Bonded mount ring spinner
10472049 ยท 2019-11-12
Assignee
Inventors
- Colin J. Kling (Middletown, CT, US)
- Scot A. Webb (Gale Ferry, CT, US)
- James J. McPhail (New London, CT, US)
Cpc classification
F01D5/066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2220/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2230/23
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T50/60
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
Abstract
A fan assembly of a gas turbine engine, a method for fabricating a fan assembly for a gas turbine engine, and a gas turbine engine are disclosed. The fan assembly of the gas turbine engine may include a spinner section, a fan hub section aft of the spinner section, and a joint therebetween. The fan assembly may further include a support ring for internally supporting the spinner, the support ring including a first portion facing the fan hub and a second portion connected to the spinner at the joint, wherein the connection between the second portion and the joint is a bonded connection.
Claims
1. A fan assembly, for a gas turbine engine, comprising: a spinner, a fan hub aft of the spinner, and a joint therebetween; a support ring for internally supporting the spinner including a first portion facing the fan hub and a second portion connected to the spinner at the joint, wherein the connection between the second portion and the joint is a bonded connection and the assembly further comprises bond rails at the joint sized to bear radial stresses throughout a flight cycle of the gas turbine engine.
2. The fan assembly of claim 1, wherein the joint comprises an axial stop.
3. The fan assembly of claim 1, wherein the joint comprises a radial snap.
4. The fan assembly of claim 1, further comprising a mating key at the joint.
5. The fan assembly of claim 4, wherein the support ring further comprises a mating slot to accept the mating key at the joint.
6. The fan assembly of claim 1, wherein the second portion of the support ring is bonded by epoxy to the spinner section at the joint.
7. The fan assembly of claim 1, wherein the second portion of the support ring is bonded by silicone adhesive to the spinner at the bonding joint.
8. A gas turbine engine, comprising: a fan assembly section, the fan assembly section comprising: a spinner, a fan hub aft of the spinner, and a joint therebetween; a support ring for internally supporting the spinner including a first portion facing the fan hub and a second portion connected to the spinner at the joint, wherein the connection between the second portion and the joint is a bonded connection and the assembly further comprises bond rails at the joint sized to bear radial stresses throughout a flight cycle of the gas turbine engine; a compressor section downstream of the fan assembly section; a combustor section downstream of the compressor section; and a turbine section downstream of the combustor section.
9. The gas turbine engine of claim 8, wherein the joint further comprises an axial stop, the axial stop transferring axial compressive forces associated with the gas turbine engine to the support ring.
10. The gas turbine engine of claim 8, wherein the joint further comprises a radial snap, the radial snap transferring radial forces associated with the gas turbine engine to the support ring.
11. The gas turbine engine of claim 8, wherein the fan assembly section further comprises a mating key at the joint.
12. The gas turbine engine of claim 11, wherein the support ring further comprises a mating slot to accept the mating key at the joint.
13. The gas turbine engine of claim 12, wherein the mating key and the mating slot, in combination, transfer shear forces associated with the gas turbine engine to the support ring.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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(6) It should be understood that the drawings are not necessarily to scale and that the disclosed embodiments are sometimes illustrated diagrammatically and in partial views. In certain instances, details which are not necessary for an understanding of this disclosure or which render other details difficult to perceive may have been omitted. It should be understood, of course, that this disclosure is not limited to the particular embodiments illustrated herein.
DETAILED DESCRIPTION OF THE DISCLOSURE
(7) Referring to the drawings, and with specific reference to
(8) The gas turbine engine 10 may have a fan section 11 including a spinner 15, the fan section 11 drawing in ambient air and directing the ambient air to a compressor section 12. The incoming air is greatly compressed by the compressor section 12 and directed to a combustor section 13 where it is mixed with fuel and combusted. The products of that combustion, in the form of very hot and expanding gases, are directed to a turbine section 14 shown to be downstream of the combustor section 13. The turbine section 14 and/or compressor section 12 may each be comprised of a plurality of blades radially extending from a shaft forming rotating sections or rotors. A plurality of vanes may radially extend inwardly from a static section or stator, and are intermeshed with the plurality of blades. In so doing, it can be seen that the turbine section 14, compressor section 12, spinner 15 and fan 11 all revolve around a central engine axis 16.
(9) Further,
(10) The spinner 15 and the support ring 24 may be separate elements individually fabricated to be combined on construction of the fan section 11 and/or the gas turbine engine 10 itself. The spinner 15 and/or the support ring 24 may be fabricated individually by an injection molding process. Such injection molding processes may include injecting a molding material into a mold shaped in the form of the spinner 15 and/or the support ring 24. The molding material may be a filled composite containing, for example, plastics mixed with chopped carbon fibers and/or fiber glass.
(11) The support ring 24 may interface with the fan hub section 22 on its interior diameter (aft) and interface with the spinner 15 on its outer diameter (forward). As seen in the further detailed, cross-sectional view of the spinner 15 in
(12) When in operative association with the bonding joint 30, the support ring 24 may be designed to transfer axial compressive and tensile forces, rotational shear forces, and radial compressive forces.
(13) The bonding joint 30 may include one or more mating keys 34 and the support ring 24 may include one or more correlated mating slots 35. The mating keys 34 may be designed to fit the size and shape of the mating slots 35 in a male/female, locking manner. When the support ring 24 is to be attached to the spinner 15, the mating keys 34 and mating slots 35 may be aligned and positioned in a locking manner. The mating keys 34 and the mating slots 35, in combination, may transfer shear forces impacting the spinner 15 to the support ring. Such shear forces may be present due to rotational acceleration and/or deceleration of the gas turbine engine 10. While the present example shows the mating keys 34 associated with the bonding joint 30 and the mating slots 35 are associated with the support ring 24, alternatively, mating keys associated with the support ring 24 and the mating slots are associated with the bonding joint. The bonded joint enables the support ring to be separate from the spinner and maintain the disclosed interfaces, simultaneously allowing the spinner to be manufactured in two pieces and, thus, injection molded.
INDUSTRIAL APPLICABILITY
(14) From the foregoing, it can be seen that the technology disclosed herein has industrial applicability in a variety of settings such as, but not limited to, bonded support rings for a fan spinner of a gas turbine engine. The gas turbine engine may be used in conjunction with an aircraft for generating thrust, or for land-based applications for generating power. The teachings of the present disclosure, may provide protection to the engine from axial compressive forces, shear forces, radial forces, and/or any other wear and tear on the fan section of a gas turbine engine or the gas turbine engine as a whole while allowing for use of a fan spinner having multiply fabricated parts. Creating a fan spinner having multiply fabricated parts allows for the parts to be fabricated by injection molding. Because injection molding may be a less costly means of fabricating components of the gas turbine engine, this improvement over the prior art may save costs due to the use of injection molding while still adhering to prescribed standards of durability and operability based on FAA regulation and consumer good-will.
(15) While the present disclosure has been in reference to a gas turbine engine and an aircraft, one skilled in the art will understand that the teachings herein can be used in other applications as well. It is therefore intended that the scope of the invention not be limited by the embodiments presented herein as the best mode for carrying out the invention, but that the invention will include all equivalents falling within the spirit and scope of the claims as well.