Artemisia argyi foot bath bag filling machine

By designing an automated structure for the mugwort foot bath pack filling machine, the problem of low efficiency in manually arranging non-woven fabrics was solved, and the automatic folding and packaging of non-woven fabrics was realized, improving work efficiency and convenience.

CN223618984UActive Publication Date: 2025-12-02ANYANG JIUTOUXIAN AIYE CO LTD
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Patent Information

Application Number
CN202422702146.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-06
Publication Date
2025-12-02
Estimated Expiration
2034-11-06

AI Technical Summary

Technical Problem

The existing mugwort foot bath pack filling machine requires manual operation when laying the non-woven fabric, which results in low efficiency and inconvenience.

Method used

A mugwort foot bath pack filling machine was designed, including a control box, forming block, feeding box, feeding hopper, discharging box, feeding component, cutting ultrasonic sealing component and side sealing component. It automatically folds and packages non-woven fabric in a mechanized manner, and realizes automatic forming and packaging of non-woven fabric by using moving frame rollers, limit plate and rotating component.

Benefits of technology

It has enabled automated forming and packaging of nonwoven fabrics, improving work efficiency, reducing manual operation time, and increasing the convenience of operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of filling, in particular to a wormwood foot bath bag filling machine which comprises a control box, a forming block, a feeding box, a feeding hopper, a discharging box, a feeding assembly, a cutting ultrasonic sealing assembly, a side edge sealing assembly and a rotating shaft. A circular cutting plate used for cutting moxa is installed at a discharging opening of the discharging box, the forming block is fixed to the control box, the feeding hopper is connected with the control box and located over the forming block, the rotating shaft and the discharging box are sequentially installed at the top of the control box, the discharging box is connected with the feeding assembly, and the feeding assembly is connected with the discharging box. And the feeding box is fixedly connected with a rack. Compared with the prior art, the non-woven fabric folding device has the advantages that the non-woven fabric is automatically folded, then the non-woven fabric is kept in a folding state through a plurality of limiting structures until the non-woven fabric is formed and packaged, manual folding and forming are not needed, the non-woven fabric folding device is more convenient to use, and the working time is also saved.
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Description

Technical Field

[0001] This utility model relates to the field of filling technology, and in particular to a filling machine for mugwort foot bath packs. Background Technology

[0002] Current mugwort foot bath pack filling machines require manual placement of non-woven fabric. The process involves manually placing the fabric from start to finish, such as manually folding the non-woven fabric into a sealable shape and then placing it bit by bit into the corresponding forming position in the machine. This is inconvenient and wastes work efficiency.

[0003] To address this issue, this utility model proposes a mugwort foot bath pack filling machine. Utility Model Content

[0004] The purpose of this invention is to at least solve one of the aforementioned technical defects.

[0005] Therefore, one objective of this utility model is to propose a mugwort foot bath pack filling machine to solve the problems mentioned in the background art and overcome the shortcomings of the existing technology.

[0006] To achieve the above objectives, this utility model provides a mugwort foot bath pack filling machine, including a control box, forming block, feeding box, feeding hopper, discharging box, feeding assembly, cutting ultrasonic sealing assembly, side sealing assembly and rotating shaft.

[0007] The forming block is fixed on the control box. The feeding hopper is connected to the control box and is located directly above the forming block. The rotating shaft and the discharge box are sequentially installed on the top of the control box. The discharge box is connected to the feeding assembly, which is located on one side of the control box. A circular cutting plate for cutting moxa wool is installed at the discharge port of the discharge box. A rack is fixedly connected to the feeding box. The feeding box feeds moxa wool through the rotating assembly. The side sealing assembly and the cutting ultrasonic sealing assembly are vertically aligned. Both sides of the forming block are rotatably connected to a moving plate through a screw. The screw and the moving plate are connected to the control box through a baffle. A rotatable roller is connected to the side of the moving plate near the forming block. The screw is rotated by a second motor.

[0008] The rotating assembly includes several rotating shafts, each of which has a first gear at both ends. The first gear rotates via a chain, and one of the rotating shafts is driven by a first motor. The rotating shaft is supported by a cross plate.

[0009] The circular cutting plate is connected to the discharge port of the discharge box by a support rod. The support rod is equipped with a second gear, which rotates in conjunction with the rack.

[0010] The side sealing assembly includes a roll sealing mold and a side ultrasonic sealing component, which are symmetrically distributed along the longitudinal axis of the control box.

