Optimization of artillery projectiles base drag reduction using hot base flow
The CFD numerical simulations were carried out to investigate the base drag characteristics of a projectile with base bleed unit with a central jet. Different base bleed grain types with different combustion temperatures were used. The goal was to find a way to effectively control the base flow for...
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VINCA Institute of Nuclear Sciences
2019-01-01
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Online Access: | http://www.doiserbia.nb.rs/img/doi/0354-9836/2019/0354-98361800210D.pdf |
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doaj-ebdb83fdd94c4083ab9128247025a64b2021-01-02T09:14:19ZengVINCA Institute of Nuclear SciencesThermal Science0354-98362019-01-0123135336410.2298/TSCI180413210D0354-98361800210DOptimization of artillery projectiles base drag reduction using hot base flowDali Mohammed Amin0Jaramaz Slobodan1University of Defence, Military Academy, BelgradeFaculty of Mechanical Engineering, BelgradeThe CFD numerical simulations were carried out to investigate the base drag characteristics of a projectile with base bleed unit with a central jet. Different base bleed grain types with different combustion temperatures were used. The goal was to find a way to effectively control the base flow for base drag reduction and optimisate the latter using an adequate CFD software. Axisymmetric, compressible, mass-averaged Navier-Stokes equations are solved using the k-ω SST, transition k-kl-ω, and RSM turbulence models. The various base flow characteristics are obtained by the change in the non-dimensionalized injection impulse. The results obtained through the present study show that there is an optimum bleed condition for all base bleed grains tested. That optimum is dependent on the temperature of the grain combustion products. The optimum reduces the total drag for 6,9% in the case of air injection at temperature of 300 K and reaches up to 28% in the case of propellant combustion products injection at almost 2500 K. Besides, the increasing of molecular weight has a role no less important than temperature of the combustion products in terms of base drag reduction.http://www.doiserbia.nb.rs/img/doi/0354-9836/2019/0354-98361800210D.pdfartillery projectilesbase bleeddrag reductionCFDcombustion temperature |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Dali Mohammed Amin Jaramaz Slobodan |
spellingShingle |
Dali Mohammed Amin Jaramaz Slobodan Optimization of artillery projectiles base drag reduction using hot base flow Thermal Science artillery projectiles base bleed drag reduction CFD combustion temperature |
author_facet |
Dali Mohammed Amin Jaramaz Slobodan |
author_sort |
Dali Mohammed Amin |
title |
Optimization of artillery projectiles base drag reduction using hot base flow |
title_short |
Optimization of artillery projectiles base drag reduction using hot base flow |
title_full |
Optimization of artillery projectiles base drag reduction using hot base flow |
title_fullStr |
Optimization of artillery projectiles base drag reduction using hot base flow |
title_full_unstemmed |
Optimization of artillery projectiles base drag reduction using hot base flow |
title_sort |
optimization of artillery projectiles base drag reduction using hot base flow |
publisher |
VINCA Institute of Nuclear Sciences |
series |
Thermal Science |
issn |
0354-9836 |
publishDate |
2019-01-01 |
description |
The CFD numerical simulations were carried out to investigate the base drag characteristics of a projectile with base bleed unit with a central jet. Different base bleed grain types with different combustion temperatures were used. The goal was to find a way to effectively control the base flow for base drag reduction and optimisate the latter using an adequate CFD software. Axisymmetric, compressible, mass-averaged Navier-Stokes equations are solved using the k-ω SST, transition k-kl-ω, and RSM turbulence models. The various base flow characteristics are obtained by the change in the non-dimensionalized injection impulse. The results obtained through the present study show that there is an optimum bleed condition for all base bleed grains tested. That optimum is dependent on the temperature of the grain combustion products. The optimum reduces the total drag for 6,9% in the case of air injection at temperature of 300 K and reaches up to 28% in the case of propellant combustion products injection at almost 2500 K. Besides, the increasing of molecular weight has a role no less important than temperature of the combustion products in terms of base drag reduction. |
topic |
artillery projectiles base bleed drag reduction CFD combustion temperature |
url |
http://www.doiserbia.nb.rs/img/doi/0354-9836/2019/0354-98361800210D.pdf |
work_keys_str_mv |
AT dalimohammedamin optimizationofartilleryprojectilesbasedragreductionusinghotbaseflow AT jaramazslobodan optimizationofartilleryprojectilesbasedragreductionusinghotbaseflow |
_version_ |
1724356224443482112 |