Heart-shaped belt cutting machine

By installing an air blowing component in the heart-shaped strip cutting machine, the cut strip is blown to the next process, solving the problem of manual collection of waste edges after cutting, and achieving the effect of reducing labor intensity and improving production efficiency.

CN223617852UActive Publication Date: 2025-12-02YINGSHANG MATIAN TEXTILE PROD CHINA ZHONGSHAN
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Patent Information

Application Number
CN202423133813.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-18
Publication Date
2025-12-02
Estimated Expiration
2034-12-18

AI Technical Summary

Technical Problem

In the process of cutting the heart-shaped strip, the waste edges of the strip after cutting in the existing technology need to be collected manually, which leads to high labor intensity and affects production efficiency.

Method used

An air blowing component is installed in the heart-shaped strip cutting machine to blow the cut strip to the next process. The air blowing component blows the cut strip to the next process, reducing the labor intensity of manual collection and improving production efficiency, while blowing away the fine strip waste and debris.

Benefits of technology

It reduced the labor intensity of workers, improved production efficiency, and avoided the impact of cutting components, thus increasing production efficiency.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223617852U_ABST
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Abstract

The utility model relates to the technical field of material belt cutting equipment, in particular to a heart-shaped belt cutting machine which comprises a machine frame and a working table arranged on the machine frame. The workbench is further provided with a guiding assembly used for guiding the material belt and a driving mechanism used for driving the material belt to move to the cutting area according to the preset length for standby cutting, and the rack is provided with a cutting assembly used for cutting the material belt in the cutting area. The workbench is further provided with an air blowing assembly used for blowing the material belt cut by the cutting assembly to the next procedure from the workbench. After the blowing assembly is arranged, the material belt cut by the cutting assembly can be blown to the next process, so that workers can conveniently collect the material belt, the labor intensity of the workers is reduced, and the production efficiency is improved.
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Description

[Technical Field]

[0001] This utility model relates to the technical field of material strip cutting equipment, and in particular to a chicken heart strip cutting machine. [Background Technology]

[0002] During the production process, clothing material strips need to be cut to a certain length or shape. For example, women's bra straps need to be cut to a certain length, and V-shaped bras need to be cut to a certain shape. Especially when cutting V-shaped bras, a lot of waste is generated. If the material strips are collected manually after being cut by the machine, the labor intensity of the workers will be enormous, and manual collection will also affect production efficiency.

[0003] In view of the above-mentioned technical problems, this utility model is proposed in this study. [Utility Model Content]

[0004] The technical problem to be solved by this utility model is to provide a heart-shaped strip cutting machine. By setting an air blowing component in the heart-shaped strip cutting machine, the cut strip is blown to the next process. This makes it easier for workers to collect the strip, reduces the labor intensity of workers, improves production efficiency, and can also blow away the small scraps and other debris of the strip, so as to avoid affecting the cutting component.

[0005] To solve the above-mentioned technical problems, the present invention includes a chicken heart strip cutting machine, including a frame 1 and a worktable 10 disposed on the frame 1. The worktable 10 has a cutting area 11. The worktable 10 is also provided with a guide component 2 for guiding the material strip and a drive mechanism 4 for driving the material strip to move to the cutting area 11 for cutting according to a preset length. The frame 1 is provided with a cutting component 5 for cutting the material strip in the cutting area 11. The worktable 10 is also provided with an air blowing component 6 for blowing the material strip cut by the cutting component 5 from the worktable 10 to the next process.

[0006] As described above, the heart-shaped cutting machine includes an air blowing assembly 6 comprising an air pipe 60 disposed on the worktable 10, with the air blowing port of the air pipe 60 facing the cutting area 11.

[0007] As described above, a heart-shaped cutting machine has two air pipes 60, which are arranged in a figure-eight shape on the worktable 10.

[0008] As described above, the air blowing assembly 6 also includes an air hood 61 disposed on the worktable 10 to prevent the strip from falling off the side.

