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http://dx.doi.org/10.9714/psac.2017.19.3.027

Effects of artificial holes in very large single-grain Y1.5Ba2Cu3O7-y bulk superconductors  

Park, S.D. (Korea Atomic Energy Research Institute)
Park, H.W. (Korea University of Technology and Education)
Jun, B.H. (Korea Atomic Energy Research Institute)
Kim, CJ. (Korea Atomic Energy Research Institute)
Publication Information
Progress in Superconductivity and Cryogenics / v.19, no.3, 2017 , pp. 27-32 More about this Journal
Abstract
The effects of artificial holes on the trapped magnetic fields and magnetic levitation forces of very large single-grain $Y_{1.5}Ba_2Cu_3O_{7-y}$ (Y1.5) bulk superconductors were studied. Artificial holes were made for Y1.5 powder compacts by die pressing using cylindrical dies with a diameter of 30 mm or 40 m, or rectangular dies with a side length of 50 mm. The single grain Y1.5 bulk superconductors (25 mm, 33 mm in diameter and 42 mm in side length) with artificial holes were fabricated using a top-seeded melt growth (TSMG) process for the die-pressed Y1.5 powder compacts. The magnetic levitation forces at 77 K of the 25 mm single grain Y1.5 samples with one (diameters of 4.2 mm) or six artificial holes (diameters of 2.5 mm) were 10-17% higher than that of the Y1.5 sample without artificial holes. The trapped magnetic fields at 77 K of the Y1.5 samples with artificial holes were also 9.6-18% higher than that of the Y1.5 sample without artificial holes. The 33 mm and 42 mm single grain Y1.5 samples with artificial holes (2.5 mm and 4.2 mm in diameter) also showed trapped magnetic fields 10-13% higher than that of the Y1.5 samples without artificial holes in spite of the reduced superconducting volume fraction due to the presence of artificial holes. The property enhancement in the large single grain Y1.5 bulk superconductors appears to be attributed to the formation of the pore-free regions near the artificial holes and the homogeneous oxygen distribution in the large Y123 grains.
Keywords
large single grain; $Y_{1.5}Ba_2Cu_3O_{7-y}$ superconductors; artificial holes; die pressing; trapped magnetic fields; magnetic levitation forces;
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