Cutting device for capacitor heat dissipation aluminum shell

By coordinating the operation of the driving component and the fixed cutting component, and combining the continuous processing of the internal fixed aluminum shell with the feeding component and the straightening component, the problem of separate coordination between positioning cutting and unloading actions in the existing capacitor heat dissipation aluminum shell cutting device is solved, realizing efficient and precise aluminum shell cutting and automatic separation of waste materials.

CN120984984APending Publication Date: 2025-11-21DONGGUAN CHENGXING ELECTRONICS CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202511441988.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-10-10
Publication Date
2025-11-21

AI Technical Summary

Technical Problem

Existing capacitor heat dissipation aluminum shell cutting devices suffer from several problems: the positioning and cutting actions are coordinated in separate steps, affecting efficiency; cutting waste residue interferes with subsequent operations; and external pressure can easily cause deformation of the thin-walled aluminum shell, affecting cutting quality.

Method used

By employing the coordinated operation of the pushing component and the fixed cutting component, the aluminum shell is fixed from the inside through rubber fasteners. Combined with the continuous processing of the feeding component and the straightening component, the aluminum shell is automatically fitted, cut and pulled out. The cylindrical shape of the aluminum shell is used for rotational guidance, and finished products and waste materials are automatically separated.

Benefits of technology

It improved cutting quality and product qualification rate, reduced waste residue interference, improved overall equipment operating efficiency and aluminum shell cutting accuracy, and reduced manual intervention costs.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120984984A_ABST
    Figure CN120984984A_ABST
Patent Text Reader

Abstract

The invention discloses a capacitor heat dissipation aluminum shell cutting device, and relates to the technical field of aluminum shell circular saw cutting, the capacitor heat dissipation aluminum shell cutting device comprises a feeding assembly installed on the top of a supporting base, a pushing assembly installed on one side of the feeding assembly, and a pushing assembly installed on the other side of the feeding assembly; the feeding assembly and the pushing assembly are both connected with the top of the supporting base. When the heat dissipation aluminum shell is cut, the aluminum shell is pushed to the outside of the fixed cutting assembly through the pushing assembly, the fixed cutting assembly directly expands and fixes the aluminum shell from the inside of the aluminum shell, the situation that the aluminum shell deforms during fixing is avoided, the integrity of the original shape of a workpiece is guaranteed, and the cutting quality and the product percent of pass are improved; and meanwhile, the pushing assembly and the fixed cutting assembly are matched to complete sleeving, cutting and pulling-out actions of the aluminum shell, cooperative operation of the feeding assembly and the correcting assembly is combined, continuous machining of feeding one by one during discharging is achieved, the limitation that positioning cutting and discharging actions of traditional equipment are carried out step by step is broken through, and the overall operation efficiency of the equipment is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention relates to the field of aluminum shell circular saw cutting technology, and more particularly to a cutting device for aluminum shells used for capacitor heat dissipation. Background Technology

[0002] One type of capacitor encapsulation uses an aluminum shell, which is beneficial for improving its explosion-proof safety and efficient heat dissipation performance. After the aluminum shell is stamped, the excess edge of the aluminum shell needs to be cut off because different specifications of capacitors require different shell heights.

[0003] Currently, existing capacitor aluminum shell cutting equipment uses a step-by-step approach, where positioning and cutting are coordinated with the unloading action. This not only affects the overall operating efficiency of the equipment to some extent, but may also cause waste material to remain on the operating table, interfering with subsequent operations. In addition, because the side walls of the capacitor aluminum shell are relatively thin, when using external pressure for positioning and clamping and cutting with the cutter, improper force can easily cause deformation of the aluminum shell, which may affect the cutting quality of the workpiece. Summary of the Invention

[0004] In view of the problems existing in the current aluminum shell cutting device for capacitor heat dissipation, the present invention is proposed.

[0005] Therefore, the present invention provides a cutting device for aluminum shells for capacitor heat dissipation, the purpose of which is to solve the problems of efficiency being affected by the step-by-step coordination of positioning cutting and material feeding, the interference of cutting waste residue with subsequent operations, and the problem that external pressure can easily cause deformation of thin-walled aluminum shells, affecting cutting quality.

