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[2] | SHI Yongxiang, SHI Dongmei, LI Wenzhao, YU Zhitong, SHANG Chunming. Study on JH-2 model of the ZrCuNiAlAg bulk amorphous alloy[J]. Explosion And Shock Waves, 2019, 39(9): 093104. doi: 10.11883/bzycj-2018-0221 |
[3] | Wang Qifan, Shi Shaoqing, Wang Zheng, Sun Jianhu, Chu Zhaojun. Experimental study on penetration-resistance characteristics of honeycomb shelter[J]. Explosion And Shock Waves, 2016, 36(2): 253-258. doi: 10.11883/1001-1455(2016)02-0253-06 |
[4] | Qiang Hongfu, Fan Shujia, Chen Fuzhen, Liu Hu. Numerical simulation on penetration of concrete target by shaped charge jet with SPH method[J]. Explosion And Shock Waves, 2016, 36(4): 516-524. doi: 10.11883/1001-1455(2016)04-0516-09 |
[5] | Wang Yan, Ma Tie-hua, Xu Peng, Fan Jin-biao. Identification of penetration layers based on Choi-Williams distribution[J]. Explosion And Shock Waves, 2015, 35(5): 758-762. doi: 10.11883/1001-1455(2015)05-0758-05 |
[6] | Liu Jian-cheng, Huang Feng-lei, Pi Ai-guo, Chai Chuan-guo, Wu Hai-jun. On enhanced penetration performance of modified nose projectiles[J]. Explosion And Shock Waves, 2014, 34(4): 409-414. doi: 10.11883/1001-1455(2014)04-0409-06 |
[7] | XuWei-fang, ZhangFang-ju, ChenYu-ze, . Experimentalstudyonpenetrationresponsesofthinconcretetargets[J]. Explosion And Shock Waves, 2013, 33(2): 169-174. doi: 10.11883/1001-1455(2013)02-0169-06 |
[8] | Lin Hua-ling, Ding Yu-qing, Tang Wen-hui. Factors influencing numerical simulation of concrete penetration[J]. Explosion And Shock Waves, 2013, 33(4): 425-429. doi: 10.11883/1001-1455(2013)04-0425-05 |
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[12] | YANG Zhen-qi, PANG Bao-jun, WANG Li-wen, CHI Run-qiang. JH-2modelanditsapplicationtonumericalsimulationonAl2O3ceramic
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[20] | ZHANG De-hai, ZHU Fu-sheng, XING Ji-bo. Application of beam-particle model to the prolem of concrete penetration[J]. Explosion And Shock Waves, 2005, 25(1): 85-89. doi: 10.11883/1001-1455(2005)01-0085-05 |