Electrical machine with removable bearing assembly

The electric machine design with serpentine labyrinth surfaces and fixed/rotary seal rings addresses the challenges of bearing replacement in high magnetic force environments by providing a stable, secure, and easy maintenance process.

JP7808035B2Active Publication Date: 2026-01-28BOMBARDIER TRANSPORTATION GMBH
View PDF 3 Cites 0 Cited by

Patent Information

Application Number
JP2022540458
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-12-31
Filing Date
2020-12-31
Publication Date
2026-01-28
Estimated Expiration
2040-12-31

AI Technical Summary

Technical Problem

Existing electric machines, particularly permanent magnet excited electric machines, face challenges in bearing replacement due to high magnetic forces and weak frictional fits requiring careful bolt tightening, which can damage components and complicate maintenance.

Method used

An electric machine design with serpentine labyrinth surfaces and fixed/rotary labyrinth seal rings allows for a large contact area between the rotor and stator, secured by fixing bolts that provide sufficient pressure through frictional engagement, facilitating easy and secure bearing replacement.

Benefits of technology

The design enables easy and secure bearing replacement by ensuring a stable rotor position during maintenance, reducing the risk of component damage and simplifying the replacement process.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007808035000001
    Figure 0007808035000001
  • Figure 0007808035000002
    Figure 0007808035000002
  • Figure 0007808035000003
    Figure 0007808035000003
Patent Text Reader

Abstract

The electric machine (10) includes a stator (12), a rotor (14), and a bearing assembly (16). The stator (12) includes a bearing shield assembly (24) including a bearing shield (26) and a stationary labyrinth seal ring (28) having a serpentine labyrinth surface (36). The rotor (14) includes a rotor shaft (32) and a rotary labyrinth seal ring (34) having a serpentine labyrinth surface (38) that opposes the serpentine labyrinth surface (36) of the stationary labyrinth seal ring (28) at a first axial distance (D1). The bearing shield assembly (24) is provided with a fixed contact surface (40), and the rotor (14) further includes an opposing contact surface (42) axially opposed to the fixed contact surface (40) of the bearing shield assembly (24) at a second axial distance (D2) that is shorter than the first axial distance (D1).
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present invention relates to electric machines such as electric motors or generators, and particularly, but not exclusively, to electric motors for driving vehicles, especially electric motors for rail vehicles.

[0002] The present invention is generally applicable to all electric machines, however these advantages become even more important in the case of permanent magnet excited electric machines, where particularly high magnetic forces are generated not only when the machine is powered but also permanently. [Background technology]

[0003] An electric machine for driving a vehicle typically includes a stator including a bearing shield and a stationary labyrinth seal ring, a rotor shaft, and a rotor including a rotary labyrinth seal ring attached to the rotor shaft and opposing the stationary labyrinth seal ring at a distance therebetween to form an annular labyrinth between the rotor shaft and the stationary labyrinth seal ring, and one or more bearing assemblies are removably mounted between the bearing shield and the rotor shaft to guide rotational movement of the rotor about its axis of rotation and to prevent axial movement of the rotor relative to the stator.

[0004] Due to their heavy use, these bearings in electric machines must be periodically repaired or replaced. Replacing bearings is relatively complicated and carries the risk of damaging components of the electric machine. Typically, the rotor must be disassembled during bearing replacement and then reassembled. This can be a challenging task, especially in permanent magnet excited electric machines, due to the high magnetic forces generated in the air gap between the rotor and the stator.

[0005] EP 2610514 proposes constructing an electric machine in which labyrinth rings can be moved relative to each other until they contact each other in a locked position, thereby fixing the rotor axially and radially for bearing replacement. The labyrinth rings have conical surfaces that contact each other in the locked position to ensure a secure connection between the labyrinth rings, thereby reliably and accurately fixing the rotor to the center of the rotation axis. The fixed labyrinth ring is connected to the bearing shield by bolts during normal operation of the electric machine. These bolts are loosened to move the labyrinth ring to the locked position for bearing replacement. The fixed labyrinth ring can be fixed in the locked position by at least one tilted fixing bolt, preferably three fixing bolts. This ensures a stable and reliable positioning of the motor during bearing replacement with relatively little effort. In the maintenance position, the bearings of the electric machine can be quickly and easily repaired or replaced. Summary of the Invention [Problem to be solved by the invention]

