PUMP ASSEMBLY, IN PARTICULAR FOR SUPPLYING A SLIDE RING SEAL ASSEMBLY
20210025396 ยท 2021-01-28
Assignee
Inventors
- Markus Bareis (Pflugdorf, DE)
- Christian Eisfeld (Wolfratshausen, DE)
- Martin Ertl (Holzhausen, DE)
- Christoph Karner (Geretsried, DE)
- Hans-Georg Scherer (Geretsried, DE)
- Berthold Schulten (Geretsried, DE)
Cpc classification
F04D13/026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D1/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/041
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/3484
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D13/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D1/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D13/024
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The invention relates to a pump assembly, especially of a mechanical seal assembly, for supplying a fluid, especially to a mechanical seal (2a, 2b), comprising exactly one drive (11) comprising a drive shaft (24), a first axial pump (21), which conveys the fluid in the axial direction (X-X) of the drive shaft, a second axial pump (22), which conveys the fluid in the axial direction of the drive shaft, and a radial pump (23), which conveys the fluid in the radial direction (R) of the drive shaft, wherein the first axial pump (21) and the second axial pump (22) are arranged in front of the radial pump (23) in the flow-through direction (B) of the fluid across the pump assembly, and wherein the drive (11) simultaneously drives the first axial pump (21), the second axial pump (22) and the radial pump (23).
Claims
1. A pump assembly, especially for a mechanical seal assembly, for supplying a fluid, especially to a mechanical seal, comprising: exactly one drive comprising a drive shaft, a first axial pump, which conveys the fluid in an axial direction of the drive shaft, a second axial pump, which conveys the fluid in the axial direction of the drive shaft and a radial pump, which conveys the fluid in a radial direction of the drive shaft, wherein the first axial pump and the second axial pump, in flow-through direction of the fluid across the pump assembly, are arranged in front of the radial pump, and wherein the drive simultaneously drives the first axial pump, the second axial pump and the radial pump.
2. The pump assembly according to claim 1, furthermore comprising a magnetic coupling comprising an input part having first permanent magnets, a fixed hollow cylinder and an output part having second permanent magnets.
3. The pump assembly according to claim 2, wherein the input part comprises the drive shaft of the drive.
4. The pump assembly according to claim 2, wherein the first permanent magnets, in the axial direction of the drive shaft, are offset by a distance in relation to the second permanent magnets, wherein the first permanent magnets partially overlap the second permanent magnets in the radial direction.
5. The pump assembly according to claim 1, wherein the first axial pump conveys the fluid in a first axial direction and the second axial pump conveys the fluid in a second axial direction, which is opposite to the first axial direction.
6. The pump assembly according to claim 2, wherein the first axial pump, the second axial pump and the radial pump are directly arranged at the output part of the magnet coupling.
7. The pump assembly according to claim 1, wherein the first axial pump and the second axial pump are formed as conveying thread pumps.
8. The pump assembly according to claim 1, furthermore comprising a one-piece pump housing, which includes an inlet and an outlet.
9. The pump assembly according to claim 8, wherein an inlet direction into the inlet is equal to an outlet direction into the outlet.
10. The pump assembly according to claim 1, furthermore comprising a fluid flow divider, which divides the fed fluid flow into first and second sub-flows, wherein the first sub-flow flows to the first axial pump and the second sub-flow flows to the second axial pump.
11. The pump assembly according to claim 1, wherein the output part includes a rotary sleeve, where the first axial pump, the second axial pump, the radial pump and the second permanent magnets are arranged.
12. The pump assembly according to claim 1, furthermore comprising a control unit, which is adapted for controlling a drive speed of the drive, so as to determine a flow rate of the pump assembly.
13. The pump assembly according to claim 4, wherein the output part comprises a first radial bearing and a second radial bearing and comprising exactly one axial bearing for axially supporting the output part.
14. A mechanical seal assembly, comprising a mechanical seal comprising a rotating slide ring and a stationary slide ring, defining a sealing gap at sliding surfaces which are opposite to each other, and a fluid circuit comprising a pump assembly according to claim 1.
15. The mechanical seal according to claim 14, comprising a first mechanical seal and a second mechanical seal, which are arranged in series, wherein a barrier medium is fed into a space between the first and second mechanical seals.
Description
[0018] In the following, a preferred example embodiment of the invention will be described in detail while making reference to the accompanying drawing, wherein:
[0019]
[0020]
[0021] As it may be seen from
[0022] For operating the two mechanical sealings 2a, 2b, a fluid circuit 7 is arranged, which uses a fluid or a barrier medium, for example a liquid oil or the like, respectively.
[0023] In this embodiment, the first and second mechanical seals 2a, 2b are similarly designed, each comprising a rotating slide ring 3 and a stationary slide ring 4, defining a sealing gap 5 between the sliding surfaces thereof. The rotating slide ring 3 are fixed at the shaft 13 using a sleeve-shaped retention member 14. The stationary slide ring 4 are commonly fixed in a seal housing 6.
[0024] As it may be seen from
[0025] As it may be seen from
[0026] The pump assembly 10 may be seen in detail from
[0027] The first and second axial pump 21, 22 are similarly designed, wherein a conveying direction of the first axial pump in a first axial direction is X1 and the conveying direction of the second axial pump in an opposite axial direction is X2.
