US20050003097A1 - Thermal spray of doped thermal barrier coating material - Google Patents

Thermal spray of doped thermal barrier coating material Download PDF

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US20050003097A1
US20050003097A1 US10/859,951 US85995104A US2005003097A1 US 20050003097 A1 US20050003097 A1 US 20050003097A1 US 85995104 A US85995104 A US 85995104A US 2005003097 A1 US2005003097 A1 US 2005003097A1
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forming
spraying process
oxy
ceramic material
phase
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Vinod Philip
Brij Seth
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Siemens Energy Inc
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Siemens Westinghouse Power Corp
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Publication of US20050003097A1 publication Critical patent/US20050003097A1/en
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    • CCHEMISTRY; METALLURGY
    • C23COATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; CHEMICAL SURFACE TREATMENT; DIFFUSION TREATMENT OF METALLIC MATERIAL; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL; INHIBITING CORROSION OF METALLIC MATERIAL OR INCRUSTATION IN GENERAL
    • C23CCOATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; SURFACE TREATMENT OF METALLIC MATERIAL BY DIFFUSION INTO THE SURFACE, BY CHEMICAL CONVERSION OR SUBSTITUTION; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL
    • C23C4/00Coating by spraying the coating material in the molten state, e.g. by flame, plasma or electric discharge
    • C23C4/12Coating by spraying the coating material in the molten state, e.g. by flame, plasma or electric discharge characterised by the method of spraying
    • CCHEMISTRY; METALLURGY
    • C23COATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; CHEMICAL SURFACE TREATMENT; DIFFUSION TREATMENT OF METALLIC MATERIAL; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL; INHIBITING CORROSION OF METALLIC MATERIAL OR INCRUSTATION IN GENERAL
    • C23CCOATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; SURFACE TREATMENT OF METALLIC MATERIAL BY DIFFUSION INTO THE SURFACE, BY CHEMICAL CONVERSION OR SUBSTITUTION; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL
    • C23C4/00Coating by spraying the coating material in the molten state, e.g. by flame, plasma or electric discharge
    • C23C4/04Coating by spraying the coating material in the molten state, e.g. by flame, plasma or electric discharge characterised by the coating material
    • C23C4/10Oxides, borides, carbides, nitrides or silicides; Mixtures thereof
    • C23C4/11Oxides
    • CCHEMISTRY; METALLURGY
    • C23COATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; CHEMICAL SURFACE TREATMENT; DIFFUSION TREATMENT OF METALLIC MATERIAL; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL; INHIBITING CORROSION OF METALLIC MATERIAL OR INCRUSTATION IN GENERAL
    • C23CCOATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; SURFACE TREATMENT OF METALLIC MATERIAL BY DIFFUSION INTO THE SURFACE, BY CHEMICAL CONVERSION OR SUBSTITUTION; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL
    • C23C4/00Coating by spraying the coating material in the molten state, e.g. by flame, plasma or electric discharge
    • C23C4/12Coating by spraying the coating material in the molten state, e.g. by flame, plasma or electric discharge characterised by the method of spraying
    • C23C4/129Flame spraying

Definitions

  • Thermal barrier coatings are ceramic insulating materials used to protect an underlying substrate material from a high temperature environment, such as the combustion gas of a gas turbine engine. TBC's may be applied by a variety of known processes, including plasma spray and vapor deposition techniques. TBC's are subject to service-induced damage, such as localized spalling of a TBC caused by bond coat oxidation, thermal stress due to excessive temperature and differential expansion, thermo-mechanical fatigue, erosion and impact by particulates, etc.
  • thermal spray processes used to apply zirconia coatings have included air plasma spray (APS) and physical vapor deposition (PVD). These processes are not useful for in-situ repairs of machines such as gas turbines due to the personnel safety concerns associated with the high temperature, high power requirements (150-200 amp, 440 volt, 3-phase power supply), and/or high sound energy levels produced.
  • Plasma spray processes used to deposit a thermal barrier coating, such as a yttria stabilized zirconia (YSZ) coating are particularly inappropriate for in-frame field repair of a gas turbine engine.
  • the high temperatures [6,600° to 16,600° C.] and high velocities [50 to 100 m/sec] produced in a plasma spray process generate a high volume of hot material splatter and a high temperature within the immediate vicinity of the spraying area that can be hazardous for the operator.
