A batch cleaning device for glass bottles
By designing a batch cleaning device for glass bottles, which utilizes automated conveying and airflow within the blowing pipe to clean the inner wall of the glass bottles while simultaneously cleaning the outer wall with cleaning components, the problem of low cleaning efficiency in existing technologies is solved, achieving highly efficient batch cleaning of glass bottles.
Patent Information
- Application Number
- CN202311083152.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-08-25
- Publication Date
- 2026-01-30
- Estimated Expiration
- 2043-08-25
AI Technical Summary
Existing technologies for cleaning glass bottles are inefficient, require manual operation, and are difficult to perform in batches.
Design a batch cleaning device for glass bottles, including a frame, a conveying device, a positioning plate, a limiting component, a cleaning plate, and an air blowing pipe. The device cleans the inner wall of the glass bottles through automated conveying and airflow in the air blowing pipe, while simultaneously cleaning the outer wall using cleaning components, thus achieving batch cleaning.
It improves the efficiency of glass bottle cleaning, enables batch cleaning without manual operation, and enhances the cleaning effect on the inner and outer walls of glass bottles.
Smart Images

Figure CN117123584B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the technical field of glass manufacturing, and in particular to a batch cleaning device for glass bottles. Background Technology
[0002] Glass bottles are used in various industries due to their good sealing properties, compression resistance, and corrosion resistance. During the glass bottle production process, it is usually necessary to clean the inside of the glass bottle to ensure its cleanliness.
[0003] Depending on the products to be stored in the glass bottles, some bottles need to be kept dry, so water should not be used for cleaning. Currently, using high-speed gas to clean glass bottles is a common process. During cleaning, the bottles are manually placed upside down one by one onto a vertically upward-facing air jet. The jet delivers high-speed, dry gas into the bottles, which carries away dust and other debris, expelling them through the bottle opening, thus cleaning the bottles while keeping them dry.
[0004] Regarding the aforementioned technologies, when cleaning glass bottles using gas, manual handling of the bottles is required. Operators can only handle a limited number of bottles at a time, resulting in low cleaning efficiency. Summary of the Invention
[0005] To improve the efficiency of cleaning glass bottles, this application provides a batch cleaning device for glass bottles.
[0006] This application provides a batch cleaning device for glass bottles, which adopts the following technical solution:
[0007] A batch cleaning device for glass bottles includes a rectangular frame with a conveying device for transporting glass bottles at its lower end; two sets of positioning plates located at the input and output ends of the conveying device, respectively, and directly above the conveying device; a driving component on the frame for moving the positioning plates closer to the conveying device; and a limiting component located between the two sets of positioning plates, near the output end of the conveying device. The limiting component has several limiting cavities along its length that correspond one-to-one with each glass bottle. When the glass bottles are on the conveying device, their distribution trajectory is the same as the arrangement trajectory of the limiting cavities. When the glass bottle comes into contact with the positioning plate near the output end of the conveying device, it is located directly below the corresponding limiting cavity. The limiting cavity extends vertically through the limiting member. The frame is equipped with a second driving member for driving the limiting member to move closer to the conveying device. The cleaning plate is located above the limiting member. The lower end of the cleaning plate is equipped with several air blowing pipes that correspond one-to-one with the limiting cavity. The air blowing pipes have air blowing holes opened along the axial direction. The upper end of the cleaning plate is equipped with an air compressor for supplying gas to the air blowing pipes. The frame is equipped with a third driving member for driving the cleaning plate to move closer to the glass bottle. The cleaning plate is equipped with a cleaning assembly for cleaning the outer wall of the glass bottle.
[0008] By adopting the above technical solution, glass bottles move from the input end to the output end of the conveying device. The glass bottles are arranged in a staggered pattern. When the first row of glass bottles passes the positioning plate near the input end of the conveying device, under the support of the frame, the first drive unit moves two sets of positioning plates downwards, allowing the glass bottles to enter between the two sets of positioning plates. After the glass bottles contact the positioning plate near the output end, the second drive unit moves the limiting member downwards. When the limiting member moves, the glass bottle is inserted into the corresponding limiting cavity. The limiting member limits the glass bottle through the limiting cavity, ensuring that the bottle opening aligns with the air blowing pipe. The third drive unit moves the cleaning plate downwards, causing the cleaning plate to carry the air blowing pipe into the glass bottle along the bottle opening. The air compressor delivers airflow into the air blowing pipe, causing the airflow to blow out into the glass bottle through the air blowing hole, thus cleaning the inner wall of the glass bottle. Simultaneously, the cleaning component cleans the outer wall of the glass bottle. Cleaning the glass bottles requires no manual labor and can be done in batches, improving efficiency.
