CENTERING INTERFACE
20250164052 ยท 2025-05-22
Inventors
Cpc classification
F16L37/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16L37/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A centering interface is arranged between a tubular element mounted in a device, specifically a receiving tube or quiver, for a suction rod of a dialysis machine, and a movable element preferably guided pivotally about an axis, specifically a front plate of the dialysis machine. Centering surfaces are mated between the tubular element mounted in the device and the movable element. When a preferably sealed joint of the interface is manufactured, the tubular element mounted in the device can be moved in the axial direction against the force of a biasing spring during the movement of the movable element and the accompanying approach of the centering surfaces, while its guiding support allows a movement that permits the centering surfaces to be brought into the joining position with centering surface axes aligned with each other free of constraint forces.
Claims
1. A centering interface between a receiving tube of a quiver mounted in a device, for a suction rod of a dialysis machine, and a front plate of the dialysis machine, the front plate being movably guided, in which a mating of centering surfaces between the quiver and the front plate is provided, and when making a joint of the centering interface, the quiver is movable in an axial direction against a force of a biasing spring during movement of the front plate and an accompanying approach of the centering surfaces, while a guiding support allows a movement which permits the centering surfaces to be brought into a joining position with centering surface axes aligned with each other free of constraint forces.
2. The centering interface according to claim 1, wherein the quiver is guided in a plain bearing.
3. The centering interface according to claim 2, wherein the front plate is guided pivotally about an axis, and the plain bearing is located in a bearing block which is movable in the device at least in a plane that is perpendicular to an axis of movement of the front plate.
4. The centering interface according to claim 3, wherein the biasing spring bears against the bearing block.
5. The centering interface according to claim 2, wherein the plain bearing is fixed in a bearing block via a spherical cap.
6. The centering interface according to claim 2, wherein the plain bearing has a conical bearing surface that extends and widens toward one end of the quiver.
7. The centering interface according to claim 1, wherein the centering surfaces comprise a first centering surface and a second centering surface, and wherein, at an end face of the quiver, an outer conical surface is designed as the first centering surface which is engageable into a centering joint fitting engagement with an inner conical surface serving as the second centering surface in the front plate.
8. The centering interface according to claim 7, wherein at the quiver, the first centering surface adjoins a radial collar in which an annular seal is accommodated for contact with an inner wall of the front plate.
9. The centering interface according to claim 7, wherein a peripheral flute for receiving a seal ring is formed in the first centering surface.
10. The centering interface according to claim 7, wherein in the front plate, the second centering surface has an axis which is tilted about an acute angle relative to a plane perpendicular to a movement axis of the front plate.
11. The centering interface according to claim 1, wherein an axis of the quiver is inclined relative to a horizontal plane at an angle up to 60.
12. The centering interface according to claim 1, wherein the mating of centering surfaces is formed by a mating of conical surfaces.
13. A device for extracorporeal blood treatment comprising at least one centering interface according to claim 1.
14. The device according to claim 13, wherein the front plate is attached to a housing of the device via a hinge connection, and wherein the front plate accommodates an insert in which a first centering surface of the centering surfaces is formed.
15. The device according to claim 14, wherein the centering surfaces comprise at least two centering surfaces, and the quiver comprises at least two quivers, the at least two centering surfaces including the first centering surface, and the insert forming the at least two centering surfaces adjacent horizontally or vertically in a plane perpendicular to a movement axis of the front plate for the at least two quivers that are adjacently mounted, wherein a shared or common bearing block is assigned to the at least two quivers.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] In the following, embodiments of the invention are illustrated in detail on the basis of schematic drawings, wherein:
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DETAILED DESCRIPTION
[0039] In
[0040] The accesses 26 are shown enlarged in
[0041] When the front door 24 is closed, the accesses 26 are locatedas shown in
[0042] The quivers 34 include a tubular inner component part 34A installed in the dialysis machine 20 comprising a feed port 36, such as for disinfectant, and an outer tubular component part 34B coaxial to the former that is equipped with discharge ports 38 andsee
[0043] When the interface is not joined and, thus, the front plate 24 is opened, the biasing spring 46 presses the quiver 34 into the abutment position shown in
[0044] As a counter-piece to the first centering surface 42 on the quiver 34, in the insert wall 32 a front door-side centering surface 50 in the configuration of a conical surface with an axis A50 coinciding with the axis A26 is designed so that the centering surfaces 42 and 50 form a mating of centering surfaces which, when the front plate 24 is closed, ensures that the opening of the quiver 34 is sealed when positioned in the front plate 24. For this purpose, the following arrangement is made:
[0045] Due to the movable attachment of the front plate 24 on the dialysis machine 20, the centering surface 50 describes a movement of circular segment in the insert wall 32 so that the axis A26 of the centering surface 50 is not aligned with the axis A34 of the centering surface 42 on the quiver 34 at the beginning of the closing movement of the front plate 24. This state is schematically shown in
[0046] With the further progress of the closing operation, the centering surfaces 42, 50 increasingly approach each other so that the axes A26 and A34 are gradually in alignment with each other. Due to the initial eccentric contact of the centering surfaces 42 and 50, the component part 34B of the quiver 34 is axially displaced against the force of the biasing spring 46. At the same time, the arrangement is made so that the support guiding the component part 34B allows a compensation movement which permits the centering surfaces 42, 50 to be brought into the joining position shown in
[0047] The axes A26 and A34 can be aligned in a simplified manner when the centering surface 50 in the front plate 24 has an axis A50 which is inclined downwards relative to a plane perpendicular to the hinge axis A22 of the front plate 24 by a predetermined angle with the dialysis machine 20.
