A hand sanitizer production equipment
By designing a combination of conveyor belt, filling device and collecting device, the problem of bottle deformation during the collection process in hand sanitizer production was solved, and stable and efficient collection of bottles was achieved.
Patent Information
- Application Number
- CN202310882565.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-07-19
- Publication Date
- 2025-10-28
- Estimated Expiration
- 2043-07-19
AI Technical Summary
During the production of hand sanitizer, the filled bottles are prone to deformation due to impact when dropped, and existing equipment cannot effectively avoid this problem.
A hand sanitizer production device was designed, including a conveyor belt, a filling device, a receiving device, and a control component. The control component controls the sliding of the support frame, and the drive component drives the conveyor plate to move, ensuring that the bottles are less likely to collide during collection. A buffer layer and guide strips are used to reduce friction and achieve stable collection of the bottles.
It effectively reduces the possibility of bottle deformation during collection, improves bottle integrity and collection efficiency, and simplifies the bottle collection process.
Smart Images

Figure CN116692153B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of hand sanitizer production, and in particular to a hand sanitizer production device. Background Technology
[0002] Hand sanitizer is a skin-care cleansing liquid used to clean hands. When used, it removes dirt and bacteria from hands through mechanical friction and the action of surfactants, combined with water flow.
[0003] The production process mainly includes two steps: hand sanitizer preparation and hand sanitizer filling. Filling is carried out using filling equipment. This equipment mainly consists of a machine, a feeding section, a filling section, a sealing section, and a labeling section. The machine is equipped with a reciprocating conveyor belt, and the feeding, filling, sealing, and labeling sections are spaced apart along the conveyor belt's transport direction. During production, the feeding section places the hand sanitizer bottles at intervals on the conveyor belt. Then, as the bottles pass through the filling section, they are filled with the prepared hand sanitizer. The bottles are then conveyed to the sealing section where caps are screwed on for dispensing the hand sanitizer. Finally, the labeling section labels the bottles, completing the hand sanitizer production process.
[0004] During production, a collection box is usually placed on the discharge side of the machine. Bottles filled with hand sanitizer are labeled and then transported by conveyor belt into the collection box. However, when they fall, the bottles may collide with the ground or with each other, which may cause the bottles to be dented or deformed. Summary of the Invention
[0005] To reduce the possibility of bottle deformation, this application provides a hand sanitizer production device.
[0006] This application provides a hand sanitizer production device, which adopts the following technical solution:
[0007] A hand sanitizer production device, including
[0008] Workbench;
[0009] The conveyor belt is rotatably mounted on the worktable;
[0010] A filling device is installed on the workbench;
[0011] A receiving device is installed on the workbench;
[0012] The receiving device includes
[0013] A receiving seat is provided on the workbench and located on the discharge side of the conveyor belt;
[0014] A support frame is slidably and detachably connected to the receiving seat. The support frame has a collection cavity facing the conveyor belt. There are multiple collection cavities that are spaced apart vertically.
[0015] A collection box is disposed on the support frame and located inside the collection cavity, the collection box having a collection opening facing the conveyor belt;
[0016] A control component is disposed on the receiving seat. The control component controls the opening of the collecting chamber to align with the conveyor belt. When the collecting box is full of bottles, the control component controls the support frame to slide down until the collecting opening of the adjacent collecting box is aligned with the conveyor belt.
[0017] A conveying plate is slidably disposed on the discharge side of the workbench. The sliding direction of the conveying plate is perpendicular to the transmission direction of the conveyor belt. The conveying plates are symmetrically arranged and a conveying space is formed between them to guide the bottle into the collection box.
[0018] A collection plate is symmetrically arranged on the discharge side of the workbench;
[0019] The guide bar is connected to the collecting plate and the conveying plate at both ends, and the guide bar forms a guide space that guides the bottle body collected by the collecting plate to the conveying space;
[0020] A drive assembly is disposed on the workbench, and multiple horizontal placement spaces are formed inside the collection box. The drive assembly drives the conveyor plate to move to the next adjacent horizontal placement space.
[0021] A starting component is disposed on the conveying plate. When the horizontal placement space in the collection box is full of bottles, the starting component controls the driving component to start.