[0009] Optionally, the cleaning assembly includes several sets of cleaning rods corresponding to the air blowing pipe. Each set of cleaning rods has at least two cleaning rods. The cleaning rods are located at the lower end of the cleaning plate, and each set of cleaning plates is arranged around the corresponding air blowing pipe. The lower end of the cleaning rod is provided with an arc-shaped plate adapted to the glass bottle, and a cleaning cloth is provided on the side of the arc-shaped plate near the air blowing pipe.
[0010] By adopting the above technical solution, when the cleaning plate moves, it drives the cleaning rod to move closer to the glass bottle, so that the cleaning rod drives the arc plate to move. After the arc plate comes into contact with the glass bottle, the outer wall of the glass bottle is cleaned by the cleaning cloth.
[0011] Optionally, the cleaning assembly further includes several rotating rings. The rotating rings are located at the upper end of the cleaning rods. The cleaning rods in the same group are fixedly connected to the rotating rings. An annular groove is provided on the inner side of the rotating ring. A positioning ring adapted to the annular groove is fixedly connected to the cleaning plate. The positioning ring is rotatably connected in the annular groove and fits against the inner wall of the annular groove. Several evenly arranged toothed blocks are fixedly connected to the rotating rings along the outer circumference. The same chain is wound around the outer side of all rotating rings. A rotating motor is fixedly provided at the lower end of the cleaning plate. A sprocket is fixedly connected to the output shaft of the rotating motor. The sprocket is located inside the chain and meshes with the chain.
[0012] By adopting the above technical solution, the rotating motor drives the sprocket to rotate. Through the meshing of the sprocket and the chain, the sprocket drives the chain to rotate. Under the cooperation of the positioning ring and the annular groove, the chain drives the rotating ring to rotate through the meshing of the tooth block. The rotating ring drives the cleaning rod to rotate. When the cleaning rod rotates, it drives the cleaning cloth to rotate along the outer edge of the glass bottle through the arc plate, which helps to improve the cleaning effect on the outer wall of the glass bottle.
[0013] Optionally, the air blowing pipe is provided with a plurality of exhaust holes along the circumference, and the exhaust holes are connected to the air blowing holes.
[0014] By adopting the above technical solution, the airflow is blown out along the exhaust hole towards the inner wall of the proportional flat surface, which helps to improve the cleaning efficiency of the air blowing pipe.
[0015] Optionally, the upper end of the cleaning plate is provided with a dust suction plate, a cavity is opened in the dust suction plate, an electrostatic plate is provided in the cavity, and a suction pipe is fixedly connected to the lower end of the dust suction plate. The suction pipe is sleeved on the outside of the blowing pipe, and an annular opening communicating with the cavity is formed between the suction pipe and the blowing pipe. The annular opening is coaxial with the blowing pipe, and the dust suction plate has an exhaust port communicating with the cavity in the side.
[0016] By adopting the above technical solution, when cleaning the inner wall of the glass bottle, the airflow inside the glass bottle passes through the annular opening and enters the cavity inside the dust suction plate along the suction pipe, and is discharged along the exhaust port. The dust is then adsorbed by the electrostatic plate, thereby cleaning the dust.
[0017] Optionally, a collection box is slidably connected to the position where the dust collection plate opens the exhaust port. The collection box has a receiving cavity that communicates with the exhaust port. An air outlet is opened on the side of the collection box away from the exhaust port. The collection box is equipped with a filter screen corresponding to the air outlet.
