全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

相关文章

更多...

Performance Assessment of Darrieus Turbine with Modified Trailing Edge Airfoil for Low Wind Speeds

DOI: 10.4236/sgre.2017.812028, PP. 425-439

Keywords: Darrieus Wind Turbine, Trailing Edge Cavity, Low Wind Speed and Truncated Airfoil

Full-Text   Cite this paper   Add to My Lib

Abstract:

Darrieus wind turbines are simple lift based machines with exceptionally high efficiencies in terms of power coefficient compared to similar drag based vertical axis turbines. However, in low Reynolds numbers, a notable performance loss was reported. As a potential solution, truncated NACA 0018 airfoil (NACA 0018TC-39) has been introduced with baseline cavity modification to achieve better start-up characteristics and to enhance the low wind speed performance. The baseline cavity will provide an additional benefit of reverse drag at low TSR which is obligatory for low wind speed start-up. Numerical optimization has been carried out on the conceived airfoil NACA 0018TC-39 to find out the effective truncation percentage in terms of the chord. The numerical study has been extended to compare NACA 0018 and NACA 0018TC-39 airfoil for their aerodynamic performances in terms of lift, drag coefficients and separation characteristics. The NACA 0018TC-39 airfoil was incorporated within a non-swept straight bladed Darrieus turbine miniature to experimentally evaluate the performance in terms of dynamic power coefficient, dynamic torque coefficient and static torque coefficient and compared with conventional NACA 0018 airfoil at six different Reynolds numbers 178917, 193827, 208737, 223646, 238556 and 268376. The experimental contrast implied that NACA 0018TC-39 airfoil turbine yielded almost double power coefficients at low Reynolds number compared to conventional NACA 0018 airfoil without hampering its performance at higher Reynolds number.

