EP3381583A1 - Airfoil formed with an integral core - Google Patents

Airfoil formed with an integral core Download PDF

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Publication number
EP3381583A1
EP3381583A1 EP18161592.3A EP18161592A EP3381583A1 EP 3381583 A1 EP3381583 A1 EP 3381583A1 EP 18161592 A EP18161592 A EP 18161592A EP 3381583 A1 EP3381583 A1 EP 3381583A1
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EP
European Patent Office
Prior art keywords
core
slurry
core die
integral casting
ceramic
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
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Application number
EP18161592.3A
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German (de)
French (fr)
Inventor
Jinquan Xu
Glenn Levasseur
Carl R. Verner
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RTX Corp
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United Technologies Corp
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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B22CASTING; POWDER METALLURGY
    • B22CFOUNDRY MOULDING
    • B22C7/00Patterns; Manufacture thereof so far as not provided for in other classes
    • B22C7/06Core boxes
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B22CASTING; POWDER METALLURGY
    • B22CFOUNDRY MOULDING
    • B22C7/00Patterns; Manufacture thereof so far as not provided for in other classes
    • B22C7/02Lost patterns
    • B22C7/023Patterns made from expanded plastic materials
    • B22C7/026Patterns made from expanded plastic materials by assembling preformed parts
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B22CASTING; POWDER METALLURGY
    • B22CFOUNDRY MOULDING
    • B22C9/00Moulds or cores; Moulding processes
    • B22C9/02Sand moulds or like moulds for shaped castings
    • B22C9/04Use of lost patterns
    • B22C9/043Removing the consumable pattern
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B22CASTING; POWDER METALLURGY
    • B22CFOUNDRY MOULDING
    • B22C9/00Moulds or cores; Moulding processes
    • B22C9/02Sand moulds or like moulds for shaped castings
    • B22C9/04Use of lost patterns
    • B22C9/046Use of patterns which are eliminated by the liquid metal in the mould
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B22CASTING; POWDER METALLURGY
    • B22CFOUNDRY MOULDING
    • B22C9/00Moulds or cores; Moulding processes
    • B22C9/10Cores; Manufacture or installation of cores
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B22CASTING; POWDER METALLURGY
    • B22CFOUNDRY MOULDING
    • B22C9/00Moulds or cores; Moulding processes
    • B22C9/12Treating moulds or cores, e.g. drying, hardening
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B22CASTING; POWDER METALLURGY
    • B22DCASTING OF METALS; CASTING OF OTHER SUBSTANCES BY THE SAME PROCESSES OR DEVICES
    • B22D29/00Removing castings from moulds, not restricted to casting processes covered by a single main group; Removing cores; Handling ingots
    • B22D29/001Removing cores
    • B22D29/002Removing cores by leaching, washing or dissolving
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B22CASTING; POWDER METALLURGY
    • B22DCASTING OF METALS; CASTING OF OTHER SUBSTANCES BY THE SAME PROCESSES OR DEVICES
    • B22D29/00Removing castings from moulds, not restricted to casting processes covered by a single main group; Removing cores; Handling ingots
    • B22D29/001Removing cores
    • B22D29/005Removing cores by vibrating or hammering

Definitions

  • epoxies that may be used in the core die are aromatic, aliphatic or cycloaliphatic epoxy resins.
  • a useful epoxy resin is the diglycidyl ether of bisphenol F, also known as EPON 862®, available from Hexion Inc. of Columbus, Ohio, and having the structure shown in Formula (1):
  • the epoxy resin of Formula (4) is commercially available as EPON 828®, available from Hexion Inc. of Columbus, Ohio.
  • Other exemplary variations of Formula (3) that may be used are shown in the Formulas (5) and (6).
  • one variation of the Formula (6) that may be used is shown in the Formula (5) below.
  • R2 and R3 may be the same or different and are independently a C1 - 30 alkyl group, a C3-30 cycloalkyl, a C6-30 aryl, a C7-30 alkaryl, a C7-30 aralkyl, a C1-30 heteroalkyl, a C3-30 heterocycloalkyl, a C6-30 heteroaryl, a C7-30 heteroalkaryl, a C7-30 heteroaralkyl, a C2-10 fluoroalkyl group, or a combination thereof.
  • FIG. 4 is a cross section view of integral casting core 52 (without disposable insert 50) of FIG. 3 positioned in investment casting die 56.
  • a fluid material, such as wax has been disposed in investment casting die 56 and solidified and/or cured to create investment airfoil 58.
  • Investment airfoil 58 is substantially the same as blade 10 (shown in FIG. 1 ), except for the material and presence of integral casting core 52.
  • FIG. 5 is a cross section view of shell 60 (including integral casting core 52) positioned in airfoil die 62.
