A deburring device for the orifice of a capacitor housing
By designing a capacitor shell deburring device including an aggregate assembly and a tool adjustment assembly, the problems of burr splashing and difficulty in collecting in the prior art are solved, automatic collection of burrs and effective treatment of side wall drawing of aluminum shells are realized, and production efficiency and product quality are improved.
Patent Information
- Application Number
- CN202411456825.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-18
- Publication Date
- 2025-05-27
- Estimated Expiration
- 2044-10-18
AI Technical Summary
During the burr removal process of the existing capacitor aluminum shell orifice deburring device, the burrs are prone to splash or accumulate on the bottom of the shell, making it difficult to collect, need to be collected separately, and it is difficult to deal with the draw marks on the side walls of the aluminum shell body.
A capacitor housing deburring device including a workbench, an aggregate assembly and a tool adjustment assembly is designed. The cylinder drives the sliding sleeve to move downward, forming a sealed state, which drives the diaphragm to compress the air in the aluminum shell and achieves burr cleaning. At the same time, the tool plate is opened by gear transmission to fit the inner wall of the aluminum shell, and the magnet on the tool plate attracts the sand plate, and handles the pull marks on the side wall of the aluminum shell.
Automatic collection of burrs is realized, reducing subsequent separate collection processes, improving production efficiency, and effectively treating the draw marks on the side walls of the aluminum shell, improving product quality.
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Figure CN119057150B_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of capacitor housing production, and particularly relates to a deburring device for the orifice of a capacitor housing. Background Art
[0002] A capacitor is a device that stores electric charge. During the production process of capacitors, in order to improve production quality and product aesthetics, it is necessary to remove the burrs at the orifice of the capacitor housing. Common capacitor housings include aluminum housings and plastic housings, among which aluminum housings are more widely used.
[0003] When the existing deburring device for the orifice of an aluminum capacitor housing is in use, it is necessary to first clamp and fix the aluminum capacitor housing, insert the tool into the aluminum housing, and clean the burrs on the aluminum housing orifice by driving the tool to rotate through a motor. However, during the process of scraping the burrs, most of the burrs scraped by the tool will accumulate at the bottom of the housing, and some burrs will splash outside the housing, resulting in the burrs splashing outside the housing being difficult to collect, and the burrs at the bottom of the housing still need to be collected separately. During the process of scraping the burrs, by adding a cover to the aluminum housing, the burrs can be prevented from splashing outside the housing, so that all the scraped burrs accumulate at the bottom of the housing. However, the burrs at the bottom of the housing still need to be collected separately. Therefore, there is an urgent need for a deburring device for the orifice of a capacitor housing that can automatically collect burrs. Summary of the Invention
[0004] The purpose of the invention is to provide a deburring device for the orifice of a capacitor housing in view of the deficiencies of the prior art, so as to solve the technical problems in the prior art.
[0005] The purpose of the invention can be achieved by the following technical solutions: A deburring device for the orifice of a capacitor housing, which includes a workbench, an outer wall polishing component, an aggregate component, an aluminum housing body, and a tool adjusting component. A rotating table and a bracket are installed on the workbench, and the aluminum housing body is placed on the rotating table;
[0006] The aggregate component includes a sliding sleeve, a diaphragm, and a collection bucket. An installation frame is installed on the bracket, a cylinder is installed on the installation frame, the output end of the cylinder is coaxially connected to the sliding sleeve, one end of the diaphragm is slidably matched with the sliding sleeve, the other end of the diaphragm is rotatably matched with the aluminum housing body, the sliding sleeve is sleeved on a sliding cylinder, and the sliding sleeve is slidably matched with the sliding cylinder. The bottom of the sliding cylinder is threadedly installed with the collection bucket, and a unidirectionally opening collection port is installed on the collection bucket. The sliding sleeve and the sliding cylinder are connected through the tool adjusting component.
[0007] As a further optimization or improvement of this solution, a sliding ring and a pressing ring are installed on the diaphragm. A chute is opened on the sliding ring, a mating ring is rotatably installed on the pressing ring. The sliding sleeve is connected to a reset ring through a sliding rod, the chute is slidably matched with the sliding rod, and the sliding ring is located between the sliding sleeve and the reset ring. The mating ring is sleeved on the opening of the aluminum housing body.
