Bearing supporting apparatus for wind turbine generator system, installing method, and wind turbine generator system
10823155 ยท 2020-11-03
Assignee
Inventors
Cpc classification
F03D1/06
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
F03D15/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02P70/50
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
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
F03D1/0691
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A bearing supporting apparatus for a wind turbine generator system, where the wind turbine generator system comprises an impeller and a generator, a hub of the impeller is arranged on an outer side of a main bearing seat of the generator, the bearing supporting apparatus for the wind turbine generator system including: at least one locking connector, wherein the locking connector has a locking wedge arranged between the main bearing seat and the hub. The hoisting difficulty may be lowered by using the bearing supporting apparatus for the wind turbine generator system.
Claims
1. A bearing supporting apparatus for a wind turbine generator system, wherein the wind turbine generator system comprises an impeller and a generator, a hub of the impeller is arranged on an outer side of a main bearing seat of the generator, the bearing supporting apparatus for the wind turbine generator system comprising: at least one locking connector, wherein the locking connector has a locking wedge arranged between the main bearing seat and the hub; wherein a longitudinal-section shape of the locking wedge is of a wedge shape, the locking connector also has a mounting flange connected with the hub, and the mounting flange is located at one end of the locking wedge with a greater thickness; and wherein the mounting flange has an adjusting threaded hole, and the bearing supporting apparatus for the wind turbine generator system further comprises an ejector piece screwed on the adjusting threaded hole; one end of the ejector piece is propped against an end face of the hub.
2. The bearing supporting apparatus for the wind turbine generator system according to claim 1, wherein there is an angle between an outer wall surface and an inner wall surface of the locking wedge; the angle is in a range of 1 degree to 15 degrees.
3. The bearing supporting apparatus for the wind turbine generator system according to claim 2, wherein the angle is 1 degree, 3 degrees, 8 degrees, 11 degrees, or 15 degrees.
4. The bearing supporting apparatus for the wind turbine generator system according to claim 1, wherein the mounting flange has a fixing through hole; the bearing supporting apparatus for the wind turbine generator system further comprises a fastener; the fastener is inserted through the fixing through hole and fixedly connected to the hub.
5. The bearing supporting apparatus for the wind turbine generator system according to claim 1, wherein there is a plurality of the locking connectors distributed on an outer periphery of the main bearing seat.
6. The bearing supporting apparatus for the wind turbine generator system according to claim 1, wherein there is a plurality of the locking connectors evenly distributed on an outer periphery of the main bearing seat.
7. The bearing supporting apparatus for the wind turbine generator system according to claim 1, wherein the bearing supporting apparatus for the wind turbine generator system further comprises a plurality of locking and connecting sets, each locking and connecting set comprises a plurality of the locking connectors which are spaced apart in turn.
8. The bearing supporting apparatus for the wind turbine generator system according to claim 1, wherein a surface of the locking wedge facing the hub has a first protrusion; a surface of the hub which is to be matched with the locking wedge has a second protrusion; the first protrusion is matched with the second protrusion.
9. A method for installing a bearing supporting apparatus for a wind turbine generator system, the wind turbine generator comprising an impeller and a generator, wherein the method comprises the following steps: hoisting a hub of the impeller and sleeving the hub on an outer side of a main bearing seat of the generator; mounting the locking connector according to claim 1 between the main bearing seat and the hub.
10. The method for installing the bearing supporting apparatus for the wind turbine generator system according to claim 9, further comprising the step of: fixedly connecting the locking connector to the hub via a fastener.
11. A wind turbine generator system comprising a bearing supporting apparatus, wherein the bearing supporting apparatus is the bearing supporting apparatus according to claim 1.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
(12) In order to make the technical solutions of the embodiments of the present invention more comprehensible. The technical solutions in some embodiments of the present invention are hereinafter described in detail with reference to the accompanying drawings. In the case without conflicting, the following embodiments and the feature in the following embodiments can be mutually combined.
(13) The wind turbine generator of the present application adopts a wind turbine generator of a direct-drive type. The method for installing the wind turbine generator system is especially suitable for hoisting the wind turbine generator of the direct-drive type.
