Intelligent traction disc

By designing a traction rotating disc and driving motor for rotating the traction wire in the traction disc, and using the limiting parts to control the resistance change, the problems of low automation and operational errors caused by manual control of the traction disc in the prior art are solved, and more efficient production and processing are achieved.

CN223032723UActive Publication Date: 2025-06-27HUNAN ZHONGZHI QIXIN TECH CO LTD
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202421653941.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-12
Publication Date
2025-06-27
Estimated Expiration
2034-07-12

AI Technical Summary

Technical Problem

The existing traction discs need to manually control the forward and reverse rotation of the drive motor during operation, resulting in low intelligent automation and easy operational errors, affecting production and processing.

Method used

An intelligent traction disk is designed, including a traction rotating disk for rotating the traction wire and a drive motor for driving the axial rotation of the traction rotating disk, and a resistance change is achieved by setting a limit member to control the forward and reverse rotation of the motor.

Benefits of technology

The automatic control of the traction disk is realized, the degree of intelligent automation is improved, operation errors are reduced, and production and processing efficiency is improved.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223032723U_ABST
    Figure CN223032723U_ABST
Patent Text Reader

Abstract

The utility model provides an intelligent traction disc which comprises a traction rotating disc used for rotating and containing a traction wire and a driving motor used for driving the traction rotating disc to rotate axially, and further comprises a rotating disc installation base used for installing the traction rotating disc in a matched mode. The driving motor is fixedly arranged on the rotating disc mounting seat; an output shaft of the driving motor is in transmission connection with the traction rotating disc and is used for driving the traction rotating disc to rotate; the rotating disc further comprises at least one first limiting piece arranged on the rotating disc mounting seat; a second limiting piece which corresponds to the first limiting piece and is used for forming certain resistance when being in contact with the first limiting piece is arranged on the traction line or the traction rotating disc; in practical application, the structure of the limiting part can be well utilized to realize resistance change, so that corresponding signals are transmitted and processed, the positive and negative rotation of the motor is finally controlled, the structural design is reasonable, and the application effect is outstanding.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model relates to the technical field of traction disc products, in particular to an intelligent traction disc with reasonable structural design and outstanding application effect. Background Art

[0002] The traction disc is a relatively common storage device in the industrial field, and it is widely used in the storage links of many products, such as the up and down movement driving parts of wire, cable, and air model and other structural components.

[0003] During the specific operation of the existing traction disc, generally, manual control of the forward and reverse operation of the driving motor is required to realize the up and down movement of the traction structure. Such a design not only has a low degree of intelligent automation but also is prone to operation errors, affecting the actual production and processing.

[0004] For example, the utility model patent with the application number CN202321725441.9 and the patent name "A Traction Device for Steel Wire Rope" specifically discloses a traction device for steel wire rope, which solves the problem of the existing steel wire rope traction device having usage defects. It includes a device base, a motor, a reducer, and a traction disc. The motor and the reducer are both fixedly installed on the top of the device base. The traction disc is rotatably installed on the top of the device base. The reducer is fixedly connected between the output end of the motor and the axis of one end of the traction disc. A moving through groove is opened on the top of the device base. A U-shaped plate is fixedly installed on the top of the device base and below the moving through groove. A moving slide bar is arranged inside the U-shaped plate. A wire guiding component is fixedly installed on the top of the moving slide bar. The wire guiding component extends above the device base through the moving through groove. This steel wire rope traction device has components for winding and arranging the steel wire rope, so that the steel wire rope can be evenly and effectively wound on the surface of the traction disc during the winding process, thereby enabling the traction disc to effectively exert its winding ability.

[0005] The above-mentioned prior art patent does not have corresponding functional components for automatic control of the motor. Based on this, further improvement and improvement of the existing structure are needed. Content of the Utility Model

[0006] The problems existing in the prior art that this application solves are:

[0007] During the specific operation of the existing traction disc, generally, manual control of the forward and reverse operation of the driving motor is required to realize the up and down movement of the traction structure. Such a design not only has a low degree of intelligent automation but also is prone to operation errors, affecting the actual production and processing.

