Composite coatings and methods therefor
10093810 ยท 2018-10-09
Assignee
Inventors
- Julin Wan (Rexford, NY, US)
- Milivoj Konstantin Brun (Ballston Lake, NY, US)
- Peter Joel Meschter (Niskayuna, NY, US)
- Reza Sarrafi-Nour (Clifton Park, NY, US)
- Don Mark Lipkin (Schenectady, NY, US)
Cpc classification
F01D5/288
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C23C28/048
CHEMISTRY; METALLURGY
C04B41/52
CHEMISTRY; METALLURGY
F05D2230/90
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C04B41/52
CHEMISTRY; METALLURGY
F05D2300/177
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C04B41/89
CHEMISTRY; METALLURGY
C23C28/42
CHEMISTRY; METALLURGY
C23C28/044
CHEMISTRY; METALLURGY
Y10T428/2495
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
B05D7/00
PERFORMING OPERATIONS; TRANSPORTING
C04B41/89
CHEMISTRY; METALLURGY
C04B41/00
CHEMISTRY; METALLURGY
C04B41/52
CHEMISTRY; METALLURGY
F01D5/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C23C28/00
CHEMISTRY; METALLURGY
Abstract
An article includes a substrate and a coating provided on a surface of the substrate. The coating includes at least one metal silicide layer consisting essentially of MoSi.sub.2 or WSi.sub.2 or (Mo, W)Si.sub.2 or a platinum group metal silicide and at least one layer consisting essentially of Si.sub.3N.sub.4.
Claims
1. An article, comprising: a substrate; and a coating provided on a surface of the substrate, the coating comprising at least one metal silicide layer consisting essentially of MoSi.sub.2 or WSi.sub.2 or (Mo, W)Si.sub.2 or a platinum group metal silicide; and at least one layer consisting essentially of Si.sub.3N.sub.4, wherein a thickness ratio of the at least one metal silicide layer and the at least one layer of Si.sub.3N.sub.4 provides the coating with a coefficient of thermal expansion substantially equal to a coefficient of thermal expansion of the substrate.
2. The article according to claim 1, wherein the at least one metal silicide layer is in contact with the surface of the substrate.
3. The article according to claim 1, wherein the at least one layer of Si.sub.3N.sub.4 is in contact with the surface of the substrate.
4. The article according to claim 1, further comprising: at least one transition region between the at least one metal silicide layer and the at least one layer of Si.sub.3N.sub.4, the transition region including a mixture of both the metal silicide layer and Si.sub.3N.sub.4.
5. The article according to claim 1, further comprising: a plurality of metal silicide layers consisting essentially of MoSi.sub.2 or WSi.sub.2 or (Mo, W)Si.sub.2 or a platinum group metal silicide; and a plurality of layers consisting essentially of Si.sub.3N.sub.4, wherein the layers of metal silicide and Si.sub.3N.sub.4 are alternating.
6. The article according to claim 1, wherein the substrate includes SiC, Si.sub.3N.sub.4, a transition metal silicide, and/or silicon as a reinforcement or matrix phase.
7. The article according to claim 1, further comprising: at least one of an environmental barrier coating and a thermal barrier coating provided on the coating.
8. The article according to claim 1, wherein a percentage of Si.sub.3N.sub.4 is greater than about 55% by volume of the coating.
9. The article according to claim 1, wherein the at least one metal silicide layer consists essentially of MoSi.sub.2 that is about 1% to about 45% of the volume of the coating.
10. The article according to claim 1, wherein the least one metal silicide layer consists essentially of MoSi.sub.2 and a ratio of the thickness of the at least one layer of MoSi.sub.2 to the thickness of the at least one layer of Si.sub.3N.sub.4 is about 0.01 to about 0.75.
11. An article, comprising: a substrate including a silicon-containing region that includes SiC, Si.sub.3N.sub.4, a transition metal silicide, and/or silicon as a reinforcement material in a metallic or a non-metallic matrix; and a coating provided on a surface of the substrate, the coating comprising MoSi.sub.2 and Si.sub.3N.sub.4, wherein a percentage of Si.sub.3N.sub.4 is greater than about 55% by volume of the coating, wherein a thickness ratio of the at least one metal silicide layer and the at least one layer of Si.sub.3N.sub.4 provides the coating with a coefficient of thermal expansion substantially equal to a coefficient of thermal expansion of the substrate.
