Power generator
12092065 ยท 2024-09-17
Assignee
Inventors
- Vincenzo MICHETTI (San Donato Milanese, IT)
- Giuliana MATTIAZZO (Collegno, IT)
- Giovanni Bracco (Turin, IT)
- Fabio CARAPELLESE (Andria, IT)
- Sergej Antonello Sirigu (Osini, IT)
- Mauro BONFANTI (Montodine, IT)
Cpc classification
Y02E10/30
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
F03D5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/93
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B13/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2250/44
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2250/313
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A wave power generator includes a box-shaped body having an inner chamber containing a first gyroscopic device that includes a first frame hinged to the body around a first axis, a first gyroscope being carried by the first frame in a rotatable manner around a second axis perpendicular to the first axis, a first actuator being carried by the first frame to rotate the first gyroscope around the second axis, and a first converter device that converts rotational mechanical energy into electric energy that is mechanically coupled to the first frame. The first converter device is connected to a stabilizing device. A second gyroscopic device includes a second frame hinged to the body around a third axis transversal to the first axis.
Claims
1. A wave power generator configured to convert waves propagating in a liquid into electric power, the wave power generator comprising: a body that is box-shaped having an inner chamber; a first gyroscopic device contained in the body, the first gyroscopic device comprising a first frame hinged to the body around a first axis through respective first protrusions coaxial to the first axis, a first gyroscope carried by the first frame in a rotatable manner around a second axis perpendicular to the first axis, a first actuator carried by the first frame and operably configured to rotate the first gyroscope around the second axis, a first converter device being mechanically coupled to the first frame, wherein the first converter device converts rotational mechanical energy and is connected to a stabilizing device; and a second gyroscopic device comprising a second frame hinged to the body around a third axis that is transversal to the first axis through respective second protrusions coaxial to the third axis.
2. The wave power generator according to claim 1, wherein the second gyroscopic device comprises a second gyroscope carried by the second frame rotatable around a fourth axis that is perpendicular to the third axis.
3. The wave power generator according to claim 2, further comprising: a second actuator operably configured and associated with the second gyroscope to keep the second gyroscope rotating around the fourth axis in a predetermined way; and a second mechanical rotation energy converter device coupled to the second frame in an angularly fixed manner, wherein the second mechanical rotation energy converter device is connected to the stabilizing device.
4. The wave power generator according to claim 3, further comprising: an energy storage device connected to the stabilizing device.
5. The wave power generator according to claim 3, wherein at least one of the first actuator and the second actuator has an adjustable rotation speed.
6. The wave power generator according to claim 1, wherein at least one of the first axis and the third axis is fixed to the body.
7. The wave power generator according to claim 1, wherein at least one of the first axis and the third axis is rotatable relative to a fifth axis that is transverse to the first axis and the third axis.
8. The wave power generator according to claim 7, further comprising: a first support for the first frame that comprises a first base permanently carried by the body and a first fork portion rotatably supported by the first base around the fifth axis, wherein first fork portion carries the first frame through the first protrusions.
9. The wave power generator according to claim 8, wherein the first support comprises: a third actuator operably configured to be electronically controlled and coaxial or parallel to the fifth axis; and a control unit connected to the third actuator to adjust an orientation of the first fork portion relative to the body.
10. The wave power generator according to claim 9, further comprising: a second support for the second frame that comprises a second base permanently carried by the body and a second fork portion rotatably supported by the second base around the fifth axis, wherein the second fork portion carries the second frame through the second protrusions.
11. The wave power generator according to claim 10, wherein the second support comprises: a fourth actuator operably configured to be electronically controlled and coaxial or parallel to the fifth axis, wherein the control unit is connected to the fourth actuator to adjust an orientation of the second fork portion relative to the body.
12. The wave power generator according to claim 11, further comprising: a plurality of motion sensors for the body for six degrees of freedom electronically connected to the control unit configured to evaluate average statistical parameters of a wave climate that is incident to the body.
13. The wave power generator according to claim 12, wherein the control unit is part of a management system that records information on the wave climate with wave-meter buoys and marine meteorological forecasting systems.
14. The wave power generator according to claim 9, wherein the control unit is connected with the stabilizing device to the first actuator and to a second actuator.
15. The wave power generator according to claim 1, wherein the first and second converter devices and the stabilizing device are configured to manage flows of electric, hydraulic or pneumatic energy.
16. The wave power generator according to claim 1, wherein the body is axially symmetric relative to a fifth axis that is transverse to the first axis and the third axis.
17. The wave power generator according to claim 1, wherein the body is externally fitted with devices having a circular crown arch shape and being configured to float in a liquid.
18. The wave power generator according to claim 1, further comprising: a wing device rigidly connected to the body and configured to float in a gaseous fluid.
19. The wave power generator according to claim 18, wherein the wing device comprises a kite connected to the body by at least one tie rod.
20. The wave power generator according to claim 1, further comprising: a ground reference device coupled to the body.
21. The wave power generator according to claim 20, wherein the ground reference device is configured to connect the body to the ground with at least one cable.
22. The wave power generator according to claim 21, wherein the ground reference device comprises a GPS receiver.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Further characteristics and advantages of the generator according to the present disclosure will become clearer from the following description, shown with reference to the attached figures, which illustrate at least one non-limiting embodiment, in which identical or corresponding parts of the generator itself are identified by the same reference numbers.
