The DTU 10-MW Reference Wind Turbine

Similar documents
Aero-Elastic Optimization of a 10 MW Wind Turbine

Optimum combined pitch and trailing edge flap control

Effects of Large Bending Deflections on Blade Flutter Limits. UpWind Deliverable D2.3. Bjarne Skovmose Kallesøe Morten Hartvig Hansen.

Smart Flexible Energy Solutions for the Future Energy System

Experimental Verification of the Implementation of Bend-Twist Coupling in a Wind Turbine Blade

Simulated Switching Transients in the External Grid of Walney Offshore Wind Farm

Development of Trailing Edge Flap Technology at DTU Wind

Design and fabrication of axial flux ferrite magnet brushless DC motor for electric twowheelers

Integration of intermittent renewable generation. The case of Denmark

EFFECT OF SURFACE ROUGHNESS ON PERFORMANCE OF WIND TURBINE

Aeroelastic Load Simulations and Aerodynamic and Structural Modeling Effects

Department of Wind Energy

Electricity for Road-transport, Flexible Power Systems and Wind Power

Cyclic Control Optimization for a Smart Rotor

Design and Test of Transonic Compressor Rotor with Tandem Cascade

Multi Rotor Solution for Large Scale Offshore Wind Power

Technologies for Urban Transport

Towards the development of advanced TIMES demo models for electric vehicles

APPENDIX J V90 3.0MW Turbine Specifications

LES of wind turbine wakes

Composites Modeler for Abaqus/CAE. Abaqus 2018

The X-Rotor Offshore Wind Turbine Concept

Drivetrain Simulation and Load Determination using SIMPACK

Wind Turbine Generator System. General Specification for HQ2000

A STUDY OF THE CENTRIFUGAL COMPRESSOR DISCHARGE PIPELINE CONSTRAINED OSCILLATION. KIRILL SOLODYANKIN*, JIŘÍ BĚHAL ČKD KOMPRESORY, a.s.

Industrial Use of EsDs ETP4HPC Workshop 22 June 2017 Frankfurt DLR CFD Solver TAU & Flucs for external Aerodynamic

Bright outlook for improved profitability. Direct drive wind turbine SWT Answers for energy.

The validation of MBS multi-megawatt gearbox models on a 13.2 MW test rig

Hedeager Aarhus N Denmark S (IEC IB)*, :2005

Smart Fatigue Load Control on a Large-scale Wind Turbine Based on Different Sensing Strategies

V MW An efficient way to more power

APPLICATION OF STAR-CCM+ TO TURBOCHARGER MODELING AT BORGWARNER TURBO SYSTEMS

Train turn restrictions and line plan performance

Development of a 12MW Floating Offshore Wind Turbine

SIMULIA Overview: Accelerating Innovation with Realistic Simulation

Hedeager Aarhus N Denmark

Low Speed Wind Turbines. Current Applications and Technology Development

Elbil - scenarier for dansk vejtransport : Energi, CO2 emission og økonomi?

Aeroelastic Modelling of the LMH64-5 Blade. C. Lindenburg

Evolution of MDO at Bombardier Aerospace

GRAND RENEWABLE ENERGY PARK PROJECT DESCRIPTION REPORT. Attachment C. Turbine Specifications

Hedeager Aarhus N Denmark

Technical Documentation Wind Turbine Generator Systems /60 Hz

Comparing FEM Transfer Matrix Simulated Compressor Plenum Pressure Pulsations to Measured Pressure Pulsations and to CFD Results

Hedeager Aarhus N Denmark. Vestas V MW / V MW

Quantifying the benefits of a slender, high tip speed blade for large offshore wind turbiness

University of Huddersfield Repository

Annual Report Summary Green Regional Aircraft (GRA) The Green Regional Aircraft ITD

STRUCTURAL DESIGN AND ANALYSIS OF ELLIPTIC CYCLOCOPTER ROTOR BLADES

Wind Blade Failure Identification and Prevention

Advanced Vehicle Performance by Replacing Conventional Vehicle Wheel with a Carbon Fiber Reinforcement Composite Wheel

Effect of Stator Shape on the Performance of Torque Converter

GE Renewable Energy. GE s 3 MW Platform POWERFUL AND EFFICIENT.