[0022] By adopting the above technical solution, bottles filled with hand sanitizer and sealed with labels enter the horizontal placement space through the conveying space. When a horizontal placement space is full of bottles, the starting component controls the drive component to start. At this time, the drive component drives the conveyor plate to move until the conveying space is aligned with the next adjacent horizontal placement space. When a collection box is full of bottles, the control component controls the support frame to slide down until the previous adjacent collection box is aligned with the conveyor belt, and bottle collection continues. When the collection box on the support frame is full of bottles, the support frame can be removed and replaced with a new support frame for bottle collection. The whole process is simple, and the possibility of bottles colliding during collection is greatly reduced, which helps to reduce the possibility of bottle deformation.
[0023] Optionally, the drive assembly includes a bidirectional lead screw, a drive gear, a transmission gear, a mounting block, a drive motor, and a linkage bar;
[0024] The two ends of the linkage bar are respectively disposed on the top of the conveyor plate;
[0025] The end of the bidirectional lead screw is fixedly connected to one of the conveying plates on the side facing away from the other conveying plate;
[0026] The mounting block is disposed on the worktable, the drive gear is threadedly connected to the outer periphery of the bidirectional lead screw, and the drive gear is rotatably disposed on the mounting block;
[0027] The drive motor is mounted on the worktable, and the transmission gear is mounted on the output shaft of the drive motor, and the transmission gear meshes with the drive gear.
[0028] By adopting the above technical solution, the drive motor drives the bidirectional lead screw to rotate when it starts, which is beneficial for moving the material conveyor plate.
[0029] Optionally, the starting assembly includes a start switch, a start band, a start post, a start spring, a start block, a toggle post, a connecting post, a limiting member, and a pushing member;
[0030] The bidirectional lead screw has a mounting groove that penetrates the conveyor plate. The starting column slides in the mounting groove, and the starting spring is installed in the mounting groove. The starting spring pushes the starting column to protrude out of the conveyor plate.
[0031] The bidirectional lead screw forms a receiving groove that connects to the mounting groove, and the starting belt is connected end to end and installed in the receiving groove;
[0032] The start switch is located on the bidirectional lead screw and faces the end of the start belt. The start switch is connected to the drive motor via a wireless signal. The start block is located on the end of the start belt facing the start switch. When the start block passes the start switch, the start switch controls the drive motor to start.
[0033] The actuating post is inclinedly disposed on the starting post and extends toward the starting band; there are multiple connecting posts and they are hinged to the outer periphery of the starting band.
[0034] The limiting member is disposed on the starting belt. When the connecting post is flipped away from the starting belt to be parallel to the toggle post, the limiting member restricts the connecting post from continuing to flip away from the starting belt.
[0035] The pusher is disposed on the starting strip, and the pusher pushes the starting column away from the starting strip;
[0036] When the bottle passes through the conveying space, it pushes the starting column to slide into the mounting groove;
[0037] When the starting column slides into the mounting groove, the actuating column abuts against the connecting column and drives the starting belt to rotate;
[0038] When the starting column slides out of the mounting groove, the actuating column pushes the connecting column to flip in the direction of the starting band.
[0039] By adopting the above technical solution, when the bottle passes through the conveying space, it pushes the starting column, which causes the toggle column to move the connecting column and drive the starting belt to rotate, thereby realizing the movement of the starting block. This is beneficial for the starting block to be controlled by the start switch to start the drive motor.
[0040] Optionally, the pusher includes magnets with the same magnetic properties, which are respectively embedded in the connecting post and the outer periphery of the starting belt. When the connecting post is flipped toward the starting belt, the magnets with the same magnetic properties align with each other.
[0041] By adopting the above technical solution, the magnets with the same magnetism generate opposite forces, pushing the connecting column to move away from the starting strip.
[0042] Optionally, the limiting component includes a limiting rope, one end of which is connected to the connecting post and the other end of which is connected to the starting belt.
[0043] By adopting the above technical solution, when the connecting column is moved parallel to the column, the limiting rope restricts the connecting column from continuing to rotate.
[0044] Optionally, the end of the starting column is formed with an arc-shaped convex structure.
[0045] By adopting the above technical solution, the frictional force generated when the bottle slides on the starting column is reduced.
[0046] Optionally, the control component includes a control column and a control spring;
[0047] The control column is slidably connected to the receiving seat, and the control spring is disposed on the receiving seat. The control spring pushes the control column to protrude outside the receiving seat.
[0048] The control column is inclined to form a control surface, and the support frame is slidably connected to the control surface.
[0049] By adopting the above technical solution, the support frame slides on the control column, pushing the control column into the receiving seat, so that the support frame can move downward.
