Energy Storage System
20220195975 ยท 2022-06-23
Inventors
Cpc classification
F05B2260/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/95
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02P90/50
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
F03D9/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B17/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E02B9/00
FIXED CONSTRUCTIONS
Y02E10/72
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
Y02E10/727
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
International classification
Abstract
Energy storage system comprising: a first tunnel shaft extending in an upright direction from a ground level to a predetermined underground level; an underground chamber at the predetermined underground level in the first tunnel shaft; a water reservoir is provided at the ground level a second tunnel shaft extending in a lying direction at the predetermined underground level, the second tunnel shaft forming a second water reservoir; at least one pipe extending through the first tunnel shaft interconnecting the first water reservoir and the second water reservoir for enabling water to flow between the ground level and the predetermined underground level; and
at least one electrical pump and at least one electrical turbine operationally connected to the at least one pipe to enable a controlled charging and discharging of the energy storage system by running an upward and a downward flow of water via the pumps and the turbines, respectively.
Claims
1. A method for constructing an energy storage system, the method comprising: digging a first tunnel shaft extending in an upright direction from a ground level to a predetermined underground level using a tunnel boring machine; at the predetermined underground level in the first tunnel shaft, creating an underground chamber; providing a first water reservoir at the ground level; digging a second tunnel shaft as from the underground chamber using a second tunnel boring machine, the second tunnel shaft extending in a lying direction, the second tunnel shaft forming a second water reservoir; installing at least one pipe through the first tunnel shaft interconnecting the first water reservoir and the second water reservoir for enabling water to flow between the ground level and the predetermined underground level; and installing electrical pumps and turbines being operationally connected to the at least one pipe to enable a controlled charging and discharging of the energy storage system by running an upward and a downward flow of water via the pumps and the turbines, respectively.
2. The method according to claim 1, wherein the step of digging the first tunnel shaft comprises removing ground material to create a first shaft and covering walls of the so-formed first shaft with a covering to create the first tunnel shaft.
3. The method according to claim 1, wherein the step of digging the second tunnel shaft comprises removing ground material to create a second shaft and covering walls of the so-formed second shaft with a further covering to create the second tunnel shaft.
4. The methods according to claim 3, wherein the further covering is substantially water-impermeable such that environmental ground water is prevented from entering.
5. The method according to claim 1, wherein the second tunnel shaft comprises a loop such that it starts at the underground chamber and that it ends at the underground chamber.
6. The method according to claim 5, wherein the method comprises: before digging the second tunnel shaft, building the second tunnel boring machine inside the underground chamber for digging the second tunnel shaft; and after digging the second tunnel shaft, dismantling and removing the second tunnel boring machine from the underground chamber.
7. The methods according to claim 5, wherein the second tunnel shaft comprises at least two loops, preferably at least three loops, more preferably at least four loops.
8. The methods according to claim 1, further comprising performing maintenance on the tunnel boring machine in the underground chamber after it has finished boring a loop and before starting boring a subsequent loop.
9. The methods according to claim 1, wherein the installing the electrical pumps and turbines comprises creating at least one intermediate level between the ground level and the predetermined underground level and installing at least one intermediate pump and at least one intermediate turbine at the at least one intermediate level.
10. An energy storage system comprising: a first tunnel shaft extending in an upright direction from a ground level to a predetermined underground level; an underground chamber at the predetermined underground level in the first tunnel shaft; a water reservoir is provided at the ground level; a second tunnel shaft extending in a lying direction at the predetermined underground level, the second tunnel shaft forming a second water reservoir; at least one pipe extending through the first tunnel shaft interconnecting the first water reservoir and the second water reservoir for enabling water to flow between the ground level and the predetermined underground level; and at least one electrical pump and at least one electrical turbine operationally connected to the at least one pipe to enable a controlled charging and discharging of the energy storage system by running an upward and a downward flow of water via the pumps and the turbines, respectively.
11. The energy storage system according to claim 10, wherein the predetermined underground level is at least 500 meters below the ground level, preferably at least 1000 meters below the ground level, more preferably at least 1500 meters below the ground level, most preferably about 2000 meters below the ground level.
