Riveting and cleaning device for cylindrical battery
By designing a cylindrical battery riveting cleaning device with a dual cleaning mechanism, the device utilizes the cooperation of a turntable mechanism and a suction mechanism to achieve two cleaning operations on the cylindrical battery. This solves the problems of low cleaning efficiency and poor results of existing devices, improves cleaning quality and efficiency, and enhances the stability and safety of the device.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HUIZHOU YILING INTELLIGENT EQUIP CO LTD
- Filing Date
- 2025-05-14
- Publication Date
- 2026-04-24
AI Technical Summary
Existing automated cylindrical battery cleaning devices are inadequate in terms of cleaning efficiency and effectiveness, have complex structures, do not clean thoroughly enough, and require high labor intensity, making them difficult to meet the needs of modern industrial production.
A cylindrical battery riveting cleaning device was designed, comprising a turntable mechanism, first and second cleaning mechanisms, and an industrial vacuum cleaner. Through the cooperation of the dual cleaning mechanism and the suction mechanism, the cylindrical battery is cleaned twice. The industrial vacuum cleaner is used to suck up residual dust. The cooperation between the suction mechanism and the turntable mechanism improves cleaning efficiency and quality.
It significantly improves the cleaning efficiency and quality of cylindrical batteries, ensuring that oil, dust and impurities are thoroughly removed. Its simple structure reduces waiting time in intermediate steps and improves the stability and safety of the production process.
Smart Images

Figure CN224157449U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of cylindrical battery processing technology, and specifically to a cylindrical battery riveting and cleaning device. Background Technology
[0002] In modern industrial production, cylindrical batteries are a common power component widely used in various electronic devices. To ensure battery quality and performance, cylindrical batteries require rigorous cleaning after crimping to remove surface oil, dust, and other impurities. Traditional cylindrical battery cleaning methods often rely on manual operation or simple mechanical devices, which suffer from low efficiency, inconsistent cleaning results, and high labor intensity. With the development of automation technology, automated cleaning equipment has gradually replaced traditional cleaning methods. However, existing automated cleaning devices still have some shortcomings when handling cylindrical batteries. For example, some automated cleaning devices have relatively complex structures, and due to design limitations, there is still room for improvement in cleaning efficiency when handling large quantities of batteries. Utility Model Content
[0003] The purpose of this invention is to provide a cylindrical battery riveting cleaning device that can improve cleaning efficiency, achieve good cleaning results, and has a simple structure.
[0004] A cylindrical battery riveting and cleaning device includes a turntable mechanism, a first cleaning mechanism, a second cleaning mechanism, and an industrial vacuum cleaner. The first and second cleaning mechanisms are installed on the periphery of the turntable mechanism and are connected to the industrial vacuum cleaner. The turntable mechanism is provided with a plurality of suction mechanisms. Each suction mechanism includes a sliding component and an adsorption component. The adsorption component is connected to the sliding component and is used to adsorb cylindrical batteries.
[0005] In the above scheme, both the first and second cleaning mechanisms are connected to an industrial vacuum cleaner. The industrial vacuum cleaner sucks out residual dust and other contaminants, thus cleaning the cylindrical batteries after they have been pressed. The suction mechanism can pick up multiple cylindrical batteries. A turntable mechanism rotates the suction mechanism with the cylindrical batteries to the position of the first cleaning mechanism for a first cleaning. After that, the suction mechanism removes the cylindrical batteries, and the turntable mechanism transports the cleaned cylindrical batteries to the second cleaning mechanism for a second cleaning. After the second cleaning, the suction mechanism removes the cylindrical batteries for the next process. The overall structure is simple. The cooperation of several suction mechanisms and turntable mechanisms makes the transfer of batteries between the first and second cleaning more rapid and smooth, reducing the waiting time in intermediate steps and thus significantly improving the cleaning efficiency of the cylindrical batteries. The sequential arrangement of the first and second cleaning mechanisms realizes two cleanings of the cylindrical batteries. This dual cleaning mechanism ensures that oil, dust and other impurities on the surface of the cylindrical batteries can be thoroughly removed, improving the cleaning quality of the cylindrical batteries.
[0006] Furthermore, the first cleaning mechanism includes a first mounting base, on which a first placement component is mounted, and a first cleaning component is suspended above the first placement component, the first cleaning component being connected to the upper part of the first mounting base.
