A DIFFUSER, USER OF A DIFFUSER AND A WIND TURBINE COMPRISING A DIFFUSER
20170248114 · 2017-08-31
Inventors
Cpc classification
F03D1/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/13
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D1/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/133
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/12
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
The invention provides for a diffuser (1) for a wind turbine (2). The diffuser (1) comprises an inner diffuser element (8) including a number of vanes (4, 5, 6), wherein at least a first vane (4) and a second vane (5) is arranged in continuation of each other. At least the first vane (4) and the second vane (5) are angled in relation to each other to form a curved cross sectional diffuser profile (7) and a free space (10) is arranged between the neighbouring first vane (4) and second vane (5) to enable air flow between the first vane (4) and second vane (5). The diffuser (1) further comprises at least one further diffuser element (9), wherein at least a first further diffuser element (9) of the at least one further diffuser element (9) is arranged in a further element distance (ED) from the inner diffuser element (8) on an outside (13) of the inner diffuser element (8) in radial direction, so that the further diffuser element (9) substantially encircles the inner diffuser element (8) and so that an open flow-channel (24) is established all the way between the inner diffuser element (8) and the at least one further diffuser element (9), wherein the flow-channel (24) enables air flow all the way through the open flow-channel (24) and out into a wake (25) behind the diffuser (1).
Use of diffuser (1) and a wind turbine (2) comprising a diffuser (1) is also disclosed.
Claims
1. A diffuser for a wind turbine, said diffuser comprising an inner diffuser element including a number of vanes, wherein at least a first vane and a second vane is arranged in continuation of each other, wherein at least said first vane and said second vane are angled in relation to each other to form a curved cross sectional diffuser profile and wherein a free space is arranged between said neighbouring first vane and second vane to enable air flow between said first vane and second vane, and at least one further diffuser element, wherein at least a first further diffuser element of said at least one further diffuser element is arranged in a further element distance (ED) from said inner diffuser element on an outside of said inner diffuser element in radial direction so that said further diffuser element substantially encircles said inner diffuser element and so that an open flow-channel is established all the way between said inner diffuser element and said at least one further diffuser element, wherein said flow-channel enables air flow all the way through said open flow-channel and out into a wake behind said diffuser.
2. A diffuser according to claim 1, wherein said further element distance (ED) substantially decreases in the wind direction as seen during normal use.
3. A diffuser according to claim 2, wherein said further element distance (ED) decreases to a maximum of 30%, preferably 50% and most preferred 80% of the largest further element distance (ED).
4. A diffuser (1) according to claim 1, wherein a minimum size of said further element distance (ED) is between 3% and 90%, preferably between 4% and 60% and most preferred between 5% and 30% of the inner radius (IR) of said diffuser.
5. A diffuser according to claim 1, wherein said further element distance (ED) on average is between 0.1 and 20, preferably between 0.2 and 10 and most preferred between 0.5 and 5 times the average chord length (CL) of said vanes of said inner diffuser element.
6. A diffuser according to claim 1, wherein at least one of said at least one further diffuser element also comprises a number of vanes, wherein at least a first vane and a second vane is arranged in continuation of each other, wherein at least said first vane and said second vane are angled in relation to each other to form a curved cross sectional diffuser profile and wherein a free space is arranged between said neighbouring first vane and second vane to enable air flow between said first vane and second vane.
7. A diffuser according to claim 1, wherein said flow-channel is arranged so that a main part of the air entering said flow-channel at a front end of said flow-channel is leaving said flow-channel at a rear end of said flow-channel directly out into said wake behind said diffuser.
8. A diffuser according to claim 1, wherein said inner diffuser element is formed as a body of revolution around a centre axis of said diffuser.
9. A diffuser according to claim 1, wherein said at least one further diffuser element is formed as a body of revolution around a centre axis of said diffuser.
10. A diffuser according to claim 9, wherein at least one of said at least one further diffuser element is a diffuser object formed as a body of revolution around the centre axis of said diffuser, wherein the largest cross sectional width (WO) of said diffuser object is between 0.1 and 20, preferably between 0.2 and 8 and most preferred between 0.4 and 4 times the largest cross sectional width (WE) of said inner diffuser element.
11. A diffuser according to claim 10, wherein said diffuser object is formed as at least a part of a torus.
12. A diffuser according to claim 1, wherein said inner diffuser element and/or said at least one further diffuser element comprises at least three vanes arranged in continuation of each other and angled in relation to each other.
13. A diffuser according to claim 1, wherein a cross sectional shape of said first vane and said second vane are formed as at least a part of an airfoil and wherein a leading edge of said airfoil is arranged to substantially face towards the general wind direction and a trailing edge of said airfoil is arranged to substantially face out of said general direction of the wind during normal use of said diffuser on a wind turbine.
