High-velocity projectile penetration test and theoretical calculation of pseudo fluid penetration of calcareous sand

IF 5 Q1 ENGINEERING, MULTIDISCIPLINARY
Wei Guo , Yanyu Qiu , Mingyang Wang
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引用次数: 0

Abstract

To explore the penetration resistance of calcareous sand media, penetration tests have been conducted in the velocity range of 200–1000 m/s using conical-nosed projectiles with a diameter of 14.5 mm. Further, a pseudo fluid penetration model applicable to the penetration of rigid projectiles in sand media is established according to the approximate flow of compacted sand in the adjacent zone of penetration. The correlation between the impedance function of projectile-target interaction and the internal friction features of pseudo fluid is clarified, and the effects of sand density, cone angle of nose-shaped projectile, and dynamic hardness on the penetration depth are investigated. The results verify the feasibility, wide applicability, and much lower error (with respect to the experimental data) of the proposed model as compared to the Slepyan hydrodynamic model.
钙质砂伪流体高速侵彻试验及理论计算
为探讨钙质砂介质的侵彻阻力,采用直径为14.5 mm的锥形弹头,在200-1000 m/s的速度范围内进行了侵彻试验。在此基础上,根据临近侵彻区压实砂的近似流动,建立了适用于刚性弹丸在砂土介质中侵彻的伪流体侵彻模型。阐明了弹靶相互作用阻抗函数与伪流体内摩擦特性的关系,研究了砂密度、鼻型弹锥角、动硬度对侵彻深度的影响。结果表明,与Slepyan水动力模型相比,该模型具有可行性、适用性广、误差小等优点。
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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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