[0007] In the above scheme, the first placement component is used to place the cylindrical battery. When the suction mechanism places the cylindrical battery in the position of the first placement component, the first cleaning component cleans multiple cylindrical batteries at the same time. The first cleaning component is suspended above the first placement component, which facilitates the alignment of the first cleaning component and the first placement component, thereby enabling better cleaning of the crimped cylindrical battery and ensuring the quality and efficiency of cleaning.
[0008] Furthermore, the first placement component includes a first connecting plate and a first placement box, the first placement box being mounted on the first connecting plate, and the first placement box having a plurality of first placement slots inside.
[0009] In the above scheme, the first connecting plate enables the first placement box to be installed at a suitable height on the first mounting base, and the cylindrical first placement slot is used to place the cylindrical battery, thereby ensuring the stability of the cylindrical battery.
[0010] Furthermore, the first cleaning component includes a first driving component and a first cleaning box. The first cleaning box is connected to the first driving component. The first driving component is used to drive the first cleaning box to rise and fall. The first cleaning box includes a dust removal hood and a connection port. One end of the connection port is connected to the dust removal hood, and the other end of the connection port is connected to the suction port of the industrial vacuum cleaner.
[0011] In the above scheme, the first cleaning box is used to perform a single cleaning of the cylindrical battery. After the suction mechanism places the cylindrical battery in the first placement box, the first driving component drives the first cleaning box to descend. The first cleaning box descends to a suitable position, at which point the dust cover covers the cylindrical battery, and the bottom of the dust cover abuts against the first placement box, so that the cylindrical battery is in a closed space. Then, the industrial vacuum cleaner is started to clean the cylindrical battery. After cleaning, the first driving component drives the first cleaning box to rise and reset. The suction mechanism then picks up the cylindrical battery, and the turntable mechanism rotates it to the position of the second cleaning mechanism.
[0012] Furthermore, the second cleaning mechanism includes a second mounting base, on which a second placement component is mounted, and a second cleaning component is suspended above the second placement component, the second cleaning component being connected to the upper part of the second mounting base.
[0013] In the above scheme, the second placement component is used to place the cylindrical battery after one cleaning. When the suction mechanism places the cylindrical battery in the position of the second placement component, the second cleaning component cleans multiple cylindrical batteries at the same time. The second cleaning component is suspended above the second placement component, which facilitates the alignment of the second cleaning component and the second placement component and can improve the cleaning efficiency.
[0014] Furthermore, the second placement component includes a second connecting plate and a second placement box, the second placement box being mounted on the second connecting plate, and the second placement box having a plurality of second placement slots; the second cleaning component includes a second driving component and a second cleaning box, the second cleaning box being connected to the second driving component, and the second driving component being used to drive the second cleaning box to rise and fall.
[0015] In the above scheme, the second placement slot is cylindrical and used to place cylindrical batteries. The second connecting plate is connected to the second mounting base so that the second placement box is installed in a suitable position. After the suction mechanism places the cylindrical battery in the second placement box, the second driving component drives the second cleaning box to descend. The second cleaning box descends to a suitable position to clean the cylindrical battery. Then, the second driving component drives the second cleaning box to rise and reset. The suction mechanism picks up the cylindrical battery, and the turntable mechanism moves the cylindrical battery away from the second cleaning mechanism, thus completing the second cleaning of the cylindrical battery.
[0016] Furthermore, the sliding assembly includes a linear slide module and a movable base plate, the movable base plate being connected to the linear slide module. The adsorption assembly includes a suction plate body and a vacuum connector, the bottom of the suction plate body being connected to the movable base plate, the suction plate body having several slots, the inner wall of the slots being fitted with vacuum suction cups, and the vacuum suction cups being connected to the vacuum connector.
[0017] In the above solution, the linear slide module can be a pneumatic slide. The linear slide module can drive the movable base plate to move horizontally. Since the suction plate body is connected to the movable base plate, the movable base plate can drive the suction plate body to move horizontally towards or away from the cylindrical battery. When the inner wall of the groove of the suction plate body is in contact with the cylindrical battery, the vacuum connector can make the vacuum suction cup generate adsorption force. Multiple vacuum suction cups can simultaneously adsorb the cylindrical battery, ensuring stable gripping of the battery, reducing the risk of the battery falling during transportation, and improving the stability and safety of the production process.
[0018] Furthermore, the slot is arc-shaped.