  • Investment airfoil 58 is then removed from shell 60, and molten metal is then disposed in airfoil die 62.
  • the molten metal can be used to melt or burn investment airfoil 58 as the molten metal is disposed in airfoil die 62.
  • shell 60 is broken and integral casting core 52 is removed via a chemical and/or mechanical process, leaving only blade 10 (shown in FIG. 1 ).
  • the slurry can comprise a refractory metal material.
  • a method of forming an integral casting core includes: adding a disposable insert to a core die, wherein the disposable insert defines an inner wall in a multi-wall component; disposing a slurry into the core die, wherein the slurry comprises a refractory metal material; firing the slurry to form an integral casting core, wherein firing the slurry occurs after adding the disposable insert to the core die and disposing the slurry into the core die; and removing the disposable insert from the integral casting core.
  • the integral casting core of the preceding paragraph can optionally include, additionally and/or alternatively, any one or more of the following features, configurations and/or additional components:
  • a further embodiment of any of the foregoing integral casting cores, wherein the core die can comprise epoxy.
  • a method of forming an airfoil with an integral casting core includes: adding a disposable insert to a core die, wherein the disposable insert defines an inner wall in a multi-wall component and wherein the core die comprises at least one of the following materials: epoxy, ceramic, silicone, polysiloxane, polydimethylsiloxane, polyimide, epoxysilanes, phenolics, polyurethanes, polysilsesquioxanes, organic matrix composites, metal matrix composites, and a hybrid material; disposing a slurry into the core die; wherein the slurry comprises ceramic particles; firing the slurry to form an integral casting core, wherein firing the slurry occurs after adding the disposable insert to the core die and disposing the slurry into the core die; removing the disposable insert from the integral casting core; disposing the integral casting core into an investment casting die; injecting a wax into the investment casting die to form a wax component; immersing the wax component into a
  • the core die can further comprise a metallic material adhered to the silicone.
  • the slurry can comprise a refractory metal material.

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Molds, Cores, And Manufacturing Methods Thereof (AREA)

Abstract

A method of forming an integral casting core (52) includes adding a disposable insert (50) to a core die (48) with the disposable insert (50) defining an inner wall in a multi-wall airfoil (16). The core die (48) includes at least one of epoxy, ceramic, silicone, polysiloxane, polydimethylsiloxane, polyimide, epoxysilanes, phenolics, polyurethanes, polysilsesquioxanes, organic matrix composites, metal matrix composites, and a hybrid material. A slurry is disposed into the core die (48) and fired to form an integral casting core (52). The disposable insert (50) is removed from the integral casting core (52).

Description

    CROSS REFERENCE TO RELATED APPLICATIONS
  • Reference is made to application Ser. No. _______ entitled "AIRFOIL FORMED WITH AN INTEGRAL CORE", which is filed on even date and are assigned to the same assignee as this application.
  • BACKGROUND
  • The present inventions is related to airfoils, and, more particularly, to the forming of airfoils.
  • The high temperatures of gases and components within gas turbine engines require advanced cooling solutions. In the "hot sections" of a gas turbine engine, the walls of some components can be exposed to gases having temperatures above the melting point of the material used to form the walls. As a result, the components can contain a number of cavities through which cooling air flows to reduce component temperature. However, forming an airfoil with cooling cavities can be difficult and expensive to manufacture.
  • SUMMARY
  • According to an embodiment, a method of forming an integral casting core includes adding a disposable insert to a core die with the disposable insert defining an inner wall in a multi-wall airfoil. The core die includes at least one of epoxy, ceramic, silicone, polysiloxane, polydimethylsiloxane, polyimide, epoxysilanes, phenolics, polyurethanes, polysilsesquioxanes, ceramic, organic matrix composites, metal matrix composites, and a hybrid material. A slurry is disposed into the core die and fired to form an integral casting core. The disposable insert is removed from the integral casting core.
  • According to another embodiment, an integral casting core includes a disposable insert that includes at least on of epoxy, ceramic, silicone, polysiloxane, polydimethylsiloxane, ceramic, organic matrix composites, metal matrix composites, and another hybrid material and/or wherein the integral casting core includes a refractory metal material. The integral casting core is made by the steps of adding a disposable insert to a core die with the disposable insert defining an inner wall in a multi-wall airfoil, disposing a slurry into the core die and fired to form an integral casting core, and removing the disposable insert from the integral casting core.
  • BRIEF DESCRIPTION OF THE DRAWINGS
    • FIG. 1 is a side view of a blade.
    • FIG. 2 is a cross section view of the blade of FIG. 1 taken along the line A-A.
    • FIG. 3 is a cross section view of a core die including a disposable insert and an integral casting core that corresponds to the location on the blade of FIG. 1 at line A-A.
