Volume 35 Issue 1
Feb.  2015
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Hou Hai-liang, Zhang Cheng-liang, Li Mao, Hu Nian-ming, Zhu Xi. Damage characteristics of sandwich bulkhead under the impact of shock and high-velocity fragments[J]. Explosion And Shock Waves, 2015, 35(1): 116-123. doi: 10.11883/1001-1455(2015)01-0116-08
Citation: Hou Hai-liang, Zhang Cheng-liang, Li Mao, Hu Nian-ming, Zhu Xi. Damage characteristics of sandwich bulkhead under the impact of shock and high-velocity fragments[J]. Explosion And Shock Waves, 2015, 35(1): 116-123. doi: 10.11883/1001-1455(2015)01-0116-08

Damage characteristics of sandwich bulkhead under the impact of shock and high-velocity fragments

doi: 10.11883/1001-1455(2015)01-0116-08
  • Received Date: 2013-04-11
  • Rev Recd Date: 2014-09-06
  • Publish Date: 2015-01-25
  • In order to explore the design method of sandwich bulkhead subjected to the close blast load of missile-warhead, experiments were carried out to investigate the damage effect of sandwich bulkhead subjected to combined impact of shock and fragments using cast TNT and prefabricated fragments. The combined impact load of the shock and high-velocity fragments were analyzed. The failure modes of surface plate and sandwich core of the bulkhead were pointed out, and the protective mechanism of sandwich bulkhead were analyzed. Results show that the impact energy acted on the structure by the prefabricated fragments is far larger than that of shock under the close blast of cast TNT and prefabricated fragments, and should be the main load in the design of the bulkhead. Under combined impact of close-impact waves and high-velocity fragments, the deformation and failure modes of the front plate is large deformation, combined with large amounts of perforation holes, including large shearing plug caused by the dense fragments, perforation and craters caused by individual fragments. Large deformation is the main failure modes of back plate. Al2O3 tiles are badly fragmented. Part of the tile fragments splashed reversely and impact on the front plate. Fiber-reinforced composite laminates will generate large deformation including damage like fibers fracture and matrix cracking. In the design of sandwich bulkhead, the front plate should avoid transverse shearing failure and collision on the bullet-resistant core, the bullet-resistant core should avoid perforation failure, and the back plate should have enough strength to absorb the residual impact energy.
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  • [1]
    何翔, 庞伟宾, 曲建波, 等.防护门在空气冲击波和破片作用下的破坏[J].爆炸与冲击, 2004, 24(5): 475-479.

    He Xiang, Pang Wei-bin, Qu Jian-bo, et al. Protective door damaged by air shock wave and fragment arisen from explosion in prototype tunnel[J]. Explosion and Shock Waves, 2004, 24(5): 475-479.
    [2]
    Rudrapatna N S, Vaziri R, Olson M D. Deformation and failure of blast-loaded square plates[J]. International Journal of Impact Engineering, 1999, 22(4): 449-67. https://www.sciencedirect.com/science/article/pii/S0734743X98000463
    [3]
    Chung Kim Yuen S, Nurick G N. Experimental and numerical studies on the response of quadrangular stiffened plates. Part I: Subjected to uniform blast load[J]. International Journal of Impact Engineering, 2005, 31(1): 55-83. https://www.sciencedirect.com/science/article/pii/S0734743X03001076
    [4]
    Langdon G S, Chung Kim Yuen S, Nurick G N. Experimental and numerical studies on the response of quadrangular stiffened plates. Part II: Localized blast loading[J]. International Journal of Impact Engineering, 2005, 31(2): 85-111. https://www.sciencedirect.com/science/article/pii/S0734743X03001088
    [5]
    侯海量.大型舰艇水上舷侧结构抗毁伤机理研究[D].武汉: 海军工程大学, 2006.
    [6]
    李伟, 朱锡, 梅志远, 等.战斗部舱内爆炸对舱室结构毁伤的试验研究[J].舰船科学技术, 2009, 31(3): 34-37.

