Wire embedding structure of cutting and tapping all-in-one machine

By designing the buried structure on the unloading module of the cutting and tapping and rotation machine, the problem of cable winding and knotting is solved, and the operation stability of the equipment is improved.

CN223000202UActive Publication Date: 2025-06-20FOSHAN LONGXIN LASER TECH CO LTD
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Patent Information

Application Number
CN202422119923.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-29
Publication Date
2025-06-20
Estimated Expiration
2034-08-29

AI Technical Summary

Technical Problem

When the unloading module of the cutting and tapping and rotating machine is running, the cable is easily wound and knotted, affecting the normal operation of the equipment.

Method used

A buried wire structure is designed, including a bottom plate and a buried wire box arranged on the unloading module, fix the bottom plate by connecting components, and pass the cable into the buried wire box using the inlet and outlet ports for storage and sorting.

Benefits of technology

It effectively avoids the problem of winding of cables during equipment operation and improves the operation stability of the cutting and tapping and rotation machine.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of wire embedding structures, in particular to a cutting and tapping all-in-one machine wire embedding structure which comprises a bottom plate arranged on a discharging module, a wire embedding box is arranged on the bottom plate, a cable inlet is formed in one end of the wire embedding box, and a cable outlet is formed in one end of the wire embedding box. The bottom plate is provided with a connecting assembly used for being fixedly connected with the discharging module. The cutting and tapping all-in-one machine has the effect that the cables of the cutting and tapping all-in-one machine can be conveniently arranged and stored
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Description

Technical Field

[0001] The present application relates to the technical field of embedding wire structures, and in particular to an embedding wire structure for a cutting, tapping and rotating integrated machine. Background Art

[0002] A cutting, tapping and rotating integrated machine is a device that combines laser cutting and hot melting drilling, and is mainly used for laser hot melting drilling of pipes.

[0003] The current cutting, tapping and rotating integrated machine includes a frame. One side of the frame is set as the feeding end, and the other side of the frame is set as the discharging end. A laser cutting and hot melting module is arranged in the frame, and the laser cutting and hot melting module is used for performing laser hot melting drilling operations on pipes. A discharging module is also movably installed at the discharging end in the frame. After the processing of the pipes is completed, the pipes are first collected in the discharging module, and then the processed pipes are collected in a collecting box by moving the discharging module.

[0004] However, since the discharging module has a large number of electrical devices, and the electrical devices are connected with cables. When the discharging module reciprocates, the cables of the large number of electrical devices are prone to being wound and knotted, ultimately affecting the normal operation of the device. Utility Model Content

[0005] In order to facilitate the arrangement and storage of the cables of the cutting, tapping and rotating integrated machine, the present application provides an embedding wire structure for a cutting, tapping and rotating integrated machine.

[0006] An embedding wire structure for a cutting, tapping and rotating integrated machine provided by the present application adopts the following technical solutions:

[0007] An embedding wire structure for a cutting, tapping and rotating integrated machine includes a bottom plate arranged on the discharging module. An embedding wire box is arranged on the bottom plate. One end of the embedding wire box is provided with a cable inlet, and one end of the embedding wire box is provided with a cable outlet. The bottom plate is provided with a connecting component for fixedly connecting with the discharging module.

[0008] By adopting the above technical solutions, first, the bottom plate is fixed on the top surface of the discharging module through the connecting component. When it is necessary to embed the cables in the cutting, tapping and rotating integrated machine, the cables are passed through the embedding wire box through the cable inlet, and then the cables are passed out through the cable outlet. The cables of the cutting, tapping and rotating integrated machine are stored and arranged through the embedding wire box, which is beneficial to avoiding the mutual winding of the cables when the cutting, tapping and rotating integrated machine operates, and improving the operation stability of the cutting, tapping and rotating integrated machine.

[0009] Optionally, the connecting component includes a folding angle strip. The folding angle strip is arranged on one side of the bottom plate, and a plurality of first through holes are opened on the top surface of the folding angle strip.

