Title :
Search for new possibilities of attaining high launching velocities
Author :
Shvetsov, Gennady A. ; Stankevich, Sergey V.
Author_Institution :
Lavrentyev Inst. of Hydrodynamics, Acad. of Sci., Novosibirsk, Russia
fDate :
1/1/2001 12:00:00 AM
Abstract :
The paper is concerned with analyzing the ultimate velocity versus the projectile mass at fixed acceleration distance for various methods of decreasing the current density at the rail-armature interface. The analysis is performed by numerical solution of the system of equations of unsteady diffusion of a magnetic field and unsteady heat transfer in a two dimensional formulation. Homogeneous and multilayer armatures, homogeneous rails, and rails with a high-resistive layer are considered. The results reported in the paper show that use of a resistive coating on the conductive side of rails is highly efficient at decreasing a current concentration on the rear side of the armature due to the high-velocity skin effect. This ensure a considerable decrease in the heating rate of the armature near the contact boundaries. As a result, the maximum velocity to which armature can be accelerated with retention of solid metallic contact with rails in a channel of a given length can be increased by a factor of 24, and the kinetic energy can be increased by a factor of 4-16 compared to the case of using rails without coating. Use of a multilayer armature with orthotropic electrical conductivity in combination with a resistive coating on the contact side of the rails allows one to attain high velocities and energy characteristics of the armature at short acceleration distances
Keywords :
current density; electrical conductivity; heat transfer; numerical analysis; railguns; skin effect; thermal analysis; current concentration; current density; energy characteristics; high launching velocities; high-resistive layer; high-velocity skin effect; kinetic energy; magnetic field; multilayer armature; numerical solution; orthotropic electrical conductivity; projectile mass; rail-armature interface; railguns; resistive coating; short acceleration distance; ultimate velocity; unsteady diffusion; unsteady heat transfer; Acceleration; Coatings; Contacts; Current density; Equations; Magnetic analysis; Magnetic fields; Performance analysis; Projectiles; Rails;
Journal_Title :
Magnetics, IEEE Transactions on