[0006] However, one drawback of this solution is that the fastening force is very weak and relies on a compressive load on the bolts to form a frictional fit within the labyrinth, resulting in only a small contact area. Furthermore, grease is typically present within the labyrinth, further weakening this frictional fit. Additionally, this solution requires careful tightening of the fastening bolts, requiring small lateral increments to prevent rotor jamming. Finally, and most importantly, this solution requires a specific labyrinth seal ring. [Means for solving the problem]

[0007] SUMMARY OF THE INVENTION The present invention aims to overcome at least some of the drawbacks of the prior art and to provide an electric machine that is easy to maintain.

[0008] According to a first aspect of the present invention, there is provided an electric machine comprising a stator, a rotor, and a bearing assembly. The stator comprises a bearing shield assembly including a bearing shield and a stationary labyrinth seal ring having a serpentine labyrinth surface. The rotor is rotatable about an axis of rotation relative to the stator and comprises a rotor shaft and a rotary labyrinth seal ring mounted on the rotor shaft. The rotary labyrinth seal ring has a serpentine labyrinth surface opposing the serpentine labyrinth surface of the stationary labyrinth seal ring at a first axial distance from the serpentine labyrinth surface of the stationary labyrinth seal ring to form an annular labyrinth. The bearing assembly is removably mounted between the bearing shield assembly and the rotor shaft to guide rotational motion of the rotor about the axis of rotation. The bearing shield assembly has a fixed contact surface, and the rotor further has an opposing contact surface axially opposite the fixed contact surface of the bearing shield assembly at a second axial distance from the fixed contact surface of the bearing shield assembly, the second axial distance being shorter than the first axial distance.

[0009] When the removable bearing is loosened, the rotor can be translated relative to the stator until the fixed contact surface reaches the opposing contact surface. ,child After the movement of the rotating labyrinth ring is completed, the rotating labyrinth ring contacts the fixed labyrinth seal ring. do. The fixed and counter contact surfaces provide a large clean surface for securing the rotor to the stator.

[0010] In one embodiment, the bearing assembly includes a bearing cartridge, an outer raceway fitted within the bearing cartridge, and an inner raceway fitted onto the rotor shaft. Preferably, the bearing cartridge has mounting through-holes parallel to the rotational axis and aligned with the threaded holes of the bearing shield assembly. The bearing assembly includes fixing bolts that are inserted into the mounting through-holes of the bearing cartridge and threaded into the threaded holes of the bearing shield assembly to secure the bearing cartridge to the bearing shield assembly. The bearing assembly can be removed by loosening the fixing bolts.

[0011] In one embodiment, the bearing cartridge bears against an outer surface of the bearing shield, while the stationary labyrinth seal ring bears against an inner surface of the bearing shield opposite the outer surface.

[0012] In a preferred embodiment, the bearing cartridge is provided with a clearance through-hole that is parallel to the rotation axis and aligned with the through-hole of the bearing shield assembly and can be aligned with the threaded hole of the rotor at an indexed angular position of the rotor relative to the stator, the diameter of the clearance through-hole being larger than the diameters of the through-hole of the bearing shield assembly and the threaded hole of the rotor, so that at the indexed angular position, a fixing bolt is inserted into the clearance through-hole and the through-hole of the bearing shield assembly and then threaded into the threaded hole of the rotor so that the cylindrical bolt head of the fixing bolt axially abuts against the edge of the through-hole of the bearing shield assembly. Once the bolt head of one fixing bolt reaches the edge of the through-hole of the bearing shield assembly, when the bolt is subsequently tightened, the rotor translates relative to the stator parallel to the bolt axis, i.e., parallel to the rotation axis, until contact is established between the contact surface of the bearing shield assembly and the opposing contact surface of the rotor. This translation is guided by radial contact between the bolt shank and the inner wall of the through-hole of the bearing shield assembly. Once contact between the contact surfaces is established, the locking bolts are further tightened until the tension-loaded locking bolts provide sufficient pressure between the contact surfaces so that the rotor is secured by frictional engagement of the contact surfaces.

