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Effect of Nonsmooth Nose Surface of the Projectile on Penetration Using DEM Simulation
Author(s) -
Jing Han,
Dong Li,
Wenhao Wang,
Zhigang Chen
Publication year - 2017
Publication title -
shock and vibration
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.418
H-Index - 45
eISSN - 1875-9203
pISSN - 1070-9622
DOI - 10.1155/2017/5624534
Subject(s) - projectile , penetration (warfare) , mechanics , materials science , kinetic energy , compaction , coefficient of friction , curvature , regular polygon , discrete element method , penetration depth , structural engineering , composite material , geometry , engineering , physics , mathematics , classical mechanics , optics , operations research , metallurgy
The nonsmooth body surface of the reptile in nature plays an important role in reduction of resistance and friction when it lives in a soil environment. To consider whether it was feasible for improving the performance of penetrating projectile we investigated the influence of the convex as one of nonsmooth surfaces for the nose of projectile. A numerical simulation study of the projectile against the concrete target was developed based on the discrete element method (DEM). The results show that the convex nose surface of the projectile is beneficial for reducing the penetration resistance greatly, which is also validated by the experiments. Compared to the traditional smooth nose structure, the main reason of difference is due to the local contact normal pressure, which increases dramatically due to the abrupt change of curvature caused by the convex at the same condition. Accordingly, the broken particles of the concrete target obtain more kinetic energy and their average radial flow velocities will drastically increase simultaneously, which is in favor of decreasing the interface friction and the compaction density of concrete target around the nose of projectile

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