ENERGY ISLAND CONSTRUCTION METHOD AND SYSTEM
20220380994 ยท 2022-12-01
Inventors
Cpc classification
F03B13/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E60/16
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
F05B2220/706
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E02B7/10
FIXED CONSTRUCTIONS
Y02E10/20
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
F03B13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E02B9/06
FIXED CONSTRUCTIONS
E02B9/00
FIXED CONSTRUCTIONS
International classification
E02B9/06
FIXED CONSTRUCTIONS
F03B13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An energy island system arranged related to a body of water with a seafloor, a surface and a depth over an underground is disclosed. The system comprises a structurally rigid shell (1) extending from the seafloor to above the water surface, inclosing a lagoon of the body of water, material with a negative buoyancy stacked around the shell (1) forming a gravity stabilized wall (2), and a tunnel (5) established in the wall (2), providing for hydraulic communication between the surrounding body of water and the interior of the shell (1). Further, a method for construction of an energy island is disclosed.
Claims
1. Energy island construction method, where the method comprises the following steps: selecting a body of water with a seafloor, a surface and a depth over an underground; arranging a structurally rigid shell (1) extending from the seafloor to above the water surface, enclosing a lagoon of the body of water; stacking material with a negative buoyancy around the shell (1) forming a gravity stabilized wall (2); establishing a tunnel (5) in the wall (2), providing for hydraulic communication between the surrounding body of water and the interior of the shell (1); and capping the tunnel (5) with a capping structure (5), and evacuating water from the lagoon.
2. Energy island construction method according to claim 1, where the method comprises arranging a (watertight) membrane structure (3) in the wall (2), the membrane structure (3) adapted to prevent the surrounding water exerting pressure on the shell (1).
3. Energy island construction method according to claim 1, where the method comprises arranging a filtering station (9) adapted to filter water passing through the tunnel (5).
4. Energy island construction method according to claim 1, where the method further comprises: excavating a shaft (6) in the underground below the interior of the shaft (5) into a high permeability substratum (10); excavating at least one branching tunnel (7), the branching tunnel (7) at least partially located in the high permeability substratum (10), and in hydraulic communication with the shaft (6); and arranging a turbine/generator combination (8) in the shaft (6).
5. Energy island construction method according to claim 4, where the method further comprises: arranging a pump adapted to evacuate water from the branching tunnel (7) providing for pumped hydro energy storage.
6. Energy island construction method according to claim 4, where the method comprises removing the capping structure (5) allowing water flowing through the tunnel (5) from the surrounding body of water, filling the lagoon, and flowing down the shaft (6) activating the turbine/generator combination (8).
7. Energy island construction method according to claim 1, where the method further comprises: excavating a shaft (6) in the underground below the lagoon into a salt deposit (12) below a low permeability stratum (13); and arranging an input tube structure (14, 16) allowing water to pass from the body of water (17) into the salt deposit (12) establishing a cavity (22) in the salt deposit (12).
8. Energy island construction method according to claim 7, where the method further comprises: arranging a pump (20) in the cavity (22) in connection with an output tube structure (21) for pumping liquid out of the cavity (22); and arranging a turbine (23) in the cavity (22) in connection with the input tube structure (14, 16), the turbine (23) adapted to be activated by water flow in the input tube structure (14, 16).
9. Energy island construction method according to claim 1, where the method further comprises: arranging a pump (28) adapted to evacuate water from the lagoon (25) into the body of water (17), and a turbine (29) adapted to be activated by water from the body of water (17) flowing through the turbine (29) providing for lagoon based energy storage and production.
10. Energy island construction method according to claim 9, where the pump (28) and the turbine (29) are arranged related a hole in the wall allowing for water flowing between the body of water (17) and the lagoon (25).
11. Energy island system arranged related to a body of water with a seafloor, a surface and a depth over an underground, the system comprising: a structurally rigid shell (1) extending from the seafloor to above the water surface, inclosing a lagoon of the body of water; material with a negative buoyancy stacked around the shell (1) forming a gravity stabilized wall (2); and a tunnel (5) established in the wall (2), providing for hydraulic communication between the surrounding body of water and the interior of the shell (1).
12. Energy island system according to claim 11, the system further comprising a capping structure (5) arranged for capping the tunnel (5), and allowing for evacuating water from the lagoon.
13. Energy island system according to claim 12, the system further comprising: a watertight membrane structure (3) arranged in the wall (2), the membrane structure (3) adapted to prevent the surrounding water exerting pressure on the shell (1).
14. Energy island system according to claim 11, where the system comprises a filtering station (9) adapted to filter water passing through the tunnel (5).
15. Energy island system according to claim 14, where the filtering station (15) comprises mechanical sieves in combination with living filtering organisms in the form of tunicates.
16. Energy island system according to claim 11, where the system further comprises: a shaft (6) extending into the underground below the interior of the shaft (5) into a high permeability substratum (10); at least one branching tunnel (7), the branching tunnel (7) at least partially located in the high permeability substratum (10), and in hydraulic communication with the shaft (6); and a turbine/generator combination (8) arranged in the shaft (6).