[0008] As a further optimization or improvement of this solution, the tool adjustment assembly includes a tool plate, an upper rotating rod, and a lower rotating rod. A transmission box is installed on the sliding cylinder. A gear is rotatably installed in the transmission box. The two sides of the gear are respectively engaged with an upper rack and a lower rack. The reset ring is connected to the upper rack. The upper rack is rotatably connected to one end of the upper rotating rod. The other end of the upper rotating rod is rotatably connected to the tool plate. The lower rack is rotatably connected to one end of the lower rotating rod. The other end of the lower rotating rod is rotatably connected to the tool plate.
[0009] As a further optimization or improvement of this solution, a telescopic ball is installed on the sliding cylinder, a ball hole is installed on the sliding ring, and the telescopic ball is engaged with the ball hole.
[0010] As a further optimization or improvement of this solution, a vent hole is opened on the sliding sleeve. The vent hole is communicated with the sliding cylinder. A pressing block is installed on the sliding sleeve, and the pressing block plugs the sliding cylinder.
[0011] As a further optimization or improvement of this solution, an aggregate plate is installed on the collection bucket. A rotating plate is rotatably installed in the collection port. A stop block is installed on the collection port. The rotating plate abuts against the stop block, and an arc spring is installed on the rotating plate.
[0012] As a further optimization or improvement of this solution, the outer wall polishing assembly includes a sand plate. An arc plate is installed on the workbench. A guide rod is installed on the sand plate. The guide rod is slidably matched with the arc plate. The sand plate and the arc plate are connected by a reset spring. A first magnet is installed on the sand plate. The sand plate is in contact with the outer wall of the aluminum shell body. A second magnet is installed on the tool plate, and the second magnet attracts the first magnet.
[0013] As a further optimization or improvement of this solution, a motor is installed inside the workbench, and the output end of the motor is connected to a rotating table.
[0014] The beneficial effects of the present invention:
[0015] (1) In the present invention, the cylinder drives the sliding sleeve to move downward. When the mating ring is stuck on the port of the aluminum shell body, the inner cavity of the aluminum shell body is in a sealed state at this time, while the sliding cylinder and the collection bucket are in a non-sealed state. As the sliding sleeve continues to move downward, the sliding sleeve drives the pressing block to block the sliding cylinder, making the sliding cylinder and the collection bucket in a sealed state. As the sliding sleeve moves downward, the sliding sleeve drives the diaphragm to press the air inside the aluminum shell body through the sliding ring, thereby compressing the air in the inner cavity of the aluminum shell body. When the cleaning is completed, the scrap aluminum slag and burrs will fall on the aggregate plate. At this time, the sliding sleeve moves upward. Since the ball hole and the telescopic ball are engaged to limit the sliding ring, the gas inside the aluminum shell body remains in a compressed state. As the sliding sleeve moves upward, the pressing block disengages from blocking the sliding cylinder. At this time, the sliding cylinder and the collection bucket are in a communicating state, and the compressed gas inside the aluminum shell body drives the aluminum slag and burrs to enter the collection bucket through the unidirectionally opened collection port, realizing the automatic collection of burrs. The present invention forms a pressure difference between the inner cavity of the aluminum shell body and the inner cavity of the collection bucket, and drives the gas and aluminum slag burrs inside the aluminum shell body to move into the collection bucket through the pressure difference, thereby realizing the collection of burrs, reducing the subsequent process of separately collecting the burrs inside the aluminum shell body, and improving the production efficiency of the aluminum shell body.
[0016] (2) During the downward movement of the sliding sleeve in the present invention, the sliding sleeve can drive the upper rack to move downward, causing the upper rack to drive the lower rack to move upward through the gear. At this time, the tool plate gradually expands, enabling the tool plate to fit the inner wall of the aluminum shell body, and enabling the tool plate to thoroughly clean the burrs on the aluminum shell body, improving the cleaning efficiency of the burrs. At the same time, the expandable tool plate can adapt to the processing of aluminum shell bodies of different specifications, improving the practicability of the present invention.
