Hose pump with guiding-out device

09874207 · 2018-01-23

Assignee

Inventors

Cpc classification

International classification

Abstract

A hose pump for the conveyance of a fluid conducted in a hose, with several squeezing elements and with a hose bed, which has a hose inlet, a hose outlet, a guide surface, and a counter support, in which the hose is placed lying on the guide surface and is pressed by the squeezing elements against the counter support for the conveyance of the fluid found in the hose when the hose pump is operated in a conveyance direction. The hose pump has a guiding-out device for the automatic guiding of the hose out of the hose bed, and the guiding out of the hose takes place by means of the guiding-out device during the operation of the hose pump opposite its conveyance direction. For the development of an as low-cost as possible but nevertheless reliable guiding-out device, an elevation, located on the hose outlet of the hose bed, is provided, which protrudes over the guide surface and via which the hose is conducted.

Claims

1. A hose pump for conveying a fluid through a hose, the hose pump comprising: a hose bed having a hose inlet, a hose outlet, a guide surface, and a counter support; a plurality of squeezing elements formed by squeezing rollers; and a guiding-out device for the hose formed by an elevation on the hose outlet, the elevation protruding over the guide surface and having, at least on an outlet side of the hose bed, an elevation surface with a convex curvature declining in a conveyance direction of the fluid; wherein the hose is placed on the guide surface and pressed against the counter support by the squeezing rollers for conveying fluid through the hose during operation of the hose pump in the conveyance direction; and wherein the guiding-out device is configured and arranged for automatic guiding of the hose out of the hose bed during operation of the hose pump in a direction opposite the conveyance direction.

2. The hose pump according to claim 1, wherein the elevation has a shape of a ramp.

3. The hose pump according to claim 1, wherein the surface of the elevation has an inlet slope and an outlet slope.

4. The hose pump according to claim 3, wherein the inlet slope runs flatter than the outlet slope.

5. The hose pump according to claim 1, wherein the hose is fixed and clamped on at least one of a first or a second fixing site on an inlet side of the hose bed in front of the hose inlet or on the outlet side of the hose bed after the hose outlet.

6. The hose pump according to claim 5, wherein the first or the second fixing site is formed by a removable cassette, the removable cassette for clamping or casting the hose.

7. The hose pump according to claim 6, wherein the removable cassette is removably locked on a housing of the hose pump.

8. The hose pump according to claim 1, further comprising a carrier disk, wherein a surface of the carrier disk forms the guide surface.

9. The hose pump according to claim 8, wherein the squeezing rollers are supported approximate an outer circumference of the carrier disk and wherein an axis of each of the squeezing rollers runs parallel to a drive shaft of a drive of the hose pump.

10. The hose pump according to claim 9, wherein the carrier disk or each of the squeezing rollers is rotated by the drive when the hose pump is running.

11. The hose pump according to claim 9, wherein the carrier disk and each of the squeezing rollers are rotated by the drive when the hose pump is running.

12. The hose pump according to claim 8, further comprising a plurality of guide rollers, each of the guide rollers located on the carrier disk positioned between adjacent squeezing rollers.

13. The hose pump according to claim 12, wherein each of the plurality of guide rollers has a groove around an outer circumference, the groove adapted to a form of the hose.

14. The hose pump according to claim 1, further comprising a guiding-in device for the hose, the guiding-in device automatically guiding the hose into the hose bed and between the squeezing rollers and the counter support during operation of the hose pump in the conveyance direction.

15. The hose pump according to claim 14, wherein the guiding-in device comprises at least one hold-down device positioned in front of the hose inlet, the guiding-in device configured for pressing the hose downward against a contact surface during guiding in of the hose.

16. The hose pump according to claim 15, wherein the at least one hold-down device is arranged on an inside surface of a swiveling lid of a housing for the hose pump.