[0050] Optionally, the receiving seat has a groove for the support frame to slide up and down, and the receiving device includes a buffer layer disposed on the receiving seat, the buffer layer being located on the side wall of the groove, and the support frame slidingly contacting the buffer layer.
[0051] By adopting the above technical solution, the buffer layer generates friction, which slows down the downward movement of the support frame.
[0052] Optionally, the receiving device further includes a rotating shaft and a coil spring;
[0053] The rotating shaft rotates within the collecting plate, and the guide bar is connected to the outer periphery of the rotating shaft on the side away from the conveying plate;
[0054] The coil spring is wound around the outer periphery of the rotating shaft, and the coil spring drives the rotating shaft to rotate and wind around the guide strip.
[0055] By adopting the above technical solution, the coil spring drives the rotating shaft to rotate, so that the guide strip can remain taut after the material conveying plate moves, thereby improving the effect of the guide strip in guiding the bottle.
[0056] In summary, this application includes at least one of the following beneficial effects:
[0057] 1. The bottle enters the collection box through the conveying space, reducing the possibility of impact during collection, which helps to improve the integrity of the bottle and reduce the possibility of deformation.
[0058] 2. The support frame is detachably connected to the receiving seat. When the collection box on one support frame is full of bottles, the support frame can be removed and replaced, which greatly improves the bottle collection efficiency. Attached Figure Description
[0059] Figure 1 This is a schematic diagram of the overall structure of an embodiment of this application;
[0060] Figure 2 This is a schematic diagram of the state during material receiving in an embodiment of this application;
[0061] Figure 3 This is a schematic diagram of the internal cross-section of the receiving seat in an embodiment of this application;
[0062] Figure 4 This is a cross-sectional schematic diagram of the material receiving process in an embodiment of this application;
[0063] Figure 5 yes Figure 2 Enlarged schematic diagram of part A;
[0064] Figure 6 This is a schematic cross-sectional view of the bidirectional lead screw in an embodiment of this application;
[0065] Figure 7 yes Figure 4 Enlarged schematic diagram of part B;
[0066] Figure 8 yes Figure 6 Enlarged schematic diagram of part C.
[0067] Reference numerals: 1. Workbench; 11. Conveyor belt; 12. Transfer trough; 13. Filling device; 2. Receiving seat; 21. Chute; 22. Buffer layer; 23. Guide trough; 24. Control trough; 3. Support frame; 31. Collection box; 311. Collection port; 312. Lateral placement space; 32. Support column; 33. Support plate; 331. Guide block; 34. Collection chamber; 4. Conveying plate; 41. Guide bar; 411. Guide space; 42. Conveying space; 5. Collecting plate; 51. Rotating shaft 52. Coil spring; 6. Linkage bar; 7. Mounting block; 71. Double-acting lead screw; 711. Mounting groove; 712. Receiving groove; 72. Drive gear; 73. Transmission gear; 74. Drive motor; 75. Drive groove; 8. Starting column; 81. Starting belt; 811. Starting block; 812. Connecting column; 82. Starting spring; 83. Actuating column; 84. Magnet; 85. Limiting rope; 86. Starter switch; 9. Control assembly; 91. Control column; 911. Control surface; 92. Control spring. Detailed Implementation
[0068] The following is in conjunction with the appendix Figure 1-8 This application is described in further detail.
[0069] This application discloses a hand sanitizer production device. See also... Figure 1 The hand sanitizer production equipment includes a workbench 1, which has a rectangular structure.
[0070] See Figure 1 and Figure 2 The hand sanitizer production equipment also includes a conveyor belt 11 and a filling device 13. A transmission trough 12 is provided along the length of the top of the workbench 1. The conveyor belt 11 is connected end-to-end and rotates within the transmission trough 12. The workbench 1 is equipped with a power motor, which drives the conveyor belt 11 to reciprocate during operation. The filling device 13 is located on the workbench 1. During operation, bottles containing hand sanitizer are placed on the conveyor belt 11 at regular intervals using the filling device 13. The conveyor belt 11 then transports the bottles, filling them with hand sanitizer, sealing and labeling them, and finally, the bottles are transported away from the workbench 1 by the conveyor belt 11. Since the filling device 13 is existing technology, it will not be described in detail here.
[0071] The hand sanitizer production equipment also includes a receiving device for collecting finished bottles that have been conveyed off the workbench 1 by the conveyor belt 11.
