Hydroelastic waves propagating in an ice-covered channel

被引:25
|
作者
Ren, K. [1 ]
Wu, G. X. [1 ]
Li, Z. F. [2 ]
机构
[1] UCL, Dept Mech Engn, Torrington Pl, London WC1E 7JE, England
[2] Jiangsu Univ Sci & Technol, Sch Naval Architecture & Ocean Engn, Zhenjiang 212003, Jiangsu, Peoples R China
关键词
ice sheets; channel flow; wave-structure interactions; OCEAN WAVES; EXPANSION FORMULAS; FLEXURAL WAVES; SURFACE-WAVES; NARROW CRACKS; WATER-WAVES; SCATTERING; TRANSMISSION; DIFFRACTION; REFLECTION;
D O I
10.1017/jfm.2019.1042
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
The hydroelastic waves in a channel covered by an ice sheet, without or with crack and subject to various edge constraints at channel banks, are investigated based on the linearized velocity potential theory for the fluid domain and the thin-plate elastic theory for the ice sheet. An effective analytical solution procedure is developed through expanding the velocity potential and the fourth derivative of the ice deflection to a series of cosine functions with unknown coefficients. The latter are integrated to obtain the expression for the deflection, which involves four constants. The procedure is then extended to the case with a longitudinal crack in the ice sheet by using the Dirac delta function and its derivatives at the crack in the dynamic equation, with unknown jumps of deflection and slope at the crack. Conditions at the edges and crack are then imposed, from which a system of linear equations for the unknowns is established. From this, the dispersion relation between the wave frequency and wavenumber is found, as well as the natural frequency of the channel. Extensive results are then provided for wave celerity, wave profiles and strain in the ice sheet. In-depth discussions are made on the effects of the edge condition, and the crack.
引用
收藏
页数:24
相关论文
共 50 条
  • [41] Deformation of vegetated channel bed under ice-covered flow conditions
    Barahimi, Mahboubeh
    Sui, Jueyi
    JOURNAL OF HYDROLOGY, 2024, 636
  • [42] Generation of long waves in ice-covered lakes by moving disturbances of atmospheric pressure
    Sturova, Izolda V.
    JOURNAL OF HYDRODYNAMICS, 2010, 22 (05) : 34 - 39
  • [43] The Physical Oceanography of Ice-Covered Moons
    Soderlund, Krista M.
    Rovira-Navarro, Marc
    Le Bars, Michael
    Schmidt, Britney E.
    Gerkema, Theo
    ANNUAL REVIEW OF MARINE SCIENCE, 2024, 16 : 25 - 53
  • [44] Estimating the energy of an ice-covered flow
    Dolgopolova E.N.
    Water Resources, 2005, 32 (1) : 43 - 49
  • [45] Sediment transport in ice-covered channels
    Knack, Ian
    Shen, Hung-tao
    INTERNATIONAL JOURNAL OF SEDIMENT RESEARCH, 2015, 30 (01) : 63 - 67
  • [46] Dispersion and attenuation in a porous viscoelastic model for gravity waves on an ice-covered ocean
    Chen, Hua
    Gilbert, Robert P.
    Guyenne, Philippe
    EUROPEAN JOURNAL OF MECHANICS B-FLUIDS, 2019, 78 : 88 - 105
  • [47] Generation of long waves in ice-covered lakes by moving disturbances of atmospheric pressure
    Sturova, Izolda V.
    PROCEEDINGS OF THE 9TH INTERNATIONAL CONFERENCE ON HYDRODYNAMICS (ICHD - 2010), 2010, : 34 - 39
  • [48] TRANSVERSE MIXING IN AN ICE-COVERED RIVER
    ENGMANN, JEO
    KELLERHALS, R
    WATER RESOURCES RESEARCH, 1974, 10 (04) : 775 - 784
  • [49] Generation of long waves in ice-covered lakes by moving disturbances of atmospheric pressure
    Izolda V. Sturova
    Journal of Hydrodynamics, 2010, 22 : 34 - 39
  • [50] Radiation of waves by a submerged nearly circular rough plate in ice-covered ocean
    Das, Arijit
    De, Soumen
    Mandal, B. N.
    STUDIES IN APPLIED MATHEMATICS, 2021, 147 (03) : 935 - 954