17. A hose pump for conveying a fluid through a hose, the hose pump comprising: a hose bed having a hose inlet, a hose outlet, a guide surface, and a counter support; a plurality of squeezing elements formed by squeezing rollers; and a guiding-out device for the hose formed by an elevation on the hose outlet, the elevation protruding over the guide surface, wherein a surface of the elevation has an inlet slope and an outlet slope and is curved in a substantially convex curve or a semi-cylindrical curve, the inlet slope running flatter than the outlet slope; wherein the hose is placed on the guide surface and pressed against the counter support by the squeezing rollers for conveying fluid through the hose during operation of the hose pump in the conveyance direction; and wherein the guiding-out device is configured and arranged for automatic guiding of the hose out of the hose bed during operation of the hose pump in a direction opposite the conveyance direction.

18. The hose pump according to claim 17, wherein the hose is fixed and clamped on at least one of a first or a second fixing site on the inlet side of the hose bed in front of the hose inlet or on the outlet side of the hose bed after the hose outlet and wherein the first or the second fixing site is formed by a removable cassette, the removable cassette for clamping or casting the hose.

19. The hose pump according to claim 17, further comprising a carrier disk, wherein a surface of the carrier disk forms the guide surface.

20. The hose pump according to claim 19, wherein the squeezing rollers are supported approximate an outer circumference of the carrier disk and wherein an axis of each of the squeezing rollers runs parallel to a drive shaft of a drive of the hose pump.

Description

BRIEF DESCRIPTION OF THE DRAWINGS

(1) These and other advantages and features of the hose pump in accordance with the disclosure can be deduced from the embodiment example, described below with reference to the accompanying drawings. The drawings show the following:

(2) FIG. 1: Perspective depiction of a hose pump in accordance with the disclosure with a housing lid that has been removed (for a better depiction);

(3) FIG. 2: detailed view of the hose bed of the hose pump of FIG. 1 with a removed housing lid;

(4) FIG. 3: detailed depiction of the outlet area of the hose bed of FIG. 2;

(5) FIG. 4: sectional depiction of the outlet area of the hose bed of FIG. 3;

(6) FIG. 5A: perspective detailed depiction of the inlet area of the hose bed of FIG. 2 with opened housing lid

(7) FIG. 5B: sectional depiction of the inlet area of the hose bed of FIG. 2 with a closed housing lid.

DETAILED DESCRIPTION

(8) FIG. 1 and FIG. 2 show a hose pump in accordance with the disclosure in a perspective depiction. The hose pump 1 is used to convey a fluid moving in a hose, for example, an injection liquid for a medicinal injection. The hose pump 1 is located in a pump housing 14, on which a swiveling housing lid 17 is hinged by means of a fastening device 18. The housing lid 17 is removed in the depictions of FIGS. 1 and 2 for reasons having to do with a better overview. FIG. 5 shows the housing lid 17 in an opened position (FIG. 5a) and in a closed position (FIG. 5b).

(9) The hose pump 1 comprises a carrier disk 8, which is coupled with a drive 7 via a drive shaft 10 that is located centrally in the carrier disk 8. The drive 7 is, for example, an electric motor. The carrier disk 8 is made to rotate, when the drive 7 is running, via the drive shaft 10, which is connected in a stationary manner with the carrier disk 8.

(10) The hose pump 1 also comprises a hose bed 2 with a hose inlet 2a, a hose outlet 2b, and a counter support 4. The counter support 4 is formed by the inner circumference of a circular segment, which is open in the area of the hose inlet 2a and the hose outlet 2b of the hose bed 2, for the guiding in of a hose 6. The surface of the carrier disk 8 forms a guide surface 2c of the hose bed 2. The hose bed 2 is used to hold a hose 6, in which a fluid, for example, an injection liquid for injection into the bloodstream of a patient, is conducted.

(11) Several squeezing elements 3 are located on the surface of the carrier disk 8, near its outer circumference. In the embodiment example of the hose pump in accordance with the disclosure graphically depicted here, the squeezing elements 3 are formed by cylindrical squeezing rollers that have an outer circumference 3a. In the graphically depicted embodiment example, three such squeezing rollers are uniformly distributed over the circumference of the carrier disk 8. A guide roller 11 is located between adjacent squeezing element 3 (squeezing rollers). The guide rollers 11 have a surrounding guide groove 11a on their outer circumference. Both the squeezing rollers 3 and also the guide rollers 11 are supported so they can be appropriately rotated on the carrier disk 8, wherein the rotation axes 9 of the squeezing rollers 3 and the rotation axes 9 of the guide rollers 11 run parallel to the drive shaft 10. The squeezing rollers 3 and the guide rollers 11 can thereby be supported either so they can freely rotate on the carrier disk 8 or also they can be coupled with the drive 7 via a coupling. If the squeezing rollers 3 and/or the guide rollers 11 are coupled with the drive 7 via a coupling, then when the drive 7 is running, they are made to rotate by the drive in the same direction as the carrier disk 8.

