CRYOGENIC STORAGE SYSTEM
20230167947 · 2023-06-01
Assignee
Inventors
Cpc classification
F17C7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2205/0326
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2227/0302
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2221/012
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2203/0629
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2201/054
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2270/0168
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2227/0339
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2265/066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2227/0309
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2205/0388
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2203/0391
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2270/0105
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2227/0374
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2201/056
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2270/0197
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E60/32
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
F17C2227/0381
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2205/0323
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2270/0189
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2223/043
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2270/0184
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C3/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2223/0161
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2205/0352
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2223/047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2203/0379
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A storage system for storing a cryogenic medium. The storage system includes a storage container operable to receive the cryogenic medium; a first removal line forming a fluid-conducting connection from an interior of the storage container to a first consumer connection for connecting a consumer device that uses the cryogenic medium; a first controllable line shut-off valve arranged in the first removal line; a first heat exchanger arranged in the first removal line; a second removal line, redundant to the first removal line, forming a second fluid-conducting connection from the interior of the storage container to a second consumer connection for connecting the consumer device; a second controllable line shut-off valve, redundant to the first controllable line shut-off valve, arranged in the second removal line; and a second heat exchanger, redundant to the first heat exchanger, arranged in the second removal line.
Claims
1. A storage system for storing a cryogenic medium, the storage system comprising: a storage container operable to receive the cryogenic medium; a first removal line forming a fluid-conducting connection from an interior of the storage container to a first consumer connection for connecting a consumer device that uses the cryogenic medium; a first controllable line shut-off valve arranged in the first removal line; a first heat exchanger arranged in the first removal line; a second removal line, different from the first removal line, forming a second fluid-conducting connection from the interior of the storage container to a second consumer connection for connecting the consumer device; a second controllable line shut-off valve arranged in the second removal line; and a second heat exchanger arranged in the second removal line.
2. The storage system of claim 1, wherein the first consumer connection of the first removal line and the second consumer connection of the second removal line are combined together to form a common connection.
3. The storage system of claim 1, further comprising: a third controllable line shut-off valve arranged in the first removal line directly upstream of the first consumer connection, and a fourth controllable line shut-off valve arranged in the second removal line additionally directly upstream of the second consumer connection.
4. The storage system of claim 1, further comprising: a first internal tank heat exchanger arranged in the first removal line downstream of the first heat exchanger and in the storage container; and a second internal tank heat exchanger arranged in the second removal line downstream of the first heat exchanger and in the storage container.
5. The storage system of claim 4, further comprising: a first flow control valve in the first removal line downstream of the first controllable line shut-off valve and upstream of the first internal tank heat exchanger; and a second flow control valve in the second removal line downstream of the second controllable line shut-off valve and upstream of the second internal tank heat exchanger.
6. The storage system of claim 4, further comprising: a third heat exchanger arranged in the first removal line downstream of the first internal tank heat exchanger and external to the storage container; and a fourth heat exchanger arranged in the second removal line downstream of the second internal tank heat exchanger and external to the storage container.
7. The storage system of claim 4, wherein the storage container has a double-wall structural configuration defining an insulating vacuum space between the walls of the storage container.
8. The storage system of claim 7, wherein: the first controllable line shut-off valve and the second controllable line shut-off valve are arranged in the vacuum space, the first heat exchanger and the second heat exchanger are arranged in the vacuum space, and the third heat exchanger and the fourth heat exchanger are arranged in the vacuum space.
9. The storage system of claim 7, wherein the first controllable line shut-off valve and the second controllable line shut-off valve are arranged in the vacuum space.
10. The storage system of claim 7, wherein the first heat exchanger and the second heat exchanger are arranged in the vacuum space.
11. The storage system of claim 7, wherein the third heat exchanger and the fourth heat exchanger are arranged in the vacuum space.
12. The storage system of claim 7, wherein: the first heat exchanger is arranged external to the storage container, and the second heat exchanger is arranged external to the storage container.
13. The storage system of claim 7, wherein: the first controllable line shut-off valve is arranged external to the storage container, and the second controllable line shut-off valve is arranged external to the storage container.
14. The storage system of claim 7, wherein: portions of the first removal line arranged external to the storage container are vacuum-insulated, and portions of the second removal line arranged external to the storage container are vacuum-insulated.