[0017] (3) During the process of the tool plate gradually expanding and contacting the side wall of the aluminum shell body in the present invention, the magnet two on the tool plate gradually approaches the magnet one on the sand plate. When the tool plate contacts the side wall of the aluminum shell body, the magnet two and the magnet one attract each other, causing the sand plate to approach and contact the outer wall of the aluminum shell body. When the rotating table drives the aluminum shell body to rotate, the sand plate contacts the outer wall of the aluminum shell body and processes the scratches on the side wall of the aluminum shell body, improving the appearance quality of the aluminum shell body. Brief Description of the Drawings
[0018] The following further describes the present invention in conjunction with the drawings.
[0019] Figure 1 It is a schematic diagram of the overall structure of the present invention.
[0020] Figure 2 It is a schematic diagram of the structure of the outer wall polishing assembly.
[0021] Figure 3 It is a schematic diagram of the connection between the cylinder and the aggregate assembly.
[0022] Figure 4 It is a schematic diagram of the internal structure of the collection port.
[0023] Figure 5 It is a cross-sectional view of the overall structure of the aggregate component and the tool adjustment component.
[0024] Figure 6 It is an exploded view of the aggregate component and the tool adjustment component.
[0025] Figure 7 It is a schematic diagram of the connection relationship among the sliding sleeve, the sliding cylinder and the tool adjustment component.
[0026] Figure 8 It is Figure 7 an enlarged view of the structure of part A of
[0027] Figure 9 It is a schematic diagram of the installation of the sliding cylinder and the sliding sleeve.
[0028] Figure 10 It is an installation and mating diagram of the sliding ring and the sliding cylinder.
[0029] In the figure, the markings are as follows: 1, workbench; 2, bracket; 3, mounting frame; 4, cylinder; 5, motor; 6, outer wall polishing component; 61, arc plate; 62, abrasive plate; 63, magnet 1; 64, guide rod; 65, return spring; 7, rotating table; 8, aluminum shell body; 9, aggregate component; 901, sliding sleeve; 902, vent hole; 903, pressing block; 904, sliding rod; 905, return ring; 906, sliding ring; 907, chute; 908, diaphragm; 909, pressing ring; 910, mating ring; 911, sliding cylinder; 912, telescopic ball; 913, ball hole; 914, collection barrel; 915, aggregate plate; 916, collection port; 917, rotating plate; 918, stop block; 919, arc spring; 10, tool adjustment component; 101, upper rack; 102, upper rotating rod; 103, tool plate; 104, lower rack; 105, lower rotating rod; 106, transmission box; 107, gear; 108, magnet 2. Specific embodiments
[0030] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present invention.
[0031] Refer to Figures 1-10 , a deburring device for the orifice of a capacitor housing, which includes a workbench 1, an outer wall polishing component 6, an aggregate component 9, an aluminum shell body 8 and a tool adjustment component 10. A rotating table 7 and a bracket 2 are installed on the workbench 1, and the aluminum shell body 8 is placed on the rotating table 7;
[0032] The aggregate component 9 includes a sliding sleeve 901, a diaphragm 908, and a collection bucket 914. An installation frame 3 is installed on the bracket 2, and a cylinder 4 is installed on the installation frame 3. The output end of the cylinder 4 is coaxially connected to the sliding sleeve 901. One end of the diaphragm 908 is slidably fitted with the sliding sleeve 901, and the other end of the diaphragm 908 is rotatably fitted with the aluminum shell body 8. The sliding sleeve 901 is sleeved on the sliding cylinder 911 and is slidably fitted with the sliding cylinder 911. The collection bucket 914 is threadedly installed at the bottom of the sliding cylinder 911, and a one-way opening collection port 916 is installed on the collection bucket 914. The sliding sleeve 901 and the sliding cylinder 911 are connected by a tool adjustment component 10.
[0033] Specifically, a sliding ring 906 and a pressing ring 909 are installed on the diaphragm 908. A sliding groove 907 is formed on the sliding ring 906, and a mating ring 910 is rotatably installed on the pressing ring 909. The sliding sleeve 901 is connected to a reset ring 905 through a sliding rod 904. The sliding groove 907 is slidably fitted with the sliding rod 904, and the sliding ring 906 is located between the sliding sleeve 901 and the reset ring 905. The mating ring 910 is sleeved on the opening of the aluminum shell body 8.