[0013] In one embodiment, a thrust washer is removably secured to the end of the rotor shaft for axial abutment against the inner race of the bearing assembly, the opposite axial end of which may abut a shoulder or another axial stop on the rotor shaft.

[0014] In one embodiment, the bearing assembly includes rolling elements between the outer and inner rings, which may include balls, cylindrical rollers, tapered rollers, or barrel rollers arranged in one or more rows.

[0015] In one embodiment, an inner bearing space filled with a lubricant is formed between the inner and outer races and is sealed by an annular labyrinth formed between the fixed and rotating labyrinth seal rings, the lubricant preferably being grease.

[0016] In one embodiment, an outer bearing cover is removably secured to the bearing shield assembly and is adapted to seal the inner lubrication space of the bearing, which extends from the outer bearing cover to the labyrinth seal ring. The outer bearing preferably covers the mounting and / or clearance through-holes of the bearing cartridge.

[0017] In one embodiment, the fixed contact surface is made from an electrically insulating material. Alternatively or additionally, the counter contact surface is made from an electrically insulating material, which ensures that no electrical current flows through the contact surfaces when they are in contact with each other.

[0018] In one embodiment, the stationary contact surface is made integral with the stationary labyrinth seal ring, or alternatively, the stationary contact surface is formed on the bearing shield.

[0019] In a preferred embodiment, the fixed contact surface includes at least one flat portion that faces a flat portion of the opposing contact surface at said second axial distance.

[0020] Advantageously, the stationary labyrinth seal ring and the rotary labyrinth seal ring are provided with tubular ribs arranged alternately along the axis of rotation, the labyrinth being formed by a series of annular spaces between the alternating tubular ribs.

[0021] In an embodiment, the electric machine is a traction motor of a rail vehicle. [Brief explanation of the drawings]

[0022] Other advantages and features of the present invention will become more clearly apparent from the following description of particular embodiments of the invention, given by way of non-limiting example only and represented in the accompanying drawings, in which: [Figure 1] 1 is an isometric view of a drive side of an electric machine according to one embodiment of the present invention; FIG. [Figure 2] 2 is an isometric view of the electric machine of FIG. 1 from the non-drive side during a step of disassembling a first bearing assembly on the non-drive side of the electric machine. [Figure 3] FIG. 2 is a front view of the electric machine of FIG. 1 from the non-drive side without the outer bearing cover. [Figure 4] 4 is an axial cross-sectional view of the electric machine of FIG. 1 taken along section IV-IV shown in FIG. 3. [Figure 5] 4 is an axial cross-section of the electric machine of FIG. 1 taken along section VV shown in FIG. 3. [Figure 6] 4 shows a detail of the electric machine of FIG. 1 during a step of disassembling the first bearing assembly on the non-drive side of the electric machine, taken at section VV shown in FIG. 3. [Figure 7] 4 shows a detail of the electric machine of FIG. 1 during another step in disassembling the first bearing assembly of the non-drive side of the electric machine, at section VV shown in FIG. 3. [Figure 8] 8 shows a detail of the electric machine of FIG. 1 during the disassembly step of FIG. 7, along the section plane IV-IV shown in FIG. 3; [Figure 9] 4 shows a detail of the electric machine of FIG. 1 during a step of disassembling the second bearing assembly of the drive side of the electric machine, in section VV shown in FIG. 3; [Figure 10] 4 shows a detail of the electric machine of FIG. 1 during another step of disassembling the second bearing assembly of the drive side of the electric machine, at section VV shown in FIG. 3.

[0023] Corresponding reference numbers refer to the same or corresponding parts in the various figures. DETAILED DESCRIPTION OF THE INVENTION

[0024] 1-5, an electric machine 10, for example a traction motor for a railway vehicle, comprises a stator 12, a rotor 14, a first bearing assembly 16 at the non-drive end of the electric machine 10, and a second bearing assembly 116 at the drive end of the electric machine 10 for guiding rotational movement of the rotor 14 relative to the stator 12 about the axis of rotation 100 of the electric machine 10.