[0009] As described above, a heart-shaped strip cutting machine includes a guide assembly 2 comprising a central guide 20 disposed on a worktable 10, and a drive mechanism 4 comprising a feeding roller 40 located above the discharge end of the central guide 20, and a roller drive assembly 41 capable of driving the feeding roller 40 to move up and down to press the strip and rotatably to drive the strip to move.

[0010] As described above, the guide assembly 2 further includes a rear guide 21 disposed between the middle guide 20 and the cutting zone 11 for transitioning the feed roller 40 outputting the feed strip to the cutting zone 11. The feed roller 40 is disposed between the middle guide 20 and the rear guide 21.

[0011] As described above, the guide assembly 2 further includes a front guide 22 disposed on the material receiving end side of the middle guide 20 for guiding the material strip, and a photoelectric sensor 23 for detecting the heart strip is provided between the front guide 22 and the middle guide 20.

[0012] As described above, a chicken heart-shaped cutting machine includes a cutting assembly 5 comprising an ultrasonic machine body 50 mounted on a frame 1 and an ultrasonic moving blade 51 mounted on the ultrasonic machine body 50, and an ultrasonic fixed blade 52 mounted in the cutting area 11 and cooperating with the ultrasonic moving blade 51.

[0013] As described above, the drive assembly 41 of the chicken heart band cutting machine includes a support plate 42 disposed on the worktable 10 and a lifting plate 43 rotatably connected to the feeding rubber wheel 40. It also includes a lifting drive component 44 disposed on the support plate 42 for driving the lifting plate 43 to move up and down, thereby enabling the feeding rubber wheel 40 to press the chicken heart band, and a rotation drive component 45 disposed on the lifting plate 43 for driving the feeding rubber wheel 40 to rotate.

[0014] As described above, the heart-shaped band cutting machine includes a rotating drive component 45 comprising a motor 450 mounted on a lifting plate 43, a drive synchronous pulley 451 mounted on the output shaft of the motor 450, a rotating shaft 452 mounted on the lifting plate 43, a driven synchronous pulley 453 mounted on the rotating shaft 452, and a synchronous belt 454 wound between the drive synchronous pulley 451 and the driven synchronous pulley 453. The feeding rubber wheel 40 is mounted on the rotating shaft 452 and is rotatably connected to the lifting plate 43 via the rotating shaft 452.

[0015] Compared with the prior art, the present invention, a chicken heart-shaped band cutting machine, has the following advantages:

[0016] 1. By setting up an air blowing component, this application can blow the material strip cut by the cutting component to the next process, which makes it easier for workers to collect the material strip, reduces the labor intensity of workers, and improves production efficiency.

[0017] 2. By setting up an air blowing component, fine scraps and other debris can be blown away to avoid affecting the cutting component. [Attached Image Description]

[0018] The specific embodiments of this utility model will be further described in detail below with reference to the accompanying drawings, wherein:

[0019] Figure 1 This is a schematic diagram of the structure of this utility model.

[0020] Figure 2 This is another structural schematic diagram of the present invention.

[0021] Figure 3 This is a schematic diagram of the structure of the stroke cover in this utility model.

[0022] Figure 4 yes Figure 3 A magnified structural diagram of point A in the middle.

[0023] Figure 5 This is a schematic diagram of the film structure in this utility model.

[0024] Figure 6 yes Figure 5 A magnified structural diagram at point B in the middle.

[0025] Figure 7 This is a schematic diagram of the trachea structure in this utility model.

[0026] Figure 8 This is a schematic diagram of the drive mechanism in this utility model.

[0027] Figure 9 This is a schematic diagram of the drive component in the utility model.

[0028] In the diagram: 1. Machine frame; 10. Workbench; 11. Cutting area; 12. Film;

[0029] 2. Guide assembly; 20. Middle guide component; 21. Rear guide component; 22. Front guide component; 23. Photoelectric sensor;

[0030] 4. Drive mechanism; 40. Feeding roller; 41. Drive assembly; 42. Support plate; 43. Lifting plate; 44. Lifting drive component; 45. Rotation drive component; 450. Motor; 451. Driving synchronous pulley; 452. Rotating shaft; 453. Driven synchronous pulley; 454. Synchronous belt; 455. Fixed rod;

[0031] 5. Cutting assembly; 50. Ultrasonic machine body; 51. Ultrasonic moving blade; 52. Ultrasonic stationary blade;

[0032] 6. Air blowing assembly; 60. Air pipe; 61. Air hood.

