PERISTALTIC PUMP
20190376505 ยท 2019-12-12
Inventors
Cpc classification
F04B43/1253
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
Described is a peristaltic pump comprising a casing which has a casing bottom, a casing cover and a casing wall extending from the casing bottom to the casing cover, which form a pump chamber, a tube which connects a casing inlet to a casing outlet and is arranged within the pump chamber, and a displacement element which has at least two displacement members and is fixed to a rotor which is rotatable about a rotor axis so that in the rotary movement of the rotor each displacement member performs a movement in an operative plane, wherein the tube is arranged between the casing wall and the displacement element in such a way that due to rotation of the rotor the displacement members roll on the tube so the tube is squashed together so that a medium to be conveyed which is in the tube is displaced in the direction of the casing outlet. The displacement element is of a two-part structure comprising a first part which is fixed to the rotor and a second part which has a displacement member, wherein the second part of the displacement element in a position of the rotor relative to the first part of the displacement element can be reciprocated between an operative position in which the operative planes of the two displacement members are identical and a change position in which the operative planes of the two displacement members are arranged parallel to each other.
Claims
1. A peristaltic pump comprising a casing which has a casing bottom, a casing cover and a casing wall extending from the casing bottom to the casing cover, which form a pump chamber, and a casing inlet and a casing outlet which respectively provide a communication with the pump chamber, a tube which connects the casing inlet to the casing outlet and is arranged within the pump chamber, and a displacement element which has at least two displacement members and is fixed to a rotor which is rotatable about a rotor axis so that in the rotary movement of the rotor each displacement member performs a movement in an operative plane, wherein the tube is arranged between the casing wall and the displacement element in such a way that due to rotation of the rotor the displacement members slide or roll on the tube so that the tube is squashed together and a medium to be conveyed which is in the tube is displaced in the direction of the casing outlet, characterised in that the displacement element is of a two-part structure comprising a first part which is fixed to the rotor and a second part which has a displacement member, wherein the second part of the displacement element in at least one position of the rotor relative to the first part of the displacement element can be reciprocated between an operative position in which the operative planes of the two displacement members are identical and a change position in which the operative planes of the two displacement members are arranged parallel to each other.
2. A peristaltic pump according to claim 1 characterised in that at least one part of the casing cover is removable and the second part of the displacement element in at least one position of the rotor is releasable from the first part of the displacement element.
3. A peristaltic pump according to claim 1 characterised in that each part of the displacement element has at least a displacement member, wherein preferably there are provided at least two support members, wherein at least one support member is provided at each part of the displacement element, wherein by virtue of rotation of the rotor the support members slide or roll on the tube, wherein the support members are so arranged that they do not displace any conveyed medium in the tube.
4. A peristaltic pump according to claim 1 characterised in that the second part of the displacement element is fixed to the rotor.
5. A peristaltic pump according to claim 1 characterised in that the rotor is of a non-circular cross-section, wherein the first part of the displacement element and the second part of the displacement element have a through opening, the internal contour of which is of a configuration corresponding to the external contour of the rotor, so that when the first and/or the second part of the displacement element is pushed with its through opening over the rotor a positively locking connection is produced between the rotor and the first or second part of the displacement element.
6. A peristaltic pump according to claim 1 characterised in that the first part and the second part of the displacement element are connected together by way of a groove-sliding block connection, wherein the groove extends parallel to the rotor axis, wherein the groove is of an undercut configuration and the sliding block is of a configuration corresponding to the groove.
7. A peristaltic pump according to claim 1 characterised in that the displacement element and the tube are so arranged in the casing that by rotation of the rotor each displacement member can be moved into a position in which the displacement member is not in contact with the tube.
8. A peristaltic pump according to claim 2 characterised in that each part of the displacement element has at least a displacement member, wherein there are provided at least two support members, wherein at least one support member is provided at each part of the displacement element, wherein by virtue of rotation of the rotor the support members slide or roll on the tube, wherein the support members are so arranged that they do not displace any conveyed medium in the tube.
9. A peristaltic pump according to claim 2 characterised in that the second part of the displacement element is fixed to the rotor.
10. A peristaltic pump according to claim 3 characterised in that the second part of the displacement element is fixed to the rotor.
11. A peristaltic pump according to claim 2 characterised in that the rotor is of a non-circular cross-section, wherein the first part of the displacement element and the second part of the displacement element have a through opening, the internal contour of which is of a configuration corresponding to the external contour of the rotor, so that when the first and/or the second part of the displacement element is pushed with its through opening over the rotor a positively locking connection is produced between the rotor and the first or second part of the displacement element.