[0010] By adopting the above technical solution, when the bottom plate needs to be fixed, first abut the bottom plate against the top surface of the discharging module through the corner strip, and then use bolts to penetrate the first through holes and threadedly fix the bolts to the discharging module. At this time, the bottom plate is fixed to the top surface of the discharging module through the corner strip, ensuring that the bottom plate and the discharging module move together, avoiding pulling the cable when the discharging module moves, and improving the stability of the equipment operation.

[0011] Optionally, the cable embedding box includes a top cover and a box body. The box body is integrally formed on the top surface of the bottom plate. A first operation surface opening is formed on the top surface of the box body. The top cover covers the first operation surface opening, and the box body is provided with a fixing component for fixing the top cover.

[0012] By adopting the above technical solution, when the cable needs to be stored in the box body, the cable is led into the box body from the cable inlet through the first operation surface opening, then the cable is led out from the cable outlet, and finally the first operation surface opening is closed through the fixing component, which is beneficial to improving the stability of storing the cable in the cable embedding box.

[0013] Optionally, the fixing component includes fixing bolts. Connecting support strips are symmetrically arranged on the first operation surface opening. A plurality of first threaded holes are formed on the surface of the connecting support strips. Second through holes are formed at positions corresponding to the plurality of first threaded holes on the top cover. The fixing bolts penetrate the second through holes, and the fixing bolts are threadedly connected to the first threaded holes.

[0014] By adopting the above technical solution, when fixing and covering the top cover, first fit the top cover on the top surface of the connecting support strip, and at the same time align the second through holes with the first threaded holes respectively, then penetrate the fixing bolts through the second through holes and threadedly connect them to the first threaded holes. After the fixing bolts are tightened, the top cover is fixed on the top surface of the box body, which is beneficial to improving the stability of covering the top cover on the box body.

[0015] Optionally, the box body includes a horizontal connecting sub-box and a vertical connecting sub-box. A transfer interface is formed on one side of the horizontal connecting sub-box. The vertical connecting sub-box is fixedly communicated with the horizontal connecting sub-box through the transfer interface.

[0016] By adopting the above technical solution, when the cable needs to be stored in the box body, first pass the cable through the vertical connecting sub-box, and then pass it through the horizontal connecting sub-box through the transfer interface, which is beneficial to improving the convenience of bending and routing the cable.

[0017] Optionally, a second operation surface opening is formed on the front surface of the vertical connecting sub-box. A panel covers the second operation surface opening. The panel is connected to the top cover, and the vertical connecting sub-box is provided with a fastening component for fixing the panel.

[0018] By adopting the above technical solution, the cable is passed through the vertical connection sub-box through the second operation surface opening, and the panel is covered on the second operation surface opening through the fastening component, which is beneficial to improving the convenience of storing the cable in the vertical connection sub-box.

[0019] Optionally, the fastening component includes a fastening bolt. Connecting strips are symmetrically arranged at the second operation surface opening. Second threaded holes are formed in the connecting strips. Third through holes are formed in the panel at positions corresponding to the second threaded holes. The fastening bolt passes through the third through hole and is threadedly connected to the second threaded hole.

[0020] By adopting the above technical solution, when it is necessary to cover the second operation surface opening, first cover the panel on the second operation surface opening, and at the same time align the third through hole with the second threaded hole, and finally tighten the fastening bolt. At this time, the panel is fixedly covered on the second operation surface opening, which is beneficial to improving the stability of the panel fixedly covering the second operation surface opening.

[0021] Optionally, the vertical connection sub-box is lapped on the top surface of the folding angle strip.

[0022] By adopting the above technical solution, the vertical connection sub-box is lapped on the top surface of the folding angle strip, which is beneficial to improving the tightness at the joint between the vertical connection sub-box and the folding angle strip.