(14) As shown in
(15) Where, the tower 13 mainly plays the role of load bearing and is configured to bear other components. The nacelle mainframe 11 is arranged on the tower 13, and is configured for mounting the generator, the control component and etc. The yaw bearing 12 arranged on the nacelle mainframe 11 is configured to adjust an angle of wind for the nacelle mainframe 11 with respect to the tower 13.
(16) The generator is arranged on the nacelle mainframe 11, and the main function of the generator is to convert mechanical energy into electrical energy. The generator includes a main shaft 8, a stator 10 fixedly connected to the main shaft 8, a rotor 9, a first main bearing 5 and a second main bearing 6 sleeved on the main shaft 8 (an inner ring of the first main bearing 5 and the second main bearing 6 is usually in interference fit with the main shaft 8), a main bearing seat 7 sleeved on the outside of the first main bearing 5 and the second main bearing 6 (the outer rings of the first main bearing 5 and the second main bearing 6 are in interference fit or in transition fit with the main bearing seat 7). The generator further includes a generator rotor 9 fixedly connected to the main bearing seat 7.
(17) The impeller is arranged on the main bearing seat 7, and the main function of the impeller is to convert wind energy into mechanical energy. The impeller includes a hub 3, at least one pitch bearing 2 and at least one blade 1, where the blade 1 is arranged on the hub 3 through the pitch bearing 2. The hub 3 is fixedly sleeved on the main bearing seat 7.
(18) After the impeller is installed on the main bearing seat 7, the first main bearing 5 and the second main bearing 6 are respectively arranged on both sides of the center of the hub 3 of the impeller to share load and to balance evenly the force between the both. A relatively small main bearing may be chosen since the load is shared between the two main bearings, thus reducing manufacturing costs of the wind turbine generator.
(19) In the wind turbine generator, the first main bearing 5 and the second main bearing 6 support the hub 3 of the impeller and the main bearing seat 7.
(20) In the present embodiment, the bearing supporting apparatus for the wind turbine generator system includes: at least one locking connector 4 arranged between the hub 3 and the main bearing seat 7. The locking connector 4 is fixedly connected with the hub 3 or the main bearing seat 7, and has a locking wedge 41 arranged between the main bearing seat 7 and the hub 3. The longitudinal-section shape of the locking wedge 41 is of a wedge shape (a longitudinal-section is a section including an axis of the hub 3), namely, a thickness of the locking wedge 41 gradually increases or decreases along the axial direction of the hub 3.
(21) Since the thickness of the locking wedge 41 gradually changes to form a cone surface, thus the locking wedge 41 is arranged between the main bearing bracket 7 and the hub 3, thereby realizing a fixing connection between the main bearing seat 7 and the hub 3. And by way of connecting with the locking wedge 41, providing the matching of the hub 3 and the main bearing seat 7 with a certain level of adjustments in an axial direction and in a radial direction, thereby reducing the difficulty in hoisting the wind turbine generator system with a double bearings arrangement, and reducing a requirement for a position accuracy in assembling the main bearing seat 7 and the hub 3. Thus it is not necessary to simultaneously butt a plurality of flange surfaces when hoisting, thereby reducing the difficulty and costs of hoisting.
(22) In the present embodiment, the locking connector 4 is fixedly connected with the hub 3 so as to realize the fixing of the locking connector 4. In other embodiments, of course, the locking connector 4 may be configured to be connected with the main bearing seat 7.
(23) As shown in
(24) There is an angle between the outer wall surface and the inner wall surface of the locking wedge 41. In order to ensure that the locking wedge 41 can be self-locking between the main bearing seat 7 and the hub 3, the angle should satisfy: the angle <arctan (where, is a friction coefficient between the locking wedge 41 and the hub 3). Preferably, the angle is in the range of 1 degree to 15 degrees. More preferably, the angle is one of 1 degree, 3 degrees, 8 degrees, 11 degrees, or 15 degrees. At these angles, the force of the locking wedge 41 is more reasonable.
