THERMAL SCIENCE

International Scientific Journal

ANALYSIS OF THERMAL AND GAS-DYNAMIC CHARACTERISTICS OF DIFFERENT TYPES OF PROPELLANT IN SMALL WEAPONS

ABSTRACT
This paper presents a numerical and an analytical approach for calculation of internal ballistics parameters through determination of thermal and gasdynamic characteristics. The calculated parameters are validated through experimental tests on a real weapon system. The internal ballistic calculations are provided for two types of propellants using an analytical and a numerical model. Calculations and tests are performed for an anti-material rifle 12.7 mm. Weapon and ammunition testing is carried out according to the permanent international commission standard. Theoretical and experimental results for the gunpowder gases pressure and the muzzle velocity are compared. The good agreements between the calculated and the measured pressures and velocities increase the reliability of the estimated gunpowder gas temperatures in the barrel. The obtained results enable analysis and comparison of the output internal ballistics parameters for different types of propellant applications.
KEYWORDS
PAPER SUBMITTED: 2020-08-14
PAPER REVISED: 2020-12-29
PAPER ACCEPTED: 2021-01-05
PUBLISHED ONLINE: 2021-04-10
DOI REFERENCE: https://doi.org/10.2298/TSCI200814138B
CITATION EXPORT: view in browser or download as text file
THERMAL SCIENCE YEAR 2021, VOLUME 25, ISSUE Issue 6, PAGES [4295 - 4306]
REFERENCES
  1. Akcay, M., Internal and Transitional Ballistic Solution for Spherical and Perforated Propellants and Verification with Experimental Results, Thermal Science and Technology, 37 (2017), 1, pp. 35-44
  2. Jaramaz, S., Micković, D., & Elek, P. Two-phase flows in gun barrel: Theoretical and experimental studies, International Journal of Multiphase Flow, 37 (2011), 5, pp. 475-487, DOI No. 10.1016/j.ijmultiphaseflow.2011.01.003.
  3. Bougamra, A., Lu, H., Multiphase CFD Simulation of Solid Propellant Combustion in a Small Gun Chamber, International Journal of Chemical Engineering, (2014), DOI No. 10.1155/2014/971808.
  4. Şentürk, A., et al., Thermo-Mechanically Coupled Thermal and Stress Analysis of Interior Ballistics Problem, International Journal of Thermal Sciences, 104 (2016), pp. 39-53, DOI No. 10.1016/j.ijthermalsci.2015.12.019.
  5. Rezgui, N., et al., Experimental and Numerical Analysis of Thermo-Chemical Erosion in Gun Steel, Thermal Science, 23 (2019), 2, pp. 599-612.
  6. Jevtić, D. T., et al., Modeling of Gas Parameters in the Cylinder of the Automatic Gun During Firing, Thermal Science, 00 (2020), pp. 152-152, DOI No. 10.2298/tsci200118152j.
  7. Corner, J., Theory of the Interior Ballistics of Guns, The Journal of Criminal Law, Criminology, and Police Science, 42 (1950), 6, p. 846, DOI No. 10.2307/1139706.
  8. Unosson, M., et al, Two-Dimensional Finite Element Model for Simulation of the Interior Ballistics of Guns, Report No. FOI-R--1690—SE, FOI - Swedish Defense Research Agency Weapons and Protection, Sweden, 2005.
  9. Mishra, A., Hameed, A., & Lawton, B., A novel scheme for computing gun barrel temperature history and its experimental validation, Journal of pressure vessel technology, 132 (2010), 6, pp. 881-888, DOI No. 10.1115/1.4001740.
  10. Lawton, B., Thermo-chemical erosion in gun barrels, Wear, 251 (2001), 2, pp. 827-838.
  11. Cvetković, M., Internal Ballistics in Serbian language, SŠOVID-VTA., Belgrade, Serbia, 1998.
  12. Zhuo, C. F., et al., Research on the Muzzle Blast Flow with Gas-Particle Mixtures Based on Eulerian-Eulerian Approach, Journal of Mechanics, 32 (2016), 2, pp. 185.
  13. Tančić, Lj., Exercises in Internal Ballistics in Serbian language, VTA, Belgrade, Serbia, 1999.
  14. Iserles, A., Numerical Solution of Partial Differential Equations: Finite Difference Methods (3rd Edition), by G. D. Smith. pp 337. 1985. ISBN 0-19-859641-3/859650-2 (Oxford University Press), The Mathematical Gazette, 70 (1986), 454, pp. 330-332, DOI No. 10.2307/3616228.

© 2024 Society of Thermal Engineers of Serbia. Published by the Vinča Institute of Nuclear Sciences, National Institute of the Republic of Serbia, Belgrade, Serbia. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution-NonCommercial-NoDerivs 4.0 International licence