The Behavior of Bubble and Water Jet Induced by Underwater Explosion in a Rectangular Tube

Author(s):  
Taketoshi Koita ◽  
Yujian Zhu ◽  
Mingyu Sun
2013 ◽  
Vol 706-708 ◽  
pp. 1734-1737
Author(s):  
Cho Chung Liang ◽  
Tso Liang Teng ◽  
Ching Yu Hsu ◽  
Anh Tu Nguyen

The dynamical process of underwater explosion bubble is a very complicated phenomenon with many facets needed to consider. After detonation, shock wave propagates in a very short time while the oscillation of bubble occurs in a long time. Bubble pulsation can cause serious damage for the structures nearby due to the whipping effect, bubble pulse or water jet impact in the collapse phase. This paper presents an application of Finite Element Method (FEM), namely Eulerian technique, to simulate the dynamical process of bubble and numerical results were verified by an experiment. This approach shows it's feasibility in simulating the bubble pulsation as well as the formation of water jet at the end of first contracting circle. Although numerical model was simplified by the boundary conditions, the success of this method is foundation for further study of bubble such as in predicting the damages of both nearby submerged structures as well as floating structures.


2021 ◽  
Vol 242 ◽  
pp. 110135
Author(s):  
Jun Yu ◽  
Jianhu Liu ◽  
Bin He ◽  
Haitao Li ◽  
Teng Xie ◽  
...  

2020 ◽  
Vol 902 ◽  
pp. 126-139
Author(s):  
Anh Tu Nguyen

The dynamic process of an underwater explosion (UNDEX) is a complex phenomenon that involves several facets. After detonation, the shockwave radially propagates at a high speed and strikes nearby structures. Subsequently, bubble oscillation may substantially damage the structures because of the whipping effect, water jet impact, and bubble pulse. This paper presents an application of explicit finite element analyses to simulate the process of an UNDEX bubble in the vicinity of rigid wall, in which the coupled Eulerian-Lagrangian (CEL) approach was developed to overcome the difficulties regarding the classical finite element method (FEM), large deformations, and flow simulation of fluid and gas. The results demonstrate that the method is well suited to manage the UNDEX bubble problem and can be used to model the major features of the bubble dynamics. Furthermore, the behavior of an UNDEX bubble near a rigid wall was also examined in the present study, which showed that the migration of the bubble and the development of the water jet are influenced strongly by the standoff distance between the initial bubble position and the wall. This method can be used in future studies to examine UNDEX bubbles in the vicinity of deformable and complex structures.


2018 ◽  
Author(s):  
M Sánchez Alonso ◽  
E Rodríguez Sánchez ◽  
E de la Santa Belda ◽  
P Olivencia Palomar ◽  
R Salmoral Luque ◽  
...  

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