Yuhao Liu, Pu Qu, Qiang Li
School of mechanical and electrical engineering, North University of China, Taiyuan, 030051, China.
Sci Rep. 2023 Oct 18;13(1):17785. doi: 10.1038/s41598-023-45010-9.
The artillery firing process will instantly produce high-temperature and high-pressure gunpowder gas, this process will produce shock waves. The gunpowder gas has a limited effect on the projectile during the firing and ballistic after-effects period, however, it has a very obvious effect on the stability of the gun body, and the reduction of the stability of the gun body directly affects the firing accuracy and the safety of the firing personnel. Based on the method of Computational Fluid Dynamics (CFD), numerical simulation is carried out, and the structure and flow parameters of the muzzle flow field are obtained by using three-dimensional Euler's control equation, gas equation of state, and k-epsilon model, as well as dynamic mesh technology. By comparing the flow parameters of the brake before and after optimization, and analyzing the results obtained from the 8-round firing experiments, the efficiency of the optimized brake is increased by 8.2%, and the deviation between the experimental data and the simulation results is only 10.5%, which not only verifies the accuracy of the numerical simulation calculations but also verifies the optimized brake's good retracting effect. The results of the study can provide a reference for the optimization and design of the double-chamber brake.
火炮发射过程会瞬间产生高温高压的火药燃气,此过程会产生冲击波。火药燃气在发射及弹道后效期对弹丸作用有限,但对炮身稳定性影响十分明显,炮身稳定性降低直接影响射击精度及射击人员安全。基于计算流体力学(CFD)方法进行数值模拟,利用三维欧拉控制方程、气体状态方程、k-ε模型以及动网格技术获得炮口气流场的结构及流动参数。通过比较优化前后制退器的流动参数,并分析8发连射实验所得结果,优化后的制退器效率提高了8.2%,实验数据与模拟结果之间的偏差仅为10.5%,这不仅验证了数值模拟计算的准确性,也验证了优化后制退器良好的制退效果。研究结果可为双室制退器的优化设计提供参考。