Research on the Performance of Shaftiess Water-jet Propulsion

被引:0
|
作者
Cao, Puyu [1 ]
Wang, Yang [1 ]
Li, Guidong [1 ]
Qian, K. X. [1 ]
机构
[1] Jiangsu Univ, Zhenjiang, Jiangsu, Peoples R China
关键词
Water-jet propulsion; Pump; Rotation shaft; Shatless; CFD;
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
This paper presents the results of an investigation on the feasibility and superiority of the shaftless water-jet propulsion. Resulting from the elimination of the upstream driving shaft, the shaftless model is a rim driven propulsion where shaftless water-jet pump and intake duct are the major parts. The computational fluid dynamics (CFD) methodology was used to calculate the performance and visualise the flow of the shaftless water-jet installation, and the numerical model was validated with available experimental data. AS the result of reducing the velocity circulation at the inlet of the rotor, there was nearly 2% increment in the performance prediction of the shaftless water-jet pump than the traditional. Based on the theoretical formula, it infers that the increasing flow rate and head of the shaftless pump would deliver more thrust to the vessel on the design condition (vs=30knot), and the variation of jet velocity ratio would contribute to extending of propulsion efficiency. Flow field analysis has proved that the removal shaft could minimise the velocity non-uniformity and eliminate the flow separation around the shaft, so there would be less energy losses in the intake duct. With the improvement of intake duct, it also reduces the backflow and blocking at the shroud. Furthermore it produces a more uniform inflow for the rotor to ensure better efficiency and reliability of the propulsion. Performance analysis shows that the shaftless model delivers more thrust (3%) than the traditional on the design speed. In order to match the resistance, the shaftless water-jet propulsion has to decrease the rotation speed of the engine to compensate for the increment of thrust, it means that the shaftless model could possess more efficiency (4%) and save more energy for operating. On the off-design condition, the shaftless model is proved to extend the working range and broaden the high efficiency region resulting from the increment of output volume.
引用
收藏
页数:8
相关论文
共 50 条
  • [31] An experimental investigation into the performance of a flush water-jet inlet
    Faculty of Maritime Engineering, Australian Maritime College, Launceston, Tasmania, Australia
    不详
    J Ship Res, 2007, 1 (1-21):
  • [32] Mechanism and Research Advances of Water-Jet Guided Laser Micromachining
    Wang Shuiwang
    Ding Ye
    Cheng Bai
    Li Yuan
    Yang Lijun
    CHINESE JOURNAL OF LASERS-ZHONGGUO JIGUANG, 2022, 49 (10):
  • [33] Robust H∞ yaw tracking control of a water-jet propulsion unmanned surface vehicle
    Xiong J.-F.
    Li D.-C.
    He Y.-Q.
    Han J.-D.
    Kongzhi Lilun Yu Yingyong/Control Theory and Applications, 2019, 36 (02): : 165 - 174
  • [34] Broken lines path following algorithm for a water-jet propulsion USV with disturbance uncertainties
    Zhao, Yujiao
    Qi, Xin
    Incecik, Atilla
    Ma, Yong
    Li, Zhixiong
    OCEAN ENGINEERING, 2020, 201 (201)
  • [35] Quasi-LPV Modeling and Identification for a Water-Jet Propulsion USV: an Experimental Study
    Xiong, Junfeng
    He, Yuqing
    Gu, Feng
    Li, Decai
    Han, Jianda
    2014 IEEE INTERNATIONAL CONFERENCE ON ROBOTICS AND BIOMIMETICS IEEE-ROBIO 2014, 2014, : 431 - 436
  • [36] Transient Characteristics of Water-Jet Propulsion with a Screw Mixed Pump during the Startup Process
    Han, Wei
    Zhang, Teng
    Su, You Liang
    Chen, Ran
    Qiang, Yan
    Han, Yang
    MATHEMATICAL PROBLEMS IN ENGINEERING, 2020, 2020
  • [37] Global Sliding Mode Control Approach for the Steering System of the Water-Jet Propulsion Device
    Gong Z.
    Tian Z.
    Xiong W.
    Li J.
    Li G.
    Yuan J.
    Yuan, Jingqi (jqyuan@sjtu.edu.cn), 2017, Shanghai Jiaotong University (51): : 693 - 697
  • [38] Laser and Water-jet Fiber Coupling Technology for Water-jet Guided Laser Micromachining
    Wang, Y.
    Yang, L. J.
    Tang, J.
    Li, L.
    Chen, Y. B.
    ULTRA-PRECISION MACHINING TECHNOLOGIES, 2009, 69-70 : 29 - +
  • [39] A study of the dynamics of the water jet in water-jet looms
    Li, KR
    Ming, C
    JOURNAL OF THE TEXTILE INSTITUTE, 2001, 92 (04) : 364 - 371
  • [40] Laser and water-jet fiber coupling technology for water-jet guided laser micromachining
    School of Mechatronics Engineering, Harbin Institute of Technology, Harbin 150001, China
    Guangxue Jingmi Gongcheng, 2008, 9 (1614-1621):