FLOATING SOLAR POWER PLANT
20230257080 · 2023-08-17
Assignee
Inventors
- Alexander Minge THØGERSEN (Asker, NO)
- Audun Arnesen NYHUS (Oslo, NO)
- Ingrid LOME (Oslo, NO)
- Ole Petter LAKSHOLM (Langhus, NO)
Cpc classification
F24S20/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S25/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S25/13
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S2025/019
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/50
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
B63B2035/4453
PERFORMING OPERATIONS; TRANSPORTING
B63B35/44
PERFORMING OPERATIONS; TRANSPORTING
B63B2001/145
PERFORMING OPERATIONS; TRANSPORTING
F24S25/65
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A floating solar power plant (1) comprising a floating carrier module (3), wherein the floating carrier module (3) comprises photovoltaic modules (5) for electric power generation and a floating structure (50) provided with one or more buoyancy elements (9) extending into the water. The floating structure (50) further comprises a flexible means (53, 57, 57a, 57b) providing a change of shape of the floating structure when exposed to external forces, as the floating structure (50) comprises a plurality of interlinked rigid elements (51), wherein the rigid elements (51) are linked together with flexible means comprising flexible joints (53) to form a chain that encloses a center area (55). A method is also disclosed.
Claims
1. A floating solar power plant comprising a floating carrier module, the floating carrier module comprising: photovoltaic modules for electric power generation; a floating structure provided with one or more buoyancy elements extending into the water, wherein the floating structure comprises a flexible means providing a change of shape of the floating structure when exposed to external forces, as the floating structure comprises a plurality of interlinked rigid elements, wherein the rigid elements are linked together with flexible means comprising flexible joints to form a chain that encloses a center area.
2. The floating solar power plant according to claim 1, comprising: a carrying structure carrying the photovoltaic modules; and a flexible connection assembly connecting the carrying structure and the floating structure.
3. The floating solar power plant according to claim 1, comprising a plurality of floating carrier modules that are interconnected with flexible module links.
4. The floating solar power plant according to claim 1, comprising resilient elongated members extending across the center area between opposite rigid elements.
5. The floating solar power plant according to claim 4, wherein the resilient elongated members extend between opposite flexible joints.
6. The floating solar power plant according to claim 4, wherein the rigid elements are straight beams connected with their end portions to the flexible joints.
7. The floating solar power plant according to claim 4, wherein the resilient elongated members are made of fiber ropes, steel wires, bars, or rods.
8. The floating solar power plant according to claim 2, wherein the flexible connection assembly comprises three connections of which at least two connections comprise a first part and a second part, wherein the first part is configured to move with respect to the second part of the respective connection.
9. The floating solar power plant according to claim 2, wherein the carrying structure comprises a walkway located below at least some of the photovoltaic modules.
10. The floating solar power plant according to claim 2, wherein the carrying structure comprises a walkway at a perimeter of the carrying structure, wherein the walkway is configured to pivot between: a horizontal orientation, wherein the walkway exhibits a substantially horizontal upper face for support of personnel, and wherein the walkway is directly facing the water surface below it; and a non-horizontal orientation, wherein the walkway is pivoted away from the horizontal mode, leaving the water surface uncovered.
11. The floating solar power plant according to claim 4, wherein the resilient elongated members comprise upper resilient elongated members and lower resilient elongated members, which extend between the interlinked rigid elements and an upper and lower position, respectively, of a vertical member located within the central area.
12. The floating solar power plant according to claim 3, wherein the flexible module link comprises a first module link part, a second module link part configured to be connected to the first module link part, a pull-in line fixed to one of the first and second module link parts, wherein the pull-in line extends through an aperture of the other of the first and second module link parts.
13. A method of installing a floating solar power plant on a sea surface, wherein the power plant comprises a plurality of carrier modules configured to carry photovoltaic modules, wherein the method comprises the following steps: a) while floating on the sea surface, connecting a plurality of carrier modules into a first row of carrier modules, by means of flexible module links between the adjacent carrier modules; b) connecting a plurality of further carrier modules into a second row of carrier modules, by means of flexible module links between adjacent carrier modules; c) moving, on the sea surface, the first row of carrier modules towards the second row of carrier modules; and d) connecting, by means of flexible module links, one carrier module of the first row to one carrier module of the second row; and e) connecting further adjacent carrier modules of the first and second row to each other to form two connected and parallel first and second rows; and f) connecting additional rows of carrier modules to one of the previously connected rows of carrier modules.
Description
DETAILED DESCRIPTION OF THE INVENTION
[0035] While various features of the invention have been presented in general terms above, a more detailed and non-limiting example of embodiment will be presented in the following with reference to the drawings, in which
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[0055] In the shown embodiment, each carrier module 3 is provided with 66 photovoltaic (PV) modules 5 for generation of electric power.
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[0057] The carrier module 3 comprises a floating structure 50 that comprises a plurality of buoyancy elements 9. Two purposes of the floating structure 50 is to make the solar power plant 1 afloat and to connect to adjacent floating structures 50, by means of the flexible module links 100.
[0058] Arranged on the floating structure 50 is a carrying structure 150. The carrying structure 150 is configured to receive the plurality of PV modules 5. In the shown embodiment, the carrying structure 150 is a rigid framework.
