Dynamics analysis on barrel considering the temporal and spatial distribution of propellant gas by numerical simulation
In terms of the excitation of barrel vibration on the motion modality of projectile during interior ballistic period, a finite element model considering the mutual coupling between projectile and barrel was established to study the dynamics. In consideration of the effects of propellant gas on dynam...
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doaj-de4b6ed7935e457bbe493a031c0c76d22020-11-24T23:25:32ZengJVE InternationalJournal of Vibroengineering1392-87162538-84602018-06-012041588160210.21595/jve.2018.1962319623Dynamics analysis on barrel considering the temporal and spatial distribution of propellant gas by numerical simulationQingbo Yu0Guolai Yang1Quanzhao Sun2School of Mechanical Engineering, Nanjing University of Science and Technology, Nanjing, 210094, ChinaSchool of Mechanical Engineering, Nanjing University of Science and Technology, Nanjing, 210094, ChinaSchool of Mechanical Engineering, Nanjing University of Science and Technology, Nanjing, 210094, ChinaIn terms of the excitation of barrel vibration on the motion modality of projectile during interior ballistic period, a finite element model considering the mutual coupling between projectile and barrel was established to study the dynamics. In consideration of the effects of propellant gas on dynamics response based on vibration theory, the real loading condition of propellant gas acting on barrel was defined by user-defined VDLOAD subroutine, which solved the problem of inaccurate loading and even the failure of loading of gases pressure in previous simulations. Simultaneously, the loading boundary condition was directed by the coupling process of powder combustion and projectile motion, modeled by the user-defined VUAMP subroutine. The dynamics responses of barrel with and without the radial effect of gas pressure were obtained. Moreover, with the aid of realization of radial loading of barrel, the influence of the deviation of mass center of barrel on its dynamics response was also investigated. The obtained results showed that the radial effect of gas pressure causes more violent dynamics responses and plays a non-negligible role in simulating artillery firing process. The dynamics response of barrel is sensitive to the deviation of mass center and the response increases with the increasing value of deviation.https://www.jvejournals.com/article/19623barrel vibrationVDLOADradial effect of propellant gasnumerical simulation |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Qingbo Yu Guolai Yang Quanzhao Sun |
spellingShingle |
Qingbo Yu Guolai Yang Quanzhao Sun Dynamics analysis on barrel considering the temporal and spatial distribution of propellant gas by numerical simulation Journal of Vibroengineering barrel vibration VDLOAD radial effect of propellant gas numerical simulation |
author_facet |
Qingbo Yu Guolai Yang Quanzhao Sun |
author_sort |
Qingbo Yu |
title |
Dynamics analysis on barrel considering the temporal and spatial distribution of propellant gas by numerical simulation |
title_short |
Dynamics analysis on barrel considering the temporal and spatial distribution of propellant gas by numerical simulation |
title_full |
Dynamics analysis on barrel considering the temporal and spatial distribution of propellant gas by numerical simulation |
title_fullStr |
Dynamics analysis on barrel considering the temporal and spatial distribution of propellant gas by numerical simulation |
title_full_unstemmed |
Dynamics analysis on barrel considering the temporal and spatial distribution of propellant gas by numerical simulation |
title_sort |
dynamics analysis on barrel considering the temporal and spatial distribution of propellant gas by numerical simulation |
publisher |
JVE International |
series |
Journal of Vibroengineering |
issn |
1392-8716 2538-8460 |
publishDate |
2018-06-01 |
description |
In terms of the excitation of barrel vibration on the motion modality of projectile during interior ballistic period, a finite element model considering the mutual coupling between projectile and barrel was established to study the dynamics. In consideration of the effects of propellant gas on dynamics response based on vibration theory, the real loading condition of propellant gas acting on barrel was defined by user-defined VDLOAD subroutine, which solved the problem of inaccurate loading and even the failure of loading of gases pressure in previous simulations. Simultaneously, the loading boundary condition was directed by the coupling process of powder combustion and projectile motion, modeled by the user-defined VUAMP subroutine. The dynamics responses of barrel with and without the radial effect of gas pressure were obtained. Moreover, with the aid of realization of radial loading of barrel, the influence of the deviation of mass center of barrel on its dynamics response was also investigated. The obtained results showed that the radial effect of gas pressure causes more violent dynamics responses and plays a non-negligible role in simulating artillery firing process. The dynamics response of barrel is sensitive to the deviation of mass center and the response increases with the increasing value of deviation. |
topic |
barrel vibration VDLOAD radial effect of propellant gas numerical simulation |
url |
https://www.jvejournals.com/article/19623 |
work_keys_str_mv |
AT qingboyu dynamicsanalysisonbarrelconsideringthetemporalandspatialdistributionofpropellantgasbynumericalsimulation AT guolaiyang dynamicsanalysisonbarrelconsideringthetemporalandspatialdistributionofpropellantgasbynumericalsimulation AT quanzhaosun dynamicsanalysisonbarrelconsideringthetemporalandspatialdistributionofpropellantgasbynumericalsimulation |
_version_ |
1725557073247207424 |