PERISTALTIC PUMPS
20170321686 · 2017-11-09
Inventors
Cpc classification
F04B43/1253
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B43/0072
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B43/1261
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A peristaltic pump (10) comprises a drivable rotor (14), having at least one pressing member (15), and a cylindrical stator (12) in which the rotor (14) is rotatable. Flexible tubing (22), having an inlet side (24) and an outlet side (26), extends circumferentially around the cylindrical stator (12) against an inner wall (12a). The peristaltic pump (10) includes a radially deformable ring (28) positioned between the rotor (14) and the circumferentially extending flexible tubing (22). The ring (28) is deformed by the pressing member (15) upon rotation of the rotor (14) and this compresses the flexible tubing (22) against the inner wall (12a) of the cylindrical stator (12) to convey liquid along the flexible tubing (22). The radially deformable ring (28) includes a ring anchor (30) which prevents rotation of the radially deformable ring (28) during rotation of the rotor (14).
Claims
1. A peristaltic pump comprising: a drivable rotor having at least one pressing member; a cylindrical stator in which the rotor is rotatable; flexible tubing having an inlet side and an outlet side, the flexible tubing extending circumferentially around the stator against an inner wall; a radially deformable ring positioned between the rotor and the circumferentially extending flexible tubing, the ring being deformable by the at least one pressing member upon rotation of the rotor to compress the flexible tubing against the inner wall of the cylindrical stator to thereby convey liquid along the flexible tubing; wherein the radially deformable ring includes a ring anchor for preventing rotation of the radially deformable ring during rotation of the rotor.
2. A pump according to claim 1, wherein the inlet side and the outlet side of the flexible tubing are arranged side-by-side so that the flexible tubing extends in a substantially radial direction outwardly away from the cylindrical stator, and the ring anchor projects radially outwardly from the deformable ring and is located between the inlet side and the outlet side of the flexible tubing.
3. A pump according to claim 2, wherein the ring anchor is gripped between the inlet side and the outlet side of the flexible tubing.
4. A pump according to claim 1, wherein the ring anchor comprises a finger projecting radially outwardly from the radially deformable ring.
5. A pump according to claim 1, wherein the radially deformable ring has an axial depth which is greater than an outer diameter of the flexible tubing.
6. A pump according to claim 1, wherein the radially deformable ring includes a plurality of circumferentially-spaced radial projections on a first axial rim which project in a radially outward direction towards the inner wall of the cylindrical stator.
7. A pump according to claim 6, wherein the rotor includes a circular flange which axially retains the flexible tubing and the radially deformable ring in the cylindrical stator and wherein the radially deformable ring is arranged in the stator with the radial projections in contact with the circular flange.
8. A pump according to claim 1, wherein the radially deformable ring includes a locating arrangement, on a second axial rim, which extends from the ring anchor over the inlet side and the outlet side of the flexible tubing.
9. A pump according to claim 8, wherein the locating arrangement comprises a locating flange.
10. A pump according to claim 8, wherein the locating arrangement comprises a pair of oppositely extending locating projections.
11. A pump according to claim 1, wherein the rotor includes a plurality of pressing members which are equispaced around the circumference of the rotor.
12. A pump according to claim 1, wherein the rotor includes a spindle and the or each pressing member is integrally formed with the spindle.
13. A pump according to claim 1, wherein the or each pressing member is a lobe.
14. A pump according to claim 13, wherein the or each lobe has an arcuate pressing surface which is arranged to progressively compress the flexible tubing against the inner wall of the cylindrical stator during rotation of the rotor.
15. A pump according to claim 14, wherein the or each lobe has an apex at which the arcuate pressing surface terminates, the apex being arranged to fully compress the flexible tubing against the inner wall of the cylindrical stator.
16. A pump according to claim 14, wherein the rotor includes two of said lobes at diametrically opposite locations.
17. A pump according to claim 1, wherein the rotor is engageable by an external rotary drive.
18. A method for assembling a peristaltic pump according to claim 1, the method comprising: locating the flexible tubing circumferentially around the radially deformable ring and in contact therewith, with the inlet side and the outlet side of the flexible tubing arranged side-by-side on either side of the ring anchor; positioning the flexible tubing and the radially deformable ring in the cylindrical stator with the flexible tubing arranged against the inner wall of the cylindrical stator; and fitting the rotor in the cylindrical stator by simultaneously rotating the rotor and pressing the rotor into the centre of the radially deformable ring.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF EMBODIMENTS
[0038] Embodiments of the present disclosure will now be described by way of example only and with reference to the accompanying drawings.
[0039] A peristaltic pump 10, 50 includes a cylindrical stator 12. Although not shown, the cylindrical stator 12 can be integrally formed, for example as a one-piece moulding, with a liquid container from which liquid is to be dispensed or can be removably mountable on a liquid container.