[0072] The receiving device includes a receiving seat 2 and a support frame 3. The receiving seat 2 is fixed to the discharge side of the workbench 1. The receiving seat 2 has a cuboid structure and its length extends vertically. A groove 21 is provided on the side of the receiving seat 2 facing the workbench 1. The groove 21 extends vertically upward to the outside of the receiving seat 2. The support frame 3 slides up and down in the groove 21, so that the support frame 3 and the receiving seat 2 can be detachably connected.
[0073] The support frame 3 includes support plates 33 and support columns 32. There are three support plates 33, evenly spaced vertically. There are multiple sets of support columns 32, each set consisting of four columns positioned between two adjacent support plates 33, located at the four corners of the edge. The two ends of each support column 32 are fixed to the opposite sides of the two adjacent support plates 33. A collection cavity 34 is formed between two adjacent support plates 33, with its opening facing the worktable 1. A guide block 331 is fixedly connected to the side wall of the support plate 33. The receiving seat 2 has a guide groove 23 extending vertically, located on and connected to the side wall of the slide chute 21. The guide block 331 slides up and down within the guide groove 23, guiding the movement trajectory of the support frame 3, ensuring the support frame 3 remains in a sliding state and reducing the possibility of the support frame 3 disengaging from the slide chute 21 towards the worktable 1.
[0074] The collecting device also includes a collecting box 31, which can be a cardboard box structure. The collecting box 31 corresponds one-to-one with the collecting cavity 34 and is installed inside the collecting cavity 34. A collecting port 311 is formed on one side of the collecting box 31, which faces the workbench 1. Bottles enter the collecting box 31 through the collecting port 311. After collecting all the bottles, the collecting box 31 can lift the support frame 3 upwards and then replace it with a new support frame 3 into the slide 21 for a new round of bottle collection.
[0075] The receiving device also includes a control component 9 for controlling the support frame 3 so that the collection port 311 of the collection box 31 is aligned with the conveyor belt 11, and after the next collection box 31 has collected the bottles, the control component 9 controls the support frame 3 to slide down until the collection port 311 of the previous collection box 31 is aligned with the conveyor belt 11.
[0076] See Figure 3 and Figure 4 The control component 9 includes a control post 91 and a control spring 92. The receiving seat 2 has multiple slots spaced horizontally in the control slots 24 facing the worktable 1. The control post 91 slides in the control slot 24. The control spring 92 corresponds to the control post 91 and is installed in the control slot 24. One end of the control spring 92 abuts against the end of the control post 91, and the other end abuts against the side wall of the mounting slot 711 away from the slot opening. In use, the control spring 92 drives the control post 91 to protrude out of the control slot 24.
[0077] The control column 91 has an inclined control surface 911, which is symmetrically arranged vertically. In the initial state, the lowermost support plate 33 abuts against the control surface 911, and the bottom wall of the lowermost collection box 31 is below the conveyor belt 11. When the conveyor belt 11 transports the bottle away from the workbench 1, the bottle enters the collection box 31 through the collection port 311. During transport, the force generated by the subsequent adjacent bottle being transported by the conveyor belt 11 pushes the previous bottle further into the collection box 31. When the collection box 31 is full of bottles, the weight of the bottles in the collection box 31 increases the force exerted by the support plate 33 on the control column 91. At this time, the support plate 33 slides on the control surface 911, pushing the control column 91 into the control groove 24; at the same time, the support frame 3 begins to slide downward until the support frame 3 abuts against the bottom wall of the chute 21, and the collection port 311 of the previous adjacent collection box 31 aligns with the conveyor belt 11. At this time, the control column 91 abuts against the side wall of the support plate 33. Once both collection boxes 31 have collected all the bottles, the support frame 3 can be slid upwards to the outside of the slide groove 21 to replace the support frame 3.
[0078] To slow down the downward sliding speed of the support frame 3 and reduce the possibility of the support frame 3 impacting the receiving seat 2 and causing the bottles to collide and deform, the receiving device includes a buffer layer 22. The buffer layer 22 can be made of rubber or silicone. The buffer layer 22 is fixed to the side wall of the chute 21, and the side wall of the support plate 33 slides in contact with the buffer layer 22, so that when the support frame 3 moves downward, the friction generated by the buffer layer 22 buffers the sliding speed of the support frame 3.