Detailed Implementation Methods

[0033] The embodiments of this utility model will now be described in detail with reference to the accompanying drawings.

[0034] like Figure 1-9 As shown, a heart-shaped strip cutting machine includes a frame 1 and a worktable 10 mounted on the frame 1. The worktable 10 has a cutting area 11, and is also equipped with a guide assembly 2 for guiding the strip and a drive mechanism 4 for driving the strip to move to the cutting area 11 for cutting according to a preset length. The frame 1 is equipped with a cutting assembly 5 for cutting the strip in the cutting area 11, and the worktable 10 is also equipped with an air blowing assembly 6 for blowing the strip cut by the cutting assembly 5 from the worktable 10 to the next process. By setting the air blowing assembly 6, the cut strip of the cutting assembly 5 can be blown to the next process, such as blowing the cut strip into a collection box or directly onto a conveyor belt for transmission to the next process. This makes it easier for workers to collect the strip, reduces the labor intensity of workers, and improves production efficiency. In addition, by setting the air blowing assembly 6, fine strip scraps and other debris can also be blown away to avoid affecting the cutting assembly 5's cutting performance.

[0035] As a further embodiment, the air blowing assembly 6 includes an air pipe 60 disposed on the workbench 10. The air outlet of the air pipe 60 faces the cutting area 11. There are two air pipes 60, which are arranged in a figure-eight shape on the workbench 10. This arrangement can enhance the air blowing effect. The two air pipes 60 blow air towards the center, so that the cutting material moves in the center of the workbench 10, preventing it from being blown off the workbench 10 or from accumulating due to insufficient airflow.

[0036] like Figures 1 to 7 As shown, as a further embodiment, the air blowing assembly 6 also includes a fan shroud 61 mounted on the worktable 10 to prevent the strip from falling from the side. To prevent the air pipe 60 from blowing the cut strip off the side of the worktable 10, the fan shroud 61 is provided to limit and guide the cut strip, ensuring it falls precisely into a preset position. Simultaneously, the fan shroud 61 concentrates the airflow, preventing insufficient airflow and strip accumulation.

[0037] like Figures 1 to 7As shown, as a further embodiment, the guide assembly 2 includes a central guide 20 disposed on the workbench 10, and the drive mechanism 4 includes a feeding roller 40 located above the discharge end of the central guide 20 and a roller drive assembly 41 that can drive the feeding roller 40 to move up and down to press the material belt and can rotate to drive the material belt to move. By setting the central guide 20, it is convenient to guide the material belt and the feeding roller 40 can transport the material belt.

[0038] like Figures 1 to 7 As shown, as a further embodiment, the guide assembly 2 also includes a rear guide 21 disposed between the middle guide 20 and the cutting area 11 for transitioning the material belt output from the feeding roller 40 to the cutting area 11. The feeding roller 40 is disposed between the middle guide 20 and the rear guide 21. By setting the rear guide 21, the feeding roller 40 can be more stable in conveying the material belt, preventing the material belt from deviating. At the same time, by setting the rear guide 21, the material belt can be conveyed more smoothly into the cutting area 11.

[0039] In addition, the guide assembly 2 also includes a front guide 22 disposed on the material receiving end side of the middle guide 20 for guiding the material strip. A photoelectric sensor 23 for detecting the strip is disposed between the front guide 22 and the middle guide 20. The front guide 22 makes the material strip run more smoothly, and the photoelectric sensor 23 can detect whether the material strip is about to be cut, so that the staff can replenish the material strip in time.

