Roller bearing, wind turbine and method for controlling same
11709106 · 2023-07-25
Assignee
Inventors
- Mingchun Guo (Shanghai, CN)
- Quan Xu (Shanghai, CN)
- Robert Zeillinger (Steyr, AT)
- Lichao Zhang (Shanghai, CN)
Cpc classification
F16C33/586
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D80/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2233/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D7/0224
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2300/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/385
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/72
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16C2240/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2360/31
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C19/386
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
G01L5/00
PHYSICS
F03D80/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C19/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/58
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01L1/24
PHYSICS
Abstract
A roller bearing includes an outer ring, an inner ring, at least one row of rollers arranged between the outer ring and the inner ring, and at least one optical fiber cable mounted to the outer ring or the inner ring, the optical fiber cable including at least one Bragg grating. The optical fiber cable is configured such that a signal in the optical fiber cable is usable to determine a preload or load on the roller bearing.
Claims
1. A roller bearing comprising: an outer ring, an inner ring, at least one row of rollers arranged between the outer ring and the inner ring, and at least one optical fiber cable mounted to the outer ring or the inner ring, the optical fiber cable comprising at least one Bragg grating, wherein the optical fiber cable is configured such that a signal in the optical fiber cable is usable to determine a preload or load on the roller bearing, wherein the at least one row of rollers comprises a first row of rollers and a second row of rollers axially spaced from the first row of rollers, wherein the outer ring includes a first circumferential groove directly radially outward of the first row of rollers and a second circumferential groove axially spaced from the first circumferential groove and directly radially outward of the second row of rollers, wherein the at least one optical fiber cable comprises a first optical fiber cable in the first circumferential groove and a second optical fiber cable in the second circumferential groove, and wherein a base of the first circumferential groove has a base width greater than an opening width of the first circumferential groove.
2. The roller bearing according to claim 1, wherein the preload or load is determined during installation of the roller bearing and/or during operation of the roller bearing for determining the load condition of the roller bearing under external influences.
3. The roller bearing according to claim 1, wherein the preload or load is monitored such that an alarm is sent when the preload or load deviates from a predetermined normal condition.
4. The roller bearing according to claim 1, wherein the outer ring is a split outer ring and/or the inner ring is a split inner ring.
5. The roller bearing according to claim 1, including a control and storage unit configured to measure and store a load profile if temperature, vibration or speed exceeds a threshold, and to measure and store at least one of the temperature, the vibration, the speed, and the load.
6. The roller bearing according to claim 1, wherein the roller bearing is a double-row tapered roller bearing in an X arrangement having two outer rings, each outer ring including an optical fiber cable of the plurality of optical fiber cables.
7. A wind turbine including a roller bearing according to claim 1.
8. The roller bearing according to claim 1, wherein a cover is mounted in the first circumferential groove, the cover having a cover width less than the base width such that the cover and the base and a sidewall of the groove define a circumferential passageway, and wherein the first optical fiber is located in the circumferential passageway.
9. A roller bearing comprising: an outer ring, an inner ring, at least one row of rollers arranged between the outer ring and the inner ring, and at least one optical fiber cable mounted to the outer ring or the inner ring, the optical fiber cable comprising at least one Bragg grating, wherein the optical fiber cable is configured such that a signal in the optical fiber cable is usable to determine a preload or load on the roller bearing, wherein an outer periphery of the outer ring corresponding to a loaded zone of each row of the at least one row of rollers is provided with a groove, the groove having a cross section in the shape of an isosceles trapezoid, wherein the isosceles trapezoid forming the groove has an upper base located on a radially outer side of the outer ring, a lower base located on a radially inner side of the outer ring, and a base angle (α) greater than or equal to 70 degrees and less than or equal to 85 degrees, and wherein the optical fiber cable is located in the groove.
10. The roller bearing according to claim 9, wherein the lower base has a length (glb) less than or equal to a length (er) of the roller in an axial direction and greater than or equal to half the length (er) of the roller in the axial direction.
11. The roller bearing according to claim 9, wherein an axial distance (es) between an end of the lower base and an end of the roller is less than or equal to 10% of a length (er) of the roller in an axial direction.