[0040]
[0041] The peristaltic pump 10 includes flexible tubing 22 which can be formed of any suitable resilient plastics material such as polyvinyl chloride. The flexible tubing 22 has an inlet side 24 through which liquid is delivered to the peristaltic pump 10 and an outlet side 26 through which liquid is delivered from the peristaltic pump 10. The inlet side 24 and outlet side 26 are designated with respect to the normal direction of rotation of the rotor 14 (clockwise in the accompanying drawings). The inlet side 24 is typically connected to a liquid outlet port of a liquid container (not shown) and the outlet side 26 is arranged to deliver the liquid to a desired location. The flexible tubing 22 extends circumferentially around the cylindrical stator 12 against an inner wall 12a and the inlet side 24 and the outlet side 26 are arranged side-by-side, at circumferentially adjacent positions around the cylindrical stator 12. The inlet side 24 and the outlet side 26 extend outwardly away from the cylindrical stator 12 in a substantially radial direction.
[0042] A radially deformable ring 28, comprising a suitable resiliently deformable material (typically a plastics material), is positioned between the rotor 14 and the circumferentially extending flexible tubing 22. The deformable ring 28 is contacted by the lobes 16 of the rotor 14 as best seen in
[0043] The deformable ring 28 includes a ring anchor 30 in the form of a finger 32 which projects radially from the deformable ring 22. The ring anchor 30 is located between the inlet side 24 and the outlet side 26 of the flexible tubing 22 and has a sufficient length (in the radially outward direction) and width (in the circumferential direction) that it cannot move out of its position between the inlet side 24 and the outlet side 26 of the flexible tubing 22. Thus, it will be understood that the ring anchor 30 prevents the deformable ring 28 from being rotated by the rotor 14 as the rotor 14 rotates in the cylindrical stator 12. If the ring anchor 30 was not provided, the deformable ring 28 would be caused to rotate by the rotor 14 and this would result in unwanted stretching and wearing of the flexible tubing 22 between the deformable ring 28 and the inner wall 12a of the cylindrical stator 12.
[0044] As best seen in
[0045] In the illustrated embodiment, the locating members 34 comprise a plurality of locating projections 36 on a first rim 28a of the deformable ring 28. The locating projections 36 project radially outwardly by a small distance from the deformable ring 28, in use towards the inner wall 12a of the cylindrical stator 12, and are typically provided at equispaced positions around the circumference of the first rim 28a. The locating members 34 additionally comprise a locating flange 38, on the second rim 28b, which extends sideways from the ring anchor 30 over the inlet side 24 and the outlet side 26 of the flexible tubing 22. Thus, it will be understood that the locating projections 36 prevent the flexible tubing 22 from slipping axially of the first rim 28a of the deformable ring 22 and that the locating flange 38 helps to prevent the flexible tubing 22 from slipping axially off the second rim 28b, in the opposite direction.
[0046] The method of assembling the peristaltic pump 10 will now be described with reference to
[0047] Once the flexible tubing 22 and deformable ring 28 have been positioned in the cylindrical stator 12 as shown in
[0048] Once assembled, the central drive aperture 20 can be engaged by an external rotary drive which can be operated to rotate the rotor 14.
[0049] Referring now to
[0050] The peristaltic pump 50 includes a rotor 52 (best seen in
[0051] Referring in particular to
[0052] Although in the second embodiment the primary function of the radial projections 58 is to act as bearing members or bearing flanges, it will also be understood that the radial projections 58 assist with axial location and retention of the flexible tubing 22 on the radially deformable ring 56 in the same way as the locating projections 36 of the first embodiment.
[0053] In order to further assist with axial location and retention of the flexible tubing 22, the radially deformable ring 56 can optionally include a locating arrangement 60 on the second axial rim 56b (best seen in
[0054] The method of assembling the peristaltic pump 50 is essentially the same as the assembly method described above with reference to
[0055] Once the flexible tubing 22 and deformable ring 56 have been positioned in the cylindrical stator 12 as shown in
[0056] Although exemplary embodiments have been described in the preceding paragraphs, it should be understood that various modifications may be made to those embodiments without departing from the scope of the appended claims. Thus, the breadth and scope of the claims should not be limited to the above-described exemplary embodiments. Each feature disclosed in the specification, including the claims and drawings, may be replaced by alternative features serving the same, equivalent or similar purposes, unless expressly stated otherwise.
[0057] For example, the rotor 14, 52 could include a projection in place of the central drive aperture 20 which could engage an aperture in a drive shaft of an external rotary drive.
[0058] Unless the context clearly requires otherwise, throughout the description and the claims, the words “comprise”, “comprising”, and the like, are to be construed in an inclusive as opposed to an exclusive or exhaustive sense; that is to say, in the sense of “including, but not limited to”.
[0059] Any combination of the above-described features in all possible variations thereof is encompassed by the present invention unless otherwise indicated herein or otherwise clearly contradicted by context.