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A methodology of wind turbines selection for the given wind conditions

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The following paper presents a methodology of wind turbines selection with a axis of rotation based on measurements of wind conditions specific for the wind power sector. Basic properties and characteristics used in the wind power sector, as well as a proper measurement campaign along with determining the necessary instrumentation and the methodology of its use, are the basic parameters that determine the decision of wind farm investment. The main goal of those activities is to gather the accurate meteorological data in sufficient amount using a measurement tower situated at a possible future location of a wind farm. This method is used to identify the direction, speed, gust and energy of the wind. Measurements were made in northern Poland using a measurement system based on a 80-meter-high telescopic mast. The system was equipped with instrumentation necessary to measure and record the basic wind parameters, and was made by the Windhunter Serwis Ltd. Company headquartered in Koszalin. The reliability of measurements was verified using the statistical methods based on the Weitbull’s distribution and the windrose. Thus, the energy potential of the raw air stream was determined with a possible future use in a wind farm sitting.
Rocznik
Strony
171--178
Opis fizyczny
Bibliogr. 14 poz., rys., tab., wykr.
Twórcy
  • Windhunter s.c., ul. Morska 18 75-221 Koszalin
autor
  • Windhunter s.c., ul. Morska 18 75-221 Koszalin
  • Faculty of Mechanical Engineering, Department of Energetics, Koszalin University of Technology, Raclawicka 15-17, 75-620, Koszalin, Poland
Bibliografia
  • 1. Norma IEC 61400-12-1 : Wind turbines: Part 21-1: Power performance of electricity producing wind turbines.
  • 2. EN 61400-12-1 : 2006 Wind turbines. Power performance measurements of electricity producing wind turbines
  • 3. Gumuła S. et al. (2006). Wind energy, University of Science and Education Publishing House AGH, Cracow. (in Polish)
  • 4. Lubośny Z. (2006). Wind power plants in the power system, WNT, Warsaw. (in Polish)
  • 5. Manweell J.F., McGowan J.G., Rogers A.L. (2002). Wind energy explained, Theory, Design and Aplication. John Wiley&Sons.
  • 6. Jagodziński W. (1959). Wind turbines. PWT, Warsaw. (in Polish)
  • 7. Betz A. (1920). Das Maximum der theoretisch möglichen Ausnutzung des Windes durch Windmotoren. Zeitschrift für das gesamte Turbinenwesen, No. 26, s. 307-309.
  • 8. Prandtl L., Betz A. (1927). Four essays on the hydrodynamics and aerodynamics (original German title: Vier Abhandlungen zur Hydrodynamik Und Aerodynamik). Göttinger Nachr.: Göttingen.
  • 9. Okulov V., Sørensen J.N. (2008). Refined Betz limit for rotors with a finite number of blades. Wind Energy, No. 11, pp. 415-26.
  • 10. Goldstein S. (1944). On the limiting values for infinite pitch of a parameter occurring in airscrew theory. Proc. Cambridge Philos. Soc., No. 40, pp. 146-50.
  • 11. Vaz J.R.P., Wood D.H. (2016). Performance analysis of wind turbines at low tip-speed ratio using the Betz-Goldstein model. Energy Conversion and Management, No. 126, pp. 662-672.
  • 12. Lorenc H. (1996). Structure and power resources of wind in Poland, Research materials. Series: Metrology – 25th IMiGW, Warsaw. (in Polish)
  • 13. Sobolewski A., Żurański J.A. (1981). Wind Energy Resources in Poland. Central Research and Design Center for Industrial Construction, Bulletin Year XX, No. 1/204, Warsaw. (in Polish)
  • 14. Zapałowicz Z. (2017). Influence of irradiance and ambient temperature on roof coating temperature and heat flux transferred to interior of building. Journal of Mechanical and Energy Engineering, Vol. 1(41), No. 1, pp. 107-112.
Uwagi
PL
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę (zadania 2017).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-007a8bc4-017b-4300-881f-819db8e259d8
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