Code printing tool for heat insulation strip

By designing the insulating bar coding tooling, using the combined positioning of sliding and flip plates, and adjusting the laser head height with the lifting mechanism, the problem of low coding efficiency of insulating bars of different lengths in the prior art is solved, and efficient insulating bar processing is achieved.

CN223129663UActive Publication Date: 2025-07-22HUNAN YUNJINHUI PLASTIC IND CO LTD
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Patent Information

Application Number
CN202422241933.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-13
Publication Date
2025-07-22
Estimated Expiration
2034-09-13

AI Technical Summary

Technical Problem

The existing thermal insulation bar coding tooling cannot be applied to thermal insulation bars of different lengths, resulting in inefficient coding and inconvenient adjustment.

Method used

A thermal insulation bar coding tooling is designed, including a frame, a positioning block, a movable plate and a lifting mechanism. Through the combination of sliding and flip plates, the positioning of thermal insulation bars of different lengths is achieved, and the height of the laser head is adjusted through the lifting mechanism to ensure the accurate coding position.

Benefits of technology

It realizes efficient coding and positioning of thermal insulation strips of different lengths, improves processing efficiency, simplifies the operation process, and is suitable for large-scale production.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a heat insulation strip code printing tool, which relates to the field of heat insulation strip production equipment and comprises a rack, a positioning block, a partition plate and an adjusting plate are arranged in the rack, a mounting plate is arranged on the partition plate, a plurality of guide rails are arranged on the mounting plate, the positioning block is arranged on the guide rails in a sliding manner, and the adjusting plate is arranged on the positioning block. A movable plate is arranged at the top of the partition plate in a sliding mode, a plurality of square grooves are formed in the movable plate, heat insulation strip bodies are placed in the square grooves, one ends of the heat insulation strip bodies make contact with the positioning blocks, an overturning plate is rotationally arranged on the movable plate, and the code printing positions of the multiple heat insulation strips are all located below the laser head. The positions of the heat insulation strip and the laser head do not need to be repeatedly adjusted, the lifting mechanism drives the adjusting plate to move up and down, the use height of the laser head and the horizontal position of the positioning block are conveniently adjusted, code printing positioning of the heat insulation strip body is achieved, and the machining efficiency of the heat insulation strip is improved.
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Description

Technical Field

[0001] The utility model relates to the field of heat insulation strip production equipment, in particular to a coding tooling for heat insulation strips. Background Technique

[0002] The heat insulation strip is the core component of the profile with inserted heat insulation strips, which is mainly applied to aluminum alloy doors, windows and curtain walls, playing the role of reducing heat conduction and structural connection. That is, it is the "broken bridge" on the heat transfer path in the aluminum profile, reducing the heat transfer in the aluminum profile part, and also the structural connecting piece of the two-sided aluminum profiles in the heat insulation profile.

[0003] In the processing process of the heat insulation strip, it is necessary to code the heat insulation strip to facilitate the counting and detection of the quantity and batch of products. The existing coding tooling can position the heat insulation strip, but the tooling cannot be applied to heat insulation strips of different lengths, and cannot realize the coding and positioning of heat insulation strips of different specifications. The adjustment of the tooling is relatively troublesome, affecting the coding efficiency of the heat insulation strip. Content of the Utility Model

[0004] The purpose of the utility model is to provide a coding tooling for heat insulation strips to solve the problems put forward in the above background technique.

[0005] To achieve the above purpose, the utility model provides the following technical solutions:

[0006] A coding tooling for heat insulation strips, including a frame, and also including:

[0007] A positioning block. A partition board and an adjusting board are arranged inside the frame. An installation board is arranged on the partition board. A plurality of guide rails are arranged on the installation board. A positioning block is slidably arranged on the guide rails. A movable board is slidably arranged on the top of the partition board. A plurality of square grooves are formed in the movable board. A heat insulation strip body is placed inside the square grooves. One end of the heat insulation strip body is in contact with the positioning block. A turning board is rotatably arranged on the movable board. A connecting board is arranged at the bottom of the movable board. The connecting board is slidably arranged inside the partition board. A pull rod is arranged on the side wall of the connecting board. One end of the pull rod passes through the frame and is slidably matched with it;

[0008] A movable frame. A sliding groove is formed in the adjusting board. A movable frame is slidably arranged inside the sliding groove. A plurality of laser heads for coding are arranged on the movable frame. A guiding groove is formed in the partition board. A screw rod is arranged on the connecting board. The screw rod passes through the partition board along the guiding groove. A limiting plate is sleeved outside the screw rod. The limiting plate is located outside the partition board;

[0009] A lifting mechanism, which is connected to the adjusting board and adjusts the use height of the laser head by driving the adjusting board to move up and down.

