Combined insulator and conductor assembly for bearings with clip-mounted conductors - Patent Application 20070122997

The combined insulator and conductor assembly in bearings redirects electric current away from the bearing, addressing the issue of damage from electric charge by using an insulator to block current flow and a conductor to provide an alternate path, thus safeguarding the bearing.

JP7729733B2Active Publication Date: 2025-08-26AB SKF SKF PATENT DEPARTMENT
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Patent Information

Application Number
JP2021079093
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-05-25
Filing Date
2021-05-07
Publication Date
2025-08-26
Estimated Expiration
2041-05-07

AI Technical Summary

Technical Problem

Bearings in electric machines are susceptible to damage from electric current or charge passing through them, which can be detrimental to the bearing raceways.

Method used

A combined electrical insulator and conductor assembly is positioned between the shaft and housing, featuring an annular insulator to prevent current flow and a conductor with retainers and conductive fibers to provide an alternate path for current, ensuring it bypasses the bearing.

Benefits of technology

The assembly effectively prevents current from flowing through the bearing by using an insulator to block voltage differences and directs current through conductive paths, thereby protecting the bearing from damage.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a grounding device for preventing electric current or charge from passing through a bearing.SOLUTION: A combined electrical insulator and conductor assembly for a bearing disposable between a shaft and a housing is provided. An annular insulator is disposable about the bearing and configured to prevent electric current flow between an outer ting and the housing. An electrical conductor has retainers releasably engaged with the insulator, an outer radial end and an inner radial end and couple the conductor with the bearing. The conductor outer radial end, or / and a portion of the conductor between the outer and inner ends is conductively engageable with the housing and the conductor inner radial end is conductively engageable with the shaft to provide an electrically conductive path between the shaft and the housing. Preferably, the conductor includes a conductive disk having arcuate retainer clips engageable with an insulator groove of the insulator and a brush subassembly including conductive fibers engaged with a shaft outer surface.SELECTED DRAWING: Figure 5
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Description

[Technical Field]

[0001] The present invention relates to bearings, and more particularly to a grounding device for preventing current or charge from passing through the bearing. [Background technology]

[0002] Bearings used in electric machines such as motors, generators, and similar devices can be damaged when an electric current or charge passes through them, which is particularly detrimental to bearing raceways. Devices such as grounding brushes have been developed to provide an alternate path for the electric current, thereby preventing such current from passing through the bearing. These devices often include a plurality of conductive fibers spaced circumferentially around the entire outer surface of the shaft, forming a relatively rigid ring of fibers, so that the current passes through the fibers between the shaft and the housing. Other devices or mechanisms have been provided to electrically insulate the bearing to prevent electric current from passing through the bearing, including insulating coatings or covers. Summary of the Invention [Means for solving the problem]

[0003] In one aspect, the present invention provides a combined electrical insulator and conductor assembly for a bearing positionable between a shaft and a housing. The bearing includes an inner ring, an outer ring having an outer peripheral surface and opposing first and second axial ends, and a plurality of rolling elements between the rings. The housing has an inner peripheral surface. The assembly includes an annular insulator positionable around the outer ring and configured to prevent the flow of electrical current between the outer ring and the housing. The conductor has at least one retainer releasably engaging the insulator to couple the conductor to the bearing, and a radially outer end and a radially inner end. The radially outer end of the conductor or / and a portion of the conductor between the outer end and the inner end are conductively engageable with the housing, and the inner radial end of the conductor is conductively engageable with the shaft to provide an electrical conduction path between the shaft and the housing.

[0004] Preferably, the conductor includes a conductive disk coupled to the insulator so as to be axially adjacent to the bearing. The disk has a centerline, an outer radial end engageable with the inner housing surface, an inner radial end defining a central opening for receiving a portion of the shaft, and at least one, preferably a plurality of, arcuate clips providing at least one retainer. Each clip engages an annular groove in the insulator to removably couple the disk to the bearing. An annular conductive brush subassembly is coupled to the conductive disk and includes a centerline and a plurality of conductive fibers circumferentially spaced about the centerline and extending radially inward from the inner end of the conductive disk. Each conductive fiber has an inner end engageable with the outer surface of the shaft to provide a conductive path between the shaft and the disk.

