Power generation apparatus with rotor and stator rolling along a guide means
10027202 ยท 2018-07-17
Inventors
Cpc classification
H02K7/1876
ELECTRICITY
International classification
H02K7/18
ELECTRICITY
Abstract
A power generation apparatus comprising at least one magnet, the magnet or magnets being arranged to form a substantially cylindrical rotor about an axle; at least one electrically-conductive pickup arranged, in use, such that rotation of the magnet or magnets about the axle induces an electrical current in the pickup; a guide or drive means along which, in use, the axle rolls to rotate the magnet; and means for moving the guide means to cause the axle to roll along it; and wherein the at least one electrically-conductive pickup is fixed relative to a stator, which stator at least partially surrounds the rotor and is rotatably connected to the axle such that the rotor and stator move in unison relative to the guide means.
Claims
1. A power generation apparatus comprising: at least one magnet, the at least one magnet being arranged to form a substantially cylindrical rotor about an axle; at least one electrically-conductive pickup arranged such that rotation of the at least one magnet about the axle induces an electrical current in the pickup; a guide means along which the axle rolls, thereby rotating the magnet; and means for moving the guide means, to cause the axle to roll along the guide means; and wherein the at least one electrically-conductive pickup is fixed relative to a stator, wherein the stator at least partially surrounds the rotor and is rotatably connected to the axle such that the rotor and stator move in unison relative to the guide means.
2. The power generation apparatus of claim 1 comprising a plurality of rigidly interconnected power generation apparatuses according to claim 1, the plurality of rigidly interconnected power generation apparatuses are rigidly interconnected by the stator, the stator comprising a plurality of electrically-conductive pickups arranged around the plurality of rotors.
3. The power generation apparatus of claim 2, wherein the plurality of axles are interconnected to form a dolly or train that rolls along the guide means.
4. The power generation apparatus of claim 1, wherein the guide means comprises an endless loop.
5. The power generation apparatus of claim 1, wherein the magnet or magnets comprise any one or more of the group comprising: permanent magnets; a magnetic metallic magnet; a composite magnet; a rare-earth magnet; and a nanostructured magnet.
6. The power generation apparatus of claim 1, wherein the at least one electrically conductive pickup comprises a coil.
7. The power generation apparatus of claim 1, wherein the stator is rotatably connected to the axle and wherein the stator is driven to rotate about the axle in an opposite direction to the rotor by a reversing gear means interposed between the axle and the stator.
8. The power generation apparatus of claim 7, wherein the reversing gear means comprises a planetary gearbox comprising a sun gear affixed to the axle, an annular gear affixed to the stator and a set of planet gears interposed between the sun gear and the annular gear.
9. The power generation apparatus of claim 8, wherein the planet gears comprise freewheeling planet gears and wherein the planet gears are operatively connected to a planet carrier ring, which planet carrier ring is operatively connected to the guide means by a connector such that it maintains a substantially constant orientation relative thereto.
10. The power generation apparatus of claim 1, further comprising an elongate and flexible fly lead arrangement that connects at one end to the stator, and at the other end to a power take-off means.
11. The power generation apparatus of claim 1, wherein the at least one electrically-conductive pickup is operatively connected to an output power conditioning circuit.
12. The power generation apparatus of claim 1, wherein the guide means and axle are magnetically attracted to one another.
13. The power generation apparatus of claim 1, wherein the guide means comprises a track comprising a pair of rails along which the axle rolls, which rails are substantially equally spaced along the entire length of the track.
14. The power generation apparatus of claim 13, wherein the guide means comprises substantially straight portions interconnected by banked curved portions.
15. The power generation apparatus as claimed in claim 1, wherein the means for moving the guide means comprises a support structure to which the guide means is affixed, the support structure being arranged to pivot about a fulcrum, and means for manipulating the support structure to cause it to pivot about the fulcrum.
16. The power generation apparatus of claim 15, wherein the fulcrum comprises a single- or multi-axis fulcrum.
17. The power generation apparatus of claim 1, wherein the means for moving the guide means comprises a floating support structure to which the guide means is affixed.
18. The power generation apparatus of claim 1, wherein the guide means comprises a drive ring forming part of a turbine assembly, and wherein the drive ring is directly driven by the turbine assembly and wherein the axle or axles are arranged to engage and roll along the drive ring as the turbine assembly rotates.
19. The power generation apparatus of claim 1, wherein the guide means comprises a shaft forming part of a turbine assembly, and wherein the guide means comprises a drive ring directly driven by the turbine assembly, and wherein the axle or axles are arranged to engage and roll along the drive ring as the turbine assembly rotates.
