WIND TURBINE GENERATOR WITH HYDRAULIC PUMP
20200158086 ยท 2020-05-21
Inventors
Cpc classification
F04B1/063
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B1/0439
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2260/406
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/728
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
F04B9/042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D80/88
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
F04B1/047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2230/61
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B1/0426
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B17/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2230/80
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D9/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F03D9/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B17/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Wind turbine generator with hydraulic pump Wind turbine, comprising a tower (2) and a head (6) mounted at an upper end of said tower (2), rotational around a head axis, wherein a propeller (9) is mounted to said head (6), rotatable around a propeller axis, wherein a hydraulic pump (10) is provided, driven by said propeller (9), wherein the hydraulic pump (10) is provided substantially in the propeller (9).
Claims
1. A wind turbine, comprising a tower and a head mounted at an upper end of said tower, the head being rotational around a head axis, wherein a propeller is mounted to said head, the propeller being rotatable around a propeller axis, wherein a hydraulic pump is provided and configured to be driven by said propeller, wherein the hydraulic pump is provided substantially in the propeller.
2. The wind turbine according to claim 1, wherein the head is provided with a nave, wherein a movable part of the hydraulic pump rotates with the propeller at least partly around a part of said nave, wherein said nave forms or is provided with a substantially stationary part of the hydraulic pump, and wherein the propeller comprises a rotational part of the hydraulic pump.
3. The wind turbine according to claim 2, wherein said nave comprises a first part inside said head and a second part which is releasably connected to said first part, wherein said second part is provided in or by said hydraulic pump.
4. The wind turbine according to claim 1, wherein a fluid circuit extends through the tower and the head, which fluid circuit comprises a part extending inside a hub of the propeller, which part comprises at least part of the hydraulic pump.
5. The wind turbine according to claim 4, wherein the fluid circuit comprises at least one valve provided in or near the head for disconnecting a fluid inlet channel of said circuit from the hydraulic pump, and further provided with at least a second valve in or near the head for disconnecting an outlet channel of said circuit from the hydraulic pump.
6. The wind turbine according to claim 1, wherein the pump is a multi: piston pump, comprising a central part and a drive ring extending around the central part, wherein: the central part comprises a series of radially outward facing cylinders with pistons movable in said cylinders in said radial direction, relative to a central axis, wherein the drive ring engages the pistons directly or indirectly for at least forcing the pistons radially inward; and/or the drive ring comprises a series of radially inward facing cylinders with pistons movable in said cylinders in said radial direction, relative to a central axis, wherein the central portion engages the pistons directly or indirectly for at least forcing pistons radially outward.
7. The wind turbine according to claim 6, wherein the drive ring comprises an inward facing, non-circular surface, engaging the pistons directly or indirectly.
8. The turbine according to claim 7, wherein, between the inward facing, non-circular surface of the drive ring and the pistons, a flexible ring or ring assembly is provided that is configured to flex upon rotation of the drive ring, for driving the pistons.
9. The wind turbine according to claim 7, wherein between the inward facing, non-circular surface of the drive ring and each piston at least one bearing is provided, carried by a bearing carrier or boogie, for driving the pistons upon rotation of the drive ring.
10. The wind turbine according to claim 1, wherein the hydraulic pump is mounted to the head using a mounting provision also supporting the propeller, wherein the propeller comprises a hub with one or more blades connected thereto, wherein the hub is mounted on at least one bracket which extends from the hub, which bracket is releasably connected to the head.
11. The wind turbine according to claim 1, wherein the propeller comprises a hub with one or more blades connected thereto, wherein the hub is mounted by at least one gear and/or a bearing, such that the hub can rotate relative to the head by said at least one gear and/or said bearing.
12. The wind turbine according to claim 1, wherein the hydraulic pump comprises a non-circular drive for radially extending pistons and/or cylinders, directly or indirectly engaging said pistons and/or cylinders, and wherein a traction drive and/or a friction drive is provided, engaging said non-circular drive and a hub of the propeller, or a part engaging such hub, forming a gearing between the hub or at least the propeller and the non-circular drive.
13. The wind turbine according to claim 1, wherein a crane is mounted to the head or provided by the head, with which the propeller can be lifted from the head to a position near a foot of the tower or vice versa, wherein the crane is provided on a top side of said head.
14. The wind turbine according to claim 13, wherein the crane is provided for lifting the propeller with at least part of the hydraulic pump.