[0018] By adopting the above technical solution, the airflow enters the receiving cavity of the collection box after passing through the exhaust port, and is finally discharged along the exhaust port. When there are large impurities in the airflow that are not easily adsorbed by the electrostatic plate, the impurities are filtered by the filter screen, thereby reducing the probability of impurities being scattered in the production environment.
[0019] Optionally, the limiting cavity is provided with two symmetrically arranged clamping blocks. The limiting member has a clamping groove adapted to the clamping blocks. The clamping blocks are located in the clamping grooves. All clamping grooves are arranged in two groups along the width direction of the limiting member. The limiting member has two moving grooves. The clamping grooves in the same group are connected to the corresponding moving grooves. The moving grooves are provided with moving plates. The clamping blocks in the same group of clamping grooves are fixedly connected to the corresponding moving plates. The limiting member is provided with a clamping motor that drives the two moving plates to move closer or further apart.
[0020] By adopting the above technical solution, the clamping motor is operated to drive two moving plates to move along the moving groove, so that the moving plates drive the clamping blocks to move. Under the limiting action of the clamping groove, the two clamping blocks cooperate to clamp the glass bottle in the limiting cavity, so that the limiting component is suitable for glass bottles of different diameters.
[0021] Optionally, the frame is provided with an intermittent plate near the input end of the conveying device. The intermittent plate is located on the side of the positioning plate at the input end of the conveying device that is away from the limiting member. The intermittent plate is located directly above the conveying device. The frame is provided with a driving member four that drives the intermittent plate to move closer to the conveying device.
[0022] By adopting the above technical solution, when the glass bottle moves along the input end of the conveying device, the positioning plate near the input end blocks the glass bottle under the drive of the first drive component. Then, the fourth drive component moves the partition plate down, so that the partition plate and the positioning plate cooperate to separate the arranged glass bottle from the other glass bottles, which helps to reduce the probability of misalignment caused by the glass bottles accumulating and colliding at the input end of the conveying device.
[0023] In summary, this application includes at least one of the following beneficial technical effects of the glass bottle bulk cleaning equipment:
[0024] Glass bottles move from the input end to the output end of the conveyor. As the first row of bottles passes the positioning plate near the input end of the conveyor, supported by the frame, the first drive unit moves two sets of positioning plates downwards, allowing the bottles to enter between them. After the bottles contact the positioning plate near the output end, the second drive unit moves the limiting member downwards. As the limiting member moves, the bottles are inserted into the corresponding limiting cavities. The limiting member limits the bottles through these cavities, ensuring the bottle opening aligns with the air blowing pipe. The third drive unit moves the cleaning plate downwards, causing it to pull the air blowing pipe into the bottle opening. The air compressor delivers airflow into the air blowing pipe, which then blows the air out through the air blowing holes into the bottle, cleaning the inner wall of the bottle. Simultaneously, the cleaning assembly cleans the outer wall of the bottle. Cleaning the bottles requires no manual intervention and is performed in batches, improving efficiency.
[0025] When the cleaning plate moves, it moves the cleaning rod closer to the glass bottle, causing the cleaning rod to move the curved plate. After the curved plate comes into contact with the glass bottle, the outer wall of the glass bottle is cleaned by the cleaning cloth.
[0026] The rotating motor drives the sprocket to rotate. Through the meshing of the sprocket and the chain, the sprocket drives the chain to rotate. Under the cooperation of the positioning ring and the annular groove, the chain drives the rotating ring to rotate through the meshing of the tooth block. The rotating ring drives the cleaning rod to rotate. When the cleaning rod rotates, it drives the cleaning cloth to rotate along the outer edge of the glass bottle through the arc plate, which helps to improve the cleaning effect on the outer wall of the glass bottle. Attached Figure Description
[0027] Figure 1 This is a schematic diagram of the overall structure of the embodiment.
[0028] Figure 2 This is a schematic diagram designed to highlight the structure of the limiting component.
[0029] Figure 3 This is a schematic diagram designed to highlight the structure of the cleanup components.
[0030] Figure 4 This is a schematic diagram designed to highlight the internal structure of the dust collection panel.