[0005] The foregoing summary, as well as the detailed description of the preferred embodiments of the invention, will be better understood when read in conjunction with the accompanying drawings. For the purpose of illustrating the invention, there are shown in the drawings diagrammatical embodiments which are presently preferred, it being understood, however, that the invention is not limited to the precise arrangements and instrumentalities shown. [Brief explanation of the drawings]

[0006] [Figure 1] FIG. 1 is a perspective view of a combined insulator and conductor assembly according to the present invention mounted on a bearing. [Figure 2] FIG. 1 is a front view of a combined insulator and conductor assembly. [Figure 3] FIG. 1 is a side view of a combined insulator and conductor assembly. [Figure 4] FIG. 1 is an axial cross-sectional view of a combined insulator and conductor assembly installed on a shaft and within a housing. [Figure 5] FIG. 10 is an enlarged axial cross-sectional view of a portion of the combined insulator and conductor assembly through the conductor retainer. [Figure 6]FIG. 6 is a split, enlarged view of the upper portion of FIG. 5. [Figure 7] FIG. 7 is a further enlarged view of a portion of FIG. 6. [Figure 8] FIG. 5 is a split, enlarged view of the upper portion of FIG. [Figure 9] FIG. 8 is a fragmented, enlarged view of a portion of the assembly of FIG. 7, showing the conductor separated from the insulator during the installation process. [Figure 10] FIG. 10 is a split axial cross-sectional view of a combined insulator and conductor assembly installed in another application. DETAILED DESCRIPTION OF THE INVENTION

[0007] Certain terminology is used in the following description for convenience and without limitation. The words "inner," "inward," "outward," and "outward" refer, respectively, to directions toward and away from a designated centerline or geometric center of the element being described, with specific meanings readily apparent from the context of the specification. Furthermore, as used herein, the terms "connected" and "coupled" are each intended to include a direct connection between two elements with no other intervening elements, and an indirect connection between elements with one or more other intervening elements. The term specifically includes the above words, derivatives thereof, and words of similar import.

[0008] Referring now in detail to the drawings, wherein like numerals are used to denote like elements throughout, FIGS. 1-11 show a central axis A C1 shows a combined electrical insulator and conductor assembly 10 for a bearing 1 that can be disposed between a shaft 2 rotatable about a shaft 2 and a housing 3. The bearing 1 has an inner ring 4, an outer ring 5 having opposing first and second axial ends 5a, 5b and an outer surface 5c, and a plurality of rolling elements 6 disposed between the inner ring 4 and the outer ring 5. The shaft 2 has an outer peripheral surface 2a provided by the shaft 2 itself or by a sleeve or other component (not shown) attached to the shaft 2, and at least the surface 2a, preferably the entire shaft 2 and / or the sleeve / component, is electrically conductive. The housing 3 also has an inner peripheral surface 3a that defines a bore 7, which can be the surface of the main housing 3 itself or the surface of an annular component disposed within the housing 3. Preferably, the bearing 1, shaft 2, and housing 3 are components of a motor or other electric machine (e.g., a generator) or any other machine having rotating components that can store charge or transmit current. Essentially, the combined insulator and conductor assembly 10 includes an annular insulator 12 positionable around the outer ring 5 of the bearing, and an electrical conductor 14 with at least one retainer 16 that releasably engages the insulator 12 to couple the conductor 14 to the bearing 1.

[0009] Specifically, insulator 12 is generally tubular or cylindrical, has a centerline 13, and preferably an annular groove 18 extending circumferentially about centerline 13, and is configured to prevent current flow between bearing outer ring 5 and housing 3, and between ring 5 and conductor 14, and therefore bearing 1. That is, insulator 12 is either formed of an electrically insulating material or has one or more electrically insulating layers, as described below. Conductor 14 has a centerline 15 (coaxial with insulator centerline 13) and radially outer and inner ends 14a, 14b, with at least one retainer 16 preferably disposed at and providing conductor radially outer end 14a. Preferably, conductor 14 has a plurality of retainers 16, each located at a radially outer end 14a and spaced circumferentially about centerline 15, each retainer 16 conductively engaging housing inner surface 3a and providing a separate conductive path between the remainder of conductor 14 and housing 3.

[0010] Alternatively or additionally, the portion of the conductor 14 between the radially outer end 14 a and the radially inner end 14 b is conductively engagable with the housing 3, such as through contact with a radial shoulder 3 b ( FIG. 10 ) of the housing 3 or a component 7 ( FIG. 10 ) of the machine (e.g., a spring, pin, etc.). As used herein, the term “conductively engagable” means establishing a conductive path through direct contact or contact with one or more intermediate components or members, allowing current to flow between the engaged member, particularly the conductor 14, and the housing 3. Furthermore, each retainer 16 preferably includes an arcuate clip 20 having a first leg 22 connected to the remainder of the conductor 14 and a second leg 24 deflectable relative to the first leg 22 and having a free end 24 a disposed within the insulator annular groove 18, as described below.