[0011] The ultrasonic sealing assembly includes an ultrasonic sealing component and a cylinder, wherein the cylinder is connected to the ultrasonic sealing component via a mounting plate.

[0012] The ultrasonic sealing component and cylinder are in two sets, and the two sets of ultrasonic sealing component and cylinder are symmetrically distributed along the longitudinal axis of the control box.

[0013] The feeding assembly includes a support frame, on which a material box is mounted. A first discharge pipe is mounted at the bottom of the material box. A feeding pipe is mounted at one end of the first discharge pipe. An auger rotates inside the feeding pipe. The auger is rotated by a motor. A second discharge pipe is fixedly connected to the other end of the feeding pipe. The discharge box is connected to the second discharge pipe.

[0014] A limiting plate is fixedly connected to the lower part of the molding block. A through groove is provided on the limiting plate. Both the through groove and the molding block are located on the longitudinal axis of the control box.

[0015] A limiting frame is fixed to the top of the limiting plate, and the limiting frame is located on both sides of the through groove.

[0016] The control box is equipped with two relatively rotating wheels, which are located between the transverse ultrasonic encapsulation component and the limiting plate, and are symmetrically distributed along the longitudinal axis of the control box.

[0017] Compared with the prior art, the advantages and beneficial effects of this utility model are as follows:

[0018] In this new invention, the nonwoven fabric is folded on both sides by the moving frame rollers during movement. The nonwoven fabric folds along both sides of the forming block, and the through groove on the limiting plate limits the folded nonwoven fabric to prevent it from spreading after folding. The nonwoven fabric moves along the inside of the limiting frame, which also limits the nonwoven fabric to prevent it from deviating until both ends of the nonwoven fabric are sealed. This new invention automatically folds the nonwoven fabric and then keeps it in a folded state through multiple limiting structures until it is formed and sealed. It eliminates the need for manual folding and forming, making it more convenient to use and saving working time.

[0019] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description

[0020] The above and / or additional aspects and advantages of this utility model will become apparent and readily understood from the description of the embodiments taken in conjunction with the following drawings, in which:

[0021] Figure 1 This is a structural schematic diagram according to the present invention;

[0022] Figure 2 This is a structural schematic diagram of the control box according to the present invention;

[0023] Figure 3 According to this utility model Figure 2 Enlarged structural diagram at point A;

[0024] Figure 4 This is a schematic diagram of the feeding assembly according to the present invention;

[0025] Figure 5 This is a structural schematic diagram of the mobile frame according to the present invention;

[0026] Figure 6 This is a schematic diagram of the structure of the present invention during operation;

[0027] Figure 7 According to this utility model Figure 6 Enlarged structural diagram at point A;

[0028] Figure 8 This is a schematic diagram of the sealing structure according to the present invention.

[0029] In the diagram: 1. Control box; 101. Screw; 102. Moving plate; 103. Roller; 104. Second motor; 105. Baffle; 2. Molding block; 3. Feeding box; 4. Feed hopper; 5. Discharge box; 501. Circular cutting plate; 502. Support rod; 503. Second gear; 504. Rack; 6. Feeding assembly; 601. Support frame; 602. Material box; 603. First discharge pipe; 604. Feeding pipe; 605. 606. Auger; 7. Second discharge pipe; 8. Cutting ultrasonic sealing assembly; 901. Cutting ultrasonic sealing component; 10. Cylinder; 11. Side sealing assembly; 12. Roll sealing mold; 13. Side ultrasonic sealing component; 14. Rotating assembly; 15. Shaft; 16. First gear; 17. Horizontal plate; 18. First motor; 19. Rotating shaft; 10. Limiting plate; 11. Through groove; 12. Limiting frame; 13. Rotating wheel. Detailed Implementation

[0030] like Figures 1 to 8 As shown, a mugwort foot bath pack filling machine includes a control box 1, a forming block 2, a feeding box 3, a feeding hopper 4, a discharging box 5, a feeding assembly 6, a cutting and ultrasonic sealing assembly 7, a side sealing assembly 8, and a rotating shaft 10.

