Winding mechanism of conical shell

The conical shell winding mechanism automates the formation of conical cable connectors, improving precision and efficiency while ensuring stability, addressing the inefficiencies of manual methods.

CN223097725UActive Publication Date: 2025-07-15苏州三革电缆附件有限公司
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Patent Information

Application Number
CN202422332918.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-24
Publication Date
2025-07-15
Estimated Expiration
2034-09-24

AI Technical Summary

Technical Problem

In the prior art, when the cable joint shell is wound into a conical shape, the winding accuracy and efficiency are low, and there are stability problems.

Method used

The rotating cooperation between the tapered winding head and the bearing disc, combined with the drive module and bracket structure, realizes automatic winding forming, including the design of the inclined winding head, connecting shaft, pressing hoop and auxiliary plate, ensuring the stability and accuracy of the winding.

Benefits of technology

The winding accuracy and efficiency of the tapered shell are improved, ensuring the stability of the winding process, avoiding offsets and drops, and improving the winding quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a winding mechanism of a conical shell, and relates to the technical field of cable processing. The winding mechanism of the conical shell comprises a machine base, a bearing disc which is rotatably arranged on the machine base in the axis direction of the bearing disc, a first driving module used for driving the bearing disc to rotate and a winding assembly, and the winding assembly comprises a winding head which is rotatably arranged on the machine base in the axis direction of the winding assembly; the winding head is conical, and the side, close to the bearing disc, of the winding head can abut against the disc face of the bearing disc. According to the winding mechanism, the conical shell can be automatically wound and formed under the running fit of the conical winding head and the bearing disc, and the winding precision and the winding efficiency of the conical shell are greatly improved.
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Description

Technical Field

[0001] This application relates to the field of cable processing, and particularly to a winding mechanism for a conical housing. Background Art

[0002] Cables are a general term for items such as optical cables and electrical cables. After the cable laying is completed, cable connectors are required to connect multiple sections of cables into an integral circuit. In some application scenarios, the cable connector housing needs to be wound into a conical shape. In the prior art, it is usually manually wound by workers to form a semi-circular copper plate into a conical shape. However, the winding accuracy and efficiency of manual winding are both low. Summary of the Utility Model

[0003] In order to overcome the deficiencies of the prior art, this application provides a winding mechanism for a conical housing.

[0004] The winding mechanism for a conical housing provided by this application adopts the following technical solutions:

[0005] A winding mechanism for a conical housing includes a machine base, a bearing plate rotatably arranged on the machine base around its own axis, a first driving module for driving the bearing plate to rotate, and a winding assembly. The winding assembly includes a winding head rotatably arranged on the machine base around its own axis. The winding head is conical and one side of it close to the bearing plate can be in contact with the disk surface of the bearing plate.

[0006] By adopting the above technical solutions, the conical housing can be automatically wound and formed under the rotational cooperation of the conical winding head and the bearing plate, greatly improving the winding accuracy and efficiency of the conical housing.

[0007] In a specific feasible embodiment, the bearing plate is horizontally arranged and its rotation axis extends along the vertical direction. The winding head is arranged on the upper side of the bearing plate and is inclined downward along the horizontal direction.

[0008] By adopting the above technical solutions, the inclined winding head can press the conical housing against the horizontal bearing plate, effectively improving the winding stability of the conical housing and preventing it from shifting or falling during the winding process.

[0009] In a specific feasible embodiment, the winding head has a tail close to the edge of the bearing plate and a head close to the center of the bearing plate. The diameter of the winding head gradually decreases along the direction from the tail to the head.

[0010] By adopting the above technical solutions, one side of the winding head can always be in contact with the disk surface of the bearing plate during the relative rotation with the bearing plate, facilitating the formation of the conical housing on the winding head.

[0011] In a specific feasible implementation, a connecting shaft is provided at the tail, and one end of the connecting shaft away from the winding head is rotatably connected to the machine base, and the rotation axis between the two is perpendicular to the rotation axis of the bearing disc.

[0012] By adopting the above technical solution, after the conical outer shell is wound and formed, the connecting shaft can drive the winding head to disengage from the bearing seat through the relative rotation between it and the machine base, so as to facilitate the removal of the formed conical outer shell from the winding head.

[0013] In a specific feasible implementation, a first bracket is provided on the machine base, the length direction of the first bracket is parallel to the axial line direction of the bearing disc, the winding assembly further includes a driving member slidably arranged on the first bracket along the length direction of the first bracket, a second driving module for driving the driving member to slide, and a slidable sliding sleeve is arranged on the connecting shaft, and the driving member is hinged to the sliding sleeve.

[0014] In a specific feasible implementation, a second bracket is provided on the machine base, the winding assembly further includes a pressing hoop movably arranged on the second bracket along the direction of approaching or departing from the connecting shaft, a third driving module for driving the pressing hoop to move, and the pressing hoop can be buckled on the connecting shaft during its moving stroke.