12. The energy storage system according to claim 10, wherein walls of the second tunnel shaft and optionally also walls of the first tunnel shaft comprise a substantially water-impermeable covering such that environmental ground water is prevented from entering.
13. The energy storage system according to claim 10, wherein the first tunnel shaft has a diameter of at least 4 meters, preferably of at least 7 meters, more preferably of at least 10 meters.
14. The energy storage system according to claim 10, wherein the second tunnel shaft has a diameter of at least 6 meters, preferably of at least 10 meters, more preferably of at least 14 meters, most preferably of at least 18 meters.
15. The energy storage system according to claim 10, wherein the second tunnel shaft has a length of at least 3 kilometers, preferably of at least 6 kilometers, more preferably of at least 9 kilometers, most preferably of at least 12 kilometers.
16. The energy storage system according to claim 10, wherein the second tunnel shaft comprises at least one segment, each segment being formed as a loop starting and ending at the underground chamber.
Description
[0038] The invention will now be described in more details with respect to the drawings illustrating some preferred embodiments of the invention. In the drawings:
[0039]
[0040]
[0041]
[0042] In the drawings a same reference number has been allocated to a same or analogous element.
[0043] A tunnel boring machine is defined as a mechanical equipment assisting workmen to create a tunnel. According to a broad interpretation, any digging assisting equipment such as a shovel and dynamite may be regarded as a tunnel boring machine. Preferably, a tunnel boring machine is a dedicated installation designed to remove and discharge soil in a controlled manner to create a hole with a predetermined diameter. Tunnel boring machines for drilling vertical shafts are described for example in WO2017/133986. Preferably the tunnel boring machine is equipped with a tunnel wall building section to reinforce the walls of the tunnel. Such tunnel wall building section is described in WO2011/085734. Tunnel boring machines for drilling horizontal shafts are well known and described in for example WO92/18751. Because tunnel boring machines are known in the art, no further description of these machines is given in this text. The tunnel shafts described hereunder and shown in the figures can be formed using known tunnel boring machines.
[0044]
[0045] The energy storage system 1 comprises a second tunnel shaft 5. The second tunnel shaft 5 extends as from the underground chamber 3 in a substantially horizontal direction. The second tunnel shaft 4 is preferably created with a second tunnel boring machine and extends substantially horizontal. Preferably, the second tunnel shaft 5 is oriented in a draining manner towards the underground chamber 3 meaning that water in the second tunnel shaft 5 has a tendency to flow towards the underground chamber 3. In other words, the floor surface of the underground chamber constitutes the lowest point in the energy storage system 1 and the level of the floor surface of the second tunnel shaft 5 slightly increases relative to the level of the floor surface of the underground chamber in a direction away from the underground chamber 3.
[0046] In the context of this description, a textual difference is introduced to describe the first and the second tunnel boring machine. In the description, the term first boring machine is used to address the machine used to create the first tunnel shaft 4. The term second boring machine is used to address the machine used to create the second tunnel shaft 5. Although in one preferred embodiment, these machines constitute physically different installations, there may be alternative preferred embodiments wherein a single machine is created that is operable to dig a vertical shaft in a first operating mode and to dig a horizontal shaft in a second operating mode. It will be clear that the terms first and second boring machine are not intended to exclude such alternative preferred embodiment.
[0047] Walls of the second tunnel shaft 5 are preferably reinforced, for example with a concrete-based reinforcement. Preferably, the walls are substantially water-impermeable to prevent environmental water which might be present in the soil from penetrating the second tunnel shaft 5. The second tunnel shaft 5 preferably has a diameter of at least 6 meters, preferably of at least 10 meters, more preferably of at least 14 meters, most preferably of at least 18 meter. The second tunnel shaft 5 preferably has a length of at least 3 kilometers, preferably of at least 6 kilometers, more preferably of at least 9 kilometers, most preferably of at least 12 kilometers.
[0048] At the ground level 2, a first water reservoir 7 is provided. The second tunnel shaft 5 and the underground chamber 3 form a second water reservoir 6 in the energy storage system 1. The way of constructing the first water reservoir 7 may differ. In an embodiment, the first water reservoir 7 may be built as a pool which is optionally covered with a roof. Alternatively, the first water reservoir 7 is built as a liquid storage tank. Further alternatively, the first water reservoir 7 is formed by a river or lake close to the upper end of the first tunnel shaft 4. In any case, the first water reservoir 7 should be able to contain or provide to the energy storage system 1 an amount of water which at least corresponds to the water capacity of the second water reservoir 6.