12. The article according to claim 11, wherein the MoSi.sub.2 and Si.sub.3N.sub.4 are in a mixture.
13. The article according to claim 12, wherein the mixture is functionally graded.
14. The article according to claim 12, wherein the mixture further comprises: Mo.sub.5Si.sub.3, Si, and/or SiN.sub.x.
15. An article, comprising: a substrate formed of a ceramic matrix composite that contains SiC as a reinforcement and a matrix phase; and a coating provided on a surface of the substrate, the coating comprising at least one metal silicide layer consisting essentially of MoSi.sub.2 or WSi.sub.2 or (Mo, W)Si.sub.2 or a platinum group metal silicide; and at least one layer consisting essentially of Si.sub.3N.sub.4, wherein a thickness ratio of the at least one metal silicide layer and the at least one layer of Si.sub.3N.sub.4 provides the coating with a coefficient of thermal expansion substantially equal to a coefficient of thermal expansion of the substrate.
16. The article according to claim 15, further comprising: at least one transition region between the at least one metal silicide layer and the at least one layer of Si.sub.3N.sub.4, the transition region including a mixture of both the metal silicide layer and Si.sub.3N.sub.4.
17. The article according to claim 15, wherein a percentage of Si.sub.3N.sub.4 is greater than about 55% by volume of the coating and the at least one metal silicide layer consists essentially of MoSi.sub.2 that is about 1% to about 45% of the volume of the coating.
18. The article according to claim 15, wherein the least one metal silicide layer consists essentially of MoSi.sub.2 and a ratio of the thickness of the at least one layer of MoSi.sub.2 to the thickness of the at least one layer of Si.sub.3N.sub.4 is about 0.01 to about 0.75.
19. The article according to claim 15, further comprising: at least one of an environmental barrier coating and a thermal barrier coating provided on the coating.
20. An article, comprising: a substrate formed of a ceramic matrix composite that contains SiC as a reinforcement and a matrix phase; and a coating provided on a surface of the substrate, the coating comprising MoSi.sub.2 and Si.sub.3N.sub.4, wherein a percentage of Si.sub.3N.sub.4 is greater than about 55% by volume of the coating, wherein a thickness ratio of the at least one metal silicide layer and the at least one layer of Si.sub.3N.sub.4 provides the coating with a coefficient of thermal expansion substantially equal to a coefficient of thermal expansion of the substrate.
21. The article according to claim 20, wherein the MoSi.sub.2 and Si.sub.3N.sub.4 are in a mixture.
22. The article according to claim 21, wherein the mixture is functionally graded.
23. The article according to claim 21, wherein the mixture further comprises: Mo.sub.5Si.sub.3, Si, and/or SiN.sub.x.
24. The article according to claim 20, further comprising: at least one of an environmental barrier coating and a thermal barrier coating provided on the coating.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Other aspects and advantages of this technology will be better appreciated from the following detailed description with reference to the drawings, in which like reference numbers and characters refer to like features of the present technology, and wherein:
(2)
(3)
(4)
(5)
(6)
(7)
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(9)
(10)
DETAILED DESCRIPTION OF THE TECHNOLOGY
(11) The present technology is generally applicable to components or articles that operate within environments characterized by relatively high temperatures, severe thermal cycling and stresses, oxidation, and corrosion. Examples of such components include high and low pressure turbine vanes (nozzles) and blades (buckets), shrouds, combustor liners, augmentor hardware, and other hot section components of turbine engines, though the technology has application to other components.
(12) Referring to
(13) The coating system 30 may comprise two primary phases, molybdenum disilicide (MoSi.sub.2) and silicon nitride (Si.sub.3N.sub.4). The coating system 30 may also comprise minor phases, for example Mo.sub.5Si.sub.3, Si, Mo.sub.5Si.sub.3C, SiC, and/or SiN.sub.x, for processing and/or property reasons. The minor phases may comprise less than 50% of the coating system 30. The percentage by volume of Si.sub.3N.sub.4 in the coating system may be greater than about 55%.
(14) Referring to
(15) Referring to
(16) Referring to
(17) Referring to
(18) After formation of the layer of MoSi.sub.2, a Si.sub.3N.sub.4 layer is formed on the MoSi.sub.2 layer in S150. If the combined thickness t of the MoSi.sub.2 layer and the Si.sub.3N.sub.4 layer is less than a predetermined thickness t.sub.p (S170: Yes), the process returns to S120 for formation of an additional layer of MoSi.sub.2. When the combined thickness t of the MoSi.sub.2 layer and the Si.sub.3N.sub.4 layer is not less than the predetermined thickness t.sub.p (S170: No), the process ends at S180.
