scholarly journals Turbulence in realistic geometries with moving boundaries: When simulations meet experiments

2021 ◽  
Vol 214 ◽  
pp. 104750
Author(s):  
L. Cappanera ◽  
P. Debue ◽  
H. Faller ◽  
D. Kuzzay ◽  
E-W. Saw ◽  
...  
Author(s):  
Qiao Luo ◽  
Xiaobing Zhang

Purpose – In engineering applications, gas-solid two-phase reaction flow with multi-moving boundaries is a common phenomenon. The launch process of multiple projectiles is a typical example. The flow of adjacent powder chambers is coupled by projectile’s motion. The purpose of this paper is to study this flow by numerical simulation. Design/methodology/approach – A one-dimensional two-phase reaction flow model and MacCormack difference scheme are implemented in a computational code, and the code is used to simulate the launch process of a system of multiple projectiles. For different launching rates and loading conditions, the simulated results of the launch process of three projectiles are obtained and discussed. Findings – At low launching rates, projectiles fired earlier in the series have little effect on the launch processes of projectiles fired later. However, at higher launching rates, the projectiles fired first have a great influence on the launch processes of projectiles fired later. As the launching rate increases, the maximum breech pressure for the later projectiles increases. Although the muzzle velocities increase initially, they reach a maximum at some launching rate, and then decrease rapidly. The muzzle velocities and maximum breech pressures of the three projectiles have an approximate linear relationship with the charge weight, propellant web size and chamber volume. Originality/value – This paper presents a prediction tool to understand the physical phenomenon of the gas-solid two-phase reaction flow with multi-moving boundaries, and can be used as a research tool for future interior ballistics studies of launch system of multiple projectiles.


Author(s):  
Srinivas Ramakrishnan ◽  
Rajat Mittal ◽  
Lingxiao Zheng ◽  
Fady Najjar ◽  
George Lauder ◽  
...  

2021 ◽  
Vol 41 (8) ◽  
pp. 719-721
Author(s):  
A. V. Vanyagin ◽  
B. A. Gordeev ◽  
S. N. Okhulkov ◽  
D. Yu. Titov

2005 ◽  
Vol 127 (5) ◽  
pp. 851-857 ◽  
Author(s):  
Elias Balaras ◽  
Jianming Yang

In the present paper a computational algorithm suitable for large-eddy simulations of fluid/structure problems that are commonly encountered in biological flows is presented. It is based on a mixed Eurelian-Lagrangian formulation, where the governing equations are solved on a fixed grid, which is not aligned with the body surface, and the nonslip conditions are enforced via local reconstructions of the solution near the solid interface. With this strategy we can compute the flow around complex stationary/moving boundaries and at the same time maintain the efficiency and optimal conservation properties of the underlying Cartesian solver. A variety of examples, that establish the accuracy and range of applicability of the method are included.


1999 ◽  
Vol 7 ◽  
pp. 349-358
Author(s):  
B. Protas ◽  
A. Styczek
Keyword(s):  

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