    • FIG. 4 is a cross section view of the integral casting core of FIG. 3 positioned in an investment casting die.
    • FIG. 5 is a cross section view of a shell positioned in an airfoil die.
    • FIG. 6 is a flow diagram of a process of forming an airfoil.
    DETAILED DESCRIPTION
  • Multiple wall components can offer improved cooling capabilities compared to simpler, single wall structures. Examples of components that can have multiple walls (e.g., dual walls) include, but are not limited to, blades, vanes, and blade outer air seals (BOAS). The features of a blade will be used to describe one example of a multi-wall component including a method of forming such a component. FIG. 1 is a side view of blade 10. Blade 10 includes root section 12, platform 14, airfoil 16 and tip section 18. Blade 10 extends from root section 12 to tip section 18 along a radial axis. Airfoil 16 extends radially from platform 14. Airfoil 16 includes pressure side wall 20 and suction side wall 22, which extend from leading edge 24 to trailing edge 26.
  • FIG. 2 is a cross section view of blade 10 of FIG. 1 taken along the line A-A and illustrates the multiple walls of airfoil 16. Pressure side wall 20 forms a first outer wall, and suction side wall 22 forms a second outer wall, the two walls meeting at leading edge 24 and trailing edge 26. Airfoil 16 also includes first divider 27, first inner wall 28, second divider 29, and second inner wall 30. First divider 27 extends between pressure side wall 20 and suction side wall 22, proximate leading edge 24, and second divider 29 extends between pressure side wall 20 and suction side wall 22, proximate the mid-chord of airfoil 16. First inner wall 28 and second inner wall 30 are spaced apart from one another and from walls 20 and 22, and each inner wall 28 and 30 extends from first divider 27, past second divider 29, towards trailing edge 26.
  • In the illustrated embodiment, pressure side wall 20 and suction side wall 22 form an outer circuit that forms some of the exterior of airfoil 16. Positioned inside of the outer circuit and outside of an inner circuit is a plurality of outer cavities 32. First divider 27, first inner wall 28, second divider 29, and second inner wall 30 form the inner circuit that is offset inward from the outer circuit. Some of outer cavities 32 are located between the inner circuit and the outer circuit, and others are positioned closer to trailing edge 26 than second divider 29. The outer portions of outer cavities 32 are defined by either pressure side wall 20 or suction side wall 22, and the inner portions of outer cavities 32 are defined by either first inner wall 28 or second inner wall 30, respectively. In addition to the dual-circuit conceptualization, such an arrangement can be thought of as a quadruple-wall configuration because in some areas of airfoil 16, four walls would be encountered when moving perpendicularly across airfoil 16 in the chordal direction.
  • Airfoil 16 further includes nose cavity 34 positioned proximate leading edge 24, wherein nose cavity 34 is defined by pressure side wall 20, suction side wall 22, and first divider 27. In addition, airfoil 16 includes inner cavities 36A and 36B. Inner cavity 36A is completely defined by the inner circuit, which is more specifically first divider 27, first inner wall 28, second divider 29, and second inner wall 30. Inner cavity 36B is defined by pressure side wall 20, suction side wall 22, and second divider 29. Such an arrangement can be conceptualized as a quadruple-wall configuration because in some areas of airfoil 16, four walls would be encountered when moving perpendicular to the chordal direction. Due to nose cavity 34 and inner cavities 36A and 36B, airfoil 16 can be thought of as a three-zone airfoil. First zone 38 extends from leading edge 24 to the upstream end of outer cavities 32 and includes nose cavity 34 (but none of outer cavities 32 or inner cavities 36A and 36B). Second zone 40 extends from the upstream end to the downstream end of outer cavities 32 and includes all of outer cavities 32, all of inner cavity 36A, and a portion of inner cavity 36B. Third zone 42 extends from the downstream end of outer cavities 32 to trailing edge 26 and includes the remainder of inner cavity 36B that is not in second zone 40.
  • Inner cavities 36A and 36B allow for cooling air (not shown) to be transported through airfoil 16 and distributed amongst outer cavities 32 via intermittent channels 44. Having cooling air flowing through outer cavities 32 cools pressure side wall 20 and suction side wall 22. In some embodiments, there are passages 46 which connect an outer cavity 32 to the environment that is exterior to airfoil 16. Cooling air flow through passages 46 can form a cooling film along the exterior of airfoil 16, further regulating the temperature of pressure side wall 20 and suction side wall 22. The configuration of airfoil 16 allows for better impingement cooling and more uniform internal air flow than traditionally configured cooled airfoils.
