Pump Arrangement With a Temperature Controllable Housing Part
20220316497 ยท 2022-10-06
Inventors
Cpc classification
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
F04D29/588
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/426
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B22F5/10
PERFORMING OPERATIONS; TRANSPORTING
F04D1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B22F10/28
PERFORMING OPERATIONS; TRANSPORTING
F04D29/586
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B33Y80/00
PERFORMING OPERATIONS; TRANSPORTING
B22F10/25
PERFORMING OPERATIONS; TRANSPORTING
B22F12/38
PERFORMING OPERATIONS; TRANSPORTING
F05D2260/31
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B22D25/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
F04D29/58
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B33Y80/00
PERFORMING OPERATIONS; TRANSPORTING
F04D1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to a pump arrangement (1) with at least one temperature-controllable housing part, wherein at least one temperature-controllable housing part (3) comprises a first wall (27) that is in contact with the temperature-controllable medium and a second wall (28) that is at a distance from the first wall (27). The first wall (27) and the second wall (28) form a temperature control chamber (29).
Claims
1-13. (canceled)
14. A pump arrangement, comprising: at least one temperature-controllable casing part having a first wall arranged to be in contact with a temperature-controllable medium and a second wall at a distance from the first wall such that a temperature-control chamber is formed between the first wall and the second wall.
15. The pump arrangement as claimed in claim 14, wherein an axis of rotation extends between the first wall and the second wall, and at least one circular channel is arranged in the temperature-control chamber concentrically with the axis of rotation.
16. The pump arrangement as claimed in claim 15, wherein a plurality of struts are located in the temperature-control chamber, the plurality of struts being arranged to connect the inner wall to the outer wall and form channels extending in a circular shape concentrically with the axis of rotation.
17. The pump arrangement as claimed in claim 16, wherein a first collection chamber and a second collection chamber are located in the temperature-control chamber, the first collection chamber and the second collection chamber extend from a region adjacent to a suction pipe on the at least one temperature-controllable casing part to a region adjacent to a pressure pipe on the at least one temperature-controllable casing part.
18. The pump arrangement as claimed in claim 17, wherein a third collection chamber is located in the temperature-control chamber.
19. The pump arrangement as claimed in claim 18, further comprising: a first connecting device configured to direct flow of a cooling medium or a heating medium into the temperature-control chamber to control a temperature of the at least one temperature-controllable casing part; and a second connecting device configured to direct flow of the cooling or heating medium flows out of the temperature-control chamber.
20. The pump arrangement as claimed in claim 19, further comprising: a third connecting device in fluid communication with the third collection chamber configured to permit emptying of the temperature-control chamber.
21. The pump arrangement as claimed in claim 20, wherein at least one circular channel is located in the temperature-control chamber concentrically with the axis of rotation. the at least one circular channel includes a structure configured to increase turbulence in the cooling medium or the heating medium.
22. The pump arrangement as claimed in claim 21, wherein at least one temperature-controllable casing part includes a support structure.
23. The pump arrangement as claimed in claim 22, wherein the support structure is configured to interconnect construction elements of the at least one temperature-controllable casing part to which additional components of the pump arrangement are fixable, and the interconnect construction elements include one or more of casing feet, suction pipes, pressure pipes and connection points.
24. The pump arrangement as claimed in claim 23, wherein the support structure includes horizontally, vertically and diagonally extending accumulations of material which form interconnection or intersection points.
25. The pump arrangement as claimed in claim 24, wherein free ends of the support structure include blind holes configured to receive fasteners.
26. A method for producing a temperature-controllable casing part for a pump arrangement, the temperature-controllable casing part having a first wall arranged to be in contact with a temperature-controllable medium and a second wall at a distance from the first wall such that a temperature-control chamber is formed between the first wall and the second wall, comprising the step of: forming the hydraulic casing as an integral component using 3D-printing, selective laser melting, precision casting or gravity casting.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
BRIEF DESCRIPTION
[0035]
[0036] The component 3, which is in the form of a hydraulic casing in the present example, comprises an inlet opening 9 on a suction pipe 8 for sucking in a conveying medium, and an outlet opening 11 on a pressure pipe 10 for ejecting the conveying medium. The casing cover 4 is arranged on the side of the hydraulic casing 3 which is opposite the inlet opening 9. The bearing carrier base 5 is fixed to the side of the casing cover 4 which faces away from the hydraulic casing 3. The bearing carrier 6 is attached to the side of the bearing carrier base 5 which is opposite the casing cover 4. In turn, the bearing cover 7 is fixed to the side of the bearing carrier 6 which faces away from the bearing carrier base 5.
[0037] A separating can 12 is fixed to the side of the casing cover 4 which faces away from the hydraulic casing 3 and extends at least in part through an interior 13 which is delimited by the pump casing 2, in particular by the casing cover 4, the bearing carrier base 5 and the bearing carrier 6. The separating can 12 hermetically seals a chamber 14, surrounded by the separating can, with respect to the interior 13.