[0015] By adopting the above technical solution, the winding head can be tightly abutted against the bearing disc under the relative pressing action of the pressing hoop and the connecting shaft, avoiding the shaking of the winding head during the winding process and improving the winding quality of the conical outer shell.

[0016] In a specific feasible implementation, the moving direction of the pressing hoop is perpendicular to the extending direction of the connecting shaft.

[0017] In a specific feasible implementation, an auxiliary plate is further provided on the disc surface of the bearing disc, and the auxiliary plate is located on the side of the winding head.

[0018] By adopting the above technical solution, the auxiliary plate can jack up one end of the conical outer shell, so that the conical outer shell can be wound more smoothly on the winding head.

[0019] In summary, the present application includes at least one of the following beneficial technical effects:

[0020] The conical outer shell can be automatically wound and formed under the rotational cooperation of the conical winding head and the bearing disc, greatly improving the winding accuracy and winding efficiency of the conical outer shell. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1 is a schematic structural diagram of the winding mechanism of the embodiment of the present application.

[0022] Description of Reference Numerals

[0023] 1. Machine base; 2. Carrying plate; 3. First driving module; 4. Winding assembly; 41. Winding head; 411. Tail; 412. Head; 42. Connecting shaft; 43. Driving member; 44. Second driving module; 45. Pressing hoop; 46. Third driving module; 47. Sliding sleeve; 5. First bracket; 6. Second bracket; 7. Auxiliary plate. Detailed Description of the Embodiment

[0024] The following further describes the present application in detail with reference to the accompanying drawings.

[0025] Refer to Figure 1 As shown, a winding mechanism for a conical housing is shown, including a machine base 1, a carrying plate 2 horizontally arranged on the machine base 1 and capable of rotating around its own axis, a first driving module 3 for driving the carrying plate 2 to rotate, and a winding assembly 4. Among them, the first driving module 3 is a motor, the carrying plate 2 is a disc, and the winding assembly 4 includes a winding head 41 rotatably arranged on the machine base 1 around its own axis. The winding head 41 is arranged on the upper side of the carrying plate 2 and is inclined downward along the horizontal direction. The winding head 41 is conical and one side thereof close to the carrying plate 2 can be in contact with the disk surface of the carrying plate 2.

[0026] In this way, when winding the conical housing, only need to place the semi-circular copper plate on the carrying plate 2, and then the first driving module 3 drives the carrying plate 2 to rotate. One side of the winding head 41 abuts against the copper plate and rotates relative to the carrying plate 2. Subsequently, the conical housing can be automatically wound and formed under the rotational cooperation of the conical winding head 41 and the carrying plate 2, which greatly improves the winding accuracy and winding efficiency of the conical housing. And the inclined winding head 41 can obliquely press the conical housing against the horizontal carrying plate 2, effectively improving the winding stability of the conical housing and preventing it from shifting or falling during the winding process.

[0027] In this embodiment, the winding head 41 has a tail 411 close to the edge of the carrying plate 2 and a head 412 close to the center of the carrying plate 2. The diameter of the winding head 41 gradually decreases along the direction from the tail 411 to the head 412. In this way, one side of the winding head 41 can always abut against the disk surface of the carrying plate 2 during the relative rotation with the carrying plate 2, which is convenient for the formation of the conical housing on the winding head 41.

[0028] In this embodiment, a first bracket 5 is provided on the machine base 1. The first bracket 5 extends along the vertical direction. A connecting shaft 42 is further provided on the tail part 411. One end of the connecting shaft 42 away from the winding head 41 is rotatably connected to the first bracket 5, and the rotation axis between the two extends along the horizontal direction and is perpendicular to the rotation axis of the bearing disc 2. After the conical outer shell is wound and formed, the winding head 41 can be lifted upward by simply rotating the connecting shaft 42, so that the winding head 41 is separated from the bearing disc 2, and thus the formed conical outer shell can be conveniently removed from the winding head 41.

[0029] The winding assembly 4 further includes a driving member 43 slidably disposed on the first bracket 5 along the length direction of the first bracket 5, and a second driving module 44 for driving the driving member 43 to slide. A slidable sliding sleeve 47 is provided on the connecting shaft 42, and the driving member 43 is hinged to the sliding sleeve 47. The driving member 43 is rod-shaped, and its two ends are respectively slidably connected to the opposite side portions of the first bracket 5. The second driving module 44 is a cylinder.