[0079] See Figure 4 and Figure 5 The receiving device also includes a collecting plate 5, a conveying plate 4, and a guide bar 41. Two collecting plates 5 are symmetrically arranged and fixed on the top of the workbench 1. The length direction of the collecting plate 5 is perpendicular to the conveying direction of the conveyor belt 11, and the conveyor belt 11 is located between the two opposite collecting plates 5.
[0080] Two conveyor plates 4 are symmetrically arranged and slidably positioned above the conveyor belt 11. The sliding direction of the conveyor plates 4 is perpendicular to the conveying direction of the conveyor belt 11. The conveyor plates 4 are located on the side of the collecting plate 5 near the receiving seat 2, and a conveying space 42 is formed between the two conveyor plates 4. Two guide bars 41 are symmetrically arranged, with each guide bar 41 positioned between the collecting plate 5 and the conveyor plate 4. The guide bars 41 can be made of soft materials such as plastic or cloth. A guide space 411 is formed between the two guide bars 41, and the guide space 411 is connected to the conveying space 42. After being conveyed by the conveyor belt 11, the bottle enters the gap between the two collecting plates 5, then enters the guide space 411, and is guided by the guide bars 41 into the conveying space 42. Finally, the bottle slides into the collecting box 31 under the guidance of the conveyor plates 4.
[0081] The receiving device also includes a rotating shaft 51 and a coil spring 52. The rotating shaft 51 is rotatably connected inside the collecting plate 5. The guide strip 41 slides through the collecting plate 5. One end of the guide strip 41 is fixed to the outer periphery of the rotating shaft 51, and the other end is fixed to the end of the conveying plate 4 away from the receiving seat 2. The coil spring 52 is wrapped around the outer periphery of the rotating shaft 51. One end of the coil spring 52 is engaged with the outer periphery of the rotating shaft 51, and the other end is engaged with the collecting plate 5. In use, the coil spring 52 is released elastically, driving the rotating shaft 51 to rotate, so that the guide strip 41 is wrapped around the outer periphery of the rotating shaft 51. This helps to keep the guide strip 41 taut after the conveying plate 4 slides, facilitating the guidance of the bottle into the conveying space 42.
[0082] The receiving device also includes a drive assembly for driving the conveyor plate 4 to slide. A plurality of transverse placement spaces 312 are formed within the collecting box 31 and are distributed along the conveying direction of the vertical conveyor belt 11. Initially, the conveyor space 42 is aligned with the outermost transverse placement space 312. When the outermost transverse placement space 312 is full of bottles, the drive assembly drives the conveyor plate 4 to move until the conveyor space 42 aligns with the next adjacent transverse placement space 312, causing the conveyor plate 4 to move back and forth above the conveyor belt 11.
[0083] See Figure 2 and Figure 4 The drive assembly includes a bidirectional lead screw 71, a drive gear 72, a transmission gear 73, a mounting block 7, a drive motor 74, and a linkage bar 6.
[0084] The linkage bar 6 has an inverted "U" shape. The two ends of the linkage bar 6 are fixed to the top of the two conveying plates 4 respectively. The two conveying plates 4 are linked by the linkage bar 6, and the bottle passes through the linkage bar 6 during transmission.
[0085] Mounting block 7 is fixed to the top of workbench 1, and is located on the side of one conveyor plate 4 facing away from the other. A drive groove 75 is formed within mounting block 7, and a drive gear 72 is located within the drive groove 75 and rotatably connected to mounting block 7. A connecting hole is formed in the middle of drive gear 72. Mounting block 7 has a connecting hole extending perpendicular to the conveying direction of conveyor belt 11. A bidirectional lead screw 71 is threaded into the wall of the connecting hole, with both ends protruding through the connecting hole to the outside of mounting block 7. The end of bidirectional lead screw 71 closest to conveyor plate 4 is fixedly connected to the middle position of conveyor plate 4.
[0086] The transmission gear 73 is rotatably connected to the mounting block 7 and located in the drive groove 75, and the transmission gear 73 meshes with the drive gear 72. The drive motor 74 adopts a stepper motor structure and is fixed on the top of the worktable 1. The output shaft of the drive motor 74 is rotatably connected to the mounting block 7, and the output shaft of the drive motor 74 is fixedly connected to the transmission gear 73.
