Effects of an Explosion-Proof Wall on Shock Wave Parameters and Safe Area Prediction

被引:0
|
作者
Xiao, Dingjun [1 ,2 ]
Yang, Wentao [2 ,3 ]
Lin, Moujin [2 ]
Lu, Xiaoming [4 ]
Liu, Kaide [1 ]
Zhang, Jin [2 ]
Li, Xiaoshuang [2 ]
Long, Yu [2 ]
机构
[1] Xijing Univ, Shaanxi Key Lab Safety & Durabil Concrete Struct, Xian 710123, Peoples R China
[2] Southwest Univ Sci & Technol, Sch Environm & Resource, Mianyang 621010, Peoples R China
[3] Chengdu Inst Urban Safety & Emergency Management, Chengdu 610011, Peoples R China
[4] Mech Engn Res Inst, Xian 710123, Peoples R China
关键词
air explosion; diffraction angle; overpressure; impulse; dynamic pressure; overpressure prediction; safe area;
D O I
10.3390/su151411164
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
To study the influences of an explosion-proof wall on shock wave parameters, an air explosion protection experiment was performed, the time history of shock wave pressure at different positions before and after the explosion-proof wall was established, and the characteristics of shock wave impulse and dynamic pressure were analyzed. The explosion-proof working conditions of five different diffraction angles were simulated and analyzed using Autodyn software(2019R3). Results indicated the following findings. The explosion-proof wall exerted an evident attenuation effect on the explosion shock wave, but considerable pressure still existed at the top of the explosion-proof wall. Overpressure behind the wall initially increased and then decreased. The larger the diffraction angle, the faster the attenuation speed of the diffraction overpressure of the shock wave in the air behind the wall. The history curve of shock wave pressure exhibited an evident bimodal structure. The shock wave diffraction of the wall made the shock wave bimodal structure behind the wall more prominent. The characteristics of the bimodal structure behind the wall (the interval time of overpressure peak & UDelta;t was less than the normal phase time of the diffracted shock wave T+) caused the shock wave impulse to stack rapidly, significantly improving its damage capability. The peak value of dynamic pressure on the oncoming surface was approximately two times the peak value of overpressure, and the inertia of air molecules resulted in a longer positive duration of dynamic pressure than overpressure. The maximum overpressure on the ground behind the explosion-proof wall appeared at approximately two times the height of the explosion-proof wall, while the maximum overpressure in the air behind the explosion-proof wall appeared at approximately one times the height of the explosion-proof wall. The relatively safe areas on the ground and in the air behind the wall were approximately 4-4.5 times and 3.5-4 times the height of the explosion-proof wall, respectively.
引用
收藏
页数:24
相关论文
共 50 条
  • [41] Area change effects on shock wave propagation
    Dowse, J.
    Skews, B.
    SHOCK WAVES, 2014, 24 (04) : 365 - 373
  • [42] A METHOD OF INVESTIGATING THE STATE OF EXPLOSION PRODUCTS BY MEASURING SHOCK-WAVE PARAMETERS
    TSUKHANOVA, OA
    SOVIET PHYSICS-TECHNICAL PHYSICS, 1960, 5 (02): : 219 - 224
  • [43] Prediction method of shock wave peak overpressure generated by air explosion of rocket
    Wang Y.
    Wang H.
    Cui C.
    Duan Y.
    Zhao B.
    Beijing Hangkong Hangtian Daxue Xuebao/Journal of Beijing University of Aeronautics and Astronautics, 2020, 46 (07): : 1371 - 1378
  • [44] Coupling effects of foam ceramics on the flame and shock wave of gas explosion
    Zhang, Jinfeng
    Sun, Zhongqiang
    Zheng, Yanmin
    Su, Zhaogui
    SAFETY SCIENCE, 2012, 50 (04) : 797 - 800
  • [45] Damage effects analysis for explosion shock wave based on energy spectrum
    Li, Li-Ping
    Kong, De-Ren
    Su, Jian-Jun
    Wang, Fang
    Shang, Fei
    Zhendong yu Chongji/Journal of Vibration and Shock, 2015, 34 (21): : 71 - 75
  • [46] The Simulation Analysis on the Numerical Destructiveness of different wall materials Under the Explosion Overpressure Shock Wave
    Qing, Jiang Yong
    Bing, Wang Jia
    Chao, Liu Tie
    Hai, Li Cun
    2015 FIFTH INTERNATIONAL CONFERENCE ON INSTRUMENTATION AND MEASUREMENT, COMPUTER, COMMUNICATION AND CONTROL (IMCCC), 2015, : 20 - 24
  • [47] Prediction Model of Two Underwater Explosion Sources’ Explosion Shock Wave Peak Pressure Based on BP Neural Network
    Ma T.
    Long J.
    Liu Y.
    Beijing Ligong Daxue Xuebao/Transaction of Beijing Institute of Technology, 2024, 44 (03): : 260 - 269
  • [48] The influence of boundaries on the shock wave propagation characteristics and cavitation effects of underwater explosion
    Wang, Gaohui
    Zhang, Sherong
    Lu, Wenbo
    Shuili Xuebao/Journal of Hydraulic Engineering, 2015, 46 (08): : 999 - 1007
  • [49] Effects of circuit inductance on electrical and shock wave characteristics at underwater wire explosion
    Yin, Guofeng
    Shi, Huantong
    Fan, Yunfei
    Wu, Jian
    Li, Xingwen
    Qiu, Aici
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2020, 53 (19)
  • [50] THE EFFECTS OF AREA CONTRACTION ON SHOCK WAVE STRENGTH AND PEAK PRESSURE IN SHOCK TUBE
    Mohsen, A. M.
    Yusoff, M. Z.
    Al-Falahi, A.
    Shuaib, N. H.
    INTERNATIONAL JOURNAL OF AUTOMOTIVE AND MECHANICAL ENGINEERING, 2012, 5 : 587 - 596