Deburring tool for carbon tank production
By designing a deburring tool for carbon canister production, utilizing a motor-driven movable wheel and a vacuum pump suction device, the problem of burrs affecting the appearance and sealing of carbon canisters was solved, achieving efficient and stable burr removal and collection, and improving production quality and safety.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- TIANJIN SAIAO MEIDE IND & TRADE CO LTD
- Filing Date
- 2025-06-06
- Publication Date
- 2026-05-19
AI Technical Summary
In the existing technology, the production process of carbon canisters has problems such as burrs affecting appearance quality, poor sealing, and wear on parts. Manual deburring is inefficient and of unstable quality, while simple mechanical grinding is not thorough and burrs are easy to fly out and difficult to collect and clean.
A deburring tool for carbon can production was designed, including an operating box and a collection box. The tool uses a motor to drive the rotating wheels, and combines an electric telescopic rod to adjust the position of the scraper and the grinder. The vacuum pump suction device collects the burrs, the lifting device adjusts the height, and the limiting component stabilizes the assembly, thus achieving all-round deburring and burr collection.
It improves deburring efficiency and quality, enhances the production environment and safety, reduces the risk of burr splashing, and improves the overall performance and production efficiency of carbon canister products.
Smart Images

Figure CN224254722U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of carbon canister production technology, and in particular to a deburring tool for carbon canister production. Background Technology
[0002] In automotive fuel evaporation control systems, the carbon canister is a crucial component, and its manufacturing quality directly impacts the adsorption and desorption of fuel vapors. During the production process, burrs often remain on the surface of the formed carbon canister. These burrs not only affect the canister's appearance but can also cause problems such as poor sealing and wear on other components during subsequent assembly, ultimately affecting the performance of the entire fuel evaporation control system.
[0003] Currently, deburring of carbon canisters is mostly done manually or through simple mechanical grinding. Manual deburring is inefficient, labor-intensive, and susceptible to human error, resulting in inconsistent deburring quality. Simple mechanical grinding struggles to fully treat the complex shapes of carbon canisters, leading to incomplete deburring. Furthermore, the resulting burrs tend to scatter, polluting the work environment and increasing the difficulty of collection and cleaning, hindering efficient production. Therefore, there is an urgent need for a production tool that can efficiently and reliably remove burrs from carbon canister surfaces and effectively collect them.
[0004] Therefore, we propose a deburring tool for carbon canister production. Utility Model Content
[0005] The main objective of this invention is to provide a deburring tool for carbon canister production. This tool aims to prevent burrs on the surface of the formed carbon canister from affecting its appearance quality, causing poor sealing during subsequent assembly, and damaging other components. It also aims to avoid these problems affecting the performance of the entire fuel evaporation control system. Furthermore, it addresses the issues of low efficiency and unstable quality in manual deburring, as well as incomplete deburring by simple mechanical grinding, which results in burrs easily splashing and being difficult to collect and clean. This improves the production quality and efficiency of carbon canisters, enhances the production environment, strengthens the environmental friendliness and safety of the production process, and improves the overall performance of the carbon canister product. This effectively solves the problems in the background technology.
[0006] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0007] A deburring tool for carbon canister production includes an operating box. A collection box is fixedly connected to the bottom of the operating box, and a through groove connects the top of the collection box to the bottom of the operating box. A holder for placing carbon canisters is installed at the bottom of the collection box and at the top of the through groove. A second through hole for burrs to pass through is opened at the bottom of the holder. A deburring assembly and a lifting device for driving the deburring assembly to move up and down are horizontally arranged above the inside of the operating box. The deburring assembly includes a fixed wheel and a movable wheel embedded in the fixed wheel. Both the fixed wheel and the movable wheel have a first through hole through which the carbon canister passes. A motor is fixedly installed at the top of the fixed wheel. The output shaft of the motor extends into the fixed wheel and is fixedly connected to a gear. An external gear ring is provided on the movable wheel. The gear meshes with the external gear ring of the movable wheel. Two symmetrical vertical plates are fixedly connected to the bottom of the movable wheel. An electric telescopic rod is provided on each of the two vertical plates. A scraper and a grinder are fixedly installed at the output ends of the two electric telescopic rods, respectively.
