Centrifugal pump for cryogenic pumped media
10954952 · 2021-03-23
Assignee
Inventors
Cpc classification
F04D29/061
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/406
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05C2203/0886
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/049
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/126
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D13/0633
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D29/059
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
In a rotary direct-drive single-stage or multi-stage centrifugal pump (1) for cryogenic liquids, having a pump housing (2) for the pump (1) and an electric drive motor unit (12) in a motor housing (10) serving as a pump drive, wherein a shaft (11) of the drive motor unit (12) is mounted on two roller bearings (20; 21), and wherein at least one roller bearing (20; 21) is an unlubricated roller bearing, the structural design of the centrifugal pump (1) should be kept as simple as possible. This is achieved in that at least a first communicating connection, in particular a direct connecting channel (16), is configured between the pressure side (D) in the pump housing (2) and the roller bearing (21) on the pump housing side for a diverted part (F.sub.A1) of the main conveying flow (F.sub.H) of the cryogenic pumped medium to the roller bearing (21), and that a second communicating connection is configured between the roller bearing (21) on the pump housing side and the suction side (S) for the diverted part (F.sub.A2) of the cryogenic pumped medium back to the suction side (S) in the main conveying flow (F.sub.H) of the cryogenic pumped medium, so that a circulation of the diverted part (F.sub.A1, F.sub.A2) of the cryogenic pumped medium is ensured between the pressure side (D) in the pump housing (2) and only the roller bearing (21) on the pump housing side.
Claims
1. A rotary direct-drive single-stage or multi-stage centrifugal pump for a cryogenic medium, having a pump housing for the pump and an electric drive motor unit serving as a pump drive in a motor housing, wherein a shaft of the drive motor unit is mounted on two roller bearings and wherein a first roller bearing of said two roller bearings is an initially unlubricated roller bearing that is configured for lubrication during operation of the centrifugal pump by the cryogenic medium, and further wherein the first roller bearing is on a pump housing side and located nearer to the pump housing compared to a second roller bearing on a drive motor side of said two roller bearings, characterized in that a first communicating connection is configured between a pressure side in the pump housing and the first roller bearing on the pump housing side, for a diverted part of a main conveying flow of the cryogenic medium to the first roller bearing, and a second communicating connection is configured between the first roller bearing on the pump housing side and a suction side for the diverted part of the main conveying flow of the cryogenic medium back to the suction side and into the main conveying flow of the cryogenic medium, wherein a circulation of the diverted part of the cryogenic pumped medium is ensured between the pressure side in the pump housing and only the first roller bearing on the pump housing side, wherein a housing cover is located between the motor housing and the pump housing, and the housing cover has a connecting channel in the shape of a bore between the pressure side in the pump housing and the first roller bearing on the pump housing side to form the first communicating connection, and wherein the housing cover and the shaft are sealingly engaged to achieve a barrier between the pump housing and the motor housing.
2. The pump according to claim 1, characterized in that the pump is designed for use in a horizontal position.
3. The pump according to claim 2, characterized in that the motor housing, at a location lowest in said horizontal position, has an outlet bore, wherein a pressure equalization line between the motor housing and the suction side is attachable at the outlet bore.
4. The pump according to claim 1, characterized in that the first roller bearing on the pump housing side, is a hybrid bearing.
5. The pump according to claim 4, characterized in that inner and outer races of the first roller bearing on the pump housing side are made of steel and have a chromium-based coating in a region of running surfaces, and balls of the first roller bearing on the pump housing side are made of a ceramic.
6. The pump according to claim 5, characterized in that the first roller bearing on the pump housing side comprises a cage for mutual spacing of the balls, wherein a separate chamber is created by the cage for each of the balls and wherein the cage is made of reinforced polytetrafluoroethylene (PTFE), stainless steel, polyetheretherketone (PEEK), brass, or a combination thereof.