[0019] In the above scheme, the arc-shaped slot is to allow the suction plate to fit better with the cylindrical battery. Each cylindrical battery is positioned in the arc-shaped slot, which also helps to better position the cylindrical battery and ensures that the cylindrical battery on the suction mechanism can be accurately placed into the first and second placement boxes.
[0020] Furthermore, the turntable mechanism includes a reducer, a rotation drive, a rotation shaft, and a turntable body. The output end of the rotation drive is connected to the reducer, one end of the rotation shaft is connected to the reducer, and the other end of the rotation shaft is connected to the turntable body.
[0021] In the above scheme, after the rotating drive component outputs power, the reducer can adjust the rotation speed of the rotating drive component according to specific needs, so that the turntable body can run stably at a suitable speed, which improves the working accuracy and adaptability of the entire mechanism, thereby ensuring that the suction mechanism is accurately transmitted to the first cleaning mechanism and the second cleaning structure.
[0022] Furthermore, it also includes a storage platform, which is installed on one side of the turntable mechanism. The storage platform is equipped with a storage box for placing cylindrical batteries.
[0023] In the above scheme, the cleaned cylindrical batteries are transported to the storage platform by a suction mechanism and a turntable mechanism, where they are temporarily stored in a storage box, facilitating their entry into the next process.
[0024] This utility model discloses a cylindrical battery riveting and cleaning device, which has the advantages of improving cleaning efficiency, good cleaning effect, and simple structure. Both the first and second cleaning mechanisms are connected to an industrial vacuum cleaner. The industrial vacuum cleaner sucks up residual dust and other contaminants, thereby cleaning the riveted cylindrical batteries. The suction mechanism can pick up multiple cylindrical batteries. A turntable mechanism rotates the suction mechanism with the batteries to the position of the first cleaning mechanism for a first cleaning. The batteries are then removed by the suction mechanism, and the turntable mechanism transports the first-cleaned batteries to the second cleaning mechanism for a second cleaning. After the second cleaning, the batteries are removed by the suction mechanism for the next process. The overall structure is simple. The cooperation of several suction mechanisms and the turntable mechanism makes the transfer of batteries between the first and second cleaning processes faster and smoother, reducing waiting time in intermediate steps and significantly improving the cleaning efficiency of the cylindrical batteries. The sequential arrangement of the first and second cleaning mechanisms achieves two cleanings of the cylindrical batteries. This dual cleaning mechanism ensures that oil, dust, and other impurities on the surface of the cylindrical batteries are thoroughly removed, improving the cleaning quality. Attached Figure Description
[0025] Figure 1 This is a perspective view of a cylindrical battery riveting and cleaning device according to one embodiment.
[0026] Figure 2 This is a schematic diagram of the first cleaning mechanism structure according to one embodiment.
[0027] Figure 3 This is a schematic diagram of an industrial vacuum cleaner according to one embodiment.
[0028] Figure 4 This is a schematic diagram of the turntable mechanism and the suction mechanism according to one embodiment.
[0029] Reference numerals: 1. Turntable mechanism; 11. Reducer; 12. Rotation drive component; 13. Rotation shaft; 14. Turntable body; 2. First cleaning mechanism; 21. First mounting base; 22. First placement component; 221. First connecting plate; 222. First placement box; 2221. First placement slot; 23. First cleaning component; 231. First drive component; 232. First cleaning box; 2321. Dust removal hood; 2322. Connection port; 3. Second cleaning mechanism; 31. Second mounting base; 32. Second placement component; 33. Second cleaning component; 4. Suction mechanism; 41. Sliding component; 411. Linear slide module; 412. Movable base plate; 42. Adsorption component; 421. Suction plate body; 4211. Slot; 422. Vacuum connector; 5. Storage platform; 6. Storage box; 7. Industrial vacuum cleaner; 71. Suction port. Detailed Implementation
[0030] The following will describe in further detail a cylindrical battery riveting and cleaning device according to specific embodiments and accompanying drawings.