[0008] The collection box is equipped with a burr collection device and a suction device for sucking burrs into the burr collection device. The burr collection device includes a burr feeding hopper connected to a through groove. A connecting pipe is fixedly connected to the bottom end of the burr feeding hopper. A burr collection box is fixedly connected to the bottom end of the connecting pipe. A burr collection container is installed inside the burr collection box. A mesh is fixedly installed at the bottom end of the burr collection container.
[0009] By adopting the above technical solution, the carbon canister is placed on the base, and the carbon canister is positioned by passing through the first through hole of the fixed wheel and the movable wheel. The second through hole at the bottom of the base provides a channel for the subsequent burrs to fall off.
[0010] When the motor is started, the motor output shaft drives the gear to rotate. Since the gear meshes with the outer gear ring of the movable wheel, it drives the movable wheel to rotate. When the movable wheel rotates, the vertical plate at its bottom rotates accordingly. The electric telescopic rod on the vertical plate can adjust the position and distance of the scraper and the grinder so that they contact the surface of the carbon canister. Through the extension and retraction of the electric telescopic rod and the rotation of the movable wheel, the scraper and the grinder can perform deburring operations such as scraping and grinding on the surface of the carbon canister. At the same time, the lifting device can drive the deburring component to move up and down to adapt to the deburring needs of different height positions of the carbon canister.
[0011] The burrs generated during the deburring process fall into the through groove through the second through hole of the placement seat, and then enter the burr discharge hopper. The suction device generates suction to suck the burrs into the burr collection box inside the burr collection box through the connecting pipe. The mesh at the bottom of the burr collection box can retain the burrs or debris that fall, thereby achieving the collection of burrs.
[0012] Furthermore, the lifting device includes a partition plate fixedly connected to the upper part of the inner side wall of the operating box and a cylinder fixedly installed on the top of the partition plate. The telescopic end of the cylinder passes through the partition plate and is fixedly connected to a movable plate. Slide rods are fixedly connected to the four corners of the top of the movable plate. The slide rods pass through the sliding holes on the partition plate and are slidably connected to the partition plate.
[0013] By adopting the above technical solution, when the height of the deburring assembly needs to be adjusted, the cylinder is activated. The cylinder is the power source of the entire lifting device. It generates thrust through internal air pressure changes, causing the cylinder's extension and retraction ends to extend or retract. The extension and retraction ends of the cylinder are fixedly connected to the moving plate. Therefore, when the extension and retraction ends of the cylinder extend, they push the moving plate downward; when the extension and retraction ends of the cylinder retract, they pull the moving plate upward. Since the deburring assembly includes fixed wheels, movable wheels, etc., connected to the moving plate, the movement of the moving plate will drive the deburring assembly to move up and down together. Slide rods are fixedly connected at the four corners of the top of the moving plate. The slide rods pass through the sliding holes in the partition and slide in cooperation with the partition. This design plays a guiding and stabilizing role. During the up and down movement of the moving plate, the slide rods slide in the sliding holes, ensuring that the moving plate can only move in a straight line along the vertical direction, avoiding shaking or deviation of the deburring assembly during movement, and ensuring the stability and accuracy of the deburring operation.
[0014] Furthermore, each of the four corners of the bottom of the movable plate is fixedly connected to a support rod, and each of the support rods is fixedly connected to a support plate at its bottom end. One side of each of the support plates is connected to the outer wall of the fixed wheel.
