Hose pump rotor

By designing the rotor seat into a plate shape and using concave and convex inlays, the problems of large amount of finishing and high energy consumption in the existing hose pump rotor structure are solved, and the rotor is made lighter and more stable.

CN223330755UActive Publication Date: 2025-09-12HEFEI HUAYUN MACHINERY MFG CO LTD
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Patent Information

Application Number
CN202422812413.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-18
Publication Date
2025-09-12
Estimated Expiration
2034-11-18

AI Technical Summary

Technical Problem

The existing hose pump rotor structure requires a large amount of fine processing, and the rotor seat consumes a lot of materials and is heavy, resulting in increased energy consumption.

Method used

The rotor seat is designed to be in the shape of a plate, and is connected by concave-convex inlays and threaded holes, which reduces the amount of fine processing and eliminates the groove cavity structure. The concave-convex inlays guide the radial displacement of the rotor bracket arm to achieve rotor lightweighting.

Benefits of technology

The amount of finishing and the weight of the rotor seat are reduced, energy consumption is reduced, the service life of the fastening bolts is increased, and the stability of the roller is ensured.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model discloses a hose pump rotor, and particularly relates to the field of hose pumps, the hose pump rotor comprises a rotor seat connected with a rotor shaft and a rolling wheel arranged at the radial outward free end of a rotor support arm, the rotor seat and the rotor support arm are plate-shaped, the rotor support arm is provided with a strip-shaped hole, and the through direction of the strip-shaped hole is parallel to the axial direction of the rotor shaft. A threaded hole is formed in the plate surface, facing the side where the rotor bracket arm is located, of the rotor seat; the faying surface of the rotor seat and the rotor bracket arm is vertical to the axial direction of the rotor and is in concave-convex inlay fit with the faying surface; the size perpendicular to the radial direction of the rotor is reduced, and the light weight of the rotor is achieved.
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Description

Technical Field

[0001] The present invention relates to a hose pump, in particular to an improved structure of a hose pump rotor. Background Art

[0002] Hose pumps in the prior art are widely used in chemical and other industrial fields. Their basic structure includes a housing and a hose placed in the housing. A rotor bracket driven by a main shaft drives a roller to squeeze the hose to pump the medium.

[0003] The application entitled "Hose Pump Rotor" (document number CN106640608A, hereinafter referred to as Document 1) is the applicant's prior application. The roller support arm and the rotor seat form a limited fit along the radial displacement. The roller support arm and the rotor seat are fixedly connected by a locking component. The specific solution is that the rotor seat is a groove-shaped body surrounded by a base plate and side plates arranged on its two opposite sides. The base plate is fixedly connected to the main shaft. The groove length direction of the groove cavity on the rotor seat is consistent with the radial direction of the main shaft. This solution effectively solves the displacement of the roller support arm in the radial direction while giving the roller support arm a reliable torque in the circumferential direction, and the roller support arm is locked and fixed to the adjusted position in the radial direction by the connecting bolts. The solution provided in Document 1 has some shortcomings. For example, the three surfaces of the groove bottom and groove wall of the groove cavity on the rotor seat and the three surfaces that cooperate with the groove bottom and groove wall of the groove cavity of the rotor seat all need to be finely processed, so the fine processing amount is large and the requirements are high. In addition, since Document 1 was originally designed mainly for the needs of large-flow pumps, the design of the groove cavity part on the rotor seat must consume a lot of materials and have a large mass, and the energy consumption of the rotor during operation also increases accordingly. Summary of the Invention

[0004] The object of the present invention is to provide a hose pump rotor, aiming to optimize the structural scheme between the rotor seat and the roller support arm, reduce the dimension perpendicular to the radial direction of the rotor and achieve lightweighting of the rotor.

[0005] The technical solution adopted by the present invention is: a hose pump rotor, including a rotor seat connected to the rotor shaft and a roller wheel arranged at the radially outward free end of the rotor support arm, the rotor seat and the rotor support arm are in the shape of a plate, and the rotor support arm is provided with a strip hole with a penetration direction parallel to the axial direction of the rotor shaft, and the long hole edge of the strip hole is parallel to the radial direction of the rotor shaft. A threaded hole is provided on the plate surface of the rotor seat facing the rotor support arm, and a fastening bolt is passed through the strip hole and connected to the threaded hole. The fitting surface of the rotor seat and the rotor support arm is perpendicular to the axial direction of the rotor and a concave and convex inlay is provided on the fitting surface. The inlay guides the rotor support arm to move relative to the rotor seat in the radial direction, and the rotor support arm and the rotor seat constitute circumferential synchronous rotation.

