Generator bearing assembly and a method for lubricating a generator bearing assembly
09835200 · 2017-12-05
Assignee
Inventors
Cpc classification
F16C2240/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2208/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2240/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C23/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/1095
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/208
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2223/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16C23/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C25/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A method for lubricating a generator bearing assembly is presented. The generator bearing assembly has a bearing and a bearing seat that supports the bearing. A coating of a lubricating material is applied at an interfacing surface between the bearing and the bearing seat. A curing process is performed to the coating by heating the coating up to a predefined curing temperature.
Claims
1. A method for aligning between a bearing and a bearing seat of a generator bearing assembly comprising: applying a coating of a lubricating material on an interfacing surface between the bearing and the bearing seat, the interfacing surface comprising a concave shape surface portion and a convex shape surface portion of the bearing seat and a convex shape surface portion and a concave shape surface portion of the bearing, the concave shape surface portion of the bearing seat mating with the convex shape surface portion of the bearing and the convex shape surface portion of the bearing seat mating with the concave shape surface portion of the bearing; performing a curing process to the coating by heating the coating up to a predefined curing temperature; and supporting the bearing on the lubricated concave shape surface portion of the bearing seat and on the lubricated convex shape surface portion of the bearing seat, wherein the lubricated concave shape surface portion and the lubricated convex shape surface portion of the bearing seat resolve a shift of a load distribution introduced by weight of the bearing during an operation of the generator to resolve a titling between the bearing and the bearing seat.
2. The method according to claim 1, wherein the lubricating material comprises Polytetrafluoroethylene.
3. The method according to claim 1, wherein the application of the coating comprises: spraying the lubricating material over the interfacing surface, drying the coating, measuring a thickness of the coating, and repeating the application of the coating until the thickness of the coating is within a predefined thickness range.
4. The method as claimed in claim 3, wherein the predefined thickness range is 0.025±0.0010 mm.
5. The method according to claim 1, wherein the curing process comprises: heating the coating to the predefined curing temperature, maintaining the predefined curing temperature at the coating for a predefined period of time, cooling the coating, performing a curing test, and repeating the curing process until the coating passes the curing test.
6. The method according to claim 1, wherein the predefined curing temperature is in a range of 170° C. to 185° C.
7. The method according to claim 1, wherein the curing process is carried out by a portable furnace.
8. The method as claimed in claim 7, further comprising performing a trial curing run on a non-coated test part to obtain a curing setup of the portable furnace, wherein the curing process is carried out by the portable furnace according to the curing setup of the portable furnace.
9. The method as claimed in claim 8, wherein the curing setup of the portable furnace comprises a distance of the portable furnace above a surface of the non-coated test part.
10. The method as claimed in claim 8, wherein the curing setup of the portable furnace comprises a temperature of the portable furnace for applying heat to a surface of the non-coated test part.
11. The method according to claim 1, wherein the curing process is carried out by a heat gun.
12. A generator bearing assembly comprising: a bearing; and a bearing seat that supports the bearing on an interfacing surface between the bearing and the bearing seat, wherein a coating of a lubricating material is applied on the interfacing surface, wherein a curing process is performed to the coating by heating the coating up to a predefined curing temperature, wherein the interfacing surface comprises a concave shape surface portion and a convex shape surface portion of the bearing seat and a convex shape surface portion and a concave shape surface portion of the bearing, wherein the concave shape surface portion of the bearing seat mates with the convex shape surface portion of the bearing and the convex shape surface portion of the bearing seat mates with the concave shape surface portion of the bearing, wherein the lubricated concave shape surface portion and the lubricated convex shape surface portion of the bearing seat resolve a shift of a load distribution introduced by weight of the bearing during an operation of the generator to resolve a titling between the bearing and the bearing seat.
13. The generator bearing assembly according to claim 12, wherein the lubricating material comprises Polytetrafluoroethylene.
14. The generator bearing assembly according to claim 12, wherein the application of the coating comprises: spraying the lubricating material over the interfacing surface, drying the coating, measuring a thickness of the coating, and repeating the application of the coating until the thickness of the coating is within a predefined thickness range.
15. The generator bearing assembly according to claim 12, wherein the curing process comprises: heating the coating to the predefined curing temperature, maintaining the predefined curing temperature at the coating for a predefined period of time, cooling the coating, performing a curing test, and repeating the curing process until the coating passes the curing test.
16. The generator bearing assembly according to claim 12, wherein the predefined curing temperature is in a range of 170° C. to 185° C.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Exemplary embodiments of the application are explained in further detail with respect to the accompanying drawings. In the drawings:
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(11) 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
(12) A detailed description related to aspects of the present invention is described hereafter with respect to the accompanying figures.
(13)
(14) According to an embodiment, the interfacing surface 400 may be spherical shaped. Having spherical shaped interfacing surfaces 400 may provide a self-alignment feature for the bearing assembly 100. A layer may be applied to the interfacing surface 400 for an initial alignment. The layer may be applied using a Blue & Scrape process.
(15) According to an embodiment, the interfacing surface 400 may comprise a concave shape or a convex shape.
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(18) According to the illustrated embodiment, the interfacing surfaces 400a, 400b, 400c, and 400d may be spherical shaped. The spherical shaped interfacing surfaces 400 may provide a self-alignment feature of the bearing assembly 100 during generator operation.
(19) During generator operation, a load carried on the spherical shaped interfacing surfaces 400a and 400b of the bearing seat 200 may shift. The shifting of the load may result in a high interfacing surface contact between the bearing seat 200 and the bearing 300, localized galling, and disabling the interfacing surfaces 400 from providing a self-alignment feature of the bearing assembly 100. The issue of the self-alignment of the bearing assembly 100 during operation is identified as a “tilting” of the bearing assembly 100.
