IP Library Granted Patent US 7,805,822
Granted Patent B2
US 7,805,822 · App. 10/736,019 · Granted Oct 5, 2010

Process for removing thermal barrier coatings

View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 7,805,822
App. No.
10/736,019
Granted
Oct 5, 2010
Kind
B2
Abstract

A process which uses an air jet containing non-abrasive particulate media at a low pressure which selectively removes thermal barrier coatings from components without damaging the metallic substrate. This process selectively removes thermal barrier coatings from the cooling holes of components.

Claims (40)

1. A process for removing a thermal barrier ceramic coating from a cooling hole of a component comprising:

drilling cooling holes into the component after a bond coat application and prior to a thermal barrier ceramic coating application;

coating the component containing the cooling holes with the thermal barrier ceramic coating;

directing an air jet at a side of the component, opposing a surface having the thermal barrier ceramic coating, the jet containing a non-abrasive spherical particulate media and emitting the media from a nozzle of the jet at a low pressure wherein said low pressure is insufficient for the media to damage a substrate but said low pressure is sufficient for the media to remove the thermal barrier ceramic coating from the cooling hole; and

wherein a bond coating is interposed between the thermal barrier ceramic coating and the substrate; and

wherein the pressure of the air jet is from about 20 to 100 PSIG and wherein continuous media filtration and spherical particle separation are provided during the process.

2. The process of claim 1 wherein the spherical media particles have a diameter of from about 0.002 to 0.010 inches.

3. The process of claim 2 wherein the media is glass beads.

4. The process of claim 1 wherein the component is a turbine engine component.

5. The process of claim 4 wherein the turbine engine component is a combustion chamber or related turbine engine component.

6. The process of claim 1 wherein said bond coating is a MCrAlY coating and wherein M is selected from the group consisting of Ni, Co, Fe and mixtures thereof.

7. The process of claim 1 , wherein said thermal barrier ceramic coating is not degraded or damaged.

8. A process for removing a thermal barrier ceramic coating selectively from a cooling hole of a metallic turbine engine component consisting essentially of:

drilling cooling holes into the turbine component after a bond coat application and prior to a thermal barrier ceramic coating application;

coating the component containing the cooling holes with the thermal barrier ceramic coating;

directing an air jet at the cooling hole of the component, wherein the air jet is directed to a side, opposing a surface having the thermal barrier ceramic coating, the jet containing non-abrasive particulate spherical media and emitting the media from a nozzle of the jet at a low pressure wherein said low pressure is sufficient to selectively remove said thermal barrier ceramic coating yet insufficient for the media to damage an underlying metallic substrate of the cooling hole; and

wherein a bond coating is interposed between the thermal barrier ceramic coating and the metallic substrate; and

wherein the pressure of the air jet is from about 20 to 100 PSIG and wherein continuous media filtration and spherical particle separation are provided during the process.

9. The process of claim 8 wherein the spherical media particles have a diameter of from about 0.002 to 0.010 inches.

10. The process of claim 9 wherein the media is glass beads.

11. The process of claim 10 wherein the turbine engine component is a combustion chamber or related turbine engine component.

12. The process of claim 8 wherein the air jet is directed at the cooling hole at substantially the same angle as the cooling hole.

13. The process of claim 8 wherein the air jet with the spherical media rounds the metallic edges of the cooling hole.

14. The process of claim 8 wherein the cooling holes are drilled into the turbine component using a laser drilling process.

15. The process of claim 8 wherein said bond coating is a MCrAlY coating and wherein M is selected from the group consisting of Ni, Co, Fe and mixtures thereof.

16. The process of claim 8 , wherein said thermal barrier ceramic coating is not degraded or damaged.

17. A process for forming cooling holes on a thermal barrier ceramic coated turbine engine component comprising:

drilling cooling holes into the component after a bond coating application;

coating the component containing the cooling holes with a thermal barrier ceramic coating; and

directing an air jet at the cooling hole of the component, wherein the air jet is directed to a side of the component, opposing a surface having the thermal barrier ceramic coating, the jet containing non-abrasive particulate spherical media and emitting the media from a nozzle of the jet at a low pressure wherein said low pressure is sufficient to selectively remove said thermal barrier ceramic coating yet insufficient for the media to damage an underlying metallic substrate of the cooling hole; and

wherein the bond coating is interposed between the thermal barrier ceramic coating and the metallic substrate; and

wherein the pressure of the air jet is from about 20 to 100 PSIG and wherein continuous media filtration and spherical particle separation are provided during the process.

18. The process of claim 17 wherein the spherical media particles have a diameter of from about 0.002 to 0.010 inches.

19. The process of claim 18 wherein the media is spherical glass beads.

20. The process of claim 19 wherein the turbine engine component is a combustion chamber or related turbine engine component.

21. The process of claim 17 wherein the air jet is directed at the cooling hole at substantially the same angle as the cooling hole.

22. The process of claim 17 wherein the air jet with the spherical media rounds the metallic edges of the cooling hole.

23. The process of claim 17 wherein the cooling holes are drilled through the turbine component using a laser drilling process, wherein the cooling holes are drilled after bond coat application and prior to thermal barrier ceramic coating application.

24. The process of claim 17 wherein said bond coating is a MCrAlY coating and wherein M is selected from the group consisting of Ni, Co, Fe and mixtures thereof.

25. The process of claim 17 , wherein said thermal barrier ceramic coating is not degraded or damaged.

Assignments (6)
RELEASE OF SECURITY INTEREST IN PATENTS Recorded Feb 24, 2023
From: ROYAL BANK OF CANADA
To: TURBOCOMBUSTOR TECHNOLOGY, INC.
Reel/Frame 062854/0572 →
RELEASE OF SECURITY INTEREST Recorded Dec 5, 2013
From: RBS CITIZENS, N.A.
To: TURBOCOMBUSTOR TECHNOLOGY, INC.
Reel/Frame 031767/0411 →
SECURITY AGREEMENT Recorded Dec 2, 2013
From: TURBOCOMBUSTOR TECHNOLOGY, INC.
To: ROYAL BANK OF CANADA, AS COLLATERAL AGENT
Reel/Frame 031748/0335 →
RELEASE OF SECURITY INTEREST Recorded Jan 5, 2012
From: BANK OF AMERICA, N.A.
To: TURBOCOMBUSTOR TECHNOLOGY, INC.
Reel/Frame 027482/0156 →
SECURITY AGREEMENT Recorded Jan 5, 2012
From: TURBOCOMBUSTOR TECHNOLOGY, INC.
To: RBS CITIZENS, N.A.
Reel/Frame 027482/0503 →
SECURITY AGREEMENT Recorded Aug 29, 2007
From: TURBOCOMBUSTOR TECHNOLOGY, INC.
To: LASALLE BUSINES CREDIT, LLC
Reel/Frame 019754/0365 →