  • Lower temperature prior art processes such as oxy-acetylene flame spraying have not been used successfully to deposit zirconia due to the high melting point of zirconia.
  • FIGURE is a schematic illustration of a portable oxy-acetylene flame spraying tool being used to deposit a ceramic coating doped with a melting point depressant onto a surface of a component that is in its operating position in a machine.
  • An oxy-acetylene flame spray process and a material deposited by the process are described herein for repairing a damaged ceramic thermal barrier coating or for otherwise depositing a ceramic coating in applications where relatively higher velocity/temperature plasma spray and high velocity oxy-fuel processes are undesirable.
  • Low velocity flame spray processes are used for depositing coatings of a variety of materials.
  • flame spray processes have not been used to deposit yttria stabilized zirconia coatings and other thermal barrier coating materials with similarly high melting temperature because the temperatures and dwell times achievable with oxy-acetylene [3000° C. to 3500° C.] are inadequate to melt YSZ feedstock material in a manner appropriate for spray deposition to obtain coatings.
  • the incipient melting temperature of an 8YSZ material that may typically be used as a thermal barrier coating is about 2700° C.
  • the present inventors have discovered that a thermal barrier coating material that is intentionally doped with a melting point depressant material may be successfully applied with a low velocity oxygen fuel spray process.
  • the present invention is especially useful for performing an in-situ repair of a damaged thermal barrier coating.
  • the melting point depressing dopants are oxidized to form a eutectic phase within the material matrix, and the eutectic phase has a melting temperature that is sufficiently low to permit the material to be successfully applied with an oxy-fuel spray process.
  • the dopant phases are alloyed with a ceramic thermal barrier coating material such as 8YSZ to produce a low melting ceramic as a result of the formation of eutectics between the zirconia matrix and the dopant oxide phase.
  • a ceramic thermal barrier coating material such as 8YSZ
  • These eutectic phases melt at temperature significantly lower than that of 8YSZ, thereby allowing higher deposition rates and efficiency when used in flame spray processes.
  • the compositions are selected so that the melting temperature of the lowest melting component of the alloy is higher than the operating temperature to which the coated component will be exposed during subsequent use, although lower than the undoped TBC material.
  • the individual dopant phases do not have to possess a melting temperature that is significantly lower than that of 8YSZ.
  • the eutectic phase formed by the diffusional mixing of the dopant phase with the zirconia parent lattice that has a low melting temperature. While the eutectic phase will melt at a temperature lower than the 8YSZ material to facilitate the deposition process, its melting temperature remains above the expected operating temperature to which the coating will be exposed during its subsequent use. For a gas turbine environment application, the melting temperature of the eutectic phase may be greater than 1,550 degrees Celsius, which is a typical gas turbine combustion temperature.
  • ternary alloys systems may also be used such as CaO, Al 2 O 3 and Zr 2 O 3 ; or CeO 2 , Al 2 O 3 and Zr 2 O 3 .
  • the amount of alumina in such ternary alloys may be limited in certain applications due to the relatively large difference in the coefficient of thermal expansion between alumina and zirconia.
  • These compositions may be produced using standard powder processing techniques such as spray drying, slurry processing, sintering etc.
  • Another embodiment of the present invention involves coating particles of a thermal barrier coating material with a metal that will oxidize during an oxy-fuel flame spraying process to form a low-melting temperature eutectic phase.
  • elements such as yttrium, hafnium, calcium, aluminum and/or cerium are sputtered onto zirconia particles, such that during a subsequent oxy-acetylene spraying, will form oxides that combine with the 8YSZ matrix to form low-melting eutectics in the deposited coating.
  • the amount of sputtered material deposited onto the TBC material particles may be selected to achieve a desired ratio of eutectic in the sprayed material.
  • a lower range of 1-5 mol % may be used for yttrium and hafnium, while a higher range of 45-65 mol % may be used for calcium, aluminum and cerium.
  • the amount of sputtered material may be limited by the practical/economic limits of known sputtering techniques.
  • lattice doping techniques such as molten slurry addition and wet chemical processing (sol-gel, co-precipitation) may be used to add the selected dopant to the YSZ material to be sprayed.
  • This invention involves alloys of compounds that form low melting eutectic phases. This is quite different from a physical mixture of two powders, i.e. a low-melting and high-melting powder. In the latter case only the low melting powder melts and forms a molten pool that binds the high-melting powders.
