The design of a very high-Q superconductor electromechanical clock



Título del documento: The design of a very high-Q superconductor electromechanical clock
Revue: Brazilian journal of physics
Base de datos: PERIÓDICA
Número de sistema: 000408634
ISSN: 0103-9733
Autores: 1
Instituciones: 1Universidade Federal de Santa Catarina, Departamento de Fisica, Florianopolis, Santa Catarina. Brasil
Año:
Periodo: Jun
Volumen: 37
Número: 2A
Paginación: 425-428
País: Brasil
Idioma: Inglés
Tipo de documento: Artículo
Enfoque: Experimental, analítico
Resumen en inglés We discuss the properties of an electromechanical oscillator whose operation is based upon the cyclic, quasiconservative conversion between gravitational potential, kinetic, and magnetic energies. The system consists of a strong-pinning type-II superconductor square loop subjected to a constant external force and to magnetic fields. The loop oscillates in the upright position at a frequency that can be tuned in the range 10-1000 Hz, and has induced in it a rectified electrical current. The emphasis of this paper is on the evaluation of the major remaining sources of losses in the oscillations. We argue that such losses should be associated with the viscous vibration of pinned flux lines in the superconductor Nb-Ti wire, provided the oscillator is kept under vacuum and the magnetic field is sufficiently uniform. Losses of similar or greater magnitude would be associated with dragging of the loop against the He atmosphere remaining in the evacuated cryostat. We discuss how other different sources of loss would become negligible for such operational conditions, so that a very high quality factor Q exceeding 1010 might in principle be reached by the oscillator. The prospective utilization of such oscillator as a low-frequency high-Q clock is analyzed
Disciplinas: Física y astronomía
Palabras clave: Dinámica de fluidos,
Física,
Física de materia condensada,
Superconductividad,
Superfluidos,
Estado sólido
Keyword: Physics and astronomy,
Condensed matter physics,
Fluid dynamics,
Physics,
Superconductivity,
Superfluids,
Solid state
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