[0011] When the combination insulator / conductor assembly 10 is installed on the bearing 1, which is then installed between the shaft 2 and the housing 3, the outer radial end 14a of the conductor 14 is preferably conductively engaged with the housing 3, preferably the inner surface, most preferably through the engagement of the plurality of retainers 16 as described above, and / or an intermediate portion of the conductor 14 is engaged as described above. The radially inner end 14b of the conductor 14 is preferably conductively engaged with the outer shaft surface 2a via the preferred plurality of conductive fibers 26, as described in further detail below. In this manner, the conductor 14 provides a conductive path between the shaft 2 and the housing 3, and functions to shunt current or charge on the shaft 2 away from the bearing 1. In this manner, the combination insulator and conductor assembly 10 serves the purpose of protecting the bearing 1 by preventing direct current through the bearing 1 (i.e., by the insulator 12) and by providing an alternate path for current adjacent the bearing 1 by the conductor 14. Having described the basic structure and function above, these and other components of the assembly are described in more detail below.

[0012] 1-10, the insulator 12 preferably comprises an insulating ring 30 coupled to the first axial end 5a of the bearing outer ring 5 and preferably molded therein as described below to provide a coupling groove 18, and a tubular insulating body 32 disposed around the outer ring 5 and coupled to the insulating ring. The insulating ring 30 is formed from an insulating material, preferably glass-filled nylon, most preferably PA66-GF35, but may also be formed from other suitable materials.

[0013] 4-10, the insulating ring 30 is generally circular and has an axially inner end 30a disposed relative to the bearing outer ring first axial end 5a, an opposing axially outer end 30b, and an inner circumferential surface 34 defining a bore 30c. Additionally, the ring 30 also has a first outer circumferential surface section 36 generally coplanar with the outer ring outer surface 5c, a radially larger second outer circumferential surface section 38, and a radial stop surface 37 extending between the first and second outer circumferential surface sections 36, 38. A plurality of arcuate projections 39 (FIG. 8) extend radially outward from the first outer circumferential surface section 36 and are disposed adjacent the axially inner end 30a, with each projection 39 positionable within a groove 42 in the tubular body 32, as described below. Additionally, the annular groove 18 preferably extends radially inward from the second outer circumferential surface section 38 as shown in the drawings, but may alternatively extend radially outward from the inner circumferential surface 34 (structure not shown). The ring 30 also includes a chamfer 30d extending between the axially outer end 30b and the second outer circumferential surface section 38.

[0014] Continuing with reference to FIGS. 4-10, the tubular insulating body 32 is generally cylindrical and has opposing inner and outer circumferential surfaces 33 and 35, and opposing first and second axial ends 32a and 32b, respectively. The insulating body 32 is preferably formed of aluminum and has at least one oxide layer formed on one or both of the circumferential surfaces 33 and 35, preferably formed by anodizing, although they may alternatively be formed of a suitable insulating material (e.g., a hard polymer or ceramic) or another anodized metallic material. The inner circumferential surface 33 of the body 32 is positionable around the outer surface 5c of the bearing outer ring 5, and the outer circumferential surface 35 is preferably capable of frictionally engaging the housing inner surface 3a to axially retain the bearing 1 and assembly 10. However, the outer surface 35 may simply be positioned against / within the housing inner surface 3a without frictional engagement.

[0015] Additionally, the tubular body 32 has a radial flange 40 extending inward from the body second axial end 30b and positionable against the outer ring second axial end 5b. The body 32 is sized such that, when attached to the outer ring 5, the first axial end 32a is spaced axially outward from the outer ring first axial end 5a, and a portion 33a of the inner surface 33 extends beyond the outer ring first axial end 5a. An annular groove 42 extends radially outward from the inner surface 33 and is positioned adjacent to the outer ring first axial end 5a. When the insulator 12 is installed around the bearing outer ring 5, the portion 33a of the tubular body's inner surface 33 is positioned around the ring first outer surface section 36, the tubular body's first axial end 32a is positioned against the ring radial stop surface 37, and the plurality of ring projections 39 are positioned within the tubular body annular groove 42.