[0025] The stator 12 is provided with stator windings 18 housed in a stator housing 20, which includes a stator frame 22, a first bearing shield assembly 24 at the non-drive end of the electric machine 10, and a second bearing shield assembly 124 at the drive end of the electric machine 10. The first bearing shield assembly 24 is annular and includes a bearing shield 26 and a stationary labyrinth seal ring 28. The second bearing shield assembly 124 is annular and includes a bearing shield 126 and two stationary labyrinth seal rings 128, 228.

[0026] The rotor 14 is centered about the axis of rotation 100 and includes a set of rotor windings or permanent magnets 30, a rotor shaft 32, a first rotating labyrinth seal ring 34 attached to the rotor shaft 32 and opposing the fixed labyrinth seal ring 28 of the first bearing shield assembly 24, and a pair of second rotating labyrinth seal rings 134, 234 attached to the rotor shaft 32 and opposing the two fixed labyrinth seal rings 128, 228 of the second bearing shield assembly 124. The stationary labyrinth seal ring 28, 128, 228 and the rotary labyrinth seal ring 34, 134, 234 are provided with alternating tubular ribs 36, 38, 136, 138, 236, 238 along the axis of rotation 100, and a serpentine path is defined by the series of annular spaces between the alternating tubular ribs 36, 38, 136, 138, 236, 238.

[0027] In the axial direction parallel to the rotation axis 100, the meandering labyrinth surface formed by the tubular rib 38 of the rotary labyrinth seal ring 34 is separated from the meandering labyrinth surface formed by the tubular rib 36 of the stationary labyrinth seal ring 28 by the minimum distance D1.

[0028] Notably, the bearing shield assembly 24 is provided with one or more fixed contact surfaces 40, and the rotor 14 further includes one or more opposing contact surfaces 42 that axially oppose one or more fixed contact surfaces 40 of the bearing shield assembly at an axial distance D2 (D2 < D1) of the fixed contact surface of the bearing shield assembly. The one or more fixed contact surfaces and the opposing contact surfaces are flat surfaces perpendicular to the rotation axis.

[0029] In the axial direction parallel to the rotation axis 100, the meandering labyrinth surfaces formed by the tubular ribs 138, 238 of the rotary labyrinth seal rings 134, 234 are separated from the meandering labyrinth surfaces formed by the tubular ribs 136, 138 of the stationary labyrinth seal rings 128, 228 by the minimum distance D11. D11 satisfies D2 < D11 and is preferably equal to D1.

[0030] Similarly, the bearing shield assembly 124 is provided with one or more fixed contact surfaces 140, and the rotor 14 further includes one or more opposing contact surfaces 142 that axially oppose one or more fixed contact surfaces 140 of the bearing shield assembly at an axial distance D22 (D12 < D11) of the fixed contact surface of the bearing shield assembly. The one or more fixed contact surfaces and the opposing contact surfaces are flat surfaces perpendicular to the rotation axis. Preferably, D12 is equal to D2.

[0031] A first bearing assembly 16 at the non-drive end of the electric machine 10 is mounted between a first bearing shield assembly 24 and the rotor 14, while a second bearing assembly 116 is mounted between a second bearing shield assembly 124 and the rotor 14 to guide rotational movement of the rotor 14 about the axis of rotation 100.

[0032] More specifically, the first bearing assembly 16 includes a bearing cartridge 44, an outer race 46 press-fit into the bearing cartridge 44, an inner race 48 press-fit onto the rotor shaft 14, and rolling elements 50 between the inner race 48 and the outer race 46. In this embodiment, the rolling elements 50 are balls, and the inner race 48 and the outer race 46 have concave cross-sections. The inner race 48 axially abuts a shoulder 52 on the rotor shaft 14. A thrust washer 54 is removably secured to an end 56 of the rotor shaft 32 with a bolt 58 so as to axially abut the inner race 48 of the bearing assembly 16.

[0033] 4, the bearing cartridge 44 axially abuts the outer side 60 of the bearing shield 26 and includes a set of several, preferably three or more, mounting through-holes 62 distributed around the circumference of the bearing cartridge 44 and extending parallel to the axis of rotation 100. The mounting through-holes 62 are aligned with intermediate holes 64 in the bearing shield 26 and threaded holes 65 in the fixed labyrinth seal ring 28. Fixing bolts 66 are inserted through the mounting through-holes 62 in the bearing cartridge and threaded into the threaded holes 64 in the bearing shield 26 to secure the bearing cartridge 44 to the bearing shield 26.

