The present invention relates generally to the field of investment casting, and more particularly to a method and apparatus for casting advanced cooling features such as are used in gas turbine engine components, and specifically in one embodiment to an investment casting core containing a cooling feature alignment guide.
Impingement cooling is often used to cool gas turbine engine components that are exposed to hot combustion gas, for example ring segment shrouds and airfoil leading and trailing edges. The backside of a component surface that is heated by the combustion gas is cooled by one or more jets of cooling fluid directed against the backside surface from holes formed in an impingement structure which is spaced apart from the backside surface. The impingement structure is typically a perforated plate that is manufactured separately and is later attached mechanically or brazed into position after the component is cast. However, problems can arise due to this complex and time consuming assembly process. U.S. Pat. No. 9,777,581 B2 issued to the assignee of the present invention describes a self-locking impingement device which simplifies the installation of an impingement structure into a cast engine component.
Cooling fluid is provided in a gas turbine engine at the cost of efficiency. In order to increase engine efficiency, combustion firing temperatures are periodically increased as material technology and component cooling schemes continue to improve. In order to improve cooling and to minimize the amount of cooling fluid consumed, some modern component designs include the use of engineered cooling features formed on the backside cooled surface to more efficiently transfer heat from the metal surface to the jet of impinging coolant fluid. Further improvements in heat transfer efficiency and reductions in manufacturing and assembly costs are desired.
The present inventors have recognized that the heat transfer efficiency of engineered impingement cooling features is heavily dependent upon the impinging jet of cooling fluid impacting the cooling feature at the intended impingement target location. The inventors have also recognized that manufacturing and assembly tolerances existing with prior art processes can result in functionally significant misalignment of the impingement structure relative to the associated cooling feature. Accordingly, the inventors disclose herein an investment casting core and related processes which produce the impingement structure in the same casting operation as the cooling feature. This is accomplished by utilizing a casting core incorporating a pre-positioned alignment guide which establishes alignment of a coolant outlet opening in the impingement structure with an associated target impingement area of the cooling feature.
The invention is explained in the following description in view of the drawings that show:
In the following detailed description of the preferred embodiment, reference is made to the accompanying drawings that form a part hereof, and in which is shown by way of illustration, and not by way of limitation, a specific embodiment in which the invention may be practiced. It is to be understood that other embodiments may be utilized and that changes may be made without departing from the spirit and scope of the present invention.
In order to increase the efficiency of the impingement cooling scheme of the later-cast component 76, a geometrically engineered cooling feature 84 may be formed on the impingement-cooled surface 82 of the component 76. The shape 18 of the impingement cooling feature 84 is formed on the impingement surface side 16 of core 10. The impingement cooling feature shape 18 is illustrated in
The core 10 also includes an alignment guide 24 extending through the body 12 from the impingement target area 22 to the impingement plate side 14. The alignment guide 24 defines a coolant flow path 92 to be formed in the later-cast metal component 76. A portion 26 of the alignment guide 24 extending away from the body 12 beyond the impingement plate side 14 results in a coolant outlet opening 90 being formed in the impingement structure 88 of the later-cast component 76. The opposed end of the alignment guide 24 is positioned in the impingement target area 22 and ensures a precise alignment of the coolant jet and the impingement target area 86 of the later-cast component 76. A portion 28 of the alignment guide 24 may extend away from the body 12 beyond the impingement surface side 16 in order to facilitate manufacture of the core 10, as will be discussed further with respect to
The impingement plate side 14 of the core 10 is illustrated in
Core material is introduced into the mold 40, such as in the form of a ceramic slurry, and is allowed to solidify around the alignment guide 24 to form the core 10. The material of the alignment guide 24 is selected to be compatible with the core material, and may be a high density silica material, for example. The alignment guide 24 may have a circular cross section, such as a 2 mm diameter silica rod, or have any other cross-sectional shape desired for the resulting cooling fluid channel 90 in the later-cast metal component 76. After drying/solidifying, the core 10 is removed from the mold 40, sintered and trimmed as necessary, and is available for use in a subsequent metal casting process, as described further below with reference to
The wax pattern 66 is processed in a standard shelling operation to be encased by a ceramic shell 68, as illustrated in
The casting mold 72 is then utilized in a metal casting process wherein molten metal is introduced into the voids 74 and allowed to cool and to solidify to form a cast metal component 76.
Demolding of component 76 from the casting mold 72 can be accomplished by standard mechanical and/or leaching processes. In one embodiment, the ceramic shell 68 is removed by mechanical means, the alignment rods 24 are at least partially drilled out to clear the openings 90 in the impingement structure 88, and then chemical leachate is introduced through the openings 90 for removing the core body 12. Inspection of interior portions of the demolded component 76, including inspection of the cooling features 84 and impingement target areas 86 for proper geometry and complete cleaning, may be accomplished via access through the openings 90 with a borescope or fiber optic inspection tool.
The present invention allows an impingement structure 88 to be cast together with the impingement cooling features 84 on a impingement cooled wall 78 of a component 76, thereby ensuring perfect alignment there between, eliminating the need for separate fabrication and attachment of the impingement structure 88. In this manner, cooling efficiency is optimized and the duration and cost of production can be reduced when compared to prior art methods.
While specific embodiments have been described in detail, those with ordinary skill in the art will appreciate that various modifications and alternatives to those details could be developed in light of the overall teachings of the disclosure. Accordingly, the particular arrangements disclosed are meant to be illustrative only and not limiting as to the scope of the invention, which is to be given the full breadth of the appended claims, and any and all equivalents thereof.
Filing Document | Filing Date | Country | Kind |
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PCT/US2019/033519 | 5/22/2019 | WO |
Publishing Document | Publishing Date | Country | Kind |
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WO2020/236169 | 11/26/2020 | WO | A |
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PCT International Search Report and Written Opinion of International Searching Authority dated Jul. 22, 2019 corresponding to PCT International Application No. PCT/US2019/033519 filed May 22, 2019. |
Number | Date | Country | |
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20220193757 A1 | Jun 2022 | US |