15. The wind turbine according to claim 1, wherein the propeller with the hydraulic pump or at least a part thereof provided in or by the propeller is exchangeable for a replacement propeller with hydraulic pump or the relevant part thereof.
16. The wind turbine according to claim 1, wherein the hydraulic pump or the part thereof provided by or inside the propeller is accessible from within the head.
17. The wind turbine according to claim 1, wherein the hydraulic pump is connected to a generator through a hydraulic motor.
18. The wind turbine generator according to claim 17, wherein the generator is a multiple drive generator, wherein a first drive is provided by said pump and a second drive is provided by one of the group consisting of: an incinerator type drive, a fossil fuel drive, an earth heat driven drive, a tidal drive, a solar powered drive, and a waste heat driven drive.
19. (canceled)
20. (canceled)
21. A system for installation and/or maintenance of the wind turbine according to claim 1, wherein the system comprises at least one vessel provided with a movable, motion compensating platform suitable for carrying a propeller system of the wind turbine, wherein the platform is further suitable for transferring personnel to and from a wind mill to which the propeller system is to be mounted or from which the propeller system is to be retrieved.
22. A method for installing and/or maintenance of a wind turbine, wherein a tower with a head is placed in a selected position, and a propeller system is shipped to said tower, the propeller system including at least a substantial part of a hydraulic pump, wherein the propeller system is lifted to the head such that the hydraulic pump can be assembled in the wind turbine and/or can be connected to a hydraulic circuit extending through the tower and the head, wherein the propeller system is connected to the head.
23. The method according to claim 22, wherein the propeller system is first removed from the head and is then replaced by a replacement propeller system.
24. The method according to claim 22, wherein the propeller system is lifted using a crane provided on or by the wind turbine, the crane being mounted on the head of the wind turbine.
25. The method for maintenance of a wind turbine farm, comprising a series of wind turbines, each wind turbine being the wind turbine according to claim 1, wherein the series of turbines comprises N turbines, each wind turbine comprising a propeller system, wherein at least one further propeller system is provided for exchange with any one of the propeller systems of the wind turbines, wherein for maintenance of a propeller system said propeller system is removed from the wind turbine and replaced by said further propeller system, wherein the propeller system removed is configured to be shipped to a maintenance location remote from the relevant wind turbine or wind turbine farm.
Description
[0025] In order to further elucidate the present invention, embodiments thereof shall be disclosed and discussed hereafter, with reference to the drawings. Therein shows schematically:
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[0048] In this description embodiments are shown and disclosed of the invention, by way of example only. These should by no means be interpreted or understood as limiting the scope of the present invention in any way. In this description the same or similar elements are indicated by the same or similar reference signs. In this description embodiments of the present invention shall be discussed with reference to sea water as fluid to be pumped. However, other fluids could also be used in the present invention.
[0049] In this description references to above and below, top and bottom and the like shall be considered, unless specifically stipulated differently, to a normal orientation of a wind turbine. This is for example shown in the drawings, especially
[0050] In the drawings by way of example a wind turbine is shown having a propeller with two or three blades, extending in opposite directions from a hub. It shall however be clear that any number of blades could be provided in a propeller of the present disclosure, as is known in the art.
[0051] In the drawings by way of example a wind turbine is shown in which water is drawn from a body of water, especially a lake or sea, and is pumped up through the tower by the hydraulic pump, and clown again to a generator. The fluid circuit including the hydraulic pump in the turbine may be an open or closed circuit, and may comprise other fluids, especially in a closed circuit. Alternatively the hydraulic pump may be connected to a generator in the head of the turbine. Alternatively the hydraulic pump may be used for pumping water, such as sea water, into a storage facility, such that said water can upon demand be used for powering a generator connected to said storage facility.
[0052]
[0053] In the wind turbine 1 a hydraulic pump 10 is provided, driven by the propeller 9, as for example shown in
[0054] In embodiments of the present invention the turbine 1 comprises a tower 2 and a head 6 mounted at an upper end 7 of said tower 2, rotational around a head axis X, wherein a propeller 9 is mounted to said head 6, rotatable around a propeller axis Y, wherein the hydraulic pump 10 is provided, driven by said propeller 9. The hydraulic pump 10 is provided substantially in the propeller 9. In embodiments the head 6 can comprise a nave 16, wherein the pump rotates with the propeller 9 at least partly around a part of said nave 16 extending from said head 6. The nave 16 can form or can be provided with a substantially stationary part 17 of the hydraulic pump 10, and wherein the propeller 9 comprises a rotational part 18 of the hydraulic pump 10. In such embodiments, as for example shown in
[0055] In embodiments the propeller 9 comprises a hub 21, as for example shown in
[0056] A fluid circuit 23 comprising the inlet line 11 and the outlet line 12 extends through the tower 2 and the head 6, which fluid circuit 23 comprises a part 24 extending inside a hub 21 of the propeller 9. Said part 24 comprises at least part of the hydraulic pump 10.
