DocumentCode :
1244575
Title :
Acceleration of solid hydrogen pellet using augmented railgun for magnetic fusion reactor refueling
Author :
Zhang, Juyong ; Kim, Kunsu ; King, T.L.
Author_Institution :
Dept. of Electr. & Comput. Eng., Illinois Univ., Urbana, IL, USA
Volume :
31
Issue :
1
fYear :
1995
Firstpage :
382
Lastpage :
387
Abstract :
A 1.2 m long electromagnetic railgun with separate augmentation was designed, fabricated, and tested for the purpose of injecting hypervelocity hydrogen pellets into magnetic fusion devices for refueling. A compact configuration of two pairs of coaxial rails insulated by thin Kapton films was employed. Two pulse-forming networks were used to separately control the duration, amplitude, and overlap of the current pulses. Copper sulphate resistors were employed as impedance-matching resistors and bank short resistors. The magnetic field inside the gun bore boosted by the high current on the gun augmentation rails, which in turn increased the J/spl times/B force without increasing the armature current, resulting in less ablation of the gun bore and pellet. Higher acceleration was achieved due to reduced inertial and viscous drag. Using a 1.2 m augmented railgun, hydrogen pellet velocities in excess of 2.5 km/s were achieved. Hydrogen pellet accelerations as high as 4.4/spl times/10/sup 6/ m/s/sup 2/ were achieved at a railgun current of 13.5 kA while the acceleration obtained on a conventional railgun was 2.2/spl times/10/sup 6/ m/s/sup 2/ at 14.1 kA. Computer simulations have been performed using the finite element code MSC/EMES to analyze the current density, magnetic field, Lorentz force, and inductance gradient of the conventional and augmented railguns.<>
Keywords :
current density; digital simulation; electromagnetic fields; finite element analysis; fusion reactor fuel; insulating thin films; power engineering computing; pulsed power technology; railguns; resistors; software packages; solid hydrogen; 1.2 m; 13.5 kA; 14.1 kA; Lorentz force; MSC/EMES; acceleration; augmented railgun; bank short resistors; coaxial rails; computer simulation; current density; electromagnetic railgun; finite element code; gun bore; hypervelocity; impedance-matching resistors; inductance gradient; inertial drag; magnetic field; magnetic fusion reactor refueling; pulse-forming networks; refueling; solid hydrogen pellet; thin Kapton film insulation; viscous drag; Acceleration; Boring; Electromagnetic devices; Hydrogen; Magnetic fields; Railguns; Rails; Resistors; Solids; Testing;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/20.364657
Filename :
364657
Link To Document :
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