[0034] The bearing cartridge 44 further includes a set of several, preferably three or more, clearance through-holes 68 distributed around the circumference of the bearing cartridge 44, as shown in FIG. 5, which are parallel to the axis of rotation 100 and, in this embodiment, extend through the bearing shield 26 and the fixed labyrinth seal ring 28 to align with through-holes 70, 72 in the bearing shield assembly 24.

[0035] These clearance through-holes 68 align with threaded holes 74 in the rotor 14 when the rotor 14 is positioned in an indexed angular position relative to the stator 12. The diameter of the clearance through-holes 68 is larger than the diameters of the through-holes 70, 72 in the bearing shield assembly and the threaded holes 74 in the rotor.

[0036] An outer bearing cover 76 is removably secured to the bearing shield 26 with bolts 78 and covers the mounting holes 62 and clearance holes 68 of the bearing cartridge 44. A sealed lubrication volume 80 is formed between the inner and outer races 48, 46, with one axial end sealed by the outer bearing cover 76 and the opposite axial end sealed by a labyrinth seal formed by the fixed and rotating labyrinth seal rings 28, 34. This lubrication volume can be filled with a lubricating oil, preferably grease.

[0037] Similarly, the second bearing assembly 16 at the drive end of the electric machine includes a bearing cartridge 144 with a fixed labyrinth seal ring 228, an outer race 146 press-fit into the bearing cartridge 144, an inner race 148 press-fit onto the rotor shaft 14, and rolling elements 150 between the inner race 148 and the outer race 146. In this embodiment, the rolling elements are cylindrical rollers, and the inner race 148 and the outer race 146 are cylindrical. The inner race 148 axially abuts a shoulder 152 on the rotor shaft 14.

[0038] 4, the bearing cartridge 144 axially abuts the outside 160 of the bearing shield 126 and includes a set of several, preferably three or more, mounting through-holes 162 distributed around the circumference of the bearing cartridge 144 and extending parallel to the axis of rotation 100. The mounting through-holes 162 are aligned with the intermediate holes in the bearing shield 126 and with the threaded holes 165 in the fixed labyrinth seal ring 128. Fixing bolts 166 are inserted through the mounting through-holes 162 of the bearing cartridge 144 and threaded into the threaded holes 164 of the bearing shield 126 to secure the bearing cartridge 144 to the bearing shield 126.

[0039] 5, the bearing cartridge 144 further includes a set of several, preferably three or more, clearance through-holes 168 distributed around the circumference of the bearing cartridge 144, which are parallel to the rotational axis 100 and, in this embodiment, extend through the bearing shield 126 and the fixed labyrinth seal ring 128 to align with through-holes 170, 172 in the bearing shield assembly 124. These clearance through-holes 168 can align with threaded holes 174 in the rotor 14 when the rotor 14 is positioned in an indexed angular position relative to the stator 12. The diameter of the clearance through-holes 168 is larger than the diameters of the through-holes 170, 172 in the bearing shield assembly and the threaded hole 174 in the rotor.

[0040] A sealed lubrication volume 180 is formed between the inner and outer races 48, 46 and is closed at one axial end by a labyrinth seal formed by the fixed labyrinth seal ring 128 and the rotating labyrinth seal ring 134 and at the opposite axial end by a labyrinth seal formed by the fixed labyrinth seal ring 228 and the rotating labyrinth seal ring 34, which are integral with the bearing cartridge 144. This lubrication volume can be filled with a lubricating oil, preferably grease.

[0041] To remove the first bearing assembly 16 from the non-drive end of the electric machine 10, it is first necessary to unscrew the bolts 78 and remove the outer bearing cover 76, thereby providing access to the clearance through-holes 68 in the bearing cartridge 44 and the mounting through-holes 62 in the bearing cartridge 44.

[0042] The rotor 14 is rotated to the index angle position, and a fixing bolt 82 is inserted into the clearance through-hole 68 (see FIG. 2) and through-holes 70, 72 of the bearing shield assembly 24. The fixing bolt 82 is threaded into the threaded hole 74 of the rotor 14 until the cylindrical bolt head 84 of the fixing bolt 82 axially abuts the edge 86 of the through-hole 70 of the bearing shield 26, as shown in FIG.