[0034] It should be noted that a sealing ring is installed on the outer wall of the sliding cylinder 911 to make the sliding sleeve 901 and the sliding cylinder 911 be in sealed sliding connection. The collection port 916 is one-way opening, and the collection port 916 can only be opened from the outside of the collection bucket 914. The sliding ring 906 is sleeved on the sliding cylinder 911, and the sliding groove 907 is slidably fitted with the sliding rod 904. Among them, the sliding ring 906 and the sliding cylinder 911 and the sliding groove 907 and the sliding rod 904 are all in sealed sliding connection, so that the gas in the cavity of the sliding cylinder 911 and the collection bucket 914 can only enter and exit through the ventilation port 902.
[0035] See Figures 5-8 As shown in, the tool adjustment component 10 includes a tool plate 103, an upper rotating rod 102, and a lower rotating rod 105. A transmission box 106 is installed on the sliding cylinder 911. A gear 107 is rotatably installed in the transmission box 106. The two sides of the gear 107 are respectively meshed with an upper rack 101 and a lower rack 104. The reset ring 905 is connected to the upper rack 101. One end of the upper rack 101 is rotatably connected to one end of the upper rotating rod 102, and the other end of the upper rotating rod 102 is rotatably connected to the tool plate 103. One end of the lower rack 104 is rotatably connected to one end of the lower rotating rod 105, and the other end of the lower rotating rod 105 is rotatably connected to the tool plate 103.
[0036] Specifically, a ventilation port 902 is formed on the sliding sleeve 901. The ventilation port 902 is communicated with the sliding cylinder 911. A pressing block 903 is installed on the sliding sleeve 901, and the pressing block 903 blocks the sliding cylinder 911.
[0037] It should be noted that the mating ring 910 is rotatably mounted on the pressing ring 909, and a sealing ring is installed inside the mating ring 910. When the mating ring 910 is engaged with the port of the aluminum shell body 8, the inside of the aluminum shell body 8 is in a sealed state. When the mating ring 910 is stuck on the port of the aluminum shell body 8, at this time, the sealed cavity inside the aluminum shell body 8 and the inner cavity of the collection bucket 914 are only connected through the collection port 916.
[0038] During use, the aluminum shell body 8 needs to be placed on the rotating table 7 first, and then the air cylinder 4 is started to drive the sliding sleeve 901 to move downward. The air cylinder 4 can drive the aggregate assembly 9 and the tool adjusting assembly 10 to move downward as a whole. When the mating ring 910 is stuck on the port of the aluminum shell body 8, at this time, the inner cavity of the aluminum shell body 8 is in a sealed state, and the sliding cylinder 911 and the collection bucket 914 are connected to the air through the ventilation port 902, so the sliding cylinder 911 and the collection bucket 914 are in a ventilation state.
[0039] As the sliding sleeve 901 continues to move downward, the sliding sleeve 901 drives the sliding ring 906 to move downward, so that the sliding ring 906 drives the diaphragm 908 to press the air inside the aluminum shell body 8, thereby compressing the air inside the aluminum shell body 8; while the sliding sleeve 901 moves downward, the pressing block 903 on the sliding sleeve 901 gradually moves closer to the sliding cylinder 911, so that the pressing block 903 can block the sliding cylinder 911, making the inner cavities of the sliding cylinder 911 and the collection bucket 914 in a sealed state; while the sliding sleeve 901 moves downward, the sliding sleeve 901 drives the upper rack 101 to move downward, so that the upper rack 101 drives the lower rack 104 to move upward through the gear 107. At this time, the tool plate 103 is gradually opened, so that the tool plate 103 can fit against the inner wall of the aluminum shell body 8.
