PERISTALTIK PUMP
Patent Information
- Application Number
- DE502024000083
- Authority / Receiving Office
- DE · DE
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2023-06-07
- Filing Date
- 2024-06-03
- Publication Date
- 2025-07-17
- Estimated Expiration
- 2044-06-03
AI Technical Summary
Existing peristaltic pumps face difficulties in handling the pump segment during manual insertion due to the design of the guide surface, leading to potential hose damage and flow rate fluctuations.
The introduction of guide surfaces that rotate with the rotor, forming a circular segment-like guide channel with the support surface to securely fix the hose segment, ensuring a constant delivery volume and minimizing hose abrasion, with a designed clearance fit and controlled curvature.
The solution stabilizes the hose segment, maintains consistent flow, reduces hose damage, and allows easy manual insertion by providing a circumferential free space for unlocking the rotor cover.
Description
[0001] The invention relates to a hose roller or peristaltic pump, i.e. a positive displacement pump in which the medium to be pumped is pressed through a hose by external mechanical deformation thereof, according to the preamble of patent claim 1. Pumps of this type are frequently used to pump fluid, in particular blood, in a device for extracorporeal blood treatment, in particular in a dialysis machine. The fluid is pumped from a low-pressure side to a high-pressure side by means of the peristaltic pump, wherein an elastically deformable fluid line in the form of a hose segment, referred to as a pump segment, arranged between the low-pressure side and the high-pressure side is deformed, in particular squeezed together, between a support surface of a pump bed and a rotor rotating relative to the latter, having at least two squeezing elements.
[0002] In a known peristaltic pump, as is known for example from document EP 1 749 549 B1, as in Figures 7 to 9 shown schematically - two squeezing elements 320 in the form of spring-mounted pressure rollers arranged diametrically offset from one another are provided on the rotor 310 with the rotation axis A, and the support surface 330 is formed by a circular segment surface which extends over a sufficiently large central angle greater than 180°.
[0003] To the hose, i.e. a pump segment 360 inserted in the peristaltic pump (see Figure 9 In order to reasonably fix the pump segment during operation, a circular segment-shaped guide surface 340 is located in the center between each of the two pressure rollers 320, which extends over a central angle WZF of approximately 30°. It is evident that this arrangement makes handling more difficult when manually inserting the pump segment.
[0004] The invention is therefore based on the object of developing a generic peristaltic pump in such a way that the handling during manual insertion of the pump segment is simplified.
[0005] This problem is solved by the features of patent claim 1.
[0006] The invention is based on the finding that if no special measures are taken to fix the pump segment, the pump segment moves during operation of the peristaltic pump against the conveying direction in the pump bed, whereby the pump segment - as in Figure 9 As shown, the air is drawn ever more tightly around the rotor. This can cause damage to the hose and fluctuations in the flow rate.
[0007] To achieve this goal, guide surfaces are provided that rotate with the rotor and are arranged in pairs adjacent to each other in the circumferential direction on either side of the squeezing element. These guide surfaces are designed and constructed in such a way that, together with the support surface, they form a circular segment-like guide channel in which the hose segment can be radially fixed with a predetermined clearance fit. This has the additional advantage that not only can the pump's delivery volume be kept constant, but the pump segment is also treated particularly gently during operation. The radius of the guide surfaces defines the curvature of the hose, thereby keeping the delivery volume constant. At the same time, the guide surfaces prevent damage to the pump segment.Because the guide surfaces are only formed in the vicinity of the squeezing elements, the guide contour is divided into several small areas, reducing the contact surface, which also has a positive effect on the abrasion of the hose.
[0008] If the guide surfaces assigned to and adjacent to a squeezing element each describe partial segments of a circle, in conjunction with a cylindrical or torus-like support surface on both sides of the squeezing element, circularly curved guide channels are created, with which the curvature behavior of the hose can be controlled even better.
[0009] If the guide surfaces extend over a total central angle which is dimensioned such that a circumferentially extending free space is left between the guide surfaces of adjacent squeezing elements, there is the additional advantage that this free space can be used for manual lateral unlocking of the rotor cover or rotor and when inserting the hose or pump segment.
[0010] According to an advantageous development, the guide surfaces assigned to a squeezing element extend over different central angles. Preferably, the central angle of the guide surface trailing the squeezing element is larger, which allows for even better stabilization of the hose curvature with the lowest possible material consumption.
[0011] In principle, the guide surfaces can be attached to any component that moves with the rotor. Particular additional advantages arise when the guide surfaces are formed on a rotor cover or are optionally attached to it in an interchangeable manner. This allows for particularly great design freedom while simultaneously being easy to manufacture, as such rotor covers are often made from plastic injection-molded parts.
[0012] In principle, the invention can also be used in peristaltic pumps where the squeezing elements are arranged at a variable angular distance from each other. However, if the squeezing elements are offset by 180° from each other, it is advantageous to design two guide surfaces rotationally symmetrical to each other.
[0013] Advantageously, the guide surfaces are made of and / or coated with a material that has abrasion-reducing sliding properties. Furthermore, it is advantageous if the guide surfaces are provided with a high surface quality.