15. The storage system of claim 1, wherein the storage container comprises at least one secondary vacuum space with an inert gas atmosphere.
16. The storage system of claim 15, wherein the first controllable line shut-off valve and the second controllable line shut-off valve are arranged in the at least one secondary vacuum space.
17. The storage system of claim 15, wherein the first heat exchanger and the second heat exchanger are arranged in the at least one secondary vacuum space.
18. The storage system of claim 1, wherein: the second removal line is redundant to the first removal line, the second controllable line shut-off valve is redundant to the first controllable line shut-off valve, and the second heat exchanger is redundant to the first heat exchanger.
19. A storage system for storing a cryogenic medium, the storage system comprising: a storage container operable to receive the cryogenic medium; a first removal line forming a fluid-conducting connection from an interior of the storage container to a first consumer connection for connecting a consumer device that uses the cryogenic medium; a first controllable line shut-off valve arranged in the first removal line; a first heat exchanger arranged in the first removal line; a second removal line, redundant to the first removal line, forming a second fluid-conducting connection from the interior of the storage container to a second consumer connection for connecting the consumer device; a second controllable line shut-off valve, redundant to the first controllable line shut-off valve, arranged in the second removal line; and a second heat exchanger, redundant to the first heat exchanger, arranged in the second removal line.
20. A system, comprising: the storage system of claim 19; and a consumer device that uses the cryogenic medium.
Description
DRAWINGS
[0022] One or more embodiments will be illustrated by way of example in the drawings and explained in the description hereinbelow.
[0023]
[0024]
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[0029]
[0030]
[0031]
[0032]
DESCRIPTION
[0033] A storage system according to the disclosure for storing a cryogenic medium, in particular for storing hydrogen, is shown in
[0034] The storage system comprises a storage container 1 for receiving the medium. The storage container 1 forms an internal container of a double-walled container which additionally comprises an external container 11. A vacuum is formed between the external container 11 and the internal container, i.e., storage container 1. Suspension elements 13 are additionally arranged in some portions between the external container 11 and the internal container in order to position the two shells of the double-walled container relative to one another.
[0035] The cryogenic medium, in particular hydrogen, is located in the lower region of the storage container 1, namely as liquid in the container below the liquid surface, shown in the figure as a wavy line, and in the gaseous state above the wave-shaped liquid surface.
[0036] A gas removal line 2 is designed to remove the gaseous medium from the storage container 1, so that the free end of the gas removal line 2 terminates in the storage container 1 above the liquid surface in the vicinity of the top of the storage container 1. The first removal line begins with the gas removal line 2.
[0037] A liquid removal line 5 is designed to remove the liquid medium from the storage container 1, so that the free end of the liquid removal line 5 terminates in the storage container 1 below the liquid surface in the vicinity of the bottom of the storage container 1. The second removal line begins with the liquid removal line 5.
[0038] The terms “top” and “bottom” refer in this case to the conventional installed position of the storage container, for example in a transport device which travels on the ground, floats in water or flies in the air, wherein in normal operation of the transport device gravitational force acts in the direction of the bottom of the storage container.
[0039] A first controllable line shut-off valve 6 is arranged in the gas removal line 2, and a second controllable line shut-off valve 7 is arranged in the liquid removal line 5. Both line shut-off valves are located outside the storage container 1. In
[0040] In an alternative embodiment of the storage system, which is shown in
[0041] The line shut-off valves are controllable by a control device which can also be arranged in the vacuum space (
[0042] A refueling of the storage container 1 can also take place from a refueling device 14 via the gas removal line 2 and/or the liquid removal line 5, preferably also via the first line shut-off valve 6 and/or the second line shut-off valve 7.
[0043] The gas removal line 2 and the liquid removal line 5 also run downstream of the two line shut-off valves 6, 7 as two separate lines, in each case with their own components assigned thereto and thus form two separate removal lines.
[0044] The gas removal line 2 and the liquid removal line 5 are connected in terms of flow as separate removal lines to the respectively assigned first heat exchanger 3 arranged outside the storage container 1, for example between the storage container 1 and the external container 11 of the double-walled storage container (
[0045] In each case an internal tank heat exchanger 4 is arranged downstream of the first heat exchanger 3 inside the storage container 1, for heating up the liquid medium in the storage container 1, the heated-up medium removed from the storage container 1 flowing through said internal tank heat exchanger. The liquid medium is partially heated up and evaporated in the storage container 1 by being heated up on the internal tank heat exchanger 4.
