The present disclosure relates generally to ceramic matrix composites, and more specifically to melt infiltration.
Ceramic matrix composites (CMCs) are materials that include ceramic fibers embedded in a ceramic matrix. CMCs typically exhibit desirable mechanical, chemical and physical properties at high temperatures. For example, CMCs are typically more resistant to oxidation at high temperatures than are metals. CMCs are generally tougher than monolithic ceramics and exhibit damage tolerance. Accordingly, CMCs are suitable for a number of high temperature applications, such as for example and without limitation use in producing components of gas turbine engines. Gas turbine engines illustratively are used to power aircraft, watercraft, power generators, and the like. CMC components illustratively may operate at much higher temperatures than other components, including for example superalloy metal components.
The manufacture of CMCs typically includes introducing a melt infiltrant to the ceramic matrix or composite body. Infiltration may be accomplished through a wick. The wick typically is disposed between the source of the infiltrant and the composite body on a generally flat surface.
The present application discloses one or more of the features recited in the appended claims and/or the following features which, alone or in any combination, may comprise patentable subject matter.
An illustrative infiltration apparatus may comprise or be adapted to include a material having a melting point. The material, may be for example an infiltrant. The apparatus may further include a second material, which may serve as a barrier. The barrier illustratively has a melting point that is illustratively higher than the melting point of an infiltrant. The apparatus may further comprise an article of manufacture such as a component. Included in the illustrative embodiment is a wick in communication with the component. The wick is also illustratively in communication with the infiltrant. The component may comprise a ceramic matrix composite.
In some embodiments, the infiltrant may be received by a melt reservoir such as for example a crucible.
According to another aspect of the present disclosure, an illustrative method of providing an infiltrant into a component is disclosed may include providing an infiltrant; providing a wick in fluid communication with a porous component; and infusing the infiltrant into the porous component by introducing the infiltrant into and through the wick. The method may include providing a barrier. The barrier illustratively may be disposed between the infiltrant and the component. Illustratively the barrier has a melting point that is higher than the melting point of the infiltrant. Raising the temperature of beyond the melting point of the barrier allows the infiltrant to flow through the wick to the component. The method includes choosing the barrier to control the parameters of the infiltration. For example, the time of infiltration and/or the temperature may be controlled. The component may comprise a ceramic matrix composite.
In another aspect, a method of infiltrating a material into a component is disclosed. The illustrative method comprises the steps of providing an infiltrant source having an infiltrant material contained therein; providing a component in fluid communication with the infiltrant source; heating the infiltrant source, the infiltrant, the component and a barrier disposed between the infiltrant source and the component; and infusing the infiltrant into the component. The component may comprise a ceramic matrix composite.
In another illustrative aspect of the disclosure, disclosed is an infiltration apparatus comprising: an infiltrant source having spaced-apart side walls defining a infiltrant well including a discharge conduit, the infiltrant well adapted to receive therein an infiltrant having a first melting point; a component; and means for controlling fluid communications between the infiltrant source and the component.
The method and apparatus illustratively provide for improved component infiltration leading to higher density, higher proportional limit and longer component life.
The method and apparatus illustratively provide the ability to control molten metal contact time with the composite body resulting in limited degradation of the composite body.
The method and apparatus illustratively provide for improved uniformity of the microstructure resulting from the reaction of infiltrant and elements in the composite body.
The method and apparatus illustratively provide for improved ability to monitor the process if coupled with thermal imaging or other technique because a major change will happen once the barrier is breached and Si begins to flow. This will support accurate process timing to produce more consistent components.
These and other features of the present disclosure will become more apparent from the following description of the illustrative embodiments.
For the purposes of promoting an understanding of the principles of the disclosure, reference will now be made to a number of illustrative embodiments illustrated in the drawings and specific language will be used to describe the same.
Referring to the Figures an illustrative apparatus 10 and method for controlling melt transfer related to the manufacture of a ceramic matrix composite (CMC) and/or metal matrix composite is depicted and disclosed. For example, the illustrative apparatus may temporarily restrict the flow of molten metal or molten metalloid to a ceramic (CMC) or metal matrix composite 30.
Illustratively, referring to the Figures, illustrative embodiments are depicted. As shown in
The apparatus 10 illustratively is supported or carried by a suitable support structure such as for example and without limitation base plate 28 or other suitable support structure. It will be appreciated that a combination of support structures may also be used as depicted for example in
As best seen in
Referring to
The remaining
It will also be appreciated that any combination of the foregoing barrier 14 placements and wicks 26, 26A-F shown in the FIGS. could be used to control the infiltration as desired. Also, multiple barriers 14 could be used in a single apparatus 10. In addition, any suitable infiltrant and barrier material and combinations thereof may be used. Some non-exhaustive examples of illustrative infiltrants 12 and higher melting point metal or dissolving barrier 14 are listed below along with some illustrative melting points. This list is illustrative only and not all inclusive.
In illustrative operation, a material such as for example an alloy 14 with a higher melting temperature or a material that requires time in contact with the molten metal to dissolve into solution is employed between the component 30 and the infiltrating metal or metalloid infiltrant 12. This ensures that the component 30 to be infiltrated is uniformly above the melting point of the infiltrant 12. Illustratively, this process and apparatus 10 may be used for reactive melt infiltration processes wherein the reaction may restrict liquid flow so if a portion of the component is below the melting point local freezing of the metal may delay infiltration and during the delay the reaction may create restrictions to the infiltration that would proceed once the required temperature is achieved. Some further illustrative examples follow.