[0014] Exemplary embodiments of the invention are explained in more detail below. They show: Figure 1 a perspective view of the peristaltic pump with the housing cover open; Figure 2 a perspective view of a rotor of the peristaltic pump according to Figure 1 ; Figure 3 a top view of the peristaltic pump; Figure 4 a schematic top view of the peristaltic pump with inserted pump segment; Figure 5 one of the Figure 4 similar schematic top view of the peristaltic pump with the rotor cover cut free in the area of the squeezing elements; Figure 6 a top view of the peristaltic pump with the rotor cover removed; Figure 7a perspective view of a rotor of a known peristaltic pump; Figure 8 a schematic plan view of the known peristaltic pump with inserted rotor; and Figure 9 the top view of the well-known peristaltic pump with inserted pump segment.
[0015] In Figure 1The reference numeral 1 designates a peristaltic pump, such as is used, for example, in dialysis machines. The peristaltic pump has the task of conveying a defined volume of a medium, such as blood or dialysis fluid, by deforming and clamping the elastically deformable fluid line. The peristaltic pump for conveying blood generally conveys from a negative pressure side PN (low pressure side) to a positive pressure side PP (high pressure side). The peristaltic pump has a pump housing 5, in which a rotor 10 rotatable about a rotor axis A is accommodated, with at least two squeezing elements 20, here pressure rollers, which are circumferentially offset from one another, for example diametrically, and which has a support surface 30 extending in an arc around the rotor axis A and radially spaced from the rotor 20, which support surface 30 is used to support a radially insertable between the rotor 20 and the support surface 30, in Figure 1not shown. The support surface 30 is generally formed by a cylindrical surface, but it can also be trough-shaped. The direction of rotation of the rotor 10 when conveying fluid is indicated by arrow D.
[0016] Figure 2 shows details of the rotor 20. It has a Figure 6 The rotor base body 40, visible in plan view, and a rotor cover 42. The rotor 20 can be removed from a drive shaft (not shown in detail) by means of a laterally operated button 44. The squeezing elements 20 are rotatably mounted on a rocker 41 that is flexibly supported on the rotor base body 40.
[0017] The rotor cover 42, which rotates with the rotor 10, has guide surfaces 46, 48 in the area of the squeezing elements 20, of which one guide surface 46 leads the squeezing element 20 and the other guide surface 48 follows the squeezing element 20. The guide surfaces 46, 48 are accordingly arranged and designed adjacent to both sides of the squeezing element 20 in the circumferential direction in such a way that - as can be seen from the Figures 3 to 6 visible - form with the support surface 30 a circular segment-like guide channel FK1 and FK2 in each case, in which the hose segment 60 inserted into the pump housing 1, which is also referred to as pump segment, can be radially fixed with a predetermined clearance fit.
[0018] In this way, the radius of the guide surfaces is determined - as can be seen from the illustrations of the Figures 4 and 5can be seen - defines the curvature behavior of the hose 60 during operation of the peristaltic pump. Thus, the delivery volume can be kept constant. At the same time, the guide surfaces prevent damage to the pump segment 60. Preferably, the guide surfaces 46, 48 are formed and / or coated from a material that has abrasion-minimizing sliding properties.
[0019] The arrangement of the guide surfaces 46, 48 is - as can be seen from the figures - such that they are only formed in the vicinity of the squeezing elements 20, i.e. at a limited angular distance of approximately 20° to 40° for the leading guide surface 46 and 35° to 60° for the trailing guide surface 48. In this way, the guide contour is divided into several small areas that determine the guide channels FK1 and FK2, thereby reducing the contact surface, which also has a positive effect on the abrasion on the hose 60. With this arrangement, the guide surfaces 46, 48 extend over a total central angle WZG (see Figure 5 ), which is dimensioned, for example, with a restriction to 110° to 140°, so that between adjacent guide surfaces 46 and 48 a free space 70 extending in the circumferential direction (see Figure 3). This free space 70 can be advantageously used for manual lateral unlocking of the rotor 10 and for inserting the hose or pump segment 60.
[0020] In the illustrated embodiment, the guide surfaces 46, 48 associated with and adjacent to a squeezing element 20 each describe partial segments of a circle. This results in - as in Figure 5 shown - in cooperation with a cylindrical or torus-like support surface 30 between the squeezing elements 20 circularly curved guide channels with which the curvature behavior of the hose 60 can be controlled particularly effectively.
[0021] A great deal of flexibility remains in the design of the guide surfaces 46, 48 with regard to position, shape, and size. In the illustrated embodiment, the guide surfaces 46, 48 associated with a squeezing element 20 extend over different central angles, with the guide surface 48 trailing the squeezing element 20 extending over a larger central angle WZ48 than the guide surface 46 leading the squeezing element 20 ( Figure 5 ).
[0022] Since in the peristaltic pump shown the squeezing elements 20 are arranged diametrically offset from one another, the leading and trailing guide surfaces 46 and 48 are rotationally symmetrical to one another.