[0010] On the basis of the above technical solutions, the present utility model further provides the following alternative technical solutions:

[0011] In an alternative solution: The adjusting mechanism includes a lead screw, a nut, and a transmission belt. A support block is arranged inside the frame. The lead screw is rotatably arranged on the support block. The nut is sleeved outside the lead screw. The nut is fixedly arranged on the adjusting plate. Pulley wheels are arranged on both of the lead screws. A transmission belt is arranged between the two pulley wheels.

[0012] In an alternative solution: A plurality of connecting columns are slidably arranged on the flipping plate. A pressing block for fixing the heat dissipation strip body is arranged at the bottom end of the connecting column. A return spring is sleeved outside the connecting column.

[0013] In an alternative solution: A threaded rod is arranged inside the sliding groove. The movable frame is sleeved on the threaded rod through a threaded groove opened inside. A rotating plate is arranged at one end of the threaded rod.

[0014] In an alternative solution: A clamping groove is opened on the flipping plate. A locking bolt is arranged inside the clamping groove. One end of the locking bolt penetrates into the movable plate.

[0015] Compared with the prior art, the beneficial effects of the present utility model are as follows:

[0016] The coding tooling for the heat insulation strip can position heat insulation strips of different lengths, so that the coding positions of multiple heat insulation strips are all located below the laser head, without repeatedly adjusting the positions of the heat insulation strip and the laser head, and is more suitable for large-batch processing of heat insulation strips. The lifting mechanism drives the adjusting plate to move up and down, facilitating the adjustment of the use height of the laser head. The movable plate drives a plurality of heat insulation strip bodies placed thereon to slide into the frame, and adjusts the horizontal position of the positioning block, realizing the coding positioning of the heat insulation strip body, facilitating the coding operation of the heat insulation strip, and improving the processing efficiency of the heat insulation strip. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 It is a structural schematic diagram of the coding tooling for the heat insulation strip.

[0018] Figure 2 It is a structural schematic diagram of the partition board in the coding tooling for the heat insulation strip.

[0019] Figure 3 It is a structural schematic diagram of the movable plate in the coding tooling for the heat insulation strip.

[0020] Figure 4 It is a structural schematic diagram of the adjusting plate in the coding tooling for the heat insulation strip.

[0021] Annotation of reference numerals: 1 - frame, 2 - partition board, 201 - guiding groove, 3 - mounting plate, 4 - guide rail, 5 - positioning block, 6 - movable plate, 601 - square groove, 7 - turning plate, 701 - clamping groove, 8 - pull rod, 9 - connecting plate, 10 - limiting plate, 11 - screw rod, 12 - supporting block, 13 - lead screw, 14 - rotating plate, 15 - nut, 16 - adjusting plate, 161 - sliding groove, 17 - movable frame, 18 - laser head, 19 - pulley, 20 - transmission belt, 21 - turntable, 22 - side plate, 23 - rotating shaft, 24 - pressing block, 25 - connecting column, 26 - return spring, 27 - locking bolt, 28 - threaded rod, 29 - heat insulation strip body. Detailed implementation manners

[0022] In order to make the purpose, 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 accompanying drawings and embodiments; in the drawings or descriptions, similar or identical parts are denoted by the same reference numerals, and in actual applications, the shapes, thicknesses or heights of the various components can be enlarged or reduced. The various embodiments listed in the present utility model are only used to illustrate the present utility model, and are not used to limit the scope of the present utility model. Any obvious modification or change made to the present utility model does not depart from the spirit and scope of the present utility model.