[0049] The first tunnel shaft 4 is provided with one or more pipes 8 interconnecting the first water reservoir 7 and the second water reservoir 6. Pumps and turbines 9 are provided to displace water in a controlled manner between the first water reservoir 7 and the second water reservoir 6. Pumps and turbines 9 can be provided as separate elements and connected via valves with the pipes 8. Alternatively, pumps are used which can be used as turbines or pumps depending on how the pumps are used, analogue to electric motor/generators. In the further description, reference is made to pump/turbines 9 which may be embodied as one element or as two elements as the skilled person will understand.
[0050] Each pump/turbine 9 is connected to an electromotor/generator (not shown). The skilled person will understand that electric energy can be used to pump water from the second water reservoir 6 to the first water reservoir 7. Also, electric energy can be generated by allowing water to flow down from the first water reservoir 7 to the second water reservoir 6. The principles of hydropower energy storage system, where energy is stored in the form of gravitational potential energy of water, pumped from a lower elevation reservoir to a higher elevation reservoir, are known and therefore not explained in more detail in this description. Energy may be charged by the energy storage system 1 by pumping water out of the second water reservoir 6 and into the first water reservoir 7. Energy may be discharged by the energy storage system 2 by using turbines 9 to generate power when water flows from the first water reservoir 7 to the second water reservoir 6. It is noted that the energy storage system 1 of the invention can be built using known and approved technology, and can be operated without rare earth materials. Therefore the energy storage system 1 provides a reliable and environmentally friendly solution for storing large amounts of energy. Calculations have shown that energy amounts up to 1500 MWh may be stored in the energy storage system 1. This means that during daytime, on 12 hours, about 1500 MWh can be charged into the energy storage system 1 while during the night, on a subsequent 12 hours, about 1400 MWh can be discharged from the energy storage system. The skilled person will realize that there is a loss of efficiency between charging and discharging such that the charged amount and the discharged amount is not equal.
[0051] An additional advantage during the charging of the energy storage system 1 is that the water in the second water reservoir 6, depending on the depth of the second water reservoir 6, may be warm. Due to earth warmth, the water may have warmed to about 50 degrees. This warmth may be used in secondary processes, for example in an industrial process or in a collective city heating system.
[0052]
[0053] The underground chamber 3 is provided, during construction of the energy storage system, for building a tunnel boring machine adapted to dig the second tunnel shaft 5. The underground chamber 3 may, after construction of the energy storage system has completed, serve as a machine room for installing pumps/turbines 9, electric motors/generators, piping systems, filters and other systems for operating and controlling operation and maintenance of the energy storage system 1.
[0054] The second tunnel shaft 5 is preferably formed with multiple loops 10, 11, 12, and 13, as is shown in
[0055]
[0056] The energy storage system 1 comprises a first water reservoir 7 at the ground level 2. It is noted that this does not exclude the first water reservoir 7 to be covered with a layer of soil. Any water reservoir 7 that is formed in a proximity of or near the ground level 2 is considered a first water reservoir 7 at the ground level 2. In an embodiment, the first water reservoir 7 is formed in an analogue way as the second water reservoir 6, using a lying tunnel (not shown) dug in the ground at a height close to the ground level 2. Such lying tunnel would still be considered a first water reservoir 7 at the ground level 2. Such lying tunnel may be formed less than 100 meters form the ground level 2, preferably less than 50 meters from the ground level. Water reservoirs formed at such shallow depths are considered formed at the ground level 2.
[0057]
[0058] The energy storage system 1 enables the energy production plant of
[0059] The preferred use-case shown in
[0060] The skilled person will appreciate on the basis of the above description that the invention can be embodied in different ways and on the basis of different principles. The invention is not limited to the above described embodiments. The above described embodiments and the figures are purely illustrative and serve only to increase understanding of the invention. The invention will not therefore be limited to the embodiments described herein, but is defined in the claims.