[0023] In principle, the guide surfaces 46, 48 can be formed on any component that moves with the rotor 10. In the illustrated embodiment, they are formed on the rotor cover 42, which is detachably attached to a rotor base body 50. The rotor base body 50 is in Figure 6 shown in plan view with the rotor cover 42 removed. It can be seen that a base 52 of the rotor base body 50 already has the contour of the guide surfaces 46, 48.
[0024] Of course, deviations from the embodiment shown are possible without departing from the basic idea of the invention.
[0025] For example, the squeezing elements 20 can also be designed to be angularly positionable relative to one another in the direction of rotation.
[0026] A component of the peristaltic pump forming the guide surfaces 46, 48 can also be formed integrally with the rotor base body 40 or can be replaceably attached to the rotor base body 40 or to the rotor cover 42. The rotor cover 42 can be formed in multiple parts, for example, as a two-component part, in which case the guide surfaces 46, 48 are formed on inserts.
[0027] It is also within the scope of the invention if the rotor has more than two squeezing elements 20, in particular three or four. The angular positions of the squeezing elements relative to one another, i.e., the angles between adjacent squeezing elements, outside the pre-compression range are preferably 180° in the case of two squeezing elements, 120° in the case of three squeezing elements, and 90° in the case of four squeezing elements.
[0028] The squeezing elements can also be formed directly on the rotor, in particular in one piece with the rotor. Alternatively, they can be arranged on rotor arms. These are preferably designed to pivot circumferentially relative to the rotor, so that pre-compression can be achieved by pivoting in the circumferential direction. The squeezing elements can be designed, in particular, as squeezing rollers or pressure rollers, which advantageously roll along the fluid line in a material-friendly manner, or as sliding shoes that move glidingly over the fluid line.
[0029] The invention thus provides a peristaltic pump, in particular for conveying fluid in a device for extracorporeal blood treatment, with a pump housing in which a rotor rotatable about a rotor axis is accommodated with at least two squeezing elements offset from one another in the circumferential direction and which has a support surface extending in an arc around the rotor axis and radially spaced from the rotor, which is designed to support a hose segment which can be inserted radially between the rotor and the support surface.To ensure a constant delivery volume while at the same time protecting the hose segment as much as possible, the peristaltic pump has guide surfaces that rotate with the rotor and are arranged and designed adjacent to both sides of the squeeze element in the circumferential direction in such a way that they form a circular segment-like guide channel with the support surface in which the hose segment can be radially fixed with a predetermined clearance fit. List of reference symbols
[0030] ARotor axis WZSCenter angle support surface WZFZCenter angle guide surface PPHigh pressure side PNLow pressure side DDirection of rotation FK1Guide contour area FK2Guide contour area 5Pump housing 10Rotor 20Squeeze element 30Support surface 40Rotor base body 41Swing arm 42Rotor cover 44Button 46Guide surface WZ46Central angle of 46 48Guide surface WZ48Central angle of 48 WZGTotal central angle of 46 and 48 52Base 60Pump segment 70Free space 310 Rotor 320 Squeeze elements 330 Support surface 340 Guide surface 360 Pump segment
Claims
1. A peristaltic pump, in particular for conveying fluid in a device for extracorporeal blood treatment, with a pump housing (5), in which a rotor (10) rotatable about a rotor axis (A) with at least two squeeze elements (20) offset in a circumferential direction to each other is accommodated and which has a support surface (30) extending arc-shaped about the rotor axis (A) and spaced radially from the rotor (10), wherein the support surface is configured to support a tube segment (60) which can be inserted radially between the rotor (10) and the support surface (30), characterized by co-rotating guide surfaces (46, 48) with the rotor (10), which are arranged and configured adjacent to both sides of a squeeze element (20) in the circumferential direction in such a way that they each form a circular segment-like guiding passage (FK1, FK2) with the support surface (30), in which the tube segment (60) can be fixed radially with a predetermined clearance fit.
2. The peristaltic pump according to claim 1, characterized in that the guide surfaces (46, 48) assigned to a squeeze element (20) and adjacent to it each describe partial segments of a circle.
3. The peristaltic pump according to claim 1 or 2, characterized in that the guide surfaces (46, 48) assigned to a squeeze element (20) extend over a total centering angle (WZG) that is dimensioned such that a free space or clearance (70) extending in the circumferential direction is left between guide surfaces (46, 48) of adjacent squeeze elements (20).
4. The peristaltic pump according to claim 3, characterized in that the clearance (70) can be used as lateral access for an unlocking button (44).
5. The peristaltic pump according to one of claims 1 to 4, characterized in that the guide surfaces (46, 48) assigned to a squeeze element (20) extend over central angles (WZ46, WZ48) of different sizes.
6. The peristaltic pump according to one of claims 1 to 5, characterized in that the guide surfaces (46, 48) are formed on a rotor cover (42) or are optionally attached to it in a replaceable manner.
7. The peristaltic pump according to one of claims 1 to 6, in which the squeeze elements (20) are arranged diametrically offset to each other, characterized in that two guide surfaces (46, 48) are each configured to be rotationally symmetrical to each other.
8. The peristaltic pump according to one of claims 1 to 7, characterized in that the guide surfaces (46, 48) are made of and / or coated with a material that has abrasion-minimizing sliding properties.