[0087] When in use, the drive motor 74 starts and drives the transmission gear 73 to rotate. At this time, the bidirectional lead screw 71 moves along the transmission direction of the vertical conveyor belt 11 to control the sliding of the conveyor plate 4. The threaded section of the bidirectional lead screw 71 is evenly divided into multiple segments according to the number of transverse placement spaces 312 in the collection box 31. Each segment is the distance traveled by the drive gear 72 each time. The working time of the drive motor 74 after each start is determined according to the time required for the drive gear 72 to travel through one of the evenly divided threaded segments. This ensures that when the drive motor 74 starts and the conveyor plate 4 moves, the conveyor space 42 can move to align with the next adjacent transverse placement space 312. At the same time, the drive motor 74 automatically shuts off after the conveyor plate 4 has finished moving.
[0088] See Figure 4 and Figure 6 The receiving device also includes a starting component. When the number of bottles that have passed through the conveying space 42 and entered the collection box 31 is enough to fill a horizontal placement space 312, the starting component controls the drive component to start.
[0089] See Figure 7 and Figure 8 The starting assembly includes a start switch 86, a start belt 81, a start post 8, a start spring 82, a start block 811, a toggle post 83, a connecting post 812, a limiter, and a pusher.
[0090] The bidirectional lead screw 71 and the feed plate 4 (the feed plate 4 is in Figure 4 The feed plate 4 and the starting column 8 are respectively formed with interconnected mounting grooves 711 extending to the outside of the feed plate 4. The starting column 8 slides in the mounting groove 711 and is parallel to the double-acting screw 71. The starting spring 82 is installed in the mounting groove 711, with one end of the starting spring 82 abutting against the starting column 8 and the other end abutting against the side wall of the mounting groove 711 away from the groove opening. The end of the starting column 8 has an arc-shaped convex structure, and in the initial state, the starting spring 82 is elastically released, pushing the starting column 8 until the arc-shaped convex structure protrudes into the feed space 42 (the feed space 42 is in Figure 4 (In the bid section). When the bottle passes through the plastic space, the bottle slides on the starting column 8 and pushes the starting column 8 into the mounting groove 711. At this time, the starting spring 82 is in a compressed state until the bottle is separated from the starting column 8. Then the starting spring 82 is released elastically and pushes the starting column 8 into the conveying space 42.
[0091] The bidirectional lead screw 71 has a receiving groove 712 formed inside, which is connected to the mounting groove 711. The bidirectional lead screw 71 has two rotation axes that rotate symmetrically, and the rotation axes are located inside the receiving groove 712 and extend in the vertical direction.
[0092] The starting belt 81 is connected end to end and sleeved on the outer circumference of the rotating shaft. The starting block 811 is fixed to the top end of the starting belt 81. The starting switch 86 is fixed to the top wall of the receiving groove 712. There are multiple starting switches 86, and their number corresponds to the horizontal placement space 312 of the collection box 31 (the horizontal placement space 312 is in...). Figure 4 (The marked part is the same). The start switch 86 is directly opposite the top of the starter belt 81. The start switch 86 and the drive motor 74 (drive motor 74 is in...) are the same. Figure 4 (The winning bidder) connects via wireless signal. When the starting belt 81 rotates, it drives the starting block 811 to move. When the starting block 811 passes the starting switch 86, the starting block 811 triggers the starting switch 86, causing the starting switch 86 to send a signal to the drive motor 74, thus starting the drive motor 74.
[0093] The actuating column 83 is tilted and fixed to the outer periphery of the starting column 8 and toward the direction away from the material conveying space 42 (the material conveying space 42 is in Figure 4 Extending in the direction indicated by the indicator, the connecting post 812 is hinged to the outer periphery of the starting belt 81. There are multiple connecting posts 812, which are spaced apart along the extension direction of the starting belt 81. In the initial state, the actuating post 83 is located between two adjacent connecting posts 812.
[0094] The pushing component includes multiple sets of magnets 84 with identical magnetic properties, each corresponding to a connecting post 812. Each set contains two magnets 84, fixed to the opposite sides of the connecting post 812 and the starting belt 81. During use, the magnets 84 in the same set have identical magnetic properties, generating opposing forces that push the connecting post 812 away from the starting belt 81. In other embodiments, the pushing component can also be a push spring, installed between the connecting post 812 and the starting belt 81. During use, the push spring releases elastically, pushing the connecting post 812 away from the starting belt 81.