[0008] The solution of the utility model to solve the technical problem is:

[0009] Provided is an intelligent traction disc, including a traction rotating disc for rotatably storing a traction line and a driving motor for driving the axial rotation of the traction rotating disc, and further including a rotating disc mounting seat for fitting and installing the traction rotating disc;

[0010] The driving motor is fixedly arranged on the rotating disc mounting seat; the output shaft of the driving motor is in transmission connection with the traction rotating disc for driving the traction rotating disc to rotate;

[0011] Further included is at least one first limiting member arranged on the rotating disc mounting seat;

[0012] A second limiting member corresponding to the first limiting member and used for forming a certain resistance when contacting the first limiting member is arranged on the traction line or the traction rotating disc;

[0013] The traction rotating disc is movably connected to the rotating disc mounting seat through a central rotating shaft.

[0014] Preferably, a driving gear is connected to the output shaft of the driving motor;

[0015] An internal gear ring matching the driving gear is circumferentially formed on the traction rotating disc; the driving motor drives the driving gear to rotate and synchronously drives the axial rotation of the traction rotating disc.

[0016] Preferably, the first limiting member is a limiting seat integrally formed or connected to the rotating disc mounting seat;

[0017] The second limiting member is a limiting protrusion arranged on the traction line;

[0018] A wire passing hole for passing the traction line is formed in the limiting seat.

[0019] Preferably, the limiting seat is integrally formed on the outside of the rotating disc mounting seat; and the position of the limiting seat corresponds to the position of the traction rotating disc for enabling the traction line to be stored on the traction rotating disc after passing through the limiting seat.

[0020] Preferably, the first limiting member is at least one screw post arranged on the rotating disc mounting seat;

[0021] The second limiting member is a clamping protrusion arranged on one side of the traction rotating disc facing the rotating disc mounting seat and corresponding to the position of the screw post;

[0022] When the traction rotating disc rotates, the clamping protrusion contacts the bottom of the screw post to form a certain resistance to the rotation of the traction rotating disc.

[0023] Preferably, the screw post includes a column integrally formed on the rotating disk mounting seat and a limit screw locked on the column;

[0024] The limit screw penetrates through the column, and the bottom of the limit screw contacts the clamping protrusion.

[0025] Preferably, a rotating groove for fitting and accommodating the traction rotating disk is formed inside the rotating disk mounting seat;

[0026] On one side of the traction rotating disk facing the rotating disk mounting seat, a traction disk rotating surface corresponding to the rotating groove is provided;

[0027] The clamping protrusion is arranged on the traction disk rotating surface.

[0028] Preferably, a wire groove for accommodating the traction wire is formed around the periphery of the traction rotating disk;

[0029] Inside the traction rotating disk, a central connecting plate and a connecting rod connected to the central connecting plate are provided;

[0030] A shaft hole for movably connecting the central rotating shaft is formed on the central connecting plate.

[0031] Preferably, a resistance sensor for sensing the resistance is further arranged inside the driving motor.

[0032] Preferably, a gear bin for accommodating the driving gear is integrally formed on the rotating disk mounting seat;

[0033] The driving motor is locked on the rotating disk mounting seat by screws.

[0034] The technical effects produced by this application in solving the technical problems are as follows:

[0035] Compared with the prior art, an intelligent traction disc of the present utility model includes a traction rotating disc 11 for rotating and storing a traction wire 14 and a driving motor 13 for driving the axial rotation of the traction rotating disc 11. It further includes a rotating disc mounting seat 12 for fitting and installing the traction rotating disc 11. The shapes of the traction rotating disc 11 and the rotating disc mounting seat 12 are preferably circular, and the driving motor 13 is fixedly arranged on the rotating disc mounting seat 12. The output shaft 131 of the driving motor 13 is in transmission connection with the traction rotating disc 11 for driving the traction rotating disc 11 to rotate. It also includes at least one first limiting member arranged on the rotating disc mounting seat 12, and a second limiting member corresponding to the first limiting member and used for forming a certain resistance when contacting the first limiting member is arranged on the traction wire 14 or the traction rotating disc 11. The traction rotating disc 11 is movably connected to the rotating disc mounting seat 12 through a central rotating shaft 15. In practical applications, the structure of the limiting member can be well utilized to realize the change of resistance, thereby transmitting and processing the corresponding signals, and finally controlling the forward and reverse rotation of the motor. The structural design is reasonable and the application effect is outstanding. [Description of the Drawings]

[0036] Figure 1 and Figure 2 are the three-dimensional state structural schematic diagrams of an intelligent traction disc of the present utility model.