[0030] In this embodiment, a second bracket 6 is further provided on the machine base 1. The winding assembly 4 further includes a pressing hoop 45 movably disposed on the second bracket 6 along a direction close to or away from the connecting shaft 42, and a third driving module 46 for driving the pressing hoop 45 to move. Among them, the third driving module 46 is a cylinder. The moving direction of the pressing hoop 45 is perpendicular to the extending direction of the connecting shaft 42, and the pressing hoop 45 can be buckled on the connecting shaft 42 during its moving stroke.

[0031] When winding the conical outer shell, the third driving module 46 drives the pressing hoop 45 to approach and buckle on the connecting shaft 42. The winding head 41 can be tightly abutted against the bearing disc 2 under the relative pressing action of the pressing hoop 45 and the connecting shaft 42, avoiding the shaking of the winding head 41 during the winding process and improving the winding quality of the conical outer shell.

[0032] In this embodiment, an auxiliary plate 7 is further provided on the disk surface of the bearing disc 2. The auxiliary plate 7 is located on the side of the winding head 41. The auxiliary plate 7 can lift one end of the conical outer shell, so that the conical outer shell can be wound on the winding head 41 more smoothly.

[0033] The implementation principle of a winding mechanism according to an embodiment of the present application is as follows:

[0034] Place the semi-circular copper plate on the bearing disc 2, and then the second driving module 44 drives the connecting shaft 42 to rotate. The winding head 41 presses downward against the bearing disc 2 under the rotation of the connecting shaft 42;

[0035] Subsequently, the third driving module 46 drives the pressing hoop 45 to approach and buckle on the connecting shaft 42;

[0036] Subsequently, the first driving module 3 drives the carrier plate 2 to rotate, and the semi-circular copper plate is wound and formed on the winding head 41 under the relative rotation of the winding head 41 and the carrier plate 2.

[0037] Subsequently, the third driving module 46 drives the pressing hoop 45 to reset, and the second driving module 44 drives the connecting shaft 42 to rotate. The connecting shaft 42 drives the winding head 41 to lift and separate from the carrier plate 2, and then the conical shell on the winding head 41 can be removed.

[0038] The above are all the preferred embodiments of this application, and the protection scope of this application is not limited accordingly. Therefore, all equivalent changes made according to the structure, shape, and principle of this application should be covered within the protection scope of this application.

Claims

1. A winding mechanism with a conical outer shell, characterized in that: It includes a machine base (1), a carrying disk (2) rotatably arranged on the machine base (1) around its own axis, a first driving module (3) for driving the rotation of the carrying disk (2), and a winding assembly (4). The winding assembly (4) includes a winding head (41) rotatably arranged on the machine base (1) around its own axis. The winding head (41) is conical and one side portion thereof close to the carrying disk (2) can be in contact with the disk surface of the carrying disk (2).

2. The winding mechanism of a conical housing according to claim 1, characterized in that: The carrying disk (2) is horizontally arranged and its rotation axis extends along the vertical direction. The winding head (41) is arranged on the upper side portion of the carrying disk (2) and is arranged to incline downward along the horizontal direction.

3. The winding mechanism of a conical housing according to claim 1 or 2, characterized in that: The winding head (41) has a tail portion (411) close to the edge of the carrying disk (2) and a head portion (412) close to the center of the carrying disk (2). The diameter of the winding head (41) gradually decreases along the direction from the tail portion (411) to the head portion (412).

4. The winding mechanism of a conical housing according to claim 3, characterized in that: A connecting shaft (42) is arranged on the tail portion (411). One end of the connecting shaft (42) away from the winding head (41) is rotatably connected to the machine base (1), and the rotation axis between the two is perpendicular to the rotation axis of the carrying disk (2).

5. The winding mechanism of a conical housing according to claim 4, characterized in that: A first support (5) is arranged on the machine base (1). The length direction of the first support (5) is parallel to the axis direction of the carrying disk (2). The winding assembly (4) further includes a driving member (43) slidably arranged on the first support (5) along the length direction of the first support (5), a second driving module (44) for driving the sliding of the driving member (43). A slidable sliding sleeve (47) is arranged on the connecting shaft (42), and the driving member (43) is hinged to the sliding sleeve (47).

6. The winding mechanism of a conical housing according to claim 4, characterized in that: A second support (6) is arranged on the machine base (1). The winding assembly (4) further includes a pressing hoop (45) movably arranged on the second support (6) along the direction close to or away from the connecting shaft (42), a third driving module (46) for driving the movement of the pressing hoop (45). The pressing hoop (45) can be buckled on the connecting shaft (42) during its moving stroke.

7. The winding mechanism of a conical housing according to claim 6, characterized in that: The moving direction of the pressing hoop (45) is perpendicular to the extending direction of the connecting shaft (42).

8. A winding mechanism for a conical housing according to claim 1 or 2, characterized in that: An auxiliary plate (7) is further arranged on the disk surface of the carrying disk (2), and the auxiliary plate (7) is located on the side of the winding head (41).