[0059] Reference is now made to
[0060] In the shown example, the rigid elements 51 are in the form of straight beams forming a polygonal shape. In the shown embodiment there are eight rigid elements 51 that together make an octagon.
[0061] To maintain a shown form of the rigid elements 51, wherein they enclose a central area 55, resilient elongated members 57 extend across the central area 55, connecting rigid elements 51. In the shown example, the resilient elongated members 57 are connected at the flexible joints 53.
[0062] As will now be understood, the resilient elongated members 57 retain the shape of the rigid elements 51. However, since the resilient elongated members 57 exhibit flexibility, the overall shape of the interconnected rigid elements 51 can be somewhat changed when exposed to forces.
[0063] When several floating structures 50 are connected together, floating on water, and when exposed to waves, currents and wind (environmental forces), the shapes of the floating structures 50 will vary due to the force from the waves. Hence, while the flexible module links 100 allow different angles and mutual rotation of adjacent floating structures 50, the floating structures 50 will account for compressive and tensile forces.
[0064] In some embodiments, the resilient elongated members 57 can be fiber ropes. In other embodiments, the resilient elongated members 57 can be resilient struts.
[0065] By taking up compression and tensile forces in the floating structure 50 instead of in the flexible module link 100, one will have significantly longer distance available for a compression or extension. For instance, while a spring element in a flexible joint that connects adjacent floating modules may have only 50 - 30 cm available, the resilient elongated members 57 can be for instance between 7 and 25 meters long. With such lengths, materials that are normally not considered as resilient, may give enough resilience to take up the compressive and tensile forces.
[0066] For instance, in an embodiment where the resilient elongated members 57 are made of fiber ropes, and wherein the ropes are 10 meters long, an extension of the rope of 1 % will result in an extension of 10 cm. In other words, the distance between opposite rigid elements 51 will increase by 10 cm. When several floating structures 50 are interconnected as part of a floating solar power plant 1 according to the invention, this overall resilience or deformability will suffice for accounting for considerable wave sizes.
[0067] To ensure some rigidness in the floating structure 50, the resilient elongated members 57, such as fiber ropes, can be pre-tensioned.
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[0069] Contrary to the floating structure 50, the carrying structure 150 is rigid. Consequently, the connection between the floating structure 50 and the carrying structure 150 must allow the floating structure 50 to change its shape while the carrying structure 150 does not. To comply with this need, the floating carrier module 3 comprises a flexible connection assembly 200, by means of which the floating structure 50 and the carrying structure 150 are connected.
[0070] Referring to
[0071] The rigid connection 201 provides a rigid connection between one rigid element 51 and the carrying structure 150. Thus, any cabling between the carrying structure 150 and the floating structure 50 can advantageously be located at the location of the rigid connection 201.
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[0074] The rigid connection 201 and the sliding connection 203 retain the carrying structure 150 connected to the floating structure 50, so that it cannot be lifted off. Thus, in case of strong winds, the carrying structure 150 will be retained on its position on the floating structure 50.
[0075] The skilled reader will now appreciate that the shape of the floating structure 50 is able to change due to wave motions, while supporting and being connected to the rigid carrying structure 150 that carries the PV modules 5.
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[0077] In the embodiment shown in
[0078] In the embodiment shown in
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[0080] Due to the hinges, the walkways 151 can be tilted between a horizontal and a vertical position. As can be seen for instance in
[0081] As can be seen in
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[0083] In
[0084] When the first and second parallel rows of carrier modules 3 have been connected, a third row and a fourth row of carrier modules 3 is connected, and so forth. Finally, all the carrier modules 3 are connected to form the floating solar power plant 1. Due to the flexibility of the flexible module links 100 and the shape-changing capability of the floating structures 50, the floating solar power plant 1 can tolerate waves.
[0085] Reference is now made to
[0086] The upper and lower resilient elongated members 57a, 57b, connect to the vertical member 58 at an upper and a lower position, respectively. As shown, there is a vertical distance between the upper and lower positions. The connection of the upper and lower resilient elongated members 57a, 57b to the vertical member may contribute in retaining the planar shape of the interconnected rigid elements 51. Furthermore, they may enable support for a component arranged centrally, i.e. at the central area 55.
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[0089] Moreover, the flexible module link 100 comprises a guiding means. The guiding means comprises a first and second guide part 103a, 103b. The first guide part 103a comprises a funnel 105 for reception of the facing second guide part 103b that comprises a tapered part 107.
[0090] The flexible module link 100 further comprises a pull-in-line 109. The pull-in line 109 is fixed to one of the first and second module link parts 100a, 100b. In the shown embodiment, the pull-in line 109 is fixed to the first module link part 100a and extends through an aperture 110 at the apex of the tapered part 107. Thus, when connecting two floating structures 50, of which one is fixed to the first module link part 100a and the other is fixed to the second module link part 100b, the operator may pull the pull-in line 109 to mate the first and second module link parts 100a, 100b.
[0091] It will be understood that also a flexible connection assembly 100 without the guiding means and/or the flexible link 101 may comprise such a pull-in line 109.