[0031] Explanation of reference numerals in the attached drawings: 1. Frame; 10. Glass bottle; 11. Conveying device; 2. Positioning plate; 21. Drive component one; 3. Limiting component; 31. Limiting cavity; 32. Drive component two; 33. Clamping block; 331. Clamping groove; 34. Moving plate; 341. Moving groove; 35. Clamping motor; 4. Cleaning plate; 41. Air blowing pipe; 411. Air blowing hole; 412. Exhaust hole; 42. Air compressor; 43. Drive component three; 44. Positioning ring; 5. Cleaning plate; 6. Cleaning ring; 7. Cleaning ring; 8. Cleaning ring; 9. Cleaning ring; 10. Glass bottle; 11. Conveying device; 12. Conveying device; 13. Glass bottle; 14. Conveying device; 15. Conveying device; 16. Conveying device; 17. Conveying device; 18. Conveying device; 19. Conveying device; 10. Conveying device; 10. Conveying device; 11. Conveying device; 12. Conveying device; 13. Conveying device; 14. Conveying device; 15. Conveying device; 16. Conveying device; 17. Conveying device; 18. Conveying device; 19. Conveying device; 10. Conveying device; 10. Conveying device; 11. Conveying device; 12 ... Components: 51. Cleaning rod; 52. Arc plate; 561. Sprocket; 6. Dust suction plate; 61. Cavity; 62. Suction pipe; 621. Annular opening; 63. Static plate; 64. Exhaust port; 65. Collection box; 53. Cleaning cloth; 54. Rotating ring; 541. Annular groove; 542. Tooth block; 55. Chain; 56. Rotating motor; 651. Receiving cavity; 652. Air outlet; 653. Filter screen; 7. Intermittent plate; 71. Drive component four. Detailed Implementation
[0032] The present application will be further described in detail below with reference to all the accompanying drawings.
[0033] This application discloses a batch cleaning device for glass bottles. Example
[0034] Reference Figure 1 and Figure 2 A batch cleaning device for glass bottles 10 includes a rectangular frame 1 made of stainless steel, which has a certain strength and hardness. A conveying device 11, which is a conveyor belt, is installed at the lower end of the frame 1. Multiple neatly arranged glass bottles 10 are placed on the conveying device 11, and the conveying device 11 drives the glass bottles 10 through the middle of the frame 1.
[0035] Reference Figure 1 and Figure 2 The frame 1 is equipped with two sets of positioning plates 2. One set of positioning plates 2 is located at the input end of the conveying device 11, above the conveying device 11. The frame 1 is equipped with a drive component 21 that moves the positioning plates 2 downwards. After the conveying device 11 carries the glass bottles 10 through the lower end of the positioning plates 2, the operator moves the positioning plates 2 downwards using the drive component 21, preventing other glass bottles 10 from entering below the frame 1. The other set of positioning plates 2 is located near the output end of the conveying device 11 and is equipped with the same drive component 21 as described above. The drive component 21 is a cylinder. The operator again manipulates the drive component 21 to move the positioning plates 2 downwards, preventing the glass bottles 10 from entering below the frame 1.
[0036] Reference Figure 1 and Figure 2The frame 1 is equipped with a limiting member 3, which is located near the output end of the frame 1 and is parallel to the positioning plate 2. The limiting member 3 has multiple limiting cavities 31 along its length, and the placement position of the glass bottles 10 on the conveyor belt corresponds to the limiting cavities 31. The frame 1 is equipped with a second driving member 32 that moves the limiting member 3 towards the glass bottles 10. The driving member 32 moves the limiting member 3 towards the glass bottles 10, causing it to be projected onto the outside of the bottle opening through the limiting cavities 31. As the limiting member 3 continues to move downwards, the body of the glass bottles 10 enters the limiting cavity 31. The limiting cavity 31 is circular, and its diameter matches the diameter of the glass bottle body. When the glass bottles 10 are tilted, the limiting member 3 adjusts the glass bottles 10 through the limiting cavity 31, ensuring that the glass bottles 10 are neatly arranged.