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DETAILED DESCRIPTION OF THE DISCLOSURE
(8) In
(9) With reference to
(10) With particular reference to
(11) In association with the second gyroscopic device 50, the generator 1 comprises, similar to the first gyroscopic device 20, a second actuator 56 carried by the second frame 52 according to a further diagonal to keep the second gyroscope 54 rotating around the fourth axis AX4 in a determined way. The generator 1 also comprises a second converter device 32 of rotational mechanical power into electric power coupled to the second frame 52 in an angularly rigid and axially fixed manner. The second converter device 32 is also electrically connected to the stabilizing device 40 to supply electric power to the battery 60.
(12) With particular reference to
(13) The use of the generator 1 can be easily understood from what has been described above and does not require further explanation. On the other hand, it can be useful to specify that, considering a generator 1 in which the body 10 is connected to the bottom of the sea by a mooring cable 14, wave motion of cross sea types will produce movements on this body 10 around the two axes AX1 and AX3 which, without considering the vertical component of motion correlated to the wave motion, will induce oscillations of the first gyroscopic device 20 and the second gyroscopic device 50 with respect to these axes, influencing the operation thereof and, therefore, will activate the respective first converter device 30 and second converter device 32, with the consequence that they will produce electric power that the stabilizing device 40 will transform in such a way as to supply the battery 60 or, directly, the electrical network, according to the design specifications of the generator 1.
(14) Furthermore, it is considered useful to add that in
(15) On the other hand, it is useful to specify that the first actuator 26 and the second actuator 56 can be of the type with a fixed speed of rotation or with an adjustable speed of rotation. In this second case, the respective speeds can be adjusted instant by instant in such a way as to help vary the angular momentum of the respective first gyroscope 24 and second gyroscope 54 in order to take part in the conversion and/or stabilization of the electric power flows to the stabilizing device 40.
(16) Finally, it is clear that modifications and variations can be made to the generator 1 described and illustrated here without thereby departing from the protective scope of the present disclosure.
(17) For example, one could think of making at least one of the first and second gyroscopic devices 20 and 50 presenting the respective first or second frame 22/52 freely rotatable with respect to the body 10. This construction type would allow tuning at least one gyroscopic device on wave components with different directional and/or spectral characteristics provided that at least one of the rotation axes AX1 and AX3, respectively, of the first frame 22 and of the second frame 52 is free to orient itself around the axis AX0. In particular, in the case of a predominantly one-way climate, being able to have at least one of the first and second gyroscopic devices 20 and 50 rotatable with respect to the axis AX0 would allow orienting at least one of the axes AX1 and AX3 to focus all the wave extraction capacity of the generator 1 on a single wave. An example of such an embodiment is shown in
(18) In this regard, in
(19) In a known and not illustrated way, the control unit 111 will be able to integrate a series of motion sensors of the body 10 for the six degrees of freedom in order to be able to evaluate the statistical average parameters of the incident wave climate and make a prediction of the wave through, for example, neural networks and AR algorithms, in order to adapt the actions to the conditions with no need for external tools, increasing the reliability of the system. Of course, the control unit 111 can, in turn, be part of a management system that records information on the wave climate, for example, but not limitedly by means of wave-meter buoys and marine meteorological forecasting systems, and receive such information to condition the positioning of at least one of the first and second gyroscopic devices 20 and 50.
(20) On the other hand, the control unit 111 could be operatively designed to act on the stabilizing device 40, on the first actuator 26, and on the second actuator 56 through the respective management systems known and not illustrated, as well as on the third and fourth actuators 29 and 59, in order to achieve the reference objectives. The objectives can be, by way of non-limiting example, to maximize the power produced by the generator 1, to stabilize the electrical network to which the generator 1 is connected, to stabilize the body 10, or to maximize the operating life of the generator 1.
(21) Furthermore, according to another possible construction variant, it could be useful to specify that the possibility of multiplying the number of the first and second gyroscopic devices 20 and 50 inside the body 10 is permitted by positioning them side by side, for example, by placing the pairs of gyroscopic devices in a radial pattern with axes orthogonal with respect to the axis AX0, without thereby departing from the scope of protection of the present disclosure.
(22) Furthermore, with reference to
(23) Still, according to
(24) It can be useful to specify that up to this point, the description has been referred to energy exchanges whose effect is to produce electric power. On the other hand, the generator 1 can be used to produce mechanical work in the form of flows of hydraulic or pneumatic energy without thereby departing from the scope of protection of the present disclosure. To do this, it is easy to understand that the first actuator 26 and the second actuator 56, the third actuator 29, the fourth actuator 59, the first converter device 30 and the second converter device 32, and the stabilizing device 40 and the battery 60 must be replaced with equivalent devices capable of managing energy flows of a fluid dynamic or hydraulic nature.
(25) Finally, the reference device 12 can comprise, in addition or as an alternative to the hooking member 12 and the respective cable 14, a GPS receiver 120 (illustrated in
(26) According to what has been described above, the generator 1 of any of the two versions described above solves the technical problem set forth above in a simple and economical way, being effectively usable in rough seas or particularly turbulent winds.