Article having coating including compound of aluminum, boron and nitrogen
10851021 ยท 2020-12-01
Assignee
Inventors
Cpc classification
C04B2235/524
CHEMISTRY; METALLURGY
F01D5/288
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
D06M11/58
TEXTILES; PAPER
F05D2300/222
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2300/2282
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C04B35/80
CHEMISTRY; METALLURGY
F05D2300/2281
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
C04B35/80
CHEMISTRY; METALLURGY
D06M11/58
TEXTILES; PAPER
C04B35/628
CHEMISTRY; METALLURGY
C04B41/00
CHEMISTRY; METALLURGY
F01D5/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An article includes a monolithic substrate and a coating on the monolithic substrate. The monolithic substrate is selected from graphite, silicon carbide, silicon carbide nitride, silicon nitride carbide, and silicon nitride. The coating has a free, exposed surface and includes a compound of aluminum (Al), boron (B) and nitrogen (N) in a continuous chemically bonded network having AlN bonds and BN bonds. The compound includes an atom of nitrogen covalently bonded to an atom of boron and an atom of aluminum, and the compound has a composition B.sub.xAl.sub.(1-x)N, where x is 0.001 to 0.999.
Claims
1. An article comprising: a monolithic substrate selected from the group consisting of graphite, silicon carbide, silicon carbide nitride, silicon nitride carbide, and silicon nitride; and a coating on the monolithic substrate, the coating having a free, exposed surface and including a compound of aluminum (Al), boron (B) and nitrogen (N) in a continuous chemically bonded network having AlN bonds and BN bonds, wherein the compound includes an atom of nitrogen covalently bonded to an atom of boron and an atom of aluminum, and the compound has a composition B.sub.xAl.sub.(1-x)N, where x is 0.001 to 0.999.
2. The article as recited in claim 1, wherein the coating and the monolithic substrate are covalently bonded together.
3. The article as recited in claim 2, wherein the monolithic substrate is silicon carbide.
4. The article as recited in claim 1, wherein the coating includes an amount of BN, by weight, of no greater than 50%.
5. The article as recited in claim 1, wherein the coating includes an amount of BN, by weight, of no greater than 10%.
6. The article as recited in claim 1, wherein the AlN and BN are dispersed in the coating as of domains of AlN and BN that have an average maximum domain size of one-hundred nanometers or less.
7. The article as recited in claim 6, wherein the AlN and BN are in a ratio, by weight, of 90:10 to 50:50.
8. The article as recited in claim 7, wherein the ratio is from 75:25 to 50:50.
9. The article as recited in claim 1, wherein the continuous chemically bonded network has a homogenous distribution of the AlN bonds and the BN bonds.
10. The article as recited in claim 1, wherein the AlN bonds and the BN bonds are molecularly distributed such that the continuous chemically bonded network has a nanodispersion of domains of the AlN bonds and the BN bonds.
11. The article as recited in claim 1, wherein the coating has a uniform thickness and consists of the compound of aluminum (Al), boron (B) and nitrogen (N).
12. The article as recited in claim 1, wherein, by weight percentage, the coating includes a greater amount of aluminum (Al) than boron (B).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The various features and advantages of the present disclosure will become apparent to those skilled in the art from the following detailed description. The drawings that accompany the detailed description can be briefly described as follows.
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DETAILED DESCRIPTION
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(9) In the illustrated example, the article 20 includes a substrate 22 and a coating 24 on the substrate 22. The coating 24 in this example is continuous, conforms to the shape of the substrate 22 and is of uniform thickness. The coating 24, also shown in schematic microscopic view in
(10) The composition of the compound of aluminum, boron and nitrogen can be varied to alter thermal conductivity, oxidation resistance and possibly other properties of the coating 24. In one example, the compound of aluminum, boron and nitrogen has a composition B.sub.xAl.sub.(1-x)N, where x is 0.001 to 0.999. The prescribed composition yields, at least initially upon deposition, a single phase. The single phase is, however, inherently metastable and can phase separate under prolonged use of the article 20 at elevated temperatures into aluminum nitride and boron nitride phases. The composition B.sub.xAl.sub.(1-x)N and an amount of BN, by weight, of no greater than 10% contribute to the thermal stability of the compound and ensures that, at least initially upon deposition, the compound is a single phase. In this regard, the network 26, and thus the coating 24, has a homogenous distribution of the AlN bonds and the BN bonds. In other words, the AlN and BN are molecularly distributed such that the network 26 has a nanodispersion of domains of AlN and BN. The composition B.sub.xAl.sub.(1-x)N and an amount of BN, by weight, of no greater than 50% are also preferred compositions for certain desirable properties. In
(11) In further examples of the composition B.sub.xAl.sub.(1-x)N, the AlN and BN are provided in a ratio, by weight. In some examples, the ratio can be between 90:10 and 50:50, such as 75:25 or 50:50. Within the given ratio range, boron is always the least abundant. Aluminum is most abundant at ratios of 90:10 and 75:25, and nitrogen is more abundant than aluminum at the 50:50 ratio (43% N, 40% Al).