(25) As shown in
(26) Preferably, in order to ensure that the locking connector 4 can be reliably fixed between hub 3 and the main bearing seat 7, the locking connector 4 has a mounting flange 42 which is configured to be fixedly connected with the hub 3, where the mounting flange 42 is fixedly connected at one end of the locking wedge 41 with a greater thickness.
(27) As shown in
(28) In particular, the fastener 15 is a fixing screw which passes through the fixing through hole 43 and connects with the flange thread of the hub 3, thus achieving a fixation.
(29) As shown in
(30) The ejector piece 16 may be a screw rod, for the convenience to screw, a groove or a blind hole may be processed on the ejector piece 16, so as to facilitate the insertion of a force-supplying component (a screwdriver, a booster wrench and etc.) into the groove or the blind hole.
(31) During a working process, since the load of the wind turbine generator system is complicated, rigid requirements vary among each part of the main bearing seat 7 in the circumferential direction. In order to meet this requirement, there may be a plurality of the locking connectors 4 distributed on an outer periphery of the main bearing seat 7. According to different rigid demands, the position and number of the locking connectors 4 may be adjusted, enabling the main bearing bracket 7 to have different rigidities at different positions, thus satisfying the requirement of the main bearing, thereby improving the performance of the main bearing.
(32) As shown in
(33) As shown in
(34) As shown in
(35) In addition, the bearing supporting apparatus for the wind turbine generator system may be arranged as a whole, namely, forming a whole annular locking connector 4 (not shown) along an outer ring of the bearing seat thereof, thus improving an assembling efficiency.
(36) According to another aspect of the present invention, a method for installing a bearing supporting apparatus for a wind turbine generator system is provided, which includes the following steps:
(37) hoisting a hub 3 of an impeller and sleeving the hub 3 on an outside of a main bearing seat 7;
(38) mounting the aforementioned locking connector 4 between the main bearing seat and the hub 3 and fixing the main bearing seat 7 and the hub 3. The number of flanges to be aligned may be reduced with the arrangement of the locking connector 4, thereby improving a speed for butting the flanges and reducing costs of hoisting.
(39) Specifically, when hoisting the entire wind turbine generator system, as shown in
(40) In accordance with another aspect of the present invention, a wind turbine generator system is provided, which includes: a bearing supporting apparatus, and the bearing supporting apparatus is the foregoing bearing supporting apparatus. The difficulty in hoisting the wind turbine generator system using the bearing supporting apparatus may be lower.
(41) The present application relates to a bearing supporting apparatus for a wind turbine generator system, an installing method and a wind turbine generator system, which gives rise to the following effects:
(42) by arranging the locking connector with a taper between the hub and the main bearing seat, the axial fixing and radial fixing of the main bearing seat may be satisfied on the basis of bringing no obvious increase to costs of manufacturing and hoisting.
(43) At the same time, the number and the position of the locking connectors may be adjusted according to actual requirements, so as to make the main bearing seat reach the proper rigidity required for the design, thereby providing the two main bearings of the wind turbine generator system with better performance.
(44) In addition, the adjustable fixation of the main bearing seat avoids the hoisting difficulty caused by simultaneous alignments of multiple flanges, thereby reducing the hoisting cost, rendering a dual bearing solution with lower cost and arranged at both front and rear sides of the hub economical and feasible.
(45) These are only embodiments of the present invention; but not intended to limit the scope of the present invention. The equivalent structure or equivalent process transformation which is made by using the description and the accompanying drawings of the present invention and is directly or indirectly applied to other related technical areas, are all equally included in the patent protection scope of the present invention.
(46) Finally, it should be noted that the foregoing embodiments are merely intended to describe the technical solutions of the present invention other than limit the present invention. Although the present invention is described in detail with reference to the foregoing embodiments, a person of ordinary skill in the art should understand that he may still make modifications to the technical solutions described in the foregoing embodiments, or make equivalent replacements to some or all technical features thereof, and such modification and replacement cannot make the essence of the corresponding technical solutions depart from the scope of the technical solutions of the embodiments of the present invention.