17. Energy island system according to claim 16, where system further comprises a pump arranged adapted to evacuate water from the branching tunnel (7) providing for pumped hydro energy storage.
18. Energy island according to claim 15, where the capping structure (5) has been removed allowing water flowing through the tunnel (5) from the surrounding body of water, filling the lagoon, and flowing down the shaft (6) activating the turbine/generator combination (8).
19. Energy island system according to claim 11, where the system further comprises: a shaft (6) excavated in the underground below the lagoon into a salt deposit (12) below a low permeability stratum (13); and an input tube structure (14, 16) allowing water to pass from the body of water (17) into the salt deposit (12) establishing a cavity (22) in the salt deposit (12).
20. Energy island system according to claim 19, where the system further comprises: a pump (20) arranged in the cavity (22) in connection with an output tube structure (21) for pumping liquid out of the cavity (22); and a turbine (23) in the cavity (22) arranged in connection with the input tube structure (14, 16), the turbine (23) adapted to be activated by water flow in the input tube structure (14, 16).
21. Energy island according to claim 11, where the system further comprises a pump (28) arranging adapted to evacuate water from the lagoon (25) into the body of water (17), and a turbine (29) adapted to be activated by water from the body of water (17) flowing through the turbine (29) providing for lagoon based energy storage and production.
22. Energy island system according to claim 21, where the pump (28) and the turbine (29) are arranged related a hole in the wall allowing for water flowing between the body of water (17) and the lagoon (25).
Description
DESCRIPTION OF THE DIAGRAMS
[0034] The above and further features of the invention are set forth with particularity in the appended claims and together with advantages thereof will become clearer from consideration of the following detailed description of exemplary embodiments of the invention given with reference to the accompanying drawing.
[0035] The invention will be further described below in connection with exemplary embodiments which are schematically shown in the drawings, wherein:
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[0039]
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[0048]
LIST OF REFERENCE NUMBERS IN FIGS.
[0049] 1 Shell [0050] 2 Gravity stabilized wall [0051] 3 Membrane structure [0052] 4 Wall tunnel [0053] 5 Capping structure [0054] 6 Shaft [0055] 7 Branching tunnel [0056] 8 Turbine/generator combination [0057] 9 Filtering station [0058] 10 Geological structure [0059] 11 Shaft [0060] 12 Underground salt deposit [0061] 13 Low permeability stratum [0062] 14 Tube [0063] 15 Tube [0064] 16 Tube [0065] 17 Body of water [0066] 18 Water flow [0067] 19 Brine [0068] 20 Pump [0069] 21 Tube [0070] 22 Cavity [0071] 23 Turbine [0072] 24 Water/brine [0073] 25 Lagoon [0074] 26 Windmill [0075] 27 Floating solar photoelectric system [0076] 28 Turbine/pump combination [0077] 30 Access shaft
DESCRIPTION OF PREFERRED EMBODIMENTS OF THE INVENTION
[0078] Various aspects of the disclosure are described more fully hereinafter with reference to the accompanying drawing. This disclosure may, however, be embodied in many different forms and should not be construed as limited to any specific structure or function presented throughout this disclosure. Rather, these aspects are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the disclosure to those skilled in the art. Based on the teachings herein one skilled in the art should appreciate that the scope of the disclosure is intended to cover any aspect of the disclosure disclosed herein, whether implemented independently of or combined with any other aspect of the disclosure. For example, an apparatus may be implemented or a method may be practiced using any number of the aspects set forth herein. In addition, the scope of the disclosure is intended to cover such an apparatus or method which is practiced using other structure, functionality, or structure and functionality in addition to or other than the various aspects of the disclosure set forth herein. It should be understood that any aspect of the disclosure disclosed herein may be embodied by one or more elements of a claim.
[0079]
[0080] Step 1: In
[0081] Step 2:
[0082] Step 3: In
[0083] Based on the situation illustrated in
Preferred Embodiment: Energy Production by Water Transfer to Subterranean Recipients
[0084] In
Preferred Embodiment: Pumped Hydro Energy Storage in Excavated Underground Cavity
[0085] Referring to
Preferred Embodiment: Pumped Hydro Energy Storage in Salt Deposits
[0086] In
Preferred Embodiment: Lagoon Based Energy Storage
[0087]
PREFERRED EMBODIMENTS
[0088] The shell (1) may be constructed by the in situ assembly of plastic elements which are consolidated and reinforced through interlocking topographic features and/or internal strength member in channels interior to the shell walls. [0089] The filtering station (9) may employ mechanical sieves in combination with living filtering organisms in the form of tunicates that are located in the water flow path, feeding off organic matter such as algae and planktons. In this way, the filtering station could be part of a farming operation where valuable biological material is created at the same time as clogging of the underground transmission path is prevented.