[0016] 5 and 8, with the above construction, the preferred two-piece insulator 12 is mounted around the bearing outer ring 5 in the following manner. First, the insulator body 32 is mounted around the bearing outer ring 5 by inserting the bearing second axial end 5b into the first axial end 32a of the tubular body 32 and sliding the body inner surface 33 around the ring outer surface 5c until the flange 40 abuts the ring second end 5b and the insulator body first axial end 32a is spaced from the bearing ring first axial end 5a. Next, the insulator ring 30 is installed on the bearing outer ring 5 by inserting the ring inner axial end 30a into the tubular body first axial end 32a until the insulator ring inner axial end 30a abuts the bearing ring first axial end 5a. At this point, the insulator ring projection 39 (FIG. 8) is positioned within the tubular body groove 42, and the tubular body first end 32a abuts the ring stop surface 37. Preferably, the insulating ring 30 is molded (eg, by application of heat) to the bearing outer ring 5 to securely hold the insulator 12 around the bearing 1 .

[0017] 1-10 , the conductor 14 preferably includes a conductive disk 50 coupled to the insulator 12 (i.e., via the retainer 16) so as to be axially adjacent to the bearing 1, and a brush subassembly 52 coupled to the disk 50, and as described above, provides a plurality of conductive fibers 26 capable of contacting the shaft 2. More specifically, the conductive disk 50 has a centerline 51, a radially outer end 50a that provides the retainer 16, a radially inner end 50b that defines a central opening 54 for receiving a portion of the shaft 2, and opposing first and second axial ends 50c, 50d. Furthermore, the conductive brush subassembly 52 has a centerline 53, and the conductive fibers 26 are circumferentially spaced about the centerline 53 and extend radially inward from the inner end 50b of the conductive disk 50. Each conductive fiber 26 is preferably formed of carbon and has an inner end 26a that can contact the shaft outer surface 2a to provide a conductive path between the shaft 2 and the disk 50. The disk 50 is configured to provide a conductive path between the brush subassembly 52 and the housing 3 so that current or charge on the shaft 2 is directed to flow through the assembly 10 rather than through the bearing 1.

[0018] More specifically, the conductive disk 50 is generally circular and preferably formed of a conductive metallic material, most preferably aluminum, although other suitable materials (e.g., low-carbon steel) may be used. The retainer 16 is preferably provided by a plurality of integral arcuate portions (not shown) of the conductive disk 50 extending outward from the disk outer end 50a and generally axially from the second axial end 50d. Each arcuate portion is bent to form a clip 20 having a first leg 22 and a second leg 24 joined by a central hinge portion 25, about which the second leg 24 is deflectable generally radially outward when mounting the conductor 14 on the insulator 12, as described below. Preferably, the disk 50 has a circular flange 55 extending axially from the disk's radially inner end 50b and away from the second axial end 50d, and thus toward the bearing 1. Additionally, conductive disk 50 also preferably includes a plurality of mounting tabs 58 spaced circumferentially about centerline 51, each of which engages with a brush subassembly 52 to couple subassembly 52 to disk 50.

[0019] Preferably, conductive disk 50 is formed from a stamped metal material, preferably aluminum as described above, and is first die-cut to form a central opening 54 defining inner end 50b, a plurality of retainer portions spaced about outer end 50a, a plurality of rectangular tabs 58, and adjacent clearance holes 59. Clearance holes 59 provide a passageway for fluid (e.g., lubricant, air, etc.) to flow through conductive disk 50 to and from bearing 1. Then, in a subsequent forming operation, the outer arcuate portion is bent to produce clip 20, and tabs 58 are bent around retainers 60 (described below) of brush subassembly 52, so that each engaged mounting tab 58 assumes a generally C-shape.

[0020] 7 and 9, the conductive disk 50 is coupled to the insulator 12 mounted on the bearing 1 by axially displacing the disk 50 toward the insulator 12 until the free end 24a of each retainer clip's second leg 24 contacts the chamfered portion 30d of the insulating ring 30. As the disk 50 advances further toward the bearing 1, the second leg 24 of each clip 20 bends about the hinge portion 25, displacing radially outward as the free end 24a slides along the chamfered portion 30d, and then sliding axially along a portion of the ring's second outer surface section 38 until it "snaps" inward into the groove 18. At this point, the conductor 14 is releasably or removably coupled to the insulator 12. The conductor 14 can then be removed from the insulator 12 (and thus the bearing 1) by pulling the disk 50 away from the insulator 12 to disengage the retainer clip 20 from the groove 18 and then from the insulating ring 30.

