IP Library › Granted Patent US 12,546,254
Granted Patent B1
US 12,546,254 · App. 19/213,938 · Granted Feb 10, 2026

Aircraft engine entrained particle removal system and method

Inventor: JinQuan Xu (East Greenwich, RI)
Assignee: RTX CORPORATION
F02C7/052B64C11/14B64D33/02B64D2033/022B64D2033/0246F05D2220/323F05D2260/607
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Quick Facts
Patent No.
US 12,546,254
App. No.
19/213,938
Granted
Feb 10, 2026
Kind
B1
Abstract

A method of directing particles entrained within an airflow disposed to enter a gas turbine engine of an aircraft is provided. The gas turbine engine includes a nose cone, a fan section, a compressor inlet, a compressor section, and a turbine section. The nose cone is fixed for rotation with the fan section. The method includes: providing an entrained particle removal (EPR) system configured to inject a fluid outward from the nose cone from a plurality of nozzles engaged with the nose cone, wherein the nozzles are spaced apart from one another around a circumference of the nose cone; and controlling the EPR system to inject the fluid from the plurality of nozzles into the airflow. The particles wetted by the injected fluid are subject to centrifugal force in and aft of the fan section and are directed radially outward of the compressor inlet.

Claims (37)

1 . A method of directing particles entrained within an airflow disposed to enter a gas turbine engine of an aircraft, the gas turbine engine including a nose cone, a fan section, a compressor inlet, a compressor section, and a turbine section, wherein the compressor section and the turbine section are in communication with a core gas path, and the nose cone is fixed for rotation with the fan section, the method comprising:

providing an entrained particle removal (EPR) system configured to inject a fluid outward from the nose cone from a plurality of nozzles engaged with the nose cone; and

controlling the EPR system to inject the fluid from the plurality of nozzles during at least one predetermined segment of a flight mission of the aircraft, the flight mission including an idling segment, a taxiing segment, a take-off segment, an ascent segment, a descent segment, and a landing segment;

wherein particles wetted by the injected fluid are subject to centrifugal force in and aft of the fan section and are directed radially outward of the compressor inlet.

2 . The method of claim 1 , wherein the gas turbine engine is a turbofan engine disposed within a nacelle, and a bypass duct is disposed radially outside of the core gas path; and

wherein particles wetted by the injected fluid are subject to centrifugal force in and aft of the fan section and are directed radially outward of the compressor inlet and into the bypass duct.

3 . The method of claim 2 , wherein the fluid is provided from a fluid source that is located externally to the nose cone.

4 . The method of claim 1 , wherein the gas turbine engine is in an open rotor configuration having an engine enclosure disposed radially outside of the compressor section and the turbine section; and

wherein particles wetted by the injected fluid are subject to centrifugal force in and aft of the fan section and are directed radially outward of the compressor inlet and outside of the engine enclosure.

5 . The method of claim 1 , wherein the plurality of nozzles are spaced apart from one another around a circumference of the nose cone.

6 . The method of claim 1 , wherein the step of controlling the EPR system includes controlling a volumetric fluid flow rate of the fluid injected from the plurality of nozzles.

7 . The method of claim 6 , the method further comprising:

sensing the airflow for the particles entrained within the airflow, and producing a sensor signal representative of the entrained particles within the airflow;

wherein the step of controlling the EPR system includes controlling a volumetric fluid flow rate of the fluid injected from the plurality of nozzles based on the sensor signal representative of the entrained particles within the airflow.

8 . The method of claim 1 , wherein the step of controlling the EPR system includes controlling a magnitude of motive force applied to the fluid injected from the plurality of nozzles based on operating conditions of the gas turbine engine.

9 . The method of claim 1 , wherein the plurality of nozzles comprises a first nozzle and a second nozzle; and

the step of controlling the EPR system includes applying a first magnitude of motive force to the fluid injected from the first nozzle, and applying a second magnitude of motive force to the fluid injected from the second nozzle, wherein the first magnitude is greater than the second magnitude.

