Assembly for a wind turbine, and method of operating an assembly for a wind turbine
11486365 · 2022-11-01
Assignee
Inventors
Cpc classification
F03D15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2260/31
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D80/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2260/30
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
International classification
Abstract
An assembly (127) for a wind turbine (100) includes a housing (126) having a first bearing (150) and a second bearing (154). A shaft (142) extends axially within the housing (126) and is supported by the first bearing (150) and the second bearing (154) for rotation relative to the housing (126). A radially outer portion of the shaft (142) includes at least one shaft engagement formation (146) positioned between the first bearing (150) and the second bearing (154). A retention mechanism (156) is moveable axially between: an engaged position in which it can engage the shaft engagement formation (146), such that rotation of the shaft (142) is constrained; and a disengaged position in which the retention mechanism (156) cannot engage the shaft engagement formation (146), thereby allowing rotation of the shaft (142). Additionally, a method of operating such an assembly.
Claims
1. An assembly for a wind turbine, comprising: a housing comprising: a first bearing; and a second bearing axially spaced apart from the first bearing; a shaft extending axially within the housing and being at least partly supported by the first bearing and the second bearing for rotation relative to the housing, a radially outer portion of the shaft comprising at least one shaft engagement formation positioned between the first bearing and the second bearing; a retention mechanism moveable axially between: an engaged position in which the retention mechanism engages the at least one shaft engagement formation, such that rotation of the shaft is constrained, and a disengaged position in which the retention mechanism does not engage the at least one shaft engagement formation, thereby allowing rotation of the shaft; wherein the retention mechanism comprises a locking ring, the locking ring encircling the shaft.
2. The assembly of claim 1, wherein the locking ring comprises at least one locking ring formation for engaging the at least one shaft engagement formation when the retention mechanism is in the engaged position.
3. The assembly of claim 2, wherein the at least one locking ring formation for engaging the at least one shaft engagement formation comprises an axially extending inner spline located on a radially inner portion of the locking ring.
4. The assembly of claim 1, wherein the housing comprises at least one housing engagement formation for engaging the retention mechanism.
5. The assembly of claim 4, wherein the retention mechanism engages the at least one housing engagement formation in both the engaged and disengaged positions.
6. The assembly of claim 1, wherein the locking ring comprises at least one locking ring formation for engaging at least one housing engagement formation of the housing when the retention mechanism is in the engaged position.
7. The assembly of claim 6, wherein the at least one locking ring formation for engaging the at least one housing engagement formation comprises an axially extending outer spline located on a radially outer portion of the locking ring.
8. An assembly for a wind turbine, comprising: a housing comprising: a first bearing; and a second bearing axially spaced apart from the first bearing; a shaft extending axially within the housing and being at least partly supported by the first bearing and the second bearing for rotation relative to the housing, a radially outer portion of the shaft comprising at least one shaft engagement formation positioned between the first bearing and the second bearing; a retention mechanism moveable axially along a substantially linear path between: an engaged position in which the retention mechanism engages the at least one shaft engagement formation, such that rotation of the shaft is constrained, and a disengaged position in which the retention mechanism does not engage the at least one shaft engagement formation, thereby allowing rotation of the shaft, wherein the housing comprises at least one housing engagement formation for engaging the retention mechanism, wherein, in the disengaged position, the retention mechanism does not engage the at least one housing engagement formation, and wherein, in the engaged position, the retention mechanism engages the at least one housing engagement formation.
9. The assembly of claim 8, wherein the at least one housing engagement formation and the at least one shaft engagement formation are configured such that the retention mechanism can simultaneously engage both the at least one housing engagement formation and the at least one shaft engagement formation when the retention mechanism is in the engaged position.
10. The assembly of claim 8, wherein the at least one housing engagement formation comprises at least one axially extending spline, groove, finger, slot, keyway, rib, or rail.
11. The assembly of claim 8, wherein the at least one shaft engagement formation comprises at least one axially extending spline, groove, finger, slot, keyway, rib, or rail.