[0015] By adopting the above technical solution, when the cylinder in the lifting device drives the moving plate to move up and down, the moving plate becomes the starting carrier of power. The support rods fixedly connected at the four corners of the bottom of the moving plate, like a bridge, transmit the movement of the moving plate. Because the support rods are fixedly connected to the moving plate, the support rods will move synchronously when the moving plate moves up and down. The bottom of the support rods is fixedly connected to the support plates. Multiple support plates work together to provide a stable support structure for the fixed wheel. One side of the support plate is connected to the outer wall of the fixed wheel. This connection method allows the support plate to smoothly apply the power transmitted from the support rods to the fixed wheel. On the wheel, the stability of the fixed wheel during up-and-down movement is ensured through the coordinated work of the support rods and support plates at the four corners, preventing tilting or swaying. Since the fixed wheel is an important component of the deburring assembly, together with the movable wheel and other components, it forms the working structure for deburring. Therefore, when the movable plate moves up and down under the drive of the lifting device, the fixed wheel and the entire deburring assembly connected to it will also move up and down through the connection and transmission of the support rods and support plates. In this way, the height of the deburring assembly can be flexibly adjusted according to the different height positions of the carbon canister, so as to achieve effective deburring operation on different parts of the carbon canister.
[0016] Furthermore, the suction device includes a vacuum pump fixedly installed on the inner wall of the bottom of the collection box. The suction end of the vacuum pump is fixedly connected to an air extraction pipe, and a pressure regulating valve is provided on the air extraction pipe. The end of the air extraction pipe away from the vacuum pump is fixedly connected to the bottom of the burr collection box.
[0017] By adopting the above technical solution, when the vacuum pump is started, it begins to operate and forms a low-pressure area inside. Since the suction end of the vacuum pump is connected to the suction pipe, this low pressure will be transmitted along the suction pipe. Because the other end of the suction pipe is fixedly connected to the bottom of the burr collection box, the gas in the burr collection box will also be continuously extracted by the vacuum pump, making the gas pressure in the burr collection box lower than the outside gas pressure, thus forming a negative pressure environment in the burr collection box.
[0018] The pressure regulating valve installed on the suction pipe plays an important role. It can adjust the gas flow rate and pressure through the suction pipe according to actual working needs. For example, when a greater suction force is needed to collect heavier or larger burrs, the pressure regulating valve can be adjusted to increase the gas flow rate, thereby enhancing the negative pressure in the burr collection box and increasing the suction force. Conversely, when the burrs are lighter or smaller and do not require excessive suction force, the pressure regulating valve can be adjusted to reduce the suction force, avoiding other problems caused by excessive suction force, such as damaging the carbon canister or affecting the stability of the deburring operation.
[0019] After negative pressure suction is generated inside the burr collection box, the burrs generated during the deburring operation are located above the placement seat, and the bottom of the placement seat has a second through hole for the burrs to pass through. The operation box and the collection box are connected by a through groove, and the burr hopper is connected to the through groove and its bottom end is connected to the burr collection box through a connecting pipe. Therefore, under the action of negative pressure suction, the burrs will pass through the second through hole, through groove, burr hopper and connecting pipe in sequence, and finally be sucked into the burr collection box inside the burr collection box. The mesh at the bottom of the burr collection box can retain the burrs or debris that fall, thus achieving effective collection of burrs.
[0020] Furthermore, a limiting member is detachably connected to the fixed wheel, a portion of which is connected to the fixed wheel, and another portion covers and adheres to the outer surface of the movable wheel.
[0021] By adopting the above technical solution, the limiting component is detachably connected to the fixed wheel. This detachable design allows the limiting component to be easily removed from the fixed wheel when the movable wheel needs to be inspected, replaced, or its movement state adjusted according to different deburring requirements. During installation, a part of the limiting component is securely connected to the fixed wheel, ensuring the fixed position of the limiting component and enabling it to reliably perform its limiting function.
[0022] Another part of the limiting component covers and adheres to the outer surface of the movable wheel. When the motor drives the gear to rotate the movable wheel, the part of the limiting component that adheres to the outer surface of the movable wheel will exert a certain constraint on the movable wheel.
[0023] Furthermore, both the operation box and the collection box are provided with a door on one side, the door is provided with a handle, and the operation box door is provided with a viewing window.
[0024] By adopting the above technical solution, the door on one side of the control box and the collection box facilitates the operation, maintenance and cleaning of the equipment and components inside the box, while the handle is designed to make it easier for operators to open and close the door. The handle makes it easier to apply force to open or close the door, improving the ease of use.