[0037] Reference Figure 1 and Figure 3 The frame 1 is equipped with a cleaning plate 4, which is located above the limiting member 3. The cleaning plate 4 is rectangular and has multiple air blowing pipes 41 along its length. The number of glass bottles 10 in the limiting cavity 31 corresponds to the number of air blowing pipes 41. The air blowing pipes 41 are located directly above the limiting cavity 31 and correspond one-to-one with the limiting cavity 31. The frame 1 is equipped with a driving member 3 43, which moves the cleaning plate 4 towards the conveyor device 11. The driving member 3 43 is a cylinder. The operator manipulates the driving member 3 43 to move the cleaning plate 4 towards the conveyor belt, thereby causing the cleaning plate 4 to move the air blowing pipes 41 one by one into the mouth of the corresponding glass bottle 10.
[0038] Reference Figure 1 and Figure 4 An air compressor 42 is installed at the upper end of the frame 1. The air compressor 42 is connected to all the air blowing pipes 41. The operator operates the air compressor 42 to deliver high-speed gas into the air blowing pipes 41. The air blowing pipes 41 have air blowing holes 411. The airflow enters the glass bottle 10 along the air blowing holes 411 and then cleans the inner wall of the glass bottle 10 through the airflow. The air blowing pipes 41 have multiple evenly arranged exhaust holes 412 around the circumference. The exhaust holes 412 are connected to the air blowing holes 411. The airflow is sprayed out towards the inner wall of the glass bottle 10 along the exhaust holes 412, thereby improving the cleaning efficiency of the air blowing pipes 41.
[0039] Reference Figure 1 and Figure 4 A dust-collecting plate 6 is installed on the upper end of the cleaning plate 4, and multiple suction pipes 62 are provided on the lower end of the dust-collecting plate 6. The suction pipes 62 are evenly arranged along the length of the dust-collecting plate 6. The dust-collecting plate 6 has a cavity 61, and the suction pipes 62 are connected to the cavity 61. The suction pipes 62 pass through the cleaning plate 4 and cover the outside of the blowing pipe 41. The diameter of the suction pipe 62 is larger than the diameter of the blowing pipe 41, and the gap between the suction pipe 62 and the blowing pipe 41 forms an annular opening.
[0040] Reference Figure 1 and Figure 4 The lower end of the air blowing pipe 41 abuts against the mouth of the glass bottle 10. When air is blown into the glass bottle 10, the airflow carrying dust and debris enters the suction pipe 62 through the annular opening 621 and then enters the cavity 61 of the dust collection plate 6 along the suction pipe 62. An electrostatic plate 63 is provided in the cavity 61, which adsorbs and cleans the dust and fine debris in the airflow. Exhaust ports 64 are opened at both ends along the length of the dust collection plate 6, and the gas in the cavity 61 is discharged through the exhaust ports 64.
[0041] Reference Figure 1 and Figure 4 A collection box 65 is slidably connected to the dust collection plate 6 at the position where the exhaust port 64 is located. The collection box 65 has a receiving cavity 651. Airflow enters the receiving cavity 651 after passing through the exhaust port 64. The collection box 65 has an air outlet 652, which connects the receiving cavity 651 to the outside. The airflow in the receiving cavity 651 is discharged along the air outlet 652. The collection box 65 is equipped with a filter screen 653 along the air outlet 652. The filter screen 653 intercepts impurities in the airflow that are not adsorbed by the electrostatic plate 63, which helps to reduce the probability that impurities in the glass bottle 10 will re-enter the construction environment and affect other glass bottles 10.
[0042] Reference Figure 1 and Figure 4 The cleaning plate 4 has multiple sets of cleaning rods 51 at its lower end. Each set of cleaning rods 51 corresponds to one air blowing pipe 41, and each set of cleaning rods 51 contains at least two cleaning rods 51. Each set of cleaning rods 51 is equipped with the same rotating ring 54. The cleaning rods 51 are fixedly connected to the rotating ring 54 and are evenly distributed along the circumference of the cleaning ring. The rotating ring 54 is sleeved on the outside of the air blowing pipe 41, and the cleaning rods 51 are distributed along the circumference of the air blowing pipe. A positioning ring 44 is fixed at the lower end of the cleaning plate 4. The inner wall of the rotating ring 54 has an annular groove 541 that fits the positioning ring 44. The positioning ring 44 is located in the annular groove 541 and fits against the inner wall of the annular groove 541.