  • the amount of melting point dopant added to the material to be sprayed may be selected to achieve a desired reduction in the incipient melting temperature and to minimize the residual effects of the dopant in the deposited coating.
  • the melting point of 8YSZ is depressed by about 700° C. (from a typical value of about 2,700° C.) in order to provide a sufficient amount of melting in a typical flame spray process to achieve desired coating properties using known flame spray processes and equipment.
  • a ceramic powder feedstock such as YSZ may be doped with one or more melting point depressants to a concentration in the range of 10-50 mol % in order to achieve a satisfactory reduction in overall melting characteristics of the powder.
  • thermal barrier coatings may be applied using appropriate dopant materials to form eutectics having melting temperatures that are sufficiently low to facilitate oxy-fuel flame spray deposition.
  • mullite is doped with titania (TiO 2 ).
  • Dopants such as sodium, silicon and phosphorous and compounds containing these elements may be used but may not be preferred in some embodiments due to other adverse properties exhibited by the deposited coating material as a result of the presence of these materials.
  • a diffusion heat treatment process may be performed on the deposited doped ceramic material in order to diffuse the melting point depressant.
  • FIGURE illustrates a low velocity flame spray system 10 being used to spray a doped YSZ powder 12 .
  • the powder may be alloyed with the dopant or the dopant may be applied in elemental form as a coating over the TBC material particles.
  • the powder 12 is accelerated through a spray gun 14 wherein it is heated by the combustion of an oxy-fuel gas 16 such as oxy-acetylene to form a spray 26 containing a eutectic phase exhibiting a melting temperature sufficiently low such that the eutectic phase material is melted during the spraying process.
  • an oxy-fuel gas 16 such as oxy-acetylene
  • Normal particle sizes may be selected to ensure the proper operation of the LVOF system 10 , such as in the range from ⁇ 120+325 mesh, from ⁇ 140+325 mesh, or from ⁇ 150+325 mesh for example.
  • the eutectic phase is either present in the powder 12 or it is formed when the powder is heated by the oxidation of a metallic coating on a ceramic powder.
  • the FIGURE illustrates a damaged region 18 of an existing coating 20 on a component 22 being repaired by the deposition of a layer of a repair coating material 24 with the component 22 in place in its operating position within a machine of which it forms a part. Access is provided to the damaged region 18 without removing the component 22 from the machine.
  • the damaged region may be cleaned prior to the coating operation with any known cleaning process, such as by grit blasting or chemical cleaning.
  • the repair coating 24 may be applied onto a surface such as the substrate 22 , a bond coat layer (not shown) covering the substrate 22 , and/or over a portion of the existing coating 20 . Repair coating 24 may be applied to any desired thickness, such as in the range of 8-35 mils, for example.
  • the spray 26 is directed onto the surface where the eutectic phase solidifies to form a layer 24 of thermal barrier coating material.

Abstract

A yttria stabilized zirconia ceramic thermal barrier coating (24) is applied to a substrate (22) using an oxy-acetylene spraying process by including in the coating a eutectic phase having a melting temperature sufficiently low to cause melting of the eutectic phase during the oxy-acetylene spraying process. The eutectic phase may be present in the powder (12) used for the spraying process, or it may be formed during the spraying process by the oxidation of a layer of metal applied to yttria stabilized zirconia particles. The use of an oxy-acetylene spraying process facilitates the application of the coating during in-frame repair of a gas turbine component.

Description

  • This application claims benefit of the Jun. 18, 2003, filing date of United States provisional application number 60/479,266.
  • BACKGROUND OF THE INVENTION
  • Thermal barrier coatings (TBC) are ceramic insulating materials used to protect an underlying substrate material from a high temperature environment, such as the combustion gas of a gas turbine engine. TBC's may be applied by a variety of known processes, including plasma spray and vapor deposition techniques. TBC's are subject to service-induced damage, such as localized spalling of a TBC caused by bond coat oxidation, thermal stress due to excessive temperature and differential expansion, thermo-mechanical fatigue, erosion and impact by particulates, etc.