[0040] like Figures 1 to 6 As shown, as a further embodiment, the cutting assembly 5 includes an ultrasonic machine body 50 mounted on the frame 1 and an ultrasonic moving blade 51 mounted on the ultrasonic machine body 50, as well as an ultrasonic fixed blade 52 disposed in the cutting area 11 and cooperating with the ultrasonic moving blade 51. This application uses the ultrasonic machine body 50 to drive the ultrasonic moving blade 51 and the ultrasonic fixed blade 52 to work, which can cut and seal the material tape, improving production efficiency. Compared with the traditional manual sealing method, it can prevent defects such as tape roll-up or wrinkles, effectively improving the product qualification rate. In addition, a film 12 is also provided in the cutting area 11. The film 12 has a hole through which the ultrasonic fixed blade 52 can pass. The film 12 facilitates the installation of the ultrasonic fixed blade 52. After the ultrasonic fixed blade 52 is installed, the film is fixed in the cutting area 11, which is more convenient than directly creating a hole for the ultrasonic fixed blade 52 on the worktable 10. Secondly, the use of a film facilitates the conveying of the conveyor belt. The film 12 is made of a non-adhesive material, which prevents the conveyor belt from sticking to the cutting area 11 after the film is cut. It should also be noted that the method of using ultrasonic waves to melt and cut the webbing is existing technology and will not be described in detail in this application.

[0041] like Figure 8 , Figure 9 As shown, as a further embodiment, the drive assembly 41 includes a support plate 42 mounted on the workbench 10 and a lifting plate 43 rotatably connected to the feeding roller 40. It also includes a lifting drive 44 mounted on the support plate 42 for driving the lifting plate 43 up and down, thereby pressing the feeding roller 40 against the feed belt, and a rotation drive 45 mounted on the lifting plate 43 for driving the feeding roller 40 to rotate. After the feed belt is threaded, the drive 44 drives the lifting plate 43 downwards, causing the feeding roller 40 to press against the feed belt. Then, the rotation drive 45 drives the feeding roller 40 to rotate, causing the feed belt to move.

[0042] The lifting drive component 44 is a multi-axis cylinder, and the piston rod of the multi-axis cylinder is connected to the lifting plate 43. In addition to using a multi-axis cylinder, a single-axis cylinder can also be used for driving. However, using a single-axis cylinder requires additional guide rails to be installed on the support plate 42 to cooperate with the lifting plate 43, which makes the structure more complicated. Therefore, in this application, it is preferred to use a multi-axis cylinder directly connected to the lifting plate 43, which is simpler.

[0043] like Figure 8 , Figure 9 As shown, as a further embodiment of this utility model, the rotation drive component 45 includes a motor 450 mounted on the lifting plate 43, and a driving synchronous pulley 451 mounted on the output shaft of the motor 450. It also includes a rotating shaft 452 mounted on the lifting plate 43, a driven synchronous pulley 453 mounted on the rotating shaft 452, and a synchronous belt 454 wound between the driving synchronous pulley 451 and the driven synchronous pulley 453. The feeding rubber wheel 40 is mounted on the rotating shaft 452 and rotatably connected to the lifting plate 43 via the rotating shaft 452. The motor 450 drives the driving synchronous pulley 451 to rotate, which in turn drives the driven synchronous pulley 453 to rotate via the synchronous belt 454. Consequently, the driven synchronous pulley 453 drives the feeding rubber wheel 40 to rotate via the rotating shaft 452.

[0044] In addition, the rotating shaft 452 passes through the lifting plate 43, the feeding rubber wheel 40 is set on the front of the lifting plate 43, the driven synchronous wheel 453 is set on the back of the lifting plate 43, the motor 450 and the driven synchronous wheel 453 are located on the same side of the lifting plate 43, and several fixing rods 455 connecting the two are provided between the lifting plates 43. By installing the motor 450, the driving synchronous wheel 451 and the driven synchronous wheel 453 on the same side, the overall structure can be made more compact.