  • In alternate embodiments, airfoil 16 can have more or less outer cavities 32 than eight. Furthermore, outer cavities 32 can only be present proximate one of pressure side wall 20 or suction side wall 22. Such embodiments can be considered to have triple-wall configurations because in some areas, three walls would be encountered when moving perpendicularly across such airfoils in the chordal direction.
  • FIG. 3 is a cross section view of core die 48 including disposable insert 50 and integral casting core 52 that corresponds to the location on blade 10 of FIG. 1 at line A-A, and is used to form an airfoil with triple or quadruple wall construction, as previously described in FIG. 2. In order to use core die 48, disposable insert 50 has been added to core die 48. After this step, a slurry has been disposed into core die 48 to form a negative of the interior cavities and passages of blade 10 (shown in FIGS. 1 and 2). Core die 48 (including the slurry and disposable insert 50) has then been put through a process to solidify and/or cure the slurry to form integral casting core 52. Such a process can be, for example, firing core die 48 in a kiln.
  • In order to use integral casting core 52 in the next steps, disposable insert 50 is removed from integral casting core 52. The step of removal can occur during the solidification and/or curing process or afterwards. Removal of disposable insert 50 can occur using chemical, thermal, and/or mechanical methods to dissolve, degrade, divide, melt, burn, and/or otherwise destroy disposable insert 50. Such methods can include the application of acids, bases, abrasives, cutting tools, radiation, heat, and/or cold to disposable insert 50.
  • In the illustrated embodiment, disposable insert 50 comprises insert parts 54A and 54B. Insert parts 54A and 54B are in contact with one another and define what will become the inner sides of outer cavities 32, the downstream portion of nose cavity 34, inner cavity 36A, the upstream portion of inner cavity 36B, and channels 44. Correspondingly, core die 48 defines what will become the outer sides of outer cavities 32, the upstream portion of nose cavity 34, the downstream portion of inner cavity 36B, and passages 46 (all shown in FIG. 2). In alternate embodiments, disposable insert 50 can be comprised of more or less parts than two.
  • Core die 48 can be comprised of at least one of several suitable materials, for example, metal, crosslinkable polymers such as epoxy, silicone (e.g., polysiloxane, in particular polydimethylsiloxane), polyimides, epoxysilanes, phenolics, polyurethanes, polysilsesquioxanes, ceramic, organic matrix composites, metal matrix composites, and other hybrid materials. The silicone can be backed by (for example, adhered to) a metal or epoxy material to make a hybrid-material core die 48 such that the silicone is in contact with the slurry. In addition, the ceramic material can be in the form of a monolithic ceramic material or a ceramic matrix composite (CMC) material. Disposable insert 50 can be comprised of at least one of several suitable materials, for example, epoxy, silicone (e.g., polysiloxane, in particular polydimethylsiloxane), ceramic, organic matrix composites, metal matrix composites, and other hybrid materials. The silicone can be backed by (for example, adhered to) a metal or epoxy material to make a hybrid-material disposable insert 50 such that the silicone is in contact with the slurry. In addition, the ceramic material can be in the form of a monolithic ceramic material or a ceramic matrix composite (CMC) material. The slurry used to form integral casting core 52 can be comprised of a refractory metal core (RMC) material or a ceramic material suspended in a polymeric material, such as wax. At least some of the materials that can be used for core die 48 and/or integral casting core 52 are advantageous because they have a lower thermal conductivity than that of traditional metal materials.
  • Examples of epoxies that may be used in the core die are aromatic, aliphatic or cycloaliphatic epoxy resins. In an embodiment, a useful epoxy resin is the diglycidyl ether of bisphenol F, also known as EPON 862®, available from Hexion Inc. of Columbus, Ohio, and having the structure shown in Formula (1):
    Figure imgb0001
  • In another embodiment, the epoxy resin is a modified diglycidyl ether of bisphenol F also known as a modified EPON 862® and having the structure shown in Formula (2):
    Figure imgb0002
    where n is the number of repeat units. The epoxy resin of the formula (1) is produced by polymerizing bisphenol F with the EPON 862®.
  • In an embodiment, the epoxy resin may have the structure shown in the Formula (3) below:
    Figure imgb0003
    where R1 is a single bond, -O-, -S-, -C(O)-, or a C1-18 organic group. The C1-18 organic bridging group may be cyclic or acyclic, aromatic or non-aromatic, and can further comprise heteroatoms such as halogens, oxygen, nitrogen, sulfur, silicon, or phosphorous. The C1-18 organic group can be disposed such that the C6 arylene groups connected thereto are each connected to a common alkylidene carbon or to different carbons of the C1-18 organic bridging group. In the Formula (6), R2 is a C1 - 30 alkyl group, a C3-30 cycloalkyl, a C6-30 aryl, a C7-30 alkaryl, a C7-30 aralkyl, a C1-30 heteroalkyl, a C3-30 heterocycloalkyl, a C6-30 heteroaryl, a C7-30 heteroalkaryl, a C7-30 heteroaralkyl, a C2-10 fluoroalkyl group, or a combination thereof.
