TWO-PIECE CHANGING HEAD CARRIER

DE602022036775T2Active Publication Date: 2026-05-13HAMILTON SUNDSTRAND CORP
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Patent Information

Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
HAMILTON SUNDSTRAND CORP
Filing Date
2022-10-28
Publication Date
2026-05-13

AI Technical Summary

Technical Problem

Conventional end winding supports in electric machines experience high stress levels leading to fractures, and increasing material strength either results in high costs or fails to meet electrical non-conductivity requirements.

Method used

The end winding support is split into two parts, comprising a first part with a groove and a second part that is press-fit to the first part, featuring grooves that allow space for lubricant flow and winding connections, secured by a busbar and fastening element, with a containment band for additional support.

Benefits of technology

The two-part design reduces stress-related fracturing, provides easy installation, and ensures robust support for conductive windings while maintaining electrical insulation, thus enhancing durability and reducing costs.

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Description

BACKGROUND

[0001] The present disclosure relates to electric machines and, more particularly, to an electric motor-generator with a two-piece end turn winding support.

[0002] A typical electric machine includes a rotor and a stator surrounding the rotor with an air gap defined between an outer diameter of the rotor and an inner diameter of the stator. The rotor can include radially outwardly extending teeth with one or more conductive windings wound thereon. The stator can include a set of permanent magnets or electro-magnets disposed about the rotor. When current is applied to the conductive windings, the current generates a flux field that interacts with the permanent magnets or the electro-magnets of the stator to cause the rotor to rotate about a rotational axis thereof. Alternatively for an electric generator, rotation interacts with the field and produces a current.

[0003] As the conductive windings are wound on the teeth of the rotor, the conductive windings can be provided with end turns at axial ends of the rotor. The end turns allow the conductive windings to be repeatedly wound back and forth on the rotor. End winding supports can be provided to support the end turns.

[0004] It has been found that with some configurations, the end winding supports experience unacceptably high levels of stress and that this stress can lead to fractures in some cases. While material strength of the end winding supports can be increased, this is either an expensive solution or results in end winding supports that do not meet the functional requirement that they be electrically non-conductive. US 5 666 016 A describes a winding support for a rotary electrical component. US 6 727 634 B2 describes a system and method for end turn retention on a high speed generator rotor.BRIEF DESCRIPTION

[0005] According to the present invention, an end winding support of a rotor of an electric machine is provided and defined in claim 1. The end winding support includes a first part and a second part. The first part includes an elongate body about which a conductive winding is wound. The elongate body has a surface defining a first groove. The second part is attached to an outboard portion of the first part. The second part includes a body which extends outwardly from the elongate body and which has a surface defining a second groove corresponding to the first groove. The first groove widens around a recess into a widened section at an inboard portion of the first part, which is opposite the outboard portion of the first part, the widened section of the first groove is receptive of a busbar and the recess is engaged with a fastening element to secure the busbar in the widened section of the first groove.

[0006] In accordance with additional embodiments, the second part extends beyond an outboard portion of the first part.

[0007] In accordance with additional embodiments, the second part further includes a curved radially outwardly facing surface.

[0008] In accordance with additional, the second part is press-fit to the first part.

[0009] In accordance with additional embodiments, a fitting is interposable between the fastening element and an interior surface of the recess.

[0010] According to the present invention, a rotor of an electric machine is provided and defined in claim 5. The rotor includes a rotor assembly having multiple poles, a conductive winding, which is wound around one or more of the multiple poles and an end winding support to support the conductive winding. The end winding support includes a first part and a second part. The first part includes an elongate body about which the conductive winding is wound. The elongate body has a surface defining a first groove. The second part is attached to the first part. The second part includes a body which extends outwardly from the elongate body and which has a surface defining a second groove corresponding to the first groove.

[0011] In accordance with additional embodiments, a containment band is disposed radially about the rotor assembly and in abutment with the second part.

[0012] In accordance with additional embodiments, the second part extends outwardly beyond an outboard portion of the first part in circumferential and axial directions of the rotor assembly.

[0013] In accordance with additional embodiments, the second part further includes a curved radially outwardly facing surface.

[0014] In accordance with additional embodiments, the second part is press-fit to the first part.

[0015] In accordance with additional embodiments, the first groove widens around a recess into a widened section at an inboard portion of the first part.

[0016] In accordance with additional embodiments, a busbar, is configured to be seated within the widened section of the first groove and a fastening element is engageable with the recess to secure the busbar in the widened section of the first groove.

[0017] In accordance with additional embodiments, a fitting is interposable between the fastening element and an interior surface of the recess.

[0018] In accordance with additional embodiments, the first and second grooves cooperatively provide space between the conductive winding and the first and second parts, respectively.