  • The prior art thermal spray processes used to apply zirconia coatings have included air plasma spray (APS) and physical vapor deposition (PVD). These processes are not useful for in-situ repairs of machines such as gas turbines due to the personnel safety concerns associated with the high temperature, high power requirements (150-200 amp, 440 volt, 3-phase power supply), and/or high sound energy levels produced. Plasma spray processes used to deposit a thermal barrier coating, such as a yttria stabilized zirconia (YSZ) coating, are particularly inappropriate for in-frame field repair of a gas turbine engine. The high temperatures [6,600° to 16,600° C.] and high velocities [50 to 100 m/sec] produced in a plasma spray process generate a high volume of hot material splatter and a high temperature within the immediate vicinity of the spraying area that can be hazardous for the operator. Lower temperature prior art processes such as oxy-acetylene flame spraying have not been used successfully to deposit zirconia due to the high melting point of zirconia.
  • Alternative approaches have been developed for in-situ repair applications. U.S. patent application Publication U.S. 2002/0164417 dated Nov. 7, 2002, describes a hydrated metallic halide paste that may be applied over a damaged region. U.S. Pat. No. 6,413,578 issued on Jul. 2, 2002, describes a paste comprising a ceramic powder in a binder. The paste is thermally reacted when the repaired component returns to service to yield a ceramic-containing repair coating. While such pastes avoid the problems associated with a high temperature plasma spray process, they often provide coatings having performance properties that are less than desired, especially under conditions of cyclic thermal exposures.
  • Accordingly, an improved repair technique for repairing service-induced damage in a thermal barrier coating is desired.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • The sole FIGURE is a schematic illustration of a portable oxy-acetylene flame spraying tool being used to deposit a ceramic coating doped with a melting point depressant onto a surface of a component that is in its operating position in a machine.
  • DESCRIPTION OF THE INVENTION
  • An oxy-acetylene flame spray process and a material deposited by the process are described herein for repairing a damaged ceramic thermal barrier coating or for otherwise depositing a ceramic coating in applications where relatively higher velocity/temperature plasma spray and high velocity oxy-fuel processes are undesirable.
  • Low velocity flame spray processes are used for depositing coatings of a variety of materials. However, such flame spray processes have not been used to deposit yttria stabilized zirconia coatings and other thermal barrier coating materials with similarly high melting temperature because the temperatures and dwell times achievable with oxy-acetylene [3000° C. to 3500° C.] are inadequate to melt YSZ feedstock material in a manner appropriate for spray deposition to obtain coatings. The incipient melting temperature of an 8YSZ material that may typically be used as a thermal barrier coating is about 2700° C.
  • The present inventors have discovered that a thermal barrier coating material that is intentionally doped with a melting point depressant material may be successfully applied with a low velocity oxygen fuel spray process. The present invention is especially useful for performing an in-situ repair of a damaged thermal barrier coating. The melting point depressing dopants are oxidized to form a eutectic phase within the material matrix, and the eutectic phase has a melting temperature that is sufficiently low to permit the material to be successfully applied with an oxy-fuel spray process.
  • In one embodiment of the present invention, the dopant phases are alloyed with a ceramic thermal barrier coating material such as 8YSZ to produce a low melting ceramic as a result of the formation of eutectics between the zirconia matrix and the dopant oxide phase. These eutectic phases melt at temperature significantly lower than that of 8YSZ, thereby allowing higher deposition rates and efficiency when used in flame spray processes. The compositions are selected so that the melting temperature of the lowest melting component of the alloy is higher than the operating temperature to which the coated component will be exposed during subsequent use, although lower than the undoped TBC material. The individual dopant phases do not have to possess a melting temperature that is significantly lower than that of 8YSZ. It is the eutectic phase formed by the diffusional mixing of the dopant phase with the zirconia parent lattice that has a low melting temperature. While the eutectic phase will melt at a temperature lower than the 8YSZ material to facilitate the deposition process, its melting temperature remains above the expected operating temperature to which the coating will be exposed during its subsequent use. For a gas turbine environment application, the melting temperature of the eutectic phase may be greater than 1,550 degrees Celsius, which is a typical gas turbine combustion temperature.
  • Specific examples of such two-phase eutectic and binary alloys are:
  • (i) a two-phase alloy of calcium zirconate (CaZrO2) and zirconium oxide (Zr2O3) in the range of 50-35 mol % of calcium oxide (CaO) and 50-65 mol % of zirconium oxide (Zr2O3);
  • (ii) two phase alloy of cerium oxide (CeO2) and zirconium oxide (Zr2O3) in the range of 50-10 mol % of CeO2 and 50-90 mol % of Zr2O3.
