Hydrodynamic Efficiency Improvement of the High Skew Propeller for the Underwater Vehicle Under Surface and Submerged Conditions

被引:0
|
作者
Hassan Ghassemi [1 ]
Parviz Ghadimi [1 ]
机构
[1] Department of Marine Technology,Amirkabir University of Technology
关键词
underwater vehicle; propeller design factors; high skew propeller; surface and submerged conditions; hydrodynamic propeller efficiency;
D O I
暂无
中图分类号
U674.941 [潜水船]; U661.3 [船舶动力学];
学科分类号
082401 ;
摘要
An algorithm based on the Boundary Element Method(BEM)is presented for designing the High Skew Propeller(HSP)used in an Underwater Vehicle(UV).Since UVs operate under two different kinds of working conditions(i.e.surface and submerged conditions),the design of such a propeller is an unwieldy task.This is mainly due to the fact that the resistance forces as well as the vessel efficiency under these conditions are significantly different.Therefore,some factors are necessary for the design of the opti-mum propeller to utilize the power under the mentioned conditions.The design objectives of the optimum propeller are to obtain the highest possible thrust and efficiency with the minimum torque.For the current UV,the main dimensions of the propeller are pre-dicted based on the given required thrust and the defined operating conditions.These dimensions(number of blades,pitch,diameter,expanded area ratio,thickness and camber)are determined through iterative procedure.Because the propeller operates at the stern of the UV where the inflow velocity to the propeller is non-uniform,a 5-blade HSP is preferred for running the UV.Finally,the propel-ler is designed based on the numerical calculations to acquire the improved hydrodynamic efficiency.
引用
收藏
页码:314 / 324
页数:11
相关论文
共 50 条
  • [31] Hydrodynamic performance of a highly-skewed propeller in ventilated flow conditions near the free surface
    Hasan, Ahmad Darori
    Lin, Yu-Hsien
    PHYSICS OF FLUIDS, 2025, 37 (01)
  • [32] URANS investigation of the interaction between the free surface and a shallowly submerged underwater vehicle at steady drift
    Amiri, Mojtaba Maali
    Sphaier, Sergio H.
    Vitola, Marcelo A.
    Esperanca, Paulo T.
    APPLIED OCEAN RESEARCH, 2019, 84 : 192 - 205
  • [33] Numerical investigation of hydrodynamic and hydro-acoustic performance of underwater propeller operating in off-design flow conditions
    Naseer, Muhammad Rehan
    Uddin, Emad
    Mubashar, Aamir
    Sajid, Muhmmad
    Ali, Zaib
    Akhtar, Khalid
    JOURNAL OF MARINE ENGINEERING AND TECHNOLOGY, 2022, 21 (04): : 224 - 233
  • [34] Numerical Study on Hydrodynamic Characteristics of Cavitators of Underwater Ultra High-speed Vehicle
    Wang, Zhong
    Wang, Menghao
    Peng, Yuanming
    Zhou, Jingjun
    Ship Building of China, 2023, 64 (05) : 78 - 85
  • [35] Research on Hydrodynamic Performance of UUV Operating Near the Underwater Vehicle under the Oblique Towing Condition
    Ren, Mengchen
    Yao, Huizhi
    Zhao, Qiaosheng
    Li, Dejun
    Li, Yongcheng
    Ship Building of China, 2024, 65 (04) : 273 - 280
  • [36] Evaluation Method of Underwater Unmanned Vehicle Sailing Efficiency under Wave Action
    Li, Hongwei
    JOURNAL OF COASTAL RESEARCH, 2018, : 143 - 149
  • [37] MAZE PERFORMANCE OF RATS UNDER CONDITIONS OF SURFACE AND UNDERWATER SWIMMING
    MASON, WA
    STONE, CP
    JOURNAL OF COMPARATIVE AND PHYSIOLOGICAL PSYCHOLOGY, 1953, 46 (03): : 159 - 165
  • [38] Numerical simulation of the infrared signatures of an underwater vehicle's thermal wakes on the sea surface under low sea conditions
    Shi, Xing-Liang
    Wang, Cheng-An
    Wang, Xin-Sheng
    Shen, Zhi-Ben
    INTERNATIONAL JOURNAL OF REMOTE SENSING, 2025, 46 (04) : 1885 - 1912
  • [39] Aerodynamic effects of propeller slipstream on a transition micro aerial vehicle under various maneuvering conditions
    Arumugam, Vinoth Raj
    Chidambaram, Senthilkumar
    PHYSICS OF FLUIDS, 2025, 37 (01)
  • [40] Numerical research on hydrodynamic characteristics of the disk-shaped autonomous underwater vehicle near free surface
    Guo, Jin
    Lin, Yuan
    Wang, Ying
    Lin, Peiwen
    Li, Haonan
    Huang, Haocai
    Chen, Ying
    OCEAN ENGINEERING, 2023, 288