Jet engine installation
Noise generated by a gas turbine engine 6 supported by a pylon 8 on a wing 2 of an aircraft is reduced by influencing a shear layer generated between the free-stream flowfield and flow from the engine 6 . The shear layer is influenced by means of one or more winglets 18, 20, 22 which interact with the free-stream flowfield to deflect the shear layer 14 downwardly, to avoid interaction with a flap 4 on the wing 2 , or to reduce the strength of the shear layer 14.
1. A jet engine installation on an aircraft, comprising:
a jet engine supported beneath a wing of an aircraft by a pylon; and
a flow deflector being disposed on a lateral side of the pylon to influence a shear layer generated between flow from the engine and the surrounding free-stream flowfield,
the flow deflector being adjustable about an axis which extends transversely of the pylon.
2. A jet engine installation as claimed in claim 1 , in which the engine is a turbofan engine.
3. A jet engine installation as claimed in claim 2 , in which the flow deflector is disposed to influence a shear layer generated between bypass flow from the engine and the free-stream flowfield.
4. A jet engine installation as claimed in claim 1 , in which the flow deflector is mounted on the pylon.
5. A jet engine installation as claimed in claim 4 , in which the flow deflector extends from the pylon substantially in the spanwise direction of the wing.
6. A jet engine installation as claimed in claim 1 , in which the deflector is positioned above the fan nacelle.
7. A jet engine installation as claimed in claim 1 , in which the deflector is positioned rearwardly of the trailing edge of the fan nacelle.
8. A jet engine installation as claimed in claim 1 , in which the deflector is positioned rearwardly of the trailing edge of the core fairing.
9. A jet engine installation as claimed in claim 1 , in which the trailing edge of the deflector is undulated.
10. A jet engine installation as claimed in claim 1 , in which the deflector is rotatable.
11. A jet engine installation as claimed in claim 10 , in which the deflector is rotatable to provide an angle of attack which can vary in the range from 0° to 15° relative to the angle of attack of the wing.
12. A jet engine installation as claimed in claim 1 , in which the rotation of the deflector is achieved using a linear actuator.
13. A jet engine installation as claimed in claim 1 , in which the flow deflector is positioned so as to be above the shear layer during normal flight of the aircraft.
14. A jet engine installation as claimed in claim 1 , in which the deflector deflects the surrounding flow downwards.
15. A jet engine installation as claimed in claim 1 , in which the deflector deflects the surrounding flow sideways.
16. A method of reducing noise during flight from an aircraft engine supported by a pylon beneath a wing of the aircraft, the method comprising:
deploying a flow deflector that is disposed on a lateral side of the pylon to deflect free-stream airflow between the engine and the wing thereby to influence a shear layer generated between the free-stream flowfield and flow from the engine, the flow deflector being deployed by rotating the flow deflector about an axis extending transversely of the pylon.
17. A method as claimed in claim 16 , in which deployment of the flow deflector causes free-stream airflow to be deflected downwards thereby to deflect the shear layer away from the wing.
18. A method as claimed in claim 16 , in which deployment of the flow deflector generates turbulence in the free-stream flowfield which promotes mixing of the free-stream airflow and the shear layer thereby to reduce the strength of the shear layer.
19. A method as claimed in claim 16 , in which deployment of the flow deflector accelerates flow over the pylon thereby to reduce the strength of the shear layer.