[0057] In embodiments of the present invention the hydraulic pump 10 is provided in the hub 21 of the propeller 9, such that the pump 10 can be removed from the head 6 together with the propeller 9. To this end for example the inlet line 11 and the outlet line 12 have to be disconnected from the circuit 23, and the connection between the first and second part of the nave 19, 20 has to be disconnected, after which the propeller 9 can be removed with the hub 21 and pump 10, including the second part 20 of the nave 16. In this respect a nave 16 has to be understood as a construction or assembly of elements such as first and second parts 19, 20, which are stationary relative to the head 6 during use, and which support the pump 10 as well as part of the circuit 23.
[0058] Additionally or alternatively the pump 10 can comprise a mounting part 26 which can be fixed removably in a stationary position relative to a nave 16 in or extending from the head 6, or which can be connected to the head 6, for mounting the pump. In such embodiment for removing the pump 10 the mounting part is released, as schematically shown in
[0059] At least one valve 27 may be provided in the circuitry 23 for closing the circuitry 23 when removing the pump 10.
[0060] By allowing the pump 10 to be placed in and/or removed from the turbine 1, especially to and/or from the head 6, with the propeller 9 or at least with the hub 21 makes it very easily possible to assemble and, especially, provide maintenance to the turbine 1, without a prolonged period of non operation or down time, and hence improve efficiency of the turbine. Moreover it makes for a very practical and inexpensive system and method for construction, maintenance and/or repair.
[0061] As is for example schematically shown in
[0062] In embodiments an end 34 of each piston 30 can be connected to the drive mechanism 32, such that the piston 30 can be pushed in the direction F.sub.in as well as pulled in the direction F.sub.out. Additionally or alternatively the fluid can be pressurized in the inlet line 11 slightly, such that it is forced into the cylinder through an inlet 11 pushing the piston 30 in the direction F.sub.out.
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[0064] In the central part 38 a series of cylinders 31 is provided, each having a central axis A.sub.c extending substantially radially outward from the axis P, from a bottom end 33 to an opposite open end 39 facing outward. The inlet and outlet 11, 12 extend through the central part 38, for example through a nave 16 into the head 6 and down the tower 2. In embodiments the cylinders 31 can be integral to the central part 38. In other embodiments the cylinders can be mounted into said central part 38, for example such that they can be retracted from the central part 38 into a central opening 40 or the nave 16, for example for maintenance from within the head 6.
[0065] The central part 38 can have a substantially circular outer periphery 41 in which the open ends 39 of the cylinders lie and/or open. Pistons 30 are fitted inside the cylinders, having an end 34 reaching out of the cylinder 31 and a head 42 facing the bottom end 33 of the cylinder. A flexible lining ring or ring assembly 43 is provided extending over the ends or foot portions 34 of the pistons. The lining ring 43 can for example be a metal or plastic ring or a ring made of a compound or sandwich of layers of metal and plastic. The ring may in a relaxed position have a substantially circular cross section with a diameter D.sub.liner which is slightly bigger than the outer diameter D.sub.central of the central part 38, measured on the periphery 41, such that when the said liner ring 43 is placed around the central part 38 there will be a space between the periphery 41 of the central part 38 and the inner side of the ring 43.
[0066] A drive ring 44 is provided, having a non circular and preferably substantially elliptical central opening 45, extending around the central part and liner ring 43, such that the liner ring 43 is forced into a similar non-circular and preferably substantially elliptical shape, as for example shown in
[0067] Rotation of the drive ring 44 around the flexible liner 43, which preferably is relatively resilient, will flex the liner ring 43 such that the long axis W.sub.43(max) and short axis W.sub.43(min) will rotate around the axis P, as is schematically shown in
[0068] The drive ring 44 may be directly connected to or from an integral part of the outer part 10B of the pump 10 and hence will rotate with the hub 21 and propeller 9 at the same rotational speed. In embodiments the liner ring or ring assembly 43 and/or rollers 46 may be omitted, such that for example the inner surface 48 of the drive ring 44 directly engage the pistons 30 or the rollers engage the pistons 30. The pistons preferably have a slightly outward bulging spherical outer end in order to smooth the contact between the piston 30 and the drive mechanism 32.