14. A diffuser according to claim 13, wherein a trailing edge of said first vane is arranged to substantially overlap a leading edge of said second vane.
15. A diffuser according to claim 1, wherein said first vane is arranged in a vane angle (VA) between 0.5° and 85°, preferably between 1° and 50° and most preferred between 2° and 350 in relation to said second vane.
16. A diffuser according to claim 1, wherein said first vane and said second vane are formed by plate means provided with a cross sectional shape of at least a part of a suction side of an airfoil.
17. A diffuser according to claim 1, wherein said diffuser comprises tilting means for tilting at least one vane or at least part of one vane between 10° and 170°, preferably between 30° and 140°.
18. A diffuser according to claim 1, wherein a minimum width (MW) of said free space between said neighbouring vanes is between 0.1% and 6%, preferably between 0.3% and 4.5% and most preferred between 0.7% and 3% of the inner radius (IR) of said diffuser.
19. Use of a diffuser according to claim 1 for increasing the air flow through the rotor plane of a wind turbine.
20. A wind turbine comprising a diffuser according to claim 1.
21. A wind turbine according to claim 20, wherein at least one vane of said inner diffuser element and/or at least one vane of said at least one further diffuser element is located entirely in front of a rotor plane of said wind turbine.
Description
FIGURES
[0059] The invention will be described in the following with reference to the figures in which
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DETAILED DESCRIPTION OF THE INVENTION
[0072]
[0073] In another embodiment the wind turbine rotor 19 could comprise another number of blades 22 such as one, two, four or more.
[0074]
[0075] The diffuser 1 disclosed in
[0076] It should be noted that the wind turbines disclosed in all the figures (except
[0077]
[0078] In this embodiment both the inner diffuser element 8 and the further diffuser element 9 comprise a first vane 4 followed by a second vane 5 which in turn is followed by six further vanes 6. However in another embodiment any of the diffuser elements 8, 9 could comprise another number of vanes 4, 5, 6 such as two, three, four, five, six, ten, twelve, fifteen or even more e.g. dependent on the specific wind turbine type, the number of parallel arranged diffuser elements 8, 9, the design of the individual vanes 4, 5, 6 or other.
[0079] In this embodiment a flow-channel 24 is arranged between the inner diffuser element 8 and the further diffuser element 9 so that most of the air entering the flow-channel 24 at the front end 26 of the flow-channel 24 is leaving the flow-channel 24 again at a rear end 27 of the flow-channel 24 and is therefore exhausted directly out into the wake 25 behind the diffuser 1. I.e. in this embodiment only a minor part of the air entering the flow-channel 24 at the front end 26 of the flow-channel 24 leaves the flow-channel 24 through the free space 10 between the vanes 4, 5, 6 of the inner diffuser element 8.
[0080] In this embodiment all the vanes 4, 5, 6 are arranged in continuation of each other, and all the vanes 4, 5, 6 are angled in relation to a preceding vane 4, 5, 6 so that all the vanes 4, 5, 6 together form a curved diffuser profile 7 as seen in the cross sectional view on e.g.
[0081] In this embodiment a free space 10 is arranged between neighbouring vanes 4, 5, 6 to enable air flow between the vanes 4, 5, 6. In this embodiment the minimum width MW of the free space 10 between all the vanes 4, 5, 6 of a given diffuser element 8, 9 are substantially uniformly so that the minimum width MW of the free space 10 between the vanes 4, 5, 6 is of substantially uniform size throughout the length of the diffuser element 8, 9. In this embodiment the free space 10 between neighbouring vanes 4, 5, 6 is approximately equal to half the height of the vanes 4, 5, 6 but in another embodiment the gap 10 between the vanes 4, 5, 6 could be smaller or bigger e.g. dependent on the specific vane design, the specific use or other.
[0082] In this embodiment the vane angle VA between two neighbouring vanes 4, 5, 6 throughout the entire length of the diffuser elements 8, 9 is approximately 16° but in another embodiment this angle VA could be smaller such as around 14°, 10°, 7° or even smaller or the angle VA could be bigger such as 20°, 25°, 30° or even bigger e.g. dependent on the specific vane design, the specific use or other. And in another embodiment the angle VA between neighbouring vanes 4, 5, 6 could vary throughout the length of the diffuser element 8, 9.
[0083] Except for the first vane 4 all the other vanes 5, 6 of a given diffuser element 8, 9 is in this embodiment substantially identical in shape and size. However, in another embodiment the vanes 4, 5, 6 of a given diffuser element 8, 9 could be formed with drastically or slightly different size and/or shape throughout the given diffuser element 8, 9 e.g. dependent on specific use, location of the vanes 4, 5, 6 or other.