[0023] In one embodiment, as Figures 1-4 shown, a heat insulation strip coding tooling includes a frame 1, and further includes:

[0024] A positioning block 5, a partition board 2 and an adjusting plate 16 are arranged inside the frame 1, through grooves are formed on both sides of the frame 1, the partition board 2 is fixedly arranged inside the through grooves, a mounting plate 3 is arranged on the partition board 2, a plurality of guide rails 4 are arranged on the mounting plate 3, the positioning block 5 is slidably arranged on the guide rails 4, a side plate 22 is arranged on the positioning block 5, a locking bolt is arranged on the side plate 22, the positioning block 5 can slide along the guide rails 4 and be fixed by the locking bolt, a movable plate 6 is slidably arranged on the top of the partition board 2, a plurality of square grooves 601 are formed on the movable plate 6, and the bottoms of the square grooves 601 are flush with the tops of the guide rails 4, so that the guide rails 4 can support the heat insulation strip body 29 placed inside the square grooves 601, the positioning block 5 can position the heat insulation strip body 29, one end of the heat insulation strip body 29 is in contact with the positioning block 5, a turning plate 7 is arranged on the movable plate 6, the turning plate 7 is rotatably connected to the movable plate 6 through a rotating shaft 23 arranged at one end, a connecting plate 9 is arranged at the bottom of the movable plate 6, the connecting plate 9 is slidably arranged inside the partition board 2, a pull rod 8 is arranged on the side wall of the connecting plate 9, one end of the pull rod 8 passes through the frame 1 and is slidably matched with it, and the movable plate 6 is driven to move horizontally through the pull rod 8;

[0025] The movable frame 17 is slidably arranged inside the sliding groove 161 formed on the adjusting plate 16. A plurality of laser heads 18 for coding are arranged on the movable frame 17. A guiding groove 201 is formed on the partition plate 2. A screw rod 11 is fixedly arranged on the connecting plate 9. The screw rod 11 passes through the partition plate 2 along the guiding groove 201 and is provided with a limiting plate 10.

[0026] A lifting mechanism is connected to the adjusting plate 16 and adjusts the use height of the laser head 18 by driving the adjusting plate 16 to move up and down.

[0027] The heat insulation strip coding tooling drives the adjusting plate 16 to move up and down through the lifting mechanism, which is convenient for adjusting the use height of the laser head 18. The movable plate 6 drives a plurality of heat insulation strip bodies 29 placed thereon to slide into the machine frame 1. The left end of the heat insulation strip body 29 contacts the positioning block 5. The movable plate 6 gradually slides into the machine frame 1 and squeezes and fixes the heat insulation strip body 29. The horizontal position of the positioning block 5 is adjusted so that the coding positions of heat insulation strip bodies 29 of different specifications are all located directly below the laser head 18, realizing the coding positioning of the heat insulation strip body 29. There is no need to repeatedly adjust the position of the laser head. After the positioning is completed, the nut sleeved on the screw rod 11 is screwed, and the nut squeezes the limiting plate 10, which can fix the movable plate 6. As an embodiment, the left - right, up - down positions of the various components shown in the drawings are only an arrangement method, and the specific positions are set according to specific needs.

[0028] In one embodiment, as Figure 1 shown, the adjusting mechanism includes a lead screw 13, a nut 15 and a transmission belt 20. A support block 12 is arranged inside the machine frame 1. The lead screw 13 is rotatably arranged on the support block 12. The nut 15 is sleeved on the outside of the lead screw 13. The nut 15 is fixedly arranged on the adjusting plate 16. Pulley wheels 19 are arranged on both of the lead screws 13. A transmission belt 20 is arranged between the two pulley wheels 19. The lead screw 13 is driven to rotate by the turntable 21, and the lead screw 13 drives the adjusting plate 16 to move up and down through the cooperation with the nut 15.

[0029] In one embodiment, as Figures 1-3 shown, a plurality of connecting columns 25 are slidably arranged on the flipping plate 7. A pressing block 24 for fixing the heat dissipation strip body 29 is arranged at the bottom end of the connecting column 25. A return spring 26 is sleeved on the outside of the connecting column 25. A plurality of heat insulation strip bodies 29 are sequentially placed into the square groove 601. The flipping plate 7 is rotated to the horizontal position, and the pressing block 24 limits the lower heat dissipation strip body 29 to prevent the heat dissipation strip body 29 from sliding out of the square groove 601 during movement.