[0021] 1, 2, 4-6, and 10, the conductive brush subassembly 52 preferably includes an annular retainer 60 connected to the conductive disk 50, as described above. As best shown in FIG. 6, the annular retainer 60 has an open radially inner end 60a having an annular groove 62 and a closed outer end 60b. Each of the plurality of conductive fibers 26 has a radially outer end 26b disposed in the groove 62 and extends radially inward from the retainer 60 toward the shaft 2. More specifically, the retainer 60 has an outer axial base 64 and two opposing radial legs 66 such that the retainer 60 has a generally C-shaped axial cross-section. The retainer legs 66 preferably clamp the outer ends 26b of the conductive fibers 26 to hold the fibers 26 within the groove 62.

[0022] Furthermore, the brush subassembly 52 preferably includes a circular hoop 68 disposed within the retainer groove 62, and each of the plurality of conductive fibers 26 is bent around the hoop 68. As such, each conductive fiber 26 is preferably generally U- or V-shaped and has two inner ends 18a that can contact the shaft outer surface 2a. However, each conductive fiber 26 may be arranged to extend as a substantially straight strand (not shown) from the outer radial end 18b to the inner radial end 18a.

[0023] Furthermore, the plurality of conductive fibers 26 of the brush subassembly 52 are arranged in a generally continuous ring of fibers (not shown), or preferably, as a plurality of circumferentially spaced individual sets 28 of fibers 26. In the latter preferred case, the sets 28 of fibers 26 are preferably formed by stamping the brush subassembly 52, which includes a continuous ring of fibers 26, such that the sets 28 of fibers that are contactable with the shaft 2 are spaced apart by sets 29 of shorter lengths of fibers 26. Also, each conductive fiber 26 is preferably sized to have a diameter within the range of five micrometers or microns (5 μm) to one hundred microns (100 μm). While each conductive fiber 26 is preferably formed of carbon, as described above, the fibers 26 may alternatively be made of any suitable conductive material, such as a metallic material, a conductive polymer, or the like.

[0024] Although conductor 14 preferably includes a conductive disk 50 and brush subassembly 52 as described above and shown in the figures, conductor 14 may alternatively be formed in any other suitable manner capable of being coupled to insulator 12 and providing one or more conductive paths between shaft 2 and housing 3. For example, instead of brush subassembly 52, conductor 14 may include a solid ring of conductive material (not shown) attached to conductive disk 50 and conductively engageable with shaft 2, the ring having either a continuous inner circumferential contact surface or multiple arcuate contact surface sections provided by radially inwardly extending protrusions. As a further alternative, conductive disk 50 may be formed with an inner end 50b capable of contacting shaft outer surface 2a to provide a direct conductive path between shaft 2 and disk 50. The scope of the present invention encompasses these and all other suitable configurations of conductor 14 capable of functioning as generally described herein.

[0025] The insulator / conductor assembly 10 is more effective at protecting the bearing 1 from damage caused by electrical current than known devices. The insulator 12 effectively prevents a voltage difference from developing between the shaft 2 and the housing 3 through the bearing 1, thereby preventing electrical current from flowing through the inner and outer rings 4, 5 and the rolling elements 6. To further ensure that electrical current does not pass through the bearing 1, the conductive disc 50 and brush subassembly 52 provide an alternative path so that any charge or current on the shaft 2 flows through the conductive fibers 26 to the retainer 60, through the retainer 60 to the conductive disc 50, and then through the retainer clip 20 to the housing 3.

[0026] An additional or alternative conductive path to the housing 3 may be provided by axial contact between a portion of the housing 3 (e.g., a radial shoulder) or a machine component 7 disposed within the housing 3, such as a spring, pin, and either the surface of the conductive disk 50 or the annular retainer 60 as shown in FIG. 10 . Thus, charge or current on the shaft 2 in the region of the bearing 1 is prevented from passing through the bearing 1 by the insulator 12 and is directed through the brush subassembly 52 and the conductive disk 50. Furthermore, the assembly 10 may be mounted to the bearing 1 by the manufacturer or distributor, so that the bearing 1 with the combined insulator and conductor assembly 10 may be provided to the customer or end user as an entire assembly mountable within the shaft 2 and housing 3.

