11 research outputs found

    Design of a Superconducting Magnetic Suspension System for a Liquid Helium Flow Experiment

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    We discuss a preliminary design for a superconducting magnetic suspension system for measurement of drag on rotationally symmetric bodies in liquid helium. Superconducting materials are a natural choice for liquid helium studies, since temperatures are well below most critical temperatures, so that the resulting heat load is negligible. Also, due to its diamagnetic properties, a superconducting model (for example made or coated with Nb) is inherently stable against disturbances. Issues which we consider include model placement during initial cool-down, maintaining placement during anticipated drag and lift forces, and force measurement. This later can be achieved by a passive technique, where the body is allowed to deflect under the influence of drag from its neutral position. The resulting shift in flux is detected via a superconducting pickup coil. The pickup coil may be connected either to a SQUID, or a secondary loop wound around a Hall probe. Both options are discussed. The objective of this work is to gain a better understanding of the nature of turbulent fields in normal and superfluid helium for potential application to problems in classical high Reynolds number turbulence

    Superconducting energy storage magnet

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    A superconducting magnet is formed having composite conductors arrayed in coils having turns which lie on a surface defining substantially a frustum of a cone. The conical angle with respect to the central axis is preferably selected such that the magnetic pressure on the coil at the widest portion of the cone is substantially zero. The magnet structure is adapted for use as an energy storage magnet mounted in an earthen trench or tunnel where the strength the surrounding soil is lower at the top of the trench or tunnel than at the bottom. The composite conductor may be formed having a ripple shape to minimize stresses during charge up and discharge and has a shape for each ripple selected such that the conductor undergoes a minimum amount of bending during the charge and discharge cycle. By minimizing bending, the working of the normal conductor in the composite conductor is minimized, thereby reducing the increase in resistance of the normal conductor that occurs over time as the conductor undergoes bending during numerous charge and discharge cycles

    Considerations of a Large Force Balanced Magnetic Energy-Storage System

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    Flow-through Magnetic Separators for Weakly-Magnetic Ores Designed for Superconducting Magnets

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    Superconductive Magnetic Energy-Storage (Smes) External Fields and Safety Considerations

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    Construction of a Model Magnet for Shielded Pulsed Energy-Storage

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    A 100 Kwh Energy-Storage Coil for Space Application

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    The 1st Model of the Shielded Pulsed Superconductive Energy-Storage

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    The Design of Large Low Aspect Ratio Energy-Storage Solenoids for Electric Utility use

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    Design and Optimization of Hydrogen Cooled Pulsed Storage Inductors for Electromagnetic Launchers

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