[0046] A controllable three-way valve, i.e. a flow control valve 15, is not arranged in the gas removal line 2 and in the liquid removal line 5 of the embodiment according to
[0047] In each case, a second heat exchanger 8 is arranged downstream of the respective internal tank heat exchanger 4 and outside the storage container 1, outside (
[0048] The medium flowing via the first and/or second removal line is supplied downstream of the respective internal tank heat exchanger 4 to the same consumer device via one respective consumer connection 10, in particular a fuel cell as a consumer device. In each removal line, a third line shut-off valve 9 is arranged between the second heat exchanger 8 and the consumer device 10.
[0049] The embodiment of
[0050] In this case, two separate regions of the vacuum space can be used exclusively for the heat exchangers 3, 8 of the first removal line and for the heat exchangers 3, 8 of the second removal line. As a result, faults in a removal line can be detected in a simpler manner and assigned to the relevant removal line. The two regions of the vacuum space can be separated by the suspension elements 13. The separation, however, can also be implemented by at least one additional secondary vacuum space 12. It is also possible for all of the components of the two removal lines to be fitted in an additional secondary vacuum space 12 so as not to destroy the primary vacuum located between the storage container 1 and the external container 11, in the case of a fault, and thus empty the entire contents of the storage container 1 via the safety device (
[0051] In the embodiment of
[0052] Thus, as a whole the cryogenic valves 6 and 7 and the heat exchangers 3 and 8 and the shut-off devices 9 can be positioned outside the tank system (
[0053] As already mentioned, it is possible to conduct the entire removal flow through the internal tank heat exchanger 4 (See
[0054] For mobile applications, in order to be able to ensure a removal of the medium, even in the case of individual faults, according to the disclosure a redundancy is incorporated in the storage system. In this case, however, a doubling of the cryogenic valves, i.e. the first and second controllable line shut-off valve 6 and 7 is not required. By means of this measure, it is possible to produce a system which can compensate for breakdowns of individual components and thus can also prevent the loss of functionality of the storage system. In this case, there are two removal lines which can differ in the type of removal (gas, liquid). Due to the redundant design with two removal lines which are not connected together, in the case of a breakdown or leakages of a component in one removal line, the other removal line can respectively undertake the full functionality of the other. In particular, in aviation, shipping and in the automotive sector, such a scenario in which an individual breakdown or a single fault leads to the shutdown of the entire tank system, is not desirable. A further advantage is that substantially more components are not required, in spite of the redundant design.
[0055] A removal line can be provided and correspondingly designed for the removal of liquid cryogenic medium. The second removal line can represent the possibility of removing gaseous medium. As a result, in spite of the novel type of pipework, there is the possibility for the storage system to change between the type of removal, as can be desirable for an improved performance of the tank system.
[0056] In the case of an individual fault, in order to identify the fault and to permit the type of removal to be changed, different methods can be implemented for monitoring the system.
[0057] One method comprises fitting the components (all of the components which are required for the removal, following the cryogenic valves) in a larger vacuum region (secondary vacuum) 12, for example on the front face or along the tank axis (
[0058] Accordingly, the components for the secondary system have to be differently designed or respectively installed for a worst case scenario for both removal lines. If required, this also means that the storage system can have two pressure build-up systems fitted, since each removal line per se should have the option to regulate the pressure of the tank, since this component could also have a fault.
LIST OF REFERENCE SYMBOLS
[0059] 1 Storage container [0060] 2 Gas removal line [0061] 3 First heat exchanger [0062] 4 First internal tank heat exchanger [0063] 5 Liquid removal line [0064] 6 First controllable line shut-off valve [0065] 7 Second controllable line shut-off valve [0066] 8 Second heat exchanger [0067] 9 Third controllable line shut-off valve [0068] 10 Consumer connection(s) [0069] 11 External container [0070] 12 Secondary vacuum space/space for inert gas atmosphere [0071] 13 Suspension element [0072] 14 Refuelling device [0073] 15 Flow control valve [0074] 16 Vacuum-insulated line