防务技术2024,Vol.39Issue(9) :203-216.DOI:10.1016/j.dt.2024.05.003

Constitutive model of viscoelastic dynamic damage for the material of gas obturator in modular-charge howitzer

Zhonggang Li Longmiao Chen Yifan Li Yufeng Jia Quan Zhang
防务技术2024,Vol.39Issue(9) :203-216.DOI:10.1016/j.dt.2024.05.003

Constitutive model of viscoelastic dynamic damage for the material of gas obturator in modular-charge howitzer

Zhonggang Li 1Longmiao Chen 1Yifan Li 1Yufeng Jia 2Quan Zhang3
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作者信息

  • 1. School of Mechanical Engineering,Nanjing University of Science and Technology,Nanjing 210094,China
  • 2. Technology Center,Shanxi North Machine-building Co.,Ltd.,Taiyuan 030009,China
  • 3. Research and Development Department,Kelong New Material Technology Co.,Ltd.,Xianyang 712000,China
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Abstract

In order to investigate the mechanical response behavior of the gas obturator of the breech mechanism,made of polychloroprene rubber(PCR),uniaxial compression experiments were carried out by using a universal testing machine and a split Hopkinson pressure bar(SHPB),obtaining stress-strain responses at different temperatures and strain rates.The results revealed that,in comparison to other polymers,the gas obturator material exhibited inconspicuous strain softening and hardening effects;meanwhile,the mechanical response was more affected by the strain rate than by temperature.Subsequently,a succinct viscoelastic damage constitutive model was developed based on the ZWT model,including ten unde-termined parameters,formulated with incorporating three parallel components to capture the visco-elastic response at high strain rate and further enhanced by integrating a three-parameter Weibull function to describe the damage.Compared to the ZWT model,the modified model could effectively describe the mechanical response behavior of the gas obturator material at high strain rates.This research laid a theoretical foundation for further investigation into the influence of chamber sealing issues on artillery firing.

Key words

Breech mechanism/Gas obturator/Polychloroprene rubber/Constitutive model/Strain rate/Damage

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基金项目

National Natural Science Foundation of China(U2141246)

出版年

2024
防务技术
中国兵工学会

防务技术

CSTPCD
影响因子:0.358
ISSN:2214-9147
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