[0095] The limiting component includes multiple limiting ropes 85, each corresponding to a connecting post 812. The two ends of the limiting rope 85 are fixed to the opposing sides of the connecting post 812 and the starting belt 81, respectively. When the connecting post 812 rotates away from the starting belt 81 to the parallel actuating post 83, the limiting rope 85 becomes taut, preventing the connecting post 812 from continuing to rotate away from the starting belt 81.
[0096] When the bottle pushes the starting column 8 into the mounting groove 711, the actuating column 83 abuts against the connecting column 812 on the side away from the conveying plate 4, and drives the connecting column 812 away from the conveying plate 4 (the conveying plate 4 is in Figure 4The starting column 812 moves in the direction of the starting column 81, causing the starting belt 81 to rotate. When the starting column 8 slides out of the mounting groove 711, the actuating column 83 pushes the connecting column 812 near the material conveyor plate 4 to flip towards the starting belt 81, until the actuating column 83 moves between the two connecting columns 812 near the material conveyor plate 4. At this time, the connecting column 812 flips and moves closer to the starting belt 81, causing the magnets 84 with the same magnetism to approach each other. The magnets 84 generate a reverse force to push the connecting column 812 away from the starting belt 81, so that the actuating column 83 can abut against it when the starting column 8 slides back into the mounting groove 711.
[0097] The implementation principle of a hand sanitizer production device according to an embodiment of this application is as follows:
[0098] After the bottles have been capped and labeled, they enter the horizontal placement space 312 after passing through the conveying space 42. When the horizontal placement space 312 is full of bottles, the drive motor 74 starts, causing the bidirectional lead screw 71 to drive the conveyor plate 4 to move. At this time, the conveying space 42 moves to align with the next adjacent horizontal placement space 312. When the collection box 31 below is full of bottles, the support frame 3 moves downward until the previous collection box 31 is aligned with the conveyor belt 11, allowing the bottles to continue entering the previous adjacent collection box 31 until the collection box 31 on the support frame 3 is full of bottles. Then, the support frame 3 is slid upward to remove it, and a new support frame 3 is replaced for bottle collection. The full collection box can slide off the support frame 3, and a new empty collection box 31 is placed on the support frame 3 to await replacement. The entire collection process is simple, and the force on the bottle during collection is reduced, greatly reducing the possibility of deformation of the bottle due to impact.
[0099] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A hand sanitizer production device, characterized in that: include Workbench (1); Conveyor belt (11) is rotatably mounted on the workbench (1); A filling device (13) is installed on the workbench (1). A receiving device is installed on the workbench (1). The receiving device includes A receiving seat (2) is provided on the workbench (1) and located on the discharge side of the conveyor belt (11); The support frame (3) is slidably and detachably connected to the receiving seat (2). The support frame (3) has a collection cavity (34) facing the conveyor belt (11). There are multiple collection cavities (34) and they are spaced apart vertically. A collection box (31) is disposed on the support frame (3) and located in the collection cavity (34). The collection box (31) has a collection port (311) facing the conveyor belt (11). Control component (9), the control component (9) is disposed on the receiving seat (2), the control component (9) controls the opening of the collecting chamber (34) to align with the conveyor belt (11), when the collecting box (31) is full of bottles, the control component (9) controls the support frame (3) to slide down until the collecting port (311) of the adjacent collecting box (31) is aligned with the conveyor belt (11). The conveying plate (4) is slidably disposed on the discharge side of the workbench (1). The sliding direction of the conveying plate (4) is perpendicular to the transmission direction of the conveyor belt (11). The conveying plates (4) are symmetrically disposed and a conveying space (42) is formed between them to guide the bottle into the collection box (31). A collection plate (5) is symmetrically arranged on the discharge side of the workbench (1); The guide bar (41) is connected to the collecting plate (5) and the conveying plate (4) at both ends respectively. The guide bar (41) forms a guide space (411) that guides the collecting plate (5) to collect the bottle body and to the conveying space (42). A drive assembly is provided on the workbench (1). Multiple horizontal placement spaces (312) are formed in the collection box (31). The drive assembly drives the conveyor plate (4) to move to the next adjacent horizontal placement space (312). The starting component is set on the conveying plate (4). When the horizontal placement space (312) in the collection box (31) is full of bottles, the starting component controls the driving component to start. The drive assembly includes a bidirectional lead screw (71), a drive gear (72), a transmission gear (73), a mounting block (7), a drive motor (74), and a linkage bar (6); The two ends of the linkage bar (6) are respectively disposed on the top of the conveying plate (4); The end of the bidirectional lead screw (71) is fixedly connected to one of the conveying plates (4) on the side facing away from the other conveying plate (4); The mounting block (7) is disposed on the workbench (1), the drive gear (72) is threadedly connected to the outer periphery of the bidirectional lead screw (71), and the drive gear (72) is rotatably disposed on the mounting block (7). The drive motor (74) is mounted on the worktable (1), and the transmission gear (73) is mounted on the output shaft of the drive motor (74). The transmission gear (73) meshes with the drive gear (72).