  • Additionally, ternary alloys systems may also be used such as CaO, Al2O3 and Zr2O3; or CeO2, Al2O3 and Zr2O3. The amount of alumina in such ternary alloys may be limited in certain applications due to the relatively large difference in the coefficient of thermal expansion between alumina and zirconia. These compositions may be produced using standard powder processing techniques such as spray drying, slurry processing, sintering etc.
  • Another embodiment of the present invention involves coating particles of a thermal barrier coating material with a metal that will oxidize during an oxy-fuel flame spraying process to form a low-melting temperature eutectic phase. In one embodiment, elements such as yttrium, hafnium, calcium, aluminum and/or cerium are sputtered onto zirconia particles, such that during a subsequent oxy-acetylene spraying, will form oxides that combine with the 8YSZ matrix to form low-melting eutectics in the deposited coating. The amount of sputtered material deposited onto the TBC material particles may be selected to achieve a desired ratio of eutectic in the sprayed material. In one embodiment, a lower range of 1-5 mol % may be used for yttrium and hafnium, while a higher range of 45-65 mol % may be used for calcium, aluminum and cerium. The amount of sputtered material may be limited by the practical/economic limits of known sputtering techniques.
  • Other known lattice doping techniques such as molten slurry addition and wet chemical processing (sol-gel, co-precipitation) may be used to add the selected dopant to the YSZ material to be sprayed.
  • This invention involves alloys of compounds that form low melting eutectic phases. This is quite different from a physical mixture of two powders, i.e. a low-melting and high-melting powder. In the latter case only the low melting powder melts and forms a molten pool that binds the high-melting powders. In the present invention, there is only one powder type that has a specific composition as described; either a pre-alloyed material or a coated powder that alloys during the deposition process. The lowered melting temperature is due to a phase composition based on the formation of eutectics between the TBC material and a second ceramic.
  • The amount of melting point dopant added to the material to be sprayed may be selected to achieve a desired reduction in the incipient melting temperature and to minimize the residual effects of the dopant in the deposited coating. In one embodiment, the melting point of 8YSZ is depressed by about 700° C. (from a typical value of about 2,700° C.) in order to provide a sufficient amount of melting in a typical flame spray process to achieve desired coating properties using known flame spray processes and equipment. In one embodiment, a ceramic powder feedstock such as YSZ may be doped with one or more melting point depressants to a concentration in the range of 10-50 mol % in order to achieve a satisfactory reduction in overall melting characteristics of the powder. Other known thermal barrier coatings may be applied using appropriate dopant materials to form eutectics having melting temperatures that are sufficiently low to facilitate oxy-fuel flame spray deposition. In one such embodiment, mullite is doped with titania (TiO2). Dopants such as sodium, silicon and phosphorous and compounds containing these elements may be used but may not be preferred in some embodiments due to other adverse properties exhibited by the deposited coating material as a result of the presence of these materials. When such materials are used, a diffusion heat treatment process may be performed on the deposited doped ceramic material in order to diffuse the melting point depressant.
  • It may be possible to perform in-frame repair of a coated component, such as a hot combustion gas portion of a gas turbine engine, without complete disassembly of the component by spraying YSZ material doped with a melting point depressant using a hand-held oxy-acetylene flame spray gun. The FIGURE illustrates a low velocity flame spray system 10 being used to spray a doped YSZ powder 12. The powder may be alloyed with the dopant or the dopant may be applied in elemental form as a coating over the TBC material particles. The powder 12 is accelerated through a spray gun 14 wherein it is heated by the combustion of an oxy-fuel gas 16 such as oxy-acetylene to form a spray 26 containing a eutectic phase exhibiting a melting temperature sufficiently low such that the eutectic phase material is melted during the spraying process. Normal particle sizes may be selected to ensure the proper operation of the LVOF system 10, such as in the range from −120+325 mesh, from −140+325 mesh, or from −150+325 mesh for example. The eutectic phase is either present in the powder 12 or it is formed when the powder is heated by the oxidation of a metallic coating on a ceramic powder.
  • The FIGURE illustrates a damaged region 18 of an existing coating 20 on a component 22 being repaired by the deposition of a layer of a repair coating material 24 with the component 22 in place in its operating position within a machine of which it forms a part. Access is provided to the damaged region 18 without removing the component 22 from the machine. The damaged region may be cleaned prior to the coating operation with any known cleaning process, such as by grit blasting or chemical cleaning. The repair coating 24 may be applied onto a surface such as the substrate 22, a bond coat layer (not shown) covering the substrate 22, and/or over a portion of the existing coating 20. Repair coating 24 may be applied to any desired thickness, such as in the range of 8-35 mils, for example. The spray 26 is directed onto the surface where the eutectic phase solidifies to form a layer 24 of thermal barrier coating material.
