Naval Architecture, Ocean and Civil Engineering

Hydrodynamic Characteristics of a Surface Piercing Propeller Entering Water with Different Radiuses

Expand
  • 1. Shanghai Branch of China Ship Scientific Research Center, Shanghai 200011, China
    2. College of Shipbuilding Engineering, Harbin Engineering University, Harbin 150001, China

Received date: 2021-05-20

  Online published: 2022-10-09

Abstract

In order to investigate the influence of a dimensionless section position of a surface piercing propeller on the hydrodynamic characteristics of the surface piercing propeller cup section, the cup section of the surface piercing propeller at the dimensionless radius of 0.6, 0.7, and 0.8 is selected for modeling. By solving the RANS equation to simulate the cup section entry process, in combination with the volume of fluid method and the overlapping grid technique, a reliable numerical method is established. The hydrodynamic characteristics of the water entry process of the surface piercing propeller cup section at different section positions are studied. The effects of different section positions on the free surface form, ventilation cavity form, flow field, and the surface pressure distribution in the water entry process of the surface piercing propeller cup section are analyzed. The results show that with the position of the dimensionless radius section getting closer to the tip of the surface piercing propeller, the transition state between the fully ventilated state and the partially ventilated state occurs at a larger speed coefficient, and the transverse force coefficient and the open water efficiency increases.

Cite this article

DING Enbao, CHANG Shengming, SUN Cong, ZHAO Leiming, WU Hao . Hydrodynamic Characteristics of a Surface Piercing Propeller Entering Water with Different Radiuses[J]. Journal of Shanghai Jiaotong University, 2022 , 56(9) : 1188 -1198 . DOI: 10.16183/j.cnki.jsjtu.2021.169

References

[1] SEYYEDI S, SHAFAGHAT R, SIAVOSHIAN M. Experimental study of immersion ratio and shaft inclination angle in the performance of a surface-piercing propeller[J]. Mechanical Sciences, 2019, 10(1): 153-167.
[2] OLOFSSON N. Force and flow characteristics of a partially submerged propeller[D]. Sweden: Chalmers University of Technology, 1996.
[3] YARI E, GHASSEMI H. Numerical analysis of surface piercing propeller in unsteady conditions and cupped effect on ventilation pattern of blade cross-section[J]. Journal of Marine Science and Technology, 2016, 21(3): 501-516.
[4] JAVANMARD E, YARI E, MEHR J A. Numerical investigation on the effect of shaft inclination angle on hydrodynamic characteristics of a surface-piercing propeller[J]. Applied Ocean Research, 2020, 98: 102108.
[5] NOUROOZI H, ZERAATGAR H. A reliable simulation for hydrodynamic performance prediction of surface-piercing propellers using URANS method[J]. Applied Ocean Research, 2019, 92: 101939.
[6] JAVANMARDI N, GHADIMI P. Hydroelastic analysis of surface-piercing propeller through one-way and two-way coupling approaches[J]. Proceedings of the Institution of Mechanical Engineers, Part M: Journal of Engineering for the Maritime Environment, 2019, 233(3): 844-856.
[7] 任振. 不同通气形式下半浸式螺旋桨水动力性能数值研究[D]. 哈尔滨: 哈尔滨工程大学, 2017.
[7] REN Zhen. The numerical study on hydrodynamic performance of surface piercing propeller with different ventilation modes[D]. Harbin: Harbin Engineering University, 2017.
[8] 袁煜明. 高速滑行艇后半浸桨的水动力性能研究[D]. 哈尔滨: 哈尔滨工程大学, 2018.
[8] YUAN Yuming. Study on hydrodynamic performance of surface piercing propeller for high-speed planning craft[D]. Harbin: Harbin Engineering University, 2018.
[9] 任振, 王超, 韩晓坤, 等. 浸深比对半浸桨水动力特性影响的数值分析[J]. 哈尔滨工程大学学报, 2018, 39(1): 1-9.
[9] REN Zhen, WANG Chao, HAN Xiaokun, et al. Numerical analysis of the influence of immersion ratio on the hydrodynamic characteristics of surface piercing propeller[J]. Journal of Harbin Engineering University, 2018, 39(1): 1-9.
[10] 任振, 王超, 万德成, 等. 自然通气状态下半浸桨水动力特性数值分析[J]. 上海交通大学学报, 2018, 52(6): 636-642.
[10] REN Zhen, WANG Chao, WAN Decheng, et al. Numerical analysis of hydrodynamic characteristics of surface piercing propeller under naturally ventilated condition[J]. Journal of Shanghai Jiao Tong University, 2018, 52(6): 636-642.
[11] 袁煜明, 王超, 任振. 通气管直径对半浸式螺旋桨水动力影响[J]. 哈尔滨工程大学学报, 2019, 40(2): 227-233.
[11] YUAN Yuming, WANG Chao, REN Zhen. Influence of diameter of vent pipe on hydrodynamic characteristics of surface piercing propeller[J]. Journal of Harbin Engineering University, 2019, 40(2): 227-233.
[12] REN Z, LIN H, PENG H J. Numerical analysis on hydrodynamic characteristics of surface piercing propellers in oblique flow[J]. Water, 2019, 11(1): 2015.
[13] YANG D, REN Z, GUO Z, et al. Numerical analysis on the hydrodynamic performance of an artificially ventilated surface piercing propeller[J]. Water, 2018, 10(11), 1499-1511.
[14] NASRIN J, PARVIZ G, SASAN T. Probing into the effects of cavitation on hydrodynamic characteristics of surface piercing propellers through numerical modeling of oblique water entry of a thin wedge[J]. Brodogradnja, 2018, 69(2): 151-168.
[15] 俞永清, 余建星, 丁恩宝, 等. 二维“杯”形随边超空泡剖面入水数值研究[J]. 船舶力学, 2008, 12(4): 539-544.
[15] YU Yongqing, YU Jianxing, DING Enbao, et al. Numerical research on entry water of 2D supercavitating hydrofoil section with cup at trailing edge[J]. Journal of Ship Mechanics, 2008, 12(4): 539-544.
[16] 常晟铭, 丁恩宝, 王超. 半浸桨二维杯型切面入水现象的数值分析[C]// 第三十一届全国水动力学研讨会. 厦门: 海洋出版社, 2020.
[16] CHANG Shengming, DING Enbao, WANG Chao. Numerical analysis of the water entry of the two-dimensional cup section of surface piercing propeller[C]// The 31st National Symposium on Hydrodynamics. Xiamen, China: China Ocean Press, 2020.
[17] SCOLAN Y M. Hydroelastic behaviour of a conical shell impacting on a quiescent-free surface of an incompressible liquid[J]. Journal of Sound and Vibration, 2004, 277(1/2): 163-203.
[18] OGER G, GUICHER P M, JACQUIN E, et al. Simulations of hydro-elastic impacts using a parallel SPH model[C]// The Nineteenth International Offshore and Polar Engineering Conference. Osaka, Japan: International Journal of Offshore and Polar Engineers, 2010.
[19] KHAYYER A, GOTOH H, PARK J C, et al. An enhanced fully Lagrangian coupled MPS-based solver for fluid-structure interactions[J]. Collection of Proceedings of the Civil Engineering Society B2 (Coastal Engineering), 2015, 71(2): I_883-I_888.
Outlines

/