ELEMENT, DEVICE AND METHOD FOR COMPRESSING GAS TO BE COMPRESSED HAVING A LOW TEMPERATURE
20240191714 ยท 2024-06-13
Assignee
Inventors
Cpc classification
F04C2210/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C25/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2220/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B1/047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/086
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2240/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2240/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C15/0096
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2240/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04C29/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An element for compressing a gas to be compressed at a low temperature of ?40? C. or lower, which element (1) is provided with a housing (2) containing at least one rotor (3) that is rotatably arranged with respect to the housing (2) and having an inlet (6) for the gas to be compressed and an outlet (7) for compressed gas, characterized in that the element (1) is configured for compressing the gas to be compressed having the low temperature by providing the element (1) with a heating duct (8) that runs through the housing (2), the heating duct (8) being provided with an inlet (9) where a first heat medium is introduced into the housing (2) at a higher temperature than the aforementioned low temperature and an outlet (10) where the first heat medium is evacuated from the housing (2).
Claims
1. An element for compressing a gas to be compressed at a low temperature of ?40? ? C. or lower, which element (1) is provided with a housing (2) containing at least one rotor (3) that is rotatably arranged with respect to the housing (2) and having an inlet (6) for the gas to be compressed and an outlet (7) for compressed gas, characterized in that the element (1) is configured for compressing the gas to be compressed having the low temperature by providing the element (1) with a heating duct (8) that runs through the housing (2), the heating duct (8) being provided with an inlet (9) where a first heat medium is introduced into the housing (2) at a higher temperature than the aforementioned low temperature and an outlet (10) where the first heat medium is evacuated from the housing (2).
2. The element according to claim 1, characterized in that a temperature of the gas to be compressed is maximally ?60? C., and more preferably maximally ?100? C.
3. The element according to claim 1, characterized in that the first heat medium is a mixture of water and glycol having at least 40% glycol.
4. The element according to claim 1, characterized in that the inlet (9) of the heating duct (8) is positioned in such a way that heat is exchanged between the inlet (6) of the housing (2) and the inlet (9) of the heating duct (8).
5. The element according to claim 1, characterized in that the outlet (10) of the heating duct (8) is positioned in such a way that heat is exchanged between the outlet (7) of the housing (2) and the outlet (10) of the heating duct (8).
6. The element according to claim 1, characterized in that the heating duct (8) is provided with branches that are positioned in such a way that heat is exchanged between these branches and the inlet (6).
7. The element according to claim 1, characterized in that the heating duct (8) has a number of bends and/or curves that are positioned in such a way that heat is exchanged between said bends and/or curves on the one hand and the inlet (6) on the other hand.
8. The element according to claim 1, characterized in that the heating duct (8) is designed in such a way that the first heat medium can flow from an inlet portion of the housing (2), which inlet portion is located according to an axial direction of a shaft (5) of the rotor (3) on a side of the housing (2) where the inlet (6) is located, to an outlet portion of the housing (2), which outlet portion is located according to an axial direction of the shaft (5) on a side of the housing (2) where the outlet (7) is located, and/or vice versa.
9. The element according to claim 1, characterized in that the rotor (3) is rotatably arranged with respect to the housing (2) by means of bearings (4) and in that the element (1) is provided with an injection circuit (11) for injecting a second heat medium to the bearings (4) at a higher temperature than the low temperature.
10. The element according to claim 9, characterized in that a first duct (15a) of the injection circuit (11) having a first feed point (12) for the second heat medium is located in a first portion of the housing (2) that is located according to an axial direction of a shaft (5) of the rotor (3) on a side of the housing (2) where the inlet (6) is located.
11. The element according to claim 9, characterized in that a second duct (15b) of the injection circuit (11) having a second feed point (13) for the second heat medium is located in a second portion of the housing (2) that is located according to an axial direction of a shaft (5) of the rotor (3) on a side of the housing (2) where the outlet (7) is located.
12. The element according to claim 10, characterized in that the first feed point (12) and the second feed point (13) are interconnected by means of a connection duct (17) for the second heat medium in the housing (2).
13. The element according to claim 10, characterized in that at least one portion of the heating duct (8) is positioned in such a way that heat is exchanged between the heating duct (8) and the first duct (15a), the second duct (15b) and/or the connection duct (17), respectively.
14. The element according to claim 1, characterized in that the element (1) is provided with a heating means for an end of a shaft of the rotor (3) located closest to the inlet (6).
15. The element according to claim 1, characterized in that the element (1) is a screw compressor element having at least one helical rotor, preferably two helical rotors.
16. The element according to claim 15, characterized in that the element (1) is an oil-free screw compressor element.
17. A device for compressing a gas to be compressed having a low temperature of ?40? C. or lower, characterized in that the device is provided with at least one element (1) according to claim 1.
