Fan case bushing
10648478 ยท 2020-05-12
Assignee
Inventors
Cpc classification
F04D29/056
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/644
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/522
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2230/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2260/31
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2230/80
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/526
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2260/301
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D25/243
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D19/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16D1/033
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D19/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/64
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D25/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/52
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A bushing including a body portion including a cylinder portion having a bore there through configured to receive a bolt; a flange portion orthogonal and integral to the cylinder portion, the flange portion configured to abut a load bearing surface of a flange; a lip portion orthogonal to and integral to the flange portion proximate the cylinder portion, wherein the lip portion redistributes a flange load.
Claims
1. A method of redistributing a flange load for a repaired casing flange bolt hole comprising: coupling a first casing flange with a second casing flange, wherein said first casing flange comprises at least one circular bolt hole, said second casing flange comprising at least one circular bolt hole aligned with said first casing flange bolt hole, wherein said second casing flange at least one bolt hole has a diameter larger than a diameter of said first casing flange at least one circular bolt hole; coupling a bushing with said second casing flange at least one bolt hole, wherein said bushing comprising a body portion including a cylinder portion having a circular bore configured to receive a circular bolt inserted through said circular bore and said first casing flange at least one bolt hole, said cylinder portion having an outer diameter configured to insert into and abut the second casing flange at least one bolt hole; a flange portion orthogonal and integral to said cylinder portion, said flange portion configured to couple with a load bearing surface of said second casing flange; a lip portion integral to said flange portion proximate said cylinder portion, wherein said lip portion comprises a curvilinear shape that matches a radius of a fillet of said second casing flange; and redistributing a flange load with said lip portion of said bushing.
2. The process of claim 1, further comprising: bearing said flange load with said lip portion along a fillet region of said second casing flange.
3. The process of claim 1, further comprising: varying a thickness of said lip portion extending along said lip portion proximate said fillet region.
4. The process of claim 1, wherein said lip portion and a thickness of said bushing varies responsive to at least one of a diameter of a bolt and a diameter of said second casing flange bolt hole.
5. The process of claim 1, further comprising: reducing the thickness of said bushing to retain a flange bolt length equal to a flange bolt length prior to said flange repair.
6. The process of claim 5, wherein said reducing step includes providing a reducing portion located in said bushing at an outer face proximate the circular bore of said bushing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
DETAILED DESCRIPTION
(4) Referring now to
(5) In an exemplary embodiment, each casing 12 and 14 includes a respective flange 16 and 18. In the exemplary embodiment, each flange 16 and 18 extends substantially perpendicularly outward from each respective casing 12 and 14. Alternatively, depending on the application of coupling assembly 10, each flange 16 and 18 may be oriented at any angle relative to each respective casing 12 and 14, or may extend from any other component, that enables coupling assembly 10 to function.
(6) Each casing 12, 14 includes a flange 16, 18 respectively, such that there is a first flange 16 and second flange 18. Each of the first flange 16 and second flange 18 includes a bolt hole 20, 22 respectively. The bolt holes 20, 22 are configured to receive a flange bolt, or simply bolt 24. The bolt 24 is inserted through each flange bolt hole 20, 22 aligned along a centerline 26. The bolt 24 is securely fastened with a nut 28. An optional washer or spacer 30 can be inserted over the bolt 24 and paired with the nut 28.
(7) In an exemplary embodiment, casing 12 and 14 are annular structures; each flange 16 and 18 extends circumferentially around each respective casing 12 and 14. Each flange 16 and 18 includes a respective mating surface 32 and 34 and an oppositely disposed load bearing surface 36 and 38, respectively. In the exemplary embodiment, at least a portion of mating surface 32 and 34 is substantially parallel to at least a portion of each respective loading surface 36 and 38. Each flange bolt hole 20, 24, respectively, extends between each respective mating surface 32 and 34 and each load bearing surface 36 and 38.
(8) In an exemplary embodiment, flange 16 has a generally rectangular cross-sectional profile and is formed such that mating surface 32 extends from an end surface 40 of flange 16 to an inner surface 42 of casing 12. Moreover, in the exemplary embodiment, mating surface 32 is substantially parallel to load bearing surface 36, and bolt hole 20 is oriented substantially perpendicularly to surfaces 32 and 36. Similarly, mating surface 34 extends from an end surface 44 of flange 18 to an inner surface 46 of casing 14, and is substantially perpendicular to casing 14 inner surface 46.
(9) Flange 14 is formed with an outer end portion 48, an inner end portion 50, and a body portion 52 extending integrally between outer end portion 48 and inner end portion 50. In an exemplary embodiment, flange body portion 52 has a substantially rectangular cross-sectional profile, and as such, within flange body portion 52, load bearing surface 38 is substantially parallel to mating surface 34.
(10) The flange 18 includes a fillet or radius portion 54 in the body portion 52 between the outer end portion 48 and inner end portion 50. The fillet 54 forms the transition between the casing 14 and the flange body portion 52. The fillet 54 is opposite the mating surface 34 and can form a portion of the load bearing surface 38.