  • Other types of coatings that are not normally applied with a low velocity flame spray process may be applied when the material to be applied is intentionally doped in order to depress its melting point to a temperature sufficiently low to achieve adequate deposition properties. Other potential applications wherein this concept may be applied include the deposition of abradable ceramic systems such as zirconia or titania.
  • While the preferred embodiments of the present invention have been shown and described herein, it will be obvious that such embodiments are provided by way of example only. Numerous variations, changes and substitutions will occur to those of skill in the art without departing from the invention herein.

Claims (16)

1. A method of depositing a ceramic thermal barrier coating material, the method comprising:
heating a powdered ceramic material in an oxy-fuel spraying process to produce a spray comprising eutectic phase material exhibiting a melting temperature sufficiently low such that the eutectic phase material is melted during the spraying process; and
directing the spray onto a surface where the eutectic phase solidifies to form a layer of thermal barrier coating material.
2. The method of claim 1, further comprising forming the eutectic phase during the spraying process by oxidizing a metallic coating applied to the powdered ceramic material.
3. The method of claim 1, further comprising forming the powdered ceramic material to comprise yttria stabilized zirconia particles coated with a layer of one of yttrium, hafnium, calcium, aluminum and cerium.
4. The method of claim 1, further comprising forming the powdered ceramic material to contain the eutectic phase material prior to the step of heating.
5. The method of claim 4, further comprising forming the powdered ceramic material to comprise a two-phase alloy of calcium zirconate and zirconium oxide.
6. The method of claim 5, further comprising forming the two-phase alloy to comprise the range of 50-35 mol % of calcium oxide and 50-65 mol% of zirconium oxide.
7. The method of claim 4, further comprising forming the powdered ceramic material to comprise a two-phase alloy of cerium oxide and zirconium oxide.
8. The method of claim 7, further comprising forming the two-phase alloy to comprise the range of 50-10 mol % of cerium oxide and 50-90 mol % of zirconium oxide.
9. The method of claim 4, further comprising forming the powdered ceramic material to comprise a ternary alloy comprising calcium oxide, alumina and zirconium oxide.
10. The method of claim 4, further comprising forming the powdered ceramic material to comprise a ternary alloy comprising cerium oxide, alumina and zirconium oxide.
11. The method of claim 1, further comprising using an oxy-acetylene spraying process to produce a spray comprising yttria stabilized zirconia and a melted eutectic phase.
12. The method of claim 11, further comprising using the oxy-acetylene spraying process to heat particles of yttria stabilized zirconia coated with a metal.
13. The method of claim 12, further comprising using the oxy-acetylene spraying process to heat particles of yttria stabilized zirconia coated with one of yttrium, hafnium, calcium, aluminum and cerium.