[0006] To solve the above-mentioned technical problems, the present invention provides the following technical solution: a capacitor heat dissipation aluminum shell cutting device, comprising a support base, a feeding and cutting unit, including a feeding component installed on the top of the support base, a pushing component installed on one side of the feeding component, and a pushing component installed on the other side of the feeding component, wherein the feeding component and the pushing component are both connected to the top of the support base; the feeding component includes a conveying component installed on the top of the support base, a guide block installed on the top of the conveying component, and a dividing component installed on the top of the conveying component; the pushing component includes a connecting seat one installed on the top of the support base, an electric push rod installed on the top of the connecting seat one, a push plate installed on the output end of the electric push rod, a connecting rod installed on the outer diameter of the push plate, and a rubber sliding ring installed on the other end of the connecting rod; a fixed cutting component includes a connecting seat two installed on the top of the support base, a driving component installed on the top of the connecting seat two, and a rubber fixing component installed on the output end of the driving component, wherein the rubber fixing component is slidably connected to the rubber sliding ring; and a unloading unit includes a straightening component installed on the top of the support base, and a limiting component installed on the top of the pushing component and the fixed cutting component, wherein the limiting component is slidably connected to the straightening component.

[0007] In a preferred embodiment of the capacitor heat dissipation aluminum shell cutting device of the present invention, a feeding component is installed on the top of the support base, and the feeding component is connected to the conveying component.

[0008] In a preferred embodiment of the capacitor heat dissipation aluminum shell cutting device of the present invention, a collection box is installed on the top of the support base, and the collection box is connected to the conveying component.

[0009] In a preferred embodiment of the capacitor heat dissipation aluminum shell cutting device of the present invention, a baffle plate is installed on the top of the support base, and the baffle plate is slidably connected to the conveyor.

[0010] In a preferred embodiment of the capacitor heat dissipation aluminum shell cutting device of the present invention, an adjusting component is installed on the top of the driving component, and a circular saw cutting head is installed at the output end of the adjusting component, and the circular saw cutting head is slidably connected to the driving component.

[0011] As a preferred embodiment of the capacitor heat dissipation aluminum shell cutting device of the present invention, the correction component includes a fixing member installed on the top of the support base, a return spring 1 slidably installed inside the fixing member, a moving block installed on the other end of the return spring 1, and a toothed plate installed on the other side of the moving block, wherein the toothed plate and the moving block are both slidably connected to the fixing member.

[0012] As a preferred embodiment of the capacitor heat dissipation aluminum shell cutting device of the present invention, wherein: a connecting seat three is installed on the top of the support base, a motor is installed on the top of the connecting seat three, and the motor is meshed with the toothed plate.

[0013] As a preferred embodiment of the capacitor heat dissipation aluminum shell cutting device of the present invention, wherein: a rotating rod is rotatably mounted on the top of the connecting seat three, and gears are mounted on both ends of the rotating rod, and the gears are meshed with the gear plate; a flipping limit plate is mounted on the outer diameter of the rotating rod, and the flipping limit plate cooperates with the conveying component.

[0014] As a preferred embodiment of the capacitor heat dissipation aluminum shell cutting device of the present invention, the limiting component includes a limiting rod installed on the top of the connecting seat 2 and the connecting seat 1, a reset spring 2 installed on the outer diameter of the limiting rod, and a movable plate installed between the reset spring 2, wherein the movable plate is slidably connected to the limiting rod.

[0015] In a preferred embodiment of the capacitor heat dissipation aluminum shell cutting device of the present invention, a guide plate is installed at the other end of the moving plate, a contact roller is rotatably installed on one side of the guide plate, and a guide wheel is rotatably installed at the bottom of the guide plate.