[0006] Compared with the prior art, the present invention has the following beneficial effects:

[0007] The rotor seat is set into a plate shape. On the one hand, the large-area fitting surface between the rotor seat and the rotor support arm is perpendicular to the rotor axis, and when the rotor seat and the support arm are fine-machined, only the surface where the rotor seat and the support arm contact each other needs to be machined, which greatly reduces the amount of fine-machining. On the other hand, compared with the arrangement of the two side groove walls forming the groove cavity on the rotor seat in the prior art, the present application does not set a corresponding groove cavity structure, thereby reducing the material and weight of the rotor seat itself, thereby reducing the energy consumption of the rotor during operation. BRIEF DESCRIPTION OF THE DRAWINGS

[0008] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention;

[0009] Figure 2 is a cross-sectional view of the rotor in Example 1 in the radial direction of the rotor shaft;

[0010] Figure 3 A perspective view of the rotor support arm for fixing the roller in Example 1;

[0011] Figure 4 This is a three-dimensional diagram of the rotor base and the rotor support arm in the assembled state in Example 1;

[0012] Figure 5 A perspective view of the rotor base and the rotor support arm in the assembled state in Example 2;

[0013] Figure 6 、 Figure 7 、 Figure 8 Schematic diagram of the structure of the contact surface between the rotor seat and the rotor support arm in Example 2;

[0014] Figure 9 It is a schematic diagram of the three-dimensional structure of the bolt gasket in the present invention. DETAILED DESCRIPTION

[0015] See Figure 1-9 As shown, a hose pump rotor includes a rotor seat 20 connected to the rotor shaft 10 and a roller 40 arranged at the free end of the rotor support arm 30 facing radially outward, characterized in that: the rotor seat 20 and the rotor support arm 30 are plate-shaped, the rotor support arm 30 is provided with a strip hole 31 with a penetration direction parallel to the axial direction of the rotor shaft 10, and the long hole side of the strip hole 31 is parallel to the radial direction of the rotor shaft 10, a threaded hole 21 is provided on the plate surface of the rotor seat 20 facing the rotor support arm 30, a fastening bolt 50 is inserted into the strip hole 31 and connected to the threaded hole 21, the fitting surface of the rotor seat 20 and the rotor support arm 30 is perpendicular to the axial direction of the rotor and a concave and convex inlay is provided on the fitting surface, the inlay guides the rotor support arm 30 to move relative to the rotor seat 20 in the radial direction, and the rotor support arm 30 and the rotor seat 20 form circumferential synchronous rotation;

[0016] In the above scheme, the rotor seat 20 is set to be plate-shaped. On the one hand, the large-area fitting surface between the rotor seat 20 and the rotor support arm 30 is perpendicular to the rotor axis. When the rotor seat 20 and the support arm 30 are fine-machined, only the surfaces where the rotor seat 20 and the support arm 30 contact each other need to be machined, which greatly reduces the amount of fine-machining. On the other hand, compared with the prior art design in which convex strips are added to the two side edges parallel to the radial direction of the rotor seat to form the shape of the groove cavity, since the present application does not add convex strips to the two side edges parallel to the radial direction of the rotor seat 20, the fine-machining amount is reduced while reducing the weight of the rotor seat 20 itself, thereby reducing the energy consumption of the rotor during operation.

[0017] A concave-convex inlay is provided on the fitting surface of the rotor seat 20 and the rotor support arm 30. On the one hand, the concave-convex inlay is conducive to positioning the rotor seat 20 and the rotor support arm 30 during assembly, ensuring that all fastening bolts 50 can pass through the strip holes 31 on the rotor support arm 30 and enter the threaded holes 21 on the rotor seat; on the other hand, the concave-convex inlay guides the rotor support arm 30 to move relative to the rotor seat 20 in the radial direction, so that the rolling wheel 40 on the free end of the rotor support arm 30 can move to the rolling hose and cause the hose to be in an optimal deformation state.