[0031] The forming block 2 is fixed on the control box 1. The feeding hopper 4 is connected to the control box 1 and is located directly above the forming block 2. The rotating shaft 10 and the discharge box 5 are sequentially installed on the top of the control box 1. The discharge box 5 is connected to the feeding assembly 6, which is located on one side of the control box 1. The discharge port of the discharge box 5 is equipped with a circular cutting plate 501 for cutting moxa wool. A rack 504 is fixedly connected to the feeding box 3. The feeding box 3 feeds moxa wool through the rotating assembly 9. The side sealing assembly 8 and the cutting ultrasonic sealing assembly 7 are vertically aligned. Both sides of the forming block 2 are rotatably connected to a moving plate 102 through a screw 101. The screw 101 and the moving plate 102 are connected to the control box 1 through a baffle 105. The moving plate 102 is connected to a rotatable roller 103 on the side near the forming block 2. The screw 101 The second motor 104 rotates, and in this invention, the nonwoven fabric is conveyed to one side of the forming block 2 via the rotating shaft 10. At this time, the second motor 104 drives the screw 101 to rotate, and the screw 101 drives the moving plate 102 to move towards the control box 1. The moving plate 102 drives the roller 103 to move. When the roller 103 moves, it pushes the two sides of the nonwoven fabric and folds it along the two sides of the forming block 2. The forming block 2 is located in the middle of the nonwoven fabric. The folded nonwoven fabric moves downward along the two sides of the forming block 2 under the drive of the rotating wheel 14. The moving plate 102 is supported on both sides of the forming block 2 and remains stationary. The nonwoven fabric passing through the forming block 2 is folded. In this invention, the nonwoven fabric is folded and formed by machine from beginning to end without the need for manual folding and forming, which is more convenient to use and saves working time.

[0032] The rotating assembly 9 includes several rotating shafts 901, each with a first gear 902 at both ends. The first gear 902 rotates via a chain. One of the rotating shafts 901 is driven by a first motor 904 and supported by a cross plate 903. The first motor 904 drives one of the rotating shafts 901 to rotate, which in turn drives its own first gear 902 to rotate. The rotation of the first gear 902 drives the chain to rotate, which in turn drives several first gears 902 and rotating shafts 901 to rotate. When the chain rotates, it drives the feeding box 3 to move towards the feeding hopper 4. When the feeding box 3 moves above the feeding hopper 4, it follows the chain's operating path to feed materials into the feeding hopper 4.

[0033] The circular cutting plate 501 is connected to the discharge port of the discharge box 5 via a support rod 502. The support rod 502 is equipped with a second gear 503, which rotates in conjunction with the rack 504 to control the material discharge of the discharge box 5. Whenever the rack 504 drives the second gear 503 to rotate, the second gear 503 will drive the circular cutting plate 501 to rotate 360 ​​degrees, the feeding box 3 will move a certain distance, and the discharge box 5 will open for a certain period of time. The amount of material discharged by the discharge box 5 corresponds to the distance received by the feeding box 3, ensuring that the discharge time of the discharge box 5 corresponds to the receiving distance of the feeding box 3, so that a piece of material is discharged into a feeding box 3. The circular cutting plate 501 can also cut the moxa wool. When the circular cutting plate 501 rotates under the drive of the rack 504 and the second gear 503, the moxa wool is discharged from the discharge box 5. When the circular cutting plate 501 rotates back, it will cut the moxa wool, and the cut moxa wool will be transferred into the feeding box 3.

[0034] The side sealing assembly 8 includes a roll sealing mold 801 and a side ultrasonic sealing component 802, which are symmetrically distributed along the longitudinal axis of the control box 1.

[0035] The ultrasonic sealing assembly 7 includes an ultrasonic sealing component 701 and a cylinder 702. The cylinder 702 is connected to the ultrasonic sealing component 701 via a mounting plate. The cylinder 702 drives the two ultrasonic sealing components 701 to move relative to each other, thereby sealing the non-woven bag filled with materials. The two ultrasonic sealing components 701 cut the non-woven fabric into segments of packaging bags.

[0036] There are two sets of ultrasonic sealing components 701 and cylinders 702, and the two sets of ultrasonic sealing components 701 and cylinders 702 are symmetrically distributed along the longitudinal axis of control box 1.

[0037] The feeding assembly 6 includes a support frame 601, on which a material box 602 is mounted. A first discharge pipe 603 is mounted at the bottom of the material box 602. A feeding pipe 604 is mounted at one end of the first discharge pipe 603. An auger 605 rotates inside the feeding pipe 604. The auger 605 is rotated by a motor and a second discharge pipe 606 is fixedly connected to the other end of the feeding pipe 604. The discharge box 5 is connected to the second discharge pipe 606. The material box 602 feeds the material into the feeding pipe 604 through the first discharge pipe 603. Then, the rotation of the auger 605 drives the material to move upward. When the material reaches the top of the feeding pipe 604, it will be discharged into the discharge box 5 through the second discharge pipe 606.