  • In yet another exemplary embodiment, the epoxy resin is the reaction product of 2-(chloromethyl)oxirane and 4-[2-(4-hydroxyphenyl)propan-2-yl]phenol also known as bisphenol A-epichlorohydrin based epoxy (also known as bisphenol A diglycidyl ether) of the Formula (4) below:
    Figure imgb0004
  • The epoxy resin of Formula (4) is commercially available as EPON 828®, available from Hexion Inc. of Columbus, Ohio. Other exemplary variations of Formula (3) that may be used are shown in the Formulas (5) and (6). In an embodiment, one variation of the Formula (6) that may be used is shown in the Formula (5) below.
    Figure imgb0005
    where R1 is detailed above in Formula (3), R2 and R3 may be the same or different and are independently a C1 - 30 alkyl group, a C3-30 cycloalkyl, a C6-30 aryl, a C7-30 alkaryl, a C7-30 aralkyl, a C1-30 heteroalkyl, a C3-30 heterocycloalkyl, a C6-30 heteroaryl, a C7-30 heteroalkaryl, a C7-30 heteroaralkyl, a C2-10 fluoroalkyl group, or a combination thereof.
  • In an exemplary embodiment, an epoxy having the structure of Formula (6) may be used in the coating.
    Figure imgb0006
  • Examples of suitable epoxies are diglycidyl ether of bisphenol A, diomethane diglycidyl ether, 2,2-bis(4-glycidyloxyphenyl)propane, 2,2'-((1-methylethylidene)bis(4,1-phenyleneoxymethylene))bisoxirane, 2,2-bis(4-(2,3-epoxypropyloxy)phenyl)propane, 2,2-bis(4-hydroxyphenyl)propane, diglycidyl ether, 2,2-bis(p-glycidyloxyphenyl)propane, 4,4'-bis(2,3-epoxypropoxy)diphenyldimethylmethane, 4,4'-dihydroxydiphenyldimethylmethane diglycidyl ether, 4,4'-isopropylidenebis(1-(2,3-epoxypropoxy)benzene), 4,4'-isopropylidenediphenol diglycidyl ether, bis(4-glycidyloxyphenyl)dimethylmethane, bis(4-hydroxyphenyl)dimethylmethane diglycidyl ether, diglycidyl ether of bisphenol F, 2-(butoxymethyl)oxirane, the reaction product of 2-(chloromethyl)oxirane and 4-[2-(4-hydroxyphenyl)propan-2-yl]phenol also known as bisphenol A-epichlorohydrin based epoxy, modified bisphenol A - epichlorohydrin based epoxy, diglycidyl 1,2-cyclohexanedicarboxylate, 1,4-cyclohexanedimethanol diglycidyl ether, a mixture of cis and trans 1,4-cyclohexanedimethanol diglycidyl ether, neopentyl glycol diglycidyl ether, resorcinol diglycidyl ether, 4,4'-methylenebis(N,N-diglycidylaniline), 3,4-epoxycyclohexylmethyl 3,4-epoxycyclohexanecarboxylate, 3,4-epoxy-1-cyclohexanecarboxylic acid, 3,4-epoxycyclohexan-1-yl)methyl ester, tert-butyl glycidyl ether, 2-Ethylhexyl glycidyl ether, epoxypropoxypropyl terminated polydimethylsiloxanes, neopentyl glycol diglycidyl ether, 1,4-cyclohexanedimethanol diglycidyl ether, 1,3-bis[2-(3,4-epoxycyclohexyl)ethyl]tetramethyldisiloxane, trimethylolpropane triglycidyl ether, diglycidyl 1,2-cyclohexanedicarboxylate, or the like, or a combination thereof.
  • In an embodiment, one of the foregoing epoxies may be combined with the precursor to a metal oxide and an epoxysilane (shown in the formula (7) below) in order to produce the nanoparticle coating composition on the substrate.
    Figure imgb0007
  • In yet another embodiment, the nanoparticles may be modified by using an oligomer that is endcapped with an alkoxysilane.
  • Silsesquioxanes have the structure (RSiO1.5)n wherein R represents one or more types of substituents, typically organic in nature. An alternate designation is "T-resin," indicating that there are three (tri-substituted) oxygen atoms substituting the silicon. These molecules have rigid, thermally stable silicon-oxygen frameworks whose structures and characteristics are intermediate between those of silica glass (SiO2)n and silicone polymer (R2SiO)n. The silsesquioxane moieties in the coating composition may be selected from among various structural types: polyhedral cage, ladder, random, or a mixture thereof, as shown in formulas 8 - 10 below.
