UNDERGROUND ENERGY PRODUCTION AND STORAGE SYSTEM
20210396203 · 2021-12-23
Inventors
Cpc classification
F03B3/10
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
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
F03B13/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F03B13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B13/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A hydropower system for generating and storing energy is disclosed. The system comprises an upper (1) and a lower (2) level reservoir, and an electromechanical system (12) arranged in the lower level reservoir and in hydraulic connection with the upper level reservoir. A related method generating and storing energy is also disclosed.
Claims
1. Hydropower system for generating and storing energy, wherein the system comprises: an upper level reservoir with an upper level water surface at an upper altitude, a lower level reservoir with a lower level water surface at a lower altitude, a penstock arranged for providing hydraulic connection between the upper level reservoir and at least one electromechanical system comprising a turbine and a generator for generating energy from the head of water below the upper level water surface, and providing a pumping function for storing energy by pumping water up from the lower level reservoir, wherein the lower level reservoir comprises a first vertical shaft in the ground with a horizontal cross section throughout its length that allows lowering of the at least one electromechanical system through the vertical shaft.
2. Hydropower system according to claim 1, wherein at least the turbine of the at least one electromechanical system is arranged in the lower level reservoir.
3. Hydropower system according to claim 1, wherein the upper level reservoir is a natural body of water.
4. Hydropower system according to claim 3, wherein the natural body of water is the sea or bodies of water connected to it.
5. Hydropower system according to claim 1, wherein the vertical shaft forms an opening at surface of the ground.
6. Hydropower system according to claim 1, wherein at least the turbine is arranged at a lower level than the water surface of the lower level reservoir.
7. Hydropower system according to claim 1, wherein the vertical shaft preferably has a mainly uniform cross section, and more preferably essentially a cylindrical shape.
8. Hydropower system according to claim 1, wherein area of the cross section is at least 10 m.sup.2.
9. Hydropower system according to claim 1, wherein the lower level reservoir further comprises void and pore volumes in the ground surrounding the vertical shaft and where the void and pore volumes are in hydraulic connection with the vertical shaft.
10. Hydropower system according to claim 9, wherein the void and pore volumes in the ground are of natural origin.
11. Hydropower system according to claim 9, wherein the void and pore volumes in the ground are at least partly man-made.
12. Hydropower system according to claim 11, wherein the void and pore volumes in the ground and/or their hydraulic connection with the vertical shaft are created or enhanced by one or more of the following techniques: mechanical drilling, hydraulic fracturing, horizontal, vertical or radial jet drilling, explosion, plasma jet, water jet.
13. Hydropower system according to claim 1, wherein the lower level reservoir comprises one or more vertical satellite shafts in hydraulic connection with the first vertical shaft via drilled channels and/or natural permeability in the ground between the vertical shaft and the satellite shafts.
14. Hydropower system according to claim 9, wherein the lower level reservoir includes void and pore volumes in the ground surrounding the satellite shafts.
15. Hydropower system according to claim 1, wherein the penstock comprises a tube section located in the first vertical shaft.
16. Hydropower system according to claim 1, wherein the penstock comprises a vertical penstock shaft in the ground parallel to the first vertical shaft and in hydraulic connection with the first vertical shaft, arranged for providing hydraulic connection between the upper level reservoir and the electromechanical system.
17. Hydropower system according to claim 1, wherein the pumping function is provided by the turbine operated in reverse.
18. Hydropower system according to claim 1, wherein the electromechanical system comprises a separate pump providing the pumping function.
19. Method for generating and storing energy using a hydropower system according to claim 1.
20. Method for generating and storing energy, the method comprising the following steps: i) in an energy production mode: leading water from an upper level reservoir with an upper level water surface at an upper altitude through a penstock to an electromechanical system arranged in a vertical shaft in ground with an opening at surface of the ground, the vertical shaft and any hydraulically communicating voids in the ground comprising a lower level reservoir; and generating energy by the electromechanical system from the head of water below the upper level water surface; and ii) in an energy storage mode: storing energy by pumping water up from the lower level reservoir through the penstock by means of the electromechanical system.
Description
DESCRIPTION OF THE DIAGRAMS
[0038] 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 an [exemplary] embodiment of the invention given with reference to the accompanying drawings.