[0028] As it may further be seen from
[0029] As it may further be seen from
[0030] As it is shown in
[0031] The magnetic coupling 30 comprises an input part 30a and an output part 30b. The input part 30a comprises a drive shaft 24 of the drive 11 as well as first permanent magnets 31. The output part 30b comprises the second permanent magnets 32 as well as a rotary sleeve 39. The second permanent magnets 32 are arranged at the rotary sleeve 39.
[0032] Moreover, two fixed sleeves 37a, 37b are arranged at the outer circumference of the rotary sleeve 39. Herein, the axial pumps 21, 22 are formed as conveying threads between the fixed sleeves 37a, 37b and the rotary sleeve 39. The radial pump 23 is arranged between the two fixed sleeves 37a, 37b. In
[0033] In the pump housing 38, an inlet 42 is additionally provided, wherein an inlet direction in the inlet 42 is equal to an outlet direction in the outlet 41, namely radial. As it may be seen from
[0034] A first radial bearing 34 and a second radial bearing 35 is provided to support the rotating sleeve 39. This involves radial bearing of the rotation sleeve 39 opposite to the hollow cylinder 33. As it is shown in
[0035] The axial bearing 36 is arranged in a closing member 44, which closes the pump housing 38.
[0036] As it is further shown in
[0037] Operation of the pump assembly 10 is performed as follows. When the drive 11 is driven by the control unit 12, the drive shaft 24 and thus the first permanent magnets 31 will rotate. Due to the magnetic forces acting on the second permanent magnets 32, the rotary sleeve 39 also starts rotating. In this way, suction of the fluid via the inlet 42 to a fluid flow divider 43 occurs. As indicated by the arrows in
[0038] Thus, the fluid is conveyed to the radial pump 23 arranged between the two axial pumps 21, 22 by the two axial pumps 21, 22. The radial pump then causes deviation of the axially fed fluid in the radial direction R and conveys the fluid into the pressure line 71 via the outlet 41 and towards the slide ring sealings 2a, 2b (cf.
[0039] Thus, three pumping stages are integrated in a pump assembly, providing two axial pumping stages and one radial pumping stage. Herein, the two axial pumping stages are countercurrently formed and are preferably formed as a conveying thread. The countercurrent arrangement of the first and second axial pump 21, 22 allows overcoming the axial forces occurring during conveying. Moreover, the arrangement of the first permanent magnets 31 which is offset in the axial direction X-X in relation to the second permanent magnets 32 ensures that a pretensioning force F will consistently be exerted onto the only axial bearing 36. Due to the arrangement, that pretensioning force F is independent of a rotational speed and independent of a viscosity of the fluid.
[0040] The pump assembly 10 according to the invention is very compact and robust and is especially adapted to high pressures up to 20010.sup.5 Pa. When the two axial pumps 21, 22 are formed as a conveying thread and closed circuit of the fluid exists, no other safety systems or sealing systems are required to be provided. Moreover, the first and second axial pumps formed as a conveying thread as well as the radial pump ensure that low friction occurs within the fluid during operation, so as to result in low heat development. Another great advantage of the pump assembly 10 according to the invention resides in that control of an amount of fluid being pumped only depends on the speed of the drive and thus may easily be realized using the control unit 12. Furthermore, the one-piece, cross-sectionally U-shaped pump housing 38 allows realization of an easy to mount assembly. Alternatively, the pump housing may also be provided as being multi-part.
[0041] Moreover, by using conveying threads as the first and second axial pump 21, 22 circulation of the fluid may be ensured during failure of the pump assembly, until complete shutdown occurs.
LIST OF REFERENCE NUMBERS
[0042] 1 mechanical seal assembly [0043] 2a first mechanical seal [0044] 2b second mechanical seal [0045] 3 rotating slide ring [0046] 4 stationary slide ring [0047] 5 sealing gap [0048] 6 seal housing [0049] 7 fluid circuit [0050] 8 product side [0051] 9 atmosphere side [0052] 10 pump assembly [0053] 11 drive [0054] 12 control unit [0055] 13 shaft [0056] 14 retention member for rotating slide ring [0057] 15 space [0058] 21 first axial pump [0059] 22 second axial pump [0060] 23 radial pump [0061] 24 drive shaft [0062] 30 magnet coupling [0063] 30a input part [0064] 30b output part [0065] 31 first permanent magnets [0066] 32 second permanent magnets [0067] 33 fixed hollow cylinder [0068] 34 first radial seal [0069] 34a groove [0070] 35 second radial seal [0071] 35a groove [0072] 36 axial bearing [0073] 37a fixed sleeve [0074] 37b fixed sleeve [0075] 38 pump housing [0076] 39 rotary sleeve [0077] 41 outlet [0078] 42 inlet [0079] 43 fluid flow divider [0080] 44 closing member [0081] 70 suction line [0082] 71 pressure line [0083] A distance [0084] B flow-through direction of the pump assembly [0085] B1, B2 first and second sub-flow in the pump assembly [0086] F pretensioning force
[0087] R radial direction [0088] X1 first axial direction [0089] X2 second axial direction [0090] X-X axial direction (central axis) of the pump assembly [0091] Y-Y central shaft axis