Computational flow optimization of Wind turbine blades

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COMPUTATIONAL FLOW OPTIMISATION OF A WIND TURBINE BLADE USING MRF P.Sarathkumar Reddy 22208101029 Internal Guide Mr. G. RAJU Asst.Prof.

Transcript of Computational flow optimization of Wind turbine blades

Page 1: Computational flow optimization of Wind turbine blades

COMPUTATIONAL FLOW OPTIMISATION OF A WIND

TURBINE BLADE USING MRF

•P.Sarathkumar Reddy 22208101029

Internal Guide Mr. G. RAJU Asst.Prof.

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INTRODUCTION OF THE PROJECT

• This Project aims to undertake aerodynamic analysis of a

Horizontal Axis Wind Turbine

• Computational Fluid Dynamics (CFD) software is used to

compare the performance of different Wind Turbine Blade

Profile

• A steady state, incompressible flow solver for Multiple

Reference Frames (MRF)

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OBJECTIVEFIRST-CUT ANALYSIS • Flow optimization in different blade sections, with different Angle of

Attack (α)

• Geometry of the standard NACA-9417 Airfoil

• MH-102 from -Illinois University

• SC 02-0714 - Airfoil Investigation Website

SECOND-CUT ANALYSIS• Flow optimization in a blade with a add-on part which gives better result

• Winglet

FINAL ANALYSIS• Flow of air over a rotating wind turbine rotor implies that the fluid flows

in an inertial frame of reference while the rotor rotates in a non inertial reference frame

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BLADES WITH DIFFERENT AIRFOILS

NACA-9417

SC-02 0714

MH-102

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DIMENSIONS OF THE BLADE

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TOTAL VIEW OF BLADES

NACA-9417

SC-02 0714

MH-102

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BLADE WITH SURFACE MESH

MESH REFINEMENT

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PRISM LAYER SETTING IN T-GRID

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BLADE WITH FLUID VOLUME

8-PRISM LAYERS

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MESH DETAILS

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BLADE INSIDE THE TUNNEL

INLET

OUTLET

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BOUNDARY CONDITIONS SETTING

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CONVERGED SOLUTION

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STATIC PRESSURE CONTRIBUTION OVER THE BLADES

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NACA 9417

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MH-102

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SC-02 0714

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VELOCITY CONTRIBUTION OVER A BLADE

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NACA 9417

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VECTOR PLOT AROUND THE BLADE

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LIFT AND DRAG VALUES FOR THREE BLADES WITH DIFFERENT

ANGLE OF ATTACK-α

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COMPARISION GRAPHSCoefficient of Drag CD Vs alpha-α

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Coefficient of lift Vs alpha-α

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L/D RATIO Vs ALPHA -α

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Add-on part(winglet)

• After completion of first cut analysis, we finalized NACA-9417 at 10 degree angle of attack is giving the better results

• The blade which we got the better result , in that the add-on part(winglet) will be implemented and the second cut analysis starts in that configuration

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CAD MODEL OF NACA-9417 BLADE WITH WINGLET

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Winglet Details

Cant angle -70degree

Height-17mm

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MESHED MODEL OF NACA-9417 BLADE WITH WINGLET

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MESHED WINGLET

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PRISM LAYER SETTING IN T-GRID

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BLADE WITH WINGLET IN THE FLUID VOLUME

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MESH DETAILS

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WINGLET ASSEMBLY WITH TUNNEL

INLET

OUTLET

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BOUNDARY CONDITION SETTING

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CONVERGED SOLUTION

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STATIC-PRESSURE CONTOUR

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VELOCITY VECTOR CONTOUR

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COMPARISION OF LIFT WITH WINGLET

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COMPARISION OF DRAG WITH WINGLET

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GENERATOR ASSEMBLY

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THREE BLADE ASSEMBLY

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MESHED GENERATOR

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THREE VIEW OF TOTAL ASSEMBLY

Front view

Top view

Side view

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TOTAL ASSEMBLY WITH REAR PLATE

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MRF-CAPSULE

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MRF-capsule inside a volume tunnel

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CONVERGED SOLUTION

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Static pressure contour across total assembly

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Static pressure across the blades

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Static pressure across the generator

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Velocity contour across the blades

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Velocity vectors in the whole tunnel

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VECTOR PLOT ACROSS HUB

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VECTORS AROUND THE WINGLET

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Dynamic pressure contour

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Turbulence contour across generator

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CONCLUTION

• A growing number of researchers is using CFD to study wind-turbine wake aerodynamics

• More research on the effect of stratification on power production is to be expected

• Aerodynamics turbulence is a dominating factor, affecting the blade performance and Wake behaviour so we tried to reduce this factor in this analysis

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REFERENCES• H. Piggott. (2010, Scoraig Wind. Available: www.scoraigwind.com• K. Kishinami, et al., "Theoretical and Experimental Study on the Aerodynamic

Characteristic of a Horizontal Axis Wind Turbine," Elsevier, 2005.• Anderson, J.D. Computational Fluid Dynamics: The Basics with

Applications.McGraw-Hill, New York, NY, USA, 1995.• Gupta, A. Computational Fluid Dynamic Simulation of Wind Turbines. Master’s

thesis, The Pennsylvania State University, 2006.• Somers, Dan M., and Tangler, J. Design and Experimental Results for the S809• Airfoil. National Renewable Energy Laboratory (NREL) (1997).

• R. E. a. K. Sheldahl, P. C., "Aerodynamic Characteristics of Seven Airfoil Sections Through 180 Degrees Angle of Attack for Use in Aerodynamic Analysis of Vertical Axis Wind Turbines, "Sandia National Laborotories, Albuquerque, New Mexico, USA1981.