Peristaltic pump
11619221 ยท 2023-04-04
Assignee
Inventors
Cpc classification
F04B43/1292
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04B43/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61M1/00
HUMAN NECESSITIES
Abstract
A peristaltic pump comprises a rotor with rollers and first and second tracks mounted on opposites sides of the rotor. Each track is moveable between a first position adjacent the rotor and a second position spaced from the rotor. The tracks may be linked and moveable together so that as one track moves towards the rotor, the other moves away from the rotor and vice versa. In this way, a single pump can be used to provide two different modes of operation, e.g. pumping liquid when one track is adjacent the rotor and applying suction when the other track is adjacent the rotor.
Claims
1. A peristaltic pump comprising a rotor rotatable by a motor, a plurality of rollers rotatably mounted on the rotor and first and second tracks mounted on opposite sides of the rotor, wherein each track is moveable between a first position adjacent the rotor and a second position spaced from the rotor, and the first and second tracks are linked by at least one connecting member slidably received in a block mounted in a fixed position relative to the rotor, the at least one connecting member maintaining the first and second tracks in a fixed position relative to one another whereby the first and second tracks are moveable together relative to the rotor such that as the first track moves towards the rotor, the second track moves away from the rotor and vice versa.
2. A peristaltic pump as claimed in claim 1, further comprising at least one stop member to limit movement of the tracks between the first and second positions.
3. A peristaltic pump as claimed in claim 1, further comprising at least one latch to selectively retain the tracks in their first and second positions.
4. A peristaltic pump as claimed in claim 1, wherein the tracks are configured for manual movement between the first and second positions.
5. A peristaltic pump as claimed in claim 1 wherein the tracks are configured for automated movement between the first and second positions.
6. A fluid management system for use in a medical procedure comprising a peristaltic pump as claimed in any preceding claim, a first flexible tube mounted between the first track and the rotor and a second flexible tube mounted between the second track and the rotor, wherein the first tube is configured to supply liquid from a liquid reservoir to a channel in a medical instrument and the second tube is configured to apply suction to a channel in a medical instrument.
7. A fluid management system as claimed in claim 6, wherein the first and second tubes have portions which are joined together, separated by a non-joined portion, wherein the tubes are mounted on the pump with the non-joined portion fitted between the rotor and the first and second tracks respectively and at least one of said portions that are joined together being located on either side of the rotor.
Description
(1) The invention will now be described in detail, by way of example only, with reference to the accompanying drawings in which:
(2)
(3)
(4)
(5) As shown in
(6) In the normal way, the rotor 18 carries three rollers 22 each independently rotatable about its own central axis 24. Each roller 22 can be protruding, flush or sub-flush of the outer circumference of the rotor 18. In this example, the roller 22 protrudes slightly outside the rotor 18.
(7) First and second tracks 26, 28 are mounted on opposite sides of the rotor 18. In this example a first track 26 is mounted above the rotor 18 and the second track 28 below the rotor 18. Each track 26, 28 comprises a body with an arcuate surface facing the rotor 18. Each track 26, 28 is moveable towards and away from the rotor 18. While the tracks 26, 28 could be moved independently, preferably the tracks 26, 28 are connected so that they move together. As the first track 26 moves towards the rotor 18, the second track 28 will move away from the rotor 18, and vice versa. In this example, the first and second tracks 26, 28 are joined by two connecting rods 30 which are slidably received in blocks 32 fixed to the casing 12 on either side of the rotor 18. The ends of the blocks 32 facing each track 26, 28 act as stop members to limit the up and down movement of the tracks 26, 28. It will be appreciated that the exact configuration of a stop member may be varied.
(8)
(9) The tracks 26, 28 can be moved upwardly into the second position shown in
(10) In use, flexible plastic tubes 34, 36 can be fitted between each the arcuate surfaces of track 26, 28 and the rotor 18 as shown in
(11) In this example, the uppermost tube 34 fitted between the first track 26 and the rotor 18 is used to supply liquid to a medical instrument. Accordingly, upstream of the pump (on the right hand side in
(12) When it is desired to apply suction, tracks 26, 28 are moved upwardly into the position shown in
(13) When it is desired to supply pressurised liquid instead of suction, the tracks 26, 28 are simply shifted into the other position shown in
(14) Thus, a single rotor 18 rotatable by a single motor 14 only in one direction can be switched to operate on different tracks, in order to provide two different modes of operation.
(15) The tracks 26, 28 may be provided with a latch device 38 to secure the tracks 26, 28 in position and avoid slipping or accidental changes of position. Such a latch 38 (illustrated only schematically in
(16) It is also possible for the tracks 26, 28 to be fixed and the rotor 18 to be moveable up and down relative to the tracks 26, 28. However, this is a more complex arrangement, given the need to connect the rotor 18 to the motor 14.
(17) The tubes 34, 36 may be completely separate from each other, or for ease of handling, they may have portions 44 which are moulded or bonded together. As shown in
(18) Movement of the tracks 26, 28 relative to the rotor 18 between the two positions may be manual, with a user releasing the latch 38, if present, and simply moving the tracks 26, 28 up or down by hand. The system may also be automated, with a user selecting the required mode on a controller and movement of the tracks 26, 28 being actuated, for example by solenoids.
(19) Thus, the present invention provides a peristaltic pump which is simply switchable to operate on two different tracks to provide two modes of operation, whilst using a single rotor and a single motor. This saves on space, weight and cost. The two modes of operation are preferably mutually exclusive so that the pump can run at its optimum efficiency one the selected mode of operation, without hindrance from the unselected mode.