SLIDING-VANE PUMP
20240141893 ยท 2024-05-02
Assignee
Inventors
Cpc classification
F04C2240/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2240/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2/3448
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A sliding-vane pump includes a housing in which a cylindrical fluid chamber is formed, and a conveyor rotor which is rotatable in the fluid chamber and is guided on a circumferential wall of the fluid chamber. In the fluid chamber, the conveyor rotor delimits at least one conveyor chamber having a volume which is variable by rotation of the conveyor rotor, and a drive motor having a rotor which is attached rotationally fixedly on a drive shaft. The conveyor rotor is arranged positionally fixedly on the drive shaft and the drive shaft is radially mounted in the housing by means of the conveyor rotor.
Claims
1. Sliding-vane pump with a housing in which a cylindrical fluid chamber is formed, a conveyor rotor which is rotatable in the fluid chamber and is guided on a circumferential wall of the fluid chamber, wherein in the fluid chamber, the conveyor rotor delimits at least one conveyor chamber having a volume which is variable by rotation of the conveyor rotor, and with a drive motor having a rotor which is attached rotationally fixedly on a drive shaft, wherein the conveyor rotor is arranged positionally fixedly on the drive shaft and the drive shaft is radially mounted in the housing by means of the conveyor rotor.
2. Sliding-vane pump according to claim 1, wherein the drive shaft is radially mounted in the housing at a further bearing point axially spaced from the conveyor rotor.
3. Sliding-vane pump according to claim 1, wherein the conveyor rotor is axially fixed on the drive shaft and, together with the housing, forms an axial bearing for the rotor.
4. Sliding-vane pump according to claim 1, wherein the conveyor rotor has three circumferentially spaced, cylindrical guide faces which guide the conveyor rotor on the circumferential wall of the fluid chamber.
5. Sliding-vane pump according to claim 1, wherein the housing receives two radially displaceably mounted sliding-vanes which lie against the conveyor rotor, wherein the sliding-vanes lie diametrically opposite one another.
6. Sliding-vane pump according to claim 4, wherein the width of the cylindrical guide faces is greater than the width of the sliding-vanes.
7. Sliding-vane pump according to claim 1, wherein the conveyor rotor is formed from a material which has a higher coefficient of thermal expansion than the material from which the housing is formed.
8. Sliding-vane pump according to claim 1, wherein at least one fluid supply channel opens into the fluid chamber from each side in the axial direction.
9. Sliding-vane pump according to claim 1, wherein the drive motor is an electric motor.
10. Sliding-vane pump according to claim 2, wherein the conveyor rotor is axially fixed on the drive shaft and, together with the housing, forms an axial bearing for the rotor.
11. Sliding-vane pump according to claim 2, wherein the conveyor rotor has three circumferentially spaced, cylindrical guide faces which guide the conveyor rotor on the circumferential wall of the fluid chamber.
12. Sliding-vane pump according to claim 2, wherein the housing receives two radially displaceably mounted sliding-vanes which lie against the conveyor rotor, wherein the sliding-vanes lie diametrically opposite one another.
13. Sliding-vane pump according to claim 5, wherein the width of the cylindrical guide faces is greater than the width of the sliding-vanes.
14. Sliding-vane pump according to claim 2, wherein the conveyor rotor is formed from a material which has a higher coefficient of thermal expansion than the material from which the housing is formed.
15. Sliding-vane pump according to claim 2, wherein at least one fluid supply channel opens into the fluid chamber from each side in the axial direction.
16. Sliding-vane pump according to claim 2, wherein the drive motor is an electric motor.
17. Sliding-vane pump according to claim 3, wherein the conveyor rotor has three circumferentially spaced, cylindrical guide faces which guide the conveyor rotor on the circumferential wall of the fluid chamber.
18. Sliding-vane pump according to claim 3, wherein the housing receives two radially displaceably mounted sliding-vanes which lie against the conveyor rotor, wherein the sliding-vanes lie diametrically opposite one another.
19. Sliding-vane pump according to claim 3, wherein the conveyor rotor is formed from a material which has a higher coefficient of thermal expansion than the material from which the housing is formed.
20. Sliding-vane pump according to claim 3, wherein at least one fluid supply channel opens into the fluid chamber from each side in the axial direction.
Description
[0025] Further advantages and features of the invention can be found in the following description and from the accompanying drawings, to which reference is made. In the drawings:
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033] The fluid chamber 14 is formed in a housing 16.
[0034] In this exemplary embodiment, the housing 16 is made of two parts and comprises a motor housing 18 and a fluid housing 20.