(19) Referring to
(20) Referring to
(21) Referring to
(22) It should be appreciated that the coatings described herein may be formed by various processes, including for example CVD, ion plasma deposition, and physical vapor deposition (e.g. evaporation or sputtering).
(23) It should further be appreciated that the mechanism of reducing the CTE mismatch between the coating and the substrate operates differently between the examples of layer-by-layer coatings (e.g.
.sub.eff=(t.sub.MoSi2E.sub.MoSi2.sub.MoSi2+t.sub.Si3N4E.sub.Si3N4.sub.Si3N4)/(t.sub.MoSi2E.sub.MoSi2+t.sub.Si3N4E.sub.Si3N4)
where for each material i, t.sub.i is the sum thickness of all layers in the stack, E.sub.i is the biaxial elastic modulus, defined as E.sub.i=E.sub.i/(1.sub.i), .sub.i is the Poisson's ratio, and .sub.i is the thermal expansion coefficient. Rearranging, the ratio of thicknesses is related to the effective thermal expansion by:
t.sub.MoSi2/t.sub.Si3N4=((.sub.eff.sub.Si3N4)/(.sub.eff.sub.MoSi2))(E.sub.Si3N4/E.sub.MoSi2).
(24) Taking representative values for the materials of interest:
(25) Si.sub.3N.sub.4: .sub.Si3N4=3.310.sup.6/C; E.sub.Si3N4=310 GPa; .sub.Si3N4=0.25.fwdarw.E.sub.Si3N4=413 GPa;
(26) MoSi.sub.2: .sub.MoSi2=8.2510.sup.6/C; E.sub.MoSi2=432 GPA; .sub.MoSi2=0.16.fwdarw.E.sub.MoSi2=514 GPa.
(27) The relationship between the multilayer expansion and the thickness ratio is illustrated in
(28) In considering examples of, for example, a substrate having a SiC matrix and SiC reinforcement, to match the CTE of SiC (.sub.eff=.sub.SiC4.510.sup.6/C), t.sub.MoSi2/t.sub.Si3N40.26. To match the CTE of SiC+25% (.sub.eff=1.25.sub.SiC6.910.sup.6/C), t.sub.MoSi2/t.sub.Si3N40.71. To match the CTE of SiC25% (.sub.eff=0.75.sub.SiC3.410.sup.6/C), t.sub.MoSi2/t.sub.Si3N40.01.
(29) A MoSi.sub.2:Si.sub.3N.sub.4 thickness ratio may thus be, for example, about 0.01 to about 0.75, or for example about 0.01 to about 0.45. The corresponding MoSi.sub.2 volume fractions (V.sub.MoSi2), calculated as V.sub.MoSi2=t.sub.MoSi2/(t.sub.Si3N4+t.sub.MoSi2), may thus be, for example about 1 to about 45 vol % MoSi.sub.2, or for example about 10 to about 30 vol % MoSi.sub.2.
(30) It should be appreciated that WSi.sub.2 or (Mo, W)Si.sub.2 or Platinum (Pt) group silicides may be used in place of MoSi.sub.2 in the examples discussed above.
(31) When a MoSi.sub.2 or WSi.sub.2 or a (Mo, W)Si.sub.2/Si.sub.3N.sub.4 mixture is oxidized in an oxygen-bearing atmosphere such as air, the Si is preferentially oxidized while the Mo and/or W is rejected into the coating. If the coating is thick with respect to the SiO.sub.2 layer formed by oxidation, the silicide or silicide/Si.sub.3N.sub.4 mixture is largely preserved in the substrate beneath the oxide, and the excess Mo and/or W rejected into the bulk of the coating forms Mo.sub.5Si.sub.3 and/or W.sub.5Si.sub.3 particles.
(32) On the other hand, if the silicide is a Pt group silicide interlayered with Si.sub.3N.sub.4, the Pt group metal will be left behind when all of the Si in the silicide layer has been consumed because condensed-phase oxides of the Pt group metals are not stable at temperatures above 1400 C. The final state of the silicide layer is likely to be an amorphous SiO.sub.2 layer with second phase Pt group metal particles. Oxidation will then pass on into the Si.sub.3N.sub.4 layer below the silicide layer, and so on, with few or no negative consequences.
(33) While the technology has been described in terms of the disclosed examples, it should be appreciated that other forms could be adopted by one skilled in the art. Therefore, the scope of the inventions is to be defined only by the following claims.