VACUUM PUMP
20170204858 ยท 2017-07-20
Inventors
Cpc classification
F04C27/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C23/001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2220/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C21/104
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/126
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C27/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2240/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C27/001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/086
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04C27/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C25/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention relates to a multi-stage vacuum pump comprising: first and second half-shell stator components and first and second end stator components which when assembled define a plurality of pumping chambers. The half-shell components are assembled together along respective pairs of mutual engaging longitudinal faces and the end stator components are assembled at the ends of the half-shell components at respective pairs of mutual engaging end faces. An annular channel is counter-sunk in at least one end face of each pair of mutual engaging end faces for receiving respective sealing members for sealing between the half-shell components and the end stator components. Recesses are counter-sunk at the end portions of the longitudinal faces for receiving a sealant and supports provide support for the annular sealing members at the recesses when the annular sealing members are received in the annular channels to resist protrusion of the annular sealing members into the recesses when compressed between mutually engaging end faces.
Claims
1. A multi-stage vacuum pump having a stator comprising: (a) first and second half-shell stator components and first and second end stator components which when assembled define a plurality of pumping chambers; wherein the half-shell components being assembled together along respective pairs of mutual engaging longitudinal faces and the end stator components being assembled at the ends of the half-shell components at respective pairs of mutual engaging end faces; (b) a longitudinal channel counter-sunk in at least one longitudinal face of each pair of mutual engaging longitudinal faces for receiving respective longitudinal sealing members for sealing between the half-shell components; (c) an annular channel counter-sunk in at least one end face of each pair of mutual engaging end faces for receiving respective sealing members for sealing between the half-shell components and the end stator components; (d) recesses counter-sunk at the end portions of the longitudinal faces for receiving a sealant for sealing between the longitudinal sealing members and the annular sealing members; and (e) supports for supporting the annular sealing members at the recesses when the annular sealing members are received in the annular channels to resist protrusion of the annular sealing members into the recesses when compressed between mutually engaging end faces.
2. The multistage vacuum pump of claim 1, wherein the supports extend across respective recesses transverse to a plane of the longitudinal faces.
3. The multistage vacuum pump of claim 1, wherein the supports are formed by walls extending from the counter sunk surfaces of respective recesses in alignment with the annular channels.
4. The multistage vacuum pump of claim 1, wherein the annular channels have a channel width for receiving the annular sealing members and the supports have a support width which is less than the channel width to allow sealant in the recesses to contact the annular sealing members.
5. The multistage vacuum pump of claim 4, wherein on both sides of each support a space is provided between the support and the end face so that sealant can flow and directly contact and seal against an annular sealing member in the annular channel on both sides of the support.
6. The multistage vacuum pump of claim 1, wherein the depth of the recesses is approximately equal to the depth of the longitudinal channels to allow sealant to flow around the longitudinal sealing members to prevent the formation of a leakage path.
7. A multi-stage vacuum pump having a stator comprising: (a) first and second half-shell stator components and first and second end stator components which when assembled define a plurality of pumping chambers; wherein the half-shell components being assembled together along respective pairs of mutual engaging longitudinal faces and the end stator components being assembled at the ends of the half-shell components at respective pairs of mutual engaging end faces; (b) a longitudinal channel counter-sunk in at least one longitudinal face of each pair of mutual engaging longitudinal faces for receiving respective longitudinal sealing members for sealing between the half-shell components; (c) an annular channel counter-sunk in at least one end face of each pair of mutual engaging end faces for receiving respective sealing members for sealing between the half-shell components and the end stator components; and (d) shallow recesses counter-sunk at the end portions of the longitudinal faces for receiving a sealant for sealing between the longitudinal sealing members and the annular sealing members; wherein the depth of the shallow recesses is less than the depth of the longitudinal channels and counter-sunk into each recess is at least one deep pocket extending from the longitudinal channel for allowing sealant to flow around a longitudinal sealing member received in the longitudinal channel for preventing the formation of a leakage path.
8. The multistage vacuum pump of claim 7, wherein the deep pockets have a depth approximately equal to the depth of the longitudinal channels.
9. The multistage vacuum pump of claim 7, wherein the deep pockets are spaced from the annular channels so that the spacing between the half shell stator components at the annular channels is defined by the depth of the shallow recesses for resisting protrusion of annular sealing members received in the annular channels protruding between the half shell stator components.
10. The multistage vacuum pump of claim 7, wherein deep pockets extend laterally from both sides of respective longitudinal channels.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] In order that the present invention may be well understood, an embodiment thereof, which is given by way of example only, will now be described in more detail, with reference to the accompanying drawings, in which:
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
DETAILED DESCRIPTION OF THE INVENTION
[0022] By way of background to the invention, US2002155014 discusses the problem of sealing a clam shell stator. In particular, it indicates that leakage lines exist between a longitudinal gasket providing peripheral radial sealing and O-rings providing axial sealing at the ends, which results in unsatisfactory sealing. As a consequence the patent proposes a one-piece three-dimensional sealing member as discussed above. This three-dimensional sealing member is expensive to manufacture and intricate to fit in place.