National Wind Technology Center Dynamometer Upgrade

ATLAS Principle to Product

1 st DeepWind 5 MW baseline design

Control of wind turbines and wind farms Norcowe 2015 PhD Summer school Single Turbine Control

Introduction to Abaqus/CAE. Abaqus 2018

CFD Investigation of Influence of Tube Bundle Cross-Section over Pressure Drop and Heat Transfer Rate

FURTHER ANALYSIS OF MULTIDISCIPLINARY OPTIMIZED METALLIC AND COMPOSITE JETS

T701 (240 VAC, 1-phase, 60 Hz)

An approach for cost and configuration optimization of horizontal axis wind turbine (HAWT)

Session 5 Wind Turbine Scaling and Control W. E. Leithead

How Multibody-System Simulation Models can Support the Design of Wind Turbines

Isolated Bidirectional DC DC Converter for SuperCapacitor Applications

V MW The future for low wind sites

V MW & 2.0 MW Built on experience

Dave Bone. DREAM Project Coordinator

Modal analysis of Truck Chassis Frame IJSER

Abaqus Technology Brief. Prediction of B-Pillar Failure in Automobile Bodies

Environmentally Focused Aircraft: Regional Aircraft Study

AERODYNAMIC DESIGN OPTIMIZATION OF A 200 KW-CLASS RADIAL INFLOW SUPERCRITICAL CARBON DIOXIDE TURBINE

MSC/Flight Loads and Dynamics Version 1. Greg Sikes Manager, Aerospace Products The MacNeal-Schwendler Corporation

Primary control surface design for BWB aircraft

Scroll Compressor Oil Pump Analysis

The European Tilt Rotor-Status of ERICA Design and Test Activities. Madrid, 31 March 2011

INTERNATIONAL JOURNAL OF APPLIED ENGINEERING RESEARCH, DINDIGUL Volume 1, No 4, 2011

MODELING SUSPENSION DAMPER MODULES USING LS-DYNA

The company. Operational philosophy. Worldwide presence. Product and design philosophy. our customers permanent performance

TURKISH WIND ENERGY CONGRESS Innovative Blade Design. Istanbul November 2012

Deliverable Report D1.42. Methodology for Feed-Forward Control Strategies using Nacelle or Blade Based Sensors and Distributed Control

2d Abaqus Example Meshing

The Performance of Wind Turbine Smart Rotor Control Approaches During Extreme Loads

Technical Documentation

ADVENT. Aim : To Develop advanced numerical tools and apply them to optimisation problems in engineering. L. F. Gonzalez. University of Sydney

Analysis of Composite Materials with Abaqus 6.14

Siemens G2 platform 2.3-MW geared wind turbines. Exceptional performance, proven reliability. Answers for energy.

Fluid Structure Interaction Simulation of Hood Flutter

Rotor imbalance cancellation

Clean Sky 2. LifeCraft Demonstrationt (IADP RC 2 & ITDs) Consultation meetings Brussels th December 2012 OUTLINE

Automotive NVH with Abaqus. Abaqus 2018

Analysis of Composite Materials with Abaqus

Customer Application Examples

Propeller Blade Bearings for Aircraft Open Rotor Engine

Fault Ride-Through for a Smart Rotor DQ-axis Controlled Wind Turbine with a Jammed Trailing Edge Flap

Reliable and Application specific. Slewing Drives for Wind Turbines

Results of the Blind Comparison

Carbon Fiber Parts Performance In Crash SITUATIONS - CAN WE PREDICT IT?

DeepWind-from idea to 5 MW concept

Modeling Rubber and Viscoelasticity with Abaqus. Abaqus 2018

Transcription:

Downloaded from orbit.dtu.dk on: Apr 17, 2018 The DTU 10-MW Reference Wind Turbine Bak, Christian; Zahle, Frederik; Bitsche, Robert; Kim, Taeseong; Yde, Anders; Henriksen, Lars Christian; Hansen, Morten Hartvig; Blasques, José Pedro Albergaria Amaral; Gaunaa, Mac; Natarajan, Anand Publication date: 2013 Link back to DTU Orbit Citation (APA): Bak, C., Zahle, F., Bitsche, R., Kim, T., Yde, A., Henriksen, L. C.,... Natarajan, A. (2013). The DTU 10-MW Reference Wind Turbine [Sound/Visual production (digital)]. Danish Wind Power Research 2013, Fredericia, Denmark, 27/05/2013 General rights Copyright and moral rights for the publications made accessible in the public portal are retained by the authors and/or other copyright owners and it is a condition of accessing publications that users recognise and abide by the legal requirements associated with these rights. Users may download and print one copy of any publication from the public portal for the purpose of private study or research. You may not further distribute the material or use it for any profit-making activity or commercial gain You may freely distribute the URL identifying the publication in the public portal If you believe that this document breaches copyright please contact us providing details, and we will remove access to the work immediately and investigate your claim.