[0025] The viewing window on the control box door allows operators to directly observe the working status of the deburring components inside the control box without opening the door. For example, they can check the deburring of the carbon canister by the scraper and grinder, or observe the operation of components such as the motor and electric telescopic rod, and promptly identify potential problems without having to frequently open the control box door. This improves work efficiency and reduces the possibility of external dust and other impurities entering the control box.
[0026] Compared with the prior art, the present invention has the following beneficial effects:
[0027] This utility model discloses a deburring tool for carbon canister production. Driven by a motor, a movable wheel rotates, and an electric telescopic rod adjusts the position and distance between the scraper and the grinder, enabling comprehensive scraping and grinding of the carbon canister surface. The combination of the movable wheel's rotation and the electric telescopic rod's extension allows for flexible adaptation to different parts of the carbon canister's shape, effectively handling complex curved surfaces. Compared to traditional manual or simple mechanical grinding methods, this significantly improves deburring efficiency and quality, ensures the carbon canister's processing precision, and thus enhances the overall performance of the carbon canister product.
[0028] This utility model discloses a deburring tool for carbon canister production. During the deburring process, burrs generated can enter the burr discharge hopper through the second through hole and groove of the placement base. Then, under the action of the suction device, they are sucked into the burr collection box inside the burr collection box. The mesh at the bottom of the burr collection box can effectively retain burrs and debris, preventing burrs from flying everywhere. This not only improves the production environment and reduces the risk of workers inhaling burrs, but also facilitates centralized cleaning and treatment of burrs, improving the environmental protection and safety of the production process. At the same time, it also helps to keep the equipment clean and extend its service life. Attached Figure Description
[0029] Figure 1This is a schematic diagram of the structure of a deburring tool for carbon can production according to this utility model.
[0030] Figure 2 This is a schematic diagram of the internal structure of a deburring tool for carbon can production according to this utility model.
[0031] Figure 3 This is a schematic diagram of the deburring component structure of a deburring tool for carbon can production according to this utility model.
[0032] In the diagram: 1. Control box; 2. Collection box; 3. Fixed wheel; 4. Movable wheel; 5. First through hole; 6. Motor; 7. Gear; 8. Vertical plate; 9. Electric telescopic rod; 10. Scraper; 11. Grinder; 12. Storage seat; 13. Second through hole; 14. Through groove; 15. Burr discharge hopper; 16. Burr collection box; 17. Connecting pipe; 18. Burr collection box; 19. Partition net; 20. Vacuum pump; 21. Air extraction pipe; 22. Pressure regulating valve; 23. Support plate; 24. Support rod; 25. Moving plate; 26. Partition plate; 27. Cylinder; 28. Slide rod; 29. Box door; 30. Handle; 31. Viewing window; 32. Limiting component. Detailed Implementation
[0033] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.
[0034] To prevent burrs on the surface of the formed carbon canister from affecting its appearance quality, causing poor sealing during subsequent assembly, and wear on other components, thus avoiding impacts on the performance of the entire fuel evaporation control system, and to address the problems of low efficiency and inconsistent quality of manual deburring, as well as incomplete deburring by simple mechanical grinding, resulting in burr splashing and difficult collection and cleaning, this approach aims to improve the production quality and efficiency of carbon canisters, improve the production environment, enhance the environmental friendliness and safety of the production process, and improve the overall performance of carbon canister products. Figure 1 , Figure 2 , Figure 3As shown, a deburring tool for carbon canister production includes an operating box 1. A collection box 2 is fixedly connected to the bottom of the operating box 1, and a through groove 14 connects the top of the collection box 2 and the bottom of the operating box 1. A storage seat 12 for placing carbon canisters is installed at the bottom of the collection box 2 and at the top of the through groove 14. A second through hole 13 for burrs to pass through is opened at the bottom of the storage seat 12. A deburring assembly and a lifting device for driving the deburring assembly to move up and down are horizontally arranged inside the operating box 1. The deburring assembly includes a fixed wheel 3 and a fixed wheel 4 embedded in a fixed wheel 5. The fixed wheel 3 has a movable wheel 4 inside the fixed wheel 3. Both the fixed wheel 3 and the movable wheel 4 have a first through hole 5 through which a carbon canister passes. The top of the fixed wheel 3 is fixedly installed with a motor 6. The output shaft of the motor 6 extends into the fixed wheel 3 and is fixedly connected with a gear 7. The movable wheel 4 is provided with an external gear ring. The gear 7 meshes with the external gear ring of the movable wheel 4. The bottom of the movable wheel 4 is fixedly connected with two symmetrical vertical plates 8. Both vertical plates 8 are provided with electric telescopic rods 9. The output ends of the two electric telescopic rods 9 are respectively fixedly installed with a scraper 10 and a grinder 11.
