IP Library Granted Patent US 9,714,578
Granted Patent B2
US 9,714,578 · App. 15/103,261 · Granted Jul 25, 2017

Method of depositing abradable coatings under polymer gels

Inventor: Glen Harold Kirby (Liberty Township, OH)
Assignee: General Electric Company
F01D5/288C04B35/5156C04B35/624C04B35/62222C04B41/0009C04B41/009C04B41/5024C04B41/52C04B41/85C04B41/87C04B41/89C23C16/22C23C16/44C23C16/56F01D5/284F01D9/02F01D11/12F01D11/122F01D11/125F01D25/08C04B2235/3217C04B2235/3272C04B2235/3427F05D2220/32F05D2230/314F05D2240/35F05D2260/231F05D2300/516F05D2300/6033Y02T50/672
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 9,714,578
App. No.
15/103,261
Granted
Jul 25, 2017
Kind
B2
Abstract

A method of depositing abradable coating on an engine component is provided wherein the engine component is formed of ceramic matrix composite (CMC) and one or more layers, including at least one environmental barrier coating, may be disposed on the outer layer of the CMC. An outermost layer of the structure may further comprise a porous abradable layer that is disposed on the environmental barrier coating and provides a breakable structure which inhibits blade damage. The abradable layer may be gel-cast on the component and sintered or may be direct written by extrusion process and subsequently sintered.

Claims (21)

1. A method of depositing an abradable coating on a gas turbine engine component comprising:

forming a slurry mixture comprising at least bi-modal ceramic particulate with up to about 70% by volume of coarse particulate wherein said coarse particulate is at least one of Ln2Si2O7, Ln2SiO5, silica, barium strontium aluminosilicate (BSAS), monoclinic hafnium oxide, rare earth gallium garnet (Ln2Ga2O9), where Ln is at least one of Scandium (Sc), Yttrium (Y), Lanthanum (La), Cerium (Ce), Phraseodymium (Pr), Neodymium (Nd), Promethium (Pm), Samarium (Sm), Europium (Eu), Gadolimium (Gd), Terbium (Tb), Dysprosium (Dy), Hlomium (Ho), Erbium (Er), Thulium (Tm), Ytterbium (Yb), Lutetium (Lu), and up to about 65% by volume of fine particulate, wherein said fine particulate includes at least one of Ln2Si2O7 or Ln2SiO5 where Ln is at least one of Sc, Y, La, Ce, Pr, Nd, Pm, Sm, Eu, Gd, Tb, Dy, Ho, Er, Tm, Yb, Lu, a polymer solution consisting essentially of one anionic and one cationic dispersant such that the slurry becomes a reversible gel, a low vapor pressure organic solvent and at least one sinter aid selected from the group consisting of iron, aluminum, titanium, cobalt, nickel, gallium, indium, or any compounds thereof;

direct writing said reversible gel slurry to said gas turbine engine component;

drying said reversible gel slurry at one of room temperature or a second temperature between about 30° C.-80° C. to form a reversible gel matrix; and,

sintering said dried reversible gel matrix on said gas turbine engine component at a temperature greater than about 1204° C. and less than 1357° C., forming a layer of said abradable coating having a thickness greater than about 5 mils and a porosity of about 5 percent to about 50 percent, wherein said sintered layer is also comprised of a doped rare earth disilicate where said at least one sintering aid is a doping composition that dissolves into, and dopes the rare earth disilicate.

2. The method of claim 1 , placing said gas turbine component and said direct written gel in a mold.

3. The method of claim 1 , wherein said direct writing creates a pattern on said gas turbine engine component.

4. The method of claim 3 , wherein said pattern being a plurality of ridges.

5. The method of claim 1 , wherein said direct write process is automated using robotic deposition.

6. The method of claim 1 , wherein the direct write process builds up a series of abradable ridges of multiple layers where the ridges span those of the prior layer.

7. The method of claim 1 , wherein said gas turbine component is one of a blade and a shroud.

8. The method of claim 1 , wherein said gas turbine component is formed of ceramic matrix composite (CMC).

9. The method of claim 8 , wherein said gas turbine engine component comprises an environmental barrier coating.

10. The method of claim 9 , wherein said abradable coating is disposed on said environmental coating.

11. A method of depositing an abradable coating on a gas turbine engine component with an environmental coating on an outer surface of said gas turbine engine component, comprising:

forming a slurry mixture comprising at least bi-modal ceramic particulate with up to about 70% by volume of coarse particulate wherein said coarse particulate is at least one of Ln2Si2O7, Ln2SiO5, silica, barium strontium aluminosilicate (BSAS), monoclinic hafnium oxide, rare earth gallium garnet (Ln2Ga2O9) where Ln is at least one of Scandium (Sc), Yttrium (Y), Lanthanum (La), Cerium (Ce), Phraseodymium (Pr), Neodymium (Nd), Promethium (Pm), Samarium (Sm), Europium (Eu), Gadolimium (Gd), Terbium (Tb), Dysprosium (Dy), Hlomium (Ho), Erbium (Er), Thulium (Tm), Ytterbium (Yb), Lutetium (Lu), and up to about 65% by volume of fine particulate wherein said fine particulate includes at least one Ln2Si2O7 or Ln2SiO5 where Ln is at least one of Sc, Y, La, Ce, Pr, Nd, Pm, Sm, Eu, Gd, Tb, Dy, Ho, Er, Tm, Yb, Lu, a polymer solution consisting essentially of one anionic and one cationic dispersant such that the slurry becomes a reversible gel, a low vapor pressure organic solvent and at least one sinter aid selected from the group consisting of iron, aluminum, titanium, cobalt, nickel, gallium indium, or any compounds thereof;

direct writing said reversible gel slurry to said gas turbine engine component;

drying said reversible gel slurry at one of room temperature or a second temperature between about 30° C.-80° C. to form a reversible gel matrix; and,

sintering said dried reversible gel matrix on said gas turbine engine component at a temperature greater than about 1204° C. and less than 1357° C., forming a layer of said abradable coating having a thickness greater than about 5 mils and a porosity of about 5 percent to about 50 percent, wherein said sintered layer is also comprised of a doped rare earth disilicate where said at least one sintering aid is a doping composition that dissolves into, and dopes the rare earth disilicate.

12. The method of claim 11 wherein said gas turbine engine component is formed of ceramic matrix composite (CMC).

13. The method of claim 11 further comprising the environmental coating disposed between said gas turbine engine component and said abradable layer.

Assignments (2)
CONFIRMATORY LICENSE Recorded May 13, 2019
From: GE AVIATION
To: DEPARTMENT OF THE NAVY
Reel/Frame 049158/0831 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 9, 2016
From: KIRBY, GLEN HAROLD
To: GENERAL ELECTRIC COMPANY
Reel/Frame 038868/0380 →
Continuity (2)
Provisional Application 61915399 · Dec 12, 2013
Related Publication 20160312628A1 · Oct 27, 2016