ASSEMBLY AND METHOD FOR PREVENTING AXIAL MIGRATION OF SPRINGS IN GENERATOR ROTORS
20190326791 ยท 2019-10-24
Inventors
- Andrew Adam (Saint Charles, MO, US)
- Mark Roberts (Wentzville, MO, US)
- Grant Hennessey (Tega Cay, SC, US)
- Alan Fortner (Mint Hill, NC, US)
- Brent Mazingo (Charlotte, NC, US)
- Randy Edward Whitener (Oviedo, FL, US)
- Michael D. Garmon (Orlando, FL, US)
Cpc classification
H02K15/0018
ELECTRICITY
H02K9/24
ELECTRICITY
International classification
H02K3/24
ELECTRICITY
H02K15/00
ELECTRICITY
Abstract
An assembly and a method for preventing an axial migration of a spring in a generator rotor are presented. The assembly includes a step pin radially disposed through an amortisseur and inserted into a spring of the generator rotor. The step pin is arranged axially apart from an adjacent radial vent passage and radially extends through the spring into a slot clearance between the spring and a creepage. The amortisseur includes a counter bore to retain a pin head and a pin shoulder. The spring includes a pin hole for a pin body extending therethrough. Diameters of the counter bore and the pin hole are smaller than diameters of amortisseur radial vent aperture and spring radial vent aperture. The step pin prevents an axial migration of the spring in rotor slots.
Claims
1. A generator rotor comprising: a rotor body extending axially; a plurality of slots extending longitudinally along the rotor body and disposed at a radial depth in a periphery of the rotor body; a retaining ring disposed at an axial end of the rotor body enclosing an axial end portion of the rotor body; and a plurality of components disposed in each of the slots, the components comprising: rotor windings disposed on top of a sub slot, the rotor windings comprising a plurality of radial vent apertures, a creepage disposed on top of the rotor windings, the creepage comprising a plurality of radial vent apertures, a spring disposed above the creepage with a slot clearance therebetween, the spring comprising a plurality of radial vent apertures, an amortisseur disposed on top of the spring, the amortisseur comprising a plurality of radial vent apertures, a wedge disposed on top of the amortisseur, the wedge comprising a plurality of radial vent apertures, and a step pin radially disposed through the amortisseur and inserted into the spring, wherein the plurality of radial vent apertures of each of the components are axially aligned to form a plurality of radial vent passages, wherein the step pin is arranged axially apart from an adjacent radial vent passage, and wherein the step pin radially extends through the spring into the slot clearance between the spring and the creepage.
2. The generator rotor as claimed in claim 1, wherein the step pin comprises a pin head, a pin shoulder and a pin body.
3. The generator rotor as claimed in claim 2, wherein a diameter of the pin head is smaller than a diameter of the pin shoulder and is larger than a diameter of the pin body.
4. The generator rotor as claimed in claim 3, wherein the amortisseur comprises a counter bore to retain the pin head and the pin shoulder, and wherein a diameter of the counter bore for retaining the pin shoulder is smaller than a diameter of the amortisseur radial vent aperture.
5. The generator rotor as claimed in claim 2, wherein a total length of the pin head and the pin shoulder is equal or shorter than a thickness of the amortisseur.
6. The generator rotor as claimed in claim 2, wherein the spring comprises a pin hole for the pin body extending through, and wherein a diameter of the pin hole is smaller than a diameter of the spring radial vent aperture.
7. The generator rotor as claimed in claim 2, wherein the creepage comprises a coolant flow channel extending axially, and wherein the step pin is circumferentially aligned with the coolant flow channel.
8. The generator rotor as claimed in claim 7, wherein a diameter of the pin body is equal or smaller than a width of the coolant flow channel.
9. The generator rotor as claimed in claim 1, wherein the step pin is arranged axially outwardly from the first radial vent passage at the axial end of the rotor body.
10. An assembly for preventing an axial migration of a spring in a generator rotor, wherein the generator rotor comprises a rotor body and a plurality of slots extending longitudinally along the rotor body and disposed at a radial depth in a periphery of the rotor body, wherein a plurality of components is disposed in each of the slots comprising rotor windings, a creepage, the spring, an amortisseur, and a wedge, and wherein each of the components comprises a plurality of radial vent apertures axially aligned to form radial vent passages, the assembly comprising: a step pin radially disposed through the amortisseur and inserted into the spring, wherein the step pin is arranged axially apart from an adjacent radial vent passage, and wherein the step pin radially extends through the spring into a slot clearance between the spring and the creepage.
11. The assembly as claimed in claim 10, wherein the step pin comprises a pin head, a pin shoulder and a pin body.
12. The assembly as claimed in claim 11, wherein a diameter of the pin head is smaller than a diameter of the pin shoulder and is larger than a diameter of the pin body.
13. The assembly as claimed in claim 12, wherein the amortisseur comprises a counter bore to retain the pin head and the pin shoulder, and wherein a diameter of the counter bore for retaining the pin shoulder is smaller than a diameter of the amortisseur radial vent aperture.
14. The assembly as claimed in claim 11, wherein a total length of the pin head and the pin shoulder is equal or shorter than a thickness of the amortisseur.
15. The assembly as claimed in claim 11, wherein the spring comprises a pin hole for the pin body extending through, and wherein a diameter of the pin hole is smaller than a diameter of the spring radial vent aperture.
16. The assembly as claimed in claim 11, wherein the creepage comprises a coolant flow channel extending axially, and wherein the step pin is circumferentially aligned with the coolant flow channel.
17. The assembly as claimed in claim 16, wherein a diameter of the pin body is equal or smaller than a width of the coolant flow channel.