[0030] In one embodiment, as Figures 1-4As shown, a threaded rod 28 is arranged inside the sliding groove 161. The movable frame 17 is sleeved on the threaded rod 28 through a threaded groove opened inside. One end of the threaded rod 28 is provided with a rotating plate 14. By driving the rotating plate 14 to rotate, the threaded rod 28 drives the movable frame 17 to move along the sliding groove 161.

[0031] In one embodiment, as Figure 3 shown, a clamping groove 701 is formed on the flipping plate 7. A locking bolt 27 is arranged inside the clamping groove 701. One end of the locking bolt 27 penetrates into the movable plate 6, and the flipping plate 7 is fixed by the locking bolt 27.

[0032] In the above embodiment of the present utility model, a coding tool for heat insulation strips is provided. The positioning block 5 on the left - right moving guide rail 4 is moved to adjust the using position of the positioning block 5. The movable plate 6 is pulled out from the inside of the machine frame 1 through the pull rod 8. Multiple heat insulation strip bodies 29 are sequentially placed inside the square groove 601. The flipping plate 7 is rotated to the horizontal position, and the pressing block 24 limits the lower heat dissipation strip body 29. The movable plate 6 drives the heat insulation strip body 29 to slide into the inside of the machine frame 1. The left end of the heat insulation strip body 29 contacts the positioning block 5. The movable plate 6 continues to move and presses the right end of the heat insulation strip body 29, realizing the fixation of the heat insulation strip body 29. The coding positions of heat insulation strip bodies 29 with different specifications are all directly below the laser head 18. After positioning, the nut sleeved on the external thread of the screw rod 11 is screwed to fix the movable plate 6, and coding can be carried out through the laser head 18.

[0033] The above - mentioned is only the specific implementation manner of the present disclosure, but the protection scope of the present disclosure is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present disclosure can easily think of changes or substitutions, which should all be covered within the protection scope of the present disclosure. Therefore, the protection scope of the present disclosure should be subject to the protection scope of the claims.

Claims

1. A coding tooling for heat insulation strips, comprising a machine frame, characterized in that, Further included are: Positioning blocks. Inside the frame, there are partition plates and adjusting plates. On the partition plates, there are mounting plates. On the mounting plates, there are multiple guide rails. On the guide rails, there are positioning blocks slidingly arranged. On the top of the partition plate, there is a movable plate slidingly arranged. On the movable plate, there are multiple square grooves. Inside the square grooves, there are heat insulation strip bodies placed. One end of the heat insulation strip body is in contact with the positioning block. On the movable plate, there is a turning plate rotatably arranged. At the bottom of the movable plate, there is a connecting plate. The connecting plate is slidingly arranged inside the partition plate. On the side wall of the connecting plate, there is a pull rod. One end of the pull rod passes through the frame and is slidingly matched with it; Movable frames. On the adjusting plate, there are sliding grooves. Inside the sliding grooves, there are movable frames slidingly arranged. On the movable frames, there are multiple laser heads for coding. On the partition plate, there are guiding grooves. On the connecting plate, there is a screw rod. The screw rod passes through the partition plate along the guiding groove. Outside the partition plate, there is a limiting plate sleeved on the screw rod; A lifting mechanism, connected to the adjusting plate, and adjusting the use height of the laser head by driving the adjusting plate to move up and down.

2. The coding tooling for heat insulation strips according to claim 1, characterized in that, The adjusting mechanism includes a lead screw, a nut and a transmission belt. Inside the frame, there are support blocks. On the support blocks, there are lead screws rotatably arranged. Outside the lead screws, there are nuts sleeved. The nuts are fixedly arranged on the adjusting plate. On both of the lead screws, there are belt pulleys. Between the two belt pulleys, there is a transmission belt.

3. The coding tooling for heat insulation strips according to claim 1, characterized in that, On the turning plate, there are multiple connecting columns slidingly arranged. At the bottom ends of the connecting columns, there are pressing blocks for fixing the heat dissipation strip bodies. Outside the connecting columns, there are return springs sleeved.

4. The coding tooling for heat insulation strips according to claim 2, characterized in that, Inside the sliding groove, there is a threaded rod. The movable frame is sleeved on the threaded rod through a threaded groove opened inside. At one end of the threaded rod, there is a turning plate.

5. The coding tooling for heat insulation strips according to claim 3, characterized in that On the turning plate, there is a clamping groove. Inside the clamping groove, there is a locking bolt. One end of the locking bolt penetrates into the movable plate.