VACUUM CHAMBER MODULE
20220364569 · 2022-11-17
Inventors
Cpc classification
F04D19/042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/602
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D19/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A vacuum chamber module and an apparatus are disclosed. The vacuum chamber module comprises: a pump wall defining a recess shaped to receive a multi-stage vacuum pump; a plurality of vacuum chambers, each vacuum chamber being configured to be pumped by a respective stage of the multi-stage vacuum pump, each vacuum chamber being defined at least partially by a portion of the pump wall, each vacuum chamber having an pumping port located at a different circumferential position on the pump wall for fluid communication with the respective stage of the multi-stage vacuum pump. In this way, a module is provided which shares components, with the multi-stage pump at least partially accommodated within space otherwise occupied by the vacuum chambers and with the vacuum chambers located around the pump wall, which provides for a simpler and more compact arrangement.
Claims
1. A vacuum chamber module, comprising: a pump wall defining a recess shaped to receive a multi-stage vacuum pump; a plurality of vacuum chambers, each vacuum chamber being configured to be pumped by a respective stage of the multi-stage vacuum pump, each vacuum chamber being defined at least partially by a portion of said pump wall, each vacuum chamber having a pumping port located at a different circumferential position on said pump wall for fluid communication with said respective stage of said multi-stage vacuum pump.
2. The vacuum chamber module of claim 1, wherein said interstage ports extend circumferentially along said pump wall.
3. The vacuum chamber module of claim 1, wherein said interstage ports are located to be non-overlapping circumferentially along said pump wall.
4. The vacuum chamber module of claim 1, wherein said interstage ports are located at different positions along a longitudinal axis of said multi-stage vacuum pump.
5. The vacuum chamber module of claim 4, wherein said vacuum chambers extend along a common portion of said longitudinal axis.
6. The vacuum chamber module of claim 4, wherein adjacent vacuum chambers share a common dividing wall extending along said common portion of said longitudinal axis.
7. The vacuum chamber module of claim 1, wherein said pump wall defines a pump chamber shaped to receive said multi-stage vacuum pump.
8. The vacuum chamber module of claim 1, wherein said pump wall surrounds said multi-stage vacuum pump.
9. The vacuum chamber module of claim 1, wherein said pump wall is cylindrical.
10. The vacuum chamber module of claim 1, wherein said vacuum chambers have a pair of vacuum chamber walls extending radially from said pump wall.
11. The vacuum chamber module of claim 10, wherein said vacuum chambers comprise a joining wall extending circumferentially and joining said pair of vacuum chamber walls.
12. The vacuum chamber module of claim 1, wherein said vacuum chambers extend radially from said pump chamber and are positioned circumferentially around said pump chamber.
13. The vacuum chamber module of claim 1, wherein said vacuum chambers comprise inter-chamber apertures configured for fluid communication between said vacuum chambers.
14. The vacuum chamber module of claim 1, wherein said pump wall defines a recess shaped to receive at least one further vacuum pump.
15. The vacuum chamber module of claim 14, wherein each vacuum chamber has at least one pumping port located on said pump wall for fluid communication with at least one of said multi-stage vacuum pump and said at least one further vacuum pump.
16. (canceled)
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0025] Embodiments of the present invention will now be described further, with reference to the accompanying drawings, in which:
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
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[0034]
DETAILED DESCRIPTION
[0035] Before discussing the embodiments in any more detail, first an overview will be provided. Embodiments provide a vacuum chamber module for use with a multi-stage vacuum pump. The vacuum chamber module has a central portion, typically a generally cylindrical chamber, within which the multi-stage vacuum pump is located. A series of vacuum chambers, shaped generally as radially-extending lobes or petals, are positioned circumferentially around the central pump chamber. Ports are formed in the wall of the pump chamber to fluidly couple the vacuum chambers with the appropriate stage within the multi-stage vacuum pump. This provides for a simple and compact arrangement which allows different vacuum chambers to be operated at different pressures. In particular, each vacuum chamber can accommodate at least a portion of the footprint of the multi-stage vacuum pump, and by arranging the vacuum chambers generally side by side, extending along the longitudinal length of the multi-stage vacuum pump, the overall height of the vacuum chamber module is constrained.