[0035] The motor housing 18 contains a drive motor 22 (see
[0036] The drive motor 22 has a rotor 24 (see
[0037] The drive motor 22 is an electric motor in this exemplary embodiment.
[0038] As shown in
[0039] Depending on the position of the conveyor rotor, up to five conveyor chambers 32, 33, 34, 35, 36 are delimited in the fluid chamber, each with a volume which is variable by rotation of the conveyor rotor 28.
[0040] The direction of rotation of the conveyor rotor 28 is illustrated by an arrow 37 in
[0041] The conveyor rotor 28 is arranged positionally fixedly on the drive shaft 26, in particular directly on the drive shaft 26, i.e. without the presence of an intermediate element.
[0042] For example, the conveyor rotor 28 is pressed or moulded onto the drive shaft 26, or axially secured on the drive shaft by means of a locking ring 38.
[0043] Thus the conveyor rotor 28 is also axially fixed on the drive shaft 26, whereby the conveyor rotor 28, together with the housing 16 (in particular the fluid housing 20), forms an axial bearing for the rotor 24.
[0044] The drive shaft 26 is radially mounted in the housing 16 by means of the conveyor rotor 28.
[0045] In concrete terms, the conveyor rotor 28 radially supports the drive shaft 26 at one end or close to one axial end.
[0046] In the exemplary embodiment, the radial mounting is achieved in that the conveyor rotor 28 has three circumferentially spaced, in particular evenly spaced, cylindrical guide faces 40 which guide the conveyor rotor 28 on the circumferential wall 30 of the fluid chamber 14.
[0047] Also, the conveyor rotor 28 is centred in the housing 16 by the guide faces 40.
[0048] The conveyor rotor 28 in particular has the form of a triangle with rounded tips.
[0049] In the region of the conveyor rotor 28, the drive shaft 26 for example has a double-D profile for better torque transmission.
[0050] As
[0051] To this end, a bearing bush 44 is provided in the exemplary embodiment. It is however also conceivable that the bearing point 42 takes the form of a housing bore.
[0052] Outside of the bearing point 42, the drive shaft 26 is radially spaced from the housing.
[0053] The housing 16, in particular the fluid housing 20, receives two radially displaceably mounted sliding-vanes 46 which lie against the conveyor rotor 28.
[0054] The sliding-vanes 46 lie diametrically opposite one another.
[0055] The sliding-vanes 46 are elastically loaded against the conveyor rotor 28 by a spring element 48. This ensures that no gap occurs between the sliding-vanes 46 and the conveyor rotor 28.
[0056] The housing 16 has corresponding recesses 50 in which the spring elements 48 are arranged, and into or out of which the sliding-vanes 46 can move on rotation of the conveyor rotor 28.
[0057] Together with the conveyor rotor 28 and circumferential wall 30, the sliding-vanes delimit the conveyor chambers 32, 33, 34, 35, 36.
[0058] The width of the cylindrical guide faces 40 is greater than the width of the sliding-vanes 46 or recesses 50.
[0059] Two fluid ports 54, 56 (see
[0060] The sliding-vane pump 10 in particular draws in fluid from the suction line via the fluid port 56 and delivers this to the pressure line via the fluid port 54.
[0061]
[0062] In the exemplary embodiment, two pressure openings 60 are provided in the circumferential wall, from which fluid is conveyed in parallel to the pressure region 58.
[0063] The sliding-vanes 46 are hydraulically pressurised on the back by the pressure region 58, and pressure-dependently also pressed onto the conveyor rotor 28.
[0064] Outside of the pressure openings 60, the fluid chamber 14 is separated from the pressure region 58 by the circumferential wall 30. This is also clear from the sectional illustrations in
[0065] In addition, two suction openings 62 (see
[0066] In the position of the conveyor rotor 28 shown in
[0067] As evident from the detail view in
[0068]
[0069] The openings 68 are also visible in
[0070] The sectional illustration in
[0071] A corresponding suction channel 66 is also present in the region of the further suction openings 62, as
[0072] In addition, a further fluid supply channel 70 is provided which runs through the motor housing 18, in particular through the rotor 24, as illustrated in
[0073] The housing 16 and the conveyor rotor 28 may be made of plastic.
[0074] The conveyor rotor 28 is preferably formed from a material which has a higher coefficient of thermal expansion than the material from which the housing 16, in particular the fluid housing 20, is formed. Thus both at low temperatures down to ?40? C. and also at high temperatures up to +150? C., optimal friction conditions are achieved and leakage is reliably prevented.