• Title/Summary/Keyword: wind turbine airfoil

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Aerodynamic Load Analysis at Hub and Drive Train for 1MW HAWT Blade (1MW급 풍력 터빈 블레이드의 허브 및 드라이브 트레인 공력 하중 해석)

  • Cho Bong-Hyun;Lee Chang-Su;Choi Sung-Ok;Ryu Ki-Wahn
    • 한국신재생에너지학회:학술대회논문집
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    • 2005.06a
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    • pp.25-32
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    • 2005
  • The aerodynamic loads at the blade hub and the drive shaft for 1MW horizontal axis wind turbine are calculated numerically. The geometric shape of the blade such as chord length and twist angle can be obtained fran the aerodynamic optimization procedure. Various airfoil data, that is thick airfoils at hub side and thin airfoils at tip side, are distributed along the spanwise direction of the rotor blade. Under the wind data fulfilling design load cases based on the IEC61400-1, all of the shear forces, bending moments at the hub and the low speed shaft of the drive train are obtained by using the FAST code. It shows that shear forces and bending moments have a periodic. trend. These oscillating aerodynamic loads will lead to the fatigue problem at both of the hub and drive train From the load analysis the maximum shear forces and bending moments are generated when wind turbine generator system operates in the case of the extreme speed wind condition.

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Development of an aerodynamic design program for a small wind turbine blade (소형풍력발전기용 블레이드 공력설계 프로그램 개발)

  • Yoon, Jin-Yong;Paek, In-Su;Yoo, Neung-Soo
    • Journal of the Korean Solar Energy Society
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    • v.33 no.1
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    • pp.40-47
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    • 2013
  • An aerodynamic design tool was developed for small wind turbine blades based on the blade element momentum theory. The lift and drag coefficients of blades that are needed for aerodynamic blade design were obtained in real time from the Xfoil program developed at University of Illinois. While running, the developed tool automatically accesses the Xfoil program, runs it with proper aerodynamic and airfoil properties, and finally obtains lift and drag coefficients. The obtained aerodynamic coefficients are then used to find out optimal twist angles and chord lengths of the airfoils. The developed tool was used to design a wind turbine blade using low Reynolds number airfoils, SG6040 and SG6043 to have its maximum power coefficient at a specified tip speed ratio. The performance of the blade was verified by a commercial code well known for its prediction accuracies.

Numerical study of airfoil thickness effects on the performance of J-shaped straight blade vertical axis wind turbine

  • Zamani, Mahdi;Maghrebi, Mohammad Javad;Moshizi, Sajad A.
    • Wind and Structures
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    • v.22 no.5
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    • pp.595-616
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    • 2016
  • Providing high starting torque and efficiency simultaneously is a significant challenge for vertical axis wind turbines (VAWTs). In this paper, a new approach is studied in order to modify VAWTs performance and cogging torque. In this approach, J-shaped profiles are exploited in the structure of blades by means of eliminating the pressure side of airfoil from the maximum thickness toward the trailing edge. This new profile is a new type of VAWT airfoil using the lift and drag forces, thereby yielding a better performance at low TSRs. To simulate the fluid flow of the VAWT along with J-shaped profiles originated from NACA0018 and NACA0030, a two-dimensional computational analysis is conducted. The Reynolds Averaged Navier-Stokes (RANS) equations are closed using the two-equation Shear Stress Transport (SST) turbulence model. The main objective of the study is to investigate the effects of J-shaped straight blade thickness on the performance characteristics of VAWT. The results obtained indicate that opting for the higher thickness in J-shaped profiles for the blade sections leads the performance and cogging torque of VAWT to enhance dramatically.