10 . The method of claim 1 , further comprising the step of heating the fluid to a temperature above a freezing point of the fluid.

11 . A method of directing particles entrained within an airflow disposed to enter a gas turbine engine of an aircraft, the gas turbine engine including a nose cone, a fan section, a compressor inlet, a compressor section, and a turbine section, wherein the compressor section and the turbine section are in communication with a core gas path, and the nose cone is fixed for rotation with the fan section, the method comprising:

providing an entrained particle removal (EPR) system configured to inject a fluid outward from the nose cone from a plurality of nozzles engaged with the nose cone, wherein the plurality of nozzles are spaced apart from one another around a circumference of the nose cone; and

controlling the EPR system to inject the fluid from the plurality of nozzles into the airflow;

wherein particles wetted by the injected fluid are subject to centrifugal force in and aft of the fan section and are directed radially outward of the compressor inlet.

12 . The method of claim 11 , wherein the gas turbine engine is a turbofan engine disposed within a nacelle, and a bypass duct is disposed radially outside of the core gas path; and

wherein particles wetted by the injected fluid are subject to centrifugal force in and aft of the fan section and are directed radially outward of the compressor inlet and into the bypass duct.

13 . The method of claim 11 , wherein the step of controlling the EPR system to inject the fluid from the plurality of nozzles into the airflow includes sensing the airflow for the particles entrained within the airflow, and producing a sensor signal representative of the entrained particles within the airflow.

14 . The method of claim 13 , wherein the step of controlling the EPR system includes controlling a volumetric fluid flow rate of the fluid injected from the plurality of nozzles based on the sensor signal representative of the entrained particles within the airflow.

15 . The method of claim 11 , wherein the step of controlling the EPR system to inject the fluid from the plurality of nozzles into the airflow utilizes atmospheric data or weather data input into the EPR system.

16 . The method of claim 11 , further comprising the step of heating the fluid to a temperature above a freezing point of the fluid.

17 . The method of claim 11 , wherein the gas turbine engine is in an open rotor configuration having an engine enclosure disposed radially outside of the compressor section and the turbine section; and

wherein particles wetted by the injected fluid are subject to centrifugal force in and aft of the fan section and are directed radially outward of the compressor inlet and outside of the engine enclosure.

18 . An aircraft, comprising:

a gas turbine engine having a nose cone, a fan section, a compressor inlet, a compressor section, and a turbine section arranged along an axial centerline, wherein the compressor section and the turbine section are in communication with a core gas path;

an entrained particle removal (EPR) system including a plurality of nozzles engaged with the nose cone, wherein the nozzles are configured to inject a fluid outward from the nose cone; and

a controller in communication with the EPR system and a non-transitory memory storing instructions, which instructions when executed cause the controller to control the EPR system to provide the fluid to the nozzles for injection outward from the nozzles;

wherein the gas turbine engine is configured such that particles entrained within an airflow disposed to engage the gas turbine engine that are wetted by the fluid injected by the EPR system are directed radially outside of the compressor inlet.

19 . The aircraft of claim 18 , wherein the gas turbine engine is a turbofan type gas turbine engine disposed within a nacelle, wherein the nacelle defines a bypass duct, and wherein the gas turbine engine is configured such that particles entrained within the airflow that are wetted by the fluid injected by the EPR system are directed radially outside of the compressor inlet and into the bypass duct.

20 . The aircraft of claim 18 , wherein the gas turbine engine is an open rotor type gas turbine engine, and wherein the gas turbine engine is configured such that particles entrained within the airflow that are wetted by the fluid injected by the EPR system are directed radially outside of the compressor inlet and an engine enclosure disposed radially outside of the core gas path.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 21, 2025
From: XU, JINQUAN
To: RTX CORPORATION
Reel/Frame 071175/0277 →
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Cited By (1)
US 12,703,497