WAVE IMPACT PRESSURE ON VERTICAL WALLS UNDER BREAKING WAVES OF VARIOUS TYPES

被引:197
|
作者
HATTORI, M
ARAMI, A
YUI, T
机构
[1] ISHIKAWAJIMA HARIMA HEAVY IND CO LTD, TOKYO, JAPAN
[2] CHUO UNIV, GRAD SCH SCI & ENGN, TOKYO, JAPAN
关键词
D O I
10.1016/0378-3839(94)90049-3
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Laboratory experiments were conducted to improve our understanding of the physics and characteristics of impact pressures due to collisions of breaking waves against a vertical wall. Measurements of impact wave pressures were performed simultaneously with observation of high-speed video pictures of the violent wave motion at the collision. The physics and characteristics of the impact pressure significantly depend on the colliding conditions of breaking waves. These were studied for the following colliding conditions: flip-through, collision of the vertical wave front, and plunging wave collision. When a small amount of air is entrapped between the breaking wave and the wall at the collision, the impact pressure increases considerably. The highest pressure, of very short duration, is observed when a vertical wave front strikes the wall while trapping a small amount of air in the form of either bubbles or a thin lens-shaped pocket. The impulsive pressure, occurring in the vicinity of the still water level, is transmitted downwards through the water body with the sound velocity. The larger the amount of the entrapped air at impact of the plunging breakers, the lower the magnitude and the longer the rise or compression time of the impact pressures. When plunging and curling of the breaking wave develop well, a thick air pocket is trapped, and damped pressure oscillations, due to the air pocket pulsation, appear immediately after the peak of the impact pressure. The oscillation frequencies are lower the greater the amount of entrapped air, and are almost equal to the resonant frequency of pulsating air pockets. The damping mechanisms, however, still remain unknown. Agreements between the measured and predicted oscillation frequencies suggest that adiabatic processes of the air pocket play an essential role in the physics of high impact pressure.
引用
收藏
页码:79 / 114
页数:36
相关论文
共 50 条
  • [21] Breaking wave impact loads on vertical faces
    Allsop, NWH
    Vicinanza, D
    Calabrese, M
    Centurioni, L
    PROCEEDINGS OF THE SIXTH (1996) INTERNATIONAL OFFSHORE AND POLAR ENGINEERING CONFERENCE, VOL III, 1996, 1996, : 185 - 190
  • [22] Experimental studies of impact pressure on a vertical cylinder subjected to depth induced wave breaking
    Chakkurunnipalliyalil, Vipin
    Rajamanickam, Panneer Selvam
    Sannasiraj, Sannasiraj Annamalaisamy
    OCEAN SYSTEMS ENGINEERING-AN INTERNATIONAL JOURNAL, 2022, 12 (04): : 439 - 459
  • [23] RESPONSE OF SLENDER VERTICAL CYLINDER UNDER BREAKING WAVES
    Manjula, R.
    Sannasiraj, S. A.
    8TH INTERNATIONAL CONFERENCE ON ASIAN AND PACIFIC COASTS (APAC 2015), 2015, 116 : 631 - 638
  • [24] Sediment concentration and vertical mixing under breaking waves
    Aagaard, Troels
    Jensen, Stine G.
    MARINE GEOLOGY, 2013, 336 : 146 - 159
  • [25] COMPARATIVE-STUDY ON BREAKING WAVE-FORCES ON VERTICAL WALLS
    ERGIN, A
    ABDALLA, S
    JOURNAL OF WATERWAY PORT COASTAL AND OCEAN ENGINEERING-ASCE, 1993, 119 (05): : 560 - 567
  • [26] COMPARATIVE-STUDY ON BREAKING WAVE-FORCES ON VERTICAL WALLS
    GODA, Y
    JOURNAL OF WATERWAY PORT COASTAL AND OCEAN ENGINEERING-ASCE, 1995, 121 (05): : 272 - 272
  • [27] ENERGY BALANCE IN WAVE IMPACT EVENTS ON VERTICAL WALLS
    Mueller, Gerald
    Warbrick, David
    PROCEEDINGS OF THE CHINESE-GERMAN JOINT SYMPOSIUM ON HYDRAULIC AND OCEAN ENGINEERING, 2008, : 471 - 477
  • [28] Breaking wave impact on vertical and sloping coastal structures
    Cukurova Univ, Adana, Turkey
    Ocean Eng (Pergamon), 1 (35-48):
  • [29] BREAKING WAVE IMPACT ON VERTICAL AND SLOPING COASTAL STRUCTURES
    KIRKGOZ, MS
    OCEAN ENGINEERING, 1995, 22 (01) : 35 - 48
  • [30] Characterization of breaking wave impact on vertical wall with recurve
    Ravindar R.
    Sriram V.
    Schimmels S.
    Stagonas D.
    ISH Journal of Hydraulic Engineering, 2019, 25 (02) : 153 - 161