(11) Referring also to
(12) The body portion 62 includes a cylinder portion 66 that encircles the bore 64 and is configured to insert into the bolt hole 22 of flange 18. In an exemplary embodiment, the cylinder portion 66 can be interference fit into the bolt hole 22. The cylinder portion 66 includes an inner diameter 68 and outer diameter 70. The inner diameter 68 is configured to receive the bolt 24. The outer diameter 70 is configured to insert into and abut the bolt hole 22. Cylinder portion 66 can be substantially cylindrical in shape. The cylinder portion 66 includes a face 72 formed between the inner diameter 68 and outer diameter 70. The face 72 can be a planar circular surface. Upon installation of the bushing 60, the face 72 can be located along the same plane as the mating surface 34. The face 72 serves to couple against the mating surface 32 of flange 16 in addition to the mating surface 34 of the flange 18 when the coupling assembly 10 is in service.
(13) The body portion 62 includes a flange portion 74. Flange portion 74 of the bushing 60 extends from the cylinder portion 66 along a plane substantially perpendicular or orthogonal to the bore 64 and parallel with a plane of the face 72. In the coupling assembly 10, the flange portion 74 abuts the load bearing surface 38 of flange 18 and functions to distribute the load across an area of the load bearing surface 38. The flange portion 74 includes a bushing inner face 76 proximate the cylinder portion 66. The flange portion includes a bushing outer face 78 opposite the bushing inner face 76. The bushing inner face 76 is configured to abut the load bearing surface 38. The outer face 78 is configured to abut at least one of the nut 28 and the washer 30 or in alternative arrangements, a bolt head (not shown).
(14) The body portion 62 also includes a lip portion 80. The lip portion 80 is a curvilinear shape that matches the same shape of the fillet 54 of the flange 18 and casing 14. The lip portion 80 is integral to and adjoins the flange portion 74. The lip portion 80 curves and extends from the cylinder portion 66 outward to a lip end face 82. The lip end face 82 can be substantially parallel to the bushing outer face 78 and/or the face 72 of the cylinder portion 66. In another exemplary embodiment, the lip end face 82 is formed as a rectilinear surface. The lip portion 80 extends from said cylinder portion such that the lip end face 82 is orthogonal to a portion of said load bearing surface 38 proximate the casing 14 beyond the fillet 54. The lip portion 80 is configured to bear a portion of the load along the fillet 54 and parts of the casing 14 proximate the fillet 54. The lip portion 80 can include a varying thickness extending from the cylinder portion 66 outwardly to the lip end face 82. In an exemplary embodiment, the lip portion 80 can include a greater thickness than the flange portion 74. The thickness of the flange portion 74 and lip portion as well as the entire bushing 60 can vary depending on the size of the bolt hole 20, 22 and the diameter of the flange bolt 24. In an exemplary embodiment the ratio of the thickness of the lip portion 80 to the flange portion 74 thickness is about 2 to 1. In an exemplary embodiment, the ratio of the thickness of the lip portion 80 the case flange 18 thickness is about 3 to 1. The lip portion 80 includes an outer radius 84 and an inner radius 86 opposite thereof. The outer radius 84 matches the radius of the fillet 54.
(15) The lip portion 80 provides additional load bearing capacity for the bushing 60. The lip portion 80 provides load bearing along a fillet region 56 of the flange 18 and casing 14. In an exemplary embodiment, the lip portion 80 can extend outwardly away from the outer face 78 about 3 times the diameter of the bolt hole 22.
(16) In an exemplary embodiment, the body portion 62 can include a reduced portion 88 located in the bushing outer face 78 proximate the bore 64. The reduced portion 88 of the outer face 78 is configured to abut at least one of the nut 28 and the washer 30 or in alternative arrangements, a bolt head (not shown). A ledge 90 is formed in the outer face 78 proximate the reduced portion 88. The ledge 90 can be a curvilinear shape and match the shape of the cylinder portion 66 and be configured to receive the washer 30 and/or the nut 28 or bolt head. The ledge 90 defines a region of greater thickness in the bushing body portion 62 than the relatively thinner reduced portion 88 of the bushing outer face 78.
(17) The addition of the lip portion 80 allows for more efficient load redistribution. The resultant load redistribution allows for a reduction in the thickness of the bushing 60. In an exemplary embodiment, the thickness requirement can be reduced from 0.07 inches to about 0.05 inches.
(18) The novel shoulder bushing design redistributes the load to a bigger bolt hole after corrosion has been removed. The bearing load from the bolt concentrates at 6 o'clock of the bolt hole proximate the fillet region. The lip portion proximate to the 6 o'clock position provides the stiffness to redistribute the load tangentially away from the hole. Since the shape of the lip portion can be dependent upon the flange geometry, the lip portion thickness can vary.
(19) In an exemplary embodiment, the novel shoulder bushing design allows a thinner bushing 60 (e.g., 0.035) such that the existing bolt 24 can still be used in the assembly 10.
(20) The additional load bearing capacity of the lip portion 80 allows for a more narrow bushing 60 and allows the bolt 24 to remain a similar length to the original bolt 24 length, thus eliminating the need to perform an additional Design Change, saving considerable expenses and design/repair/replacement schedule.
(21) The novel shoulder bushing design eliminates the need to scrap the corroded fan case, as the corrosion gets worse. The new bushing design allows the repair of the expensive component and continued service.
(22) There has been provided a casing flange bushing. While the casing flange bushing has been described in the context of specific embodiments thereof, other unforeseen alternatives, modifications, and variations may become apparent to those skilled in the art having read the foregoing description. Accordingly, it is intended to embrace those alternatives, modifications, and variations which fall within the broad scope of the appended claims.