Claims
- 1. An aircraft having a mission adaptive inlet for controlling airflow into a jet engine of the aircraft, comprising:a nacelle attached to an aircraft; a plurality of rigid lip segments pivotally attached to the nacelle; and a plurality of reinforced elastomer lip segments connected between two of the plurality of rigid lip segments, the reinforced elastomer lip segments being movable to control airflow into the engine without forming gaps or discontinuities in a surface of the nacelle.
- 2. The mission adaptive inlet of claim 1, further including an actuator for each of the plurality of rigid lip segments.
- 3. The mission adaptive inlet of claim 2, wherein the actuator for each of the plurality of rigid lip segments is independently operable.
- 4. The mission adaptive inlet of claim 3, further including a reinforced elastomer connector panel attached between the plurality of rigid lip segments and the nacelle.
- 5. An aircraft having a mission adaptive inlet for controlling airflow into a jet engine of the aircraft, comprising:a nacelle attached to an aircraft; a plurality of rigid lip segments at least partially forming a circumferential lip at one end of the nacelle; a plurality of actuating members operably associated with the rigid lip segments for moving the rigid lip segments to control airflow into the engine; and a circumferential elastomer connector panel for connecting the rigid lip segments to the nacelle and for permitting movement of the rigid lip segments without forming gaps or discontinuities on surfaces of the nacelle exposed to airflow during flight of the aircraft.
- 6. The mission adaptive inlet of claim 5, wherein the circumferential elastomer connector panel comprises:an outer circumferential elastomer panel and a spaced apart inner circumferential elastomer panel; and at least one of the inner and outer panels being able to compress while the other is able to stretch when each of the rigid lip segments is moved.
- 7. The mission adaptive inlet of claim 5, further comprising a plurality of reinforced elastomer lip segments coupled to the nacelle adjacent each of the rigid lip segments.
- 8. The mission adaptive inlet of claim 7, wherein the rigid lip segments and the reinforced elastomer lip segments are alternately disposed around a circumference forming the circumferential lip of the nacelle.
- 9. A method for controlling airflow into a jet engine disposed within a nacelle mounted on an aircraft, the method comprising the steps of:providing a nacelle within which is housed the jet engine; disposing a plurality of rigid lip segments in circumferential fashion around one end of the nacelle; using an elastomer connector panel to connect the rigid lip segments to the one end of the nacelle so as to form a smooth transition between each of the rigid lip segments and an outer surface of the nacelle that is free of gaps, or abrupt surface contour changes or discontinuities in the outer surface; and using a plurality of actuators to move the rigid lip segments to thereby alter the airflow into the jet engine, the elastomer connector panel preventing gaps, or abrupt surface contour changes or discontinuities from being formed in the outer surface as the rigid lip segments are moved.
- 10. The method of claim 9, further comprising the step of:securing a plurality of reinforced elastomer lip segments in a circumferential fashion to the one end of the nacelle.
- 11. The method of claim 10, wherein the step of securing a plurality of reinforced elastomer lip segments comprises securing the reinforced elastomer lip segments and the rigid lip segments in alternating fashion at the one end of the nacelle.
Parent Case Info
This application is a division of Ser. No. 09/536,904 filed Mar. 28, 2000, and this application is a division of Ser. No. 08/898,162 Jul. 22, 1997 U.S. Pat. No. 6,089,505.
US Referenced Citations (6)