[0039] Embodiments of the present invention will now be described, by way of example only, with reference to the following diagrams wherein:
[0040]
[0041]
[0042]
[0043]
[0044]
[0045]
LIST OF REFERENCE NUMBERS IN THE FIGURES
[0046] The following reference numbers and signs refer to the drawings:
NUMBER DESIGNATION
[0047] 1 Upper reservoir
[0048] 2 Lower reservoir
[0049] 3 Penstock shaft (prior art)
[0050] 4 Turbine
[0051] 5 Electrical generator
[0052] 6 Gallery
[0053] 7 Adit
[0054] 8 Vertical shaft
[0055] 9 Surface of upper reservoir
[0056] 10 Penstock tube
[0057] 11 Bottom of shaft
[0058] 12 Electromechanical system.
[0059] 12A, B, C Electromechanical system.
[0060] 13 Top of penstock tube or -shaft
[0061] 14 Penstock shaft
[0062] 15 Tube
[0063] 16 Interstitial volumes
[0064] 17 Channels
[0065] 18 Channels
[0066] 19 Casing
[0067] 20 Central facility
[0068] 21 Satellite to central facility
[0069] 22 Turbine/generator combination
[0070] 23 Pump
[0071] 24 Water evacuation tube from pump
DESCRIPTION OF PREFERRED EMBODIMENTS OF THE INVENTION
[0072] Various aspects of the disclosure are described more fully hereinafter with reference to the accompanying drawings. 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.
[0073] The following description of a preferred embodiment of the invention is exemplary without limiting the invention or the application.
[0074] The present invention relies on a novel architecture where the system of underground cavities is created using optimized, effective excavation and construction techniques, where the water storage capacity of the system cavities is exploited to an extraordinary degree, where the installation, maintenance and removal of major system components can be implemented in a simple manner, and where the total energy storage capacity of the system can be extended in stages following the initial construction of the system.
[0075] In basic terms, the above is achieved by creating a straight vertical shaft extending from the surface and down to a predetermined depth, the volume of the shaft representing the storage volume for the lower water reservoir in the system. The upper reservoir is a large body of water, preferably the sea, in communication with a water intake at the top of a penstock tube inserted into the shaft and feeding an electromechanical system including a submerged turbine/generator combination positioned at the bottom of the shaft. In the energy production mode, water is taken from the upper water reservoir via the penstock and flows through the turbine. The latter shall be of the reaction type, expelling spent water into the surrounding shaft volume against a head which increases as the water level rises in the shaft. In the energy storage mode, the turbine acts as a pump, drawing water from the bottom of the shaft and pushing it up through the penstock tube and into the upper water reservoir.
[0076] Some salient features of this architecture: [0077] It opens up for employing a set of standardized procedures and optimized equipment in the excavation phase. This includes the use of highly automated robotic equipment, with associated benefits regarding overall costs and safety aspects. The vertical straight shaft may in principle have any cross sectional shape, with preferred embodiments being circular, and is without extended overhangs that would require bracing against vertical forces within the rock. The cross sectional area shall provide adequate space for machinery and operations during excavation of the shaft and for installation and operation of turbines, generators etc., which shall typically imply a minimum shaft diameter of 5-10 m. This would also be adequate during possible extensions of water storage volume by horizontal drilling into void volumes in the surrounding rock (cf. below). [0078] Heavy equipment, in particular the turbine and generator, can be inserted by lowering straight down into the shaft. Likewise, service, repair and decommissioning will be facilitated by easy vertical access via hoists. [0079] The architecture allows simple post construction scaling of storage capacity or power by one or more of the following: By exchange of turbine, by increasing the depth of the shaft, by creating access to interstitial volumes surrounding the shaft (cf. below), and by establishing parallel shafts in a production cluster.
