Dynamic modeling and fault feature extraction of wind turbine gearbox under random excitation

He Jun, Yang Shi-xi, Gan Chun-biao

Journal of Vibration and Shock ›› 2016, Vol. 35 ›› Issue (15) : 35-40.

PDF(1418 KB)
PDF(1418 KB)
Journal of Vibration and Shock ›› 2016, Vol. 35 ›› Issue (15) : 35-40.

Dynamic modeling and fault feature extraction of wind turbine gearbox under random excitation

  • He Jun, Yang Shi-xi, Gan Chun-biao
Author information +
History +

Abstract

This paper investigates the dynamic characteristics of wind turbine gearbox under random excitation, meanwhile, the characteristics of typical localized tooth defect is extracted. first, a 16-degree-of-freedom dynamic model including several groups of random uncertain wind load is developed, the time-frequency spectrum and probability density function of the internal gear vibration signal are analyzed to study the effect of random uncertain wind load on the gearbox. Then, localized tooth defect of different degree is considered, synchrosqueezed wavelet transforms is used to analyse the numerical results. The research results provide a reference for the analysis of dynamic characteristics of wind turbine gearbox under different conditions.

Key words

wind turbine gearbox / random excitation / dynamic modeling / Synchrosqueezing / fault feature extraction 

Cite this article

Download Citations
He Jun, Yang Shi-xi, Gan Chun-biao . Dynamic modeling and fault feature extraction of wind turbine gearbox under random excitation[J]. Journal of Vibration and Shock, 2016, 35(15): 35-40

References

 [1] Bartelmus W. Mathematical modelling and computer simulations as an aid to gearbox diagnostics[J]. Mechanical Systems and Signal Processing. 2001, 15(5): 855-871.
 [2] Parey A, El Badaoui M, Guillet F, et al. Dynamic modelling of spur gear pair and application of empirical mode decomposition-based statistical analysis for early detection of localized tooth defect[J]. Journal of Sound and Vibration. 2006, 294(3): 547-561.
 [3] Wang J, Li R, Peng X. Survey of nonlinear vibration of gear transmission systems[J]. Applied Mechanics Reviews. 2003, 56(3): 309-329.
 [4] Tobe T, Sato K. Statistical Analysis of Dynamic Loads on Spur Gear Teeth[J]. Bulletin of JSME. 1977, 20(145): 882-889.
 [5] Wen Y, Yang J, Wang S. Random dynamics of a nonlinear spur gear pair in probabilistic domain[J]. Journal of Sound and Vibration. 2014, 333(20): 5030-5041.
 [6] Zg Ven H N, Houser D R. Dynamic analysis of high speed gears by using loaded static transmission error[J]. Journal of Sound and Vibration. 1988, 125(1): 71-83.
 [7] Wang J, Howard I. The torsional stiffness of involute spur gears[J]. Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science. 2004, 218(1): 131-142.
 [8] Davenport A G. The spectrum of horizontal gustiness near the ground in high winds[J]. Quarterly Journal of the Royal Meteorological SocietyQ.J.R. Meteorol. Soc. 1961, 87(372): 194-211.
 [9] Seguro J V, Lambert T W. Modern estimation of the parameters of the Weibull wind speed distribution for wind energy analysis[J]. Journal of Wind Engineering and Industrial Aerodynamics. 2000, 85(1): 75-84.
[10] Shinozuka M, Jan C M. Digital simulation of random processes and its applications[J]. Journal of Sound and Vibration. 1972, 25(1): 111-128.
[11] Xiong X, Yang S, Gan C. A new procedure for extracting fault feature of multi-frequency signal from rotating machinery[J]. Mechanical Systems and Signal Processing. 2012, 32(SI): 306-319.
[12] Daubechies I, Lu J, Wu H. Synchrosqueezed wavelet transforms: An empirical mode decomposition-like tool[J]. Applied and Computational Harmonic Analysis. 2011, 30(2): 243-261.
 
PDF(1418 KB)

Accesses

Citation

Detail

Sections
Recommended

/