7. The pump of claim 5, wherein the ceramic is silicon nitride (Si.sub.3N.sub.4).
8. A method for operating a pump according to claim 1, comprising at least the method steps: commissioning the pump for conveying the main conveying flow of the cryogenic medium from an inlet opening to an outlet opening, characterized in that during operation, the diverted part is conducted from the main conveying flow of the cryogenic medium between the pressure side in the pump housing and the first roller bearing on the pump housing side via the first communicating connection, and the diverted part is conducted back to the suction side via the second communicating connection, so that the circulation of the diverted part of the cryogenic medium is ensured between the pressure side in the pump housing and only the first roller bearing on the pump housing side.
9. The method according to claim 8, characterized in that during said operation of the centrifugal pump, due to the centrifugal forces, a pressure on the pressure side, being in an outer radial region of the pump housing, increases with respect to a pressure at the first roller bearing, being arranged in an inner radial region of the pump housing, causing a pressure gradient that diverts a part of the main conveying flow of the cryogenic medium in the direction of the first roller bearing via the first communicating connection and thereby a cryogenic lubrication and cooling of the first roller bearing.
10. The method according claim 8, characterized in that the pump is installed in a horizontal position during said commissioning.
11. The method of claim 8, wherein the first communicating connection is a direct connecting channel for the diverted part of the main conveying flow of the cryogenic medium to the first roller bearing.
12. The pump of claim 1, wherein the first communicating connection is a direct connecting channel for the diverted part of the main conveying flow of the cryogenic medium to the first roller bearing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) A preferred embodiment of the subject matter according to the invention is described below in conjunction with the accompanying drawings. It shows:
(2)
DESCRIPTION
(3)
(4) The drive motor unit 12 has a shaft 11 which is mounted in two roller bearings 20; 21. A roller bearing 20 on the drive motor side, i.e., farther from the pump wheel 5 or pump housing 2, is in this case mounted in a housing cover 9 on the drive motor side. In the presently preferred embodiment, the shaft 11 is a one-piece shaft which functions both as a motor shaft and as a pump shaft. Alternatively, a design of the centrifugal pump 1 having a non-integral shaft is conceivable in which a motor shaft can be connected to a pump shaft via a coupling. At the free end of the shaft 11 facing the pump housing 2, both a pump wheel 5 and an running wheel 6 designed as an impeller 6 are fastened here by means of a fixing screw 7. The pump wheel 5 is exemplified here as a spiral-shaped conveying paddle.
(5) As can be seen in
(6) There is an intermediate piece in the form of a housing cover 15 located between the motor housing 10 and pump housing 2, wherein this housing cover 15 with suitable fixing means establishes a firm connection between the motor housing 10 and the pump housing 2. The housing cover 15 has adapter and separation function. The roller bearing 21 on the pump housing side, i.e., located nearer to the pump housing 2 or pump wheel, is mounted in the housing cover 15. According to the preferred embodiment shown here, an insulating disk 19 is preferably arranged between the housing cover 15 and the motor housing 10.
(7) A first communicating connection is between the pressure side D in the pump housing 2 and the roller bearing on the pump housing side 21, in particular as a direct connecting channel 16, configured for a diverted part F.sub.A1 of the main conveying flow F.sub.H of the cryogenic pumped medium. The connecting channel 16 is formed here in the shape of a bore in the housing cover 15 and extends here by way of example between roller bearings 21 transversely outwards to an outer radial region of the pump housing 2. In
(8) During operation of the centrifugal pump 1, a pressure P.sub.2 increases on the pressure side D in the outer radial region of the pump housing 2 against a pressure P.sub.1 at the suction side S in an inner radial region of the pump housing 2 due to the centrifugal forces. The pressure P.sub.2 on the pressure side D usually corresponds to the pressure to be achieved of the exiting main conveying flow F.sub.H of the cryogenic pumped medium. In other words, a pressure gradient forms, wherein: P.sub.2>P.sub.1. This pressure gradient causes a diversion of a part F.sub.A1 from the main conveying flow F.sub.H of the cryogenic pumped medium in the direction of the roller bearing 21 and thereby a flow through or a to the roller bearing and cryogenic lubrication and cooling of the roller bearing 21. In other words, the circulation is ensured by the pressure gradient or the pressure difference between pressure side D and suction side S. It has been found that in the centrifugal pump 1 according to the invention, a pressure gradient or a pressure difference between P.sub.1 and P.sub.2 can be adjustable from 0.8 to 8 bar, wherein this pressure gradient can be influenced in particular by the pump speed and the diameter of the running wheel.