SiC/SiC CMC. In an illustrative example, a Hi-Nicalon preform is constructed at 36% fiber volume and assembled in tooling for Chemical Vapor Infiltration (CVI). A boron nitride (BN) interface coating is applied at 0.5 μm. A silicon-carbide (SiC) coating of about 2 μm is applied by CVI. The CMC matrix is completed through slurry and melt infiltration 10. The slurry contains elements that react with the silicon to form ceramic compositions. Illustratively, the melt infiltration process is performed using a graphite crucible 20 or other suitable infiltrant source to hold an alloy of for example Si/C/B. As best seen in
C/SiC CMC. In another illustrative example, a T-300 carbon fiber preform is constructed at 36% fiber volume and assembled in tooling for Chemical Vapor Infiltration (CVI). A pyrocarbon interface coating is applied at 0.5 μm. A SiC coating of 8 μm is applied by CVI. The CMC matrix or component 30 is completed through slurry and melt infiltration using the illustrative method and apparatus 10. The slurry contains elements that react with the silicon to form ceramic compositions. The melt infiltration process is performed by applying a Zr/Si alloy to a carbon wick 26. Referring to
It will be appreciated that the ability to control the infiltration process as described and claimed herein illustratively results in a CMC component 30 that demonstrates improved mechanical performance. Further illustratively, the apparatus and method 10 may produce a CMC component 30 with a longer operational life, a reduced weight, and at a lower cost.
While the disclosure has been illustrated and described in detail in the foregoing drawings and description, the same is to be considered as exemplary and not restrictive in character, it being understood that only illustrative embodiments thereof have been shown and described and that all changes and modifications that come within the spirit of the disclosure are desired to be protected.
The present patent document is a division of U.S. patent application Ser. No. 14/207,001, filed Mar. 12, 2014, which claims the benefit of priority under 35 U.S.C. § 119(e) to U.S. Provisional Patent Application No. 61/799,486, filed Mar. 15, 2013. Both of the aforementioned patent documents are hereby incorporated by reference in their entirety.
Number | Name | Date | Kind |
---|---|---|---|
1184523 | Field | May 1916 | A |
3310427 | Cheney et al. | Mar 1967 | A |
4036280 | Rohrig et al. | Jul 1977 | A |
4141948 | Laskow et al. | Feb 1979 | A |
4148894 | Hillig et al. | Apr 1979 | A |
4149704 | de Savigny | Apr 1979 | A |
4220455 | St. Pierre et al. | Sep 1980 | A |
4238433 | Hillig et al. | Dec 1980 | A |
4240835 | Laskow et al. | Dec 1980 | A |
4242106 | Morelock | Dec 1980 | A |
4247304 | Morelock | Jan 1981 | A |
4353953 | Morelock | Oct 1982 | A |
4522322 | Guntermann et al. | Jun 1985 | A |
4626516 | Morelock | Dec 1986 | A |
4793859 | Morelock | Dec 1988 | A |
5164098 | Brown et al. | Nov 1992 | A |
5198167 | Ohta et al. | Mar 1993 | A |
5205970 | Brun et al. | Apr 1993 | A |
5390723 | Mohla et al. | Feb 1995 | A |
5464655 | Takahata | Nov 1995 | A |
5718415 | Dainton | Feb 1998 | A |
6110535 | Rey et al. | Aug 2000 | A |
6120726 | Eggert | Sep 2000 | A |
6148899 | Cornie et al. | Nov 2000 | A |
6186768 | Schmitt | Feb 2001 | B1 |
6223937 | Schmidt | May 2001 | B1 |
6235379 | Kameda et al. | May 2001 | B1 |
7238308 | Rosenloecher | Jul 2007 | B2 |
7736554 | Thebault et al. | Jun 2010 | B2 |
8071011 | Drozny et al. | Dec 2011 | B2 |
8083987 | Schlienger | Dec 2011 | B2 |
20020166649 | Gegel | Nov 2002 | A1 |
20030156963 | Lorenz | Aug 2003 | A1 |
20040009086 | Sachs | Jan 2004 | A1 |
20040113302 | La Forest | Jun 2004 | A1 |
20060006212 | Thebault et al. | Jan 2006 | A1 |
20110096121 | Anderson et al. | Apr 2011 | A1 |
20110274911 | Drozny et al. | Nov 2011 | A1 |
20130171426 | de Diego | Jul 2013 | A1 |
20140272373 | Chamberlain | Sep 2014 | A1 |
20140306372 | Gillessen | Oct 2014 | A1 |
20150343714 | Weimer | Dec 2015 | A1 |
20150364667 | Jarmon | Dec 2015 | A1 |
Number | Date | Country |
---|---|---|
643053 | Jul 1964 | BE |
0636700 | Feb 1995 | EP |
WO 2007094862 | Aug 2007 | WO |
Entry |
---|
International Search Report for PCT International Application Serial No. PCT/US2014/024965, completed Jul. 17, 2014 (11 pages). |
International Search Report and Written Opinion for International Application No. PCT/US2014/024595, dated Jul. 17, 2014 (9 pages). |
Number | Date | Country | |
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20170166487 A1 | Jun 2017 | US |
Number | Date | Country | |
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61799486 | Mar 2013 | US |
Number | Date | Country | |
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Parent | 14207001 | Mar 2014 | US |
Child | 15401501 | US |