MODIFICATION OF AIR CAVITY FLOW UNDER MODEL HULL WITH HYDRODYNAMIC ACTUATORS

被引:0
作者
Pace, Matthew V. [1 ]
Matveev, Konstantin I. [1 ]
机构
[1] Washington State Univ, Sch Mech & Mat Engn, Pullman, WA 99164 USA
来源
PROCEEDINGS OF THE ASME/JSME/KSME JOINT FLUIDS ENGINEERING CONFERENCE, 2019, VOL 5 | 2019年
基金
美国国家科学基金会;
关键词
Ship drag reduction; air-cavity flow; hydrodynamic actuators; DRAG REDUCTION; VENTILATED CAVITATION; LUBRICATION;
D O I
暂无
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Air cavities employed under ship hulls can result in significant decrease of the water frictional drag by reducing the hull wetted area. However, these cavities usually perform well only in a limited range of the ship speed and attitude. In off-design states and in the presence of sea waves, efficient air cavities covering large areas of the hull are difficult to form and maintain. This problem can be potentially addressed with help of hydrodynamic actuators, such as compact hydrofoils, tabs, and spoilers, which can assist with forming and maintaining air cavities under ship hulls. In this study, exploratory tests have been conducted with a simplistic small-scale hull having a bottom recess. Air was supplied into the recess to produce an air cavity, and several actuators were implemented and manually controlled during the tests. Subjected to external water flow, the air cavity under the hull was found to be responsive to variable positions of the actuators. Positive effects on the air cavity produced with specific actuator settings are identified and discussed in the paper A series of experimental photographs of the air-water interface are shown for various actuator settings. The air flow rates needed to establish and maintain a large air cavity under the model hull are also reported.
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页数:5
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共 16 条
  • [1] Ships with ventilated cavitation in seaways and active flow control
    Amromin, E. L.
    [J]. APPLIED OCEAN RESEARCH, 2015, 50 : 163 - 172
  • [2] Amromin E, 2011, J SHIP RES, V55, P196
  • [3] [Anonymous], 2005, OCEANIC ENG INT
  • [4] Arndt R.E.A., 2009, J FLUIDS ENG, V131
  • [5] Experimental and numerical hydrodynamic analysis of a stepped planing hull
    De Marco, Agostino
    Mancini, Simone
    Miranda, Salvatore
    Scognamiglio, Raffaele
    Vitiello, Luigi
    [J]. APPLIED OCEAN RESEARCH, 2017, 64 : 135 - 154
  • [6] Ship hull drag reduction using bottom air injection
    Latorre, R
    [J]. OCEAN ENGINEERING, 1997, 24 (02) : 161 - 175
  • [7] Lay KA, 2010, J SHIP RES, V54, P109
  • [8] On the energy economics of air lubrication drag reduction
    Maekiharju, Simo A.
    Perlin, Marc
    Ceccio, Steven L.
    [J]. INTERNATIONAL JOURNAL OF NAVAL ARCHITECTURE AND OCEAN ENGINEERING, 2012, 4 (04) : 412 - 422
  • [9] Makiharju S.A., 2009, 28 S NAV HYDR PAS CA
  • [10] Air cavity with variable length under a model hull
    Matveev, K. I.
    Miller, M. J.
    [J]. PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART M-JOURNAL OF ENGINEERING FOR THE MARITIME ENVIRONMENT, 2011, 225 (M2) : 161 - 169