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Flow physics of progressive-curvature Coanda surfaces in transonic circulation control

Sep 2026 · The Physics of Fluids · 0 citations · 32 references

Abstract

Premature jet separation severely limits the control authority of transonic circulation control (CC) airfoils. This study investigates the flow physics governing Coanda jet attachment and develops a progressive-curvature Coanda surface at Ma=0.72 through shape optimization of the NASA-SC(2)-0714-CC supercritical airfoil. Relative to the constant-radius baseline, the optimized progressive-curvature surface achieves 37.0% lift enhancement and extends jet deflection from 79.4° to 125.0°. Flow-field analysis shows that the performance improvement is governed by two coordinated curvature effects. A locally smaller curvature radius near the slot exit lets the under-expanded jet expand more fully along the wall. A confined shock-induced separation bubble is then bridged and reattached, and shock-cell oscillations are damped. The subsequent progressive increase in the curvature radius reduces the required centripetal acceleration as the jet momentum decays, thereby sustaining the wall-normal pressure gradient and delaying separation. The optimized geometry also retains its effectiveness at Ma=0.3, yielding 23.2% higher lift-to-drag ratio than the baseline configuration. These results demonstrate that matching surface curvature to evolving jet momentum governs transonic CC effectiveness.

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