18. A method for compressing a gas to be compressed having a low temperature of ?40? C. or lower by means of an element, which element (1) is provided with a housing (2) containing at least one rotor (3) that is rotatably arranged with respect to the housing (2) and having an inlet (6) for the gas to be compressed and an outlet (7) for compressed gas, characterized in that the element (1) is provided with a heating duct (8) that runs through the housing (2), a first heat medium being introduced into the housing (2) at an inlet (9) of the heating duct (8) at a higher temperature than the low temperature and the first heat medium being evacuated from the housing (2) at an outlet (10) of the heating duct (8).
19. The method according to claim 18, characterized in that a temperature of the gas to be compressed is maximally ?60? ? C., and more preferably maximally ?100? ? C.
20. The method according to claim 18, characterized in that the first heat medium is a mixture of water and glycol having at least 40% glycol.
21. The method according to claim 18, characterized in that a temperature of the first heat medium is at least 60? ? C. at the inlet (9) of the heating duct (8).
22. The method according to claim 18, characterized in that the rotor (3) is rotatably arranged with respect to the housing (2) by means of bearings (4) and in that a second heat medium is injected to the bearings (4).
23. The method according to claim 22, characterized in that the second heat medium is a lubricating fluid, preferably oil.
24. (canceled)
Description
[0060] In order to better illustrate the features of the invention, some preferred embodiments of an element for compressing a gas to be compressed having a low temperature according to the invention and a device provided with such an element are described below as examples without any limiting character with reference to the attached drawings, in which:
[0061]
[0062]
[0063]
[0064] The element 1 according to the invention that is shown in the drawings for use in a device according to the invention is in this case a screw compressor element.
[0065] The element 1 comprises a housing 2 containing at least one rotor 3, in this case two helical rotors.
[0066] The screw compressor element is, in this case, an oil-free screw compressor element, meaning that in a compression chamber in the housing 2 of the element 1, no oil is injected for lubrication and/or sealing the helical rotors.
[0067] The helical rotors are arranged with their shaft 5 rotatable with respect to the housing 2 by means of bearings 4.
[0068] The housing 2 also comprises an inlet 6 for gas to be compressed at a low temperature and an outlet 7 for the compressed gas.
[0069] According to the invention, the temperature of the gas to be compressed having a low temperature is ?40? C. or lower and preferably, but not necessary for the invention, ?60? C. or lower, and more preferably ?100? C. or lower.
[0070] It goes without saying that, as a result of the compression, the compressed gas will have a higher temperature than the gas to be compressed before the compression. Depending on the process, this temperature may be higher than ?100? C., ?60? ? C. or ?40? C.
[0071] According to the invention, the housing 2 is provided with a heating duct 8 that runs through the housing 2. The heating duct 8 is shown in
[0072] The heating duct 8 has an inlet 9 for introducing a first heat medium into the housing 2 and an outlet 10 for evacuating this first heat medium from the housing 2.
[0073] The inlet 9 and the outlet 10 of the heating duct 8 are shown in
[0074] The first heat medium is in this case, but not necessary according to the invention, a mixture of water and glycol, also called 1,2-ethanediol or ethylene glycol.
[0075] The first heat medium preferably contains at least 40% glycol. That way, the first heat medium has a freezing temperature lower than ?40? C.
[0076] The first heat medium itself will have a temperature of, for example, 60? C.
[0077] As shown in
[0078] The inlet 6 of the housing 2 will be the coldest location as the gas to be compressed enters here at a low temperature. At the inlet 9 of the heating duct 8, the first heat medium will have the highest temperature because there has not yet been any heat exchange with the housing 2. When passing through the heating duct 8, the temperature of the first heat medium will decrease until it reaches the outlet 10 near outlet 7, which is typically the location of the housing 2 having the highest temperature.
[0079] In this case, but not necessary according to the invention, the heating duct 8 is designed in such a way by means of bends and branches or bifurcations that the first heat medium can flow through the entire housing 2.
[0080] This way it can be ensured that the entire housing 2 is heated up to ensure that the temperature of the housing 2 is as uniform as possible.
[0081] In addition, the heating duct 8 is provided with branches located near the inlet 6 of the housing 2.
[0082] Near the inlet 6 means that heat exchange may occur between the heat medium and the inlet 6 of the housing 2.
[0083] This will ensure that the housing 2 near the inlet 6 will be heated more than in other portions of the housing 2, as here the first heat medium will circulate more, so more heat exchange will occur with the housing 2 near the inlet 6.
[0084] It is also possible for the heating duct 8 to have a number of bends or curves near the inlet 6 of the housing 2 instead of or in addition to branches or bifurcations. This will allow to achieve the same effect as described hereabove for the branches near the inlet 6 of the housing 2.
[0085] In the example shown, the element 1 is provided with an injection circuit 11.
[0086] It should be noted that this injection circuit 11 is used to allow the injection of a second heat medium to the bearings 4. In other words, the injection circuit 11 is not used to inject oil into the compression chamber.