[0035] The collection box 2 is equipped with a burr collection device and a suction device for sucking burrs into the burr collection device. The burr collection device includes a burr feeding hopper 15 connected to the through groove 14. A connecting pipe 17 is fixedly connected to the bottom end of the burr feeding hopper 15. A burr collection box 16 is fixedly connected to the bottom end of the connecting pipe 17. A burr collection box 18 is installed inside the burr collection box 16. A partition net 19 is fixedly installed at the bottom end of the burr collection box 18.
[0036] When in use, the carbon canister is placed on the base 12. The carbon canister is positioned by passing through the first through hole 5 of the fixed wheel 3 and the movable wheel 4. The second through hole 13 at the bottom of the base 12 provides a channel for the subsequent burrs to fall off.
[0037] When the motor 6 is started, the output shaft of the motor 6 drives the gear 7 to rotate. Since the gear 7 meshes with the outer gear ring of the movable wheel 4, it drives the movable wheel 4 to rotate. When the movable wheel 4 rotates, the vertical plate 8 at its bottom rotates accordingly. The electric telescopic rod 9 on the vertical plate 8 can adjust the position and distance of the scraper 10 and the grinder 11 so that they contact the surface of the carbon can. Through the extension and retraction of the electric telescopic rod 9 and the rotation of the movable wheel 4, the scraper 10 and the grinder 11 can perform deburring operations such as scraping and grinding on the surface of the carbon can. At the same time, the lifting device can drive the deburring assembly to move up and down to adapt to the deburring needs of different height positions of the carbon can.
[0038] The burrs generated during the deburring process fall into the through groove 14 through the second through hole 13 of the placement seat 12, and then enter the burr discharge hopper 15. The suction device generates suction to suck the burrs into the burr collection box 18 in the burr collection box 16 through the connecting pipe 17. The mesh 19 at the bottom of the burr collection box 18 can retain the burrs or debris that fall, thereby realizing the collection of burrs.
[0039] For example, such as Figure 2 As shown, the present invention also includes a lifting device comprising a partition 26 fixedly connected to the upper part of the inner side wall of the operating box 1 and a cylinder 27 fixedly installed on the top of the partition 26. The telescopic end of the cylinder 27 passes through the partition 26 and is fixedly connected to a moving plate 25. Each of the four corners of the top of the moving plate 25 is fixedly connected to a sliding rod 28. The sliding rod 28 passes through the sliding hole on the partition 26 and is slidably connected to the partition 26.
[0040] In use, when the height of the deburring assembly needs to be adjusted, cylinder 27 is activated. Cylinder 27 is the power source for the entire lifting device. It generates thrust through internal air pressure changes, causing the telescopic end of cylinder 27 to extend or retract. The telescopic end of cylinder 27 is fixedly connected to the moving plate 25. Therefore, when the telescopic end of cylinder 27 extends, it pushes the moving plate 25 downward; when the telescopic end of cylinder 27 retracts, it pulls the moving plate 25 upward. Since the deburring assembly includes fixed wheels 3, movable wheels 4, etc., which are connected to the moving plate 25... The movement of the movable plate 25 causes the deburring assembly to move up and down together. Slide rods 28 are fixedly connected to the four corners of the top of the movable plate 25. The slide rods 28 pass through the sliding holes on the partition plate 26 and slide in cooperation with the partition plate 26. This design plays a guiding and stabilizing role. During the up and down movement of the movable plate 25, the slide rods 28 slide in the sliding holes to ensure that the movable plate 25 can only move in a straight line in the vertical direction, avoiding the deburring assembly from shaking or deviating during the movement, and ensuring the stability and accuracy of the deburring operation.
