Pump device with pump ring having curved contact portion
10533419 ยท 2020-01-14
Assignee
Inventors
- Markus Braxmaier (VS-Schwenningen, DE)
- Daniel Hauer (Ortenberg, DE)
- Hassan GHODSI-KHAMENEH (Offenburg, DE)
- Juergen Herr (St. Georgen, DE)
- Marc Jeuck (Buehl/Baden, DE)
- Wolfgang Laufer (Aichhalden, DE)
- Mario Staiger (Scramberg-Tennenbronn, DE)
Cpc classification
F01C5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F03C2/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03C4/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A pump device for pumping a liquid, has a hydraulics housing (12), in which a pump ring (14) with a contact surface (46), a pump ring support (16) and an eccentric (18), which can be driven by a shaft (20), are accommodated. The hydraulics housing (12) has an annular portion (22) and a first and a second lateral section (24, 26), the two lateral sections (24, 26) being arranged opposite each other. The pump ring (14) is mounted between the two lateral sections (24, 26) of the hydraulics housing (12) at least in some portions. The profile of the contact surface (46) has a contour with a curvature that changes at least in portions, and specifically in such a way that the curvature increases at least in some portions towards the ends of the contact surface (46).
Claims
1. A pump device for pumping a liquid, comprising a hydraulics housing (12), in which a pump ring (14) with a contact surface (46), a pump ring support (16) and an eccentric (18), driven by a shaft (20), are accommodated, said shaft defining an axial and a radial direction, wherein the hydraulics housing (12) has an annular portion (22) and a first and a second lateral section (24, 26), the two lateralsections (24, 26) being arranged opposite each other, and wherein the pump ring (14) is, at least in some portions, mounted between the two lateral sections (24, 26) of the hydraulics housing (12), wherein a profile of the contact surface (46) has a contour with a curvature that changes, at least in portions, and specifically in such a way that the curvature increases, at least in some portions, towards ends of the contact surface (46), and the pump ring (14) comprises a base (38) from which two first projections (28) extend on a side facing away from the pump ring support (16) and two second projections (42) extend on a side facing the pump ring support (16), wherein the contact surface (46) is limited by side walls (50) of the two first projections (28); wherein the pump ring support (16) comprises a tongue (100), and the two second projections (42) define a region therebetween into which the tongue (100) projects toward the base (38) of the pump ring (14).
2. The pump device according to claim 1, wherein the first and second projections (28, 42) each comprise a first section (80, 180) and a second section (82, 182), wherein the first section (80,180) connects the second section (82, 182) with the base (38), and wherein the first section (80, 180) extends to a greater extent in a radial direction than in an axial direction and the second section (82, 182) extends to a greater extent in an axial direction than in a radial direction.
3. The pump device according to claim 1, wherein the second projections (42) enclose an angle (90) of 25 to 90 with the base (38) of the pump ring (14) in the region of the transition to the base (38).
4. The pump device according to claim 1, wherein the profile of the contact surface (46) has a central region, in an axial direction, without curvature.
5. The pump device according to claim 1, wherein a ratio between a width of the contact surface (46) and a thickness of the pump ring (14) between the contact surface (46) and the pump ring support (16) is between 1.5 and 5.0.
6. The pump device according to claim 1, wherein coverage of the pump ring (14) laterally to the pump ring support (16) amounts to more than 0.9 mm.
7. The pump device according to claim 1, wherein the pump ring (14) is made of an elastomeric material.
8. The pump device according to claim 1, wherein a Shore hardness of the pump ring (14) lies between 55 and 70 Shore.
9. The pump device according to claim 1, wherein the pump ring (14) is made of a material with a glass transition temperature below 20 C.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention is represented schematically in the drawings with reference to various embodiments and will be described schematically and in detail with reference to the drawings, wherein:
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION
(7)
(8) In this embodiment, the first bearing 110 is installed as a floating bearing, and the second bearing 118 as a fixed bearing. This provides a good mounting.
(9) A needle bearing can be used as the eccentric bearing 116. This has a short extent in a radial direction. Other bearing types, for example roller bearings, are also possible. The eccentric bearing 116 makes possible a low-friction transmission of forces between the rotating eccentric 18 and the rotationally-fixed pump ring 14 or pump ring support 16.
(10) The hydraulics housing 12 comprises an annular portion 22 and a first lateral section 24, which can also be described as a pump cover, and a second lateral section 26, which can also be described as a motor flange or drive flange. The two lateral sections 24, 26 are arranged opposite one another. The pump ring 14 thereby lies, at least in portions thereof, between the two lateral sections 24, 26 of the hydraulics housing 12. The annular portion 22 has a first collar 74 and a second collar 75.
(11) The drive 140 has a stator arrangement 145 and a rotor arrangement 146. The drive 140 is partially attached to a tubular region 170 of the second lateral section 26.
(12) The pump housing 12 has a snap-locking element 27, which is designed to snap into engagement, upon introduction of the clamping element 114 into the pump housing 12 and to secure the clamping element 114 axially. The introduction of the clamping element 114 can take place before the installation of the drive 140.
(13) The pump ring 14 is deformable and can be made of an elastomeric material or another deformable material.
(14)
(15)
(16) The illustration depicts the interior of the hydraulics housing 12 schematically and in an exaggerated manner, in terms of the deformation of the pump ring 14, in order to explain the principle.
