爆破破片复合载荷作用下充液圆柱壳结构动力响应研究

IF 5 Q1 ENGINEERING, MULTIDISCIPLINARY
Zhujie Zhao , Hailiang Hou , Dian Li , Xiaowei Wu , Yongqing Li , Zhenghan Chen , Linzhi Wu
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引用次数: 0

摘要

设计了四种充液圆柱壳结构,研究其对爆炸冲击波和高速破片的防护性能。采用裸装药和装药驱动预制破片对各种充液圆柱壳结构在爆炸冲击波和爆炸破片复合载荷作用下的损伤进行了研究。对不同充液方式下结构的变形、液体介质的运动、压力波的传播特性进行了数值计算和理论分析。结果表明,填充方式影响结构的防爆性能和吸能性能。外填充法减少了结构变形,内填充法增加了损伤效果。间隙内填充法提高了结构的吸能效率。充液圆柱壳结构的压力波载荷随充液方式的不同而不同。爆炸冲击波和高速破片对充液圆柱壳结构的损伤增强作用与内装液层的厚度有关。柱壳内表面的比冲与柱壳结构的径向变形呈正相关,外液层限制了柱壳结构的径向变形。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigation on dynamic response of liquid-filled cylindrical shell structures under the action of combined blast and fragments loading
This study designs four types of liquid-filled cylindrical shell structures to investigate their protection characteristics against explosive shock waves and high-speed fragments. Bare charge and charge-driven prefabricated fragments are employed to examine the damage under blast shock waves and combined blast and fragments loading on various liquid-filled cylindrical shell structures. The test results are compared to numerical calculations and theoretical analysis for the structure's deformation, the liquid medium's movement, and the pressure waves' propagation characteristics under different liquid-filling methods. The results showed that the filling method influences the blast protection and the structure's energy absorption performance. The external filling method reduces the structural deformation, and the internal filling method increases the damage effect. The gapped internal filling method improves the structure's energy absorption efficiency. The pressure wave loading on the liquid-filled cylindrical shell structure differs depending on filling methods. Explosive shock waves and high-speed fragments show a damage enhancement effect on the liquid-filled cylindrical shell structure, depending on the thickness of the internal liquid container layer. The specific impulse on the inner surface of the cylindrical shell positively correlates to the radial deformation of the cylindrical shell structure, and the external liquid layer limits the radial structural deformation.
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来源期刊
Defence Technology(防务技术)
Defence Technology(防务技术) Mechanical Engineering, Control and Systems Engineering, Industrial and Manufacturing Engineering
CiteScore
8.70
自引率
0.00%
发文量
728
审稿时长
25 days
期刊介绍: Defence Technology, a peer reviewed journal, is published monthly and aims to become the best international academic exchange platform for the research related to defence technology. It publishes original research papers having direct bearing on defence, with a balanced coverage on analytical, experimental, numerical simulation and applied investigations. It covers various disciplines of science, technology and engineering.
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