Wind power plant gear mechanism
10294926 ยท 2019-05-21
Assignee
Inventors
Cpc classification
F03D15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C17/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T74/1986
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
F16C2361/61
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/1055
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
F03D80/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C17/105
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2260/40311
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H55/17
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2057/085
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2360/31
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/122
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F03D80/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C17/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C17/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H55/17
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to a wind power plant gear mechanism (1) with an axle (5) and a gearwheel (2), wherein at least one plain bearing bush (4, 20) is arranged between the axle (5) and the gearwheel (2), and wherein the at least one plain bearing bush (4, 20) is connected to the gearwheel (2) via a conical press fit, wherein the at least one plain bearing bush (4, 20) has a first end surface (8) and a second end surface (9) which lies opposite the former along a longitudinal center axis (7) through the at least one plain bearing bush (4, 20), and wherein the first end surface (8) has a diameter d (10) and the second end surface (9) has a diameter D (11), wherein the diameter D (11) is greater than the diameter d (10), and wherein a bearing surface (13) for the at least one plain bearing bush (4, 20) is formed so as to adjoin the end surface (9) with the diameter D (11).
Claims
1. A wind power plant planetary gear system with an axle and a gearwheel, at least one plain bearing bush being arranged between the axle and the gearwheel, wherein the gearwheel comprises a bearing receiving portion having a conical shape, wherein the at least one plain bearing bush has a conical shape and is connected to the bearing receiving portion of the gearwheel by a conical press fit, wherein the at least one plain bearing bush is permanently fixed in position, wherein the at least one plain bearing bush has a first end surface and a second end surface which lies opposite the former along a longitudinal center axis through the at least one plain bearing bush, wherein the first end surface has a diameter d and the second end surface has a diameter D, the diameter D being greater than the diameter d, wherein the gearwheel comprises a radial projection comprising a bearing surface, the bearing surface bearing against the second end surface, wherein the radial projection is formed in one piece with the gearwheel, and wherein the at least one plain bearing bush comprises a sliding layer in a region of the axle.
2. The wind power plant planetary gear system as claimed in claim 1, wherein a ratio of D/d is a maximum of 1.2.
3. The wind power plant planetary gear system as claimed in claim 2, wherein the ratio D/d is selected from a range of 1.0001 to 1.02.
4. The wind power plant planetary gear system as claimed in claim 1, wherein two plain bearing bushes are arranged between the gearwheel and the axle for supporting the gearwheel, wherein the two plain bearing bushes are arranged such that the two second end surfaces with the larger diameter D point towards one another.
5. The wind power plant planetary gear system as claimed in claim 4, wherein the radial projection is formed by an annular web.
6. The wind power plant planetary gear system as claimed in claim 5, wherein the annular web is designed to be spaced apart from the axle forming an intermediate space.
7. The wind power plant planetary gear system as claimed in claim 6, wherein a connecting line opens into the intermediate space which connects the intermediate space to the surrounding atmosphere.
8. The wind power plant planetary gear system as claimed in claim 1, wherein the at least one plain bearing bush is configured as a multi-layered plain bearing.
9. The wind power plant planetary gear system as claimed in claim 1, wherein the sliding layer has a uniform layer thickness in an axial direction over a length of the plain bearing bush.
10. The wind power plant planetary gear system as claimed in claim 1, wherein the sliding layer is formed up to an area of at least one of the second end surface and the first end surface.
11. The wind power plant planetary gear system as claimed in claim 1, wherein the at least one plain bearing bush is additionally connected to the gearwheel in a form-fitting manner.
12. The wind power plant planetary gear system as claimed in claim 1, wherein a surface of the at least one plain bearing bush bearing against the gearwheel has a roughened surface.
13. A wind power plant comprising the wind power plant planetary gear system, wherein the wind power plant planetary gear system is designed according to claim 1.
14. The wind power plant planetary gear system as claimed in claim 1, wherein the gearwheel is made in one piece.
Description
(1) For a better understanding of the invention the latter is explained in more detail with reference to the following Figures.
(2) In a much simplified representation:
(3)
(4)
(5)
(6)
(7)
(8) First of all, it should be noted that in the variously described exemplary embodiments the same parts have been given the same reference numerals and the same component names, whereby the disclosures contained throughout the entire description can be applied to the same parts with the same reference numerals and same component names. Also details relating to position used in the description, such as e.g. top, bottom, side etc. relate to the currently described and represented figure and in case of a change in position should be adjusted to the new position.
(9) It is known and shown in
(10)
(11) In the embodiment of the wind power plant gear mechanism 1 designed as a planetary gear, in particular as a main gear of a wind power plant, the second gearwheel is configured as a sun gear with a spur gearing which is connected in a rotationally secure manner to a shaft. The sun gear is usually surrounded by a plurality of gear wheels 2, planetary gears, for example two, preferably three or four.