[0037] Figure 3 and Figure 4 are the exploded state structural schematic diagrams of an intelligent traction disc of the present utility model.

[0038] In the figure:

[0039] traction rotating disc 11; internal gear ring 111; central connecting plate 112; connecting rod 113; shaft hole 114; traction disc rotating surface 115; wire groove 116; rotating disc mounting seat 12; column 121; limit screw 122; limit seat 123; rotating groove 125; gear bin 127; driving motor 13; output shaft 131; traction wire 14; limit protrusion 141; central rotating shaft 15; driving gear 16. [Detailed Embodiments]

[0040] To make the objectives, technical solutions and advantages of the present utility model clearer, the present utility model will be further described in detail below with reference to the drawings and embodiments.

[0041] It should be understood that the specific embodiments described herein are only used to explain the present utility model and are not used to limit the present utility model.

[0042] Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.

[0043] It should be noted that when a component is referred to as being "fixed to" another component, it can be directly on the other component or there can also be an intermediate component. When a component is considered to be "connected" to another component, it can be directly connected to the other component or there may be an intermediate component at the same time.

[0044] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the technical field to which the present utility model belongs.

[0045] The terms used in the description of the present utility model herein are only for the purpose of describing specific embodiments and are not intended to limit the present utility model. The term "and / or" used herein includes any and all combinations of one or more of the related listed items.

[0046] The following will describe in detail some embodiments of the present utility model with reference to the accompanying drawings. Without conflict, the following embodiments and the features in the embodiments can be combined with each other.

[0047] Please refer to Figures 1 to 4 , an intelligent traction disc 1 of the present utility model includes a traction rotating disc 11 for rotatably storing a traction wire 14 and a drive motor 13 for driving the axial rotation of the traction rotating disc 11, and further includes a rotating disc mounting seat 12 for fitting and installing the traction rotating disc 11;

[0048] The shapes of the traction rotating disc 11 and the rotating disc mounting seat 12 are preferably circular;

[0049] The drive motor 13 is fixedly arranged on the rotating disc mounting seat 12; the output shaft 131 of the drive motor 13 is in transmission connection with the traction rotating disc 11 for driving the traction rotating disc 11 to rotate;

[0050] The drive motor 13 is a motor that can sense resistance changes. Specifically, corresponding sensor functional components can be provided inside the drive motor 13. The present application does not make specific limitations and does not involve software improvements;

[0051] It further includes at least one first limiting member arranged on the rotating disc mounting seat 12;

[0052] A second limiting member corresponding to the first limiting member is arranged on the traction wire 14 or the traction rotating disc 11 for forming a certain resistance when contacting the first limiting member;

[0053] The traction rotating disc 11 is movably connected to the rotating disc mounting seat 12 through a central rotating shaft 15.

[0054] In this application, a traction rotating disc 11 for rotating and storing a traction wire 14 and a driving motor 13 for driving the axial rotation of the traction rotating disc 11 are provided simultaneously. It also includes a rotating disc mounting seat 12 for fitting and installing the traction rotating disc 11. The outer shapes of the traction rotating disc 11 and the rotating disc mounting seat 12 are preferably circular. The driving motor 13 is fixedly arranged on the rotating disc mounting seat 12. The output shaft 131 of the driving motor 13 is in transmission connection with the traction rotating disc 11 for driving the traction rotating disc 11 to rotate. It also includes at least one first limiting member arranged on the rotating disc mounting seat 12. A second limiting member corresponding to the first limiting member and used for forming a certain resistance when contacting the first limiting member is arranged on the traction wire 14 or the traction rotating disc 11. The traction rotating disc 11 is movably connected to the rotating disc mounting seat 12 through a central rotating shaft 15. In practical applications, the structure of the limiting member can be well utilized to realize the change of resistance, so as to transmit and process the corresponding signals, and finally control the forward and reverse rotation of the motor. The structural design is reasonable and the application effect is outstanding.