(20) The titling issue of the bearing assembly 100 during operation may be resolved by applying a thin slip layer on any one of the interfacing surfaces 400, such as 400a, 400b, 400c, or 400d, to provide a self-lubricating feature between the bearing seat 200 and the bearing 300. The self-lubricating feature between the bearing seat 200 and the bearing 300 will provide a better load distribution carried on the bearing 300.
(21) The thin slip layer is to be applied after using the Blue & Scrape process. However, as discussed in the previous section, the titling issue has repeated a number of times after the Blue & Scrape process have been applied on the interfacing surfaces 400. The Blue & Scrape process may have to be repeated several times which results in 60-100 hours of additional efforts to resolve the titling issue of the bearing assembly 100 during generator operation.
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(24) According to an embodiment, prior to spraying the lubricating material over the interfacing surface 400, the interfacing surface 400 should be as chemically clean as possible. Grease deposited on the interfacing surface 400 may cause the lubricating material to peel off after it is cured.
(25) According to an embodiment, the coating may be sprayed over the interfacing surface 400 using a spay device, such as a spray gun. The spray device may be held perpendicular to the interfacing surface 400 at a desired distance. Holding the spray device too close to the interfacing surface 400 may cause the coating to look rippled. Holding the spray device too far to the interfacing surface 400 may cause the coating to be dry and rough. According to an embodiment, the spray device may be held perpendicular to the interfacing surface 400 at a distance in a range of 0.15-0.30 m.
(26) As illustrated in
(27) At step S130 in
(28) As illustrated in
(29) Referring to step S140 in
(30) The steps illustrated in the embodiment of
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(32) At step S220 in
(33) As illustrated in
(34) At step S240 in
(35) Referring to step S240 in
(36) According to an embodiment, the curing process may be performed by a portable furnace. A trial curing run may be carried out prior to performing the curing process for obtaining a curing setup of the portable furnace. The trial curing run may be carried out on a non-coated test part to verify whether a temperature of the non-coated test part falls within the predefined curing temperature.
(37) According to an embodiment, the curing setup of a portable furnace may comprise an orientation of the portable furnace in relation to a non-coated test part. The curing setup of a portable furnace may comprise a temperature of the portable furnace for applying heat to the non-coated test part to achieve the predefined curing temperature. A curing process to a coating of a bearing assembly 100 may be carried out by the same portable furnace in the trial curing run with the same curing setup.
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(40) According to an embodiment, a plurality of thermocouples 520 may be arranged at different surfaces of the non-coated test part 500, such as a top surface facing to a heat gun 600, a bottom surface opposite to the top surface facing away to a heat gun 600, side surfaces between the top and the bottom surfaces. According to an embodiment, the thermocouples 520 may be clamped or attached to the surfaces of the non-coated test part 500.
(41)
(42) As illustrated in
(43) At step S340 in
(44) As illustrated in
(45) As illustrated in
(46) According to an embodiment, a curing process to a coating at an interfacing surface 400 between a bearing seat 200 and a bearing 300 of a bearing assembly 100 may be performed using the same heat gun 600 in the trial curing run with the obtained curing setup of the heat gun 600.
(47) According to an aspect, the illustrated embodiments may provide a thin slip layer to an interfacing surface 400 between a bearing seat 200 and a bearing 300. The thin slip layer may enhance a self-lubricating feature between a bearing seat 200 and a bearing 300. The enhanced self-lubricating feature may provide a better load distribution carrying feature of a bearing seat 200. The better load distribution carrying feature of a bearing seat 200 may resolve a tilted issue of a bearing assembly 100.
(48) According to an aspect, a Teflon™ slip layer may be applied with adhesive sided tape to an interfacing surface 400 between a bearing seat 200 and a bearing 300 to resolve a tilted issue of a bearing assembly 100.
(49) The illustrated embodiments may provide an immediate improve over a titling issue of a bearing assembly 100. According to an aspect, the illustrated embodiments may resolve a titling issue of a bearing assembly 100 in approximately 6 hours of effort, in comparison with 60-100 hours of additional effort using an existing industrial practice, such as repeatedly applying Blue & Scrape process.
(50) According to an aspect, the illustrated embodiments may be performed at a customer site to avoid a titling issue of a bearing assembly 100. The illustrated embodiments may provide a simple solution to resolve the titling issue of the bearing assembly 100 at a customer side.
(51) According to an aspect, a technique of enhancing a self-lubricating feature between a bearing seat 200 and a bearing 300 of a bearing assembly 100, as described in the illustrated embodiments, may be applied to a fleet of the units that use an arrangement of the bearing assembly 100. The reliable results and the simplicity of the illustrated embodiments may significantly reduce maintenance cost of customers for resolving a tilting issue of a bearing assembly 100 of the fleet.
(52) The disclosed method and the apparatus may be implemented to a plurality of different types of power machinery, such as gas turbines, steam turbines, or wind turbines, etc.
(53) 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.
LIST OF REFERENCES
(54) 100 Generator Bearing Assembly 200 Bearing Seat 300 Bearing 400 Interfacing Surface between Bearing Seat and Bearing 400a Concave Feature Interfacing Surface on Bearing Seat 400b Concave Feature Interfacing Surface on Bearing Seat 400c Convex Feature Interfacing Surface of Bearing 400d Convex Feature Interfacing Surface of Bearing 500 Non-coated Test Part 520 Thermal Couples 600 Heat Gun 700 Thermal Insulation Material