The DTU 10-MW Reference Wind Turbine Christian Bak chba@dtu.dk Frederik Zahle, Robert Bitsche, Taeseong Kim, Anders Yde, Lars Christian Henriksen, Morten H. Hansen, José Blasques, Mac Gaunaa, Anand Natarajan Section for Aeroelastic Design and Section for Structures Technical University of Denmark DTU Wind Energy Risø Campus

Background: Upscaling Power~rotor diameter 2 Mass~rotor diameter 3 2 Danish Wind Power Research 2013 28 May 2013

Background: Upscaling blades Blade mass [tons] 50 45 40 35 30 25 20 15 10 Glasfiber Carbonfiber Upscale from 40m blades with x^3 Power (Glasfiber) Power (Carbonfiber) Mass carbon = 9E-05*Length 2.95 Mass glass = 0.0023*Length 2.17 5 3 0 30 40 50 60 70 80 90 Blade length[m] Danish Wind Power Research 2013 28 May 2013

Objective of the Light Rotor project The Light Rotor project aims at creating the design basis for next-generation wind turbines of 10+ MW. Collaboration with Vestas Wind Systems The project seeks to create an integrated design process composed of: Advanced airfoil design taking into account both aerodynamic and structural objectives/constraints, Aero-servo-elastic blade optimization High fidelity 3D simulation tools such as CFD and FEM, Structural topology optimization. We need a reference wind turbine to compare our designs against 4 Danish Wind Power Research 2013 28 May 2013

Objectives The purpose with the design is: To achieve a design made with traditional design methods in a sequential MDO process Good aerodynamic performance and fairly low weight. To provide a design with high enough detail for use for comprehensive comparison of both aero-elastic as well as high fidelity aerodynamic and structural tools, To provide a publicly available representative design basis for next generation of new optimized rotors. The purpose is not: To design a rotor pushed to the limit with lowest weight possible, To push the safety factors as much as possible, Provide a design of a complete wind turbine focus is on the rotor, To provide a design ready to be manufactured; the manufacturing process is not considered. 5 Danish Wind Power Research 2013 28 May 2013

The Design Process DTU Wind Energy is responsible for developing a number of wind turbine analysis codes that are all used by industry in their design of wind turbines and use them in the design of the DTU 10MW RWT: HAWC2 (multibody time domain aeroelastic code) HAWCstab2 (Aero-servo-elastic modal analysis tool) BECAS (Cross-sectional structural analysis tool) HAWTOPT (Wind turbine optimization code) EllipSys2D / 3D (RANS / DES / LES Navier-Stokes solvers) Other solvers used: Xfoil, ABAQUS In our normal research context we do not normally use these tools in a synthesized manner in a design process. The exercise for us was to apply our tools and specialist knowledge in a comprehensive design process of a 10 MW wind turbine rotor, something we have not done to this level of detail before. Identify areas in the design process suited for more integrated MDO architectures. 6 Danish Wind Power Research 2013 28 May 2013

Design Summary Description Rating Rotor orientation, configuration Control Drivetrain 7 Value 10MW Upwind, 3 blades Rotor, Hub diameter 178.3m, 5.6m Hub height Cut-in, Rated, Cut-out wind speed Cut-in, Rated rotor speed Rated tip speed Variable speed, collective pitch Medium speed, Multiple stage gearbox 119m 4m/s, 11.4m/s, 25m/s 6RPM, 9.6RPM 90m/s Overhang, Shaft tilt, Pre-cone 7.07m, 5, 2.5 Pre-bend Rotor mass Nacelle mass Tower mass 3m 229tons (each blade ~41tons) 446tons 605tons Danish Wind Power Research 2013 28 May 2013

The method Airfoil choice Airfoil characteristics Aerodynamic design Structural design Aeroelastic stability and control tuning Aeroelastic time simulations: Loads Final design FFA-W3-xxx airfoils. 24.1% to 36.0% relative thickness, 48% and 60% airfoil scaled from FFA- W3-360 and cylinder. 2D CFD computations at Re 9x10 6 to 13x10 6 3D corrected HAWTOPT numerical optimizations. Max tip speed = 90m/s, λ=7.5, min relative airfoil thickness = 24.1% ABAQUS (6.11) FEM computations. Uniaxial, biaxial and triaxial laminates were used together with Balsa as sandwich core material HAWCSTAB2 (aero-servo-elastic stability tool) computations including controller tuning. HAWC2 (aeroelastic code) computations. Class IA according to IEC-61400-1 standard for offshore application 8 Danish Wind Power Research 2013 28 May 2013