[0019] According to the present invention, a method for assembling a rotor provided and defined in claim 8 and includes installing a first part of a winding support in a rotor assembly, winding a conductive winding about the first part or around a pole of the rotor assembly with the first part used to take up slack in the conductive winding and attaching a second part to the first part, the second part extending outwardly from the first part.

[0020] In accordance with additional embodiments, the method further includes winding the conductive winding about one or more of multiple poles of the rotor assembly.

[0021] In accordance with additional embodiments, the attaching includes press-fitting the second part to the first part.

[0022] In accordance with additional embodiments, the method further includes arranging a containment band about the rotor assembly and in abutment with the second part.

[0023] Additional features and advantages are realized through the techniques of the present disclosure. For a better understanding of the disclosure with the advantages and the features, refer to the description and to the drawings.BRIEF DESCRIPTION OF THE DRAWINGS

[0024] For a more complete understanding of this disclosure, reference is now made to the following brief description, taken in connection with the accompanying drawings and detailed description, wherein like reference numerals represent like parts: FIG. 1 is a schematic side section view of an electric machine in accordance with embodiments; FIG. 2 is a radially inward view of a portion of a rotor assembly of an electric machine including end winding supports in accordance with embodiments; FIG. 3 is an enlarged side section view of a portion of a rotor assembly of an electric machine including an end winding support in accordance with embodiments; FIG. 4 is a perspective view of an end winding support of FIGS. 3 and 4 in accordance with embodiments; FIG. 5 is a flow diagram illustrating a rotor assembly method in accordance with embodiments; and FIG. 6 is a flow diagram illustrating a rotor assembly method in accordance with alternative embodiments. DETAILED DESCRIPTION

[0025] As will be described below, end winding supports are provided for use in electric machines to support conductive windings on rotors. The end winding supports are each split into two parts along a line where end winding support fracturing is likely to occur. As a result, stress or strain that is otherwise experienced by conventional end winding supports is not transmitted to either of the two parts in the same way and failure can be avoided.

[0026] With reference to FIGS. 1 and 2, a rotor 101 of an electric machine 100 is provided. As shown in FIGS. 1 and 2, the electric machine 100 includes the rotor 101, which is rotatable about a rotational axis A thereof and a stator 102. The stator 102 surrounds the rotor 101 and includes permanent- or electro-magnets 103. The rotor 101 includes a rotor assembly 110 having multiple poles 111, conductive windings 120, each of which is wound around one or more of the multiple poles 111 and end winding supports 130. The conductive windings 120 can be preformed. Each of the end winding supports 130 can be located at or near to one of the multiple poles 111 at either end of the rotor assembly 110 and is configured to support a corresponding end turn 121 of a corresponding one of the conductive windings 120. During an operation of the electric machine 100, current is applied to the conductive windings 120 and causes the rotor 101 to either rotate about the rotational axis A by interactions with a flux field generated by the permanent- or electro-magnets 103 or if rotating already to generate current in the electro-magnets of stator 102.

[0027] The rotor 101 can further include containment bands 140. The containment bands 140 are disposed radially about the rotor assembly 110 and can be provided with tabs 141 (see FIG. 3) that are disposed in abutment with a curved radially outwardly facing surface 131 (see FIG. 3) of each of the end winding supports 130.

[0028] With continued reference to FIG. 2 and with additional reference to FIGS. 3 and 4, each end winding support 130 includes a first part 310 and a second part 320. The first part 310 includes an elongate body 311 that has a surface 312 formed to define a first groove 313. The second part 320 can be attached or press-fit to the first part 310 and includes a body 321 which extends outwardly from an outboard portion of the elongate body 311 of the first part 310 in circumferential and axial directions of the rotor assembly 110 (see FIG. 4). The second part 320 has a surface 322 formed to define a second groove 323 which corresponds in position to the first groove 313.

[0029] When an end winding support 130 is installed in the rotor assembly 110 of FIG. 1 at or near to one of the multiple poles 111, corresponding ones of the conductive windings 120 are stacked radially as shown in FIG. 1 and wound around the end winding support 130 as shown in FIG. 2. More particularly, each conductive winding 120 extends along a longitudinal length L (see FIG. 2) of the rotor assembly 110 and is wound around the first part 310 of the end winding support 130. In accordance with embodiments, the first groove 313 and the second groove 323 are formed and configured to cooperatively create space between each of corresponding ones of the conductive windings 120 and the end winding support 130 for lubricant (e.g., oil) flow and / or for winding connections.