[0048] Since the guided support of the component part 34B of the quiver 34 is a cylindrical plain bearing, and because the movement of the front plate 24 follows a circular movement curve during the closing operation, the bearing block 40 is mounted in the dialysis machine 20 as follows:
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[0050] In the above-described embodiment, the component part 34B is guided in a cylindrical plain bearing which is allowed to perform a linear displacement. Based on the
[0051] The bearing block 40 tightly screwed on the plate 58 in this variant receives a plain bearing member 66 in the configuration of a spherical cap that has a cylindrical bearing bore 68 for receiving the component part 34B of the quiver 34. Those bearings are available on the market as so-called pedestal bearings and are sold, for example, by IGUS GmbH under the registered trademark IGUBAL with spherical cap sold under the registered trademark IGLIDUR W300.
[0052] This type of support imparts additional freedom of movement to the quiver 34 with respect to the alignment of the axis A34 of the quiver 34 so that it is no longer required, when closing the front plate 24, to arrange the plate 58 perpendicularly to the hinge axis A22 for compensating the angular offset of the axes A34 and A26. Thus, there is more room for the inclination of the axis of the quiver 34 in the dialysis machine 20.
[0053] Hereinafter, based on the
[0054] One can see from
[0055] The quiver denoted with 134 is structuredas shown by the longitudinal section across the quiver 134 according to
[0056] In the shown embodiment, the conical bearing surface extends toward the component part 134A mounted in the device. This design of the support of the quiver 134 provides the latter with the required degree of freedom of movement when the front plate 24 is closed so that the centering surfaces 142, 150 can be brought into the joining position shown in
[0057] In further deviation from the above-described embodiment, the seal ring designated with the reference numeral 156 is received in a peripheral flute 170 which is formed in the centering surface 142 of the component part 134B designed as an outer cone. In the joining position of the interface shown in
[0058] As a matter of course, deviations from the described embodiment are possible without leaving the basic idea of the invention.
[0059] The number and the relative position of the interfaces can be varied freely without having to modify the basic principle of adjustment-free sealing.
[0060] In the foregoing, the centering surfaces were described as conical surfaces. However, they can also be constituted by spherical segment surfaces and segment cap surfaces, etc.
[0061] The embodiments show a structure in which the convex centering surface is designed at the quiver, while the concave centering surface is provided in the insert of the front plate. This arrangement can also be reversed, however.
[0062] Also, the movement of the front plate is not limited to a pivoting movement about a hinge axis. The interface can also be used in other movement patterns of the movable element such as the front plate of a dialysis machine.
[0063] Consequently, the invention provides a centering interface between a tubular element mounted in a device, specifically a receiving tube (quiver) for a suction rod of a dialysis machine, and a movable element which is pivotally guided about an axis, for example, specifically a front plate of the dialysis machine. A mating of conical surfaces is provided between the element mounted in the device and the movable element and, when manufacturing a preferably sealed joint of the interface, the element mounted in the device can be moved in the axial direction against the force of a biasing spring during movement of the movable element and the accompanying approach of the conical surfaces, while its guiding support allows a movement which permits the centering surfaces to be brought into a joining position with centering surface axes aligned with each other free of constraint forces.
TABLE-US-00001 List of reference numerals 20 dialysis machine 22 hinge connection A22 hinge axis 24, 124 front plate 26 accesses A26 access axis 28 base plate 30, 130 insert 32 insert wall 34, 134 quiver A34, A134 quiver axis 36 feed port 38, 138 discharge port 40, 140 bearing block 42, 142 centering surface A42 centering surface axis 44 bearing bore 46 biasing spring 48, 148 axial retaining ring 50, 150 centering surface A50 centering surface axis 52 annular groove 54 radial collar 56, 156 seal ring 58 plate 60 fastening bolt 62 bores 64 nut 66 plain bearing member 68 bearing bore 144 conical bearing surface 170 flute