18. The assembly as claimed in claim 10, wherein the step pin is arranged axially outwardly from the first radial vent passage at the axial end of the rotor body.
19. A method for preventing an axial migration of a spring in a generator rotor, wherein the generator rotor comprises a rotor body and a plurality of slots extending longitudinally along the rotor body and disposed at a radial depth in a periphery of the rotor body, wherein a plurality of components is disposed in each of the slots comprising rotor windings, a creepage, the spring, an amortisseur, and a wedge, and wherein each of the components comprises a plurality of radial vent apertures axially aligned to form radial vent passages, the method comprising: radially disposing a step pin through the amortisseur and inserted into the spring, wherein the step pin is arranged axially apart from an adjacent radial vent passage, and wherein the step pin radially extends through the spring into a slot clearance between the spring and the creepage.
20. The method as claimed in claim 19, wherein the step pin comprises a pin head, a pin shoulder and a pin body, wherein a diameter of the pin head is smaller than a diameter of the pin shoulder and is larger than a diameter of the pin body, the method further comprising: drilling a counter bore to retain the pin head and the pin shoulder; and drilling a pin hole for the pin body extending therethrough, wherein a diameter of the counter bore for retaining the pin shoulder is smaller than a diameter of the amortisseur radial vent aperture, and wherein a diameter of the pin hole is smaller than a diameter of the spring radial vent aperture.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0010] Exemplary embodiments of the application are explained in further detail with respect to the accompanying drawings. In the drawings:
[0011]
[0012]
[0013]
[0014]
[0015]
[0016]
[0017] To facilitate understanding, identical reference numerals have been used, where possible, to designate identical elements that are common to the figures.
DETAILED DESCRIPTION OF INVENTION
[0018] A detailed description related to aspects of the present invention is described hereafter with respect to the accompanying figures.
[0019]
[0020]
[0021]
[0022] With reference to
[0023]
[0024] Referring to
[0025] As illustrated in
[0026]
[0027] During generator operation, the spring 170 may migrate outwardly axially in the slot 120. According to an embodiment, one step pin 190 may be arranged axially outwardly from the first radial vent passage 122 at one axial end of the rotor body 110. A counter bore 174 and a pin hole 164 are arranged axially outwardly from the first spring radial vent aperture 162 and the first amortisseur radial vent aperture 172 to retain the step pin 190. Similar configuration may be arranged at the opposite axial end of the rotor body 110. The assembly of the step pin 190, the counter bore 174 of the amortisseur 170 and the pin hole 164 of the spring 160 prevents the spring 160 migrate outwardly axially in the slot 120 due to heating and cooling cycles or other causes during operation. According to another embodiment, multiple step pins 190 and corresponding counter bores 174 and pin holes 164 to retain the step pins 190 may be arranged in each spring 190.
[0028] According to an aspect, the proposed assembly and method present a simple and easy modification of the generator rotor 100 by using a step pin 190 to prevent migration of the spring 170. The proposed modification simply requires drilling a small pin hole 164 in the spring 160 and drilling a small counter bore 174 in the amortisseur 170 to retain the step pin 190. The step pin 190 does not engage with the creepage 150 in the rotor slot 120. The step pin 190 does not engage with the radial vent passage 122. Such arrangement of the step pin 190 prevents failure of the step pin 190 when the rotor windings 140 and the creepage 150 radially move within the slot clearance 126 during startup in turning gear operation.
[0029] According to an aspect, the proposed assembly and design of the step pin 190, the pin hole 164 and the counter bore 174 prevent potential dislodgement of the step pin 190 due to the radial float in the slot 120.
[0030] According to an aspect, the proposed design of the step pin 190 may be manufactured out of materials including metal, such as aluminum or steel. The proposed design of the step pin 190 is thus stronger and more durable and has a less risk to shear or break due to axial migration of the spring 160.
[0031] Although various embodiments that incorporate the teachings of the present invention have been shown and described in detail herein, those skilled in the art can readily devise many other varied embodiments that still incorporate these teachings. The invention is not limited in its application to the exemplary embodiment details of construction and the arrangement of components set forth in the description or illustrated in the drawings. The invention is capable of other embodiments and of being practiced or of being carried out in various ways. Also, it is to be understood that the phraseology and terminology used herein is for the purpose of description and should not be regarded as limiting. The use of including, comprising, or having and variations thereof herein is meant to encompass the items listed thereafter and equivalents thereof as well as additional items. Unless specified or limited otherwise, the terms mounted, connected, supported, and coupled and variations thereof are used broadly and encompass direct and indirect mountings, connections, supports, and couplings. Further, connected and coupled are not restricted to physical or mechanical connections or couplings.
REFERENCE LIST
[0032] 100: Generator Rotor [0033] 110: Rotor Body [0034] 112: Retaining Ring [0035] 120: Rotor Slot [0036] 122: Slot Vent Passage [0037] 124: Sub Slot [0038] 126: Slot Clearance [0039] 130: Rotor Teeth [0040] 140: Rotor Windings [0041] 142: Winding Radial Vent Aperture [0042] 150: Creepage [0043] 152: Creepage Radial Vent Aperture [0044] 154: Creepage Coolant Flow Channel [0045] 160: Spring [0046] 162: Spring Radial Vent Aperture [0047] 164: Spring Pin Hole [0048] 170: Amortisseur [0049] 172: Amortisseur Radial Vent Aperture [0050] 174: Amortisseur Pin Bore [0051] 180: Wedge [0052] 182: Wedge Radial Vent Aperture [0053] 190: Step Pin [0054] 192: Step Pin Head [0055] 194: Step Pin Shoulder [0056] 196: Step Pin Body