[1] 王明洋, 邱艳宇, 李杰, 等. 超高速长杆弹对岩石侵彻, 地冲击效应理论与实验研究 [J]. 岩石力学与工程学报, 2018, 37(3): 564–572.

WANG Mingyang, QIU Yanyu, LI Jie, et al. Theoretical and experimental study on penetration in rock and ground impact effects of long rod projectiles of hyper speed [J]. Chinese Journal of Rock Mechanics and Engineering, 2018, 37(3): 564–572.
[2] 李干, 宋春明, 邱艳宇, 等. 超高速弹对花岗岩侵彻深度逆减现象的理论与实验研究 [J]. 岩石力学与工程学报, 2018, 37(1): 60–66.

LI Gan, SONG Chunming, QIU Yanyu, et al. Theoretical and experimental studies on the phenomenon of reduction in penetration depth of hyper-velocity projectiles into granite [J]. Chinese Journal of Rock Mechanics and Engineering, 2018, 37(1): 60–66.
[3] 牛雯霞, 黄洁, 柯发伟, 等. 混凝土房屋结构靶的超高速撞击特性研究 [J]. 实验流体力学, 2014, 28(2): 79–84. doi: 10.11729/syltlx2014pz38

NIU Wenxia, HUANG Jie, KE Fawei, et al. Research on hypervelocity impact characteristics of concrete building structures target [J]. Journal of Experiments in Fluid Mechanics, 2014, 28(2): 79–84. doi: 10.11729/syltlx2014pz38
[4] 张浩, 张庆明. 铝弹丸超高速撞击混凝土介质冲击熔化研究 [C] // 北京力学会第20届学术年会论文集. 北京, 2014: 268−269.
[5] ANTOUN T H, GLENN L A, WALTON O R, et al. Simulation of hypervelocity penetration in limestone [J]. International Journal of Impact Engineering, 2006, 33: 45–52. doi: 10.1016/j.ijimpeng.2006.09.009
[6] 邓国强, 杨秀敏. 超高速武器对地打击效应数值仿真 [J]. 科技导报, 2015, 33(16): 65–71. doi: 10.3981/j.issn.1000-7857.2015.16.010

DENG Guoqiang, YANG Xiumin. Numerical simulation of damage effect of hypervelocity weapon on ground target [J]. Science & Technology Review, 2015, 33(16): 65–71. doi: 10.3981/j.issn.1000-7857.2015.16.010
[7] 张德志, 唐润棣, 林俊德, 等. 新型气体驱动二级轻气炮研制 [J]. 兵工学报, 2004, 25(1): 14–17. doi: 10.3321/j.issn:1000-1093.2004.01.004

ZHANG Dezhi, TANG Rundi, LIN Junde, et al. Development of a new type gas-driven two-stage light gas gun [J]. Acta Armamentarii, 2004, 25(1): 14–17. doi: 10.3321/j.issn:1000-1093.2004.01.004
[8] 王可慧. 高速弹体侵彻混凝土靶研究 [D]. 北京: 北京理工大学, 2011.
[9] 钱秉文, 周刚, 李进, 等. 钨合金弹体超高速撞击混凝土靶成坑特性研究 [J]. 北京理工大学学报, 2018, 38(10): 26–31.

QIAN Bingwen, ZHOU Gang, LI Jin, et al. Study of the crater produced by hypervelocity tungsten alloy projectile into concrete target [J]. Transactions of Beijing Institute of Technology, 2018, 38(10): 26–31.
[10] STEINBERG D J, COCHRAN S G, GUINAN M W. A constitutive model for metals applicable at high strain rate [J]. Journal of Applied Mechanics, 1989, 65(4): 1528–1533.
[11] HOLMQUIST T J, JOHNSON G R, COOK W H. A computational constitutive model for concrete subjected to large strains, high strain rates, and high pressures [C] // Proceedings of the 14th International Symposium on Ballistics. Quebec, Canada, 1993: 591−600.
[12] RIEDEL W, THOMA K, HIERMAIER S, et al. Penetration of reinforced concrete by BETA2B2500 numerical analysis using a new macroscopic concrete model for hydrocodes [C] // 9th International Symposium, Interaction of the Effects of Munitions with Structures. Berlin-Strausberg: IBMAC, 1999: 315−322.
[13] 钱秉文. 钨合金弹体超高速撞击混凝土靶实验研究和机理探索 [D]. 北京: 清华大学, 2016.
[14] EICHELBERGER R J. Experimental test of the theory of penetration by metallic jets [J]. Journal of Applied Physics, 1956, 27(1): 63–68. doi: 10.1063/1.1722198
[15] ORPHAL D L. Phase three penetration [J]. International Journal of Impact Engineering, 1997, 20(6): 601–616.