Studies on the smoke dispersion when tear gas grenades exploded in different spaces
DOI:
https://doi.org/10.54097/hset.v43i.7459Keywords:
Tear gas, smoke, dispersion, space.Abstract
Tear gas is a widespread non-lethal weapon, but there is very little research on its non-lethal effectiveness at different scales of space, environment, and wind speed, which leads to no scientific guidance on the number of tear gas canisters to be used in practical applications. The effect of tear gas smoke released in different space sizes, environmental conditions, and obstacles was studied in this paper using fluent software. The results show that different spaces, media, and obstacles have different effects on smoke diffusion. Tear gas canisters in different spaces show that both are spread outward in the form of point sources. The smoke spreads outward on sunny days and spreads at a higher height on cloudy days. It has a particular guiding significance for tear gas canisters in practical applications.
Downloads
References
TankFeng, WuYoulan. A Smoke Simulation Algorithm Based on Procedural Textur [J]. JOURNAL OF SOOCHOW UNIVERSITY (ENGINEERING SCIENCE EDITION), 2012, 32 (01): 15 - 19.
FanNaimei, MaJunxia. Simulation of smoke and explosion based on particle system [J]. JOURNAL OF ZHENG ZHOU UNIVERSITY OF LIGHT INDUSTRY (NaturalScience), 2009, 24 (05): 77 - 80.
ChenJiangang, XuShouxiang, HuangGuowei. Explosion Smoke Simulation Based on Particle System[J]. JISUANJI YU XIANDAIHUA. 2013, (07): 123 - 126.
WangZhigang, GuoSanxue. Simulation of Non-lethal Efficiency of Tear Bomb Aerosol Smoke Based on Gaussian Diffusion Model [J]. Chinese Journal of Energetic Material, 2019, 27 (02): 113 - 118.
Yang Q. Real-time simulation of 3d smoke based on navier-stokes equation [J]. WSEAS Transactions on Computers, 2009, 8 (1): 103 - 112.
Selle A, Rasmussen N, Fedkiw R. A vortex particle method for smoke, water and explosions [M]. ACM SIGGRAPH 2005 Papers. 2005: 910 - 914.
Rasmussen N, Nguyen D Q, Geiger W, et al. Smoke simulation for large scale phenomena [M]. ACM SIGGRAPH 2003 Papers. 2003: 703 - 707.
ZhuChenguang, PanGongpei, GuanHua, et al. Initial Flow Ability of Smoke Cloud Forming [J]. Chinese Journal of Energetic Material, 2007, (05): 540 - 543.
HeFan, HeKaiKai, HuangDong, et al. Analysis of the Effect of Wind on Smoke Spread Properties of a Type Explosive Tear-Gas Grenade [J]. Journal of Ordnance Engineering College, 2016, 28 (05): 25 - 29.
Gao Y, Li C-F, Hu S-M, et al. Simulating Gaseous Fluids with Low and High Speeds [J]. Computer Graphics Forum, 2009, 28 (7): 1845 - 1852.
Kwan-Liu M, Rosendale J V, Vermeer W. 3D shock wave visualization on unstructured grids [C]. Proceedings of 1996 Symposium on Volume Visualization, 1996: 87 - 94.
SongZibiao, LiuDaizhi, WangHongxia. Mathematical model and numerical simulation of particles dispersion with gravity [J]. ACTA AERODYNAMICA SINICA, 2010, 28 (02): 209 - 212.
WuHua, ZhuangHongyi, ZhaoFadong, et al. Tear Smoke Movement Simulation Design and Research [J]. Computer Simulation, 2014, 31 (06): 20 - 23+437.
OUYANG ZHANG Qian-tao2, ZhaoYan,. Simulation Study on Interior Lachrymator Diffusion under the Condition of Natural Ventilation [J]. INITIATORS & PYROTECHNICS, 2015, (04): 9 - 12.
Downloads
Published
Issue
Section
License

This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License.