Effect of Airfoil surface roughness sensitivity to aerodynamic design of wind turbine blade (에어포일 표면 거칠기 민감도가 풍력 블레이드 공력 설계에 미치는 영향에 대한 연구)

  • Shin, Hyungki;Bang, Hyungjun;Kim, Soohyun;Jang, Moonseok
    • 한국신재생에너지학회:학술대회논문집
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    • 2011.11a
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    • pp.34.1-34.1
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    • 2011
  • 풍력발전기 블레이드 설계에 적용하기 위한 에어포일의 선택 혹은 설계에 있어서 가장 중요한 요소 가운데 하나는 표면 거칠기 변화에 따른 에어포일 성능의 민감도이다. 블레이드 표면은 대기 중의 먼지, 곤충 시체 등에 따라 계속적으로 오염되며 이는 에어포일의 설계 당시의 성능을 계속적으로 저감시킨다. 이러한 표면 거칠기의 증가는 에어포일의 종류에 따라 성능을 50% 이상 저감시키며 이는 블레이드의 설계 성능을 저감시키므로 블레이드 설계를 위한 에어포일 선정 단계에서 표면거칠기 민감도가 가능한 낮은 에어포일을 선정하여 블레이드의 공력 설계를 수행하게 된다. 본 연구에서는 표면 거칠기 변화로 인한 에어포일의 성능 저감이 실제 블레이드의 성능에 어떠한 영향을 주는지를 살펴 보았다. 에어포일은 표면이 깨끗한 상태와 ZZ 테입을 부착하여 표면이 심각하게 오염된 상황을 모사하여 두 경우 모두를 풍동 시험한 DU 에어포일 시리즈를 선정하였다. 3MW 급의 블레이드에 대하여 두께비 40%~18%의 에어포일을 적용하여 설계를 수행하였으며 두께비 30%~18%에어포일에 대하여 표면이 깨끗한 경우와 오염된 경우의 데이터를 적용하여 블레이드 성능 변화 및 다른 성능 변수들의 변화를 살펴보았다. 블레이드 성능에 대하여는 BEMT를 적용하여 설계 및 시뮬레이션을 수행하였다. 연구 결과 에어포일의 성능 저하는 블레이드 공력 효율에 있어서 8%의 저감을 나타내며 7%의 극한하중 저감을 보이는 것으로 나타났다.

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Airfoil wInd tunnel test for performance validation (풍력블레이드용 에어포일 성능 검증을 위한 풍동 시험)

  • Shin, Hyung-Ki;Kim, Seok-Woo
    • 한국신재생에너지학회:학술대회논문집
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    • 2007.11a
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    • pp.396-399
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    • 2007
  • 풍력 블레이드용으로 설계된 에어포일에 대하여 풍동 시험을 수행하였다. 설계된 에어포일의 레이놀즈수 범위에 맞추고자 코드 길이 40cm의 모델에 대하여 유속 17m/s, 35m/s, 50m/s에 대하여 에어포일 표면에서의 압력과 에어포일 뒤쪽 레이크에서의 압력을 측정하였다. 이를 통하여 설계에 사용된 기법의 타당성과 설계된 에어포일에 대하여 설계 변수에 대한 실질적 만족도에 대하여 평가하였다. 이와 더불어 표면 거칠기에 대한 모사를 위하여 트립도트를 부착하여 시험을 수행하였다. 이를 통하여 레이놀즈수와 표면 거칠기에 따른 에어포일의 성능 및 유동 변화 특성에 대하여 파악 할 수 있었다.

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Optimal Aerodynamic Design and Performance Analysis for Pitch-Controlled HAWT (가변 피치형 수평축 풍력 터빈의 공력 최적설계 및 피치제어 성능 연구)

  • Ryu, Ki-Wahn
    • Journal of the Korean Society for Aeronautical & Space Sciences
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    • v.35 no.10
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    • pp.891-898
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    • 2007
  • Optimal aerodynamic design for the pitch-controlled horizontal axis wind turbine and its aerodynamic performance for various pitch angles are performed numerically by using the blade element momentum theory. The numerical calculation includes effects such as Prandtl‘s tip loss, airfoil distribution, and wake rotation. Six different airfoils are distributed along the blade span, and the special airfoil i.e. airfoil of 40% thickness ratio is adopted at the hub side to have structural integrity. The nonlinear chord obtained from the optimal design procedure is linearized to decrease the weight and to increase the productivity with very little change of the aerodynamic performance. From the comparisons of the power, thrust, and torque coefficients with corresponding values of different pitch angles, the aerodynamic performance shows delicate changes for just $3^{\circ}$ increase or decrease of the pitch angle. For precisive pitch control, it requires the pitch control algorithm and its drive mechanism below $3^{\circ}$ increment of pitch angle. The maximum torque is generated when the speed ratio is smaller than the designed one.