[0040] When the tool plate 103 fits against the inner wall of the aluminum shell body 8, the ball hole 913 on the sliding ring 906 is clamped with the telescopic ball 912 on the sliding cylinder 911 to limit the sliding ring 906. At this time, start the motor 5 to drive the rotating table 7 to rotate, so that the tool plate 103 cleans the burrs inside the aluminum shell body 8. After the cleaning is completed, the scraped aluminum slag burrs will fall on the aggregate plate 915. Start the cylinder 4 to drive the sliding sleeve 901 to rise. Since the ball hole 913 and the telescopic ball 912 are clamped to limit the sliding ring 906, the gas inside the aluminum shell body 8 is still in a compressed state. When the sliding sleeve 901 moves upward, the sliding groove 907 slides with the sliding rod 904; as the sliding sleeve 901 moves upward, the pressing block 903 disengages from the blockage of the sliding cylinder 911. At this time, the sliding cylinder 911 and the collection barrel 914 are in a communicating state, and the compressed gas inside the aluminum shell body 8 drives the collection port 916 to open, so that the compressed gas inside the aluminum shell body 8 enters the collection barrel 914 through the collection port 916. As the compressed gas inside the aluminum shell body 8 enters the collection barrel 914, the aluminum slag burrs falling on the aggregate plate 915 will be carried into the collection barrel 914 by the gas inside the aluminum shell body 8, realizing the automatic collection of the burrs. As the sliding sleeve 901 continues to move upward, the reset ring 905 drives the sliding ring 906 to move upward, so that the ball hole 913 disengages from the clamping with the telescopic ball 912. At this time, the sliding sleeve 901 drives the sliding ring 906 to move upward through the reset ring 905, and the upward movement of the sliding ring 906 drives the mating ring 910 to disengage from the aluminum shell body 8. As the sliding sleeve 901 moves upward, the upper rack 101 and the lower rack 104 move relatively, so that the tool plate 103 retracts and disengages from the contact with the side wall of the aluminum shell body 8.
[0041] See Figures 9-10 , the telescopic ball 912 is installed on the sliding cylinder 911, the ball hole 913 is installed on the sliding ring 906, and the telescopic ball 912 is engaged with the ball hole 913. It should be noted that when the sliding sleeve 901 moves downward, it can not only drive the sliding ring 906 to move downward, but also drive the tool plate 103 to expand. When the tool plate 103 contacts the side wall of the aluminum shell body 8, the ball hole 913 on the sliding ring 906 is engaged with the telescopic ball 912 on the sliding cylinder 911 to limit the sliding ring 906.
[0042] See Figure 4 , the aggregate plate 915 is installed on the collection barrel 914, the rotating plate 917 is rotatably installed in the collection port 916, the baffle 918 is installed on the collection port 916, the rotating plate 917 abuts against the baffle 918, and the arc spring 919 is installed on the rotating plate 917. It should be noted that the installation of the rotating plate 917 and the baffle 918 can realize the one-way opening of the collection port 916.
[0043] See Figure 2 and Figure 7, the outer wall polishing assembly 6 includes a sand plate 62. An arc plate 61 is installed on the workbench 1. A guide rod 64 is installed on the sand plate 62. The guide rod 64 is slidably engaged with the arc plate 61. The sand plate 62 and the arc plate 61 are connected by a return spring 65. A first magnet 63 is installed on the sand plate 62. The sand plate 62 contacts the outer wall of the aluminum shell body 8. A second magnet 108 is installed on the tool plate 103. The second magnet 108 attracts the first magnet 63.
[0044] Specifically, the second magnet 108 and the first magnet 63 are made of a strong magnet or an electromagnet. The strong magnet or the electromagnet is a prior art, and this solution will not elaborate on it anymore.
[0045] It should be noted that common capacitor housings include aluminum housings and plastic housings. Among them, aluminum housings are widely used. Capacitor aluminum housings are usually prepared by a stretching process, and scratches are likely to occur on the side walls of the stretched capacitor aluminum housings. The deburring device for the orifice of the capacitor housing in the prior art can only clean the burrs at the orifice of the capacitor, and it is difficult to process the scratches on the side wall of the aluminum shell body 8.
[0046] Therefore, when the tool plate 103 gradually spreads open and contacts the side wall of the aluminum shell body 8, the second magnet 108 on the tool plate 103 gradually approaches the first magnet 63 on the sand plate 62. When the tool plate 103 contacts the side wall of the aluminum shell body 8, the second magnet 108 and the first magnet 63 attract each other, causing the sand plate 62 to approach and contact the outer wall of the aluminum shell body 8. When the rotating table 7 drives the aluminum shell body 8 to rotate, the sand plate 62 contacts the outer wall of the aluminum shell body 8 and processes the scratches on the side wall of the aluminum shell body 8.
[0047] See Figure 2 , a motor 5 is installed inside the workbench 1. The output end of the motor 5 is connected to the rotating table 7.
