Title :
An approach of optimal design of HTS synchronous motor using genetic algorithm
Author :
Han, Sang-Il ; Muta, Itsuya ; Hoshino, Tsutomu ; Nakamura, Taketsune
Author_Institution :
Dept. of Electr. Eng., Kyoto Univ., Japan
fDate :
6/1/2004 12:00:00 AM
Abstract :
This paper describes an optimal design of 100 HP, 4 pole, 1800 rpm high temperature superconducting (HTS) synchronous motor in terms of energy efficiency and downsizing, i.e., specific power density. Bi-2223/Ag multifilamentary tape is used as a material of HTS field coil. Design variables and constraints are appropriately set up in consideration of electromagnetic characteristics. Size of the rotor and the stator is calculated with fundamental expressions based on the two-dimensional electromagnetic analysis. As an optimization technique to obtain the dimension of optimal specific power density or energy efficiency of the HTS motor, genetic algorithm (GA) which is well-known as aglobal optimal technique modeled on the concept of natural selection and evolution has been used. Electrical characteristics such as efficiency and V-curve for the HTS motor optimally designed are also investigated.
Keywords :
bismuth compounds; calcium compounds; genetic algorithms; high-temperature superconductors; lead compounds; multifilamentary superconductors; silver; strontium compounds; superconducting coils; superconducting machines; superconducting tapes; synchronous motors; 100 hp; Bi-2223/Ag tape; BiPb2Sr2Ca2Cu3O10-Ag; HTS field coil; HTS synchronous motor; electrical characteristics; electromagnetic analysis; electromagnetic characteristics; energy efficiency; genetic algorithm; high temperature superconductor; multifilamentary tape; rotor size; specific power density; stator; Algorithm design and analysis; Energy efficiency; Genetic algorithms; High temperature superconductors; Multifilamentary superconductors; Rotors; Superconducting coils; Superconducting films; Superconducting materials; Synchronous motors; /Ag HTS tape; Bi-222; HTS synchronous motor; energy efficiency; optimal design; specific power density;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2004.830312