[0041] For example, such as Figure 2 As shown, the present invention also includes a support rod 24 fixedly connected to the four corners of the bottom end of the movable plate 25, a support plate 23 fixedly connected to the bottom end of the multiple support rods 24, and one side of the multiple support plates 23 connected to the outer side wall of the fixed wheel 3.
[0042] In use, when the cylinder 27 in the lifting device drives the moving plate 25 to move up and down, the moving plate 25 becomes the starting carrier of power. The support rods 24, which are fixedly connected to the four corners at the bottom of the moving plate 25, act like a bridge, transmitting the movement of the moving plate 25. Because the support rods 24 are fixedly connected to the moving plate 25, the support rods 24 will move synchronously when the moving plate 25 moves up and down. The bottom end of the support rods 24 is fixedly connected to the support plate 23. The multiple support plates 23 work together to provide a stable support structure for the fixed wheel 3. One side of the support plate 23 is connected to the outer wall of the fixed wheel 3. This connection method allows the support plate 23 to smoothly transmit the power from the support rods 24. The material is steadily applied to the fixed wheel 3. Through the coordinated work of the support rods 24 and support plates 23 at the four corners, the stability of the fixed wheel 3 during its up-and-down movement is ensured, avoiding tilting or wobbling. Since the fixed wheel 3 is an important component of the deburring assembly, together with the movable wheel 4 and other components, it forms the working structure for deburring. Therefore, when the movable plate 25 moves up and down under the drive of the lifting device, the fixed wheel 3 and the entire deburring assembly connected to it will also move up and down through the connection and transmission of the support rods 24 and support plates 23. In this way, the height of the deburring assembly can be flexibly adjusted according to the different height positions of the carbon canister, so as to achieve effective deburring operation on different parts of the carbon canister.
[0043] For example, such as Figure 2 As shown, the present invention also includes a vacuum pump 20 fixedly installed on the inner wall of the bottom end of the collection box 2. The suction end of the vacuum pump 20 is fixedly connected to a suction pipe 21. A pressure regulating valve 22 is provided on the suction pipe 21. The end of the suction pipe 21 away from the vacuum pump 20 is fixedly connected to the bottom end of the burr collection box 16.
[0044] When in use, after the vacuum pump 20 is started, it begins to operate and forms a low-pressure area inside. Since the suction end of the vacuum pump 20 is connected to the suction pipe 21, this low pressure will be transmitted along the suction pipe 21. Because the other end of the suction pipe 21 is fixedly connected to the bottom end of the burr collection box 16, the gas in the burr collection box 16 will also be continuously extracted by the vacuum pump 20, making the gas pressure in the burr collection box 16 lower than the outside gas pressure, thus forming a negative pressure environment in the burr collection box 16.
[0045] The pressure regulating valve 22 installed on the suction pipe 21 plays an important role. It can adjust the gas flow rate and pressure through the suction pipe 21 according to the actual working needs. For example, when a greater suction force is needed to collect heavier or larger burrs, the pressure regulating valve 22 can be adjusted to increase the gas flow rate, thereby enhancing the negative pressure in the burr collection box 16 and increasing the suction force. Conversely, when the burrs are lighter or smaller and do not require excessive suction force, the pressure regulating valve 22 can be adjusted to reduce the suction force, avoiding other problems caused by excessive suction force, such as damaging the carbon canister or affecting the stability of the deburring operation.
[0046] After a negative pressure suction is formed in the burr collection box 16, the burrs generated during the deburring operation are located above the placement seat 12, and the bottom of the placement seat 12 has a second through hole 13 for the burrs to pass through. The operation box 1 and the collection box 2 are connected by a through groove 14, and the burr discharge hopper 15 is connected to the through groove 14 and its bottom end is connected to the burr collection box 16 through a connecting pipe 17. Therefore, under the action of negative pressure suction, the burrs will pass through the second through hole 13, the through groove 14, the burr discharge hopper 15 and the connecting pipe 17 in sequence, and finally be sucked into the burr collection box 18 in the burr collection box 16. The mesh 19 at the bottom of the burr collection box 18 can retain the burrs or debris that fall, thus achieving effective collection of burrs.