[0084] Also in this embodiment all the vanes 5, 6 of the inner diffuser element 8 are bigger than all the vanes 4, 5, 6 of the further diffuser element 9. However, in another embodiment all the vanes 4, 5, 6 of all the diffuser elements 8, 9 could be substantially identical in shape and size or all or some of the vanes 4, 5, 6 of some or all the diffuser elements 8, 9 could vary in shape and/or size.
[0085] In this embodiment all the vanes 4, 5, 6 are substantially formed as airfoils with a leading edge 11 arranged to substantially face into the general direction of the wind and a trailing edge 12 arranged to substantially face in the opposite direction. However, in another embodiment some or all the vanes 4, 5, 6 could be arranged differently e.g. by making the leading edge 11 of some or all the vanes 4, 5, 6 face directly at the rotor 19 or even away from the general direction of the wind.
[0086] Forming the vanes 4, 5, 6 as airfoils entails that each vane (arranged with the leading edge facing into the general direction of normal air flow) comprises a suction surface 17 (a.k.a. in general the surface facing the rotor 19) which is generally associated with higher air velocity and lower static pressure and a pressure surface 18 (a.k.a. in general the surface facing away from the rotor) which has a comparatively higher static pressure than the suction surface 17.
[0087] In this embodiment the trailing edge 12 of the first vane 4 is arranged to overlap the leading edge 11 of the second vane 5, the trailing edge 12 of the second vane 5 is arranged to overlap the leading edge 11 of the further vane 6 and so on. However, in another embodiment some or all of the leading edges 11 could be arranged to overlap the trailing edges 12.
[0088] Also, in this embodiment the trailing edge 12 of a preceding vane 4, 5, 6 is arranged to overlap the suction surface side 17 of a succeeding vane 4, 5, 6 so that an air flow from the pressure surface side 18 of a preceding vane 4, 5, 6 easily can be channelled to the suction surface side 17 of a succeeding vane 4, 5, 6 through the free space 10 substantially without creating any kind of turbulence—thus, the boundary layer of the vanes 4, 5, 6 is renewed for each vane 4, 5, 6 thus enabling that the curved cross sectional diffuser profile 7 can be formed with a sharper curvature hereby enabling that a diffuser 1 of a given size may direct more air further away from the area behind the rotor 19.
[0089] However, in another embodiment the trailing edge 12 of some or all preceding vanes 4, 5, 6 could be arranged to overlap the pressure surface side 18 of a succeeding vane 4, 5, 6.
[0090] In this embodiment the chord length CL of a vane 5, 6—except for the first vane 4—is approximately 5.5 times bigger than the maximum height MH of that vane 5, 6 but in another embodiment the chord length CL of a vane 4, 5, 6 could be bigger in relation to the maximum height MH of that vane 4, 5, 6 such as 6.5, 8, 10 times bigger or even bigger or the chord length CL of a vane 4, 5, 6 could be smaller in relation to the maximum height MH of that vane 4, 5, 6 such as only 5, 4, 2 times bigger or even smaller.
[0091] It should be noted that in this context the term “rotational symmetric” or “rotational symmetry” should be understood as an object that looks the same after a certain amount of rotation. I.e. in this embodiment the diffuser 1 could be formed a large many-sided polygon substantially having the shape of a circle or the diffuser could be fully axi-symmetric i.e. it could be circular and formed by rotating a shape around the centre axis. The object may have more than one rotational symmetry; for instance, if reflections or turning it over are not counted.
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[0093] In this embodiment the diffuser 1 comprises four series of vanes 4, 5, 6 forming four curved cross sectional diffuser profiles 7 arranged coaxial in radial succession of each other, but in another embodiment the diffuser 1 could comprise fewer layers of diffuser elements 8, 9 such as one, two or three or more layers of diffuser elements 8, 9 such as five or six e.g. dependent on the specific use, the specific vane design, the specific profile design or other.
[0094] The vanes 4, 5, 6 disclosed in
[0095] In this embodiment the vanes 4, 5 are formed by a plate substantially bend into the shape of the suction side 17 of an airfoil. The chord length CL of the vanes 4, 5 formed by a plate-like material is in this case approximately is 70 times bigger than the thickness of the plate but this ratio could be bigger or smaller e.g. dependent on the specific plate material, the production method, the specific use or other.