20. The power generation apparatus of claim 1, further comprising a support structure and means for manipulating the support structure which comprises any one or more of the group comprising: a crank; a lever; a pneumatic piston; and a hydraulic piston, and wherein the means for manipulating the support structure is actuated by a renewable energy source.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Preferred embodiments of the invention shall now be described, by way of example only, with reference to the accompanying drawings in which:
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DETAILED DESCRIPTION OF CERTAIN INVENTIVE EMBODIMENTS
(13) In
(14) A pair of rotors 30 is mounted on axles 32 that are magnetically attracted to the track 12. As can be seen in
(15) Located above and below the track is a series of coils 40 arranged in pairs. The rotors 30 each comprise a set of permanent, rare earth magnets, which create a rotating and laterally-moving magnetic field (not shown) as they roll 34, 36 along the track 12. The moving magnetic field thus induces an electrical current in the coil pairs 40, which are connected to a power conditioning circuit which converts the induced current into a useful output current.
(16) It will be appreciated, from
(17) Because the rotors do not need to climb or reverse direction, their rotation inertia can be preserved as they advance around the banked sections 18 of the track 12. Moreover, the shape of the banked sections 18, that is to say their radius of curvature, is selected to allow the linear inertia of the rollers to be used to slingshot them around the bends 18, such that they never come to rest, in use. The illustrated exemplary configuration has been found to be considerably more efficient than similar systems know previously.
(18)
(19) In
(20) In both of the examples illustrated herein, the magnitude of the mechanical input 164 to cause the tilting of the track 12, 112 can be varied to effect different angles of inclination of the track 12, 112: a steeper incline resulting in a faster lateral 34, 134 and rotational 36, 136 movement of the rotors 30, 130, which in turn increases the electrical power generation, or vice-versa. Obviously, the frequency of the mechanical input will need to be adjusted to match the speed of the rotors 30, 130 to ensure that they are always located on a sloping section of the track 12, 120.
(21) It will be appreciated that the invention can be used in conjunction with a mechanical input that can be a reciprocating mechanical input (e.g. as shown in
(22) Because the invention can be configured to operate using a relatively low-frequency reciprocating input, it can, in certain embodiments, be directly coupled to a renewable energy source, such as a wave-actuated float, or a wind turbine, without (necessarily) having a gearbox or other mechanism interposed between the renewable energy source and the system 10, 100. However, an intermediate mechanism may be usefully employed, however, where the frequency and amplitude of the mechanical input varies, in which case the angle and frequency of the inclination of the track 12, 112 will need to be matched with that of the input to ensure correct operation (i.e. synchronization) of the system 10, 100.
(23) It will be appreciated from the foregoing that the movement of the masses of the rotors 30 may cause imbalance in the system.
(24) In
(25) A further modification of this idea is shown in
(26) Referring now to
(27) The inductive coupling of the rotor 206 and stator 210 will tend to urge the stator to follow, that is to say, rotate with, the rotor 206. This effect can be counteracted by the provision of a weight (not shown) on the stator 210, which biases it into a particular orientation under the effect of gravity. However, such a configuration increases the overall weight of the moving mass of the system 200, and is less preferable to the stayed system shown in
(28) In
(29) In
(30) By the appropriate selection of the number of teeth on the sun gear 242, planet gears 244 and ring gear 248, the relationship between the rotation of the rotor 206 (sun gear 242) and the stator 210 (ring gear 248) can be selected at will. For example, as shown in
(31) It is contemplated that the rotor-stator arrangement illustrated in, and described with reference to,
(32)
(33) The use of a dolly-type generator 300, such as that shown in
(34) The embodiment of the invention shown in
(35) The generator 518 comprises a stator (not visible) which is rigidly connected to the end of the beam 516, and a rotor (not visible). The stator comprises a set of coils, and the rotor comprises a set of permanent magnets arranged to rotate about an axle 524 which rolls along the track 512. Thus, as the generator 500 tips 520, the beam 516 swings 522 and the axle 524 rotates 526 to rotate the rotor and thus generate electrical power. The advantages of this embodiment of the invention are readily apparent, and similar to those described above in relation to the embodiment illustrated in
(36) Whilst the simplified embodiment shown in
(37) The invention is not restricted to the details of the foregoing embodiments, which are merely exemplary of the invention. For example: the shape and configuration of the track, rotors and coils may be changed; the means for converting the mechanical input into inclination of the track; the output/conditioning circuit; and the types of mechanical input, can all be varied without departing from the scope of the invention.
(38) The following statements are not the claims, but relate to various aspects or embodiments of the invention:
(39) Statement 1: A power generation apparatus comprising: at least one magnet mounted on an axle; at least one electrically-conductive pickup arranged, in use, such that rotation of the magnet or magnets about the axle induces an electrical current in the pickup; a guide means along which, in use, the axle rolls to rotate the magnet; means for inclining the guide means to cause the axle to roll along it; wherein the guide means comprises an endless loop.
(40) Statement 2: The power generation apparatus of statement 1, comprising a plurality of magnets mounted on the axle.
(41) Statement 3: The power generation apparatus of statement 1 or 2, wherein the magnet or magnets comprise permanent magnets.
(42) Statement 4: The power generation apparatus of any preceding statement, wherein the magnet or magnets comprise any one or more of the group comprising: a magnetic metallic magnet; a composite magnet; a rare-earth magnet; and a nanostructured magnet.