[0018] The following two embodiments are used to introduce the specific structure and implementation of the above-mentioned concave-convex inlay matching: Example 1

[0019] like Figure 2-4 As shown, the rotor base 20 is provided with a protrusion 22, and the protrusion 22 has a radial side surface 221 parallel to the radial direction of the rotor. The protrusion 22 is inserted into the strip hole 31, and the radial side surface 221 is in abutting engagement with a radial hole wall 311 of the strip hole 31 parallel to the radial direction of the rotor shaft 10. The relative sliding of the protrusion 22 in the strip hole 31 realizes a sliding engagement between the rotor support arm 30 and the rotor base 20 in the radial direction of the rotor shaft 10. When the rotor support arm 30 and the rotor base 20 are fixed together by the fastening bolt 50 and rotated, due to the action of the protrusion 22, the fastening bolt 50 is mainly subjected to only tension and avoids bearing the huge shear force derived from the torque, thereby increasing the service life of the fastening bolt 50.

[0020] The strip holes 31 are arranged in 2 to 4 intervals, and the threaded holes 21 are arranged in a corresponding manner to the number of the strip holes 31. In large and medium-sized hose pumps, the number of fastening bolts 50 is set to three as shown in the figure, which can basically meet the preload requirement. Therefore, preferably, the strip holes 31 are set in parallel with three intervals, and the major diameter direction of the strip hole 31 at the middle position coincides with the radial direction. The line connecting the hole cores of the threaded holes 21 is a broken line. When three threaded holes 21 and three strip holes 31 are respectively provided, the line connecting the hole cores of the three threaded holes 21 is a triangle, preferably an isosceles triangle, so that the contact surface between the rotor base 20 plate surface and the rotor support arm 30 plate surface on both sides of the threaded hole 21 at the middle position is equal. The three fastening bolts 50 with the same preload force provide a significantly increased contact surface area between the rotor base 20 and the rotor support arm 30, ensuring that the static friction between the rotor base 20 and the rotor support arm 30 is sufficient to resist the reaction force of hose deformation that drives the rotor support arm 30 to move radially, that is, the radial position of the roller 40 is stable and reliable.

[0021] The protrusion 22 and the fastening bolt 50 located in the same strip hole 31 are spaced apart in the long diameter direction of the strip hole 31 to avoid interference between the protrusion 22 and the fastening bolt 50 .

[0022] In the above description, the provision of the strip-shaped hole 31, on the one hand, forms a concave-convex fit with the protrusion 22, achieving preliminary positioning for the connection between the rotor base 20 and the rotor support arm 30. Furthermore, the rotor support arm 30 generates relative displacement along the radial direction of the rotor shaft 10 on the rotor base 20, thereby optimizing the force with which the rolling wheel 40 rolls the hose. Furthermore, the strip-shaped hole 31 provides a mounting location for the fastening bolt 50 on the rotor support arm 30, eliminating the need for a separate mounting hole for the fastening bolt 50 and ensuring the strength of the rotor support arm 30. Furthermore, the provision of the strip-shaped hole 31 also reduces the weight of the rotor base 20, thereby reducing the energy consumption during rotor operation. Example 2

[0023] like Figure 5-8 As shown, a groove 23 is provided on the plate surface of the rotor base 20 facing the rotor support arm 30, and the groove length direction of the groove 23 is parallel to the radial direction. The rotor support arm 30 is provided with a ridge 32 embedded in the groove 23; through the relative sliding of the ridge 32 in the groove 23, a sliding fit between the rotor support arm 30 and the rotor base 20 in the radial direction of the rotor shaft 10 is achieved. At the same time, due to the action of the ridge 32, the fastening bolt 50 is mainly only subjected to tension and avoids bearing the huge shear force derived from the torque, thereby increasing the service life of the fastening bolt 50.

[0024] Three strip holes 31 are arranged in parallel at intervals, and the major diameter direction of the strip hole 31 at the middle position coincides with the radial direction; the threaded holes 21 are arranged in a corresponding number to the strip holes 31; the line connecting the hole cores of the three threaded holes 21 is a broken line, preferably an isosceles triangle; the three fastening bolts 50 are respectively inserted into the three strip holes 31 and screwed into the corresponding threaded holes 21. At this time, the pre-tightening force provided by the three fastening bolts 50 is equal, which will significantly increase the fitting surface area between the rotor seat 20 and the rotor support arm 30, so that there is sufficient static friction between the rotor seat 20 and the rotor support arm 30 to resist the displacement of the rotor support arm 30 along the rotor radial direction after being subjected to the reaction force of the hose, so as to ensure the stability and reliability of the radial position of the rolling wheel 40.