[0047] For example, such as Figure 3 As shown, the present invention also includes a detachable limiting member 32 connected to the fixed wheel 3. A portion of the limiting member 32 is connected to the fixed wheel 3, and another portion covers and adheres to the outer surface of the movable wheel 4.
[0048] In use, the limiting member 32 is detachably connected to the fixed wheel 3. This detachable design allows the limiting member 32 to be easily removed from the fixed wheel 3 when the movable wheel 4 needs to be inspected, replaced, or its movement state adjusted according to different deburring requirements. During installation, a part of the limiting member 32 is securely connected to the fixed wheel 3, ensuring the fixed position of the limiting member 32 and enabling it to reliably perform its limiting function.
[0049] Another part of the limiting member 32 covers and adheres to the outer surface of the movable wheel 4. When the motor 6 drives the gear 7 to rotate the movable wheel 4, the part of the limiting member 32 that adheres to the outer surface of the movable wheel 4 will exert a certain constraint on the movable wheel 4.
[0050] For example, such as Figure 1 As shown, the present invention also includes a door 29 on one side of both the operation box 1 and the collection box 2, a handle 30 on the door 29, and a viewing window 31 on the door 29 of the operation box 1.
[0051] When in use, the door 29 on one side of the control box 1 and the collection box 2 facilitates the operation, maintenance and cleaning of the equipment and components inside the box. The handle 30 is designed to make it easier for operators to open and close the door 29. The handle makes it easier to apply force to open or close the door, improving the convenience of use.
[0052] The viewing window 31 on the door 29 of the control box 1 allows the operator to directly observe the working status of the deburring components inside the control box 1 without opening the door. For example, the operator can check the deburring of the carbon canister by the scraper 10 and the grinder 11, or observe the operation of components such as the motor 6 and the electric telescopic rod 9, and promptly identify any potential problems without having to frequently open the door. This improves work efficiency and reduces the possibility of external dust and other impurities entering the control box 1.
[0053] It should be noted that this utility model is a deburring tool for carbon can production. The carbon can is placed on the base 12, and the carbon can is positioned by passing through the first through hole 5 of the fixed wheel 3 and the movable wheel 4. The second through hole 13 at the bottom of the base 12 provides a channel for the subsequent burrs to fall off.
[0054] When the motor 6 is started, the output shaft of the motor 6 drives the gear 7 to rotate. Since the gear 7 meshes with the outer gear ring of the movable wheel 4, it drives the movable wheel 4 to rotate. When the movable wheel 4 rotates, the vertical plate 8 at its bottom rotates accordingly. The electric telescopic rod 9 on the vertical plate 8 can adjust the position and distance of the scraper 10 and the grinder 11 so that they contact the surface of the carbon canister. Through the extension and retraction of the electric telescopic rod 9 and the rotation of the movable wheel 4, the scraper 10 and the grinder 11 can perform deburring operations such as scraping and grinding on the surface of the carbon canister.
[0055] When it is necessary to adjust the height of the deburring assembly, start the cylinder 27. The telescopic end of the cylinder 27 pushes or pulls the moving plate 25 to move up and down. The moving plate 25 drives the fixed wheel 3 and the entire deburring assembly to move up and down through the support rod 24 and the support plate 23. The slide rod 28 slides in the sliding hole of the partition plate 26 to ensure that the moving plate 25 moves in a straight line in the vertical direction and avoids the deburring assembly from shaking or shifting.
[0056] Start the vacuum pump 20 to create a negative pressure environment in the burr collection box 16. Adjust the gas flow and pressure according to actual needs through the pressure regulating valve 22. Under the action of negative pressure suction, the burrs generated in the deburring operation pass through the second through hole 13, through groove 14, burr discharge hopper 15 and connecting pipe 17 in sequence, and are finally sucked into the burr collection box 18 in the burr collection box 16. The screen 19 retains the burrs or debris.