(12) The third gearwheel is configured as a hollow gear which surrounds the at least one gearwheel 2 or the gearwheels 2 in radial direction and which on an inner surface also comprises at least partly a toothing, which is meshing engagement with the outer spur gearing 3 of the gearwheel 2 or the gearwheels 2. The hollow gear is connected in a rotationally secure manner to a rotor shaft of the rotor of the wind power plant or in a rotationally secure manner to the housing of the wind power plant gear mechanism 1.
(13) The toothings of the gearwheels 2 in the wind power plant gear mechanism 1 can be designed as straight spurs or in particular as oblique spurs.
(14) The at least one gearwheel 2 (in the following only one gearwheel 2 is described, wherein said embodiments can also be applied to all or several of said gearwheels 2 of the wind power plant gear mechanism 1) is mounted by a plain bearing in the form of a plain bearing bush 4, in particular a multi-layered plain bearing, on an axle 5, for example a planet shaft (the so-called planet axle). Said axle 5 can either be designed in one piece with at least part of a gearwheel support 6, in particular a planet support, or it is inserted as a separate component in a bore of the gearwheel support 6.
(15) It should be noted that not only single stage embodiments of such wind power plant gear mechanisms 1 are possible within the scope of the invention, but also multi-stage, for example two or three-stage embodiments are possible, wherein additional spur gear stages can be integrated into at least one gearwheel 2, in particular a planetary gear. In addition, parallel gears are also possible within the scope of the invention, as described for example in EP 2 284 420 B1. Therefore, reference is made to this document which in this regard is associated with the present description. Accordingly, the wind power plant gear mechanism 1 can comprise a single planetary gear unit and a parallel two or multi-stage planetary gear unit or generally a plurality of planetary gear units.
(16) Furthermore, it should also be noted that, although preferred, the invention is used not only in the planetary gear units of wind power plants, but can be used generally in gear mechanisms for wind power plants, in particular for translating the slow speed of the rotor of a wind power plant into a higher speed.
(17) The plain bearing bush 4 is connected in a rotationally secure manner by press-fit to the gearwheel 2. The press-fit is designed to be conical. In addition, the plain bearing bush 4 is designed to be in the form of a truncated cone and has opposite end surfaces 8, 9 along a longitudinal middle axis 7. The first end surface 8 has an outer diameter d 10 and the second end surface 9 has an outer diameter D 11, wherein the first diameter d 10 is smaller than the second diameter D 11.
(18) The absolute size of the diameter d 10 and D 11 corresponds to the respective gear size. Preferably, the ratio D/d is a maximum of 1.2, in particular a maximum of 1.1. In particular, the ratio D/d is selected from a range of 1.0001 to 1.02, preferably from a range of 1.0001 to 1.008.
(19) In particular, the diametric cone widening is between 0.01% and 0.6%, for example 0.1%, of the outer diameter D 11.
(20) The plain bearing bush 4 can be designed to be in a single layer and in this case consists of a sliding material, i.e. a material which has reduced friction in relation to the material of the axle 5. In addition, said sliding material can be selected from the following materials for a sliding layer.
(21) The plain bearing bush 4 according to the invention can be produced to already have a corresponding shape, for example from a corresponding blank sheet. It is also possible however to form the latter by widening with a corresponding tool from a cylindrical plain bearing. For example, said widening can be performed at the same time as pressing the plain bearing bush 4 into the gearwheel 2 to form the press-fit.
(22)
(23) In the embodiment variant of the wind power plant gear mechanism 1 according to
(24) The radial projection 12 can extend continuously over the whole circumference of the plain bearing bush 4. However, it is also possible that only a single radial projection 12 or a plurality of radial projections 12 are arranged distributed over the inner circumference of the gearwheel 2 which extend only over a portion of the 360 of the circumference.
(25) It is also possible that the radial projection 12 extends up to the axle 5 and is spaced apart from the latter.
(26) The radial projection 12 is preferably formed in one piece with the gearwheel 2. However, it is also possible for the latter to be formed by a separate component that is connected to the gearwheel 2.
(27) According to one embodiment variant the radial projection 12 can be arranged on the axle 5 instead of the gearwheel 2 (cf.
(28) Said radial projection 12 for absorbing axial forces is also provided in the embodiment variant according to
(29)
(30)
(31) The multi-layered plain bearing consists of at least one support layer 14, which is made of steel for example, and a sliding layer 15, which is applied radially inwardly on the support layer 14. The sliding layer 15 thereby forms a running surface 16 for the axle 5 (cf.
(32) In addition to this two-layered embodiment of the multi-layered plain bearing it is also possible within the scope of the invention that intermediate layers are arranged between the sliding layer 15 and the support layer 14, for example a bearing metal layer and/or at least one bonding layer and/or a diffusion barrier layer.
