Title :
The Effect of Magnetic Field Distribution and Pole Array on the Vertical Levitation Force Properties of HTS Maglev Systems
Author :
Ozturk, Kemal ; Abdioglu, Murat ; Sahin, Ercin ; Celik, Sukru ; Gedikli, Hasan ; Savaskan, Burcu
Author_Institution :
Dept. of Phys., Karadeniz Tech. Univ., Trabzon, Turkey
Abstract :
In this paper, the levitation force measurements have been carried out by the magnetic force measurement system under both field-cooling and zero-field-cooling regimes, whereas the magnetic field distribution over the permanent-magnet guideway (PMG) was calculated by numerical analysis based on the finite-element method. It was shown in this study that the vertical levitation capability and stability of Maglev systems can be improved depending on the cooling regime, pole number, and suitable arrangement of the PMG. In this paper, it was shown that when the pole number increases, the levitation force density increases. It also appeared that the reasonable position of the supplementary permanent magnet and appropriate cooling heights are key parameters for both levitation performance and stabilization of the high-temperature superconductor (HTS) Maglev. It is believed that the numerical and experimental data in this paper are useful for relative design and practical application of HTS Maglev systems.
Keywords :
finite element analysis; force measurement; high-temperature superconductors; magnetic fields; magnetic levitation; permanent magnets; FEM; HTS Maglev systems; PMG; cooling heights; field-cooling regimes; finite-element method; high-temperature superconductor; levitation force density; magnetic field distribution; magnetic force measurement system; permanent-magnet guideway; pole array; pole number; relative design; supplementary permanent magnet; vertical levitation force properties; zero-field-cooling regimes; Arrays; Cooling; Force; Force measurement; Levitation; Yttrium barium copper oxide; High- $T_{c}$ superconductor; High-Tc superconductor; Levitation force; Permanent Magnet Guideway; levitation force; permanent-magnet guideway (PMG);
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2015.2417679