[0031] like Figures 1 to 4 As shown in a preferred embodiment, a cylindrical battery riveting and cleaning device of the present invention includes a turntable mechanism 1, a first cleaning mechanism 2, a second cleaning mechanism 3, and an industrial vacuum cleaner 7. The first cleaning mechanism 2 and the second cleaning mechanism 3 are installed on the periphery of the turntable mechanism 1 and are connected to the industrial vacuum cleaner 7. The turntable mechanism 1 is provided with a plurality of suction mechanisms 4. The suction mechanism 4 includes a sliding component 41 and an adsorption component 42. The adsorption component 42 is connected to the sliding component 41 and is used to adsorb cylindrical batteries. The first cleaning mechanism 2 and the second cleaning mechanism 3 are both connected to the industrial vacuum cleaner 7. The industrial vacuum cleaner 7 sucks out residual dust and other particles, thereby cleaning the cylindrical batteries after they have been pressed. The suction mechanism 4 can pick up multiple cylindrical batteries. When the suction mechanism 4 picks up the batteries, the sliding component 41 moves toward the cylindrical batteries. After the adsorption component 42 adsorbs the cylindrical batteries, the sliding component 41 drives the adsorption component 42 to move in the opposite direction. Similarly, after the adsorption component 42 places the cylindrical batteries on the first cleaning mechanism 2 and the second cleaning mechanism 3, the sliding component 41 will also drive the adsorption component 42 to move in the opposite direction and reset, thereby ensuring the normal operation of the first cleaning mechanism 2 and the second cleaning mechanism 3.
[0032] The turntable mechanism 1 rotates the suction mechanism 4, which holds the cylindrical battery, to the position of the first cleaning mechanism 2 for a first cleaning. The battery is then removed by the suction mechanism 4. The turntable mechanism 1 transports the cleaned battery to the second cleaning mechanism 3 for a second cleaning. After the second cleaning, the battery is removed by the suction mechanism 4 and proceeds to the next process. The overall structure is simple. The cooperation of several suction mechanisms 4 and the turntable mechanism 1 makes the transfer of the battery between the first and second cleaning processes faster and smoother, reducing waiting time in intermediate steps and significantly improving the cleaning efficiency of the cylindrical battery. The sequential arrangement of the first cleaning mechanism 2 and the second cleaning mechanism 3 enables two cleaning cycles for the cylindrical battery. This dual cleaning mechanism ensures that oil, dust, and other impurities on the surface of the cylindrical battery are thoroughly removed, improving the cleaning quality.
[0033] like Figure 1 and Figure 2As shown, in some embodiments, the first cleaning mechanism 2 includes a first mounting base 21, on which a first placement component 22 is mounted. A first cleaning component 23 is suspended above the first placement component 22 and connected to the upper part of the first mounting base 21. The first placement component 22 is used to place cylindrical batteries. When the suction mechanism 4 places the cylindrical batteries in the position of the first placement component 22, the first cleaning component 23 cleans multiple cylindrical batteries simultaneously. The first cleaning component 23 is suspended above the first placement component 22, which facilitates the alignment of the first cleaning component 23 and the first placement component 22, thereby enabling better cleaning of the crimped cylindrical batteries and ensuring the quality and efficiency of cleaning.
[0034] like Figure 1 and Figure 2 As shown, the first placement assembly 22 includes a first connecting plate 221 and a first placement box 222. The first placement box 222 is mounted on the first connecting plate 221, and the first placement box 222 has a plurality of first placement slots 2221 inside. The first connecting plate 221 allows the first placement box 222 to be installed at a suitable height on the first mounting base 21. The cylindrical first placement slots 2221 are used to place cylindrical batteries, thereby ensuring the stability of the cylindrical batteries.
[0035] like Figure 1 and Figure 2 As shown, the first cleaning component 23 includes a first driving component 231 and a first cleaning box 232. The first cleaning box 232 is connected to the first driving component 231. The first driving component 231 is used to drive the first cleaning box 232 to rise and fall. The first cleaning box 232 includes a dust removal hood 2321 and a connection port 2322. One end of the connection port 2322 is connected to the dust removal hood 2321, and the other end of the connection port 2322 is connected to the suction port 71 of the industrial vacuum cleaner 7. The first cleaning box 232 is used to clean the cylindrical battery once. After the suction mechanism 4 places the cylindrical battery into the first placement box 222, the first driving component 231 drives the first cleaning box 232 to descend. The first cleaning box 232 descends to a suitable position, at which time the dust cover 2321 covers the cylindrical battery, and the bottom of the dust cover 2321 abuts against the first placement box 222, so that the cylindrical battery is in a closed space. The connection port 2322 is connected to the suction port 71 through the high temperature vulcanizing tube. Then the industrial vacuum cleaner 7 is started to clean the cylindrical battery. After cleaning, the first driving component 231 drives the first cleaning box 232 to rise and reset. The suction mechanism 4 picks up the cylindrical battery, and then the turntable mechanism 1 rotates it to the position of the second cleaning mechanism 3.