    Li Wei, Zhu Xi, Mei Zhi-yuan, et al. Experimental studies on damage effect of missile warhead on cabin's structure under internal explosion[J]. Ship Science and Technology, 2009, 31(3): 34-37.
    [7]
    Qian L, Qu M, Feng G.Study on terminal effects of dense fragment cluster impact on armor plate.Part I:Analytical model[J].International Journal of Impact Engineering, 2005, 31(6):755-767.
    [8]
    Qian L, Qu M, Feng G. Study on terminal effects of dense fragment cluster impact on armor plate. Part II: Numerical simulations[J]. International Journal of Impact Engineering, 2005, 31(6): 769-780.
    [9]
    陈长海, 朱锡, 侯海量, 等.近距空爆载荷作用下双层防爆舱壁结构抗爆性能仿真分析[J].海军工程大学学报, 2012, 24(3): 26-33.

    Chen Chang-hai, Zhu Xi, Hou Hai-liang, et al. Numerical analysis of blast resistance of double-layer bulkhead structures subjected to close-range air blast[J]. Journal of Naval University of Engineering, 2012, 24(3): 26-33.
    [10]
    Nurick G N, Langdon G S, Chi Y, et al. Behaviour of sandwich panels subjected to intense air blast-Part 1: Experiments[J]. Composite Structures, 2009, 91(4): 433-441. https://www.sciencedirect.com/science/article/pii/S0263822309001093
    [11]
    Karagiozov D, Nurick G N, Langdon G S. Behavior of sandwich panels subject to intense air blasts-Part 2: Numerical simulation[J]. Composite Structures, 2009, 91(4): 442-450.
    [12]
    王晓强, 朱锡, 梅志远, 等.超高分子量聚乙烯纤维增强层合厚板抗弹性能试验研究[J].爆炸与冲击, 2009, 29(1): 29-34.

    Wang Xiao-qiang, Zhu Xi, Mei Zhi-yuan, et al. Ballistic performances of ultra-high molecular weight polyethylene fiber-reinforced thick laminated plates[J]. Explosion and Shock Waves, 2009, 29(1): 29-34.
    [13]
    梅志远, 朱锡, 张立军.FRC层合板抗高速冲击机理研究[J].复合材料学报, 2006, 23(2):143-149.

    Mei Zhi-yuan, Zhu Xi, Zhang Li-jun. Ballistic protective mechanism of FRC laminates[J]. Acta Material Composite Sinic, 2006, 23(2): 143-149.
    [14]
    侯海量, 朱锡, 阚于龙.轻型陶瓷复合装甲结构抗弹性能研究进展[J].兵工学报, 2008, 29(2): 208-216.

    Hou Hai-liang, Zhu Xi, Kan Yu-long. Advance of ballistic performance of light ceramic composite armour under the impact of projectile[J]. Acta Armamentarii, 2008, 29(2): 208-216.
    [15]
    张成亮, 朱锡, 侯海量, 等.近距空爆载荷下抗爆舱壁变形破坏模式实验研究[J].振动与冲击, 2014, 33(11): 33-37.

    Zhang Cheng-liang, Zhu Xi, Hou Hai-liang, et al. Model tests for deformation and destruction modes of a blast-resistant bulkhead under near distance explosion[J]. Journal of Vibration and Shock, 2014, 33(11): 33-37.
    [16]
    孙业斌.爆炸作用与装药设计[M].北京: 国防工业出版社, 1987.
    [17]
    吴有生, 彭兴宁, 赵本立.爆炸载荷作用下舰船板架的变形与破损[J].中国造船, 1995(4): 55-61.

    Wu You-sheng, Peng Xing-ning, Zhao Ben-li. Plastic deformation and damage of naval panels subjected to explosion loading[J]. Shipbuilding of China, 1995(4): 55-61.
    [18]
    侯海量, 朱锡, 李伟.轻型陶瓷/金属复合装甲抗弹机理研究[J].兵工学报, 2013, 34(1): 105-114.

    Hou Hai-liang, Zhu Xi, Li Wei. Investigation on bullet proof mechanism of light ceramic/steel armor[J]. Acta Armamentarii, 2013, 34(1): 105-114.
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