[0069] In embodiments the drive ring 44 may form an non-circular drive for the pistons and/or cylinders, directly or indirectly engaging the pistons 30, whereas a traction and/or friction drive may be provided, engaging the drive ring 44 and the hub 21 or a part engaging the hub 21, such as for example a further ring 51, forming a gearing 70 between the hub 21 or at least the propeller 9 and the drive ring 44. Such gearing 70 can have an advantage in that it may increase rotational speed of the drive ring 44 relative to the hub 21 and/or propeller 9. Moreover, additionally or alternatively such gearing may lower torque on or from the propeller 9. Such gearing 70 may have the advantage that a relatively slowly rotating propeller 9 may provide for a relatively fast moving drive ring 44 and hence fast moving pistons 30, increasing volume of liquid to be pumped and/or pressure of liquid pumped.
[0070] In the embodiments shown gearing 70 may be provided by the drive ring 44 having an outer, circular peripheral surface 50, whereas the outer part 10B comprises an outer ring 51 with a central opening 52 provided with an inner peripheral surface 53. Between the said peripheral surfaces 50, 53 a series of bearings or rollers 54 is provided, such that upon rotation of the propeller 9 and hub 21 the bearings or rollers 54 are rotated, forming a gearing between the outer ring 51 and the drive ring 44. The gearing may be defined inter alia by the diameters of outer surface of the drive ring 44 and the inner surface of the outer ring and the diameter of the bearings or rollers 54. In embodiments the bearings or rollers can have a constant diameter. As schematically shown in
[0071] In preferred embodiments the cylinders 30 are mounted having their open ends on a circle extending symmetrically around the said nave or axis P, such that the pistons 30 can all move between first end positions furthest from the nave or axis and second end positions closest to the nave or axis, the first end positions being at equal distances from the axis or nave and the second end positions being at equal distances from the nave or axis.
[0072] In embodiments the drive ring 44 can have a central opening 45 which has an undulating inner surface 48, for example as shown in
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[0074] In the embodiment shown each piston 30 is provided with a bearing assembly 61, comprising at least two bearings 60, such as side by side roller bearings 60 having parallel roll axis 62, carried in a bearing holder or boogie 63. The bearing holder 63 can be mounted on the foot portion 34 of the piston 30 trough a pivot axis 64, for example extending substantially parallel to the roll axis 62 of the bearings 60. This allows the position of the bearing holder 63 relative to the piston 30 to shift corresponding to the relevant portion of the surface 48 of the drive ring 44 engaging the bearings 60.
[0075] In the embodiments of
[0076] In
[0077] As is shown in
[0078] Instead of connecting the pipe line 15 directly to a generator 13, water pumped by the pump 15 can be stored in a storage system, for example a water tank or basin, or such reservoir, for driving a generator such as a turbine by again releasing the water from such reservoir. Alternatively the water pumped can be used for other purposes.
[0079] In embodiments a wind turbine, for example as discussed here before, can be provided with a crane 100 for lifting the propeller 9 or at least the hub 21 and/or the pump, preferably the hub 21 with the pump 10 or parts thereof. In the embodiment shown the crane 100 can be mounted on the head 6, especially on a top side 101 thereof. A crane 100 can for example have a foldable and/or telescoping arm 102, such that a free end 103 thereof can be moved between a first position, shown in
[0080] By providing a crane 100 the need for heavy equipment to be brought to and from the wind turbine, such as floating docks, cranes and the like is prevented.
[0081] For hoisting parts of a wind turbine with the crane 100 also other provisional can be connected to the line 104, such as but not limited to a hoisting basket, magnet or the like, for holding and/or containing said parts.
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[0083] In this embodiment the hub 21 is connected to the head 6 by a mounting part 26. The mounting part 26 can for example be angular, such that a first part 26A extends below the head 6 and a second part 26B extends in front of the head 6. Appropriate bearings are provided (not shown) for mounting the hub 21 and hence the propeller 9 to the mounting part 26, especially to the second part 26B such that the propeller in use can rotate around the propeller axis Y. The mounting part 26 can be connected for example by bolting it to the head, bolts indicated by reference signs 26C, preferably accessible from inside the head 6.
