scholarly journals Exhausted jet caused the deformation of front metal seal covers in a multiple launch rocket system

2020 ◽  
Vol 1507 ◽  
pp. 032018 ◽  
Author(s):  
Z P Liu ◽  
J X Zhao ◽  
G J Ma ◽  
X F Gao ◽  
L Jiang
Keyword(s):  
Author(s):  
Yutaka Wada ◽  
S. Hatano ◽  
Ayana Banno ◽  
Yo Kawabata ◽  
Hiroshi Hasegawa ◽  
...  

1972 ◽  
Author(s):  
J. BORETZ ◽  
J. BELL ◽  
R. PLEBUCH ◽  
C. PRIEST

2020 ◽  
pp. 99-104
Author(s):  
S.A. Zaydes ◽  
A.N. Mashukov ◽  
T.Ya. Druzhinina

The contact belt of the gate assembly is the main part of high pressure fittings. The serviceability of the fittings assembly as whole depends on the air-tightness and quality of the mating surfaces. The technology of diamond burnishing allows to increase the interface of the nodes by red ucing the surface roughness of the metal-to-metal seal. The real experience for improving of the fittings contact belt due to the use of diamond burnishing of the nozzles seats and the conical surface of the rods.


Author(s):  
Bo Li ◽  
Xiaoting Rui ◽  
Guoping Wang ◽  
Jianshu Zhang ◽  
Qinbo Zhou

Dynamics analysis is currently a key technique to fully understand the dynamic characteristics of sophisticated mechanical systems because it is a prerequisite for dynamic design and control studies. In this study, a dynamics analysis problem for a multiple launch rocket system (MLRS) is developed. We particularly focus on the deductions of equations governing the motion of the MLRS without rockets by using a transfer matrix method for multibody systems and the motion of rockets via the Newton–Euler method. By combining the two equations, the differential equations of the MLRS are obtained. The complete process of the rockets’ ignition, movement in the barrels, airborne flight, and landing is numerically simulated via the Monte Carlo stochastic method. An experiment is implemented to validate the proposed model and the corresponding numerical results.


Author(s):  
Yen-Sen Chen ◽  
Robert Cheng ◽  
Hao-Chi Chang ◽  
Feng-Tai Hwang ◽  
Alfred Lai ◽  
...  

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