[0080] The basic principles shall now be described in detail by reference to
[0081] The upper reservoir (1) is a large natural body of water such as the sea. A vertical shaft (8) of diameter 2R extending from the surface to a depth H constitutes the lower reservoir. A penstock tube (10) of diameter 2r inside the shaft (8) extends from the bottom (11) of the shaft to the upper reservoir (1) where the water surface level (9) defines a reference for the hydraulic head of the system. An electromechanical system (12) which can function both as a turbine/generator combination and a pump is located at the lower end of the tube, controlling the flow of water between the tube and the shaft:
[0082] In the energy storage mode, water is emptied from the shaft by supplying electrical power to the electromechanical system (12) which acts as a pump and forces water up and out of the penstock tube (10) at the point (13). In the energy production mode, water is inserted into the penstock tube (10) at the point (13) and is passed through the electromechanical system (12) which acts as a turbine/generator and delivers electrical power. The water exits at the bottom (11) of the shaft, filling it up from below. As can be seen from
[0083] In the energy storage mode, an amount Q of energy is required to lift all the water out of the shaft (8) when filled to level h.sub.Max, i.e. to bring h from h=h.sub.Max to h=0, corresponding to lifting the center of gravity of the column of water in the shaft to the level of the upper reservoir surface (9):
Q=ρ A g (H−h.sub.Max/2) h.sub.Max Eq. (1)
[0084] Here, the cross sectional area of the shaft between the penstock tube (10) and the shaft walls is A, ρ is the density of the water and g is the acceleration of gravity.
[0085] In the energy production mode, the power P delivered by a water flow dq/dt through the electromechanical system (12) is:
P=ρ g (H−h) dq/dt Eq. (2)
[0086] Here, it has been assumed that friction losses, etc can be ignored, i.e. an overall efficiency η=1.
[0087] For concreteness, some numerical examples shall now be given, based on the equations above:
[0088] Stored Energy:
[0089] Assuming R=5 [m], r=0.6 [m], the cross sectional area A of the shaft between the penstock tube (10) and the shaft walls is:
A=π (R.sup.2−r.sup.2)=77.4 [m.sup.2] Eq. (3)
[0090] Inserting further: ρ=1000 [kg m.sup.−3], g=9.81 [m s.sup.−2], H=700 [m], h.sub.Max=690 [m] into Eq. (1), one obtains: Q=51.7 [MWh],
[0091] Power:
[0092] Assuming a flow dq/dt=1 [m.sup.3 s.sup.−1], insertion into Eq. (2) yields: [0093] P=6.9 [MW] at h=0; [0094] P=98.1 [kW] at h=h.sub.Max.
[0095] The reduction in power as water fills up the shaft may be compensated for by adjusting the flow rate dq/dt. Thus, if the turbine/generator allows it, a constant power yield of 1 [MW] may be achieved by increasing the flow rate from 0.15 [m.sup.3 s.sup.−1] at h=0 to 10.2 [m.sup.3 s.sup.−1] at h=h.sub.Max.
[0096] Scaling:
[0097] As can be seen from Eq. (1), the storage capacity of the system shown in
Q=ρ A g H.sup.2/2 Eq. (4)
[0098] Thus, the stored energy shall essentially scale as the square of the depth of the shaft as well.
[0099] As an example of simple scaling, assuming a shaft cross section A=120 [m.sup.2] and a depth H=1500 [m], the stored energy becomes: Q=367 [MWh].
[0100]
[0101] The basic scheme shown in
[0102] In
[0103] The scheme illustrated in
[0104] A very simple estimate of the potential impact of interstitial void volumes on the storage capacity can be made as follows: If the hydraulically connected void-containing volume shown cross hatched in
V.sub.Void=φ V Eq. (5)
[0105] Assuming that this volume is available as a water storage reservoir during energy storage and energy production and can be characterized by an average depth H.sub.Void below the surface, the maximum stored energy Q.sub.Void in the void space is:
Q.sub.Void=ρ g φ V H.sub.Void Eq. (6)
[0106] Inserting some relevant numbers: ρ=1000 [kg m.sup.−3], g=9.81 [m s.sup.−2], φ=0.015, V=1 [km.sup.3], H.sub.Void=1500 [m], into Eq. (6), one obtains: Q=61.4 [GWh].
[0107]
[0108]
[0109] Water leakage into our out of the facility from the surrounding rock shall clearly depend on the local geological conditions. One notes that loss of water from the facility through leakage shall effectively correspond to storing additional energy in the facility. In the reverse case where water intrudes from the surrounding rock formations, some stored energy is lost. However, such water intrusion shall in many cases occur at a low rate with small impact on the overall performance of the storage facility.