Generator stators and methods of making generator stators
10811926 ยท 2020-10-20
Assignee
Inventors
Cpc classification
H02K5/02
ELECTRICITY
H02K5/04
ELECTRICITY
H02K2205/00
ELECTRICITY
H02K15/0006
ELECTRICITY
H02K2213/09
ELECTRICITY
International classification
H02K5/04
ELECTRICITY
H02K7/18
ELECTRICITY
H02K15/00
ELECTRICITY
H02K5/02
ELECTRICITY
H02K1/18
ELECTRICITY
Abstract
A generator stator includes a housing arranged along a rotation axis, a sleeve seated in the housing and extending about the rotation axis, and a shim. The shim is arranged between the sleeve and the housing and fixes the sleeve radially relative to the housing to reduce diameter of a housing bore defined by the housing. Generators and methods of making generator stators are also described.
Claims
1. A generator stator, comprising: a housing arranged along a rotation axis; a sleeve seated in the housing and extending about the rotation axis; and a shim arranged between the sleeve and the housing, wherein the shim fixes the sleeve radially relative to the housing to reduce diameter of a housing bore defined by the stator housing, wherein the housing defines a coolant circuit with an outlet and at least one return inlet in fluid communication with the housing bore, wherein the outlet and the return inlet are circumferentially aligned with one another, and wherein a slot extending longitudinally along the shim is arranged on a side of the rotation axis radially opposite the outlet and the return inlet.
2. The stator as recited in claim 1, wherein laterally opposed edges of the shim formed by the slot are spaced apart from one another.
3. The stator as recited in claim 1, wherein laterally opposed edges of the shim formed by the slot are spaced abutting one another.
4. The stator as recited in claim 1, wherein the housing defines a relief cut bounding the housing bore.
5. The stator as recited in claim 1, wherein the housing does not include a relief cut bounding the housing bore.
6. The stator as recited in claim 1, wherein the shim includes a material having a hardness that is greater than a hardness of a material forming the housing.
7. The stator as recited in claim 1, wherein the shim includes a material that is substantially equivalent to a material forming the sleeve.
8. The stator as recited in claim 1, wherein the sleeve has at least one flange extending radially from the sleeve.
9. The stator as recited in claim 8, wherein the at least one flange radially overlaps the shim.
10. The stator as recited in claim 8, wherein the at least one flange radially overlaps the housing.
11. The stator as recited in claim 1, further comprising an armature body with a current coil seated within the sleeve.
12. The stator as recited in claim 1, wherein the shim is compressively fixed within the housing in an interference fit.
13. The stator as recited in claim 1, wherein the housing has a housing bore diameter that is greater than a diameter of the sleeve at a nominal temperature.
14. A generator, comprising: a stator as recited in claim 1, wherein the shim has a first circumference and a second circumference, the second circumference being smaller than the first circumference, the stator further comprising an armature body with a current coil seated within the sleeve; and a rotor carrying at least one of windings and permanent magnets received within the armature body and supported for rotation relative to the stator.
15. The generator as recited in claim 1, wherein the sleeve has at least one flange extending radially from the sleeve, the at least one flange radially overlaps the housing, wherein the shim is compressively fixed within the housing in an interference fit.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) So that those skilled in the art to which the subject disclosure appertains will readily understand how to make and use the devices and methods of the subject disclosure without undue experimentation, embodiments thereof will be described in detail herein below with reference to certain figures, wherein:
(2)
(3)
(4)
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(8) Reference will now be made to the drawings wherein like reference numerals identify similar structural features or aspects of the subject disclosure. For purposes of explanation and illustration, and not limitation, a partial view of an exemplary embodiment of a generator in accordance with the present disclosure is shown in
(9) Referring to
(10) With reference to
(11) Housing 114 defines housing bore 124 (shown in
(12) Referring to
(13) Shim 116 includes an annular body interrupted by a longitudinal slot 134. Longitudinal slot 134 is arranged on a side of rotation axis 106 radially opposite coolant outlet 128, coolant flow within annular coolant grooves 150 experiencing limited flow interruption by shim 116 and longitudinal slot 134. It is contemplated that shim 116 be formed from a shim material 142, shim material 142 having a hardness that is greater than the hardness of housing material 131. Examples of materials suitable for shim material 142 include steel materials, such as stainless and nickel steel alloys.
