TY - JOUR
T1 - Load coupling mechanism and plastic deflection prediction of pre-pierced clamped plates under simultaneous double-charge underwater explosions with varying charge spacings
AU - Cheng, Lele
AU - Sun, Tao
AU - Wu, Haijun
AU - Huang, Fenglei
AU - Qiao, Jinchao
AU - Liang, Zengyou
AU - Deng, Ximin
N1 - Publisher Copyright:
© 2026 Elsevier Ltd
PY - 2026/11/1
Y1 - 2026/11/1
N2 - Simultaneous double-charge underwater explosions generate spacing-dependent coupled loading that governs the global plastic deformation of thin-walled structures. Underwater explosion experiments and validated S-ALE simulations were combined to investigate fully clamped steel plates at a fixed standoff distance of R = 100 mm, considering charge spacings of 50–300 mm, small symmetric pre-pierced holes, and air- or water-backed boundaries. Under air-backed conditions, the maximum residual deflection first increases and then decreases with charge spacing; among the discrete spacings considered, the largest response occurs at S = 200 mm. Quantitative load decomposition indicates that shock-wave loading contributes more than 85 % of the final maximum deflection, whereas the bubble-induced increment remains below 15 %. Within the investigated small-hole and global plastic deformation regime, pre-piercing does not substantially alter the global central-depression mode or maximum deflection. In contrast, the water-backed boundary markedly suppresses deformation accumulation and weakens the spacing dependence of the final deflection. A symmetry-plane-averaged equivalent shock-wave pressure and a dynamic–plastic model are proposed for first-order prediction of the global maximum deflection of air-backed plates. The model captures the spacing-dependent deflection trend with relative errors of 6–11 % for intact plates and 2–5 % for pre-pierced plates, providing an efficient engineering estimate within the investigated configuration.
AB - Simultaneous double-charge underwater explosions generate spacing-dependent coupled loading that governs the global plastic deformation of thin-walled structures. Underwater explosion experiments and validated S-ALE simulations were combined to investigate fully clamped steel plates at a fixed standoff distance of R = 100 mm, considering charge spacings of 50–300 mm, small symmetric pre-pierced holes, and air- or water-backed boundaries. Under air-backed conditions, the maximum residual deflection first increases and then decreases with charge spacing; among the discrete spacings considered, the largest response occurs at S = 200 mm. Quantitative load decomposition indicates that shock-wave loading contributes more than 85 % of the final maximum deflection, whereas the bubble-induced increment remains below 15 %. Within the investigated small-hole and global plastic deformation regime, pre-piercing does not substantially alter the global central-depression mode or maximum deflection. In contrast, the water-backed boundary markedly suppresses deformation accumulation and weakens the spacing dependence of the final deflection. A symmetry-plane-averaged equivalent shock-wave pressure and a dynamic–plastic model are proposed for first-order prediction of the global maximum deflection of air-backed plates. The model captures the spacing-dependent deflection trend with relative errors of 6–11 % for intact plates and 2–5 % for pre-pierced plates, providing an efficient engineering estimate within the investigated configuration.
KW - Charge spacing
KW - Clamped plate
KW - Double charge
KW - Plastic deflection prediction
KW - Underwater explosion
UR - https://www.scopus.com/pages/publications/105044296389
U2 - 10.1016/j.engfailanal.2026.111196
DO - 10.1016/j.engfailanal.2026.111196
M3 - Article
AN - SCOPUS:105044296389
SN - 1350-6307
VL - 197
JO - Engineering Failure Analysis
JF - Engineering Failure Analysis
M1 - 111196
ER -