COMPUTATIONAL ANALYSIS OF AN ELECTRO-THERMAL ICE PROTECTION SYSTEM IN ATMOSPHERIC ICING CONDITIONS (대기 결빙 조건에서의 전기열 방식 결빙보호 시스템에 관한 전산해석)

  • Raj, L.P.;Myong, R.S.
    • Journal of computational fluids engineering
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    • v.21 no.1
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    • pp.1-9
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    • 2016
  • Atmospheric icing may have significant effects not only on safety of aircraft in air, but also on performance of wind turbine and power networks on ground. Thus, ice protection measure should be developed to protect these systems from icing hazards. A very efficient method is the electro-thermal de-icing based on a process by which ice accretion is melted and blown away through aerodynamic forces. In this computational study, a state-of-the-art icing code, FENSAP-ICE, was used for the analysis of electro thermal de-icing system. Computational results including detailed conjugate heat transfer analysis were then validated with experimental data. Further, the computational model was applied to the DU21 airfoil section of NREL 5MW wind turbine with calculated heater parameters.

Proof Test of a 750kW Wind Turbine Blade (750kW 로터 블레이드 인증시험)

  • Kim, Myoung-Jin;Sung, Dae-Young;Park, Byoung-Jun
    • 한국신재생에너지학회:학술대회논문집
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    • 2008.10a
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    • pp.328-331
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    • 2008
  • For the purpose of verifying the calculation, the rotor blade shall be subjected to test for the natural frequencies and the static loading within the scope of the assessment. This paper presents a full scale static test procedure of the rotor blade for certification by GL. This blade model is manes as KM24 designed for IEC type IA. The test and calculation values are all most similar. Also there is not founded any marks of cracks or buckling at the shell, and bonding area is T/E, L/E and shear web. Therefore, the test is successful and the rotor blade is satisfied the safety requirement at the maximum design load.

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A Study on the Configuration Design and the Performance Analysis of the 20kW HAWT based on BEMT (BEMT를 적용한 20kW 수평축 풍력터빈 형상설계 및 성능해석)

  • Kang, Ho-Keun;Nam, Cheong-Do;Lee, Young-Ho;Kim, Beom-Seok
    • Journal of Advanced Marine Engineering and Technology
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    • v.30 no.6
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    • pp.669-676
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    • 2006
  • The optimum design and the performance analysis software called POSEIDON for the HAWT (Horizontal Axis Wind Turbine) is developed by use of BEMT, which is the standard computational technique for prediction of power curves of wind turbines. The Prandtl's tip loss theory is adopted to consider the blade tip loss. The lift and the drag coefficient of S-809 airfoil are predicted via X-FOIL and the post stall characteristics of S-809 also are estimated by the Viterna's equations.$^{[13]}$ All the predicted aerodynamic characteristics are fairly well agreed with the wind tunnel test results. performed by Sommers in Delft university of technology. The rated power of the testing rotor is 20kW(FIL-20) at design conditions. The experimental aerodynamic parameters and the X-FOIL data are used for the power Prediction of the FIL-20 respectively The comparison results shows good agreement in power prediction.

Introduction to the NREL Design Codes for System Performance Test of Wind Turbines - Part II : Simulators (풍력터빈 시스템 성능평가를 위한 NREL 프로그램군에 관한 소개 - 해석기를 중심으로)

  • Bang, Je-Sung;Rim, Chae Whan;Chung, Tae Young
    • 한국신재생에너지학회:학술대회논문집
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    • 2011.11a
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    • pp.42.1-42.1
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    • 2011
  • NREL NWTC Deside codes are analyzed and introduced to develop the system performance simulation program for wind turbine generator systems. In this paper, The FAST performing multi-body and flexible body dynamics, control and the AeroDyn calculating aerodynamic forces with airfoil data and wind data are explained. Furthermore, initialization and process for transfer of aerodynamic force between AeroDyn and FAST at each time step are also introduced.

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