superconducting generators for large wind turbines

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Superconducting Generators for Large Wind Turbines Markus Mueller Ozan Keysan – Joe Burchell [email protected] [email protected] Institute for Energy Systems The University of Edinburgh 19/03/2012

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Superconducting Generators for Large Wind Turbines. [email protected] [email protected] Institute for Energy Systems The University of Edinburgh. Markus Mueller Ozan Keysan – Joe Burchell. 19/03/2012. Motivation. - PowerPoint PPT Presentation

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Page 1: Superconducting Generators for Large Wind Turbines

Superconducting Generators for Large Wind Turbines

Markus MuellerOzan Keysan – Joe Burchell

[email protected]@ed.ac.uk

Institute for Energy SystemsThe University of Edinburgh

19/03/2012

Page 2: Superconducting Generators for Large Wind Turbines

Motivation

BARD 5MWGlobal Offshore Wind Energy Markets and Strategies,2009

In 2020, 85% of offshore wind turbine installations will be larger than 5 MW

Page 3: Superconducting Generators for Large Wind Turbines

Wind Turbines: Constantly Growing How big?

UpWind Project: A 20 MW Wind Turbine is Feasible

www.upwind.eu

Page 4: Superconducting Generators for Large Wind Turbines

Mass of Direct-Drive Generators

Harakosan 1.5MW,18 rpm,47 tonnes

(*) D. Bang et.al. “Review of Generator Systems for Direct-Drive Wind Turbines,” 2008,

All data available at goo.gl/ZZivv

Enercon4.5 MW, 13 rpm220 tonnes

Page 5: Superconducting Generators for Large Wind Turbines

All data available at goo.gl/ZZivv

Mass of Direct-Drive Generators

Page 6: Superconducting Generators for Large Wind Turbines

Reliability of Wind Turbines

Hahn, B., & Durstewitz, M. (2007). Wind Energy-Reliability of Wind Turbines.

~1MW, 1500 onshore turbines

Page 7: Superconducting Generators for Large Wind Turbines

Types of HTS Machines Rotating DC Superconducting Field

Most Common Type Transient Torques on HTS wire Cryocooler Coupler + Electrical Brushes

Low Reliability + Maintenance Magnetized Bulk HTS

Very Difficult to Handle Demagnetization?

All Superconducting Machines AC Losses on HTS wire

Page 8: Superconducting Generators for Large Wind Turbines

Reliability?

Cooling System Cryogenic Couplers Electric Brushes Transient torques on SC Demagnetization for

Bulk SC AC losses on SC wire

Issues with Superconducting GeneratorsSeaTitan

AMSC, 10 MW, 10 rpmDirect-drive superconducting generator

Page 9: Superconducting Generators for Large Wind Turbines
Page 10: Superconducting Generators for Large Wind Turbines

Homopolar HTSG

Page 11: Superconducting Generators for Large Wind Turbines

Homopolar HTSG Pros

Stationary SC Field No Brushes No Transient Torque

on SC Simplified Cooling,

Isolation

Page 12: Superconducting Generators for Large Wind Turbines

Homopolar HTSG

Cons Uni-directional flux

density Reduced power

density

Page 13: Superconducting Generators for Large Wind Turbines

Bipolar HTSG

Page 14: Superconducting Generators for Large Wind Turbines

Bipolar HTSG

Page 15: Superconducting Generators for Large Wind Turbines

Bipolar HTSG Pros

Bidirectional Flux Increased Power

Density Cons

Double SC field winding

Mechanical Issues

Page 16: Superconducting Generators for Large Wind Turbines

Transverse Flux HTSG

Page 17: Superconducting Generators for Large Wind Turbines

Pros Single Stationary SC Coil Bidirectional flux High Torque Density

Cons Magnetic Attraction

Forces 3D Flux (Soft magnetic

composites needed)

Transverse Flux HTSG

Page 18: Superconducting Generators for Large Wind Turbines

3D FEA Verification

Page 19: Superconducting Generators for Large Wind Turbines

Main Specifications

Power Output

70 kW

Speed 100 rpm

Diameter 1.3 mAxial Length 0.5 mSC Wire Current

216 A

SC Wire Length

880 m

Page 20: Superconducting Generators for Large Wind Turbines

Next Stage: Linear Prototype

Page 21: Superconducting Generators for Large Wind Turbines

Next Stage: Linear Prototype

Page 22: Superconducting Generators for Large Wind Turbines

Some Publications "A Homopolar HTSG Topology for Large Direct-Drive Wind Turbines",

Keysan O., and Mueller M., 2011. IEEE Transactions on Applied Superconductivity, 21(5), 3523 - 3531. doi:10.1109/TASC.2011.2159005.

"Superconducting Generators for Renewable Energy Applications", Keysan O., and Mueller M., 2011, IET Renewable Power Generation Conference, Edinburgh.

"A Transverse Flux High-Temperature Superconducting Generator Topology for Large Direct Drive Wind Turbines", Keysan O., and Mueller M., 2011. Superconductivity Centennial Conference, 2011, Den Haag, The Netherlands.

THANKS