[0096] The embodiments disclosed in
[0097] In this embodiment and in most embodiments disclosed in the other figures the further element distance ED—i.e. the distance from the outside of a diffuser element 8, 9 to the inside of an encircling diffuser element 8, 9—substantially decreases in the wind direction as seen during normal use. However, in another embodiment the further element distance ED could be substantially constant between two succeeding diffuser elements 8, 9 or the further element distance ED could vary or even increases in the direction of the wind as seen during normal use
[0098] In this embodiment the average further element distance ED between the inner diffuser element 8 and the succeeding further diffuser element 9 is approximately the average chord length CL of the vanes 4, 5, 6 of the inner diffuser element 8, the average further element distance ED between the further diffuser element 9 and the next further diffuser element 9 are also spaced apart by approximately the chord length (CL) of the vanes 4, 5, 6 of the further diffuser element 9 and so on. However, in another embodiment two or more of the diffuser elements 8, 9 could be arranged closer together e.g. by 0.2, 0.4 or 0.7 times the average chord length CL of the vanes 4, 5, 6 of the inner diffuser element 8, two or more of the diffuser elements 8, 9 could be arranged further apart e.g. by 2, 3 or 4 times the average chord length CL of the vanes 4, 5, 6 of the inner diffuser element 8 or different diffuser elements 8, 9 could be arranged at different distances to neighbouring diffuser elements 8, 9.
[0099] It should be noticed that by the term “chord” is to be understood a straight line connecting the leading edge 11 and trailing edge 12 of the airfoil i.e. the distance between the front and back of the vane 4, 5, 6, measured in the direction of the normal airflow.
[0100] For each layer of diffuser elements 8, 9 to be efficient they have to be spaced apart by a substantial distance. Thus, if the diffuser 1 comprises too many layers of diffuser profiles 8, 9—such as more than five layers, more than seven layers or even more layers—the outer layers 9 will have to be arranged so far from the rotor 19 that they become less efficient in relation to the area they cover.
[0101]
[0102] In this embodiment the diffuser 1 comprises two diffuser parts 24, 25 i.e. a front diffuser part substantially encircling the rotor plane 19 and a diffuser tail 25 arranged behind the rotor plane 19 as seen in the wind direction. As indicated by the air flow lines the diffuser tail 25 will assist in directing more air away from the area behind the rotor 19 and thus create a larger pressure difference over the rotor plane 19.
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[0104] In the embodiments disclosed in
[0105] In the embodiments disclosed in
[0106] In
[0107] In this embodiment the diffuser object 14 is made from sheet aluminium but it is evident to a person skilled in the art that the diffuser object 14 can be made in numerous ways and from many different materials. Although, in most cases it would be essential to ensure that the weight of the diffuser object 14 would be kept at a minimum to reduce strain on e.g. the wind turbine tower 20.
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[0109] In this embodiment the second vane 5 of the inner diffuser element 8 is provided with tilting means (not shown) enabling that this vane 5 may be tilted from a normal position—e.g. as disclosed in
[0110] In this embodiment the diffuser comprises passive tilting means in that the aerodynamic brake is passively activated by the suction pressure created on the vane 5 surface at high wind speed, and will be passively retracted to its original position by spring forces, that will pull back the vane 5 once the high wind speed has decreased. However, in another embodiment the tilting means could comprise active means such as actuators, motors or other.
[0111] In this embodiment the tilting means is arranged to tilt at vane 5 approximately 90° but in another embodiment the vane 5 could be tilted more such as 110°, 150° or more or the vane 5 could be tilted less such as 80°, 70° or less.
[0112] In this embodiment the diffuser 1 only comprises tilting means, but in another embodiment the tilting means could be supplemented by means for translational movement of the vane 4, 5, 6 also.
[0113] In this embodiment only the second vane 5 of the inner diffuser element 8 is turned but in another embodiment other vanes 4, 6 of the inner diffuser element 8 and/or the further diffuser elements 9 could be turned also or instead.
[0114] The invention has been exemplified above with reference to specific examples of designs and embodiments of diffusers 1, wind turbines 2, vanes 4, 5, 6, diffuser elements 8, 9 etc. However, it should be understood that the invention is not limited to the particular examples described above but may be designed and altered in a multitude of varieties within the scope of the invention as specified in the claims.
LIST
[0115] 1. Diffuser [0116] 2. Wind turbine [0117] 3. Diffuser tail [0118] 4. First vane [0119] 5. Second vane [0120] 6. Further vane [0121] 7. Curved cross sectional diffuser profile [0122] 8. Inner diffuser element [0123] 9. Further diffuser element [0124] 10. Free space [0125] 11. Leading edge [0126] 12. Trailing edge [0127] 13. Outside of the inner diffuser element [0128] 14. Diffuser object [0129] 15. Centre axis of diffuser [0130] 16. Front diffuser part [0131] 17. Suction surface [0132] 18. Pressure surface [0133] 19. Rotor plane [0134] 20. Wind turbine tower [0135] 21. Nacelle [0136] 22. Blade [0137] 23. Hub [0138] 24. Flow-channel [0139] 25. Wake [0140] 26. Front end of flow-channel [0141] 27. Rear end of flow-channel [0142] ED. Further element distance [0143] VA. Vane angle [0144] CL. Chord length [0145] WO. Largest cross sectional width of diffuser object [0146] WE. Largest cross sectional width of inner diffuser element [0147] IR. Inner radius of diffuser [0148] MW. Minimum width of free space between vanes