[0043] Reference Figure 1 and Figure 4The cleaning plate 4 limits the rotation ring 54 via a positioning ring 44, causing the rotating ring 54 and cleaning rod 51 to move when the cleaning plate 4 moves. Under the limiting action of the positioning ring 44, the rotating ring 54 drives the cleaning rod 51 to rotate around its own circumference. Multiple evenly arranged toothed blocks 542 are circumferentially fixedly connected to the outer side of each rotating ring 54. All rotating rings 54 are wound with the same chain 55, which meshes with the toothed blocks 542. A rotating motor 56 is installed at the lower end of the cleaning plate 4. A sprocket 561 is coaxially fixed to the output shaft of the rotating motor 56. The operator manipulates the rotating motor 56 to drive the sprocket 561 to rotate. The sprocket 561 is located inside the chain 55, and the chain 55 meshes with the sprocket 561. When the sprocket 561 rotates, it drives the chain 55 to rotate, which in turn drives the rotating ring 54 to rotate through the meshing action of the chain 55 and the toothed blocks 542. This causes the rotating ring 54 to drive the corresponding cleaning rod 51 to rotate.
[0044] Reference Figure 1 and Figure 4 The lower end of the cleaning rod 51 is fixed with an arc-shaped plate 52 adapted to the glass bottle 10. When the cleaning rod 51 moves, it drives the arc-shaped plate 52 to move. When the cleaning plate 4 approaches the conveying decoration, the cleaning rod 51 drives the arc-shaped plate 52 to move to the outside of the glass bottle 10. A cleaning cloth 53 is provided on the side of the arc-shaped plate 52 near the glass bottle 10. When the rotating ring 54 rotates, the arc-shaped plate 52 drives the cleaning cloth 53 to clean the glass bottle 10 along the outside of the glass bottle 10, thereby realizing the simultaneous cleaning of the inner and outer walls of the glass bottle 10. Batch cleaning of the glass bottles 10 is beneficial to improving the efficiency of cleaning the glass bottles 10.
[0045] Reference Figure 1 and Figure 2 Each limiting cavity 31 is provided with two clamping blocks 33, which are symmetrically arranged around the axis of the limiting cavity 31. The limiting member 3 has clamping grooves 331 for accommodating the clamping blocks 33. All clamping blocks 33 on the limiting member 3 are arranged in two groups, and any group of clamping blocks 33 is located within the same axis. The limiting member 3 has two moving grooves 341, which correspond to the two groups of clamping blocks 33 respectively, and are connected to the clamping grooves 331 where all corresponding clamping blocks 33 are located. A moving plate 34 is provided in the moving groove 341, which is slidably connected to the limiting member 3. Each clamping block 33 is fixedly connected to the corresponding moving plate 34. When the moving plate 34 moves, it drives the clamping blocks 33 to move.
[0046] Reference Figure 1An intermittent plate 7 is located near the input end of the frame 1, above the conveying device 11. The frame 1 is equipped with a drive component 4 71 that drives the intermittent plate 7 towards the conveying device 11. The drive component 4 is a motor. The intermittent plate is located on the side of the positioning plate 2 away from the limiting member 3. The distance between the intermittent plate and the positioning plate 2 is adapted to the outer diameter of the glass bottle 10. The operator moves the intermittent plate downward by driving component 4 71, so that the intermittent plate cooperates with the positioning plate 2 to separate the glass bottle 10 that is in contact with the positioning plate 2 from the other glass bottles 10.
[0047] Reference Figure 1 and Figure 3 After cleaning is completed, the cleaning plate 4 is moved upward by the driving component 33, and the limiting component 3 is moved upward by the driving component 22, thereby releasing the positioning of the glass bottle 10. The driving component is manipulated to move the two sets of positioning plates 2 upward, so that the cleaned glass bottle 10 at the output end is moved out, and the uncleaned glass bottle 10 at the input end moves along the conveying device 11 towards the limiting component 3. The partition plate cooperates with the positioning plate 2 to separate the glass bottles 10 at the input end, which helps to reduce the probability of misalignment caused by the accumulation and collision of glass bottles 10 at the input end of the conveying device 11.
