Influence of Magnetically Confined Plasma on the Muzzle Velocity of Gun Projectile

Under the influence of gun barrel design, materials, and propellant, improving pirojectile muzzle velocity is the bottleneck in gun development. An innovative method based on magnetically confined plasma theory was therefore proposed to improve the projectile muzzle velocity. Compared with the tradi...

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Main Authors: Yu Wang, Tiehua Ma, Dongxing Pei, Changxin Chen, Kaiqiang Feng, Debiao Zhang, Zhibo Wu
Format: Article
Language:English
Published: IEEE 2020-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9066874/
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spelling doaj-cee5d95da5a947dca1e78d59cad9f89a2021-03-30T01:41:52ZengIEEEIEEE Access2169-35362020-01-018726617267010.1109/ACCESS.2020.29878309066874Influence of Magnetically Confined Plasma on the Muzzle Velocity of Gun ProjectileYu Wang0https://orcid.org/0000-0003-4743-0190Tiehua Ma1Dongxing Pei2Changxin Chen3Kaiqiang Feng4Debiao Zhang5https://orcid.org/0000-0002-2385-993XZhibo Wu6Science and Technology on Electronic Test and Measurement Laboratory, North University of China, Taiyuan, ChinaScience and Technology on Electronic Test and Measurement Laboratory, North University of China, Taiyuan, ChinaScience and Technology on Electronic Test and Measurement Laboratory, North University of China, Taiyuan, ChinaScience and Technology on Electronic Test and Measurement Laboratory, North University of China, Taiyuan, ChinaScience and Technology on Electronic Test and Measurement Laboratory, North University of China, Taiyuan, ChinaScience and Technology on Electronic Test and Measurement Laboratory, North University of China, Taiyuan, ChinaScience and Technology on Electronic Test and Measurement Laboratory, North University of China, Taiyuan, ChinaUnder the influence of gun barrel design, materials, and propellant, improving pirojectile muzzle velocity is the bottleneck in gun development. An innovative method based on magnetically confined plasma theory was therefore proposed to improve the projectile muzzle velocity. Compared with the traditional methods for increasing the projectile muzzle velocity, the method proposed in this study has a simpler design structure, a broad applicability to different caliber guns with lower cost, and an obvious effect on improving muzzle velocity. The core idea was to use the magnetic field to constrain the plasma generated by gunpowder combustion ionization in the gun bore to increase the projectile bottom pressure, thereby increasing the projectile muzzle velocity. First, the mechanism of increasing the projectile muzzle velocity by magnetically confined plasma in the gun barrel was analyzed. Second, a new gunpowder gas thermal ionization model was established based on interior ballistic and plasma theories. The fourth-order Runge-Kutta algorithm was used to numerically simulate the changes in plasma density and conductivity during the combustion ionization of gunpowder. The effects of different ionized seed contents and propellant forces on the density and conductivity of plasma were numerically simulated to improve the ionization efficiency of gunpowder. Adding ionized seeds or propellant force improves the ionization efficiency of gunpowder, increases the binding force of the magnetic field on plasma, and enhances the projectile muzzle velocity. Finally, shooting tests were performed with a test barrel. Experimental results verified the correctness of the theoretical analysis and numerical simulation.https://ieeexplore.ieee.org/document/9066874/Magnetically confined plasmaprojectile muzzle velocityprojectile bottom pressurethermal ionization model
collection DOAJ
language English
format Article
sources DOAJ
author Yu Wang
Tiehua Ma
Dongxing Pei
Changxin Chen
Kaiqiang Feng
Debiao Zhang
Zhibo Wu
spellingShingle Yu Wang
Tiehua Ma
Dongxing Pei
Changxin Chen
Kaiqiang Feng
Debiao Zhang
Zhibo Wu
Influence of Magnetically Confined Plasma on the Muzzle Velocity of Gun Projectile
IEEE Access
Magnetically confined plasma
projectile muzzle velocity
projectile bottom pressure
thermal ionization model
author_facet Yu Wang
Tiehua Ma
Dongxing Pei
Changxin Chen
Kaiqiang Feng
Debiao Zhang
Zhibo Wu
author_sort Yu Wang
title Influence of Magnetically Confined Plasma on the Muzzle Velocity of Gun Projectile
title_short Influence of Magnetically Confined Plasma on the Muzzle Velocity of Gun Projectile
title_full Influence of Magnetically Confined Plasma on the Muzzle Velocity of Gun Projectile
title_fullStr Influence of Magnetically Confined Plasma on the Muzzle Velocity of Gun Projectile
title_full_unstemmed Influence of Magnetically Confined Plasma on the Muzzle Velocity of Gun Projectile
title_sort influence of magnetically confined plasma on the muzzle velocity of gun projectile
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2020-01-01
description Under the influence of gun barrel design, materials, and propellant, improving pirojectile muzzle velocity is the bottleneck in gun development. An innovative method based on magnetically confined plasma theory was therefore proposed to improve the projectile muzzle velocity. Compared with the traditional methods for increasing the projectile muzzle velocity, the method proposed in this study has a simpler design structure, a broad applicability to different caliber guns with lower cost, and an obvious effect on improving muzzle velocity. The core idea was to use the magnetic field to constrain the plasma generated by gunpowder combustion ionization in the gun bore to increase the projectile bottom pressure, thereby increasing the projectile muzzle velocity. First, the mechanism of increasing the projectile muzzle velocity by magnetically confined plasma in the gun barrel was analyzed. Second, a new gunpowder gas thermal ionization model was established based on interior ballistic and plasma theories. The fourth-order Runge-Kutta algorithm was used to numerically simulate the changes in plasma density and conductivity during the combustion ionization of gunpowder. The effects of different ionized seed contents and propellant forces on the density and conductivity of plasma were numerically simulated to improve the ionization efficiency of gunpowder. Adding ionized seeds or propellant force improves the ionization efficiency of gunpowder, increases the binding force of the magnetic field on plasma, and enhances the projectile muzzle velocity. Finally, shooting tests were performed with a test barrel. Experimental results verified the correctness of the theoretical analysis and numerical simulation.
topic Magnetically confined plasma
projectile muzzle velocity
projectile bottom pressure
thermal ionization model
url https://ieeexplore.ieee.org/document/9066874/
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