(9) Between the roller bearing 21 and the suction side S in the pump housing 2, a second communicating connection is configured for the return of the diverted part F.sub.A2 of the cryogenic pumped medium back to the suction side S in the pump housing 2, so that a circulation of the diverted part F.sub.A1; F.sub.A2 of the cryogenic pumped medium between the pressure side D in the pump housing 2 via the roller bearing 21 on the pump housing side back to the suction side S is ensured. According to the preferred embodiment shown here in
(10) An annular shaped sealing element 18 surrounding the shaft 11 is arranged between the housing cover 15 and the shaft 11 to provide a seal and to achieve a barrier between the pump housing 2 and the motor housing 10. This sealing element 18 forces, as can be seen in
(11) Ideally, the centrifugal pump 1 is designed or suitable to be operated in a horizontal position, i.e., in a horizontally oriented longitudinal axis of the shaft 11, for use, for example, on a truck. For example, the centrifugal pump 1 is preferably configured such that the outlet bore 13 shown in
(12) The unlubricated roller bearing 21 in the housing cover 15 here comprises a plurality of balls 23, an inner race 25 and an outer race 27 each with running surfaces, between which the balls 23 are arranged, wherein here the balls 23 may be made of ceramic. The races 25; 27 are preferably made of steel and ideally have a chromium-based coating in the region of the running surfaces.
(13) Such an unlubricated roller bearing 21 or ball bearing is also referred to as a hybrid bearing, in which different materials are used for the races 25; 27 and the balls 23 (also called rolling bodies). The most common type is that of the deep groove ball bearing with conventional races 25; 27 made of steel and balls 23 made of a high-strength ceramic, usually silicon nitride.
(14) The roller bearing 20 in the housing cover 9 on the drive motor side can be made identical to the roller bearing 21, but it can also advantageously be a conventional, lubricated roller bearing for cost reasons.
(15) The mutual distance of the balls 23 in the unlubricated roller bearing 21 is ensured by a cage (not shown in
LIST OF REFERENCE NUMBERS
(16) 1 centrifugal pump 2 pump housing 3 bore (in the pump housing) 4 suction flange 5 pump wheel 6 running wheel 7 fixing screw 9 housing cover on the drive motor side 10 motor housing 11 shaft 12 drive motor unit 13 outlet bore (in the motor housing) 14 pressure compensation line (between suction side and pressure side) 15 housing cover on the pump housing side 16 connecting channel (for diverted, cryogenic medium) 17 labyrinth seal 18 sealing element 19 insulating disk 20 roller bearing on the drive motor side 21 roller bearing on the pump housing side 22 ball (upper roller bearing) 23 ball (lower roller bearing) 24 inner race (upper roller bearing) 25 inner race (lower roller bearing) 26 outer race (upper roller bearing) 27 outer race (lower roller bearing) A outlet opening B bore (in the running wheel) D pressure side E inlet opening F.sub.A1 diverted, cryogenic pumped medium (pressure side to the roller bearing) F.sub.A2 diverted, cryogenic pumped medium (roller bearing to the suction side) F.sub.H main conveying flow cryogenic medium L longitudinal axis O.sub.1 upper opening (of the roller bearing on the pump housing side) O.sub.1 lower opening (of the roller bearing on the pump housing side) S suction side S.sub.1 upper suction side