(12) The housing 14 of the pump 1 contains a cassette holder for the insertion of a replaceable cassette 13. The hose 6 is integrated in the cassette 13 and an arch-shaped section of the hose 6 protrudes from the cassette 13. The sites on which the loop-shaped, bent section of the hose 6 protrudes from the cassette 13 form a first fixing site 12a and a second fixing site 12b. With the cassette 13 inserted in the housing 14, these fixing sites 12a, 12b ensure a fixing of the ends of the section of the hose 6 protruding from the cassette 13.

(13) A guiding-out device is located in the area of the hose outlet 2b of the hose bed 2. It comprises an elevation 5, which projects over the guide surface 2c. The elevation 5 is shown in detail in

(14) FIG. 3, in a perspective side view. The elevation 5 has a surface with an at least essentially convex curvature. The surface of the elevation 5 can be designed, for example, semi-cylindrically. In this case, the elevation has a slope on the inlet side (that is, in the conveyance direction, or in the direction from the hose inlet to the hose outlet), which is just as large as the opposite outlet slope. Preferably, the surface of the elevation 5, however, is shaped as is shown in FIGS. 3 and 4. In this graphically depicted embodiment, the elevation has an inlet slope 5a and an outlet slope 5b, wherein the inlet slope 5a is flatter than the outlet slope 5b.

(15) The section of the hose 6 protruding from the cassette 3 is placed in the hose bed 2 for the operation of the hose pump 1, wherein the hose 6 lies on the guide surface 2c and is between the outer circumference of the squeezing elements 3 and the counter support 4 and between the guide groove 11a of the guide rollers 11 and the counter support 4. The hose 6 inserted into the hose bed 2 is conducted in the area of the hose outlet 2b over the elevation 5, as shown in FIG. 2. During the operation of the hose pump in its conveyance direction, the carrier disk 8 (and perhaps via a gear, the squeezing elements 3 and the guide rollers 11 located thereon) is made to rotate by the drive 7. In the embodiment example shown in FIG. 1, the carrier disk 8 is made to rotate in a clockwise direction by the drive 7 during the operation of the hose pump in the conveyance direction. The section of the hose 6 lying in the hose bed 2 is thereby pressed by the squeezing element 3 against the counter support 4, wherein the hose is intermittently squeezed and the fluid found in the hose 6 is conveyed in the direction from the hose inlet 2a to the hose outlet 2b. The guide rollers 11 thereby ensure a reliable and constant positioning of the section of the hose 6 in the hose bed 2, in that the hose 6 engages in the cross section of the essentially semicircular guide groove 11a of the guide rollers 11 so that it is conducted.

(16) The guiding-out device, located in the area of the hose outlet 2b, is used for the automatic guiding out of the hose 6 from the hose pump 1 after the ending of pumping operation. To this end, the hose pump is operating opposite its conveyance direction, that is, in the embodiment example graphically depicted here, the carrier disk 8 is rotated in a counterclockwise direction by the drive 7. In this way, as a result of the engagement of the hose 6 between the squeezing elements 3 and the counter layer 4, a tensile force is exerted on the hose 6, which acts opposite the conveyance direction (that is, in a counterclockwise direction). With the influence of this tensile force on the hose 6, it is raised above the elevation 5, away from the guide surface 2c, upward. The hose section that lies on the surface of the elevation 5 with a convex curvature slides, in particular, along the outlet slope 5b, upward. As a result of the steep outlet slope 5b of the elevation 5, the section of the hose 6 that lies in the hose bed 2 is thereby raised upward away from the guide surface 2c in such a way that it comes to lie above the squeezing element 3 that is right on the hose outlet 2b or a guide roller 11 standing there. This triggers an engagement between this squeezing element 3 or this guide roller 11 and the counter support 4. With additional rotation of the carrier disk 8 opposite the conveyance direction of the hose pump 1, the engagement of the hose between the other squeezing elements 3 and the guide rollers 11 with the counter 4 is triggered in a corresponding manner, and the section of the hose 6 is raised from the hose bed 2 in this manner until the section of the hose 6 protruding from the cassette 13 has been completely guided out of the hose bed 2. In this position of the hose 6, the drive 7 can be switched off and the cassette 13 can be taken out of the housing 14 of the hose pump 1 and it can be replaced with a new cassette with a still unused hose.

