Maskant for use in aluminizing a turbine component
10113225 ยท 2018-10-30
Assignee
Inventors
- Kenneth S. Murphy (Norton Shores, MI, US)
- William C. Basta (Montague, MI, US)
- Vincent J. Russo (Orange, CT, US)
Cpc classification
F01D5/288
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D5/3092
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2230/31
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C23C10/04
CHEMISTRY; METALLURGY
International classification
C23C10/04
CHEMISTRY; METALLURGY
Abstract
A mask is used in aluminizing of superalloy turbine component, such as a turbine blade, where a region exposed to relatively high operating temperature is aluminized to form a diffusion aluminide coating and another region exposed to relatively lower operating temperatures is masked to prevent aluminizing of the masked region while concurrently being enriched in Cr and/or retaining a pre-existing Cr-content from the superalloy chemistry itself or from a previous chromizing operation.
Claims
1. A mask for preventing aluminizing of a region of a component made of a superalloy, comprising a mixture of chromium-containing powder, nickel-containing powder and refractory powder wherein the chromium-containing powder comprises metallic chromium powder or chromium-containing metal alloy powder, the chromium-containing powder being present in the mixture in an amount greater than about 10 weight % effective (a) to supply chromium to form a chromium-enriched surface on the superalloy component beneath the mask during aluminizing of an unmasked region or (b) to supply chromium to a pre-existing chromium-enriched chromized surface on the superalloy component beneath the mask to retain the chromium-enriched chromized surface during aluminizing of an unmasked region.
2. The mask of claim 1 wherein the chromium-containing metal alloy powder comprises an alloy of Cr and a transition metal.
3. The mask of claim 1 wherein the chromium-containing powder is present in the mask in an amount to provide a Cr chemical activity in the mask that is greater than the Cr activity of the superalloy or of the pre-existing Cr-enriched chromized surface.
4. The mask of claim 1 wherein the Cr content is less than about 25 weight % of the weight of the mixture.
5. A method of aluminizing a nickel base superalloy component, comprising masking a region of the component with the mask of claim 1 and exposing an unmasked region to a gaseous aluminizing atmosphere to form a diffusion aluminide coating thereon while (a) forming the chromium-enriched surface beneath the mask during aluminizing of the unmasked region or (b) retaining the chromium-enriched chromized surface beneath the mask during aluminizing of the unmasked region.
6. The method of claim 5 wherein the mask forms the chromium-enriched surface that comprises alpha chromium phase.
7. The method of claim 6 wherein the chromium-enriched surface comprises a layer of the alpha chromium phase and an underlying zone enriched in solid solution chromium beneath the layer.
8. The method of claim 5 wherein the mask forms the chromium-enriched surface that comprises a solid solution chromium-enriched zone on the superalloy component.
9. A mask for preventing aluminizing of a region of a component made of a superalloy, comprising an inner mask comprising metallic chromium powder or chromium-containing metal alloy powder and an outer mask on the inner mask wherein the outer mask comprises a mixture of chromium-containing powder, nickel-containing powder, and refractory powder and wherein the chromium-containing powder of the outer mask comprises metallic chromium powder or chromium-containing metal alloy powder and wherein the collective amount of chromium in the inner mask and the outer mask is effective (a) to supply chromium to form a chromium-enriched surface on the superalloy component beneath the mask during aluminizing of an unmasked region or (b) to supply chromium to a pre-existing chromium-enriched chromized surface on the superalloy component beneath the mask to retain the chromium-enriched chromized surface during aluminizing of an unmasked region.
10. The mask of claim 9 wherein the Cr-containing metal alloy powder comprises an alloy of Cr and a transition metal.
11. The mask of claim 9 wherein the Cr content of the mixture of the outer mask is greater than 10 weight % of the weight of the mask.
12. The mask of claim 11 wherein the Cr content of the mixture of the outer mask is less than about 25 weight % of the weight of the mask.
13. The mask of claim 9 wherein the inner mask is free of activator and refractory powder.
14. A method of aluminizing a nickel base superalloy component, comprising masking a region of the component with the mask of claim 9 and exposing an unmasked region to a gaseous aluminizing atmosphere to form a diffusion aluminide coating thereon while (a) forming the chromium-enriched surface beneath the mask during aluminizing of the unmasked region or (b) retaining the chromium-enriched chromized surface beneath the mask during aluminizing of the unmasked region.
15. The method of claim 14 wherein the mask forms the chromium-enriched surface that comprises alpha chromium phase.
16. The method of claim 15 wherein the chromium-enriched surface comprises a layer of the alpha chromium phase and an underlying zone enriched in solid solution chromium beneath the layer.
17. The method of claim 14 wherein the mask forms the chromium-enriched surface that comprises a solid solution chromium-enriched zone on the superalloy component.
Description
DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
DETAILED DESCRIPTION OF THE INVENTION
(4) Single Mask System
(5) One embodiment of the invention provides a Cr-modified mask for use in aluminizing of a turbine component region at a relatively lower temperature and shorter time. For purposes of illustration and not limitation, the Cr-modified mask 200,
(6) The Cr-modified mask comprises a powder composition that includes intentionally-added Cr-containing powder together with Ni-containing powder, and refractory powder such as alumina or other refractory materials. The Cr-containing powder can comprise a metallic Cr powder (e.g. 325 mesh powder) and/or a Cr-containing alloy powder (e.g. 30 weight % Cr-balance Ni powder) of similar particle size. The Ni-containing powder can comprise metallic Ni powder, a Ni alloy powder, and/or nickel oxide powder.
