Items by Cleaver, David
![]() | Up a level |
Book Sections
Cleaver, D. J., 2012. Effect of airfoil shape on flow control by small-amplitude oscillations. In: 50th AIAA Aerospace Sciences Meeting Including the New Horizons Forum and Aerospace Exposition. Reston, Va.: American Institute of Aeronautics and Astronautics.
Articles
Cleaver, D., Calderon, D. E., Wang, Z. and Gursul, I., 2013. Periodically plunging foil near a free surface. Experiments in Fluids, 54, 1491.
Cleaver, D. J., 2012. Bifurcating flows of plunging airfoils at high Strouhal numbers. Journal of Fluid Mechanics, 708, pp. 349-376.
Cleaver, D., Wang, Z. and Gursul, I., 2012. Forthcoming. Investigation of mechanisms of high lift for a flat-plate airfoil undergoing small-amplitude plunging oscillations. AIAA Journal
Cleaver, D. J., Wang, Z., Gursul, I. and Visbal, M. R., 2011. Lift enhancement by means of small-amplitude airfoil oscillations at low Reynolds numbers. AIAA Journal, 49 (9), pp. 2018-2033.
Conference or Workshop Items
Cleaver, D., Wang, Z. and Gursul, I., 2013. Oscillating Flexible Wings at Low Reynolds Numbers. In: 51st AIAA Aerospace Sciences Meeting, 2013-01-07 - 2013-01-10, Grapevine, Texas.
Cleaver, D. J., 2012. Rigid and Flexible Foils Oscillating Near a Free Surface. In: 50th AIAA Aerospace Sciences Meeting, 2012-01-06 - 2012-01-09, Nashville, Tennessee.
Cleaver, D. J., Wang, Z. and Gursul, I., 2010. Vortex mode bifurcation and lift force of a plunging airfoil at low reynolds numbers. In: 48th AIAA Aerospace Sciences Meeting, 2010-01-07 - 2010-01-10, Orlando, Florida.
Cleaver, D., Wang, Z. and Gursul, I., 2009. Lift enhancement on oscillating airfoils. In: 39th AIAA Fluid Dynamics Conference, 2009-06-22 - 2009-06-25, San Antonio, Texas.
Cleaver, D., Wang, Z. and Gursul, I., 2009. Delay of stall by small amplitude airfoil oscillation at low reynolds numbers. In: 47th AIAA Aerospace Sciences Meeting, 2009-01-05 - 2009-01-08, Orlando, Florida.
Thesis
Cleaver, D., 2011. Low Reynolds number flow control through small-amplitude high-frequency motion. Thesis (Doctor of Philosophy (PhD)). University of Bath.
