IP Library › Granted Patent US 12,577,883
Granted Patent B2
US 12,577,883 · App. 18/761,008 · Granted Mar 17, 2026

Blade tip clearance control using material with negative thermal expansion coefficients

Inventors: Naveena K.P. (Bengaluru, IN); Ravindra Shankar Ganiger (Bengaluru, IN); Kishore Budumuru (Bengaluru, IN); Kudum Shinde (Bengaluru, IN)
Assignee: General Electric Company
F01D11/18F01D11/122F01D11/08F01D11/20F01D11/22F01D11/24F01D25/005F05D2240/11F05D2300/502F05D2300/5021F05D2300/5024F05D2300/603
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Quick Facts
Patent No.
US 12,577,883
App. No.
18/761,008
Granted
Mar 17, 2026
Kind
B2
Abstract

Clearance control systems with thermal actuators are disclosed. An example thermally-actuated clearance control system for a gas turbine engine includes a compliant material; a high-conductive material coupled to a first surface of the compliant material, the high-conductive material thermally coupling the compliant material to a heated substance, the compliant material to expand radially-inward toward a fan blade when the high-conductive material provides heat; and an abradable material coupled to a second surface of the compliant material facing the fan blade.

Claims (35)

1 . A thermally-actuated clearance control system for a gas turbine engine, the thermally-actuated clearance control system comprising:

a thermally-actuated shroud;

a sensor to measure a clearance between the thermally-actuated shroud and a fan blade; and

a controller to at least:

heat the thermally-actuated shroud in response to the measured clearance being more than a threshold; and

cool the thermally-actuated shroud in response to the measured clearance being less than the threshold,

wherein the thermally-actuated shroud is positioned with respect to a protective material, the protective material including a compliant material, an abradable material, and a high-conductive material, the high-conductive material thermally coupling the compliant material to a heated substance, the high-conductive material providing a barrier to the compliant material against the heated substance.

2 . The thermally-actuated clearance control system of claim 1 , wherein the

high-conductive material is coupled to a first surface of the compliant material, the first surface facing a casing, the compliant material to expand radially-inward toward the fan blade when the high-conductive material provides heat; and wherein the

abradable material is coupled to a second surface of the compliant material facing the fan blade.

3 . The thermally-actuated clearance control system of claim 1 , wherein the thermally-actuated shroud is positioned inside a fan case.

4 . The thermally-actuated clearance control system of claim 1 , wherein the controller is a thermal actuation controller in communication with a Full Authority Digital Engine Control.

5 . The thermally-actuated clearance control system of claim 1 , wherein the controller is to heat the thermally-actuated shroud with a flow of hot lube oil and cool the thermally-actuated shroud with a flow of cold lube oil.

6 . The thermally-actuated clearance control system of claim 1 , wherein the controller is to heat the thermally-actuated shroud with a flow of hot air and cool the thermally-actuated shroud with a flow of cool air.

7 . The thermally-actuated clearance control system of claim 1 , wherein the thermally-actuated shroud is to move radially inward when heated and radially outward when cooled.

8 . The thermally-actuated clearance control system of claim 1 , wherein the measured clearance is measured at a first time, and wherein the controller is to stop heating in response to the measured clearance, when measured at a second time, satisfying the threshold.

9 . A gas turbine comprising:

a compressor including a compressor casing and a plurality of compressor blades;

a turbine, comprising a turbine casing and a plurality of turbine blades;

a shaft rotatably coupling the compressor and the turbine; and

a thermally-actuated clearance control system comprising:

a shroud;

a sensor to measure a clearance between the shroud and a fan blade; and

a controller to at least:

heat the shroud in response to the measured clearance being more than a threshold; and

cool the shroud in response to the measured clearance being less than the threshold,

wherein the shroud is positioned with respect to a protective material the protective material including a compliant material, an abradable material, and a high-conductive material, the high-conductive material thermally coupling the compliant material to a heated substance, the high-conductive material providing a barrier to the compliant material against the heated substance.

10 . The gas turbine of claim 9 , wherein the

high-conductive material is coupled to a first surface of the compliant material, the first surface facing a casing, the compliant material to expand radially-inward toward the fan blade when the high-conductive material provides heat; and wherein the

abradable material is coupled to a second surface of the compliant material facing the fan blade.

11 . The gas turbine of claim 9 , further including a fan case, wherein the shroud is positioned inside the fan case.

12 . The gas turbine of claim 9 , wherein the controller is a thermal actuation controller in communication with a Full Authority Digital Engine Control.

13 . The gas turbine of claim 9 , wherein the controller is to heat the shroud with a flow of hot lube oil and cool the shroud with a flow of cold lube oil.

14 . The gas turbine of claim 9 , wherein the controller is to heat the shroud with a flow of hot air and cool the shroud with a flow of cool air.

15 . The gas turbine of claim 9 , wherein the measured clearance is measured at a first time, and wherein the controller is to stop heating in response to the measured clearance, when measured at a second time, satisfying the threshold.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 12, 2024
From: K.P., NAVEENA; GANIGER, RAVINDRA SHANKAR; BUDUMURU, KISHORE; SHINDE, KUDUM
To: GENERAL ELECTRIC COMPANY
Reel/Frame 068247/0331 →
Priority Claims (1)
IN 202211065931 · Nov 17, 2022 · national
Continuity (2)
Continuation 18092751 · Jan 3, 2023
Related Publication 20240352865A1 · Oct 24, 2024
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