  • Formula (8) shows a random silsesquioxane moiety
    Figure imgb0008
    while Formula (9) depicts ladder silsesquioxanes:
    Figure imgb0009
    and Formula (10) depicts complete and incomplete (partial) polyhedral cage silsesquioxanes.
    Figure imgb0010
    Polysilsesquioxanes with epoxy functionalities may also be used if desired.
  • FIG. 4 is a cross section view of integral casting core 52 (without disposable insert 50) of FIG. 3 positioned in investment casting die 56. A fluid material, such as wax has been disposed in investment casting die 56 and solidified and/or cured to create investment airfoil 58. Investment airfoil 58 is substantially the same as blade 10 (shown in FIG. 1), except for the material and presence of integral casting core 52.
  • Investment airfoil 58 is then coated with a ceramic slurry to form shell 60. FIG. 5 is a cross section view of shell 60 (including integral casting core 52) positioned in airfoil die 62. Investment airfoil 58 is then removed from shell 60, and molten metal is then disposed in airfoil die 62. Alternatively, the molten metal can be used to melt or burn investment airfoil 58 as the molten metal is disposed in airfoil die 62. Following the cooling and solidification of the molten metal, shell 60 is broken and integral casting core 52 is removed via a chemical and/or mechanical process, leaving only blade 10 (shown in FIG. 1).
  • FIG. 6 is a flow diagram of a process of forming an airfoil. At step 100, disposable insert 50 is added to core die 48. At step 102, core die 48 is closed and a first ceramic slurry is disposed into core die 48. At step 104, the first ceramic slurry is fired to form integral casting core 52. At step 106, disposable insert 50 is removed from integral casting core 52.
  • At step 108, integral casting core 52 is disposed into investment casting die 56. At step 110, wax is injected into investment casting die 56 to form a wax airfoil. At step 112, the wax airfoil is immersed into a second slurry (that may be the same or a different material from the first slurry) and then dried to form an outer shell. At step 114, the wax airfoil with the outer shell is fired to form a ceramic shell. At step 116, the wax airfoil is removed from the ceramic shell (although this step can occur simultaneously with step 114 or 118, if desired).
  • At step 118, a molten metal, ceramic, or polymer material is disposed into the ceramic shell to form at least airfoil 16, if not the entirety of blade 10. At step 120, airfoil 16 or blade 10 is removed from the ceramic shell. At step 122, integral casting core 52 is removed from airfoil 16 or blade 10.
  • DISCUSSION OF POSSIBLE EMBODIMENTS
  • The following are non-exclusive descriptions of possible embodiments of the present invention.
  • A method of forming an integral casting core according to an exemplary embodiment of this disclosure, among other possible things includes: adding a disposable insert to a core die, wherein the disposable insert defines an inner wall in a multi-wall component and wherein the core die comprises at least one of the following materials: epoxy, ceramic, silicone, polysiloxane, polydimethylsiloxane, organic matrix composites, metal matrix composites, and a hybrid material; disposing a slurry into the core die; wherein the slurry comprises ceramic particles; firing the slurry to form an integral casting core, wherein firing the slurry occurs after adding the disposable insert to the core die and disposing the slurry into the core die; and removing the disposable insert from the integral casting core.
  • The method of the preceding paragraph can optionally include, additionally and/or alternatively, any one or more of the following features, configurations and/or additional components:
  • A further embodiment of the foregoing method, wherein the core die can comprise ceramic in the form of a monolithic ceramic material.
  • A further embodiment of any of the foregoing methods, wherein the core die can comprise ceramic in the form of a ceramic matrix composite material.
  • A further embodiment of any of the foregoing methods, wherein the core die can comprise epoxy.
  • A further embodiment of any of the foregoing methods, wherein the core die can comprise silicone.
  • A further embodiment of any of the foregoing methods, wherein the core die can further comprise a metallic material adhered to the silicone.
  • A further embodiment of any of the foregoing methods, wherein the slurry can comprise a refractory metal material.
  • A method of forming an integral casting core according to an exemplary embodiment of this disclosure, among other possible things includes: adding a disposable insert to a core die, wherein the disposable insert defines an inner wall in a multi-wall component; disposing a slurry into the core die, wherein the slurry comprises a refractory metal material; firing the slurry to form an integral casting core, wherein firing the slurry occurs after adding the disposable insert to the core die and disposing the slurry into the core die; and removing the disposable insert from the integral casting core.
  • The method of the preceding paragraph can optionally include, additionally and/or alternatively, any one or more of the following features, configurations and/or additional components:
  • A further embodiment of the foregoing method, wherein the core die can comprise at least one of the following materials: epoxy, ceramic, silicone, polysiloxane, polydimethylsiloxane, polyimide, epoxysilanes, phenolics, polyurethanes, polysilsesquioxanes,, organic matrix composites, metal matrix composites, and a hybrid material.