12. The roller bearing according to claim 9, wherein an arc-shaped recessed portion fitting the bottom of the optical fiber cable is provided at a position in the lower base where the optical fiber cable is arranged.
13. The roller bearing according to claim 9, wherein the lower base is located radially outside of a bolt hole for fixing the outer ring.
14. The roller bearing according to claim 9, further including: a cover, the cover having a cross section in the shape of a rectangle, wherein the rectangle forming the cover has a width (cw) greater than or equal to a length (gub) of the upper base of the isosceles trapezoid, and a height (ch) greater than a difference between a height (gh) of the isosceles trapezoid and a diameter (d) of the optical fiber cable, and the cover is inserted into the groove to cover the groove.
15. The roller bearing according to claim 14, wherein the height (ch) of the cover is equal to the height (gh) of the isosceles trapezoid.
16. A wind turbine including a roller bearing according to claim 9.
17. The roller bearing according to claim 9, wherein the outer ring is a split outer ring and/or the inner ring is a split inner ring, and wherein the roller bearing is a double-row tapered roller bearing in an X arrangement.
18. The roller bearing according to claim 9, including a control and storage unit configured to measure and store a load profile if temperature, vibration or speed exceeds a threshold, and to measure and store at least one of the temperature, the vibration, the speed, and the load.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention is described in more detail hereinafter based on the exemplary embodiments depicted in the accompanying drawings. The exemplary embodiments and the combinations shown in the exemplary embodiments herein are purely exemplary, and are not intended to limit the scope of the present invention. The scope of the present invention is limited only by the pending claims. Some features in the accompanying drawings may be exaggerated for clarity.
(2)
(3)
(4)
DETAILED DESCRIPTION
(5) The present disclosure relates to a roller bearing, comprising an outer ring 1, an inner ring 2, and at least one row of rollers 3 arranged between the outer ring 1 and the inner ring 2. The outer ring 1 or the inner ring 2 is provided with an optical fiber cable 6 that includes at least one Bragg grating, and a signal in the optical fiber cable 6 is used to determine a preload or load on the roller bearing. Thereby, by virtue of the optical fiber cable 6 having the Bragg grating, the preload can be determined during installation of the roller bearing, and the load can be determined during operation of the roller bearing for determining the load profile condition of the roller bearing under external influences, particularly circumferential load profile. The load profile under external influences can be calculated by subtracting the preload from an overall load.
(6) A control and storage unit may further be provided for calculation and analysis of detected strains, particularly strains in a circumferential direction, so as to provide references for the design, installation and operation of large bearings such as those used in wind turbines. In addition, a monitoring mechanism and an actuator may further be provided to form an automatic control system. For example, the monitoring mechanism monitors the preload or load and sends an alarm to alert a worker when the preload or load deviates from a predetermined normal condition. As an alternative, blades of the wind turbine may be brought into a pitch out status (which is achieved, for example, by adjusting the angle of the blades of the wind turbine) to reduce the force acting on the roller bearing if the preload or load measured by the optical fiber cable exceeds a predetermined threshold. This can effectively protect the bearing and increase the service life of the bearing.
(7) In addition to measuring strains, the optical fiber cable 6 having the Bragg grating can also measure: pressure, temperature, acceleration, and displacement, specifically, for example, the temperature, vibration, speed, and load measurement of the bearing.
(8) To this end, the optical fiber cable 6 is fixed to the roller bearing. Roller bearings as described herein may include tapered roller bearings, spherical roller bearings and cylindrical roller bearings. According to an embodiment, the outer ring 1 is provided with a plurality of recesses, and each of the recesses respectively accommodates an independent optical fiber cable 6 for measuring the circumferential load profile.