[0048] Reference Figure 1 and Figure 2 The limiting component 3 is equipped with a driving component 71, which is a motor. The output shaft of the motor is equipped with a bidirectional lead screw. The operator drives the bidirectional lead screw to rotate through the motor. Two movable plates 34 are respectively inserted through the two ends of the bidirectional lead screw, so that when the bidirectional lead screw rotates, it drives the two movable plates 34 to move closer or further away from each other. In turn, the two movable plates 34 drive two sets of clamping plates to clamp the glass bottle 10, so that the limiting component 3 can be used for glass bottles 10 of different diameters, which helps to improve the applicability of the limiting component 3.
[0049] The implementation principle of a batch cleaning device for glass bottles 10 in this application embodiment is as follows: the glass bottles 10 are moved from the input end to the output end by the conveying device 11, and the first driving component 21 drives the two sets of positioning plates 2 to approach the conveying device 11. Under the drive of the conveying device 11, the glass bottles 10 abut against the positioning plates 2 near the output end. The second driving component 32 drives the limiting component 3 to move down, so that the glass bottles 10 are inserted into the corresponding limiting cavity 31. The clamping motor 35 drives the two moving plates 34 to approach each other, and the moving plates 34 drive the clamping block 33 to clamp the glass bottles 10. The driving component 43 moves the cleaning plate 4 closer to the glass bottle 10, so that the air tube is inserted into the corresponding glass bottle 10. The air compressor 42 delivers airflow into the air tube. After the airflow is blown out along the blowing hole 411 and the exhaust hole 412, it cleans the inner wall of the glass bottle 10. The cleaned airflow enters the collection box 65 along the suction pipe 62 for processing. The rotating motor 56 drives the sprocket 561 to rotate, which in turn drives all the rotating rings 54 to rotate through the chain 55. The rotating rings 54 drive the corresponding cleaning rods 51 to rotate around the glass bottle 10. When the cleaning rods 51 rotate, the arc plate 52 drives the cleaning cloth 53 to clean the outer wall of the glass bottle 10. The glass bottles 10 are cleaned in batches, which helps to improve the efficiency of cleaning the glass bottles 10.
[0050] 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 glass bottle batch cleaning apparatus, characterized by, The utility model relates to a glass bottle cleaning device, including: Rack (1), the rack (1) is rectangular, and the lower end of rack (1) is equipped with conveying device (11) for conveying glass bottle (10); Two groups of positioning plate (2) are located respectively at the input end and the output end of conveying device (11) and are located directly above conveying device (11), and rack (1) is equipped with drive part one (21) for driving positioning plate (2) to be close to conveying device (11); Limiting piece (3) is located between two groups of positioning plate (2) and is close to the output end of conveying device (11), and limiting piece (3) is opened along the length direction and is equipped with a plurality of limiting cavities (31) corresponding to glass bottle (10) one to one, and when glass bottle (10) is located on conveying device (11), the distribution track is same as the arrangement track of limiting cavity (31), and when glass bottle (10) is in contact with the positioning plate (2) close to the output end of conveying device (11), glass bottle (10) is located directly below the corresponding limiting cavity (31), limiting cavity (31) penetrates limiting piece (3) along the vertical direction, and rack (1) is equipped with drive part two (32) for driving limiting piece (3) to be close to conveying device (11); Cleaning plate (4) is located above limiting piece (3), and the lower end of cleaning plate (4) is equipped with a plurality of blowing pipes (41) corresponding to limiting cavity (31) one to one, blowing pipe (41) is opened along the axial direction and is equipped with blowing hole (411), the upper end of cleaning plate (4) is equipped with air compressor (42) for conveying gas to blowing pipe (41), rack (1) is equipped with drive part three (43) for driving cleaning plate (4) to be close to glass bottle (10), and cleaning plate (4) is equipped with cleaning assembly (5) for cleaning the outer wall of glass bottle (10).