14. The method of claim 1 applied to an in-frame component of a gas turbine engine.
15. A product formed by the process of claim 1.
16. A product formed by the process of claim 11.
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* Cited by examiner, † Cited by third party
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US20060237556A1 (en) * 2005-04-26 2006-10-26 Spraying Systems Co. System and method for monitoring performance of a spraying device
US20070210182A1 (en) * 2005-04-26 2007-09-13 Spraying Systems Co. System and Method for Monitoring Performance of a Spraying Device
US20080023450A1 (en) * 2006-07-26 2008-01-31 Honeywell International, Inc. Customizable ion fusion formation system and process
US20090061530A1 (en) * 2007-08-31 2009-03-05 Alstom Technology, Ltd. Method for designating a component having a heat insulation layer and for determining its operating time
US8591986B1 (en) 2012-08-17 2013-11-26 General Electric Company Cold spray deposition method
CN103710693A (en) * 2013-12-12 2014-04-09 江苏克罗德科技有限公司 Insulation aluminized zinc plate and preparation method thereof
WO2015082818A1 (en) 2013-12-02 2015-06-11 Office National D'etudes Et De Recherches Aérospatiales (Onera) Method for locally repairing thermal barriers
US10100396B2 (en) 2013-12-02 2018-10-16 Office National D'etudes Et De Recherches Aerospatiales Method and system for depositing oxide on a porous component
EP3461925A1 (en) 2017-09-29 2019-04-03 General Electric Technology GmbH Method for manufacturing a coating
CN114086103A (en) * 2021-11-19 2022-02-25 西安交通大学 Multimode structure thermal barrier coating with self-adhesion and preparation method thereof
US11479846B2 (en) 2014-01-07 2022-10-25 Honeywell International Inc. Thermal barrier coatings for turbine engine components

Citations (20)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3455510A (en) * 1966-11-14 1969-07-15 Metco Inc Nozzle and gas mixing arrangement for powder type flame spray gun
US4169845A (en) * 1977-05-27 1979-10-02 Studiengessellschaft Kohle mbH Method of preparing transition metal-olefin complex compounds and alkali metal-transition metal-olefin complex compounds
US4382811A (en) * 1980-03-27 1983-05-10 Castolin S.A. Method of producing protective coatings on metal parts to be used in contact with molten glass
US4416421A (en) * 1980-10-09 1983-11-22 Browning Engineering Corporation Highly concentrated supersonic liquified material flame spray method and apparatus
US4421799A (en) * 1982-02-16 1983-12-20 Metco, Inc. Aluminum clad refractory oxide flame spraying powder
US4497473A (en) * 1981-11-05 1985-02-05 Glaverbel Composite refractory articles and method of manufacturing them
US4576874A (en) * 1984-10-03 1986-03-18 Westinghouse Electric Corp. Spalling and corrosion resistant ceramic coating for land and marine combustion turbines
US4588655A (en) * 1982-06-14 1986-05-13 Eutectic Corporation Ceramic flame spray powder
US4865252A (en) * 1988-05-11 1989-09-12 The Perkin-Elmer Corporation High velocity powder thermal spray gun and method
US4914794A (en) * 1986-08-07 1990-04-10 Allied-Signal Inc. Method of making an abradable strain-tolerant ceramic coated turbine shroud
US5059095A (en) * 1989-10-30 1991-10-22 The Perkin-Elmer Corporation Turbine rotor blade tip coated with alumina-zirconia ceramic
US5302414A (en) * 1990-05-19 1994-04-12 Anatoly Nikiforovich Papyrin Gas-dynamic spraying method for applying a coating
US5437737A (en) * 1994-02-07 1995-08-01 United Technologies Corporation Repair coating for superalloy articles, such as gas turbine engine components
US5506055A (en) * 1994-07-08 1996-04-09 Sulzer Metco (Us) Inc. Boron nitride and aluminum thermal spray powder
US5536022A (en) * 1990-08-24 1996-07-16 United Technologies Corporation Plasma sprayed abradable seals for gas turbine engines
US5549767A (en) * 1992-05-06 1996-08-27 United Technologies Corporation Heat treatment and repair of cobalt base superalloy articles
US5723078A (en) * 1996-05-24 1998-03-03 General Electric Company Method for repairing a thermal barrier coating
US6413578B1 (en) * 2000-10-12 2002-07-02 General Electric Company Method for repairing a thermal barrier coating and repaired coating formed thereby
US6436480B1 (en) * 1999-03-01 2002-08-20 Plasma Technology, Inc. Thermal spray forming of a composite material having a particle-reinforced matrix
US20020164417A1 (en) * 2001-04-21 2002-11-07 Khan Abdus S. Method of repairing a ceramic coating

Patent Citations (21)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3455510A (en) * 1966-11-14 1969-07-15 Metco Inc Nozzle and gas mixing arrangement for powder type flame spray gun
US4169845A (en) * 1977-05-27 1979-10-02 Studiengessellschaft Kohle mbH Method of preparing transition metal-olefin complex compounds and alkali metal-transition metal-olefin complex compounds
