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Catastrophe-theory-based modeling of airfoil-stall boundary at low reynolds numbers

Publication ,  Journal Article
Li, Z; Zhang, P; Pan, T; Li, Q; Zhang, J; Dowell, EH
Published in: AIAA Journal
January 1, 2018

Airfoil stall at low Reynolds numbers is a complex nonlinear dynamic phenomenon, which is characterized by catastrophe and hysteresis. It is difficult but important to mathematically describe the stall points under different Reynolds numbers. In this paper, taking the clockwise hysteresis as an example, a modeling method is proposed to describe the boundary of static airfoil stall according to the topological properties and physical characteristics of airfoil stall. Through numerical simulations, the lift characteristics of an airfoil at different Reynolds numbers are computed, and it is found thatReynolds number can affect not only the catastrophe and hysteresis of airfoil stall, but also the size of the hysteresis loop. Next, the static stall at low Reynolds numbers and the dynamic behavior described by the cusp-catastrophic model are proved to have a similarity in spatial topology and physical properties. According to the topological invariant rules, the topological-mapping relationship between the catastrophe-point set of the cusp-catastrophic model and the stall points of the airfoil stall is established through the development of an accurate topological-transformation function.Consequently, the catastrophe lines described by the cusp-catastrophic model can be used to represent the static-stall boundary of the airfoil at differentReynolds numbers.The effect ofmodel description is verified by comparing themodel-predicted valueswith the simulated values, and the error is found to be less than1%.

Duke Scholars

Published In

AIAA Journal

DOI

ISSN

0001-1452

Publication Date

January 1, 2018

Volume

56

Issue

1

Start / End Page

36 / 45

Related Subject Headings

  • Aerospace & Aeronautics
  • 4012 Fluid mechanics and thermal engineering
  • 4001 Aerospace engineering
  • 0913 Mechanical Engineering
  • 0905 Civil Engineering
  • 0901 Aerospace Engineering
 

Citation

APA
Chicago
ICMJE
MLA
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Li, Z., Zhang, P., Pan, T., Li, Q., Zhang, J., & Dowell, E. H. (2018). Catastrophe-theory-based modeling of airfoil-stall boundary at low reynolds numbers. AIAA Journal, 56(1), 36–45. https://doi.org/10.2514/1.J056048
Li, Z., P. Zhang, T. Pan, Q. Li, J. Zhang, and E. H. Dowell. “Catastrophe-theory-based modeling of airfoil-stall boundary at low reynolds numbers.” AIAA Journal 56, no. 1 (January 1, 2018): 36–45. https://doi.org/10.2514/1.J056048.
Li Z, Zhang P, Pan T, Li Q, Zhang J, Dowell EH. Catastrophe-theory-based modeling of airfoil-stall boundary at low reynolds numbers. AIAA Journal. 2018 Jan 1;56(1):36–45.
Li, Z., et al. “Catastrophe-theory-based modeling of airfoil-stall boundary at low reynolds numbers.” AIAA Journal, vol. 56, no. 1, Jan. 2018, pp. 36–45. Scopus, doi:10.2514/1.J056048.
Li Z, Zhang P, Pan T, Li Q, Zhang J, Dowell EH. Catastrophe-theory-based modeling of airfoil-stall boundary at low reynolds numbers. AIAA Journal. 2018 Jan 1;56(1):36–45.
Journal cover image

Published In

AIAA Journal

DOI

ISSN

0001-1452

Publication Date

January 1, 2018

Volume

56

Issue

1

Start / End Page

36 / 45

Related Subject Headings

  • Aerospace & Aeronautics
  • 4012 Fluid mechanics and thermal engineering
  • 4001 Aerospace engineering
  • 0913 Mechanical Engineering
  • 0905 Civil Engineering
  • 0901 Aerospace Engineering