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Analysis of external rotor electric drives for an all-automatic airborne wind energy system

  • Stefan Urbanek
  • , Daniel Heide
  • , Bakr Bagaber
  • , Martin Lohss
  • , Bernd Specht
  • , Xaver Paulig
  • , Axel Mertens
  • , Bernd Ponick

Research output: Chapter in book/report/conference proceedingConference contributionResearchpeer review

Abstract

This paper describes the investigation and systematic identification of feasible electric machine types and inverter systems for an all-automatic airborne wind energy system. The wind energy system consists of the flying kite, which is winched out, winched in and stored fully automatically, and a ground station with the rope drum, the electric machine, the frequency converter and the control unit with grid connection. During winching out, the kite is unfolded and the electric machine acts as a generator (rating of prototype: P-{\mathrm{N}}=280\text{kW},\ U-{\mathrm{N}}=365\mathrm{V},n-{\mathrm{N}}=2.67\text{Hz}, future systems: P-{\mathrm{N}}=1\text{MW}) feeding energy to the grid. When winching in, the kite is taken out of the wind and the electric machine acts as a motor to retrieve the kite. This approach of using airborne wind energy implies some special boundary conditions for the drive train, e.g. high dynamics and overload capability due to wind gusts and strict temperature conditions, which will be discussed in this paper. Furthermore, different external rotor concepts will be investigated for the electric machine to combine the rotor directly with the rope drum in order to decrease the assembly space. Four different machine types - the electrically excited synchronous machine, the permanent magnet synchronous machine, the reluctance synchronous machine and the induction machine - are initially dimensioned and assessed according to predefined evaluation criteria. After this, the permanent magnet synchronous machine and the reluctance synchronous machine, which meet the requirements for the present application in the best possible way, are investigated in detail and finite element analysis results are presented. Thereafter, the boundary conditions regarding the converter unit are discussed. Finally, a drive system consisting of the most promising machine and converter type for a kite-based all-automatic airborne wind energy system is presented.

Original languageEnglish
Title of host publication2019 IEEE International Electric Machines and Drives Conference, IEMDC 2019
Subtitle of host publicationProceedings
PublisherInstitute of Electrical and Electronics Engineers Inc.
Pages1599-1606
Number of pages8
ISBN (Electronic)978-1-5386-9350-6
ISBN (Print)978-1-5386-9351-3
DOIs
Publication statusPublished - May 2019
Event11th IEEE International Electric Machines and Drives Conference, IEMDC 2019 - San Diego, United States
Duration: 12 May 201915 May 2019

Conference

Conference11th IEEE International Electric Machines and Drives Conference, IEMDC 2019
Country/TerritoryUnited States
CitySan Diego
Period12 May 201915 May 2019

Keywords

  • Electric drives
  • External rotor
  • Kite system
  • Wind energy

ASJC Scopus subject areas

  • Energy Engineering and Power Technology
  • Electrical and Electronic Engineering
  • Mechanical Engineering

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