[0038] A limiting plate 11 is fixedly connected to the lower part of the forming block 2. A through groove 12 is provided on the limiting plate 11. Both the through groove 12 and the forming block 2 are located on the longitudinal axis of the control box 1. The folded non-woven fabric will have its two sides aligned, and the aligned ends will pass through the gap between the two rotating wheels 14. The two rotating wheels 14 are driven to rotate by a motor, and the two rotating wheels 14 move relative to each other. Figure 7 Both of the two rotating wheels 14 shown have protrusions that increase friction. The two rotating wheels 14 are close to both sides of the nonwoven fabric. When the rotating wheels 14 rotate, the friction increased by the protrusions drives the nonwoven fabric to be conveyed downward. The aligned ends of the nonwoven fabric will pass between the rolling sealing mold 801 and the side ultrasonic sealing component 802. At this time, the ends of the nonwoven fabric can be sealed by the rolling sealing mold 801 and the side ultrasonic sealing component 802.

[0039] A limiting frame 13 is fixed to the top of the limiting plate 11, and the limiting frame 13 is located on both sides of the through groove 12.

[0040] Two rotating wheels 14 are installed on the control box 1. The rotating wheels 14 can drive the non-woven fabric to move downward through their relative rotation. The two rotating wheels 14 are located between the cutting ultrasonic sealing assembly 7 and the limiting plate 11. The two rotating wheels 14 are symmetrically distributed along the longitudinal axis of the control box 1. When the folded non-woven fabric moves downward, it will pass through the through groove 12 on the limiting plate 11. The through groove 12 on the limiting plate 11 limits the folded non-woven fabric to prevent it from spreading after folding. After the non-woven fabric is limited, it will continue to move downward and continue to move along the inside of the limiting frame 13. The rotating assembly 9 puts the material into the feeding hopper 4, and the feeding hopper 4 feeds the material into the sealed non-woven fabric.

[0041] The rotating shaft 10 is driven by a motor to rotate, and the non-woven fabric rotates as the rotating shaft 10 rotates. The non-woven fabric passes between two limit rods, which are driven by the motor to rotate, thus moving the non-woven fabric. After passing the two limit rods, the non-woven fabric moves along the crossbar, which is used for auxiliary positioning of the non-woven fabric.

[0042] This invention first uses a motor to drive a rotating shaft 10 to rotate. The rotating shaft 10 then drives a roll of nonwoven fabric on it to rotate, causing the nonwoven fabric roll to begin feeding downwards. The nonwoven fabric passes between two limiting rods 603, which limit its movement. The nonwoven fabric continues to be conveyed downwards along a crossbar 602, which tensions and limits the fabric, ensuring it faces the forming block 2 below. When the initial free end of the nonwoven fabric moves to one side of the forming block 2, a second motor 104 is activated, driving two moving plates 102 towards the control box 1. As the two moving plates 102 move towards the control box 1, they touch both sides of the nonwoven fabric. Because the middle part of the nonwoven fabric overlaps with the forming block 2 at this point, the movement of the two moving plates 102 towards the control box 1 folds the sides of the nonwoven fabric. Figure 7 As shown, the two ends of the non-woven fabric are formed along the two ends of the forming block 2. The roller 103 rotates on the non-woven fabric as the moving plate 102 moves, which helps the moving plate 102 move and reduces friction. The formed non-woven fabric continues to move downward along the through groove 12 on the limiting plate 11. The size of the through groove 12 and the size between the upper and lower limiting frames 13 are equal to the width of the formed non-woven fabric. The through groove 12 and the limiting frames 13 limit the non-woven fabric to prevent it from spreading out when moving downward. The two ends of the non-woven fabric are folded in the longitudinal direction and aligned. At this time, the two ends of the non-woven fabric pass through the cavity formed between the rolling sealing mold 801 and the side ultrasonic sealing component 802. The rolling seal mold 801 and the side ultrasonic sealing component 802 ultrasonically seal one end of the non-woven fabric, forming a closed state after the non-woven fabric is sealed. Then, it passes through the cutting ultrasonic sealing component 701. The two cutting ultrasonic sealing components 701 are ultrasonic sealing knives. Under the push of the cylinder 702, the two cutting ultrasonic sealing components 701 first cut and seal the lower end of the non-woven fabric, so that the lower end of the non-woven fabric forms a sealed space. At this time, the material is fed. The moxa wool flows along the discharge pipe 305 into the non-woven fabric that forms a sealed space. Then, the cutting ultrasonic sealing component 701 will cut the non-woven fabric according to the pre-set size of the packaging tape. Finally, the non-woven fabric is formed into a complete packaging bag.