[0055] In some other embodiments, a driving gear 16 is connected to the output shaft 131 of the driving motor 13;

[0056] An internal gear ring 111 matching the driving gear 16 is circumferentially provided on the traction rotating disc 11. The driving motor 13 drives the driving gear 16 to rotate and synchronously drives the axial rotation of the traction rotating disc 11.

[0057] The first limiting member is a limiting seat 123 integrally formed or connected to the rotating disc mounting seat 12;

[0058] The second limiting member is a limiting protrusion 141 arranged on the traction wire 14;

[0059] A wire passing hole for passing through the traction wire 14 is provided on the limiting seat 123.

[0060] The aperture of the wire passing hole can be slightly smaller than the outer diameter of the limiting protrusion 141;

[0061] The limiting seat 123 is integrally formed on the outside of the rotating disc mounting seat 12. And the position of the limiting seat 123 corresponds to the position of the traction rotating disc 11, so that the traction wire 14 is stored in the traction rotating disc 11 after passing through the limiting seat 123.

[0062] The first limiting member is at least one screw post provided on the rotating disk mounting seat 12;

[0063] The second limiting member is a clamping protrusion provided on one side of the traction rotating disk 11 facing the rotating disk mounting seat 12 and corresponding to the position of the screw post;

[0064] When the traction rotating disk 11 rotates, the clamping protrusion contacts the bottom of the screw post, forming a certain resistance to the rotation of the traction rotating disk 11.

[0065] The screw post includes a column 121 integrally formed on the rotating disk mounting seat 12 and a limiting screw 122 locked on the column 121;

[0066] The limiting screw 22 penetrates through the column 121, and the bottom of the limiting screw 122 contacts the clamping protrusion.

[0067] A rotating groove 125 for fitting and accommodating the traction rotating disk 11 is formed inside the rotating disk mounting seat 12;

[0068] One side of the traction rotating disk 11 facing the rotating disk mounting seat 12 is provided with a traction disk rotating surface 115 corresponding to the rotating groove 125;

[0069] A through hole corresponding to the column 121 is formed on the rotating groove 125 for the limiting screw 122 to extend out;

[0070] The clamping protrusion is provided on the traction disk rotating surface 115.

[0071] A wire groove 116 for accommodating the traction wire 141 is formed around the periphery of the traction rotating disk 11;

[0072] A central connecting plate 112 and a connecting rod 113 connected to the central connecting plate 112 are provided inside the traction rotating disk 11;

[0073] A shaft hole 114 for movably connecting the central rotating shaft 15 is formed on the central connecting plate 112.

[0074] A resistance sensor for sensing the resistance is further provided inside the drive motor 13.

[0075] A gear bin 127 for accommodating the driving gear 16 is integrally formed on the rotating disk mounting seat 12;

[0076] The drive motor 13 is locked on the rotating disk mounting seat 12 by screws.

[0077] The technical effects produced by this application in solving the technical problems are as follows:

[0078] Compared with the prior art, an intelligent traction disc 1 of the present utility model includes a traction rotating disc 11 for rotating and storing a traction wire 14, a driving motor 13 for driving the axial rotation of the traction rotating disc 11, and a rotating disc mounting seat 12 for fitting and installing the traction rotating disc 11. The shapes of the traction rotating disc 11 and the rotating disc mounting seat 12 are preferably circular, and the driving motor 13 is fixedly arranged on the rotating disc mounting seat 12. The output shaft 131 of the driving motor 13 is in transmission connection with the traction rotating disc 11 for driving the traction rotating disc 11 to rotate. At least one first limiting member is arranged on the rotating disc mounting seat 12, and a second limiting member corresponding to the first limiting member and used for forming a certain resistance when contacting the first limiting member is arranged on the traction wire 14 or the traction rotating disc 11. The traction rotating disc 11 is movably connected with the rotating disc mounting seat 12 through a central rotating shaft 15. In practical applications, the structure of the limiting member can be preferably utilized to realize the change of resistance, so as to transmit and process the corresponding signals, and finally control the forward and reverse rotation of the motor. The structural design is reasonable and the application effect is outstanding.