[0023] Previous patent applications of the present applicant have proposed the use of four separate sealing components, namely two longitudinal sealing members, or gaskets, for sealing between the half-shell components 102, 104 in
[0024] It was found however as shown in section A-A that the sealant 152 did not penetrate sufficiently into the channel 142 to provide an adequate seal between the longitudinal sealing member 140 and the half shell components. Spaces 154 in channel 142 are formed and as shown in the plan view in
[0025] In order to increase penetration of the sealant around the longitudinal sealing member the depth of the recess 144 was increased so that it was approximately equal to the depth of the longitudinal channel 142. This arrangement provided adequate sealing about the longitudinal sealing member 140 but resulted in less than adequate sealing at the annular sealing member 146. In this regard, the sealant is fluid when applied until allowed to cure, and when the annular sealing member is compressed between the end faces of the half shell components and the internal face of the end components a kink is formed in the annular sealing member where it protrudes into the deep recess between the half shell components and displaces sealant which in its fluid state cannot provide sufficient resistance to kinking. Whereas the shallow recess shown in
[0026] Embodiments of the invention provide a solution having adequate sealing at both the longitudinal sealing member and the annular sealing member.
[0027] A first embodiment of the invention is described with reference to
[0028] Stator component 10 comprises a deep longitudinal channel 16 extending along a length of each of the longitudinal faces 12 for receiving a longitudinal sealing member (not shown in these Figures but see
[0029] As previously discussed, a problem with such a deep recess as shown in
[0030] In more detail, a support 24 upstands from the counter sunk surface of recess 20 at the end face 18 for supporting the annular sealing member. As shown, the support is formed by a wall which is generally in line with the counter sunk surface of the annular channel 22. The annular channel has a width for receiving and locating the annular sealing member and the wall extends only partially over the width of the annular channel. On at least one side, and preferably on both sides as shown in
[0031] During assembly, a longitudinal sealing member is inserted in each of the longitudinal channels 16 shown in
[0032] The deep recess 20 is of comparable depth to that of the deep channel 16. Therefore, the sealant when applied can penetrate around the longitudinal sealing member when it is positioned in the longitudinal channel.
[0033]
[0034] A second embodiment of the invention is described with reference to
[0035] The principal difference between the second embodiment and the first embodiment is that a shallow recess, rather than a deep recess, connects the deep channels of the longitudinal sealing members with the annular channels of the annular sealing members. The reduced depth of the shallow recess reduces kinking of the annular sealing members since there is less space between the half shell stator components into which the annular sealing members can protrude when compressed. However, as previously indicated, a shallow recess around the deep channel of the longitudinal sealing members prevents or reduces penetration of the sealant around the longitudinal sealing members. Therefore, the second embodiment comprises a deep pocket in the shallow recess to permit adequate penetration of sealant.
[0036] In more detail, and referring to
[0037] The shallowness of the recess 36 means that the annular sealing member 42 may not require support across the gap between the half shell stator components 102, 104 to prevent significant kinking of the annular sealing member. Nevertheless, a support such as a wall 25 shown schematically may be provided upstanding from the counter sunk surface of the shallow recess to give additional support to the annular sealing members across the space between the half-shell components, similarly to wall 24 of the first embodiment.
[0038] In assembly, the longitudinal sealing members 34 are positioned in the deep channels 40 and secured in tension between the pinch points 28. The two half shell stator components 182, 104 are brought together along their respective mutually engaging longitudinal faces 12 compressing the longitudinal sealing member and providing sealing along the length of the stator. Sealant 32 may be applied prior to assembling the half shell stator components or injected following assembly. If applied prior to assembly the overflow channels 30 allow excess sealant to escape or in the alternative the side channels 26 can be used to inject sealant under pressure into the assembled components. The deep pockets 38 allow sealant to flow from the shallow recesses 36 around the cross-section of the end portions of the longitudinal sealing members to provide adequate sealing as shown in
[0039] In both embodiments, bores 44 are provided in the half shell stator components for receiving fastening members such as bolts for fastening the components together.
[0040] When the half shell stator components are assembled together they define the annular channels 22 at each end of the assembly and following assembly the annular sealing members 42 are positioned in the annular channels. Assembly of the end stator components 122, 124 at the end faces of the assembled half shell components compresses the annular sealing members. This compression applies an axial force to the annular sealing members but as the gap between the half shell stator components is reduced by the shallow recess 36 the annular sealing members do not protrude into the recesses to affect adequate sealing, particularly if a supporting wall is provided.
[0041] The present description uses the terms deep and shallow. In the context of this description, deep refers to the depth substantially equal to that of the longitudinal channels counter sunk into the end faces 12 for the longitudinal sealing members. The depth is required for receiving the longitudinal sealing members and to allow sealant to seal around the end portions of the longitudinal sealing members to prevent leakage. Shallow refers to a depth counter sunk into the end faces 12 which is less than deep, preferably less than half of the depth and more preferably less than a quarter of the depth, and which in insufficient to allow sealant to penetrate around the longitudinal sealing members. The exact measurements of deep and shallow depend on the overall measurements of the stator and pump, however typically deep may be 2 mm or more, and shallow may be 1 mm or less or preferably 0.5 mm or less.