(33) Examples of materials for the individual layers of the multi-layered plain bearing are known from AT 509 624 B1 which is referred to in this document and which is thus associated with the description of the present invention.
(34) However, single-layered embodiment variants of the plain bearing bush 4 are also possible. The latter can consist for example of a copper alloy, in particular bronze or brass.
(35) The sliding layer 15 or all of the layers of the multi-layered plain bearing bush can also have a truncated-cone-shape. It is also possible, as shown in
(36) According to a further embodiment variant of the plain bearing bush 4 the sliding layer 15 is formed up to the area of the end surface with diameter D, as shown by a dashed line in
(37) Of course, it is also possible for such a sliding layer to also be applied to the end surface 8 of the plain bearing bush 4 so that the support layer 14 is thus coated at least partly on both sides of the end surfaces 8, 9.
(38) In an axial arrangement next to the end surface 8 and/or the end surface 9 of the plain bearing bush 4 also a run-on disc can be provided between the plain bearing bush 4 and the gearwheel support 6 (cf.
(39) The plain bearing bush 4 can also perform an axial bearing function in addition to the radial bearing function.
(40) In the embodiment variant of the wind power plant gear mechanism 1 according to
(41) Furthermore,
(42) In addition, more than one longitudinal web can be arranged on the outer surface of the plain bearing bush 4, for example two, three, four, etc., wherein the latter in this case are preferably arranged distributed symmetrically over the circumference of the plain bearing bush 4.
(43) The form fitting element 18 can also have different appropriate shape however.
(44) In the lower part of the plain bearing bush 4 in
(45)
(46) The plain bearing bushes 4, 20 in turn have a conical shape and are arranged in conical mounts in the gearwheel 2, whereby the conical press fit is formed. In this case the arrangement is such that the end surfaces 9 with the respectively larger diameter 11 of the two plain bearing bushes 4, 20 point towards one another. In other words, the plain bearing bushes 4, 20 in the gearwheel 2 are arranged with a cross section tapering outwardly in axial direction. In this way the two plain bearing bushes 4, 20 are arranged opposite one another in the gearwheel 2.
(47) An intermediate space 21 is formed between the two plain bearing bushes 4, 20 into which an annular web 22 of the gear wheel 2 projects. The annular web 22 forms the bearing surfaces 13 for the end surfaces 9 of the two plain bearing bushes 4, 20.
(48) According to a preferred embodiment variant the annular web 22 does not extend in radial direction up to the axle 5, so that the latter is arranged spaced apart from the surface of the axle 5 forming an intermediate space 23. Said intermediate space 23 can be used for supplying a lubricant, in particular a lubricant oil, whereby a feed line 24 for the lubricant opens into said intermediate space 23. Preferably, the feed line 24 is guided through the axle 5 but can also be guided through the gearwheel 2.
(49) Alternatively or in addition, it is possible for the lubricant to be supplied directly to the running surfaces 16, as represented by dashed lines in
(50) The intermediate space 23 can however also be connected by a connecting line 25 to the surrounding atmosphere. Preferably, the connecting line 25 is guided by the axle 5 (as shown by dashed lines in
(51) According to a particular embodiment variant of the wind power plant gear mechanism 1 according to
(52) With regard to further possible embodiments of the wind power plant gear mechanism 1 of this embodiment variant, particularly with regard to the plain bearing bushes 4, 20, reference is made to the above explanations.
(53) Cylindrical plain bearing bushes 4, 20 can be used to form the conical press-fit in all of the embodiment variants of the invention. The latter are inserted into the corresponding mounts in the gearwheel 2 and then widened into a conical shape by a suitable tool.
(54) As shown in
(55) Finally, as a point of formality, it should be noted that for a better understanding of the structure of the wind power plant gear mechanism 1 the latter and its components have not been represented true to scale in part and/or have been enlarged and/or reduced in size.
LIST OF REFERENCE NUMERALS
(56) 1 wind power plant gear mechanism
(57) 2 gearwheel
(58) 3 outer spur gearing
(59) 4 plain bearing bush
(60) 5 axle
(61) 6 gearwheel support
(62) 7 longitudinal center axis
(63) 8 end surface
(64) 9 end surface
(65) 10 diameter
(66) 11 diameter
(67) 12 radial projection
(68) 13 bearing surface
(69) 14 support layer
(70) 15 sliding layer
(71) 16 running surface
(72) 17 component
(73) 18 formfitting element
(74) 19 surface
(75) 20 plain bearing bush
(76) 21 intermediate space
(77) 22 annular web
(78) 23 intermediate space
(79) 24 feed line
(80) 25 connecting line
(81) 100 wind power plant