[0048] It should be noted that the sliding sleeve 901 drives the pressing ring 909 to press the orifice of the aluminum shell body 8, so that the mating ring 910 in the pressing ring 909 is connected to the aluminum shell body 8. When the motor 5 is started, the motor 5 drives the rotating table 7 to rotate. Since the pressing ring 909 presses the aluminum shell body 8 on the rotating table 7, the rotation of the rotating table 7 can drive the aluminum shell body 8 to rotate. When the aluminum shell body 8 rotates, the tool plate 103 is fixedly attached to the inner side wall of the aluminum shell body 8, so that the tool plate 103 can clean the burrs on the aluminum shell body 8.
[0049] The implementation principle of the present invention is as follows: When in use, the aluminum shell body 8 needs to be placed on the rotating table 7 first, and then the air cylinder 4 is started to drive the sliding sleeve 901 to move downward. The air cylinder 4 can drive the aggregate component 9 and the tool adjusting component 10 to move downward as a whole. When the mating ring 910 is stuck on the port of the aluminum shell body 8, the inner cavity of the aluminum shell body 8 is in a sealed state at this time. The sliding cylinder 911 and the collection barrel 914 are communicated with the air through the air vent 902, so the sliding cylinder 911 and the collection barrel 914 are in a ventilated state.
[0050] As the sliding sleeve 901 moves downward continuously, the sliding sleeve 901 drives the sliding ring 906 to move downward, so that the sliding ring 906 drives the diaphragm 908 to press the air in the aluminum shell body 8, thereby compressing the air in the aluminum shell body 8; while the sliding sleeve 901 moves downward, the pressing block 903 on the sliding sleeve 901 gradually moves closer to the sliding cylinder 911, so that the pressing block 903 can block the sliding cylinder 911, making the inner cavities of the sliding cylinder 911 and the collection barrel 914 in a sealed state; while the sliding sleeve 901 moves downward, the sliding sleeve 901 drives the upper rack 101 to move downward, so that the upper rack 101 drives the lower rack 104 to move upward through the gear 107. At this time, the tool plate 103 is gradually opened, so that the tool plate 103 can fit the inner wall of the aluminum shell body 8. When the tool plate 103 is gradually opened and contacts the side wall of the aluminum shell body 8, the magnet two 108 on the tool plate 103 gradually approaches the magnet one 63 on the abrasive plate 62. When the tool plate 103 contacts the side wall of the aluminum shell body 8, the magnet two 108 and the magnet one 63 attract each other, so that the abrasive plate 62 approaches and contacts the outer wall of the aluminum shell body 8.
[0051] When the tool plate 103 fits against the inner wall of the aluminum shell body 8, the ball hole 913 on the sliding ring 906 is clamped with the telescopic ball 912 on the sliding cylinder 911 to limit the sliding ring 906. At this time, start the motor 5 to drive the rotating table 7 to rotate, so that the tool plate 103 cleans the burrs inside the aluminum shell body 8, and the sand plate 62 processes the scratches on the side wall of the aluminum shell body 8. After the cleaning is completed, the scraped aluminum slag and burrs will fall on the aggregate plate 915. Start the cylinder 4 to drive the sliding sleeve 901 to rise. Since the ball hole 913 and the telescopic ball 912 are clamped to limit the sliding ring 906, the gas inside the aluminum shell body 8 is still in a compressed state. When the sliding sleeve 901 moves upward, the sliding groove 907 slides with the sliding rod 904; as the sliding sleeve 901 moves upward, the pressing block 903 disengages from the sealing of the sliding cylinder 911. At this time, the sliding cylinder 911 and the collection barrel 914 are in a connected state, and the compressed gas inside the aluminum shell body 8 drives the collection port 916 to open, so that the compressed gas inside the aluminum shell body 8 enters the collection barrel 914 through the collection port 916. As the compressed gas inside the aluminum shell body 8 enters the collection barrel 914, the aluminum slag and burrs falling on the aggregate plate 915 will be carried into the collection barrel 914 by the gas inside the aluminum shell body 8, realizing the automatic collection of burrs. As the sliding sleeve 901 continues to move upward, the reset ring 905 drives the sliding ring 906 to move upward, so that the ball hole 913 disengages from the clamping with the telescopic ball 912. At this time, the sliding sleeve 901 drives the sliding ring 906 to move upward through the reset ring 905, and the upward movement of the sliding ring 906 drives the mating ring 910 to disengage from the aluminum shell body 8. As the sliding sleeve 901 moves upward, the upper rack 101 and the lower rack 104 move relative to each other, so that the tool plate 103 retracts and disengages from the contact with the side wall of the aluminum shell body 8.