[0016] The beneficial effects of this invention are as follows: When cutting the heat dissipation aluminum shell, the pushing component pushes the aluminum shell to the outside of the fixed cutting component. The fixed cutting component expands and fixes directly from the inside of the aluminum shell, avoiding deformation of the aluminum shell during fixation, ensuring the integrity of the original shape of the workpiece, improving cutting quality and product qualification rate. At the same time, the pushing component and the fixed cutting component work together to complete the fitting, cutting and pulling action of the aluminum shell. Combined with the coordinated operation of the feeding component and the straightening component, continuous processing of unloading and feeding is achieved, breaking the limitation of the traditional equipment where positioning cutting and unloading actions are performed in separate steps, improving the overall operating efficiency of the equipment. Moreover, the limiting component uses the cylindrical characteristics of the aluminum shell to achieve rotational guidance, and works with the feeding component to automatically separate finished products and waste materials, effectively avoiding waste material residue on the operating table from interfering with subsequent processes, reducing manual cleaning costs. At the same time, through the automated feeding, cutting, separation and unloading process, manual intervention is reduced, improving the accuracy and cutting efficiency of aluminum shell cutting. Attached Figure Description

[0017] To more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings used in the following description of the embodiments will be briefly introduced. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0018] Figure 1 This is a schematic diagram of the overall structure of the aluminum shell cutting device for capacitor heat dissipation according to the present invention.

[0019] Figure 2 This is a top view of the aluminum shell cutting device for capacitor heat dissipation according to the present invention.

[0020] Figure 3 This is a schematic diagram of the conveying assembly structure of the capacitor heat dissipation aluminum shell cutting device of the present invention.

[0021] Figure 4 This is a schematic diagram of the cutting unit structure of the capacitor heat dissipation aluminum shell cutting device of the present invention.

[0022] Figure 5 This invention relates to an apparatus for cutting aluminum heat-dissipating casings for capacitors. Figure 4 A magnified structural diagram at point A.

[0023] Figure 6 This is a schematic diagram of the fixed cutting assembly structure of the capacitor heat dissipation aluminum shell cutting device of the present invention.

[0024] Figure 7 This is a schematic diagram of the material cutting unit structure of the aluminum shell cutting device for capacitor heat dissipation according to the present invention.

[0025] Figure 8 This is a schematic cross-sectional view of the cutting unit of the capacitor heat dissipation aluminum shell cutting device of the present invention.

[0026] Figure 9 This is a schematic diagram of the working process structure of the aluminum shell cutting device for capacitor heat dissipation according to the present invention.

[0027] Explanation of reference numerals in the attached drawings: 100, Support base; 200, Feeding and cutting unit; 201, Feeding assembly; 2011, Conveying component; 2012, Discharging component; 2013, Guide block; 2014, Dividing component; 2015, Baffle plate; 2016, Collection box; 202, Pushing assembly; 2021, Connecting seat one; 2022, Electric push rod; 2023, Push plate; 2024, Connecting rod; 2025, Rubber sliding ring; 203, Fixed cutting assembly; 2031, Connecting seat two; 2032, Driving component; 2033, Adjusting component; 2 034. Rubber fastener; 2035. Circular saw cutting head; 300. Feeding unit; 301. Correction assembly; 3011. Fastener; 3012. Return spring one; 3013. Moving block; 3014. Toothed plate; 3015. Motor; 3016. Gear; 3017. Rotating rod; 3018. Flipping limit plate; 3019. Connecting seat three; 302. Limiting assembly; 3021. Moving plate; 3022. Return spring two; 3023. Limiting rod; 3024. Guide plate; 3025. Contact roller; 3026. Guide wheel. Detailed Implementation

[0028] To make the above-mentioned objects, features and advantages of the present invention more apparent and understandable, the specific embodiments of the present invention will be described in detail below with reference to the accompanying drawings.

[0029] Example 1, referring to Figure 1 - Figure 2 The first embodiment of the present invention provides a cutting device for aluminum shells for capacitor heat dissipation. The device includes a support base 100, a feeding and cutting unit 200, and a unloading unit 300.

