• Infrared and Laser Engineering
  • Vol. 48, Issue 4, 404002 (2019)
Wang Ping1, Du Yongcheng1, Yang Li1, and Jin Fangyuan2
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • show less
    DOI: 10.3788/irla201948.0404002 Cite this Article
    Wang Ping, Du Yongcheng, Yang Li, Jin Fangyuan. Numerical and experimental study on the buoyancy and diffusion laws of submarine thermal wake based on overset grid technology and VOF model[J]. Infrared and Laser Engineering, 2019, 48(4): 404002 Copy Citation Text show less
    References

    [1] Yang Li, Hua Shunfang, Du Xianzhi. The buoyant trajectory of thermal wake after underwater vehicle in stable fluid[J]. Journal of Engineering Thermophysics, 1991, 12(1): 74-77. (in Chinese)

    [2] Zhang Jian, Chen Xuan, Yang Li, et al. Study of temperature characteristic of cooling water discharged by underwater vehicle[J]. Journal of Ship Mechanics, 2009, 13(4): 533-539. (in Chinese)

    [3] Gu Jiannong, Zheng Xueling, Liu Jubin, et al. An experimentel study on the spreading and temperature distribution of a ship model′s wake in a thermal stratified flow[J]. Journal of Hydrodynamics, 2003, 18(4): 470-475. (in Chinese)

    [4] Bonnier M, Eiff O L. Experimental investigation of the collapse of a turbulent wake in a stably stratified fluid[J]. Physics of Fluids, 2002, 14(2): 791-801.

    [5] Cervenka P O. Remote sensing the thermal macrowake[J]. Photosynthesis Research, 1989, 25(3): 161-171.

    [6] Voropayev S I, Fernando H J S, Nath C. Thermal and dynamic surface signatures of the wake of a submerged sphere[J]. Journal of Visualization, 2009, 12(4): 285-285.

    [7] Voropayev S I, Nath C, Fernando H J S. Surface signatures of submerged heated jet[J]. Environ Fluid Mech, 2014, 14(5): 1105-1121.

    [8] Voropayev S I, Nath C, Fernando H J S. Thermal surface signatures of ship propeller wakes in stratified waters[J]. Physics of Fluids, 2012, 24(11): 469-266.

    [9] Zhang Xusheng, Guo Liang, Hu Richa, et al. Heat and mass transfer characteristics of submarine cold-thermal wake in the infrared detection [J]. Optics and Precision Engineering, 2017, 25(1): 107-114. (in Chinese)

    [10] Zhang Haochun, Ji Yu, Ma Rui, et al. Buoyant characteristics of thermal wakes discharged by underwater vehicles[J]. Ship Science and Technology, 2015, 37(7): 24-28. (in Chinese)

    [11] Wu Mengmeng. Study on the cold thermal surface features caused by wake behind a going body underwater[D]. Wuhan: Naval University of Engineering, 2010. (in Chinese)

    [12] Chen Xiong, Yang Zhihui, Han Yuge, et al. Simulation of the submarine′s wake in temperature gradient sea water[J]. Technical Acoustics, 2016, 35(3): 118-121. (in Chinese)

    [13] Lai Qingzhi, Wang Cheng′an, Tan Jianyu, et al. Study of buoyancy trajectory of thermal wake and temperature characteristics on sea surface based on 3-D dynamic meshing technique[J]. Ship Science and Technology, 2018, 40(3): 8-13. (in Chinese)

    [14] Dai Tianqi, Yao Shiwei, Wei Zhiguo. Numerical simulation of thermal wake buoyant law based on dynamic meshing technique[J]. Ship Science and Technology, 2015, 37(5): 86-89. (in Chinese)

    Wang Ping, Du Yongcheng, Yang Li, Jin Fangyuan. Numerical and experimental study on the buoyancy and diffusion laws of submarine thermal wake based on overset grid technology and VOF model[J]. Infrared and Laser Engineering, 2019, 48(4): 404002
    Download Citation