[0023] In summary, the present application includes the following beneficial technical effects:

[0024] First, the bottom plate is fixed on the top surface of the unloading module through the connection component. When it is necessary to bury the cable in the cutting and tapping integrated machine, the cable is passed through the cable inlet into the cable embedding box, and then the cable is passed out from the cable outlet. The cable embedding box is used to store and organize the cable of the cutting and tapping integrated machine, which is beneficial to avoiding the mutual entanglement of the cables when the cutting and tapping integrated machine is running and improving the running stability of the cutting and tapping integrated machine. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] Figure 1 is the overall structural schematic diagram of the cutting and tapping integrated machine of the present application;

[0026] Figure 2 is the structural schematic diagram of the cable embedding structure of the present application;

[0027] Figure 3 is the connection schematic diagram of the box body and the bottom plate of the present application;

[0028] Figure 4 is the connection schematic diagram of the top cover and the panel of the present application.

[0029] Explanation of the reference numerals: 1. unloading module; 2. bottom plate; 3. cable burying box; 4. cable inlet; 5. cable outlet; 6. corner strip; 7. first through hole; 8. top cover; 9. box body; 10. first operating surface; 11. fixing bolt; 12. connecting support strip; 13. first threaded hole; 14. second through hole; 15. horizontal sub-box; 16. vertical sub-box; 17. transfer interface; 18. second operating surface; 19. panel; 20. fastening bolt; 21. connecting vertical strip; 22. second threaded hole; 23. third through hole; 24. cutting, tapping and turning machine. DETAILED DESCRIPTION

[0030] The following is combined with Figures 1-4 This application is described in further detail.

[0031] Example:

[0032] See also Figure 1 and Figure 2 A cable embedding structure of a cutting, tapping and turning machine includes a bottom plate 2 installed on the top surface of a discharge module 1. The discharge module 1 is used to support and unload the pipes cut from the cutting, tapping and turning machine 24, and the discharge module 1 is movably installed on the working end of the cutting, tapping and turning machine 24. A cable embedding box 3 is welded on the bottom plate 2, and a cable inlet 4 is opened at one end of the cable embedding box 3, and a cable outlet 5 is opened at the other end of the cable embedding box 3. A connecting component is installed on the bottom plate 2, and the connecting component is used to fix the bottom plate 2 on the top surface of the discharge module 1.

[0033] First, the bottom plate 2 is fixedly mounted on the top surface of the unloading module 1 through the connecting assembly to ensure that the bottom plate 2 moves together with the unloading module 1. When the cables of the cutting, tapping and turning machine 24 need to be sorted and stored, the cables are pulled in from the cable inlet 4 of the buried cable box 3, and then pulled out from the cable outlet 5 of the buried cable box 3. At this time, the buried cable box 3 protects, sorts and stores the cables.

[0034] For details, see Figure 2 and Figure 3 The connection assembly includes a corner bar 6, which is fixedly connected to one side of the bottom plate 2, is arranged at a right angle, and abuts against the top surface of the unloading module 1. A first through hole 7 is provided on the top surface of the corner bar 6, and the number of the first through holes 7 is set to be multiple, and the multiple first through holes 7 are provided along the length direction of the corner bar 6.

[0035] When the base plate 2 needs to be fixed, the angle strip 6 is first placed against the top surface of the unloading module 1, and then bolts are used to thread and fix the unloading module 1 through the first through holes 7. At this time, the wire embedding box 3 is fixedly connected to the unloading module 1 through the base plate 2.

[0036] See also Figures 2-4, To facilitate the threading of the cable into the cable embedding box 3, the cable embedding box 3 includes a top cover 8 and a box body 9. The box body 9 is in a frame shape and is integrally formed on the top surface of the bottom plate 2. A first operation surface opening 10 is provided on the top surface of the box body 9, and the top cover 8 is covered on the first operation surface opening 10.

[0037] In addition, to improve the stability of the top cover 8 covering the first operation surface opening 10, the box body 9 is provided with a fixing component, and the fixing component includes a fixing bolt 11. Connecting support bars 12 are fixedly and symmetrically connected to the top surface of the box body 9, and the connecting support bars 12 are located at the first operation surface opening 10. A first threaded hole 13 penetrates through the top surface of the connecting support bar 12, and a plurality of first threaded holes 13 are provided. The plurality of first threaded holes 13 are evenly distributed along the length direction of the connecting support bar 12. Second through holes 14 penetrate through the top surface of the top cover 8 at positions corresponding to the plurality of first threaded holes 13. The fixed end of the fixing bolt 11 is inserted into the second through hole 14, and the fixing bolt 11 is threadedly connected to the first threaded hole 13.