  • A further embodiment of any of the foregoing methods, wherein the core die can comprise ceramic in the form of a monolithic ceramic material.
  • A further embodiment of any of the foregoing methods, wherein the core die can comprise ceramic in the form of a ceramic matrix composite material.
  • A further embodiment of any of the foregoing methods, wherein the core die can comprise epoxy.
  • A further embodiment of any of the foregoing methods, wherein the core die can comprise silicone.
  • A further embodiment of any of the foregoing methods, wherein the core die can further comprise a metallic material adhered to the silicone.
  • An integral casting core according to an exemplary embodiment of this disclosure, among other possible things includes a disposable insert wherein the disposable insert comprises at least one of the following materials: epoxy, ceramic, silicone, polysiloxane, polydimethylsiloxane, organic matrix composites, metal matrix composites, and another hybrid material and/or wherein the integral casting core comprises a refractory metal material, and wherein the integral casting core according to an exemplary embodiment of this disclosure, among other possible things is made by the steps of: adding the disposable insert to a core die, wherein the disposable insert defines an inner wall in a multi-wall component; disposing a slurry into the core die, wherein the slurry comprises ceramic particles; firing the slurry to form the integral casting core, wherein firing the slurry occurs after adding the disposable insert to the core die and disposing the slurry into the core die; and removing the disposable insert from the integral casting core.
  • The integral casting core of the preceding paragraph can optionally include, additionally and/or alternatively, any one or more of the following features, configurations and/or additional components:
  • A further embodiment of the foregoing integral casting core, wherein the integral casting core can comprise the refractory metal material.
  • A further embodiment of any of the foregoing integral casting cores, wherein the disposable insert can comprise at least one of the following materials: epoxy, ceramic, silicone, polysiloxane, polydimethylsiloxane, organic matrix composites, metal matrix composites, and a hybrid material.
  • A further embodiment of any of the foregoing integral casting cores, wherein the core die can comprise epoxy.
  • A further embodiment of any of the foregoing integral casting cores, wherein the core die can comprise ceramic.
  • A further embodiment of any of the foregoing integral casting cores, wherein the core die can comprise silicone.
  • A method of forming an airfoil with an integral casting core according to an exemplary embodiment of this disclosure, among other possible things includes: adding a disposable insert to a core die, wherein the disposable insert defines an inner wall in a multi-wall component and wherein the core die comprises at least one of the following materials: epoxy, ceramic, silicone, polysiloxane, polydimethylsiloxane, polyimide, epoxysilanes, phenolics, polyurethanes, polysilsesquioxanes, organic matrix composites, metal matrix composites, and a hybrid material; disposing a slurry into the core die; wherein the slurry comprises ceramic particles; firing the slurry to form an integral casting core, wherein firing the slurry occurs after adding the disposable insert to the core die and disposing the slurry into the core die; removing the disposable insert from the integral casting core; disposing the integral casting core into an investment casting die; injecting a wax into the investment casting die to form a wax component; immersing the wax component into a second slurry to form an outer shell; firing the wax component with the outer shell in a second firing process to form a ceramic shell; removing the wax from the ceramic shell; disposing a molten metal into the ceramic shell; and removing the ceramic shell to yield the airfoil.
  • The method of the preceding paragraph can optionally include, additionally and/or alternatively, any one or more of the following features, configurations and/or additional components:
  • A further embodiment of the foregoing method, wherein the core die can comprise ceramic in the form of a monolithic ceramic material.
  • A further embodiment of any of the foregoing methods, wherein the core die can comprise ceramic in the form of a ceramic matrix composite material.
  • A further embodiment of any of the foregoing methods, wherein the core die can comprise epoxy.
  • A further embodiment of any of the foregoing methods, wherein the core die can comprise silicone.
  • A further embodiment of any of the foregoing methods, wherein the core die can further comprise a metallic material adhered to the silicone.
  • A further embodiment of any of the foregoing methods, wherein the slurry can comprise a refractory metal material.
  • While the invention has been described with reference to an exemplary embodiment(s), it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from the scope of the invention. In addition, many modifications may be made to adapt a particular situation or material to the teachings of the invention without departing from the essential scope thereof. Therefore, it is intended that the invention not be limited to the particular embodiment(s) disclosed, but that the invention will include all embodiments falling within the scope of the appended claims.

