Title :
A Homopolar HTSG Topology for Large Direct-Drive Wind Turbines
Author :
Keysan, O. ; Mueller, M.A.
Author_Institution :
Inst. for Energy Syst., Univ. of Edinburgh, Edinburgh, UK
Abstract :
For offshore wind energy, there is a trend toward larger wind turbines. The increased mass of a power-takeoff system increases the installation cost of the turbine. Direct-drive superconducting generators have the potential to reduce the installation cost of wind turbines. For a successful entry to the offshore-wind-energy market, a high-temperature superconducting generator should be as reliable as conventional generators. It is proposed that a stationary superconducting direct-current-field winding may increase the reliability of the generator. An axial-flux homopolar generator topology is proposed to be used in low-speed high-torque applications. The topology is modified by using two superconducting field windings to obtain a bipolar flux-density distribution for higher power density. Different core types and dimensions were examined to find the most suitable design, and a conceptual design of a 6-MW 12-r/min generator is presented.
Keywords :
cores; high-temperature superconductors; homopolar generators; machine windings; offshore installations; power generation reliability; power markets; superconducting machines; wind power plants; wind turbines; axial-flux homopolar HTSG topology; axial-flux homopolar high-temperature superconducting generator topology; bipolar flux-density distribution; direct-drive superconducting generator; generator reliability; large direct-drive wind turbine; low-speed high-torque application; offshore wind energy installation; offshore-wind-energy market; power 6 MW; power density; power-takeoff system; stationary superconducting direct-current-fleld winding; Generators; High temperature superconductors; Magnetic cores; Superconducting coils; Superconducting magnets; Wind turbines; Windings; Direct drive; homopolar generator; offshore wind energy; superconducting generator; wind turbine; wind-power generation;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2011.2159005