IP Library › Granted Patent US 12,590,560
Granted Patent B2
US 12,590,560 · App. 18/602,880 · Granted Mar 31, 2026

Vane heating system and method

Inventors: Karthik Narayanasamy (Phoenix, AZ); Dave Dischinger (Phoenix, AZ); Sai Manohar Gollakota (Bangalore, IN); Chandiran Jayamurugan (Bangalore, IN)
Assignee: HONEYWELL INTERNATIONAL INC.
F02C7/047F01D25/02B64D2033/0233F05D2240/12H05B3/14H05B3/18H05B2214/02
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Quick Facts
Patent No.
US 12,590,560
App. No.
18/602,880
Granted
Mar 31, 2026
Kind
B2
Abstract

A vane heating system for an engine includes a plurality of static vanes, an electrically resistive material, and an electric power source. The static vanes are disposed within the engine, and each static vane has an inner surface that defines a vane cavity. The electrically resistive material is disposed within the vane cavity of each static vane. The electric power source is electrically coupled to, and is configured to selectively supply an electric current to, the electrically resistive material in each static vane. When the electric current is supplied to the electrically resistive material, a temperature of the static vane increases.

Claims (54)

1 . A vane heating system for an engine, comprising:

a plurality of static vanes disposed within the engine, each static vane having an inner surface that defines a vane cavity;

an electrically resistive material disposed within the vane cavity of each static vane; and

an electric power source electrically coupled to, and configured to selectively supply an electric current to, the electrically resistive material in each static vane,

wherein, when the electric current is supplied to the electrically resistive material, a temperature of the static vane increases,

wherein:

each vane cavity has a fillable volume;

the electrically resistive material consists essentially of polydimethylsiloxane (PDMS), polymethylmethacrylate (PMMA) and graphene that is poured into the vane cavity of each static vane and is then cured;

the electrically resistive material fills an entirety of the fillable volume and increases the structural strength of each static vane; and

an electrically insulative material is disposed between the inner surface of each static vane and the electrically resistive material.

2 . The vane heating system of claim 1 , wherein:

the system further comprises a plurality of temperature sensors, each temperature sensor configured to sense a temperature of one of the plurality of static vanes and supply a sensor signal indicative of the sensed temperature; and

the electric power source is coupled to receive the sensor signals from each temperature sensor and is further configured, in the response to the sensor signals, to selectively supply the electric current.

3 . The system of claim 1 , wherein:

the plurality of static vanes are divisible into a plurality of sets of static vanes, each set of static vanes having a predetermined number of static vanes; and

the electric power source is further configured to selectively supply the electric current to the predetermined number of static vanes in each set of static vanes, one set at a time.

4 . The system of claim 3 , wherein:

the system further comprises a plurality of temperature sensors, each temperature sensor configured to sense a temperature of one static vane in each set of static vanes and supply a sensor signal indicative of the sensed temperature; and

the electric power source is coupled to receive the sensor signals from each temperature sensor and is further configured, in the response to the sensor signals, to selectively supply the electric current to the predetermined number of static vanes in each set of static vanes, one set at a time.

5 . A gas turbine engine, comprising:

a fan section, a compressor section, a combustor section, a turbine section, and an exhaust section;

a plurality of static vanes disposed within the gas turbine engine, each static vane having an inner surface that defines a vane cavity;

an electrically resistive material disposed within the vane cavity of each static vane; and

an electric power source electrically coupled to, and configured to selectively supply an electric current to, the electrically resistive material in each static vane,

wherein, when the electric current is supplied to the electrically resistive material, a temperature of the static vane increases, and

wherein:

each vane cavity has a fillable volume;

the electrically resistive material consists essentially of polydimethylsiloxane (PDMS), polymethylmethacrylate (PMMA) and graphene that is poured into the vane cavity of each static vane and is then cured;

the electrically resistive material fills an entirety of the fillable volume and increases the structural strength of each static vane; and

an electrically insulative material is disposed between the inner surface of each static vane and the electrically resistive material.

6 . The gas turbine engine of claim 5 , wherein:

the system further comprises a plurality of temperature sensors, each temperature sensor configured to sense a temperature of one of the plurality of static vanes and supply a sensor signal indicative of the sensed temperature; and

the electric power source is coupled to receive the sensor signals from each temperature sensor and is further configured, in the response to the sensor signals, to selectively supply the electric current.

7 . The gas turbine engine of claim 5 , wherein:

the plurality of static vanes are divisible into a plurality of sets of static vanes, each set of static vanes having a predetermined number of static vanes; and

the electric power source is further configured to selectively supply the electric current to the predetermined number of static vanes in each set of static vanes, one set at a time.

8 . The gas turbine engine of claim 7 , wherein:

the system further comprises a plurality of temperature sensors, each temperature sensor configured to sense a temperature of one static vane in each set of static vanes and supply a sensor signal indicative of the sensed temperature; and

the electric power source is coupled to receive the sensor signals from each temperature sensor and is further configured, in the response to the sensor signals, to selectively supply the electric current to the predetermined number of static vanes in each set of static vanes, one set at a time.

9 . A vane heating system for an engine, comprising:

a plurality of static vanes disposed within the engine, each static vane having an inner surface that defines a vane cavity;

an electrically resistive material disposed within the vane cavity of each static vane; and

an electric power source electrically coupled to, and configured to selectively supply an electric current to, the electrically resistive material in each static vane, wherein, when the electric current is supplied to the electrically resistive material, a temperature of the static vane increases,

wherein:

each vane cavity has a fillable volume;

the electrically resistive material consists essentially of polydimethylsiloxane (PDMS), polymethylmethacrylate (PMMA) and graphene that is poured into the vane cavity of each static vane and is then cured;

the electrically resistive material fills an entirety of the fillable volume and increases the structural strength of each static vane;

an electrically insulative material is disposed between the inner surface of each static vane and the electrically resistive material;

the plurality of static vanes are divisible into a first predetermined number of sets of static vanes;

each of the sets of static vanes having an equal number of static vanes;

the system further comprises a second predetermined number of temperature sensors, the second predetermined number equal to the first predetermined number;

each of the sets of static vanes has only one static vane to which a respective one of the temperature sensors is coupled;

each temperature sensor is configured to sense a respective temperature of the respective only one static vane to which the temperature sensor is coupled and supply a sensor signal indicative of the sensed respective temperature; and

the electric power source is coupled to receive the sensor signal from each temperature sensor and is further configured, in response to the sensor signals, to selectively supply the electric current to the equal number of static vanes in each of the sets of static vanes, one set at a time.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 13, 2024
From: NARAYANASAMY, KARTHIK; DISCHINGER, DAVE; GOLLAKOTA, SAI MANOHAR; JAYAMURUGAN, CHANDRIAN
To: HONEYWELL INTERNATIONAL INC
Reel/Frame 066746/0193 →
Priority Claims (1)
IN 202411005709 · Jan 29, 2024 · national
Continuity (1)
Related Publication 20250243779A1 · Jul 31, 2025
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