TL Warren - International Journal of Impact Engineering, 2016 - Elsevier
In this article, we investigate in further detail the differences between quasi-static and dynamic penetration models based on the spherical cavity-expansion approximation for …
Y Sun, C Shi, Z Liu, D Wen - Shock and Vibration, 2015 - Wiley Online Library
With the hypervelocity kinetic weapon and hypersonic cruise missiles research projects being carried out, the damage mechanism for high‐velocity/hypervelocity projectile impact …
MJ Forrestal, TL Warren - International Journal of Impact Engineering, 2009 - Elsevier
We developed closed-form perforation equations for rigid, conical and ogival nose projectiles that perforate aluminum target plates at normal impact. An existing cylindrical …
H Wei, X Zhang, C Liu, W Xiong, H Chen… - International Journal of …, 2021 - Elsevier
To better understand the oblique penetration behavior of ogive-nosed projectile into aluminum alloy targets, penetration experiments with impact velocities ranging from 700m/s …
A Manes, F Serpellini, M Pagani, M Saponara… - International Journal of …, 2014 - Elsevier
Experimental, analytical and numerical simulations were performed to study the ballistic resistance of 6061-T6 aluminium plates subjected to a normal impact of small calibre armour …
Z Rosenberg, E Dekel - International Journal of Impact Engineering, 2009 - Elsevier
The penetration process of rigid long rods with different nose shapes (ogive, spherical, conical and flat) is analyzed through a series of 2D numerical simulations. Aluminum and …
I Ga, D Noh, JW Yoon - International Journal of Impact Engineering, 2023 - Elsevier
This paper presents a spherical cavity expansion method based on the self-similar field considering dynamic hardening, which includes plastic strain, plastic strain rate, and …
N Jones, JK Paik - International Journal of Impact Engineering, 2012 - Elsevier
The perforation of aluminium alloy plates subjected to impacts characterised as low-velocity (up to about 20 m/s) and moderate-velocity (20–300 m/s, approximately) are examined in …