[0036] like Figure 1 and Figure 2As shown, the second cleaning mechanism 3 includes a second mounting base 31, on which a second placement component 32 is mounted. A second cleaning component 33 is suspended above the second placement component 32 and connected to the upper part of the second mounting base 31. The second placement component 32 is used to place cylindrical batteries after one cleaning. When the suction mechanism 4 places the cylindrical batteries in the position of the second placement component 32, the second cleaning component 33 cleans multiple cylindrical batteries simultaneously. The second cleaning component 33 is suspended above the second placement component 32, which facilitates alignment between the second cleaning component 33 and the second placement component 32 and improves cleaning efficiency.
[0037] like Figure 1 and Figure 2 As shown, the second placement assembly 32 includes a second connecting plate and a second placement box. The second placement box is mounted on the second connecting plate and has several second placement slots inside. The second cleaning assembly 33 includes a second driving assembly and a second cleaning box. The second cleaning box is connected to the second driving assembly, which drives the second cleaning box to move up and down. The second placement slots are cylindrical and used to place cylindrical batteries. The second connecting plate is connected to the second mounting base 31, allowing the second placement box to be installed in a suitable position. When the suction mechanism 4 places the cylindrical battery in the second placement box, the second driving assembly drives the second cleaning box to descend. The second cleaning box descends to a suitable position to clean the cylindrical battery. Afterward, the second driving assembly drives the second cleaning box to rise and reset. The suction mechanism 4 then picks up the cylindrical battery, and the turntable mechanism 1 moves the cylindrical battery away from the second cleaning mechanism 3, thus completing the second cleaning of the cylindrical battery.
[0038] like Figure 1 and Figure 2 As shown, the sliding component 41 includes a linear slide module 411 and a movable base plate 412. The movable base plate 412 is connected to the linear slide module 411. The adsorption component 42 includes a suction plate body 421 and a vacuum connector 422. The bottom of the suction plate body 421 is connected to the movable base plate 412. The suction plate body 421 is provided with a plurality of slots 4211. Vacuum suction cups are installed on the inner walls of the slots 4211. The vacuum suction cups are connected to the vacuum connector 422. The linear slide module 411 can be a pneumatic slide, which can drive the movable base plate 412 to move horizontally. Since the suction plate body 421 is connected to the movable base plate 412, the movable base plate 412 can drive the suction plate body 421 to move horizontally toward or away from the cylindrical battery. When the inner wall of the slot 4211 of the suction plate body 421 is in contact with the cylindrical battery, the vacuum connector 422 can make the vacuum suction cup generate suction force. Multiple vacuum suction cups can simultaneously adsorb the cylindrical battery, ensuring stable gripping of the battery, reducing the risk of the battery falling during transportation, and improving the stability and safety of the production process.
[0039] like Figure 1 and Figure 2 As shown, the slot 4211 is arc-shaped. The arc-shaped slot 4211 is designed to allow the suction plate to better fit the cylindrical battery. Each cylindrical battery is positioned in the arc-shaped slot 4211, which also helps to better position the cylindrical battery and ensures that the cylindrical batteries on the suction mechanism 4 can be accurately placed into the first placement box 222 and the second placement box.
[0040] like Figure 1 and Figure 2 As shown, the turntable mechanism 1 includes a reducer 11, a rotation drive 12, a rotation shaft 13, and a turntable body 14. The output end of the rotation drive 12 is connected to the reducer 11, one end of the rotation shaft 13 is connected to the reducer 11, and the other end of the rotation shaft 13 is connected to the turntable body 14. After the rotation drive 12 outputs power, the reducer 11 can adjust the rotation speed of the rotation drive 12 according to specific needs, so that the turntable body 14 can run stably at a suitable speed, improving the working accuracy and adaptability of the entire mechanism, thereby ensuring that the suction mechanism 4 is accurately transmitted to the first cleaning mechanism 2 and the second cleaning structure.
[0041] like Figure 1 and Figure 2 As shown, it also includes a storage platform 5, which is installed on one side of the turntable mechanism 1. The storage platform 5 is equipped with a storage box 6 for placing cylindrical batteries. After cleaning, the cylindrical batteries are transported to the storage platform 5 by the suction mechanism 4 and the turntable mechanism 1, where they are temporarily stored in the storage box 6, facilitating their entry into the next process.