[0057] The working status of the deburring assembly can be observed through the viewing window 31 on the door 29 of the control box 1. If it is necessary to repair, replace or adjust the movement of the movable wheel 4, the limiting part 32 on the fixed wheel 3 can be removed. The door 29 on one side of the control box 1 and the collection box 2 facilitates the operation, maintenance and cleaning of the equipment and components inside the box. The door 29 can be opened and closed by the handle 30.
[0058] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claims. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A deburring tool for carbon can production, comprising an operating box (1), characterized in that, The bottom of the operating box (1) is fixedly connected to a collection box (2), and a through groove (14) connects the top of the collection box (2) and the bottom of the operating box (1). A storage seat (12) for placing a carbon canister is installed at the bottom of the collection box (2) and at the top of the through groove (14). A second through hole (13) for burrs to pass through is opened at the bottom of the storage seat (12). A deburring assembly and a lifting device for driving the deburring assembly to move up and down are horizontally arranged inside the operating box (1). The deburring assembly includes a fixed wheel (3) and a movable wheel (4) embedded in the fixed wheel (3). Both the movable wheel (4) and the fixed wheel (3) are provided with a first through hole (5) through which a carbon canister passes. The top of the fixed wheel (3) is fixedly installed with a motor (6). The output shaft of the motor (6) extends into the fixed wheel (3) and is fixedly connected with a gear (7). The movable wheel (4) is provided with an external gear ring. The gear (7) meshes with the external gear ring of the movable wheel (4). The bottom of the movable wheel (4) is fixedly connected with two symmetrical vertical plates (8). Both vertical plates (8) are provided with electric telescopic rods (9). The output ends of the two electric telescopic rods (9) are respectively fixedly installed with a scraper (10) and a grinder (11). The collection box (2) is equipped with a burr collection device and a suction device for sucking burrs into the burr collection device. The burr collection device includes a burr feeding hopper (15) connected to the through groove (14). A connecting pipe (17) is fixedly connected to the bottom end of the burr feeding hopper (15). A burr collection box (16) is fixedly connected to the bottom end of the connecting pipe (17). A burr collection box (18) is installed inside the burr collection box (16). A mesh (19) is fixedly installed at the bottom end of the burr collection box (18).
2. The deburring tool for carbon canister production according to claim 1, characterized in that: The lifting device includes a partition (26) fixedly connected to the upper part of the inner side wall of the operating box (1) and a cylinder (27) fixedly installed on the top of the partition (26). The telescopic end of the cylinder (27) passes through the partition (26) and is fixedly connected to a movable plate (25). Slide rods (28) are fixedly connected to the four corners of the top of the movable plate (25). The slide rods (28) pass through the sliding holes on the partition (26) and are slidably connected to the partition (26).
3. The deburring tool for carbon canister production according to claim 2, characterized in that: The bottom corners of the movable plate (25) are all fixedly connected with support rods (24), and the bottom ends of the multiple support rods (24) are all fixedly connected with support plates (23). One side of the multiple support plates (23) is connected to the outer wall of the fixed wheel (3).
4. The deburring tool for carbon canister production according to claim 1, characterized in that: The suction device includes a vacuum pump (20) fixedly installed on the inner wall of the bottom end of the collection box (2). The suction end of the vacuum pump (20) is fixedly connected to a suction pipe (21). A pressure regulating valve (22) is provided on the suction pipe (21). The end of the suction pipe (21) away from the vacuum pump (20) is fixedly connected to the bottom end of the burr collection box (16).
5. A deburring tool for carbon canister production according to claim 1, characterized in that: A limiting member (32) is detachably connected to the fixed wheel (3). A portion of the limiting member (32) is connected to the fixed wheel (3), and another portion covers and adheres to the outer surface of the movable wheel (4).
6. A deburring tool for carbon can production according to claim 1, characterized in that: Both the operation box (1) and the collection box (2) are provided with a door (29) on one side, and a handle (30) is provided on the door (29). The operation box (1) is provided with a viewing window (31) on the door (29).