References

[1]  Redlinger, R., Andersen, P. and Morthorst, P. (2016) Wind Energy in the 21st Century: Economics, Policy, Technology and the Changing Electricity Industry. Springer, Berlin.
[2]  Ward, J.B., Eaton, J.R. and Hale, H.W. (1950) Losses in Power Transmission Networks. Electrical Engineering, 69, 451-451.
https://doi.org/10.1109/EE.1950.6433860
[3]  Tjiu, W., Marnoto, T., Mat, S., Ruslan, M.H. and Sopian, K. (2015) Darrieus Vertical Axis Wind Turbine for Power Generation II: Challenges in HAWT and the Opportunity of Multi-Megawatt Darrieus VAWT Development. Renewable Energy, 75, 560-571.
https://doi.org/10.1016/j.renene.2014.10.039
[4]  Wenehenubun, F., Saputra, A. and Sutanto, H. (2015) An Experimental Study on the Performance of Savonius Wind Turbines Related with the Number of Blades. Energy Procedia, 68, 297-304.
https://doi.org/10.1016/j.egypro.2015.03.259
[5]  van Bussel, G.J.W. (2013) Electricity Generation Electricity Generation with Small Wind Turbines Wind Turbine, Renewable Energy Systems. Springer, Berlin, 696-713.
[6]  Abraham, J.P., Plourde, B.D., Mowry, G.S., Minkowycz, W.J. and Sparrow, E.M. (2012) Summary of Savonius Wind Turbine Development and Future Applications for Small-Scale Power Generation. Journal of Renewable and Sustainable Energy, 4, Article ID: 042703.
https://doi.org/10.1063/1.4747822
[7]  Karthikeya, B.R., Negi, P.S. and Srikanth, N. (2016) Wind Resource Assessment for Urban Renewable Energy Application in Singapore. Renewable Energy, 87, 403-414.
https://doi.org/10.1016/j.renene.2015.10.010
[8]  Eriksson, S., Bernhoff, H. and Leijon, M. (2008) Evaluation of Different Turbine Concepts for Wind Power. Renewable and Sustainable Energy Reviews 12, 1419-1434.
https://doi.org/10.1016/j.rser.2006.05.017
[9]  Bahaj, A.S., Myers, L. and James, P.A.B. (2007) Urban Energy Generation: Influence of Micro-Wind Turbine Output on Electricity Consumption in Buildings. Energy and Buildings, 39, 154-165.
https://doi.org/10.1016/j.enbuild.2006.06.001
[10]  Kumar, M., Surya, M.M.R., Sin, N.P. and Srikanth, N. (2017) Design and Experimental Investigation of Airfoil for Extruded Blades. International Journal of Advances in Agricultural and Environmental Engineering (IJAAEE), 3, 2349-1523.
[11]  Worasinchai, S., Ingram, G.L. and Dominy, R.G. (2014) The Physics of H-Darrieus Turbine Starting Behaviour. Proceedings of the ASME Turbo Expo, Dusseldorf, 16-20 June 2014.
https://doi.org/10.1115/GT2014-25461
[12]  Scheurich, F., Fletcher, T.M. and Brown, R.E. (2011) Simulating the Aerodynamic Performance and Wake Dynamics of a Verti-cal-Axis Wind Turbine. Wind Energy, 14, 159-177.
https://doi.org/10.1002/we.409
[13]  Gorlov, A. (1998) Development of the Helical Reaction Hydraulic Turbine. Final Technical Report, 1 July 1996-30 June 1998, Northeastern University, Boston.
https://doi.org/10.2172/666280
[14]  Baker, J.R. (1983) Features to Aid or Enable Self Starting of Fixed Pitch Low Solidity Vertical Axis Wind Turbines. Journal of Wind Engineering and Industrial Aerodynamics, 15, 369-380.
https://doi.org/10.1016/0167-6105(83)90206-4
[15]  Blackwell, B.F. and Reis, G.E. (1974) Blade Shape for a Troposkien Type of Vertical-Axis Wind Turbine, Sandia Labs, Albuquerque.
[16]  Healy, J.V. (1978) The Influence of Blade Thickness on the Output of Vertical Axis Wind Turbines. Wind Engineering, 2, 1-9.
[17]  Parchen, R., Bruggeman, J.C. and Dassen, A.G.M. (1996) The Effect of the Blade Thickness of Wind Turbine Blades on the Noise Due to Inflow Turbulence. Acustica, 82, S82-S82.
[18]  Zervos, A. and Mudry, M. (1988) Aerodynamic Design and Testing of Blade Profiles for Vertical Axis Wind Turbines. Commission of the European Communities, Contractors’ Meeting, 309-320.
[19]  Lachenal, X., Daynes, S. and Weaver, P.M. (2013) Review of Morphing Concepts and Materials for Wind Turbine Blade Applications. Wind Energy, 16, 283-307.
https://doi.org/10.1002/we.531
[20]  Zayas, J.R., Van Dam, C.P., Chow, R., Baker, J.P. and Mayda, E.A. (2007) Active Aerodynamic Load Control for Wind Turbine Blades. Load Control for Wind Turbine Blades, European Wind Energy Conference.
[21]  Kumar, M., Mohan Ram Surya, M. and Srikanth, N. (2017) On the Improvement of Starting Torque of Darrieus Wind Turbine with Trapped Vortex Airfoil. IEEE International Conference on Smart Grid and Smart Cities, Singapore, 23-26 July 2017, 120-125.
[22]  Kumar, M., Mohan Ram Surya, M. and Srikanth, N. (2017) Comparative CFD Analysis of Darrieus Wind Turbine with NTU-20-V and NACA0018 Airfoils. IEEE International Conference on Smart Grid and Smart Cities, Singapore, 23-26 July 2017, 108-114.
[23]  Maheri, A. and Isikveren, A.T. (2010) Performance Prediction of Wind Turbines Utilizing Passive Smart Blades: Approaches and Evaluation. Wind Energy, 13, 255-265.
https://doi.org/10.1002/we.340
[24]  Yang, Y., Li, C., Zhang, W., Guo, X. and Yuan, Q. (2017) Investigation on Aerodynamics and Active Flow Control of a Vertical Axis Wind Turbine with Flapped Airfoil. Journal of Mechanical Science and Technology, 31, 1645-1655.
https://doi.org/10.1007/s12206-017-0312-0
[25]  Law, S.P. and Gregorek, G.M. (1987) Wind Tunnel Evaluation of a Truncated NACA 64-621 Airfoil for Wind Turbine Applications.
[26]  Baker, J.P., Mayda, E.A. and Van Dam, C.P. (2006) Experimental Analysis of Thick Blunt Trailing-Edge Wind Turbine Airfoils. Journal of Solar Energy Engineering, 128, 422-431.
https://doi.org/10.1115/1.2346701
[27]  Tangler, J.L. and Somers, D.M. (1995) NREL Airfoil Families for HAWTs. National Renewable Energy Lab., Golden.
[28]  Gangadharacharya, K.B. (2015) Vortex Shedding and Aerodynamic Drag on Truncated Trailing Edge Airfoil.
[29]  Baker, J.P. (2009) Drag Reduction of a Blunt Trailing-Edge Airfoil. University of California, Davis.

Full-Text

Contact Us

service@oalib.com

QQ:3279437679

WhatsApp +8615387084133