[0038] The first operation surface opening 10 is communicated with the cable inlet 4, and the cable is drawn into the box body 9 from the cable inlet 4 through the first operation surface opening 10. Also, when the cable storage is completed and the top cover 8 needs to be fixed, first cover the top cover 8 on the first operation surface opening 10 of the box body 9. Then align the second through hole 14 with the first threaded hole 13, and then make the fixed end of the fixing bolt 11 penetrate through the second through hole 14 and be threadedly connected to the first threaded hole 13 at the same time. At this time, the top cover 8 is fixedly covered on the top surface of the box body 9.

[0039] See Figure 3 , To facilitate the bending and routing of the cable, the box body 9 includes a horizontal connecting sub-box 15 and a vertical connecting sub-box 16. The horizontal connecting sub-box 15 is integrally formed on the top surface of the bottom plate 2, and the cable outlet 5 is provided on the top surface of the horizontal connecting sub-box 15. A transfer interface 17 is provided on the side wall of the horizontal connecting sub-box 15, and the vertical connecting sub-box 16 is fixedly communicated with the horizontal connecting sub-box 15 through the transfer interface 17, and the cable inlet 4 is provided at the bottom end of the vertical connecting sub-box 16.

[0040] When the cable needs to be stored, first draw the cable into the vertical connecting sub-box 16 through the cable inlet 4, then bend it into the horizontal connecting sub-box 15 through the transfer interface 17, and finally draw it out from the cable outlet 5.

[0041] See Figures 2-4 , To facilitate the drawing of the cable into the vertical connecting sub-box 16, a second operation surface opening 18 is provided on the front surface of the vertical connecting sub-box 16. A panel 19 is covered on the second operation surface opening 18, and the top end of the panel 19 is fixedly connected to the top cover 8.

[0042] In addition, to improve the stability of the panel 19 covering the second operation surface opening 18, a fastening assembly is installed on the vertical connection sub-box 16. The fastening assembly includes a fastening bolt 20. Symmetrically and fixedly connected to the front surface of the vertical connection sub-box 16 are connecting vertical bars 21, and the connecting vertical bars 21 are located at the second operation surface opening 18. A second threaded hole 22 penetrates through the connecting vertical bar 21, and a third through-hole 23 is provided at the position of the panel 19 corresponding to the second threaded hole 22. The fixed end of the fastening bolt 20 is inserted into the third through-hole 23, and the fixed end of the fastening bolt 20 is threadedly connected to the second threaded hole 22.

[0043] When the top cover 8 covers the first operation surface opening 10, the panel 19 simultaneously covers the second operation surface opening 18. Then, insert the fixed end of the fastening bolt 20 through the third through-hole 23 and thread it with the second threaded hole 22. At this time, the panel 19 is fixedly covered on the second operation surface opening 18 on the front surface of the vertical connection sub-box 16.

[0044] It should be noted that, referring to Figure 2 , the vertical connection sub-box 16 overlaps on the top surface of the folding angle bar 6, thereby reducing the gap at the connection between the vertical connection sub-box 16 and the folding angle bar 6.

[0045] The working principle of a wire embedding structure of a cutting, tapping and rotating integrated machine:

[0046] First, abut the folding angle bar 6 against the top surface of the unloading module 1, and then use bolts to be threadedly and fixedly connected to the unloading module 1 through the first through-holes 7 respectively. At this time, the wire embedding box 3 is fixedly connected to the unloading module 1 through the bottom plate 2.

[0047] When it is necessary to organize and store the cables of the cutting, tapping and rotating integrated machine 24, lead the cables into the wire embedding box 3 from the cable inlet 4, and then lead them out from the cable outlet 5 of the wire embedding box 3. Then cover the top cover 8 on the first operation surface opening 10 of the box body 9. Then align the second through-hole 14 with the first threaded hole 13, and then insert the fixed end of the fixing bolt 11 through the second through-hole 14 and thread it with the first threaded hole 13 at the same time. At this time, the top cover 8 is fixedly covered on the top surface of the box body 9. When the top cover 8 covers the first operation surface opening 10, the panel 19 simultaneously covers the second operation surface opening 18. Then insert the fixed end of the fastening bolt 20 through the third through-hole 23 and thread it with the second threaded hole 22. At this time, the panel 19 is fixedly covered on the second operation surface opening 18 on the front surface of the vertical connection sub-box 16. The organization and storage of the cables are completed.