12. The assembly of claim 8, comprising an actuator configured to selectively move the retention mechanism between the engaged and disengaged positions.
13. The assembly of claim 12, wherein the actuator is mounted to a radially inner portion of the housing.
14. The assembly of claim 12, wherein the actuator is hydraulically, electromagnetically, magnetically, or electrically powered.
15. The assembly of claim 8, comprising a viewing window for allowing visual confirmation that the retention mechanism is in the engaged position.
16. A method of operating the assembly of claim 8, comprising: rotating, or allowing rotation of, the shaft to a lockable position while the retention mechanism is in the disengaged position; moving the retention mechanism to the engaged position, thereby to constrain rotation of the shaft.
17. The assembly of claim 8, wherein the retention mechanism is positioned between the shaft and the housing.
18. The assembly of claim 8, wherein the retention mechanism comprises an axially extending spline, groove, finger, slot, keyway, rib, rail, locking ring, hole, or aperture.
19. An assembly for a wind turbine, comprising: a housing comprising: a first bearing; and a second bearing axially spaced apart from the first bearing; a shaft extending axially within the housing and being at least partly supported by the first bearing and the second bearing for rotation relative to the housing, a radially outer portion of the shaft comprising at least one shaft engagement formation positioned between the first bearing and the second bearing; a retention mechanism moveable axially between: an engaged position in which the retention mechanism engages the at least one shaft engagement formation, such that rotation of the shaft is constrained, and a disengaged position in which the retention mechanism does not engage the at least one shaft engagement formation, thereby allowing rotation of the shaft; wherein the housing comprises at least one housing engagement formation for engaging the retention mechanism, and wherein the at least one housing engagement formation comprises at least one axially extending groove configured to engage the retention mechanism in at least the engaged position.
20. The assembly of claim 19, wherein the at least one axially extending groove comprises a plurality of axially extending grooves circumferentially spaced about the housing.
21. The assembly of claim 19, wherein the retention mechanism engages the at least one housing engagement formation in both the engaged and disengaged positions.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1) Embodiments of the invention will now be described, by way of example only, with reference to the accompanying drawings, in which:
(2)
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(12)
DETAILED DESCRIPTION
(13) Referring to
(14) The nacelle 106 houses a number of functional components. Turning to
(15) The gearbox 112, generator 114, and other components (not shown) may need to be serviced, maintained and repaired. Doing so while the rotor is turning may be dangerous or impossible. The kinetic and electrical energy generated by the rotor turning may make it dangerous for any activity to be undertaken in or near the housing, gearbox, generator and other components. Even if the blades of the wind turbine are feathered, it is still possible for swirls and gusts of wind to cause the rotor to rotate, which may endanger technicians.
(16)
(17) In the embodiment of
(18) The assembly 127 also comprises a shaft 142 (corresponding with main shaft 116 in
(19) As best shown in
(20) The shaft 142 is tapered along its length from the front. This allows for a larger front bearing 150 and greater surface area for the front bearing seat 134 and front bearing retainer 148, which allows for better support for the relatively heavier rotor end of the shaft 142.
(21) As best shown in
(22) In the embodiment of
(23) In use, when the wind turbine is generating power, the locking ring 156 is positioned in a disengaged state, as shown in
(24) When it is desired to prevent rotation of shaft 142, for example to enable the turbine to be maintained by technicians, hydraulic pressure is supplied to the hydraulic rams 164 by way of a hydraulic circuit (not shown) such that the locking ring 156 slides axially within the housing 126, guided by the outer splines 160 in the housing grooves 162. As the inner splines 158 engage the shaft grooves 162, the locking ring 156 locks the shaft 142 such that rotation of the shaft 142 is constrained. With the locking ring 156 in this engaged position, any torque generated by the rotor 108 is transferred statically to the housing 126 through the shaft grooves 146, locking ring 156 and housing grooves 162.