(9)
(10) As shown in
(11) The groove 4 has a cross section in the shape of an isosceles trapezoid, wherein the isosceles trapezoid forming the groove 4 has an upper base located on a radially outer side of the outer ring 1, a lower base located on a radially inner side of the outer ring 1, and a base angle greater than or equal to 70 degrees and less than or equal to 85 degrees. Here, “the groove has a cross section in the shape of an isosceles trapezoid” means that the groove has an isosceles trapezoidal shape in an axial cross section. “The isosceles trapezoid has an upper base located on a radially outer side and a lower base located on a radially inner side” is intended to define the orientation of the trapezoidal groove, that is, as shown in
(12) The cover 5 has a cross section in the shape of a rectangle, wherein the rectangle forming the cover 5 has a width cw greater than or equal to the length gub of the upper base of the isosceles trapezoid. Specifically, the width cw of the cover 5 (that is, the length of the cover in an axial direction) may be equal to the length gub of the upper base of the isosceles trapezoid to fit in the groove 4. As an alternative, the width cw of the cover may be slightly greater than the length gub of the upper base of the isosceles trapezoid, such that the cover can be press-fitted into the groove 4 tightly (or with slight interference).
(13) In addition, the cover 5 has a height ch greater than the difference between the height gh of the isosceles trapezoid and the diameter d of the optical fiber cable, that is, ch>(gh−d). The cover 5 is inserted into the groove 4 to cover the groove 4. In other words, the height ch of the cover 5 is designed such that when the cover 5 is placed in the groove 4, the cover 5 can further separate and prevent/block the optical fiber cable 6 from moving. For example, according to an embodiment, the height ch of the cover 5 is designed to be equal to the height gh of the isosceles trapezoid. In this way, the cover 5 can be completely inserted into and fixed in the groove 4 without considering the provision of other arrangements for fixing the cover 5.
(14) It should be noted that the cover 5 may be a seal ring. In this way, the cover 5 can prevent foreign matters from entering the bearing. In addition, with the elasticity of the seal ring itself, the installation and removal of the cover 5 will be easier.
(15) According to the present disclosure, one optical fiber cable 6 is accommodated inside a space enclosed by each side and the lower base of each isosceles trapezoid forming the groove 4 and the cover 5. In other words, as shown in
(16) Therefore, in the present disclosure, as shown in
(17) Both the groove 4 and the cover 5 extend circumferentially over the entire circumference of the outer ring 1. The optical fiber cable 6 is embedded in the outer ring 1 of the bearing. Deformation of the outer ring 1 causes deformation (elongation) of the embedded optical fiber cable. The light passing through the cable is controlled and used as a main signal for conversion into local and global deformation and the load profile. By means of the deformation of the outer ring, the preload on the bearing during installation can be measured more accurately.
(18) As shown in
(19) Particularly, according to an embodiment, an axial distance es between an end of the lower base and an end of the roller (which are adjacent to/correspond to each other) is less than or equal to 10% of the length er of the roller 3 in the axial direction. In this way, the optical fiber cable 6 measures the condition in the loaded zone adjacent to both ends of the roller 3. The loads at both ends will be more representative for fully reflecting the load condition of the bearing.
(20) According to an embodiment, as shown in
(21) It should also be noted that, in the present application, for the bearings (with a diameter of more than 1 meter) for wind turbines, the depth of the groove is shallow, which makes it easier to install and replace the optical fiber cable, as long as the space formed can accommodate the optical fiber cable. In this way, the groove will not conflict with other components (for example, the bolt hole through the outer ring in the axial direction), that is to say, the groove will not affect and constrain the bearing design.
(22) Representative non-limiting examples of the present disclosure have been described in detail above with reference to the accompanying drawings. The detailed description is only intended to teach a person skilled in the art further details for practicing preferred aspects of the present teachings and is not intended to limit the scope of the present disclosure. Moreover, each of the additional features and teachings disclosed above may be used alone or in combination with other features and teachings.
(23) Furthermore, the above-mentioned representative examples and the various features of the independent and dependent technical solutions may be combined in a way that is not specifically and explicitly enumerated in order to provide further useful embodiments of the present teachings.
LIST OF REFERENCE NUMERALS
(24) 1 Outer ring 2 Inner ring 3 Roller 4 Groove 5 Cover 6 Optical fiber cable 8 Arc-shaped recessed portion 9 Bolt hole p1, p2 Points on outer ring corresponding to loaded zone es Axial distance between end of lower base and end of roller er Length of roller in axial direction gub Upper base of isosceles trapezoid glb Lower base of isosceles trapezoid gh Height of isosceles trapezoid a Base angle of isosceles trapezoid cw Width of cover ch Height of cover d Diameter of optical fiber cable ha Auxiliary line passing through end of upper base in height direction