Claims (14)

  1. A method of forming an integral casting core comprising:
    adding a disposable insert to a core die, wherein the disposable insert defines an inner wall in a multi-wall component and wherein the core die comprises at least one of the following materials: epoxy, ceramic, silicone, polysiloxane, polydimethylsiloxane, polyimide, epoxysilanes, phenolics, polyurethanes, polysilsesquioxanes, organic matrix composites, metal matrix composites, and a hybrid material;
    disposing a slurry into the core die;
    wherein the slurry comprises ceramic particles;
    firing the slurry to form an integral casting core, wherein firing the slurry occurs after adding the disposable insert to the core die and disposing the slurry into the core die; and
    removing the disposable insert from the integral casting core.
  2. A method of forming an integral casting core comprising:
    adding a disposable insert to a core die, wherein the disposable insert defines an inner wall in a multi-wall component;
    disposing a slurry into the core die, wherein the slurry comprises a refractory metal material;
    firing the slurry to form an integral casting core, wherein firing the slurry occurs after adding the disposable insert to the core die and disposing the slurry into the core die; and
    removing the disposable insert from the integral casting core.
  3. The method of claim 2, wherein the core die comprises at least one of the following materials: epoxy, ceramic, silicone, polysiloxane, polydimethylsiloxane, polyimide, epoxysilanes, phenolics, polyurethanes, polysilsesquioxanes, organic matrix composites, metal matrix composites, and a hybrid material.
  4. A method of forming an airfoil with an integral casting core comprising:
    adding a disposable insert to a core die, wherein the disposable insert defines an inner wall in a multi-wall airfoil and wherein the core die comprises at least one of the following materials: epoxy, ceramic, silicone, polysiloxane, polydimethylsiloxane, polyimide, epoxysilanes, phenolics, polyurethanes, polysilsesquioxanes, organic matrix composites, metal matrix composites, and a hybrid material;
    disposing a slurry into the core die;
    wherein the slurry comprises ceramic particles;
    firing the slurry to form an integral casting core, wherein firing the slurry occurs after adding the disposable insert to the core die and disposing the slurry into the core die;
    removing the disposable insert from the integral casting core;
    disposing the integral casting core into an investment casting die;
    injecting a wax into the investment casting die to form a wax component;
    immersing the wax component into a second slurry to form an outer shell;
    firing the wax component with the outer shell in a second firing process to form a ceramic shell;
    removing the wax from the ceramic shell;
    disposing a molten metal into the ceramic shell; and
    removing the ceramic shell to yield the airfoil.
  5. The method of any preceding claim, wherein the core die comprises ceramic in the form of a monolithic ceramic material.
  6. The method of any of claims 1 to 4, wherein the core die comprises ceramic in the form of a ceramic matrix composite material.
  7. The method of any of claims 1 to 4, wherein the core die comprises epoxy.
  8. The method of any of claims 1 to 4, wherein the core die comprises silicone.
  9. The method of claim 8, wherein the core die further comprises a metallic material adhered to the silicone.
  10. The method of any preceding claim, wherein the slurry comprises a refractory metal material.
  11. An integral casting core comprising a disposable insert wherein the disposable insert comprises at least one of the following materials: epoxy, ceramic, silicone, polysiloxane, polydimethylsiloxane, organic matrix composites, metal matrix composites, and another hybrid material and/or wherein the integral casting core comprises a refractory metal material, and wherein the integral casting core is made by the steps of:
    adding the disposable insert to a core die, wherein the disposable insert defines an inner wall in a multi-wall component;
    disposing a slurry into the core die, wherein the slurry comprises ceramic particles;
    firing the slurry to form the integral casting core, wherein firing the slurry occurs after adding the disposable insert to the core die and disposing the slurry into the core die; and
    removing the disposable insert from the integral casting core.
  12. The integral casting core of claim 11, wherein the integral casting core comprises the refractory metal material.
  13. The integral casting core of claim 11 or 12, wherein the disposable insert comprises at least one of the following materials: epoxy, ceramic, silicone, polysiloxane, polydimethylsiloxane, organic matrix composites, metal matrix composites, and a hybrid material.
  14. The integral casting core of any of claims 11 to 13, wherein the core die comprises epoxy, or
    wherein the core die comprises ceramic, or
    wherein the core die comprises silicone.
EP18161592.3A 2017-03-29 2018-03-13 Airfoil formed with an integral core Withdrawn EP3381583A1 (en)

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CN113337923A (en) * 2021-05-28 2021-09-03 东南大学 Core-shell type low-dielectric-resistance flame-retardant polyimide-based fiber material and preparation method thereof

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Publication number Priority date Publication date Assignee Title
CN113337923A (en) * 2021-05-28 2021-09-03 东南大学 Core-shell type low-dielectric-resistance flame-retardant polyimide-based fiber material and preparation method thereof
CN113337923B (en) * 2021-05-28 2022-03-08 东南大学 Core-shell type low-dielectric-resistance flame-retardant polyimide-based fiber material and preparation method thereof

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