2. A glass bottle batch cleaning apparatus as claimed in claim 1, wherein: The cleaning assembly (5) includes a plurality of cleaning rods (51) corresponding to the blowing pipes (41), each group of cleaning rods (51) includes at least two cleaning rods (51), the cleaning rods (51) are arranged at the lower end of the cleaning plate (4), and each group of cleaning plates (4) is arranged circumferentially along the corresponding blowing pipe (41), the lower end of the cleaning rod (51) is provided with an arc-shaped plate (52) matched with the glass bottle (10), and the side of the arc-shaped plate (52) close to the blowing pipe (41) is provided with a cleaning cloth (53).
3. A glass bottle batch cleaning apparatus as defined in claim 1, wherein: The cleaning assembly (5) further includes a plurality of rotating rings (54), the rotating rings (54) are located at the upper end of the cleaning rod (51), the cleaning rods (51) in the same group are fixedly connected with the rotating rings (54), the inner side of the rotating ring (54) is provided with an annular groove (541), the cleaning plate (4) is fixedly connected with a positioning ring (44) matched with the annular groove (541), the positioning ring (44) is rotatably connected in the annular groove (541) and abuts the inner wall of the annular groove (541), a plurality of evenly arranged tooth blocks (542) are fixedly connected circumferentially on the outer side of the rotating ring (54), the same chain (55) is wound on the outer side of all the rotating rings (54), and a rotating motor (56) is fixedly arranged at the lower end of the cleaning plate (4), the output shaft of the rotating motor (56) is fixedly connected with a sprocket (561), and the sprocket (561) is located on the inner side of the chain (55) and engages with the chain (55).
4. A glass bottle batch cleaning apparatus as defined in claim 1, wherein: The blowing pipe (41) is provided with a plurality of exhaust holes (412) in the circumferential direction, which are communicated with the blowing holes (411).
5. A glass bottle batch cleaning apparatus as defined in claim 1, wherein: The upper end of the cleaning plate (4) is provided with a dust suction plate (6), the dust suction plate (6) is provided with a cavity (61) therein, the cavity (61) is provided with an electrostatic plate (63), the lower end of the dust suction plate (6) is fixedly connected with a suction pipe (62), the suction pipe (62) is sleeved outside the blowing pipe (41), and the suction pipe (62) and the blowing pipe (41) form an annular port (621) communicated with the cavity (61), the annular port (621) is coaxial with the air pipe, and the dust suction plate (6) is provided with an exhaust port (64) communicated with the cavity (61) in the lateral direction.
6. A glass bottle batch cleaning apparatus as claimed in claim 5, wherein: The position, where the dust suction plate (6) is provided with the exhaust port (64), is slidably connected with a collection box (65), the collection box (65) is provided with an accommodating cavity (651) communicated with the exhaust port (64), the side, away from the exhaust port (64), of the collection box (65) is provided with an air outlet (652), and the collection box (65) is provided with a filter screen (653) corresponding to the air outlet (652).
7. A glass bottle batch cleaning apparatus as defined in claim 1, wherein: The limiting cavity (31) is provided with two symmetrically arranged clamping blocks (33), the limiting piece (3) is provided with clamping grooves (331) matched with the clamping blocks (33), the clamping blocks (33) are located in the clamping grooves (331), all the clamping grooves (331) are arranged in two groups in the width direction of the limiting piece (3), the limiting piece (3) is provided with two moving grooves (341), the clamping grooves (331) in the same group are communicated with the corresponding moving grooves (341), the moving grooves (341) are provided with moving plates (34), the clamping blocks (33) in the same group of clamping grooves (331) are fixedly connected with the corresponding moving plates (34), and the limiting piece (3) is provided with a clamping motor (35) for driving the two moving plates (34) to move close to or away from each other.
8. A glass bottle batch cleaning apparatus as defined in claim 1, wherein: The rack (1) is provided with an intermittent plate (7) close to the input end of the conveying device (11), the intermittent plate (7) is located on the side, away from the limiting piece (3), of the positioning plate (2) at the input end of the conveying device (11), the intermittent plate (7) is located directly above the conveying device (11), and the rack (1) is provided with a fourth driving piece (71) for driving the intermittent plate (7) to move close to the conveying device (11).
Citation Information
Patent Citations
Rapid wine bottle washing and airing device for wine making
CN213826289U
Glass bottle filling equipment for combined oil for repairing skin barrier
CN215855067U