Claims

1. A mugwort foot bath pack filling machine, characterized in that: It includes a control box (1), a molding block (2), a feeding box (3), a feeding hopper (4), a discharging box (5), a feeding assembly (6), a cutting ultrasonic sealing assembly (7), a side sealing assembly (8), and a rotating shaft (10); The forming block (2) is fixed on the control box (1). The feeding hopper (4) is connected to the control box (1) and is located directly above the forming block (2). The rotating shaft (10) and the discharge box (5) are installed sequentially on the top of the control box (1). The discharge box (5) is connected to the feeding assembly (6). The feeding assembly (6) is located on one side of the control box (1). The discharge port of the discharge box (5) is equipped with a circular cutting plate (501) for cutting moxa wool. A rack (504) is fixedly connected to the feeding box (3). The feeding box (3) feeds moxa wool through the rotating assembly (9). The side sealing assembly (8) corresponds to the cutting ultrasonic sealing assembly (7) vertically. Both sides of the forming block (2) are rotatably connected to the moving plate (102) through the screw (101). The screw (101) and the moving plate (102) are connected to the control box (1) through the baffle (105). The moving plate (102) is connected to the side of the forming block (2) with a rotatable roller (103). The screw (101) is rotated by the second motor (104).

2. The mugwort foot bath pack filling machine according to claim 1, characterized in that: The rotating assembly (9) includes several rotating shafts (901), each of which has a first gear (902) at both ends. The first gear (902) rotates via a chain. One of the rotating shafts (901) is driven by a first motor (904), and the rotating shaft (901) is supported by a cross plate (903).

3. The mugwort foot bath pack filling machine according to claim 2, characterized in that: The circular cutting plate (501) is connected to the discharge port of the discharge box (5) by a support rod (502). The support rod (502) is provided with a second gear (503), which rotates in cooperation with the rack (504).

4. The mugwort foot bath pack filling machine according to claim 3, characterized in that: The side sealing assembly (8) includes a roll sealing mold (801) and a side ultrasonic sealing component (802), which are symmetrically distributed along the longitudinal axis of the control box (1).

5. The mugwort foot bath pack filling machine according to claim 4, characterized in that: The cutting ultrasonic sealing assembly (7) includes a cutting ultrasonic sealing component (701) and a cylinder (702), wherein the cylinder (702) is connected to the cutting ultrasonic sealing component (701) via a mounting plate.

6. The mugwort foot bath pack filling machine according to claim 5, characterized in that, The ultrasonic sealing component (701) and cylinder (702) are both in two sets, and the two sets of ultrasonic sealing component (701) and cylinder (702) are symmetrically distributed along the longitudinal axis of the control box (1).

7. The mugwort foot bath pack filling machine according to claim 6, characterized in that: The feeding assembly (6) includes a support frame (601), on which a material box (602) is installed. A first discharge pipe (603) is installed at the bottom of the material box (602). A feeding pipe (604) is installed at one end of the first discharge pipe (603). An auger (605) rotates inside the feeding pipe (604). The auger (605) is rotated by a motor. A second discharge pipe (606) is fixedly connected to the other end of the feeding pipe (604). The discharge box (5) is connected to the second discharge pipe (606).

8. The mugwort foot bath pack filling machine according to claim 7, characterized in that: A limiting plate (11) is fixedly connected to the lower part of the molding block (2). A through groove (12) is provided on the limiting plate (11). The through groove (12) and the molding block (2) are both located on the longitudinal axis of the control box (1).

9. A mugwort foot bath pack filling machine according to claim 8, characterized in that, The top of the limiting plate (11) is fixed with a limiting frame (13), which is located on both sides of the through groove (12).

10. A mugwort foot bath pack filling machine according to claim 9, characterized in that, The control box (1) is equipped with two relatively rotating wheels (14). The two wheels (14) are located between the transverse ultrasonic encapsulation assembly (7) and the limiting plate (11). The two wheels (14) are symmetrically distributed along the longitudinal axis of the control box (1).