[0052] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments. What is described in the above embodiments and the specification only illustrates the principles of the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed.
Claims
1. A capacitor housing hole deburring device, characterized in that: It comprises a workbench (1), an outer wall polishing assembly (6), a material collecting assembly (9), an aluminum shell body (8) and a tool adjustment assembly (10); a rotating table (7) and a bracket (2) are installed on the workbench (1); and the aluminum shell body (8) is placed on the rotating table (7); The material collection assembly (9) comprises a sliding sleeve (901), a diaphragm (908) and a collection barrel (914); a mounting frame (3) is mounted on the bracket (2); a cylinder (4) is mounted on the mounting frame (3); an output end of the cylinder (4) is coaxially connected to the sliding sleeve (901); one end of the diaphragm (908) is slidably matched with the sliding sleeve (901); the other end of the diaphragm (908) is rotationally matched with the aluminum shell body (8); the sliding sleeve (901) is sleeved on the slide cylinder (911); the sliding sleeve (901) and the slide cylinder (911) are slidably matched; the collection barrel (914) is threadedly mounted on the bottom of the slide cylinder (911); a one-way opening collection port (916) is mounted on the collection barrel (914); the sliding sleeve (901) and the slide cylinder (911) are connected via a tool adjustment assembly (10); A sliding ring (906) and a pressure ring (909) are installed on the diaphragm (908); a sliding groove (907) is provided on the sliding ring (906); a matching ring (910) is rotatably installed on the pressure ring (909); the sliding sleeve (901) is connected to the reset ring (905) via a sliding rod (904); the sliding groove (907) and the sliding rod (904) are slidably matched, and the sliding ring (906) is located between the sliding sleeve (901) and the reset ring (905); and the matching ring (910) is sleeved on the opening of the aluminum shell body (8); The tool adjustment assembly (10) comprises a tool plate (103), an upper rotating rod (102) and a lower rotating rod (105); a transmission box (106) is installed on the slide cylinder (911); a gear (107) is rotatably installed in the transmission box (106); two sides of the gear (107) are respectively meshed with an upper rack (101) and a lower rack (104); the reset ring (905) is connected to the upper rack (101); the upper rack (101) is rotatably connected to one end of the upper rotating rod (102); the other end of the upper rotating rod (102) is rotatably connected to the tool plate (103); the lower rack (104) is rotatably connected to one end of the lower rotating rod (105); the other end of the lower rotating rod (105) is rotatably connected to the tool plate (103); The outer wall polishing assembly (6) comprises a sanding plate (62), an arc-shaped plate (61) is mounted on the workbench (1), a guide rod (64) is mounted on the sanding plate (62), the guide rod (64) and the arc-shaped plate (61) are slidably matched, the sanding plate (62) and the arc-shaped plate (61) are connected via a return spring (65), a magnet 1 (63) is mounted on the sanding plate (62), the sanding plate (62) is in contact with the outer wall of the aluminum shell body (8), and a magnet 2 (108) is mounted on the tool plate (103), the magnet 2 (108) and the magnet 1 (63) are attracted.
2. A capacitor housing hole deburring device according to claim 1, characterized in that: The sliding cylinder (911) is provided with a telescopic ball (912), the sliding ring (906) is provided with a ball hole (913), and the telescopic ball (912) is engaged with the ball hole (913).
3. A capacitor housing hole deburring device according to claim 1, characterized in that: The sliding sleeve (901) is provided with a vent (902), the vent (902) being in communication with the sliding cylinder (911), and a pressing block (903) is installed on the sliding sleeve (901), the pressing block (903) blocking the sliding cylinder (911).
4. A capacitor housing hole deburring device according to claim 1, characterized in that: A material collecting plate (915) is installed on the collecting barrel (914), a rotating plate (917) is rotatably installed in the collecting port (916), a stopper (918) is installed on the collecting port (916), the rotating plate (917) abuts against the stopper (918), and an arc spring (919) is installed on the rotating plate (917).
5. The capacitor housing hole deburring device according to claim 1, characterized in that: A motor (5) is installed inside the workbench (1), and an output end of the motor (5) is connected to a rotating table (7).
Citation Information
Patent Citations
Deburring device for outer shell porthole of capacitor
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A grinding device for deburring the edge of a rubber ring
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