2. The hand sanitizer production equipment according to claim 1, characterized in that: The starting assembly includes a start switch (86), a start belt (81), a start post (8), a start spring (82), a start block (811), a toggle post (83), a connecting post (812), a limiting member, and a pushing member; The bidirectional lead screw (71) has an installation groove (711) that penetrates the feed plate (4). The starting column (8) slides in the installation groove (711). The starting spring (82) is installed in the installation groove (711). The starting spring (82) pushes the starting column (8) to protrude out of the feed plate (4). The bidirectional lead screw (71) forms a receiving groove (712) that connects to the mounting groove (711), and the starting belt (81) is connected end to end and installed in the receiving groove (712); The start switch (86) is located on the bidirectional lead screw (71) and faces the end of the start belt (81). The start switch (86) is connected to the drive motor (74) via a wireless signal. The start block (811) is located on the end of the start belt (81) facing the start switch (86). When the start block (811) passes the start switch (86), the start switch (86) controls the drive motor (74) to start. The actuating post (83) is inclinedly disposed on the starting post (8) and extends toward the starting band (81); there are multiple connecting posts (812) and they are hinged to the outer periphery of the starting band (81); The limiting member is disposed on the starting belt (81). When the connecting post (812) is flipped away from the starting belt (81) to be parallel to the toggle post (83), the limiting member restricts the connecting post (812) from continuing to flip away from the starting belt (81). The pusher is disposed on the start-up band (81), and the pusher pushes the start-up column (8) in a direction away from the start-up band (81). When the bottle passes through the material conveying space (42), it pushes the starting column (8) to slide into the mounting groove (711). When the starting column (8) slides into the mounting groove (711), the actuating column (83) abuts against the connecting column (812) and drives the starting belt (81) to rotate; When the starting column (8) slides out of the mounting groove (711), the actuating column (83) pushes the connecting column (812) to flip in the direction of the starting band (81).
3. The hand sanitizer production equipment according to claim 2, characterized in that: The pusher includes magnets (84) with the same magnetic properties. The magnets (84) are respectively embedded in the outer periphery of the connecting post (812) and the starting band (81). When the connecting post (812) flips toward the starting band (81), the magnets (84) with the same magnetic properties align with each other.
4. The hand sanitizer production equipment according to claim 2, characterized in that: The limiting component includes a limiting rope (85), one end of which is connected to the connecting post (812), and the other end is connected to the starting belt (81).
5. The hand sanitizer production equipment according to claim 2, characterized in that: The end of the starting column (8) forms an arc-shaped convex structure.
6. The hand sanitizer production equipment according to claim 1, characterized in that: The control component (9) includes a control column (91) and a control spring (92); The control column (91) is slidably connected to the receiving seat (2), and the control spring (92) is disposed on the receiving seat (2). The control spring (92) pushes the control column (91) to protrude out of the receiving seat (2). The control column (91) is inclined to form a control surface (911), and the support frame (3) is slidably connected to the control surface (911).
7. The hand sanitizer production equipment according to claim 1, characterized in that: The receiving seat (2) has a groove (21) for the support frame (3) to slide up and down. The receiving device includes a buffer layer (22) disposed on the receiving seat (2). The buffer layer (22) is located on the side wall of the groove (21). The support frame (3) is in sliding contact with the buffer layer (22).
8. The hand sanitizer production equipment according to claim 1, characterized in that: The receiving device also includes a rotating shaft (51) and a coil spring (52). The rotating shaft (51) rotates within the collecting plate (5), and the guide strip (41) is connected to the outer periphery of the rotating shaft (51) on the side away from the conveying plate (4). The coil spring (52) is wound around the outer periphery of the rotating shaft (51), and the coil spring (52) drives the rotating shaft (51) to rotate and wrap around the guide strip (41).
Citation Information
Patent Citations
Medicine bottle arranging device of bottle type filling machine
CN214397498U
Receiving device for roll leveling machine
CN214934164U