, Estonia
[4] Delft Univ Technol, POB 2048, NL-2600 GA Delft, Netherlands
[5] Helmholtz Zentrum Geesthacht, Max Planck Str 1, D-21502 Geesthacht, Germany
[6] Estonian Environm Agcy, Mustamae Tee 33, EE-10616 Tallinn, Estonia
[7] Univ Tartu, Ulikooli 18, EE-50090 Tartu, Estonia
关键词
Wave statistics; Ice-cover; SWAN; Exceedance values; Measurement gaps; Wave height; WIND-SPEED; CLIMATE; PROPER; ICE; VARIABILITY; SPECTRUM; FIELDS; GROWTH; GULF; SWAN;
D O I
10.1016/j.oceaneng.2018.01.048
中图分类号
U6 [水路运输]; P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
We present ice-free and ice-included statistics for the Baltic Sea using a wave hindcast validated against data from 13 wave measurement sites. In the hindcast 84% of wave events with a significant wave height over 7 m occurred between November and January. The effect of the ice cover is largest in the Bay of Bothnia, where the mean significant wave height is reduced by 30% when the ice time is included in the statistics. The difference between these two statistics are less than 0.05 m below a latitude of 59.5 degrees. The seasonal ice cover also causes measurement gaps by forcing an early recovery of the instruments. Including the time not captured by the wave buoy can affect the estimates for the significant wave height by roughly 20%. The impact below the 99th percentiles are still under 5%. The significant wave height is modelled accurately even close to the shore, but the highest peak periods are underestimated in a narrow bay. Sensitivity test show that this underestimation is most likely caused by an excessive refraction towards the shore. Reconsidering the role of the spatial resolution and the physical processes affecting the low-frequency waves is suggested as a possible solution.
引用
收藏
页码:57 / 71
页数:15
相关论文
共 45 条
  • [31] Wave climate and energy resources in American Samoa from a 42-year high-resolution hindcast
    Medina, Gabriel Garcia
    Yang, Zhaoqing
    Li, Ning
    Cheung, Kwok Fai
    Lutu-McMoore, Elinor
    RENEWABLE ENERGY, 2023, 210 : 604 - 617
  • [32] Nutrient turnover at the hypoxic boundary: flux measurements and model representation for the bottom water environment of the Gulf of Riga, Baltic Sea
    Eglite, Elvita
    Lavrinovics, Aigars
    Mueller-Karulis, Baerbel
    Aigars, Juris
    Poikane, Rita
    OCEANOLOGIA, 2014, 56 (04) : 711 - 735
  • [33] Comparing Springtime Ice-Algal Chlorophyll a and Physical Properties of Multi-Year and First-Year Sea Ice from the Lincoln Sea
    Lange, Benjamin A.
    Michel, Christine
    Beckers, Justin F.
    Casey, J. Alec
    Flores, Hauke
    Hatam, Ido
    Meisterhans, Guillaume
    Niemi, Andrea
    Haas, Christian
    PLOS ONE, 2015, 10 (04):
  • [34] Characteristics of black carbon aerosol mass concentration over the East Baltic region from two-year measurements
    Bycenkiene, Steigvile
    Ulevicius, Vidmantas
    Kecorius, Simonas
    JOURNAL OF ENVIRONMENTAL MONITORING, 2011, 13 (04): : 1027 - 1038
  • [35] Sea Storm Analysis: Evaluation of Multiannual Wave Parameters Retrieved from HF Radar and Wave Model
    Saviano, Simona
    Biancardi, Anastasia Angela
    Uttieri, Marco
    Zambianchi, Enrico
    Cusati, Luis Alberto
    Pedroncini, Andrea
    Contento, Giorgio
    Cianelli, Daniela
    REMOTE SENSING, 2022, 14 (07)
  • [36] Evaluation of Site Specific Constants for Sustained and Cyclonic Wave Energy Assessment in Central Arabian Sea from a Decade of Moored Buoy Measurements and Model Comparison
    Kalyani, M.
    Navaneeth, K. N.
    Mathew, Martin, V
    Prasad, Anoopa C.
    Joseph, Jossia K.
    Muthiah, Arul M.
    Ramasamy, Venkatesan
    OCEANS 2022, 2022,
  • [37] Retrieval of suspended particulate matter from turbidity - model development, validation, and application to MERIS data over the Baltic Sea
    Kari, Elina
    Kratzer, Susanne
    Beltran-Abaunza, Jose M.
    Harvey, E. Therese
    Vaiciute, Diana
    INTERNATIONAL JOURNAL OF REMOTE SENSING, 2017, 38 (07) : 1983 - 2003
  • [38] Quality assessment of atmospheric surface fields over the Baltic Sea from an ensemble of regional climate model simulations with respect to ocean dynamics
    Meier, H. E. Markus
    Hoglund, Anders
    Doscher, Ralf
    Andersson, Helen
    Loptien, Ulrike
    Kjellstrom, Erik
    OCEANOLOGIA, 2011, 53 (01) : 193 - 227
  • [39] Analysis of 50-year wind data of the southern Baltic Sea for modelling coastal morphological evolution - a case study from the Darss-Zingst Peninsula
    Zhang, Wenyan
    Harff, Jan
    Schneider, Ralf
    OCEANOLOGIA, 2011, 53 (01) : 489 - 518
  • [40] A regional pCO2 climatology of the Baltic Sea from in situ pCO2 observations and a model-based extrapolation approach
    Bittig, Henry C.
    Jacobs, Erik
    Neumann, Thomas
    Rehder, Gregor
    EARTH SYSTEM SCIENCE DATA, 2024, 16 (02) : 753 - 773