ANALYSIS OF THE EFFECT OF PROPELLANT TEMPERATURE ON INTERIOR BALLISTICS PROBLEM
Abstract
This study investigates the effect of conditioning
temperature of double base propellants on the interior ballistic parameters
such as burning gas temperature, barrel wall temperature, pressure and stresses
generated in the barrel. Interior ballistic problem was solved employing
experimental, numerical and analytical methods with a thermo-mechanical
approach. Double base propellants were conditioned at different temperatures
(52, 35, 21, 0, -20, -35, -54ºC). The maximum pressure in the barrel and
projectile muzzle velocity were measured for all the propellants by conducting
shooting tests with a special test barrel using 7.62x51 mm NATO ammunition.
Vallier-Heydenreich method was employed to determine the transient pressure
distribution along the barrel. The temperature of burnt gases was calculated by
using Noble-Abel equation. The heat transfer analysis was done using the
commercial software ANSYS to get the transient temperature and stress
distributions. Temperature distribution through the barrel wall thickness was
validated using a FLIR thermal imager. Radial, circumferential and axial
stresses and corresponding equivalent Von Misses stresses were determined
numerically and analytically. The results of the analytical solution for
stress analysis validated the finite element solution of interior ballistic
problem. Increasing the initial temperature of the propellant resulted in
higher temperature and pressure inside the barrel which in turn increased the
stresses in the barrel.
Keywords
References
- [1] Jaramaz, S., Micković, D., & Elek, P. (2011). Two-phase flows in gun barrel: Theoretical and experimental studies. International Journal of Multiphase Flow, 37(5), 475-487.
- [2] Akcay, M., & YÜKSELEN, M. A. (2014). Unsteady thermal studies of gun barrels during the interior ballistic cycle with non-homogenous gun barrel material thermal characteristics. J. Therm. Sci. Technol., 34(2), 75-81.
- [3] Sun, Y., & Zhang, X. (2015). Transient heat transfer of a hollow cylinder subjected to periodic boundary conditions. Journal of Pressure Vessel Technology, 137(5), 051303.
- [4] Nelson, C. W., & Ward, J. R. (1981). Calculation of heat transfer to the gun barrel wall (No. ARBRL-MR-03094). Army Ballistic Research Lab Aberdeen Proving Ground Md.
- [5] Conroy, P. J. (1991). Gun tube heating (No. BRL-TR-3300). Army Ballistic Research Lab Aberdeen Proving Ground Md.
- [6] Mishra, A., Hameed, A., & Lawton, B. (2010). Transient thermal analyses of midwall cooling and external cooling methods for a gun barrel. Journal of Heat Transfer, 132(9), 091901.
- [7] Cronemberger, P. O., Lima Junior, E. P., Gois, J. A. M., & Caldeira, A. B. (2014). Theoretical and experimental study of the interior ballistics of a rifle 7.62. Engenharia Térmica (Thermal Engineering), 13(2), 20-27.
- [8] Hill, R. D., & Conner, J. M. (2012). Transient heat transfer model of machine gun barrels. Materials and Manufacturing Processes, 27(8), 840-845..
Details
Primary Language
English
Subjects
-
Journal Section
Research Article
Authors
Celal Evci
This is me
Publication Date
April 10, 2018
Submission Date
May 24, 2017
Acceptance Date
August 25, 2017
Published in Issue
Year 2018 Volume: 4 Number: 4
Cited By
Falling Weight Low Velocity Ballistic Testing and Its Damage on Different Type of Metals
Journal of Polytechnic
https://doi.org/10.2339/politeknik.884115The influence of the internal ballistic pressure on the rifled barrel stress response
Scientific Technical Review
https://doi.org/10.5937/str2002041BNumerical modelling of heat transfer and simulation of a 5.56 mm rifle barrel
Journal of Physics: Conference Series
https://doi.org/10.1088/1742-6596/2478/11/112030A review on the effect of ageing on the ballistic properties of solid gun and rocket propellants
Propellants, Explosives, Pyrotechnics
https://doi.org/10.1002/prep.202300164