[0025] In the short diameter direction of the strip hole 31, the core line of the convex strip 32 and the long diameter position of the strip hole 31 are staggered or arranged in the same core; that is, the convex strip 32 can be arranged between two adjacent strip holes 31, such as Figure 7 It can also be provided at one or both ends of the strip hole 31 in the direction of the major diameter, such as the external extension Figure 8 As shown,

[0026] See Figure 9 As shown, in the present application, a bolt washer 60 is further provided on the side of the rotor support arm 30 away from the rotor seat 20. The bolt washer 60 is V-shaped as a whole, and can also be an arc-shaped profile. Through holes for the fastening bolts 50 to pass through are opened at both ends and the middle of the bolt washer 60. The fastening bolts 50 press the bolt washers 60 against the edge of the strip hole 31; the provision of the bolt washers 60 enables the pre-tightening deformation of the bolt washers 60 on the edge of the adjacent strip hole 31 to prevent the possibility of loosening of the fastening bolts 50, and further increases the contact area of ​​each contact surface around the fastening bolts 50, thereby increasing the friction between the contact surfaces at the connection position, and also increasing the interaction between the fastening bolts 50, so that the anti-loosening performance of the fastening bolts 50 is significantly improved.

Claims

1. A hose pump rotor, comprising a rotor seat (20) connected to a rotor shaft (10) and a roller (40) disposed at a radially outward free end of a rotor support arm (30), characterized in that: The rotor seat (20) and the rotor support arm (30) are plate-shaped. The rotor support arm (30) is provided with a strip hole (31) whose through direction is parallel to the axial direction of the rotor shaft (10). The long hole side of the strip hole (31) is parallel to the radial direction of the rotor shaft (10). A threaded hole (21) is provided on the plate surface of the rotor seat (20) facing the rotor support arm (30). The fastening bolt (50) is inserted into the strip hole (31) and connected to the threaded hole (21). The fitting surface of the rotor seat (20) and the rotor support arm (30) is perpendicular to the axial direction of the rotor and a concave-convex inlay is provided on the fitting surface. The inlay guides the rotor support arm (30) to move relative to the rotor seat (20) in the radial direction, and the rotor support arm (30) and the rotor seat (20) form a circumferential synchronous rotation.

2. The hose pump rotor according to claim 1, characterized in that: The rotor seat (20) is provided with a protrusion (22), and the protrusion (22) has a radial side surface (221) parallel to the radial direction of the rotor. The protrusion (22) is inserted into the strip hole (31), and the radial side surface (221) is in abutting engagement with a radial hole wall (311) of the strip hole (31) parallel to the radial direction of the rotor shaft (10).

3. The hose pump rotor according to claim 1 or 2, characterized in that: The strip-shaped holes (31) are arranged at intervals of 2 to 4, and the threaded holes (21) and the strip-shaped holes (31) are arranged in a corresponding number.

4. The hose pump rotor according to claim 3, characterized in that: The hole core connection line of the threaded hole (21) is a broken line.

5. The hose pump rotor according to claim 2, characterized in that: The protrusion (22) and the fastening bolt (50) located in the same strip-shaped hole (31) are arranged at intervals in the long diameter direction of the strip-shaped hole (31).

6. The hose pump rotor according to claim 3, characterized in that: Three strip-shaped holes (31) are arranged in parallel and at intervals, and the major diameter direction of the strip-shaped hole (31) at the middle position coincides with the radial direction.

7. The hose pump rotor according to claim 1, characterized in that: A groove (23) is provided on the plate surface of the rotor seat (20) facing the rotor support arm (30), and the groove length direction of the groove (23) is parallel to the radial direction. A convex strip (32) is provided on the rotor support arm (30) and is embedded in the groove (23).

8. The hose pump rotor according to claim 7, characterized in that: Three strip-shaped holes (31) are arranged in parallel and spaced apart, and the major diameter direction of the strip-shaped hole (31) at the middle position coincides with the radial direction.

9. The hose pump rotor according to claim 8, characterized in that: In the direction of the short diameter of the strip hole (31), the core line of the protruding strip (32) and the long diameter of the strip hole (31) are staggered or arranged co-axially.

10. The hose pump rotor according to claim 1, characterized in that: A bolt washer (60) is provided on one side of the rotor support arm (30) away from the rotor seat (20). The bolt washer (60) is V-shaped as a whole, and through holes for fastening bolts (50) to pass through are provided at both ends and the middle of the bolt washer (60).

Citation Information

Patent Citations

  • Rotor of hose pump

    CN106640608A