(17) The functional principle of the orbital pump is described in the following with reference to
(18) The eccentric 18 sits on the shaft 20 and is driven by this. The drive 140, typically a motor or electric motor, serves in turn to drive the shaft 20. According to one embodiment, a controllable drive 140 is provided as a drive 140.
(19) The shaft 20 is thereby rotated about its longitudinal axis 21, which defines an axial direction of the pump device 10. The eccentric 18 is thus also moved about the longitudinal axis of the shaft 20 in a rotational movement. This movement of the eccentric 18 is transmitted via the bearing 116 and via the pump ring support 16 to the pump ring 14. The pump ring support 16 and the pump ring 14 are rotationally fixed relative to the hydraulics housing 12, but depending on the rotational position of the eccentric 18 they are moved locally closer to or further away from the annular portion 22. In
(20) If the eccentric now rotates in a clockwise direction, the point 58 at which the pump ring 14 is pressed against the annular portion 22 also travels along in a clockwise direction, and, as a result, the fluid in the pump chamber 57 is pumped or transported in a clockwise direction from the first connection 51, to the second connection 52. A hydraulic short circuit, in which the fluid passes from the second connection 52 in a clockwise direction to the first connection 51, is prevented due to the clamping element 114 or another interruption of the pump chamber 57 in this region.
(21) The pump device 10 also functions in the reverse direction, in that the direction of rotation of the eccentric 18 is reversed.
(22)
(23) The pump ring 14 is connected with the pump ring support 16, for example by means of adhesive bonding. The contact surface 46 of the pump ring 14 is provided on the side of the pump ring 14 facing away from the pump ring support. This contact surface 46 is, in the pump chamber 57, pressed against the annular portion 22 or pulled away therefrom, depending on the rotational position and rotational movement of the eccentric 18.
(24) It can be seen that the contour of the contact surface 46 has a curvature that changes, at least in portions, wherein, beginning from a center 130 of the contact surface 46, the curvature increases towards the two ends 131, 132. This means that the radius of the curvature is reduced towards the ends. By way of example, a first radius r1 and a second radius r2 are indicated in the drawing, and it can be seen that the first radius r1 is greater than the second radius r2, which is closer to the end 132.
(25) In the embodiment shown, the curve of the contour is symmetrical in relation to this center 130. However, an asymmetrical structure can also be chosen.
(26) The pump ring 14 comprises a base 38 from which two first projections 28 extend on a side facing away from the pump ring support 16 and two second projections 42 extend on a side facing the pump ring support 16. The contact surface 46 is thereby limited by side walls 50 of the first projections 28.
(27) The first and second projections 28, 42 in each case comprise a first section 80, 180 and a second section 82, 182, wherein the first section 80, 180 in each case connects the second section 82, 182 with the base 38. It can be seen that the first section 80, 180 extends to a greater extent in a radial direction than in an axial direction and the second section 82, 182 extends to a greater extent in an axial direction than in a radial direction. In other words, the first section 80, 180 has, at least in certain regions, a lesser axial dimension than the second section 82, 182.
(28) The two second projections 42 in each case enclose an angle 90 of around 80 with the base 38 of the pump ring 14 in the region of the transition to the base 38. As a result, a secure connection between the pump ring 14 and the pump ring support 16 is guaranteed. A tongue 100 formed on the pump ring support 16 thereby projects into the region between the two second sections 42 of the pump ring 14.
(29) The coverage of the pump ring support 14 laterally to the pump ring support 16, i.e. in the region of the first section 180 of the second projection 42, amounts to around 1.0 mm. This means that the depth or the thickness of the pump ring support 14 in this region is around 1.0 mm. However, other coverages or thicknesses can be chosen. A coverage of more than 0.9 mm has proved suitable.
(30) Further, in the region of the two lateral sections 24, 26 of the hydraulics housing 12, in cross section the pump ring 14 follows an S-formed curve 32 with a convex section 34 and a concave section 36, wherein the convex section 34 lies further outwards in a radial direction of the shaft in comparison with the concave section 36.
(31) The tongue 100 can be formed with a curvature in the region between the base 38 and the second projection 42 which, at least in portions, has a radius R.
(32) A width of the pump ring support 16 is identified with B. The width of the pump ring support 16 is understood to mean the effective width of the region of the pump ring support 16 during compression of the pump ring 14. In the present exemplary embodiment, this is the region of the pump ring support 16 which lies against the base 38 of the pump ring 14, and the width of the pump ring support 16 corresponds to the width of the tongue 100.
(33) A section from the pump device 10 of
(34) It can be seen that, on the annular portion 22 of the hydraulics housing 12, a left-hand first sealing lip 70a is provided in the region of the left-hand first projection 28a and a right-hand first sealing lip 70b is provided in the region of the right-hand first projection 28b.
(35) The illustration also shows that a left-hand second sealing lip 72a is provided on the second lateral section 26 in the region of the left-hand first projection 28a and a right-hand second sealing lip 72b is provided on the first lateral section 24 in the region of the right-hand first projection 28b. The left-hand first sealing lip 70a lies at least partially opposite the left-hand second sealing lip 72a in an axial direction. The right-hand first sealing lip 70b lies at least partially opposite the right-hand second sealing lip 72b in an axial direction.
(36) Naturally, a wide range of variants and modifications are possible within the scope of the present invention.