(7) In an illustrative embodiment of the invention, the mask can comprise a commercially available M1 maskant available from Akron Paint and Varnish, Akron, Ohio (also known as APV Engineered Coatings) to which the Cr-containing powder is added and mixed. An exemplary maskant useful in practicing the invention into which Cr-containing powder (nominal particle size of about 5 to about 10 microns) can be mixed can comprise alumina powder (nominal particle size 0.5 to 15 microns) and a nickel alloy powder wherein the nickel alloy powder is present in an amount of about 15 to about 35 volume %, preferably about 22 to about 27 volume %, and the balance is the alumina powder and wherein the nickel alloy powder (nominal particle size of 1 to 10 microns) comprises about 15 to about 20 weight % Al and 0 to about 4 weight % Cr, and balance Ni, preferably 16 to 17 weight % Al and 1.5 to 2.5 weight % Cr and balance Ni.
(8) The Cr-containing powder is provided in the M1 maskant in an amount that provides a Cr chemical activity that is greater than the Cr chemical activity of the turbine component alloy to be coated or of a pre-existing Cr enrichment from a previous chromizing operation wherein the more Cr in the turbine component alloy, the more Cr that is used in the mask to increase the Cr surface enrichment of the alloy. The Cr content of the Cr-containing powder is controlled to this end to drive Cr into the surface of the component alloy to form a Cr-enriched surface layer on the superalloy, or to maintain a pre-existing Cr enrichment at the surface layer of the superalloy by supplying Cr to a pre-existing Cr-enriched surface layer formed by a prior chromizing operation to counteract loss of Cr which occurs during the aluminizing operation when the aforementioned commercially available M1 maskant is used without modification. For Cr surface enrichment without alpha Cr layer formation, the Cr content of the Cr-containing powder typically does not exceed about 25 to about 30 weight % based on the weight of the mask. Higher than 25 weight % of pure Cr can be used, but the resulting Cr content of the surface enrichment will reach saturation (the -Cr phase) at less than 25 weight % Cr. As a result, Cr contents of the mask of about 25 to about 30 weight % can produce a thin continuous to a thick amount of alpha Cr layer on the alloy with Cr enrichment beneath the alpha Cr layer of the alloy (substrate). Using a CrNi or CrFe alloy powder may require greater than 25 weight % Cr to reach formation of the -Cr phase layer. For purposes of illustration and not limitation, for coating CMSX-4 superalloy having nominally 6.5 weight Cr, the Cr-modified mask will have a Cr content greater than 10 weight % and less than about 25 weight %. The Cr-modified mask is useful alone for masking a selected region of the turbine component for gas phase aluminizing such as by CVD (chemical vapor deposition) or by above-the-pack aluminizing at a temperature of about 1050 C. or less for a time of about 8 hours or less.
(9) In one method embodiment of the invention, a turbine component to be coated is positioned in a coating chamber to form a diffusion aluminide coating on one region while another region is covered by the Cr-modified mask. For purposes of illustration and not limitation, referring to
(10) To this end, the turbine blade is shown with its root end located in a masking box B having the Cr-modified powder mask 200 pursuant to the invention therein while leaving the airfoil region 10 and the upper surface of the platform region 12 exposed to the gaseous aluminizing atmosphere. In
(11) After the aluminizing operation, the turbine blade is removed from the masking box B and residual mask material is cleaned off, taking care not damage the Cr enriched surface and/or the pre-existing Cr enriched surface which is retained as a result of appropriate selection of the Cr content of the mask.
(12) Although
(13) Multi-Mask System
(14) Another embodiment of the invention provides a multi-mask system having an inner mask 100 and outer mask 200 on the inner mask for use in aluminizing a turbine component region at relatively higher temperature of greater than about 1050 C. for times of more than about 8 hours. The inner (first) mask 100 comprises substantially pure Cr powder (e.g. 325 mesh Cr powder) or Cr-containing alloy powder (e.g. 30 weight % Cr-balance Ni powder) of similar particle size in direct contact with the surface to be coated. The first mask does not include an intentionally-added activator in it. Typically, the Cr-containing powder is mixed with a binder comprising water and polyvinyl alcohol to provide a slurry that can be applied to the region to be masked by dipping, brushing, spraying and other application techniques.
(15) The outer (second) mask 200 comprises the Cr-modified mask 200 described above for the single mask system or other maskant.
(16) In another method embodiment of the invention, a turbine component to be coated is positioned in a coating chamber to form a diffusion aluminide coating on one region while another region is covered by the two part mask system. For purposes of illustration and not limitation, referring to
(17) To this end, the turbine blade is shown with its masked root end located in a masking box B having the Cr-modified mask therein while leaving the airfoil region 10 and the upper surface of the platform region 12 exposed to the gaseous aluminizing atmosphere. In
(18) After the aluminizing operation, the turbine blade is removed from the masking box B and residual mask material is cleaned off taking care not damage the Cr enriched surface and/or any pre-existing Cr enriched surface which is retained as a result of appropriate selection of the Cr content of the mask.
(19) Although the invention has been described in connection with certain illustrative embodiments, those skilled in the art will appreciate that modifications and changes can be made therein with the scope of the invention as set forth in the appended claims.