[0043] Once the bolt heads 84 of the fixing bolts 82 reach the edges 86 of the through holes 70 in the bearing shield 26, the shanks of the fixing bolts 82 contact the through holes 70, 72 in the bearing shield 24 and the fixed labyrinth seal ring 28 to ensure that the rotor 14 is centered relative to the rotational axis 10, independent of the bearing assembly 16. Thus, the fixing bolts 66 can be at least partially unscrewed such that translational movement of the rotor 14 relative to the stator 12 is limited.

[0044] When the fixing bolt 82 is tightened thereafter, as shown in FIG. 7, until contact is established between the contact surfaces of the contact surface 40 of the bearing shield door assembly 24 and the opposing contact surface 42 of the rotor 14, the rotor 14 moves parallel to the fixing bolt axis, that is, parallel to the rotation axis 100, relative to the stator 12. This parallel movement is guided by the radial contact that occurs between the shank of the fixing bolt 82 and the inner walls of the through holes 70 and 72 of the bearing shield door assembly 24, and / or by the rolling elements 50 and the inner raceway ring 48. Once contact between the contact surfaces 40 and 42 is established, the fixing bolt 82 to which a tensile load is applied provides sufficient pressure between the contact surfaces 40 and 42 until the rotor 14 is fixed by the frictional engagement of the contact surfaces 40 and 42, and the fixing bolt 82 is further tightened. It should be noted that since D2 < D1, no contact occurs between the alternately arranged ribs 36 and 38 of the fixed labyrinth seal ring and the movable labyrinth seal ring. Similarly, since D2 < D11, no contact occurs between the alternately arranged ribs 136, 138, 236, and 238 of the fixed labyrinth seal rings 128 and 228 and the movable labyrinth seal rings 134 and 234. During the parallel movement of the rotor, the cylindrical roller 150 slides on the track of the inner raceway ring 148.

[0045] If the removal is not complete at the end of the step of FIG. 5, the fixing bolt 66 can be sufficiently loosened and removed in the same manner as the bolt 58. After removing the bearing cartridge 76, the outer raceway ring 46, and the rolling elements 50, a pulling tool can be inserted to reach the distal end face of the inner raceway ring 48 and the inner raceway ring 48 can be removed.

[0046] To remove the second bearing assembly 116 from the drive end of the electromechanical device 10, as shown in FIG. 9, first the screw of the bolt 78 needs to be removed and the outer bearing cover 76 needs to be removed from the non - drive end of the electromechanical device 10, thereby enabling contact with the clearance through hole 68 of the bearing cartridge 44 and the mounting through hole 62 of the bearing cartridge 44.

[0047] The rotor 14 is rotated to the index angle position and, if necessary, a threaded index rod 90 is inserted through the clearance through-hole 68 and through-holes 70, 72 of the bearing shield assembly 24 and then threaded into the threaded hole 74 of the rotor 14, as shown in FIG.

[0048] Once the index rod 90 is in place, the shank of the index rod 90 contacts the inner walls of the through holes 70, 72 in the bearing shield 24 and the fixed labyrinth seal ring 28, ensuring that the rotor 14 is centered relative to the rotational axis 10, independent of the bearing assembly 16. The fixing bolt 66 can therefore be at least partially unscrewed so that translational movement of the rotor 14 relative to the stator 12 is limited.

[0049] Once these preliminary steps are completed at the non-drive end of the electric machine 10, actual operation can begin at the drive end. A fixing bolt 182 is inserted through the clearance through-hole 168 and through-holes 170, 172 of the bearing shield assembly 124 until the cylindrical bolt head 184 of the fixing bolt 182 axially abuts the edge 186 of the through-hole 170 in the bearing shield 126, as shown in FIG. 9 , and then threaded into the threaded hole 174 of the rotor 14.