[0087] As shown in
[0088] As shown, there is a feed point 12, 13 in the housing 2 at each end 14a, 14b of the rotor 3.
[0089] As a result of this, the second heat medium can be injected into the housing 2 as close as possible to the bearings 4 at the ends 14a, 14b of the shaft 5 of the rotor 3.
[0090] Ducts 15a, 15b will run through the housing 2 from the feed points 12, 13 to the bearings 4 for supplying the second heat medium to the bearings 4.
[0091] Suitable nozzles 16 are provided at the bearings 4.
[0092] As shown in
[0093] Said connection duct 17 will be filled with the second heat medium while the device is being operated.
[0094] In this case, a portion of the heating duct 8 will be located near the connection duct 17 and/or the aforementioned ducts 15a, 15b such that heat exchange is possible between the heat media in these ducts 8, 15a, 15b, 17.
[0095] In other words, the first heat medium will be able to heat the second heat medium.
[0096] The screw compressor element operates in a very simple manner and as follows.
[0097] During the operation of the screw compressor element, the helical rotors will cooperatively rotate in an intermeshing way and draw in the gas to be compressed having a low temperature via the inlet 6 in the housing 2.
[0098] The gas is compressed by the helical rotors 3 and will exit the screw compressor element 1 through the outlet 7 in the housing 2.
[0099] In this case, the gas to be compressed at a low temperature will strongly cool the housing 2.
[0100] Although the temperature of the gas will increase during the compression process, the temperature of the gas will still be so low that after compression the compressed gas will still cool the housing 2.
[0101] During the operation of the element 1, the first heat medium will flow through the heating duct 8, where it will heat the housing 2.
[0102] A temperature of the first heat medium at the inlet 9 of the heating duct 8 is, for example, 60? C., but it should be clear that this temperature of the first heat medium will be chosen depending on a temperature of the gas to be compressed at a low temperature.
[0103] The heating will be greater near the inlet 9, where the first heat medium will have the highest temperature, than near the outlet 10, where the first heat medium will have a lower temperature.
[0104] Because the inlet 6 is the coldest location of the housing 2, most of the heating will be necessary here.
[0105] By means of the branches near the inlet 6 of the housing 2, the first heat medium will undergo heat exchange with the portion of the housing 2 near the inlet 6 for a longer period of time than if said branches were not present such that sufficient heating of said portion of the housing 2 is possible.
[0106] Then, the first heat medium will flow through the entire housing 2 along the heating duct 8 to heat the housing 2.
[0107] It should be noted that by heating the housing 2, the rotor 3 is also heated by the first heat medium, though indirectly.
[0108] As a result of this, the temperature of the entire element 1 will be kept as high as possible, said temperature also being uniform.
[0109] As a result of the heating of the housing 2, the bearings 4 will also indirectly be partially heated.
[0110] However, to ensure proper functioning of the bearings 4, the injection circuit 11 will inject the second heat medium onto the bearings 4 at a temperature higher than the low temperature of the gas to be compressed.
[0111] For the bearings 4 on each end 14a, 14b of the shaft 5 of the rotor 3, a special feed point 12, 13 is provided in housing 2, allowing the second heat medium to be brought to the bearings 4 using the shortest possible duct 15a, 15b.
[0112] In this way, a decrease in the temperature of the second heat medium when passing through the cold housing 2 can be limited as much as possible before the second heat medium reaches the bearings 4.
[0113] Furthermore, because a portion of the heating duct 8 is located near the ducts 15a, 15b, this will help ensure that the temperature of the second heat medium on its way to the bearings 4 drops as little as possible so that the bearings 4 can be heated to the maximum extent possible.
[0114] The purpose of the connection duct 17, which provides a connection between the two feed points 12, 13, is to allow heat exchange with the second heat medium, which is injected via two feed points 12, 13.
[0115] Said connection duct 17 will be filled with the second heat medium and, although said second heat medium is normally stationary and will not reach the bearings 4, heat exchange will nevertheless be possible via the second heat medium in the connection duct 17 from the outlet 7 at a higher temperature to the very cold inlet 6.
[0116] This will ensure a uniform temperature throughout the entire second heat medium in the housing 2, the entire housing 2 and the bearings 4.
[0117] In this case, there is also no risk of the second heat medium cooling too much.
[0118] Furthermore, because a portion of the heating duct 8 is located near the connection duct 17, this will help ensure that the temperature of the second heat medium drops as little as possible in the connection duct 17. In this way, it is possible to prevent the second heat medium from freezing and thereby the connection duct 17 from becoming clogged.
[0119] The present invention is by no means limited to the embodiments described as examples or shown in the drawings, but an element for compressing a gas to be compressed having a low temperature according to the invention and a device provided with such an element can be realized in all kinds of shapes and dimensions without departing from the scope of the invention as defined in the claims.