Aerodynamic Performance on a Wing Using Passive and Pneumatically Active Engine Nacelle Strakes
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Abstract
The aerodynamic interactions at the nacelle-wing junction create complex flow structuresthat promote localized flow separation, increase aerodynamic drag, and reduce aircraft effi-
ciency. To mitigate these aerodynamic penalties, this thesis experimentally evaluated pas-
sive and active pneumatic nacelle-mounted strakes installed at the nacelle-wing junction of
a semi-span wing model representative of a Boeing 737-800 wing planform. Low-speed wind
tunnel experiments were conducted over a wing angle of attack (α) range from −5◦ to 20◦
under representative cruise, takeoff, and landing conditions with flap deflection angles (δf )
of 0◦, 20◦, and 45◦. Aerodynamic performance was evaluated using measurements of lift co-
efficient (CL), drag coefficient (CD), and lift-to-drag ratio (L/D). The results demonstrated
that the effectiveness of both passive and active strakes depended strongly on flap deflection
and flow control configuration. Passive strakes reduced CD, increasing L/D by up to 36.5%
during cruise and 22.8% during landing, but generally degraded performance during takeoff
because drag increases outweighed modest lift increases. Active strakes achieved the greatest
improvement during cruise, increasing L/D by 42.9%, but reduced aerodynamic efficiency
during takeoff and landing for the same reason. These findings demonstrate that effective
nacelle-wing flow control depends on matching the flow control strategy to the surrounding
aerodynamic environment.
Description
Thesis (Master's)--University of Washington, 2026