[0050] Once the bolt head 184 of the fixing bolt 182 reaches the edge 186 of the through hole 170 in the bearing shield 126, the shank of the fixing bolt 182 contacts the inner walls of the through holes 170, 172 in the bearing shield 124 and the fixed labyrinth seal ring 128, ensuring that the rotor 14 is centered relative to the rotating shaft 10, independent of the bearing assembly 116. Thus, the fixing bolt 166 can be at least partially unscrewed such that translational movement of the rotor 14 relative to the stator 12 is limited.

[0051] When the fixing bolt 182 is then tightened, as shown in FIG. 10, the rotor 14 will translate parallel to the fixing bolt axis, i.e., parallel to the rotation axis 100, until contact is established between the contact surfaces of the contact surface 140 of the bearing shield door assembly 124 and the opposing contact surface 142 of the rotor 14 with respect to the stator 12. This translation is guided by the radial contact that occurs between the shank of the fixing bolt 182 and the inner walls of the through holes 170, 172 of the bearing shield door assembly 124 and / or by the rolling elements 150 and the inner raceway ring 148. Once contact between the contact surfaces 140, 142 is established, the fixing bolt 182 to which a tensile load is applied will provide sufficient pressure between the contact surfaces 140, 142 until the rotor 14 is fixed by the frictional engagement of the contact surfaces 140, 142, and the fixing bolt 182 is further tightened. It should be noted that since D12 < D11, no contact occurs between the ribs 136, 138, 236, 238 of the fixed labyrinth seal rings and the movable labyrinth seal rings arranged alternately by the fixed labyrinth seal rings 128, 228 and the movable labyrinth seal rings 134, 234. It should be noted that the bearing assembly 16 at the non-driven end of the electromechanical device 10 moves together with the rotor 14 and the thrust washer 54 to move the fixed labyrinth seal ring 28 away from the bearing shield 26, but the relative angular position between the two parts is maintained by the indexing rod 90. Then, the movable labyrinth seal ring 223 can be pulled out as shown in FIG. 9. Also, after removing the bearing cartridge 176, the outer raceway ring 146, and the rolling elements 150, a pulling tool can be inserted to reach the distal end face of the inner raceway ring 148, and the inner raceway ring 148 can be removed.

[0052] It is preferable that the bearing shields 26, 126 are made of metal. It is preferable that the fixed labyrinth seal rings 28, 128, 228 are made of an electrically insulating material so that no electrical path is generated when the contact surfaces 40, 42, 140, 142 come into contact with each other.

[0053] 4, the bearing shield 26 may be elastically deformed, resulting in contact between the contact surfaces 40, 42 without translation of the rotor 14 relative to the stator 12. Alternatively, deformation of the rotor press plate in which the threaded holes 74 are located may occur.

[0054] A clearance can be secured between the shank of the fixing bolt 82 and the through holes 70, 72 of the bearing shield 24 and the fixed labyrinth seal ring 28, and in this case, the bearing assembly 16 is used to center the rotor 14 relative to the rotating shaft 10 when the fixing bolt 66 is removed.

