Ship Drag Reduction by Air Bottom Ventilated Cavitation in Calm Water and in Waves

被引:1
|
作者
Amromin, Eduard [1 ]
Karafiath, Gabor [2 ]
Metcalf, Bryson [2 ]
机构
[1] Mechmath LLC, Prior Lake, MN USA
[2] NSWCCD, Bethesda, MD USA
来源
JOURNAL OF SHIP RESEARCH | 2011年 / 55卷 / 03期
关键词
waves; design (general); model testing;
D O I
10.5957/jsr.2011.55.3.196
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
The goal herein is ship drag reduction by air bottom cavitation in the moderate range of Froude number Fr (0.4 < Fr < 0.65) in both calm water and in waves. A ship hull with a bottom niche terminating in a cavity locker/seal (suppressing cavity tail oscillations and reducing the air escape from the cavity) was designed using nonlinear ideal fluid theory. The wave impact on the cavity shape and drag reduction was estimated with a novel analytical approach that takes into account the air compressibility in the cavity and air entrainment by the water. The model drag was measured in the Naval Surface Warfare Center linear tow tank at different drafts in calm water and in waves. The baseline configuration was with the niche closed by a flat cover. The attained total drag reduction at 0.45 < Fr < 0.63 was up to 25%, whereas the air supply power was under 4% of the gain in the required propulsion power. The air cavity was stable in waves (up to sea state 5 for a 90 meter ship) and the effectiveness of drag reduction by cavitation in seaway was greater than in calm water due to smaller wave-induced additional drag of the ship with air bottom cavity. Two identical models were built and tested also as a seatrain. However, the percentage drag reduction due to cavity ventilation in the seatrain configuration was less than for a single hull. The need for fine tuning the air supply distribution between the hulls was found.
引用
收藏
页码:196 / 207
页数:12
相关论文
共 50 条
  • [21] Ship-ship interactions in calm water and waves. Part 1: Analysis of the experimental data
    Mousaviraad, S. Maysam
    Sadat-Hosseini, S. Hamid
    Stern, Frederick
    OCEAN ENGINEERING, 2016, 111 : 615 - 626
  • [22] CONTROL OF AIR-VENTILATED CAVITY UNDER SHIP HULL IN ABNORMAL WAVES
    Matveev, Konstantin I.
    PROCEEDINGS OF THE ASME/JSME/KSME JOINT FLUIDS ENGINEERING CONFERENCE, 2019, VOL 2, 2019,
  • [23] Drag Reduction in Aerated Chute Flow: Role of Bottom Air Concentration
    Kramer, M.
    Felder, S.
    Hohermuth, B.
    Valero, D.
    JOURNAL OF HYDRAULIC ENGINEERING, 2021, 147 (11)
  • [24] Numerical study on pressure drag reduction for a surface vessel with struts with the drag reduction mode of ventilated supercavitating combined with air layer
    An, Hai
    Liu, Xinquan
    Zhang, Hanyu
    Cui, Zihao
    OCEAN ENGINEERING, 2025, 324
  • [25] ANALYSIS OF WAVES GENERATED BY A SHIP OSCILLATING AND RUNNING ON A CALM WATER WITH FORWARD VELOCITY.
    Ohkusu, Makoto
    1978, 16 : 25 - 36
  • [26] Numerical investigation of frictional drag reduction with an air layer concept on the hull of a ship
    Jun Zhang
    Shuo Yang
    Jing Liu
    Journal of Hydrodynamics, 2020, 32 : 591 - 604
  • [27] Experimental and numerical studies on the air-injection drag reduction of the ship model
    Zhao, Xiaojie
    Zong, Zhi
    OCEAN ENGINEERING, 2022, 251
  • [28] Numerical investigation of frictional drag reduction with an air layer concept on the hull of a ship
    Zhang, Jun
    Yang, Shuo
    Liu, Jing
    JOURNAL OF HYDRODYNAMICS, 2020, 32 (03) : 591 - 604
  • [29] Numerical Analysis and Geometric Assessment of Air Layer Distribution in a Ventilated Planing Hull in Calm Water
    Chillemi, Massimiliano
    Cucinotta, Filippo
    Sfravara, Felice
    JOURNAL OF MARINE SCIENCE AND APPLICATION, 2025,
  • [30] ULTRASONIC MEASUREMENT OF GAS BUBBLES ADVECTING UNDER A SHIP BOTTOM FOR INVESTIGATING DRAG REDUCTION PERFORMANCE
    Park, Hyun Jin
    Tasaka, Yuji
    Oishi, Yoshihiko
    Murai, Yuichi
    PROCEEDINGS OF THE ASME/JSME/KSME JOINT FLUIDS ENGINEERING CONFERENCE, 2015, VOL 1A, SYMPOSIA, PT 2, 2016,