(25) The assembly 127 may be designed such that the locking ring 156 is controlled to move into the engaged position shown in
(26) Alternatively or in addition, the shaft 142 may be driven, for example by an electric motor (not shown), to a position in which the shaft grooves 146 align with corresponding inner splines 158 of the locking ring 156, which enables the locking ring 156 to be driven axially into the engaged position by the hydraulic rams 164.
(27) Optionally, either or both of the inner splines 158 and/or shaft grooves 146 may have axially tapered lead-in portions to assist in guiding each inner spline 158 into an adjacent shaft groove 146.
(28) The optional viewing windows 140 allow technicians to visually confirm whether the locking ring 156 is in the engaged or disengaged state. The viewing windows 140 may be simple apertures, or may be closed with a transparent sheet material such as glass or plastics.
(29) Although the embodiment described includes housing engagement formations in the form of housing grooves 162, it will be appreciated that this feature is optional. For example, the retention mechanism may be mounted directly to the housing for axial movement between the engaged and disengaged positions. In terms of modifying the embodiment described in relation to
(30) The locking ring 156 of the embodiment described in relation to
(31) Although the embodiment described in relation to
(32) It will be appreciated that although the embodiment of
(33) The skilled person will understand that the word “axially” in relation to movement of the retention mechanism and the various described formations means that there is an axial component to the movement, rather than the movement being solely axial. For example, the shaft grooves 146 and/or the housing grooves 162 may be helical rather than axial. If a hinging mechanism is used, there may be a radial and/or circumferential component to the retention mechanism's movement in addition to the axial component.
(34) Actuators, such as the hydraulic rams 164, are optional. When provided, any suitable number of actuators may be used, depending on the configuration of the retention of mechanism and the way in which it moves axially within the housing. The actuator(s) may be of any suitable type, and may for example be hydraulic, electromagnetic, magnetic, electrical or mechanical. Although the illustrated actuators are linear, any actuator(s) used may also be partly or wholly rotational in operation. For example, an electric motor may be used in conjunction with a suitable gear or set of gears and/or a toothed rack, as will be understood by the skilled person.
(35) Where no actuators is provided, the retention mechanism may manually moveable between the radially inward and radially outward positions, for example by a technician using his/her hands or a suitable tool. An access hole (not shown) in the housing, preferably with a cover, may be used to allow access to the retention mechanism.
(36) The retention mechanism (such as the locking ring 156 in the presently described embodiment) may be spring-loaded into either the engaged or disengaged position. In that case, any actuator only needs to supply force in a direction to overcome the force of the spring. This reduces the need for a two-way actuator.
(37) In the embodiments so far described, the various splines and grooves are circumferentially equally spaced. In alternative embodiments, the spacing may be unequal. Depending on the selected spacings, this may result in the shaft 142 being lockable only at one particular rotational position. It is possible for technicians to achieve this result with the embodiment of
(38) Alternatively, the retention mechanism, shaft engagement formations and housing engagement formations (if used) may be configured and/or arranged such that the retention mechanism can only be moved into the engaged position for a single rotational position of the shaft 142. In the context of the embodiment of
(39)
(40) In
(41) In
(42) The ability to allow the shaft 142 to be locked in only a single rotational position may also be achieved in other ways. For example, each spline may have a particular cross sectional shape or size that matches only the cross section of its corresponding groove; that is, each spline may be keyed to fit one, and only one, groove. Referring to
(43) The skilled person will appreciate that, with suitable adjustments, any embodiment described as allowing the shaft 142 to be locked at one rotational position may also be used in embodiments where the shaft 142 may be locked in more than one rotational position.
(44) A lock (not shown) may be provided to maintain the retention mechanism in the engaged position or in the disengaged position, or selectively in either position.
(45)
(46) The method may be used with any of the above-described embodiments.
(47) Although the invention has been described with reference to a number of specific embodiments, the skilled person will appreciate that the invention may be embodied in many other forms.