Vacuum Chamber Module—1.SUP.st .Embodiment
[0036]
[0037] The vacuum chamber module 10 is provided with a pump chamber 30 which is generally-cylindrical in shape to receive the vacuum pump 20. The vacuum chamber module 10 is provided with a first chamber 40, a second chamber 50 and a third chamber 60. The second chamber 50 and the third chamber 60 extend radially from the pump chamber 30 and sit side-by-side, extending along the longitudinal axis A.
[0038] The first chamber 40 has a first pumping port 70 formed in a wall of the first chamber 40 shared with the pump chamber 30. The first pumping port 70 couples with an inlet port 80 on the backing pump 20A. The second chamber 50 has a primary interstage port 90 formed in a wall of the second chamber 50 shared with the pump chamber 30. The third chamber 60 has a secondary interstage port 100 formed in a wall of the third chamber 60 shared with the pump chamber 30. Hence, it can be seen that the volume of the pump chamber extends within the volume of the first chamber 40, the second chamber 50 and the third chamber 60, which helps to provide a compact arrangement.
[0039] The second chamber 50 and the third chamber 60 extend along the longitudinal axis A. The second chamber 50 and the third chamber 60 share a common wall 110 which extends along the longitudinal axis A. Arranging the chambers next to each other, sharing space along the longitudinal axis A, helps to provide a compact arrangement. As can best be seen in
[0040] In operation, a sealing plate (not shown) is placed over an access aperture 140 provided in the wall of the first chamber 40 and the second chamber 50. A sample (not shown) is introduced into the first chamber 40, either by placing the sample within the first chamber 40 or by introducing the sample in another way and then securing the sealing plate over the access aperture 140.
[0041] The vacuum pump 20 is activated. The first chamber 40 is evacuated by the backing pump 20A via the first pumping port 70. The second chamber 50 is evacuated by the first turbo molecular pump stage 20B and the backing pump 20A via the primary interstage port 90. The third chamber 60 is evacuated by the second turbo molecular pump stage 20C, the first turbo molecular pump stage 20B and the backing pump 20A via the secondary interstage port 100. Accordingly, the pressure within the third chamber 60 is lower than the pressure within the second chamber 50 and the pressure in the second chamber 50 is lower than the pressure in the first chamber 40.
[0042] In this embodiment, apertures are provided (not shown) between the first chamber 40 and the second chamber 50, as well as between the second chamber 50 and the third chamber 60. This allows the sample, once in a gaseous or ionised state, to flow from the first chamber 40 to the third chamber 60, via the second chamber 50, as illustrated by the arrows in
[0043] As can be seen, by placing the second chamber 50 and the third chamber side by side, with ports positioned to access the different stages of the vacuum pump 20, a compact vacuum chamber module 10 is provided. It will be appreciated that where further vacuum pump stages are provided, further chambers can also be provided which extend circumferentially around the pump chamber 30, sharing common walls with each other and/or with the second chamber 50 or the third chamber 60, each having their own port for fluid communication with an appropriate stage of the vacuum pump.
Vacuum Chamber Module—2.SUP.nd .Embodiment
[0044]
Vacuum Chamber Module—3.SUP.rd .Embodiment
[0045]
[0046] Turning now to
[0047] Hence, it can be seen that a second or further pump can also share the same pump chamber but be positioned at the opposite end and connected to different vacuum chambers as required. This allows one pump embedded in the vacuum pump chamber to pump on some of the vacuum chambers and a second pump fitted into the opposite end to pump other of the vacuum chambers. It is also possible that they could both pump together on one or more shared vacuum chambers to boost pumping speed and hence vacuum performance if needed.
[0048] Although illustrative embodiments of the invention have been disclosed in detail herein, with reference to the accompanying drawings, it is understood that the invention is not limited to the precise embodiment and that various changes and modifications can be effected therein by one skilled in the art without departing from the scope of the invention as defined by the appended claims and their equivalents.
[0049] Although elements have been shown or described as separate embodiments above, portions of each embodiment may be combined with all or part of other embodiments described above.
[0050] Although the subject matter has been described in language specific to structural features and/or methodological acts, it is to be understood that the subject matter defined in the appended claims is not necessarily limited to the specific features or acts described above. Rather, the specific features and acts described above are described as example forms of implementing the claims.