Flow field structure and fluid dynamic characteristics of semi-closed cylinder water-entry

被引:0
|
作者
Lu Z. [1 ]
Wei Y. [1 ]
Wang C. [1 ]
Sun T. [1 ]
机构
[1] School of Astronautics, Harbin Institute of Technology, Harbin
来源
Wei, Yingjie (weiyingjie@gmail.com) | 1600年 / Beijing University of Aeronautics and Astronautics (BUAA)卷 / 42期
基金
中国国家自然科学基金;
关键词
Flow field structure; Fluid dynamics; Numerical calculation; Semi-closed cylinder; Water-entry;
D O I
10.13700/j.bh.1001-5965.2015.0711
中图分类号
学科分类号
摘要
Numerical simulation for the vertical water-entry process of an end-closed cylinder shell was performed based on reynolds-averaged Navier-Stokes equations. The results of pressure and velocity contours, features of cavity wave and closure, rule of mass flow rate into the cavum, and hydrodynamic change rule were achieved. The influence of air compression-expansion on flow field structure and fluid dynamics was analyzed. The results show that water flow passing the open end in and out of cavum is synchronized with air movement; fluctuant pressure source appears at the open end of shell, leading to periodic pressure and velocity distribution; the expansion diameters of different axisymmetrical cavity sections are inversely proportional to speed of water into cavum; an air vortex generates in cavity, periodically enters and discharges from cavity, and prevents cavity closing; fluid dynamics present fluctuation characteristics whose frequency is equal to that of air, and the amplitude is in proportional relationship with that of air compression-expansion. The air compression-expansion motion in the progress of water-entry by the open cavum structure produces periodic perturbation of flow field and fluid dynamics, reduces impact of water-entry, and enhances the stability of cavity and motion of the an end-closed cylinder shell. © 2016, Editorial Board of JBUAA. All right reserved.
引用
收藏
页码:2403 / 2412
页数:9
相关论文
共 16 条
  • [1] De Backer G., Vantorre M., Beels C., Et al., Experimental investigation of water impact on axisymmetric bodies, Applied Ocean Research, 31, 3, pp. 143-156, (2009)
  • [2] Mason D., Folkman S., Behring M., Thrust oscillations of the space shuttle solid rocket booster motor during static tests, 15th Joint Propulsion Conference, (1979)
  • [3] Liu R.C., Wang Y.M., Reserch of water-entry mechanical property of Sonobuoy, Underwater Acoustic Engineering, 35, 10, pp. 59-62, (2011)
  • [4] Worthington A.M., Impact with a liquid surface studied with aid of instantaneous photography, Philosophical Transactions of the Royal Society of London, 194A, pp. 175-199, (1900)
  • [5] Duclaux V., Caille F., Duez C., Et al., Dynamics of transient cavities, Journal of Fluid Mechanics, 591, pp. 1-19, (2007)
  • [6] Truscott T.T., Techet A.H., Water-entry of spinning spheres, Journal of Fluid Mechanics, 625, pp. 135-165, (2009)
  • [7] Aristoff J.M., Truscott T.T., Techet A.H., Et al., The water entry of decelerating spheres, Physics of Fluids, 22, 3, pp. 417-422, (2010)
  • [8] He C.T., Wang C., He Q.K., Et al., Low speed water-entry of cylindrical projectile, Acta physica Sinica, 61, 13, (2012)
  • [9] Lee M., Longoria R.G., Wilson D.E., Cavity dynamics in high-speed water entry, Physics of Fluids, 9, 3, pp. 540-550, (1997)
  • [10] He C.T., Wang C., Wei Y.J., Et al., Numerical simulation of pressure distribution in vertical water-entry cavity, Journal of Ship Mechanics, 15, 9, pp. 960-968, (2011)