STUDY OF THERMONUCLEAR PROPULSION USING SUPERCONDUCTING MAGNETS
Thermonuclear propulsion using superconducting magnets
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Thermonuclear propulsion using superconducting magnets
Large superconducting magnets for MHD power plants, discussing scale-up requirements, cryogenic system, stable operation margin and emergency system shutdown
Superconducting magnets for active space radiation shielding
Superconducting magnet spectrometer using lithium drifted silicon detectors for measurement of electron spectra
14-Tesla 15-cm bore superconductive magnet and test results
Extensive computer based engineering design effort resulted in optimization of a superconducting magnet design with an average bulk current density of approximately 12KA/cm(2). Twisted, stranded 0.0045 inch diameter NbTi superconductor in a copper matrix was selected. Winding the coil from this bundle facilitated uniform winding of the small diameter wire. Test coils were wound using a first lot of the wire. The actual packing density was measured from these. Interwinding voltage break down tests on the test coils indicated the need for adjustment of the wire insulation on the lot of wire subsequently ordered for construction of the delivered superconducting magnet. Using the actual packing densities from the test coils, a final magnet design, with the required enhancement and field profile, was generated. All mechanical and thermal design parameters were then also fixed. The superconducting magnet was then fabricated and tested. The first test was made with the magnet immersed in liquid helium at 4.2K. The second test was conducted at 2K in vacuum. In the latter test, the magnet was conduction cooled from the mounting flange end.
Superconducting magnet with coils in variable- spacing horizontal-axis split pair configuration for plasma physics studies
Experimental investigations of advanced superconducting magnets
Simulation of large, high field, superconducting magnet operation - coil tests, stabilized wire short sample tests, stabilized and conventional superconducting coils, and micro Hall probe
Mathematical models used to determine thermal and electrical behavior of composite superconducting magnets
Operating properties of superconducting magnet in vacuum environment
Vibration effects on critical currents of superconducting magnets
Superconductive magnets at Lewis Research Center of NASA
Superconductive magnets for use in advanced space and power propulsion systems, and research in solid-state, plasma, and low temperature physics
Studies of a d.c. superconducting magnet coil indicate that the large coil behaves as a straight waveguide structure. Voltages between layers within the coil sometimes exceeded those recorded at terminals where protective resistors are located. Protection of magnet coils against these excessive voltages could be accomplished by impedance matching throughout the coil system. The wave phenomenon associated with superconducting magnetic coils may create an instability capable of converting the energy of a quiescent d.c. superconducting coil into dissipative a.c. energy, even in cases when dielectric breakdown does not take place.
Magnetic coil testing and experiment preparations for magnet facility in simulation of large high field superconducting magnet operation
Design trade off studies for 13 different superconducting magnet systems were carried out. Based on these results, preliminary design characteristics were prepared for several superconducting magnet systems suitable for use with a combustion driven MHD generator. Each magnet generates a field level of 8 T in a volume 1.524 m (60 in.) long with a cross section 0.254 m x 0.254 m (10 in. x 10 in.) at the inlet and 0.406 m x .406 m (16 in. x 16 in.) at the outlet. The first design involves a racetrack coil geometry intended for operation at 4.2 K; the second design uses a racetrack geometry at 2.0 K; and the third design utilizes a rectangular saddle geometry at 4.2 K. Each case was oriented differently in terms of MHD channel axis and main field direction relative to gravity in order to evaluate fabrication ease. All cases were designed such that the system could be disassembled to allow for alteration of field gradient in the MHD channel by changing the angle between coils. Preliminary design characteristics and assembly drawings were generated for each case.
Split pair of superconducting magnetic field coils of zirconium alloy wire for plasma physics research