• English
  • Deutsch
  • Log In
    Password Login
    Research Outputs
    Fundings & Projects
    Researchers
    Institutes
    Statistics
Repository logo
Fraunhofer-Gesellschaft
  1. Home
  2. Fraunhofer-Gesellschaft
  3. Artikel
  4. Design and in-field testing of the world's first ReBCO rotor for a 3.6 MW wind generator
 
  • Details
  • Full
Options
2019
Journal Article
Title

Design and in-field testing of the world's first ReBCO rotor for a 3.6 MW wind generator

Abstract
The main aim of the EU H2020 project EcoSwing was to demonstrate a technical readiness level of 6-7 for high-temperature superconducting (HTS) technology operating in a wind generator. To reach this goal, a full-scale synchronous HTS generator was successfully designed, built and field-tested in a 3.6 MW turbine. The generator has a rotor with 40 superconducting coils of 1.4 m long. The required >20 km of coated conductor was produced within the project's time schedule. All coils were tested prior to assembly, with >90% of them behaving as expected. The technical readiness level of HTS coils was thus increased to level 7. Simultaneously, the maturing of cryogenic cooling technology over the last decade was illustrated by the several Gifford-McMahon cold-heads that were installed on-board the rotor and connected with the stationary compressors through a rotating coupling. The cryogenic system outperformed design expectations, enabling stable coil temperatures far below the design temperature of 30 K after only 14 d of cool-down. After ground-based testing at the IWES facility in Bremerhaven, Germany, the generator was installed on an existing turbine in Thyborøn, Denmark. Here, the generator reached the target power range and produced power for over 650 h of grid operation.
Author(s)
Bergen, A.
University of Twente
Andersen, R.
Envision Energy Aps
Bauer, M.
Theva Dünnschichttechnik GmbH
Boy, H.
Sumitomo (SHI) Cryogenics of Europe GmbH
Brake, M. ter
University of Twente
Brutsaert, P.
Jeumont Electric
Bührer, C.
Eco 5 GmbH
Dhallé, M.
University of Twente
Hansen, J.
Envision Energy Aps
Kate, H.t.
University of Twente
Kellers, J.
Eco 5 GmbH
Krause, J.
Eco 5 GmbH
Krooshoop, E.
University of Twente
Kruse, C.
DNV GL Energy
Kyling, H.
Fraunhofer-Institut für Windenergiesysteme IWES  
Pilas, M.
Fraunhofer-Institut für Windenergiesysteme IWES  
Pütz, H.
Eco 5 GmbH
Rebsdorf, A.
Envision Energy Aps
Reckhard, M.
Delta Energy Systems GmbH
Seitz, E.
Sumitomo (SHI) Cryogenics of America
Springer, H.
Delta Energy Systems GmbH
Song, X.
Envision Energy Aps
Tzabar, N.
University of Twente
Wessel, S.
University of Twente
Wiezoreck, J.
Eco 5 GmbH
Winkler, T.
University of Twente, Theva Dünnschichttechnik GmbH
Yagotyntsev, K.
University of Twente
Journal
Superconductor Science and Technology  
Project(s)
Ecoswing  
Funder
European Commission EC  
Open Access
DOI
10.1088/1361-6668/ab48d6
Additional link
Full text
Language
English
Fraunhofer-Institut für Windenergiesysteme IWES  
Keyword(s)
  • superconducting machinery

  • HTS

  • wind turbine

  • superconducting generator

  • Cookie settings
  • Imprint
  • Privacy policy
  • Api
  • Contact
© 2024