Title :
Study on the Dynamic Stability of 3-D Superconducting Actuator by Various Typed HTS Bulk Movers
Author :
Kim, S.B. ; Nakano, H. ; Ozasa, S. ; Sawae, M.
Author_Institution :
Grad. Sch. of Natural Sci. & Technol., Okayama Univ., Okayama, Japan
Abstract :
High-temperature superconductor (HTS) material can trap high magnetic fields due to its strong flux pinning force. Herein, based on our belief that such a device would be useful as a transporter in clean rooms where silicon wafers are manufactured, we report on the development of a three-dimensional (3-D) superconducting actuator using HTS bulk material in a noncontact transportation device that will move freely in 3-D space. The proposed actuator consists of a trapped HTS, which provides the mover, along with two-dimensionally arranged copper-wound iron-core electromagnets that form the stator. The current and the polarity of each electromagnet can be individually controlled via the power supply. In our previous experiments, a single-component mover was observed to overshoot during operation, which led us to conclude that a more powerful levitation force was needed. In this study, single-component HTS movers (inner diameters of 46 and 60 mm) and multicomponent HTS movers were used to increase the levitation force and dynamic stability.
Keywords :
copper; electromagnetic actuators; electromagnets; elemental semiconductors; flux pinning; high-temperature superconductors; iron; silicon; stators; superconducting critical field; 3D superconducting actuator; Cu-Fe; HTS bulk movers; HTS material; Si; copper-wound iron-core electromagnets; dynamic stability; flux pinning force; high-temperature superconductor material; levitation force; magnetic fields; noncontact transportation device; power supply; silicon wafers; size 46 mm; size 60 mm; stator; trapped HTS; two-dimensionally arranged electromagnets; Actuators; Coils; Electromagnets; Force; High-temperature superconductors; Levitation; Magnetic fields; 3-D superconducting actuator; HTS bulk mover; dynamic stability; levitation force;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2015.2393055