A Computational Efficient Modelling of Laminar Separation Bubbles
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A Computational Efficient Modelling of Laminar Separation Bubbles

A Computational Efficient Modelling of Laminar Separation Bubbles


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About the Book

In predicting the aerodynamic characteristics of airfoils operating at low Reynolds numbers, it is often important to account for the effects of laminar (transitional) separation bubbles. Previous approaches to the modelling of this viscous phenomenon range from fast but sometimes unreliable empirical correlations for the length of the bubble and the associated increase in momentum thickness, to more accurate but significantly slower displacement-thickness iteration methods employing inverse boundary-layer formulations in the separated regions. Since the penalty in computational time associated with the more general methods is unacceptable for airfoil design applications, use of an accurate yet computationally efficient model is highly desirable. To this end, a semi-empirical bubble model was developed and incorporated into the Eppler and Somers airfoil design and analysis program. The generality and the efficiency was achieved by successfully approximating the local viscous/inviscid interaction, the transition location, and the turbulent reattachment process within the framework of an integral boundary-layer method. Comparisons of the predicted aerodynamic characteristics with experimental measurements for several airfoils show excellent and consistent agreement for Reynolds numbers from 2,000,000 down to 100,000. Dini, Paolo and Maughmer, Mark D. Unspecified Center AERODYNAMIC CHARACTERISTICS; BOUNDARY LAYER SEPARATION; BOUNDARY LAYERS; BUBBLES; DESIGN ANALYSIS; MATHEMATICAL MODELS; PREDICTION ANALYSIS TECHNIQUES; TURBULENCE; AIRFOILS; ITERATION; LOW REYNOLDS NUMBER; MOMENTUM; THICKNESS...


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Product Details
  • ISBN-13: 9781722893620
  • Publisher: Createspace Independent Publishing Platform
  • Publisher Imprint: Createspace Independent Publishing Platform
  • Height: 279 mm
  • No of Pages: 168
  • Spine Width: 9 mm
  • Width: 216 mm
  • ISBN-10: 1722893621
  • Publisher Date: 17 Jul 2018
  • Binding: Paperback
  • Language: English
  • Returnable: N
  • Weight: 404 gr


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