[0084] When the propeller 9 has to be removed, the hoisting line 104 can be connected to the hub 21 and/or the mounting part 26 in an appropriate manner, where after the mounting part 26 can be released from the head 6. Then the hub 21 with the mounting part and if appropriate the blades 22 can be lowered along the tower 2 onto for example a platform 105 at the foot of the tower 2. In off shore applications the platform 105 may for example be a motion compensating platform as known from Ampelmann, The Netherlands on a vessel 106. Then the hub 21 and/or mounting part 26 can be released from the hoisting line 104 and be brought to a different location, can be serviced, inspected or otherwise handled, for example cleaned. After the appropriate handling the hub with the mounting part 26 can again be hoisted up to the head, to be refitted. Alternatively the hub 21 and/or the mounting part 26 can be exchanged for another hub 21 and/or mounting part 26, the original part(s) being serviced or discarded.
[0085] In embodiments a series of wind turbines 1 can be provided, for example in a wind farm, for example N wind turbines, whereas at least one spare propeller 9 and/or hub 21 and/or pump 10 is provided, i.e. there are at least N+1 propellers, hubs and/or pumps available for said wind farm. This means that at any time a propeller, hub and/or pump can be removed from a wind turbine 1 and replaced by the spare one, which can then be serviced, for example on site. The down time for the wind turbines in such wind farm can thus be limited considerably.
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[0087] After briefing personnel and on-shore preparations (step 1) the vessel 106 will take personnel and equipment to the windfarm (step 2) and personnel will change into appropriate gear, such as personnel protection equipment (PPE) (step 3). Personnel 107 is dropped off at a wind turbine 1 according to the disclosure (step 4), preferably using the platform 105. In the wind turbine preferably a control system 108 is provided with which a maintenance mode can be switch on (step 5) by which at least the propeller 9 is brought into a safe position for maintenance. Then personnel 107 goes up to the head 6 by an elevator or stairs, preferably inside the tower 2 to access the head or nacelle (step 6) and allowing personnel access to the crane 100. The crane 100 can be activated, such that it is brought into an extended position for attaching the hoisting line 104 to the propeller 9, especially the hub 21 and/or a mounting part 26 (step 7). Then the propeller 9 and the mounting part 26, also referred to as DOT system 111, can be released from the head 6 (step 8) such that it can be lowered to the platform 105 using the crane 100 (step 9). A spare DOT system 111 can be placed on the platform 105 or at least be hoisted up to the head using the crane 100 (step 10) to be attached to the head 6 (step 11). Then the hoisting line 104 can be released from the DOT system 111 and the crane 100 be brought back in the storage position, after which the personnel 107 can go back down through the tower 2 (step 12) and the maintenance mode can be deactivated (step 13) such that the wind turbine can be operative again. The personnel can be picked up by the vessel 106, preferably using the platform 105 again (step 14). The DOT system 111 removed can for example be serviced on board of the vessel 106 (step 15) whereas the vessel 106 can sail to the next wind turbine 1 in the wind farm, using the DOT system 111 on board as a spare for said next wind turbine, starting a next cycle at step 4 as discussed before, preferably repeating the process until all wind turbines in the wind farm have been serviced.
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[0092] In
[0093] As can be seen in
[0094] The invention is by no means limited to the embodiments specifically disclosed and discussed here above. Many variations thereof are possible, including but not limited to combinations of parts of embodiments shown and described. For example the cylinders and pistons 31, 30 can be provided in the chive ring, facing radially inward, wherein the central portion is used to drive the pistons in a radial direction, relative to the pump axis. In such embodiment it may be preferable to connect the central portion 38 to the hub 21 of the propeller 9 and mount the drive ring stationary on a mounting part 26. Also combinations are possible of cylinders in the drive ring and cylinders in the central portion. A mounting part may be a separate part or may be a part of the head 6. As discussed different types of pumps 10 can be used, such as but not limited to centrifugal pumps, a pump using a planetary traction or friction drive or an axial pump as known in the art. Such pump is mounted in the propeller 9, especially in a hub 21 thereof, such that the pump can be removed from the head 6 together with the propeller 9. In embodiments a crane can be provided in a different position, for example in the head 6 or on the tower 2.
[0095] These and many other amendments are considered to have been disclosed herein also, including but not limited to all combinations of elements of the invention as disclosed, within the scope of the invention as presented.