(17) For the guiding in of the section of the hose 6, protruding from the new cassette 13, a guiding-in device is appropriately provided in the area of the hose inlet 2a. This guiding-in device can be formed by a worm spindle driven by a motor, as is known from DE 10 2010 000 594 B4. A lower-cost guiding-in device, which dispenses with the use of a worm spindle driven by a motor, is not shown in FIG. 5. The guiding-in device thereby comprises a hold-down device 15, which presses the section of the hose 6 protruding from the cassette 13 for guiding it into the hose bed 2, downward against a contact surface 16. The contact surface 16 is thereby located on the inlet side of the hose bed that is still in front of the hose inlet 2a and is at least essentially found on the same plane as the guide surface 2c of the hose bed 2 or is slightly raised relative to this guide surface 2c. In the embodiment example graphically depicted here in FIG. 4, the hold-down device 15 is formed by two projections 15, 15 located on the inside of a swiveling housing lid 17; they appropriately have a round or oval recess on their end, into which the hose 6 can mesh when the housing lid 17 is closed. If the housing lid 17 shown in an opened position in FIG. 5a is brought to its closed position (FIG. 5b), the hold-down device 15 located on the inside of the housing lid 17 presses the hose 6 against the contact surface 16, in the area of the hose inlet 2a. Then, if the hose pump is operated in the conveyance direction in this position of the hose 6, in that the drive 7 drives the carrier disk 8 in the conveyance direction (that is, in the embodiment example shown here, rotates in a clockwise direction), the hose 6 is automatically guided into the hose bed 2. Beginning in the area of the hose inlet 2a, the hose 6 is engaged by a squeezing element 3 or a guide roller 11 and the counter support 4 and is guided into the hose bed 2, lying on the guide surface 2c. With additional rotation of the carrier disk 8 in the conveyance direction, the section of the hose 6 protruding from the cassette 13 is further guided along the hose bed 2 into the bed and in the conveyance direction until the entire section of the hose 6 protruding from the cassette 13 lies completely in the hose bed 2 and there appropriately lies on the guide surface 2c. On the hose outlet 2b, the outlet section of the hose 6 is conducted over the elevation 5, as shown in FIGS. 3 and 4. As a result of the flat course of the inlet slope 5a of the elevation 5, the elevation 5 does not disturb the position of the hose 6 in the hose bed 2 and, in particular, does not impair the engagement of the outlet hose section between the squeezing elements 3 or the guide rollers 11 and the counter support 4.

(18) After the guiding in of the section of the hose 6 protruding from the cassette 13 into the hose bed 2 in the manner described, the pump for the conveyance of the fluid found in the hose 6 can be operated in its conveyance direction. For the purpose, in the embodiment example graphically depicted here, the carrier disk 8 is made to rotate in a clockwise direction by the drive 7, wherein the squeezing elements 3, while squeezing the hose 6, press the hose against the counter support 4, and in this way transport the fluid found in the hose in the conveyance direction.

(19) The disclosure is not limited to the embodiment graphically depicted here. Thus, the squeezing elements 3, for example, can be shaped differently, for example, as rectangles. Furthermore, the shape of the elevation 5 can be shaped differently, for example, in the shape of a ramp. The provision of guide rollers is optional and is used only for the better guidance and positioning of the hose in the hose bed when the pump is running. By the preferred formation of the outer circumference of the guide rollers with a surrounding guide groove, they also contribute, however, to a reliable guiding in and out of the hose, using the guiding-in device or the guiding-out device.