[0027] It will be appreciated that those skilled in the art could make changes to the above-described embodiments without departing from the broad inventive concept thereof. It is therefore understood that the invention is not limited to the particular embodiments disclosed, but is intended to cover modifications within the spirit and scope of the invention as generally defined in the appended claims. [Explanation of symbols]

[0028] 1. Bearings 2 shafts 3. Housing 4 inner ring 5 outer ring 6 rolling elements 10 Insulator and conductor combination assembly 14 Conductors 16 Retainer 18 Annular groove 20 Arc-shaped clip 22 First Leg 24 Second Leg 25 Hinge part 26 Conductive Fiber 30 Insulation ring 32 Insulation body 36 First peripheral section 37 Radial stop surface 38 Second Periphery Section 39 Insulation ring protrusion 40 Radial flange 42 Tubular body groove 50 Conductive Discs 52 Conductive Brush Subassembly 58 Mounting tab 60 Annular retainer 68 circular hoop

Claims

1. 1. A combined electrical insulator and conductor assembly for a bearing positionable between a shaft and a housing, the bearing having an inner ring, an outer ring having an outer circumferential surface and opposed first and second axial ends, and a plurality of rolling elements positioned between the rings, the shaft having an outer circumferential surface, the housing having an inner circumferential surface, the assembly comprising: an annular insulator positionable around the outer ring, the insulator configured to prevent electrical current between the outer ring and the housing; at least one retainer releasably engaged with the insulator to couple the conductor to the bearing; and a conductor having an outer radial end and an inner radial end, wherein at least one of the outer radial end and a portion of the conductor between the outer and inner ends is conductively engageable with the housing, and the inner radial end is conductively engageable with the shaft, providing a conductive path between the shaft and the housing; An assembly comprising:

2. 2. The assembly of claim 1, wherein the insulator has an annular groove, and the at least one retainer includes an arcuate clip having a first leg connected to the conductor and a second leg deflectable relative to the first leg and having a free end disposed within the groove of the insulator.

3. 2. The assembly of claim 1, wherein the conductor has a plurality of retainers, each retainer disposed at an outer radial end of the conductor and spaced circumferentially about a centerline, each retainer conductively engageable with an inner surface of the housing to provide a separate conductive path between the conductor and the housing.

4. The insulator is an insulating ring coupled to the first axial end of the bearing outer ring and formed of an electrically insulating material; 2. The assembly of claim 1, comprising a tubular insulating body having an inner circumferential surface positionable about the outer surface of the bearing outer ring, an outer circumferential surface engageable with an inner surface of the housing, a first axial end coupled to the insulating ring, and an opposing second axial end, the insulating body being formed of an electrically insulating material or having an insulating layer on at least one of the inner and outer surfaces.

5. 5. The assembly of claim 4, wherein the tubular insulating body has an annular groove extending radially outward from the inner circumferential surface and disposed adjacent the first axial end, and the insulating ring has an annular shoulder extending radially outward from the outer circumferential surface and disposed in the insulating body groove to couple the ring to the insulating body.

6. The conductor is an electrically conductive disk having an outer radial end, said at least one retainer connected to said outer end of the disk, and an inner radial end defining a central opening for receiving a portion of said shaft; an annular conductive brush subassembly coupled to the conductive disc and including a centerline and a plurality of conductive fibers, the conductive fibers being circumferentially spaced about the centerline and extending radially inward from the inner end of the conductive disc, each conductive fiber having an inner end contactable with an outer surface of the shaft to provide a conductive path between the shaft and the disc; The assembly of claim 1 , comprising:

7. 7. The assembly of claim 6, wherein the conductive disk has a centerline and further includes a plurality of mounting tabs spaced circumferentially about the centerline, each mounting tab engaging the conductive brush subassembly to couple the conductive brush subassembly to the conductive disk.

8. 7. The assembly of claim 6, wherein the conductive brush subassembly includes an annular retainer connected to the conductive disk and having an inner radial end with an annular groove, each one of the plurality of conductive fibers being disposed in the groove and having an outer radial end extending radially inward from the retainer toward the shaft.

9. 9. The assembly of claim 8, wherein the conductive brush subassembly further includes a circular hoop disposed within the retainer, and each one of the plurality of conductive fibers is bent around the hoop so that each fiber has two ends capable of contacting the outer surface of the shaft.

10. 7. The assembly of claim 6, wherein the plurality of conductive fibers of the conductive brush subassembly are comprised of a plurality of circumferentially spaced sets of individual fibers.

Citation Information

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