[0079] The embodiments of the present utility model described above do not limit the protection scope of the present utility model. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present utility model shall be included in the protection scope of the claims of the present utility model.

Claims

1. An intelligent traction disk, comprising a traction rotating disk for rotating and receiving a traction line and a driving motor for driving the traction rotating disk to axially rotate, characterized in that: It also includes a rotating disk mounting seat for matching and installing the traction rotating disk; The driving motor is fixedly arranged on the rotating disk mounting seat; the output shaft of the driving motor is drivingly connected with the traction rotating disk to drive the traction rotating disk to rotate; It also includes at least one first stopper disposed on the rotating disk mounting seat; A second stopper corresponding to the first stopper and used to form a certain resistance when in contact with the first stopper is arranged on the traction line or the traction rotating disk; The traction rotating disk is movably connected to the rotating disk mounting seat through a central rotating shaft.

2. The intelligent traction disk according to claim 1, characterized in that: The output shaft of the driving motor is connected to a driving gear; The traction rotating disk is surrounded by an inner gear ring matched with the driving gear; the driving motor drives the driving gear to rotate and synchronously drives the traction rotating disk to rotate axially.

3. An intelligent traction disk as claimed in claim 1 or 2, characterized in that: The first limiting member is a limiting seat integrally formed or connected to the rotating disk mounting seat; The second limiting member is a limiting protrusion arranged on the traction line; A wire passing hole for passing the traction wire is provided on the limiting seat.

4. The intelligent traction disk according to claim 3, characterized in that: The limiting seat is integrally formed and arranged outside the rotating disk mounting seat; and the position of the limiting seat corresponds to the position of the traction rotating disk, so that the traction line is received in the traction rotating disk after passing through the limiting seat.

5. The intelligent traction disk according to claim 1 or 2, characterized in that: The first limiting member is at least one screw column arranged on the rotating disk mounting seat; The second limiting member is a positioning protrusion provided on the side of the traction rotating disk facing the rotating disk mounting seat and corresponding to the position of the screw column; When the traction rotating disk rotates, the locking protrusion contacts the bottom of the screw column, thereby forming a certain resistance to the rotation of the traction rotating disk.

6. The intelligent traction disk according to claim 5, characterized in that: The screw column includes a column integrally formed and arranged on the rotating disk mounting seat and a limit screw locked on the column; The limiting screw passes through the column, and the bottom of the limiting screw contacts the locking protrusion.

7. The intelligent traction disk according to claim 5, characterized in that: The inner side of the rotating disk mounting seat is provided with a rotating groove for matching and accommodating the traction rotating disk; The traction rotating disk is provided with a traction disk rotating surface corresponding to the rotating groove on one side facing the rotating disk mounting seat; The locking protrusion is arranged on the rotating surface of the traction disk.

8. The intelligent traction disk according to claim 1 or 2, characterized in that: A wire groove for receiving the traction wire is provided around the periphery of the traction rotating disk; A central connecting plate and a connecting rod connected to the central connecting plate are arranged inside the traction rotating disk; The central connecting plate is provided with an axial hole for movably connecting the central rotating shaft.

9. The intelligent traction disk according to claim 1 or 2, characterized in that: A resistance sensor for sensing the resistance is also arranged inside the driving motor.

10. The intelligent traction disk according to claim 2, characterized in that: The rotating disk mounting seat is integrally provided with a gear compartment for accommodating the driving gear; The driving motor is fixed on the rotating disk mounting seat by screws.

Citation Information

Patent Citations

  • Traction device for steel wire rope

    CN219991011U