[0038] An impeller shaft 15 which is rotatable about an axis of rotation A extends from a flow chamber 16 delimited by means of the hydraulic casing 3 and the casing cover 4 through an opening 17 provided in the casing cover 4 into the chamber 14.
[0039] An impeller 18 is fixed to a shaft end, located inside the flow chamber 16, of the impeller shaft 15, and an inner rotor 19 which is arranged inside the chamber 14 is arranged at the opposite shaft end. The inner rotor 19 is equipped with a plurality of magnets 20 which are arranged on the side of the inner rotor 19 facing the separating can 12.
[0040] A bearing arrangement 21 which is operatively connected to the impeller shaft 15, which is rotatably drivable about the axis of rotation A, is arranged between the impeller 18 and the inner rotor 19.
[0041] A drive motor (not shown), preferably an electric motor, drives a drive shaft 22. The drive shaft 22, which is rotatably drivable about the axis of rotation A, is arranged substantially coaxially with the impeller shaft 15. The drive shaft 22 extends through the bearing cover 7 and the bearing carrier 6 and is mounted in two ball bearings 23, 24 accommodated in the bearing carrier 6. An outer rotor 26 which supports a plurality of magnets 25 is arranged at the free end of the drive shaft 22. The magnets 25 are arranged on the side of the outer rotor 26 facing the separating can 12. The outer rotor 26 extends at least in part over the separating can 12 and interacts with the inner rotor 19 in such a way that the rotating outer rotor 26, by means of magnetic forces, also sets the inner rotor 19 and thus the impeller shaft 15 and the impeller 18 into rotation.
[0042]
[0043] As shown in
[0044] As shown in
[0045] The hydraulic casing 3 comprises a third connecting device 39 which is connected to the third collection chamber 36, which device is provided to completely empty the temperature-control chamber 29. The connecting device 39 is arranged in such a way that the temperature-control chamber 29 is emptied substantially in the axial direction. The connecting device 39 is designed to completely drain the contained cooling or heating medium at the lowest point of the temperature-control chamber 29.
[0046] The channel 32 or channels 32 comprise a defined structure O which is used to maximize turbulence in the cooling or heating medium and thus to maximize the heat exchange. In the exemplary embodiment shown, there are channels 32, which are for example circular, oval, substantially L or V-shaped or comprise depressions. The struts 31 can have for example a winged profile. The channel 32 or channels 32 and the struts 31 can also comprise bionic structures, for example a structure like sharkskin. In the embodiment shown by way of example, the outer wall 28 comprises, on the side pointing towards the external environment, a defined surface structure O, in particular a corrugated surface structure O.
[0047] As can be seen from
[0048] In order to cool or heat the hydraulic casing 3, the cooling or heating medium flows via the first connecting device 37 into the first collection chamber 34 of the temperature-control chamber 29 and from there into the individual channels 32 which are fluidically directly interconnected, then finally into the second collection chamber 35 and from there, out of the temperature-control chamber 29 via the second connecting device 38. In this process, a uniform temperature distribution over the hydraulic casing 3 is achieved.
[0049] It is understood that the cooling or heating medium can also be supplied to the temperature-control chamber 29 via the second connecting device 38 and flows out of the temperature-control chamber 29 via the first connecting device 37.
[0050] As shown in
[0051] The support structure 41 is designed to be optimized in terms of the flow of forces and in terms of topology. The support structure 41 comprises accumulations of material extending substantially horizontally, vertically and diagonally, which form interconnection or intersection points 45. Free ends 46 of the support structure 41 comprise blind holes 47, which are provided to receive fixing means (not shown), for example screws or threaded bolts.
[0052]
[0053] As shown in
[0054] The cooling/heating medium circulates in at least one channel 32, which is formed inside the temperature-controllable component 3 and provided with defined surface structures O for maximizing turbulence in the cooling/heating medium and thus for maximizing the heat exchange.
[0055] In addition, the sealing cover 3 comprises a third connecting device 39 which can be used to drain the contained cooling/heating medium at the lowest point of the cooling/heating channel 32 or of the temperature-control chamber which is not shown in the case of the sealing cover. For external circulation, a fifth connecting device 48 can be provided, which can be conducted back out of the component 3 via the third connecting device.
[0056] As shown in
[0057] In
[0058] The casing parts 3 described above for a pump arrangement 1 are advantageously produced as an integral component by means of 3D-printing, in particular metal 3D-printing, selective laser melting (SLM) or by means of precision casting.
[0059] The foregoing disclosure has been set forth merely to illustrate the invention and is not intended to be limiting. Since modifications of the disclosed embodiments incorporating the spirit and substance of the invention may occur to persons skilled in the art, the invention should be construed to include everything within the scope of the appended claims and equivalents thereof.