Dual-mode plug nozzle
US-2016123178-A1 · May 5, 2016 · US
US11319832B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-11319832-B2 |
| Application number | US-202016803528-A |
| Country | US |
| Kind code | B2 |
| Filing date | Feb 27, 2020 |
| Priority date | Feb 27, 2020 |
| Publication date | May 3, 2022 |
| Grant date | May 3, 2022 |
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A variable exhaust nozzle for use with a gas turbine engine includes an outer shroud and an inner plug that can move relative to the outer shroud. The relative movement of the inner plug and the outer shroud changes the shape of the variable exhaust nozzle from one that converges in area to one that converges and then diverges in area.
Opening claim text (preview).
What is claimed is: 1. A variable exhaust nozzle for a gas turbine engine, the variable exhaust nozzle comprising an outer shroud arranged circumferentially about an axis and fixed relative to the axis to define an outer boundary surface of an exhaust nozzle flow path, the outer shroud extends axially between a forward axial location and a terminal shroud end, and the outer boundary surface decreases in diameter without any portion of the outer boundary surface extending radially outward away from the axis as the outer shroud extends axially aft from the forward axial location to the terminal shroud end, and an inner plug arranged circumferentially about the axis to define an inner boundary surface of the exhaust nozzle flow path, the inner plug extends axially between a nose and a terminal tail end, and the inner boundary surface increases in diameter to a maximum diameter and then decreases in diameter as the inner plug extends axially aft from the nose to the terminal tail end, wherein a variable area region of the exhaust nozzle flow path is defined axially between the nose of the inner plug and the terminal shroud end and defined radially between the outer boundary surface and the inner boundary surface, and wherein the inner plug is configured to translate axially relative to the outer shroud between an open position in which the outer boundary surface and the inner boundary surface cooperate to cause the variable area region of the exhaust nozzle flow path to converge in area to a first throat located aft of the maximum diameter at the terminal shroud end without diverging in area and a closed position in which the outer boundary surface and the inner boundary surface cooperate to cause the variable area region of the exhaust nozzle flow path to converge in area to a second throat and then diverge in area aft of the second throat, and the second throat is spaced apart axially from the nose of the inner plug and the terminal shroud end. 2. The variable exhaust nozzle of claim 1 , wherein the terminal tail end is located axially aft of the terminal shroud end when the inner plug is in the open position. 3. The variable exhaust nozzle of claim 2 , wherein the nose of the inner plug is located axially forward of the terminal shroud end when the inner plug is in the open position and when the inner plug is in the closed position. 4. The variable exhaust nozzle of claim 1 , wherein a minimum area of the variable area region when the inner plug is in the open position is greater than a minimum area of the variable area region when the the inner plug is in the closed position. 5. The variable exhaust nozzle of claim 1 , wherein the variable area region of the exhaust nozzle flow path diverges in area aft of the second throat without converging in area aft of the second throat. 6. The variable exhaust nozzle of claim 1 , wherein the inner plug is movable relative to the axis between a plurality of positions between the open position and the closed position and the variable exhaust nozzle further comprises an actuation controller configured to selectively move the inner plug and to stop and hold the inner plug relative to the axis in the open position, the closed position, and at least one of the plurality of positions. 7. The variable exhaust nozzle of claim 6 , wherein the inner plug is configured to default to one of the open position and the closed position in response to failure of the actuation controller. 8. The variable exhaust nozzle of claim 6 , wherein the actuation controller is configured to receive a first input indicative that the gas turbine engine is in a take-off mode and to move the inner plug to the open position in response to receiving the first input and the actuation controller is configured to receive a second input indicative that the gas turbine engine is in a cruise mode and to move the inner plug to the closed position in response to receiving the second input. 9. The variable exhaust nozzle of claim 1 , wherein the inner plug has a profile which is convex axially between the nose and the maximum diameter of the inner plug and concave axially between the maximum diameter and the terminal tail end, wherein the terminal tail end of the outer shroud is located aft of the maximum diameter in both the open position and the closed position. 10. A variable exhaust nozzle comprising an outer shroud arranged circumferentially about an axis, the outer shroud having a terminal shroud end, and an inner plug arranged circumferentially about the axis, the inner plug extends axially between a nose and a tail, the inner plug and the outer shroud cooperate to form an exhaust nozzle flow path having a variable area region defined axially between the nose of the inner plug and the terminal shroud end of the outer shroud, the inner plug having a maximum diameter located axially between the nose and the tail, wherein at least one of the outer shroud and the inner plug is movable relative to the axis between a first position in which the variable area region converges in area to a throat located aft of the maximum diameter of the inner plug without diverging in area, a second position in which the variable area region converges and then diverges in area, and a plurality of positions between the first position and the second position. 11. The variable exhaust nozzle of claim 10 , wherein the at least one of the outer shroud and the inner plug is movable relative to the axis between a plurality of positions between the first position and the second position and the variable exhaust nozzle further comprises an actuation controller configured to selectively move the at least one of the outer shroud and the inner plug and to stop and hold the at least one of the outer shroud and the inner plug relative to the axis. 12. The variable exhaust nozzle of claim 11 , wherein the at least one of the outer shroud and the inner plug is configured to default to one of the first position and the second position in response to failure of the actuation controller. 13. The variable exhaust nozzle of claim 10 , wherein the inner plug has a profile which is convex axially between the nose and the maximum diameter of the inner plug and concave axially between the maximum diameter and the tail. 14. The variable exhaust nozzle of claim 10 , wherein the outer shroud defines an outer boundary surface of the exhaust nozzle flow path, the outer shroud extends axially between a forward axial location and a terminal shroud end, and the outer boundary surface decreases in diameter as the outer shroud extends axially aft from the forward axial location to the terminal shroud end such that the outer boundary surface does not include any portion that extends radially outward away from the axis. 15. The variable exhaust nozzle of claim 10 , wherein the inner plug arranged circumferentially about the axis to define an inner boundary surface of the exhaust nozzle flow path, the inner plug extends axially between a nose and a terminal tail end, and the inner boundary surface increases in diameter and then decreases in diameter as the inner plug extends axially aft from the nose to the terminal tail end. 16. The variable exhaust nozzle of claim 10 , further comprising an actuation controller configured to move the at least one of the outer shroud and the inner plug, the actuation controller is further configured to receive a first input indicative that a gas turbine engine is in a take-off mode and to move the at least one of the outer shroud and the inner plug to the first position in response to receiving the first input, and the actuation cont
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