Palm-size miniature superconducting bulk magnet
► We made the world’s smallest, lightest, lowest power consuming superconducting magnet with an integral rotary microcooler. ► Our superconducting bulk magnet’s maximum trapped magnetic flux density was 3.15T. ► Power consumption of the steady-state cooling after magnetization was 23.0W. The develop...
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Veröffentlicht in: | Cryogenics (Guildford) 2012-11, Vol.52 (11), p.604-608 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | ► We made the world’s smallest, lightest, lowest power consuming superconducting magnet with an integral rotary microcooler. ► Our superconducting bulk magnet’s maximum trapped magnetic flux density was 3.15T. ► Power consumption of the steady-state cooling after magnetization was 23.0W.
The development of a small, light, powerful and energy-efficient superconducting magnet has been desired in order to realize better efficiency and manipulability in guiding magnetic nano-particles, magnetic organic cells and other items to the right place. This study focuses on the development of a high-temperature superconducting (HTS) bulk magnet characterized by comparatively low leak magnetism despite a relatively high magnetic field. On this basis, the authors developed a palm-sized superconducting bulk magnet, which is the world’s smallest, lightest, and lowest power consuming, as well as a new technology to effectively magnetize such a bulk magnet in a compact Stirling-cycle cryocooler (magnet C) with a pre-magnetized HTS bulk magnet (magnet B) in a compact cryocooler. This technology is demonstrated in two steps. In the first step, magnet B is magnetized using a superconducting solenoid magnet with a high magnetic field (magnet A) via the field cooling method. In the second step, magnet C is magnetized in the high magnetic field of magnet B. The prototype magnet C weighs 1.8kg, and measures 235×65×115mm (L×W×H). Magnet B was magnetized to 4.9T using a 5T magnet, and the target, magnet C, was magnetized using magnet B so that its maximum trapped magnetic flux density reached the value of 3.15T. The net power consumption in a steady cooling state was 23W, which is very low and comparable to that of a laptop computer. |
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ISSN: | 0011-2275 1879-2235 |
DOI: | 10.1016/j.cryogenics.2012.08.005 |