(43) Statement 5: The power generation apparatus of any preceding statement, wherein the magnet or magnets are arranged to form a substantially cylindrical rotor about the axle.
(44) Statement 6: The power generation apparatus of any preceding statement, comprising a plurality of magnets mounted on a respective plurality of axles.
(45) Statement 7: The power generation apparatus of statement 6, wherein the plurality of axles are interconnected to form a dolly or train that rolls, in use, along the guide means.
(46) Statement 8: The power generation apparatus of any preceding statement, wherein the at least one electrically-conductive pickup comprises a coil.
(47) Statement 9: The power generation apparatus of any preceding statement, comprising a plurality of pickups arranged in a row along the path travelled by the magnet or magnets.
(48) Statement 10: The power generation apparatus of any preceding statement, wherein each pickup comprises a pair of coils located on opposite sides of the locus of the axle.
(49) Statement 11: The power generation apparatus of any of statements 1 to 8, wherein the magnet or magnets are mounted on a rotor that rotates with the axle, and the at least one electrically-conductive pickup is fixed relative to a stator, which stator at least partially surrounds the rotor and is rotatably connected to the axle such that the rotor and stator move in unison along the guide means.
(50) Statement 12: The power generation apparatus of statement 11, wherein the stator is operatively connected to the guide means such that it maintains a substantially constant orientation relative thereto.
(51) Statement 13: The power generation apparatus of statement 12, further comprising a connector interconnecting the stator and the guide means.
(52) Statement 14: The power generation apparatus of statement 11, wherein the stator is rotatably connected to the axle.
(53) Statement 15: The power generation apparatus of statement 14, wherein the stator rotates about the axle in an opposite direction to the rotor.
(54) Statement 16: The power generation apparatus of statement 15, comprising a reversing gear means interposed between the axle and the stator.
(55) Statement 17: The power generation apparatus of statement 16, wherein the reversing gear means comprises a planetary gearbox comprising a sun gear affixed to the axle, an annular gear affixed to the stator and a set of planet gears interposed between the sun gear and the annular gear.
(56) Statement 18: The power generation apparatus of statement 17, wherein the planet gears comprise freewheeling planet gears.
(57) Statement 19: The power generation apparatus of statement 17, wherein the planet gears are operatively connected to a planet carrier ring, which planet carrier ring is operatively connected to the guide means such that it maintains a substantially constant orientation relative thereto.
(58) Statement 20: The power generation apparatus of statement 19, further comprising a connector interconnecting the planet carrier ring and the guide means.
(59) Statement 21: The power generation apparatus of any of statements 11 to 20, further comprising an elongate and flexible fly lead arrangement that connects at one end to the stator, and at the other end to a power take-off means.
(60) Statement 22: The power generation apparatus of any preceding statement, wherein the pickup or pickups are operatively connected to an output power conditioning circuit.
(61) Statement 23: The power generation apparatus of any preceding statement, wherein the guide means and axle or axles are magnetically attracted to one another.
(62) Statement 24: The power generation apparatus of any preceding statement, wherein the guide means comprises a track comprising a pair of rails along which the axle or axles roll, which rails are substantially equispaced along the entire length of the track.
(63) Statement 25: The power generation apparatus of any preceding statement, wherein the guide means comprises substantially straight portions interconnected by banked curved portions.
(64) Statement 26: The power generation apparatus of statement 25, comprising two substantially straight, parallel track portions interconnected by a two banked curved portions.
(65) Statement 27: The power generation apparatus of any preceding statement, wherein the means for inclining the guide means comprises a support structure to which the guide means is affixed, the support structure being arranged to pivot about a fulcrum, and means for manipulating the support structure to cause it to pivot about the fulcrum.
(66) Statement 28: The power generation apparatus of statement 27, wherein the fulcrum comprises a single-axis fulcrum.
(67) Statement 29: The power generation apparatus of statement 27, wherein the fulcrum comprises a multi-axis fulcrum.
(68) Statement 30: The power generation apparatus of any of statements 27 to 29, wherein the means for manipulating the support structure comprises any one or more of the group comprising: a crank; a lever; a pneumatic piston; and a hydraulic piston.
(69) Statement 31: The power generation apparatus of any preceding statement, wherein the means for manipulating the support structure is actuated by a renewable energy source.
(70) Statement 32: A power generation system comprising a plurality of interconnected power generation apparatuses according to any preceding statement.
(71) Statement 33: The power generation apparatus of statement 32, comprising a plurality of rigidly interconnected guide means.
(72) Statement 34: The power generation apparatus of statement 32, comprising a pair of rigidly interconnected guide means arranged side-by-side.
(73) Statement 35: The power generation apparatus of statement 32, comprising a pair of rigidly interconnected guide means arranged one above the other.
(74) Statement 36: The power generation apparatus of any statement 32 or statement 33, comprising a first pair of rigidly interconnected guide means arranged side-by-side and a second pair of rigidly interconnected guide means arranged side-by-side located above the said first pair.