[1] | HE Yong, XU Tianhan, ZHANG Xiaohan, SUI Yaguang, XING Haozhe. Analysis of the size effect on the penetration depth of earth-penetrating projectiles and practical calculating formula[J]. Explosion And Shock Waves, 2025, 45(4): 043301. doi: 10.11883/bzycj-2024-0248 |
[2] | YANG Yaozong, KONG Xiangzhen, TANG Junjie, FANG Qin. Numerical simulation and engineering design method for prefabricated concrete bursting layer subjected to projectile penetration[J]. Explosion And Shock Waves. doi: 10.11883/bzycj-2024-0279 |
[3] | NIE Xiaodong, WU Xiangyun, LONG Zhilin, YI Zhi, JI Nan, GUO Ruiqi. Research on penetration depth of projectiles into ultra-high performance concrete targets[J]. Explosion And Shock Waves, 2024, 44(2): 023302. doi: 10.11883/bzycj-2022-0282 |
[4] | QIAN Bingwen, ZHOU Gang, LI Mingrui, CHEN Chunlin, GAO Pengfei, SHEN Zikai, MA Kun. Influences of material properties of a projectile on hypervelocity penetration depth[J]. Explosion And Shock Waves, 2024, 44(10): 103302. doi: 10.11883/bzycj-2022-0310 |
[5] | HONG Zhijie, YANG Yaozong, KONG Xiangzhen, FANG Qin. Practical engineering calculation models for rigid projectile penetrating and perforating into concrete target[J]. Explosion And Shock Waves, 2023, 43(8): 083302. doi: 10.11883/bzycj-2022-0482 |
[6] | LIU Junwei, ZHANG Xianfeng, LIU Chuang, CHEN Haihua, WANG Jipeng, XIONG Wei. Study on mass erosion model of projectile penetrating concrete at high speed considering variation of friction coefficient[J]. Explosion And Shock Waves, 2021, 41(8): 083301. doi: 10.11883/bzycj-2020-0250 |
[7] | CHEN Beibei, ZHANG Xianfeng, DENG Jiajie, ZHANG Jian, BAO Kuo, TAN Mengting. Residual penetration depth of a projectile into YAG transparent ceramic/glass[J]. Explosion And Shock Waves, 2020, 40(8): 083301. doi: 10.11883/bzycj-2019-0372 |
[8] | DUAN Zhuoping, LI Shurui, MA Zhaofang, OU Zhuocheng, HUANG Fenglei. Analytical model for attitude deflection of rigid projectile during oblique perforation of concrete targets[J]. Explosion And Shock Waves, 2019, 39(6): 063302. doi: 10.11883/bzycj-2018-0411 |
[9] | CHENG Xiangli, ZHAO Hui, LI Linchuan, YE Haifu. Projectile target response model for normal penetration process based on mechanical vibration theory[J]. Explosion And Shock Waves, 2019, 39(9): 093301. doi: 10.11883/bzycj-2018-0242 |
[10] | XING Boyang, LIU Rongzhong, ZHANG Dongjiang, CHEN Liang, HOU Yunhui, GUO Rui. A mass model for behind-armor debris generated by normal penetration of a variable cross-section explosively-formed projectile into an armor steel plate[J]. Explosion And Shock Waves, 2019, 39(7): 074202. doi: 10.11883/bzycj-2018-0187 |
[11] | WU Qunbiao, SHEN Peihui, FANG Haifeng, FAN Jihua, CAI Lihua. Simplified model of pre-composited rod's normal penetration into steel target[J]. Explosion And Shock Waves, 2019, 39(1): 013302. doi: 10.11883/bzycj-2017-0287 |
[12] | WU Cheng, SHEN Xiaojun, WANG Xiaoming, YAO Wenjin. Numerical simulation on anti-penetration and penetration depth model of mesoscale concrete target[J]. Explosion And Shock Waves, 2018, 38(6): 1364-1371. doi: 10.11883/bzycj-2017-0123 |
[13] | Li Jie, Li Meng-shen, Li Hong, Shi Cun-cheng. Numerical modeling of projectile penetration into dry sand[J]. Explosion And Shock Waves, 2015, 35(5): 633-640. doi: 10.11883/1001-1455(2015)05-0633-08 |
[14] | Chai Chuan-guo, Pi Ai-guo, Wu Hai-jun, Huang Feng-lei. A calculation of penetration resistance during cratering for ogive-nose projectile into concrete[J]. Explosion And Shock Waves, 2014, 34(5): 630-635. doi: 10.11883/1001-1455(2014)05-0630-06 |
[15] | CHEN Wei, WANG Ming-yang, GU Lei-yu. Calculation of oblique penetration depth of projectiles into an intrinsic friction medium[J]. Explosion And Shock Waves, 2008, 28(6): 521-526. doi: 10.11883/1001-1455(2008)06-0521-06 |
[16] | ZHOU Ning, REN Hui-qi, SHEN Zhao-wu, HE Xiang, LIU Rui-zhao, WU Biao. An engineering analytical model for projectiles to penetrate into semi-infinite reinforced concrete targets[J]. Explosion And Shock Waves, 2007, 27(6): 529-534. doi: 10.11883/1001-1455(2007)06-0529-06 |