US4382811A (en) * 1980-03-27 1983-05-10 Castolin S.A. Method of producing protective coatings on metal parts to be used in contact with molten glass
US4416421A (en) * 1980-10-09 1983-11-22 Browning Engineering Corporation Highly concentrated supersonic liquified material flame spray method and apparatus
US4497473A (en) * 1981-11-05 1985-02-05 Glaverbel Composite refractory articles and method of manufacturing them
US4421799A (en) * 1982-02-16 1983-12-20 Metco, Inc. Aluminum clad refractory oxide flame spraying powder
US4588655A (en) * 1982-06-14 1986-05-13 Eutectic Corporation Ceramic flame spray powder
US4576874A (en) * 1984-10-03 1986-03-18 Westinghouse Electric Corp. Spalling and corrosion resistant ceramic coating for land and marine combustion turbines
US4914794A (en) * 1986-08-07 1990-04-10 Allied-Signal Inc. Method of making an abradable strain-tolerant ceramic coated turbine shroud
US4865252A (en) * 1988-05-11 1989-09-12 The Perkin-Elmer Corporation High velocity powder thermal spray gun and method
US5059095A (en) * 1989-10-30 1991-10-22 The Perkin-Elmer Corporation Turbine rotor blade tip coated with alumina-zirconia ceramic
US5302414A (en) * 1990-05-19 1994-04-12 Anatoly Nikiforovich Papyrin Gas-dynamic spraying method for applying a coating
US5302414B1 (en) * 1990-05-19 1997-02-25 Anatoly N Papyrin Gas-dynamic spraying method for applying a coating
US5536022A (en) * 1990-08-24 1996-07-16 United Technologies Corporation Plasma sprayed abradable seals for gas turbine engines
US5549767A (en) * 1992-05-06 1996-08-27 United Technologies Corporation Heat treatment and repair of cobalt base superalloy articles
US5437737A (en) * 1994-02-07 1995-08-01 United Technologies Corporation Repair coating for superalloy articles, such as gas turbine engine components
US5506055A (en) * 1994-07-08 1996-04-09 Sulzer Metco (Us) Inc. Boron nitride and aluminum thermal spray powder
US5723078A (en) * 1996-05-24 1998-03-03 General Electric Company Method for repairing a thermal barrier coating
US6436480B1 (en) * 1999-03-01 2002-08-20 Plasma Technology, Inc. Thermal spray forming of a composite material having a particle-reinforced matrix
US6413578B1 (en) * 2000-10-12 2002-07-02 General Electric Company Method for repairing a thermal barrier coating and repaired coating formed thereby
US20020164417A1 (en) * 2001-04-21 2002-11-07 Khan Abdus S. Method of repairing a ceramic coating

Cited By (16)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20060237556A1 (en) * 2005-04-26 2006-10-26 Spraying Systems Co. System and method for monitoring performance of a spraying device
US20070210182A1 (en) * 2005-04-26 2007-09-13 Spraying Systems Co. System and Method for Monitoring Performance of a Spraying Device
US20080023450A1 (en) * 2006-07-26 2008-01-31 Honeywell International, Inc. Customizable ion fusion formation system and process
US7342195B2 (en) 2006-07-26 2008-03-11 Honeywell International, Inc. Customizable ion fusion formation system and process
US20090061530A1 (en) * 2007-08-31 2009-03-05 Alstom Technology, Ltd. Method for designating a component having a heat insulation layer and for determining its operating time
CH700122B1 (en) * 2007-08-31 2010-06-30 Alstom Technology Ltd A method for the identification and for the determination of the operating time of a component with a thermal barrier layer.
EP2031361A3 (en) * 2007-08-31 2011-05-18 Alstom Technology Ltd Method for designating a component having a heat insulation layer and for determining its operating time
US8252601B2 (en) 2007-08-31 2012-08-28 Alstom Technology Ltd. Method for designating a component having a heat insulation layer and for determining its operating time
US8591986B1 (en) 2012-08-17 2013-11-26 General Electric Company Cold spray deposition method
WO2015082818A1 (en) 2013-12-02 2015-06-11 Office National D'etudes Et De Recherches Aérospatiales (Onera) Method for locally repairing thermal barriers
US10100396B2 (en) 2013-12-02 2018-10-16 Office National D'etudes Et De Recherches Aerospatiales Method and system for depositing oxide on a porous component
US10267151B2 (en) 2013-12-02 2019-04-23 Office National D'etudes Et De Recherches Aerospatiales Method for locally repairing thermal barriers
CN103710693A (en) * 2013-12-12 2014-04-09 江苏克罗德科技有限公司 Insulation aluminized zinc plate and preparation method thereof
US11479846B2 (en) 2014-01-07 2022-10-25 Honeywell International Inc. Thermal barrier coatings for turbine engine components
EP3461925A1 (en) 2017-09-29 2019-04-03 General Electric Technology GmbH Method for manufacturing a coating
CN114086103A (en) * 2021-11-19 2022-02-25 西安交通大学 Multimode structure thermal barrier coating with self-adhesion and preparation method thereof

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