(14) Longitudinal slot 134 extends longitudinally along the axial length of shim 116, shim 116 having first lateral edge 136 circumferentially facing a second lateral edge 138 that both bound longitudinal slot 134. It is contemplated that first lateral edge 136 can be spaced apart from second lateral edge 138 such that a gap width 140 is defined between first lateral edge 136 and second lateral edge 138. It is also contemplated that second lateral edge 138 can circumferentially abut first lateral edge 136. The distance between first lateral edge 136 and second lateral edge 138 can be a function of the temperature of generator 100 (shown in
(15) Sleeve 118 has an annular body that extends continuously about rotation axis 106 and is formed from a sleeve material 144. Sleeve material 144 has a hardness that is greater than the hardness of housing material 131. It is contemplated that the hardness of sleeve material 144 can be substantially equivalent to shim material 142. In certain embodiments sleeve material 144 and shim material 142 are equivalent to one another, sleeve 118 and shim 116 expanding in contracting at substantially the same rate during operation of generator 100 over the generator temperature operating range. It is contemplated that sleeve 118 compressively seat shim 116 within housing bore 124 with an interference fit 132 (shown in
(16) Armature body 120 extends about rotation axis 106 and is seated within an interior of sleeve 118. Current coil 122 is seated within armature body 120 at a radially inward location. Armature body 120 includes a metallic material 162, which can magnetic steel plates axially stacked and laminated to one another.
(17) Referring to
(18) With reference to
(19) As shown in
(20) Once housing bore 124 becomes sufficiently oversized such that housing 114 is no longer suitable for service, stator 102 is overhauled, as shown in
(21) As shown in
(22) With reference to
(23) As will also be appreciated by those of skill in the art in view of the present disclosure, the diameter of the housing bore can increase due to wear during generator operation. This is indicated by box 210 in
(24) Once material removal from operation 210 reaches an extent where the generator needs to be serviced the stator is disassembled, as shown with box 220. Disassembly includes removing an armature body, e.g., armature body 120, from the stator housing. Disassembly also includes removing the sleeve from the housing body. The housing bore is then oversized by increasing the diameter of the housing bore, e.g., diameter 130 (shown in
(25) Once the housing bore has been oversized re-assembly of the generator stator begins. In certain embodiments the stator housing can be heated, thereby additionally increasing the diameter of the housing bore, as shown with box 240. Once heated a shim, e.g., shim 116, is seated within the housing bore, as shown with box 250. The sleeve is then inserted into the shim, as shown with box 260, and the armature body seated within the sleeve, as shown with box 270. The shim is thereafter fixed in rotation relative to the housing between the sleeve and the housing as shown with box 280. This can be done, for example, by cooling the stator assembly, thereby establishing an interference fit, e.g., interference fit 132 (shown inn
(26) Some generator stator housings can exhibit wear about the housing bore during service due to movement of the stator armature body and/or sleeve relative to the housing bore. The wear can be such that the housing bore exceeds the housing bore-size, i.e. diameter specification, for the housing, potentially requiring the stator housing to be replaced or repaired the return the over-sized housing bore to be within the as-built housing bore-size specification. While the housing bore oversize condition can sometimes be cured by adding material to the housing, such as with an additive manufacturing technique, such techniques can require specialized equipment add steps to the overhaul and repair process.
(27) In embodiments described herein a shim is inserted into the housing bore to return the housing bore to the housing bore-size specification. In certain embodiments the housing bore diameter is increased by removing material from the housing bounding the housing bore. In accordance with certain embodiments the housing bore is machined to be about 0.010 inches larger in diameter uniformly along the longitudinal length housing bore relative to the as-built diameter, and a 0.005 inch thick shim inserted within the housing bore. Once fitted within the housing, the shim allows the stator housing to be returned to service, avoiding the need to replace the stator housing. In accordance with certain embodiments, disadvantages of weight increase from denser shim material and/or a need for increased coolant flow to compensate for the additional heat transfer interface between the current coil and coolant circuit are offset by the improved service life of the stator housing provided by the shim.
(28) The methods and systems of the present disclosure, as described above and shown in the drawings, provide for generator stator housings with superior properties including increased service life. While the apparatus and methods of the subject disclosure have been shown and described with reference to preferred embodiments, those skilled in the art will readily appreciate that changes and/or modifications may be made thereto without departing from the scope of the subject disclosure.