Velocity profiles and incipient motion of frazil particles under ice cover

被引:58
|
作者
Sui, Jueyi [1 ]
Wang, Jun [2 ]
He, Yun [3 ]
Krol, Faye [1 ]
机构
[1] Univ No British Columbia, Environm Engn Program, Prince George, BC V2N 4Z9, Canada
[2] Hefei Univ Technol, Sch Civil Engn, Hefei 230009, Anhui, Peoples R China
[3] China Inst Water Resources & Hydropower Res, Beijing 100038, Peoples R China
基金
中国国家自然科学基金; 加拿大自然科学与工程研究理事会;
关键词
Frazil particle; Ice cover; Incipient motion; Sediment; Shear Reynolds number; Shields shear stress; Velocity profile; SEDIMENT TRANSPORT; SPUR DIKES; ACCUMULATION; INITIATION; CHANNELS; RIVER; FLOW; JAMS;
D O I
10.1016/S1001-6279(10)60026-1
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
A series of experiments for the incipient motion of frazil particles under ice cover have been carried out in laboratory under different flow and boundary conditions. Measurements on flow velocities across the measuring cross-section at different water depths have been conducted. Based on these experiments under both ice-covered and open flow conditions, the impacts of solid boundary (such as ice cover and flume sidewall) on the distribution of flow velocity profiles have been discussed. The criteria for the incipient motion of frazil particles under both smooth covered and rough covered conditions have been investigated. The influence of the roughness of ice cover has been assessed. The relation between shear Reynolds number and dimensionless shear stress for incipient motion of frazil particles under ice cover have been established compared with the incipient motion of sediment particles under ice covered condition. A diagram describing the relationship between critical shear Reynolds number and dimensionless shear stress for incipient motion of frazil particle under both smooth covered and rough covered conditions has been established. Additionally, it is found that the steeper the slope of ice cover is, the greater the critical shear stress for incipient motion of frazil particles becomes. However, the steeper the riverbed slope, the less the critical shear stress for incipient motion of river sediment.
引用
收藏
页码:39 / 51
页数:13
相关论文
共 50 条
  • [21] Discussion of velocity distribution and resistance under ice cover
    Wang, J
    Gao, YX
    Zhang, LB
    RESEARCH BASINS AND HYDROLOGICAL PLANNING, 2004, : 367 - 370
  • [22] Frazil deposition under growing sea ice
    McGuinness, M. J.
    Williams, M. J. M.
    Langhorne, P. J.
    Purdie, C.
    Crook, J.
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2009, 114
  • [23] Incipient motion of coarse particles under regular shoaling waves
    Terrile, E
    Reniers, AJHM
    Stive, MJF
    Tromp, M
    Verhagen, HJ
    COASTAL ENGINEERING, 2006, 53 (01) : 81 - 92
  • [24] INCIPIENT MOTION OF ARBITRARY SHAPE PARTICLES UNDER SOLITARY WAVES
    NAHEER, E
    COASTAL ENGINEERING, 1979, 2 (04) : 277 - 296
  • [25] Unsteady motion of circular cylinder under ice cover
    Kostikov, V. K.
    Makarenko, N., I
    Korobkin, A. A.
    FIFTH ALL-RUSSIAN CONFERENCE WITH INTERNATIONAL PARTICIPATION POLAR MECHANICS, 2018, 193
  • [26] Wave motion in a fluid under an inhomogeneous ice cover
    Sturova, I. V.
    Tkacheva, L. A.
    ALL-RUSSIAN CONFERENCE WITH INTERNATIONAL PARTICIPATION MODERN PROBLEMS OF CONTINUUM MECHANICS AND EXPLOSION PHYSICS DEDICATED TO THE 60TH ANNIVERSARY OF LAVRENTYEV INSTITUTE OF HYDRODYNAMICS SB RAS, 2017, 894
  • [27] Under cover transport and accumulation of frazil granules - Discussion
    Guo, QZ
    JOURNAL OF HYDRAULIC ENGINEERING-ASCE, 1996, 122 (08): : 473 - 473
  • [28] Under cover transport and accumulation of frazil granules - Closure
    Shen, HT
    Wang, DS
    JOURNAL OF HYDRAULIC ENGINEERING, 1996, 122 (08) : 473 - 474
  • [29] Body motion in liquid under ice plate with snow cover
    Pogorelova, A., V
    Zemlyak, V. L.
    Kozin, V. M.
    APPLIED OCEAN RESEARCH, 2019, 84 : 32 - 37
  • [30] Discussion and Closure: Under Cover Transport and Accumulation of Frazil Granules
    Guo, Qizhong
    Shen, Hung Tao
    Wang, De Sheng
    Journal of Hydraulic Engineering, 1996, 122 (08): : 473 - 474