[0030] In accordance with embodiments and as shown in FIG. 4, the first groove 313 is formed to widen around a recess 314 into a widened section 315 at an inboard portion of the elongate body 311 of the first part 310. As shown in FIG. 3, the rotor 101 can also include a busbar 330 configured to be seated within the widened section 315 and a fastening element 331, which is engageable with the recess 314 to secure the busbar 330 in the widened section 315. In addition, the rotor 101 can include a fitting 332, which is interposable between the fastening element 331 and an interior surface of the recess 314.

[0031] With reference to FIG. 5, a rotor assembly method is provided for assembling the rotor 101 and the rotor assembly 110 described herein. As shown in FIG. 5, the rotor assembly method includes installing a first part of a winding support in a rotor assembly (501), winding a conductive winding about the first part (502) by, e.g., winding the conductive winding about one or more of multiple poles of the rotor assembly, and attaching a second part to the first part (503) where the second part extends outwardly from an outboard portion of the first part by, e.g., press-fitting the second part to the first part. In accordance with embodiments, the rotor assembly method further includes arranging a containment band about the rotor assembly and in abutment with the second part (504). In accordance with additional embodiments, the rotor assembly method can also include preforming the conductive winding (505) prior to at least the winding of operation 502. In some cases, the preforming can be executed prior to the installing of the first part of operation 501.

[0032] With reference to FIG. 6, a rotor assembly method is provided for assembling the rotor 101 and the rotor assembly 110 described herein. As shown in FIG. 6, the rotor assembly method includes winding a conductive winding around a pole in a rotor assembly (601), installing a first part of a winding support in the rotor assembly to take up slack in the conductive winding (602) and attaching a second part to the first part (603) where the second part extends outwardly from an outboard portion of the first part by, e.g., press-fitting the second part to the first part. In accordance with embodiments, the rotor assembly method further includes arranging a containment band about the rotor assembly and in abutment with the second part (604). In accordance with additional embodiments, the rotor assembly method can also include preforming the conductive winding (605) prior to the winding of operation 601.

[0033] Technical effects and benefits of the present disclosure are the provision of an end winding support of conductive windings of a rotor that is split into two parts and thus resists fracturing. Of these two parts, a first part can be easily installed whereupon the corresponding conductive winding can be more easily placed. Then, the second part can be attached or installed to complete the supporting function and transmit rotating forces to a containment band. As such, a part that would have been more difficult and expensive or prone to failure is provided as a more robust, simple and cost-effective subassembly.

[0034] While the preferred embodiments to the disclosure have been described, it will be understood that modifications are possible within the scope of the claims.

Claims

1. An end winding support (130) of a rotor (101) of an electric machine, the end winding support comprising: a first part (310) comprising an elongate body about which a conductive winding is wound, the elongate body (311) having a surface defining a first groove (313); and a second part (320), which is attached to an outboard portion of the first part (310), the second part (320) comprising a body which extends outwardly from the elongate body (311) and which has a surface defining a second groove (323) corresponding to the first groove, characterized in that the first groove widens around a recess into a widened section (315) at an inboard portion of the first part, which is opposite the outboard portion of the first part, the widened section of the first groove (313) is receptive of a busbar and the recess (314) is engaged with a fastening element to secure the busbar in the widened section of the first groove (313).

2. The end winding support according to claim 1, wherein the second part (320) extends beyond an outboard portion of the first part (310).

3. The end winding support according to claim 1 or 2, wherein the second part (320) further comprises a curved radially outwardly facing surface.

4. The end winding support according to any preceding claim, wherein the second part (320) is press-fit to the first part (310).

5. A rotor of an electric machine, the rotor (101) comprising: a rotor assembly (110) having multiple poles; a conductive winding, which is wound around one or more of the multiple poles; and an end winding support (130) according to the end winding support of claims 1 to 4 to support the conductive winding.

6. The rotor according to claim 5, further comprising a containment band disposed radially about the rotor assembly and in abutment with the second part (320).

7. The rotor according to any of claims 5 to 6, wherein the first and second grooves cooperatively provide space between the conductive winding and the first and second parts (320), respectively.

8. A method for assembling the rotor according to claim 6, the method comprising: installing the first part (310) of the winding support in the rotor assembly; winding a conductive winding about the first part (310) or around a pole of the rotor assembly with the first part (310) used to take up slack in the conductive winding; attaching the second part (320) of the winding support (130) to an outboard portion of the first part (310), the second part (320) extending outwardly from the first part (310); and arranging a containment band about the rotor assembly and in abutment with a curved radially outwardly facing surface of the second part (320).

9. The method according to claim 8, further comprising winding the conductive winding about one or more of multiple poles of the rotor assembly.

10. The method according to claim 8 or 9, wherein the attaching comprising press-fitting the second part (320) to the first part (310).