[0048] In summary, the wire embedding box 3 is used to store and organize the cables of the cutting, tapping and rotating integrated machine 24, which is beneficial to avoiding the mutual entanglement of the cables when the cutting, tapping and rotating integrated machine 24 is operating, and improving the operating stability of the cutting, tapping and rotating integrated machine 24.

[0049] The above are all preferred embodiments of this application, and the protection scope of this application is not limited thereby. Therefore, all equivalent changes made according to the structure, shape, and principle of this application shall be covered within the protection scope of this application.

Claims

1. A wire embedding structure of a cutting, tapping and rotating integrated machine, characterized in that: The invention comprises a base plate (2) arranged on a discharge module (1), a cable embedding box (3) being arranged on the base plate (2), a cable inlet (4) being arranged at one end of the cable embedding box (3), a cable outlet (5) being arranged at one end of the cable embedding box (3), and a connection component being arranged on the base plate (2) for being fixedly connected to the discharge module (1).

2. The wire embedding structure of a cutting, tapping and rotating integrated machine according to claim 1, characterized in that: The connection assembly comprises a folded angle strip (6), wherein the folded angle strip (6) is arranged on one side of the bottom plate (2), and a plurality of first through holes (7) are formed on the top surface of the folded angle strip (6).

3. The wire embedding structure of a cutting, tapping and rotating integrated machine according to claim 2, characterized in that: The wire embedding box (3) comprises a top cover (8) and a box body (9); the box body (9) is integrally formed on the top surface of the bottom plate (2); a first operating surface opening (10) is provided on the top surface of the box body (9); the top cover (8) is covered on the first operating surface opening (10); and the box body (9) is provided with a fixing component for fixing the top cover (8).

4. The wire embedding structure of a cutting, tapping and rotating integrated machine according to claim 3, characterized in that: The fixing assembly includes a fixing bolt (11), the first operating surface opening (10) is symmetrically provided with a connecting support bar (12), a surface of the connecting support bar (12) is provided with a plurality of first threaded holes (13), the top cover (8) is provided with a second through hole (14) at a position corresponding to the plurality of first threaded holes (13), the fixing bolt (11) passes through the second through hole (14), and the fixing bolt (11) is threadedly connected to the first threaded hole (13).

5. The wire embedding structure of a cutting, tapping and rotating integrated machine according to claim 3, characterized in that: The box body (9) comprises a transverse sub-box (15) and a vertical sub-box (16); a transfer port (17) is provided on one side of the transverse sub-box (15); and the vertical sub-box (16) is fixedly connected to the transverse sub-box (15) via the transfer port (17).

6. The wire embedding structure of a cutting, tapping and rotating integrated machine according to claim 5, characterized in that: The front side of the vertical sub-box (16) is provided with a second operating surface opening (18), the second operating surface opening (18) is covered with a panel (19), the panel (19) is connected to the top cover (8), and the vertical sub-box (16) is provided with a fastening assembly for fixing the panel (19).

7. The wire embedding structure of a cutting, tapping and rotating integrated machine according to claim 6, characterized in that: The fastening assembly includes a fastening bolt (20), the second operating surface opening (18) is symmetrically provided with a connecting vertical bar (21), the connecting vertical bar (21) is provided with a second threaded hole (22), the panel (19) is provided with a third through hole (23) at a position corresponding to the second threaded hole (22), the fastening bolt (20) passes through the third through hole (23), and the fastening bolt (20) is threadedly connected to the second threaded hole (22).

8. The wire embedding structure of a cutting, tapping and rotating integrated machine according to claim 5, characterized in that: The vertical sub-box (16) is overlapped on the top surface of the angle strip (6).