Claims

1. a stator (12) comprising a bearing shield assembly (24, 124) including a bearing shield (26, 126) and a stationary labyrinth seal ring (28, 128) having a serpentine labyrinth surface (36, 136); a rotor (14) rotatable about an axis of rotation (100) relative to said stator (12), comprising a rotor shaft (32) and a rotary labyrinth seal ring (34, 134) mounted on said rotor shaft (32), said rotary labyrinth seal ring (34, 134) being in contact with said serpentine labyrinth surface (36, 136) of said stationary labyrinth seal ring (28, 128) and its own a rotor (14) having a serpentine labyrinth surface (38, 138) facing the serpentine labyrinth surface (36, 136) of the stationary labyrinth seal ring (28, 128) at a first minimum axial distance (D1, D11) at the serpentine labyrinth surface (36, 136) of the stationary labyrinth seal ring (28, 128) so as to form an annular labyrinth between the serpentine labyrinth surface (38, 138) and the serpentine labyrinth surface (38, 138); a bearing assembly (16, 116) removably mounted on said bearing shield assembly (24, 124) and said rotor shaft (32) for guiding rotational movement of said rotor (14) relative to said stator (12) about said axis of rotation (100); the bearing shield assembly (24, 124) is provided with a fixed contact surface (40, 140) fixed relative to the stator (12), and the rotor (14) further comprises an opposing contact surface (42, 142) axially opposing the fixed contact surface (40, 140) of the bearing shield assembly (24, 124) at a second axial distance (D2, D12) at the fixed contact surface (40, 140) of the bearing shield assembly (24, 124), the second axial distance (D2, D12) being shorter than the first minimum axial distance (D1, D11); the stationary labyrinth seal ring (28, 128) and the rotary labyrinth seal ring (34, 134) are provided with tubular ribs (36, 38, 136, 138) arranged alternately along the axis of rotation (100), and the annular labyrinth is formed by a series of annular spaces between the alternating tubular ribs (36, 38, 136, 138); The bearing assembly (16, 116) comprises a bearing cartridge (44, 144), an outer raceway (46, 146) fitted inside the bearing cartridge (44, 144), and an inner raceway (48, 148) fitted outside the rotor shaft (32); The bearing cartridge (44, 144) is provided with a clearance through-hole (68, 168), which is parallel to the rotational axis (100), is aligned with a through-hole (70, 72, 170, 172) of the bearing shield assembly (24, 124), and may be aligned with a threaded hole (74, 174) of the rotor (14) at an indexed angular position of the rotor (14) relative to the stator (12), and the diameter of the clearance through-hole (68, 168) is equal to or larger than the diameter of the through-hole (70, 72, 170, 172) of the bearing shield assembly. and a diameter greater than the diameter of the threaded hole (74, 174) of the rotor (14), so that, in the index angular position, a fixing bolt (82, 182) is inserted into the clearance through-hole (68, 168) and into the through-hole (70, 72, 170, 172) of the bearing shield assembly (24, 124) and then threaded into the threaded hole (74, 174) of the rotor (14) so ​​that a cylindrical bolt head (84) of the fixing bolt (82) axially abuts against an edge of the through-hole (70, 72, 170, 172) of the bearing shield assembly (24).

2. 2. The electric machine of claim 1, wherein the bearing cartridge has a mounting through-hole that is parallel to the rotational axis and aligned with a threaded hole in the bearing shield assembly, and the bearing assembly includes a fixing bolt that is inserted into the mounting through-hole in the bearing cartridge and threaded into the threaded hole in the bearing shield assembly to secure the bearing cartridge to the bearing shield assembly.

3. 3. The electric machine of claim 1, further comprising a thrust washer removably secured to an end of the rotor shaft so as to axially abut the inner raceway of the bearing assembly.

4. The electric machine (10) of any one of claims 1 to 3, wherein the bearing assembly (10) comprises rolling elements (50, 150) between the outer race (46, 146) and the inner race (48, 148).

5. 5. The electric machine (10) of claim 1, wherein an inner bearing space (80, 180) filled with lubricating oil is formed between the inner race (48, 148) and the outer race (50, 150) and is sealed by the annular labyrinth formed between the stationary labyrinth seal ring (28, 128) and the rotating labyrinth seal ring (34, 134).

6. The electric machine (10) of any one of claims 1 to 5, further comprising an outer bearing cover (76) removably secured to the bearing shield assembly (24).

7. The electric machine (10) of any one of claims 1 to 6, wherein the stationary contact surface (40, 140) is made from an electrically insulating material.

8. The electric machine (10) of any one of claims 1 to 7, wherein the opposing contact surfaces (42, 142) are made from an electrically insulating material.

9. The electric machine (10) of any one of claims 1 to 8, wherein the stationary contact surface (40, 140) is made integral with the stationary labyrinth seal ring (28, 128).

10. The electric machine (10) of any one of claims 1 to 9, wherein the stationary contact surface (40, 140) is formed on the bearing shield (26, 126).

11. 11. The electric machine (10) of claim 1, wherein the fixed contact surface (40, 140) includes at least one flat portion that faces a flat portion of the opposing contact surface (42, 142) at the second axial distance.

12. The electric machine (10) according to any one of claims 1 to 11, wherein the electric machine (10) is a traction motor for a railway vehicle.

Citation Information

Patent Citations

  • Electric machine

    EP2610514A1

  • Rotary electric machine for dynamo testing device

    JP2008061468A

  • Electric motor

    JP2011172421A