(12) The enhanced thermal conductivity and oxidation resistance contribute to protecting the underlying substrate 22 from environmental conditions that can otherwise cause chemical degradation of the material of the substrate 22, such as but not limited to oxidation. In some examples, the coating 24 is thus particularly useful for protecting substrates that include materials that are susceptible to chemical degradation under the expected environmental conditions in which the article 20 will be used. For example, gas turbine engine components can be subjected to extreme elevated temperatures (e.g., above 750 C.) in the presence of moisture. In such conditions, the coating 24 protects the underlying substrate 22 from chemical degradation. In one example, the substrate 22 is a silicon-containing material or a carbon (e.g., graphite) material. In further examples, the substrate 22 is or includes silicon carbide. In further examples, the substrate 22 is or includes silicon carbide nitride, silicon nitride carbide or silicon nitride. The substrate 22 can be a monolithic structure of these phases or a composite structure containing these phases.
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(14) As shown in
(15) In a further example, the fibers 122 are selected from silicon-containing fibers, carbon fibers or combinations thereof. In particular, silicon-containing fibers, such as silicon carbide fibers, silicon nitride carbide fibers, silicon carbide nitride fibers and silicon nitride fibers, and carbon (e.g., graphite) fibers can be susceptible to environmental conditions that chemically degrade the silicon-containing material or carbon. In this regard, the conformed coating 124 protects the underlying fiber 122 from chemical degradation.
(16) The matrix 136 of the article 120 can also include the same or different silicon-containing material. For example, the silicon-containing material of the matrix 136 is a continuous or discontinuous phase of silicon carbide, silicon carbide nitride, silicon nitride carbide or silicon nitride. Alternatively, the matrix 136 is or includes other continuous or discontinuous phases, such as but not limited to carbides, nitrides, oxides, oxycarbides, oxynitrides, phosphides, sulfides or combinations thereof. Additionally, the matrix 136 can be monolithic or can be a composite of several phases of different compositions.
(17) The coating 24/124 can be deposited onto the substrate 22/122 using any or all of a variety of different deposition techniques. In one example, the coating 24/124 is deposited using a vapor deposition technique involving organometallic and metal organic precursors. For instance, the precursors are Me.sub.3NAlH.sub.3 and NH.sub.3BH.sub.3. In another example, the coating 24/124 can be deposited using a polymer deposition technique. For instance, the polymer deposition technique involves the deposition of a polymer from a reaction of tris-ethylaminoborane with diethyl aluminum amide, followed by pyrolysis or co-deposition in ammonia. Other deposition methods such as those based on deposition followed by reaction are also contemplated (e.g. deposition from an aluminum-containing salt solution followed by nitridation with ammonia).
(18) The above techniques can be used to deposit the compositions as disclosed above, including the composition B.sub.xAl.sub.(1-x)N, where x is 0.001 to 0.999. The deposition parameters can be controlled to control the value of x in the given composition. Depending upon the value of x, a single phase of the compound of aluminum, boron and nitride can be deposited. Thus, by controlling the deposition parameters and value of x in the composition, a single phase of the coating 24/124 can be deposited, as well as compounds of aluminum, boron and nitrogen that are dual phase of boron nitride and aluminum nitride. The deposition parameters and value of x can also be controlled to modify the extent and type of crystallinity of the compound in the coating 24/124. In addition to the deposition process and materials used, parameters such as deposition time, temperature and atmosphere are the primary parameters of control and, given this disclosure, the skilled artisan will be able to determine suitable parameters to achieve desired values of x in the composition and desired phase or phases with desired degrees of crystallinity.
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(21) Although a combination of features is shown in the illustrated examples, not all of them need to be combined to realize the benefits of various embodiments of this disclosure. In other words, a system designed according to an embodiment of this disclosure will not necessarily include all of the features shown in any one of the Figures or all of the portions schematically shown in the Figures. Moreover, selected features of one example embodiment may be combined with selected features of other example embodiments.
(22) The preceding description is exemplary rather than limiting in nature. Variations and modifications to the disclosed examples may become apparent to those skilled in the art that do not necessarily depart from the essence of this disclosure. The scope of legal protection given to this disclosure can only be determined by studying the following claims.