Gas Bubble Shape and Shock Wave Propagation Process of Underwater Detonation

被引:0
|
作者
Hou Z.-W. [1 ]
Weng C.-S. [1 ]
Jia F. [2 ]
Huang X.-L. [1 ]
Wang C.-W. [1 ]
机构
[1] National Key Laboratory of Transient Physics, Nanjing University of Science and Technology, Nanjing
[2] China North Industries Group No. 304, Changzhi
来源
关键词
Gas bubble; Pulse detonation engine; Shock wave; Two-phase flow; Underwater gas jet;
D O I
10.13675/j.cnki.tjjs.200390
中图分类号
学科分类号
摘要
An underwater detonation gas experiment system was established to explore the problem of detonation gas jet formed in the underwater working process of pulse detonation engine (PDE). The development and changing process of gas bubble in the first detonation cycle of PDE was experimentally investigated. An underwater jet model of PDE based on the gas-liquid two-phase two-fluid model was established and the space-time conservation element and solution element (CE/SE) method was employed to numerically simulate the propagation and attenuation process of shock wave formed by the interaction of detonation wave and water. The results show that the gas bubble expands into the shape of 'pea' with different development laws between the axial and radial dimensions as it is blocked by the external water environment when the gas jet hits the water surface. The gas bubble has always maintained high pressure due to the gas-water impact and the restricted gas diffusion meanwhile. The leading shock wave propagates much faster than the gas bubble development, and pressure of leading shock wave quickly decays to the ambient pressure after separating from the gas bubble. Pressure of the leading shock wave attenuates most severely in the axial direction, which results in a change in its intensity directivity. The reflected shock wave formed by reflection of the leading shock wave at the gas-liquid interface colliding with the intercepting shock wave formed by the subsequent airflow results in the return stroke, which causes a high pressure peak near the nozzle. © 2021, Editorial Department of Journal of Propulsion Technology. All right reserved.
引用
收藏
页码:755 / 764
页数:9
相关论文
共 50 条
  • [21] A Simple Correlation for Assessment of the Shock Wave Energy in Underwater Detonation
    Keshavarz, Mohammad Hossein
    Bagheri, Vahid
    [J]. ZEITSCHRIFT FUR ANORGANISCHE UND ALLGEMEINE CHEMIE, 2019, 645 (18-19): : 1146 - 1152
  • [22] Bubble dynamics and pressure field characteristics of underwater detonation gas jet generated by a detonation tube
    Liu, Wei
    Li, Ning
    Weng, Chun-sheng
    Huang, Xiao-long
    Kang, Yang
    [J]. PHYSICS OF FLUIDS, 2021, 33 (02)
  • [23] Numerical simulation on propagation process of detonation wave in detonation combustion chamber
    He, Liming
    Yan, Chuanjun
    Fan, Wei
    Wang, Jianfeng
    [J]. Tuijin Jishu/Journal of Propulsion Technology, 1998, 19 (06): : 70 - 73
  • [24] Shock wave in a gas–liquid bubble medium
    E. E. Son
    A. V. Dyrenkov
    O. Kyung
    K. E. Son
    V. Yu. Velikodny
    [J]. High Temperature, 2015, 53 : 882 - 886
  • [25] Shock wave and bubble characteristics of underwater array explosion of charges
    HongWei Hu
    Pu Song
    Shuangfeng Guo
    Haiyun Feng
    Daokui Li
    [J]. Defence Technology, 2022, 18 (08) : 1445 - 1453
  • [26] Shock wave and bubble characteristics of underwater array explosion of charges
    Hong-Wei Hu
    Pu Song
    Shuang-feng Guo
    Hai-yun Feng
    Dao-kui Li
    [J]. Defence Technology, 2022, (08) : 1445 - 1453
  • [27] Shock wave and bubble characteristics of underwater array explosion of charges
    Hu, Hong-Wei
    Song, Pu
    Guo, Shuang-feng
    Feng, Hai-yun
    Li, Dao-kui
    [J]. DEFENCE TECHNOLOGY, 2022, 18 (08) : 1445 - 1453
  • [28] Visualization of shock wave propagation due to underwater explosion
    Jayabal Rajasekar
    Tae Ho Kim
    Heuy Dong Kim
    [J]. Journal of Visualization, 2020, 23 : 825 - 837
  • [29] Visualization of shock wave propagation due to underwater explosion
    Rajasekar, Jayabal
    Kim, Tae Ho
    Kim, Heuy Dong
    [J]. JOURNAL OF VISUALIZATION, 2020, 23 (05) : 825 - 837
  • [30] A Deburring Process Performed by Underwater Shock Wave
    Shiramoto, Kazumasa
    Shimizu, Junki
    Kobayashi, Akiyoshi
    Fujita, Masahiro
    [J]. EXPLOSION, SHOCK WAVE AND HIGH-ENERGY REACTION PHENOMENA, 2011, 673 : 271 - +