12. A peristaltic pump according to claim 3 characterised in that the rotor is of a non-circular cross-section, wherein the first part of the displacement element and the second part of the displacement element have a through opening, the internal contour of which is of a configuration corresponding to the external contour of the rotor, so that when the first and/or the second part of the displacement element is pushed with its through opening over the rotor a positively locking connection is produced between the rotor and the first or second part of the displacement element.
13. A peristaltic pump according to claim 4 characterised in that the rotor is of a non-circular cross-section, wherein the first part of the displacement element and the second part of the displacement element have a through opening, the internal contour of which is of a configuration corresponding to the external contour of the rotor, so that when the first and/or the second part of the displacement element is pushed with its through opening over the rotor a positively locking connection is produced between the rotor and the first or second part of the displacement element.
14. A peristaltic pump according to claim 2 characterised in that the first part and the second part of the displacement element are connected together by way of a groove-sliding block connection, wherein the groove extends parallel to the rotor axis, wherein preferably the groove is of an undercut configuration and the sliding block is of a configuration corresponding to the groove.
15. A peristaltic pump according to claim 3 characterised in that the first part and the second part of the displacement element are connected together by way of a groove-sliding block connection, wherein the groove extends parallel to the rotor axis, wherein preferably the groove is of an undercut configuration and the sliding block is of a configuration corresponding to the groove.
16. A peristaltic pump according to claim 4 characterised in that the first part and the second part of the displacement element are connected together by way of a groove-sliding block connection, wherein the groove extends parallel to the rotor axis, wherein preferably the groove is of an undercut configuration and the sliding block is of a configuration corresponding to the groove.
17. A peristaltic pump according to claim 5 characterised in that the first part and the second part of the displacement element are connected together by way of a groove-sliding block connection, wherein the groove extends parallel to the rotor axis, wherein preferably the groove is of an undercut configuration and the sliding block is of a configuration corresponding to the groove.
18. A peristaltic pump according to claim 2 characterised in that the displacement element and the tube are so arranged in the casing that by rotation of the rotor each displacement member can be moved into a position in which the displacement member is not in contact with the tube.
19. A peristaltic pump according to claim 3 characterised in that the displacement element and the tube are so arranged in the casing that by rotation of the rotor each displacement member can be moved into a position in which the displacement member is not in contact with the tube.
20. A peristaltic pump according to claim 4 characterised in that the displacement element and the tube are so arranged in the casing that by rotation of the rotor each displacement member can be moved into a position in which the displacement member is not in contact with the tube.
Description
[0022] Further advantages, features and possible applications of the present invention will be clearly apparent from the description hereinafter of a preferred embodiment and the accompanying Figures in which:
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[0036] To change the tube it is only necessary for the second part 7 of the displacement element 4 to be moved in the direction of the rotor axis relative to the first part 6 of the displacement element so that the operative plane formed by the associated displacement element 8 is displaced with respect to the operative plane of the displacement element 8 of the first part 6.
[0037] That is possible generally only when the associated displacement element 8 is not in engagement with the tube. Possibly therefore firstly the rotor 2 including the displacement element 4 has to be rotated until the displacement member 8 of the second part 7 of the displacement element 4 no longer comes into contact with the tube. Then the second part 7 of the displacement element 4 can be displaced parallel to the rotor axis relative to the first part 6.
[0038] In the illustrated embodiment it is even possible for the second part to be removed from the first part. As soon as the second part has been displaced relative to the first part or has even been removed the displacement element 4 can be further rotated until the displacement member 8 of the remaining part comes out of engagement with the tube. In that position no displacement member 8 is in contact with the tube so that the peristaltic pump is no longer self-blocking for that moment.
[0039] It will be noted however that it is now possible for the tube to be easily removed and replaced by a fresh tube. Assembly is then effected in the reverse sequence, that is to say after the tube has been fitted into the housing then firstly the displacement element 4 is again rotated through 180 so that the first part 6 or its displacement member 8 comes into engagement with the tube again. The second part 6 can then be pushed on to the rotor 2 again so that the sliding block 10 moves within the groove 11. As soon as the operative planes of the two displacement members 8 are again identical the peristaltic pump is again ready for operation. The housing cover is possibly to be closed.
LIST OF REFERENCES
[0040] 1 peristaltic pump [0041] 2 rotor [0042] 3 drive unit [0043] 4 displacement element [0044] 5 through opening [0045] 6 first part of the displacement element [0046] 7 second part of the displacement element [0047] 8 displacement member [0048] 9 guide member [0049] 10 sliding block [0050] 11 undercut groove [0051] 12 casing [0052] 13 casing cover [0053] 14 casing wall [0054] 15 casing inlet [0055] 16 casing outlet [0056] 17 tube