Aerodynamic Design: Geometry 9 Danish Wind Power Research 2013 28 May 2013

Aerodynamic Design: Performance 10 Danish Wind Power Research 2013 28 May 2013

Aerodynamic Design: 3D CFD analysis Automated workflow from 2D blade definition/airfoil family -> 3D shape -> 3D volume mesh, 3D CFD validation of performance predicted using BEM, Blade performance in the root area was not satisfactory due to use of thick airfoils (t/c > 0.36 for r/r < 0.30). Gurney flap were used to remedy this, increase in CP of 1.2% at design TSR. Resulted in adjustment of airfoil data and new design iteration adopting the modified root layout. (Automated derivation of 3D airfoil data).

Structural Design: Basic design choice A box-girder design approach is used. For layup definition the blade is partitioned into 100 regions radially and 10 regions circumferentially. A complete description of the blade s geometry and layup is generated in the form of a finite element shell model. 12 Danish Wind Power Research 2013 28 May 2013

Structural Design: Design loop Geometry, material and composite layup definition Automatic generation of ABAQUS input files Automatic generation of BECAS input files Buckling ABAQUS: layered shell model BECAS: cross section analysis Local stress and failure Cross section stiffness properties Ultimate loads HAWC2: aeroelastic analysis 13

How the blade compares to existing ones 50 45 73.5m blade upscaled with x^3 73.5m blade upscaled with x^2.16 Mass carbon = 9E-05*Length 2.95 Blade mass [tons] 40 35 30 25 20 15 10 Glasfiber Carbonfiber Upscale from 40m blades with x^3 Power (Glasfiber) Power (Carbonfiber) Mass glass = 0.0023*Length 2.17 5 14 0 30 40 50 60 70 80 90 Blade length[m] Danish Wind Power Research 2013 28 May 2013

Aero-servo-elastic analysis HawcStab2 used to analyze the modal properties of the wind turbine: frequencies, damping ratios, and mode shapes. The DTU Wind Energy controller was revised and tuned specifically for the DTU 10 MW RWT. To avoid tower mode excitation from 3P frequency, minimum RPM = 6. Report and source code on controller available. 15 11 June 2013

Load calculations: HAWC2 DTU 10MW RWT: IA according to IEC-61400-1 (3 rd edition) The suggested load cases by IEC standard must be verified in order for withstanding all loading situations during its life time. Most of design load cases are considered except DLC8, which is for transport, assemble, maintenance, and repair cases, and DLC 1.4, DLC 2.2, DLC 3.1, DLC 3.2, and DLC 3.3 which are very depending on controller. 16 Danish Wind Power Research 2013 28 May 2013

Load calculations: HAWC2 m 17 Danish Wind Power Research 2013 28 May 2013

Summary of design challenges Transition from laminar to turbulent flow in the boundary layer of the airfoils: The result is uncertainty of the aerodynamic performance and thereby on loads and especially the power The efficiency of thick airfoils, i.e. airfoils with relative thickness greater than 30%, is significantly better when using Gurney flaps, The result is an increase of the power of several percent To reduce the blade weight, the blade design needs to be stress/strain driven rather than tip deflection driven. The result is a pre-bend design, The control of the rotor must take several instability issues into account, e.g. coinciding frequencies from the tower eigen frequency and 3P at low wind speeds, The result is determination of the minimum rotational speed Blade vibrations in stand still Vibrations at 90 degrees inflow direction can probably be avoided by pitching each blade differently Vibrations at 30 degrees inflow direction can be reduced by ensuring smooth airfoil characteristics 18 Danish Wind Power Research 2013 28 May 2013

Availability The DTU 10 MW RWT has been released to the European InnWind project for review and will be used as the reference turbine in this project. Within days it will be available as a comprehensive release consisting of Fully described 3D rotor geometry, Basic tower and drive train, 3D corrected airfoil data (based on engineering models), 3D CFD surface/volume meshes, Comprehensive description of structural design, Controller, Load basis calculations using HAWC2, Report documenting the design. Go to: dtu-10mw-rwt.vindenergi.dtu.dk 19 Danish Wind Power Research 2013 28 May 2013

Acknowledgements Thanks to: EUDP for partly financing the EUDP 2010 I Light Rotor The EU project InnWind for reviewing the wind turbine A lot of people that has been a part of the discussions. 20 Danish Wind Power Research 2013 28 May 2013

Thank you for the attention! 21