[0042] The present invention relates to a cylindrical battery riveting and cleaning device. The working principle and process are as follows: After riveting, the cylindrical batteries are transported to the cleaning device. The suction mechanism 4 picks up multiple riveted cylindrical batteries and transports them to the first cleaning mechanism 2 for primary cleaning via the turntable mechanism 1. Then, the cylindrical batteries are removed by the suction mechanism 4. The turntable mechanism 1 transports the primary cleaned cylindrical batteries to the second cleaning mechanism 3 for secondary cleaning. After the secondary cleaning is completed, the cylindrical batteries are removed by the suction mechanism 4 and placed on the storage platform 5 with the help of the turntable mechanism 1.
[0043] In the description of this utility model, it should be understood that terms such as "upper", "lower", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", and "outer" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0044] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this utility model, "a plurality of" means two or more, unless otherwise explicitly specified.
[0045] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "joining," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.
[0046] Although the description of this utility model has been given in conjunction with the specific embodiments described above, it is obvious to those skilled in the art that many substitutions, modifications, and variations can be made based on the above description. Therefore, all such substitutions, modifications, and variations are included within the spirit and scope of the appended claims.
Claims
1. A cylindrical battery riveting and cleaning device, characterized in that, The device includes a turntable mechanism, a first cleaning mechanism, a second cleaning mechanism, and an industrial vacuum cleaner. The first and second cleaning mechanisms are installed around the turntable mechanism and are connected to the industrial vacuum cleaner. The turntable mechanism is provided with several suction mechanisms, each suction mechanism including a sliding component and an adsorption component. The adsorption component is connected to the sliding component and is used to adsorb cylindrical batteries.
2. The cylindrical battery riveting and cleaning device according to claim 1, characterized in that, The first cleaning mechanism includes a first mounting base, on which a first placement component is mounted, and a first cleaning component is suspended above the first placement component. The first cleaning component is connected to the upper part of the first mounting base.
3. The cylindrical battery riveting and cleaning device according to claim 2, characterized in that, The first placement component includes a first connecting plate and a first placement box. The first placement box is mounted on the first connecting plate and has a plurality of first placement slots inside.
4. The cylindrical battery riveting and cleaning device according to claim 2, characterized in that, The first cleaning component includes a first drive component and a first cleaning box. The first cleaning box is connected to the first drive component. The first drive component is used to drive the first cleaning box to rise and fall. The first cleaning box includes a dust removal hood and a connection port. One end of the connection port is connected to the dust removal hood, and the other end of the connection port is connected to the suction port of the industrial vacuum cleaner.
5. The cylindrical battery riveting and cleaning device according to claim 1, characterized in that, The second cleaning mechanism includes a second mounting base, on which a second placement component is mounted, and a second cleaning component is suspended above the second placement component. The second cleaning component is connected to the upper part of the second mounting base.
6. The cylindrical battery riveting and cleaning device according to claim 5, characterized in that, The second placement component includes a second connecting plate and a second placement box, the second placement box being mounted on the second connecting plate, and the second placement box having a plurality of second placement slots inside; The second cleaning component includes a second drive component and a second cleaning box. The second cleaning box is connected to the second drive component, and the second drive component is used to drive the second cleaning box to move up and down.
7. The cylindrical battery riveting and cleaning device according to claim 1, characterized in that, The sliding assembly includes a linear slide module and a movable base plate. The movable base plate is connected to the linear slide module. The adsorption assembly includes a suction plate body and a vacuum connector. The bottom of the suction plate body is connected to the movable base plate. The suction plate body has several slots. Vacuum suction cups are installed on the inner walls of the slots. The vacuum suction cups are connected to the vacuum connector.
8. The cylindrical battery riveting and cleaning device according to claim 7, characterized in that, The slot is arc-shaped.
9. The cylindrical battery riveting and cleaning device according to claim 1, characterized in that, The turntable mechanism includes a reducer, a rotation drive, a rotation shaft, and a turntable body. The output end of the rotation drive is connected to the reducer, one end of the rotation shaft is connected to the reducer, and the other end of the rotation shaft is connected to the turntable body.
10. The cylindrical battery riveting and cleaning device according to claim 1, characterized in that, It also includes a storage platform, which is installed on one side of the turntable mechanism. The storage platform is equipped with a storage box for holding cylindrical batteries.