Claims

1. A chicken heart-shaped cutting machine, characterized in that... The machine includes a frame (1) and a worktable (10) on the frame (1). The worktable (10) has a cutting area (11). The worktable (10) is also provided with a guide component (2) for guiding the material strip and a drive mechanism (4) for driving the material strip to move to the cutting area (11) for cutting according to a preset length. The frame (1) is provided with a cutting component (5) for cutting the material strip in the cutting area (11). The worktable (10) is also provided with an air blowing component (6) for blowing the material strip cut by the cutting component (5) from the worktable (10) to the next process.

2. The chicken heart-shaped cutting machine according to claim 1, characterized in that... The air blowing assembly (6) includes an air pipe (60) disposed on the workbench (10), with the air blowing port of the air pipe (60) facing the cutting area (11).

3. A chicken heart-shaped cutting machine according to claim 2, characterized in that... Two tracheae (60) are provided and arranged in a figure-eight shape on the workbench (10).

4. A heart-shaped band cutting machine according to any one of claims 1 to 3, characterized in that... The air blowing assembly (6) also includes an air hood (61) disposed on the worktable (10) to prevent the material strip from falling off the side.

5. A chicken heart-shaped cutting machine according to claim 1, characterized in that... The guide assembly (2) includes a central guide (20) disposed on the worktable (10), and the drive mechanism (4) includes a feeding roller (40) located above the discharge end of the central guide (20) and a roller drive assembly (41) that can drive the feeding roller (40) to move up and down to press the material belt and can rotate to drive the material belt to move.

6. A chicken heart-shaped cutting machine according to claim 5, characterized in that... The guide assembly (2) also includes a rear guide (21) disposed between the middle guide (20) and the cutting area (11) for transitioning the material strip output by the feeding roller (40) to the cutting area (11), the feeding roller (40) being disposed between the middle guide (20) and the rear guide (21).

7. A chicken heart-shaped cutting machine according to claim 5, characterized in that... The guide assembly (2) also includes a front guide (22) disposed on the material receiving end side of the middle guide (20) for guiding the material strip, and a photoelectric sensor (23) for detecting the heart strip is provided between the front guide (22) and the middle guide (20).

8. A chicken heart-shaped band cutting machine according to claim 1, characterized in that... The cutting assembly (5) includes an ultrasonic machine body (50) mounted on a frame (1) and an ultrasonic moving blade (51) mounted on the ultrasonic machine body (50), and also includes an ultrasonic fixed blade (52) mounted in the cutting area (11) that cooperates with the ultrasonic moving blade (51).

9. A chicken heart-shaped cutting machine according to claim 5, characterized in that... The drive assembly (41) includes a support plate (42) disposed on the worktable (10) and a lifting plate (43) rotatably connected to the feeding rubber wheel (40). It also includes a lifting drive (44) disposed on the support plate (42) for driving the lifting plate (43) to move up and down, thereby enabling the feeding rubber wheel (40) to press against the chicken heart belt, and a rotation drive (45) disposed on the lifting plate (43) for driving the feeding rubber wheel (40) to rotate.

10. A chicken heart-shaped cutting machine according to claim 4, characterized in that... The lifting drive component (44) is a multi-axis cylinder, and the piston rod of the multi-axis cylinder is connected to the lifting plate (43).

11. A chicken heart-shaped cutting machine according to claim 4, characterized in that... The rotation drive (45) includes a motor (450) mounted on the lifting plate (43), a drive synchronous pulley (451) mounted on the output shaft of the motor (450), a rotating shaft (452) mounted on the lifting plate (43), a driven synchronous pulley (453) mounted on the rotating shaft (452), and a synchronous belt (454) wound between the drive synchronous pulley (451) and the driven synchronous pulley (453). The feeding rubber wheel (40) is mounted on the rotating shaft (452) and rotatably connected to the lifting plate (43) through the rotating shaft (452). The rotating shaft (452) passes through the lifting plate (43), the feeding rubber wheel (40) is set on the front of the lifting plate (43), the driven shaft is set on the back of the lifting plate (43), the motor (450) and the driven synchronous wheel (453) are located on the same side of the lifting plate (43), and several fixing rods (455) connecting the two are provided between the lifting plates (43).