[0030] The feeding and cutting unit 200 includes a feeding component 201 mounted on the top of the support base 100, a pushing component 202 mounted on one side of the feeding component 201, and a pushing component 202 mounted on the other side of the feeding component 201. Both the feeding component 201 and the pushing component 202 are connected to the top of the support base 100. The unloading unit 300 includes a straightening component 301 mounted on the top of the support base 100, and a limiting component 302 mounted on the top of the pushing component 202 and the fixed cutting component 203. The limiting component 302 is slidably connected to the straightening component 301. When cutting the heat dissipation aluminum shell, the aluminum shell is placed on the feeding component 201. Inside component 01, with the cooperation of the straightening component 301, the feeding component 201 begins to transport the aluminum shell to the position between the pushing component 202 and the fixed cutting component 203. Then, when the aluminum shell is transported between the pushing component 202 and the fixed cutting component 203, it is limited by the top of the limiting component 302, so that the aluminum shell is confined between the pushing component 202 and the fixed cutting component 203. The pushing component 202 pushes the aluminum shell, so that the aluminum shell fits onto the outer diameter of the rubber fastener 2034 inside the fixed cutting component 203. Thus, the rubber fastener 2034 supports and fixes the interior of the aluminum shell, so that the aluminum shell is fixed on the outer diameter of the rubber fastener 2034, thereby enabling subsequent cutting.

[0031] After the fixed cutting component 203 is fixed, the aluminum shell begins to rotate and cut. After cutting, the pushing component 202 slides again, carrying the cut aluminum shell and the scrap material cut off and fitted onto the fixed cutting component 203. This pulls the aluminum shell and scrap material out together by the pushing component 202, causing them to fall onto the top of the feeding component 201. Then, the straightening component 301 drives the limiting component 302 to move upward, allowing the aluminum shell to pass through the bottom of the limiting component 302. Because the aluminum shell is cylindrical, as it passes the bottom of the limiting component 302, it slowly aligns with the limiting component. When component 302 contacts, the aluminum shell rotates and is tilted. The scrap lies on top of the feeding component 201, so it cannot contact the limiting component 302. With the cooperation of the feeding component 201, the cut aluminum shell enters the finished product collection area, and the scrap enters the scrap collection area, thus achieving automatic separation of the product and the scrap. When the straightening component 301 drives the limiting component 302 to unload the finished aluminum shell, the straightening component 301 also begins to feed the next aluminum shell, thus completing automatic feeding and unloading, and continuously processing and cutting.

[0032] During use, when cutting the heat dissipation aluminum shell, the aluminum shell is placed inside the feeding assembly 201. With the cooperation of the straightening assembly 301, the feeding assembly 201 begins to transport the aluminum shell between the pushing assembly 202 and the fixed cutting assembly 203. Then, when the aluminum shell is transported between the pushing assembly 202 and the fixed cutting assembly 203, it is limited by the top of the limiting assembly 302, so that the aluminum shell is confined between the pushing assembly 202 and the fixed cutting assembly 203. The pushing assembly 202 pushes the aluminum shell, so that the aluminum shell fits onto the outer diameter of the rubber fastener 2034 inside the fixed cutting assembly 203. Thus, the rubber fastener 2034 supports and fixes the interior of the aluminum shell, so that the aluminum shell is fixed on the outer diameter of the rubber fastener 2034, thereby allowing subsequent cutting to be carried out and preventing the aluminum shell from deforming during the fixing process.

[0033] After the fixed cutting component 203 is fixed, the aluminum shell begins to rotate and cut. After cutting, the pushing component 202 slides again, carrying the cut aluminum shell and the scrap material cut off and fitted onto the fixed cutting component 203. This pulls the aluminum shell and scrap material out together, onto the top of the feeding component 201. Then, the straightening component 301 drives the limiting component 302 to move upward, allowing the aluminum shell to pass through the bottom of the limiting component 302. Because the aluminum shell is cylindrical, it slowly contacts the limiting component 302 as it passes through, thus allowing the aluminum shell to... The rotation guides the aluminum shell to an inclined state, while the scrap lies on top of the feeding component 201. Therefore, the scrap cannot contact the limiting component 302. With the cooperation of the feeding component 201, the cut aluminum shell enters the finished product collection area, and the scrap enters the scrap collection area, thus achieving automatic separation of products and scrap. Furthermore, when the straightening component 301 drives the limiting component 302 to unload the finished aluminum shell, the straightening component 301 also begins to feed the next aluminum shell, thereby completing automatic feeding and unloading, continuously processing and cutting, reducing manual intervention, and improving the accuracy and efficiency of aluminum shell cutting.

[0034] Example 2, refer to Figure 1 - Figure 6This is the second embodiment of the present invention, which differs from the first embodiment in that: the feeding assembly 201 includes a conveyor 2011 mounted on the top of the support base 100, a guide block 2013 mounted on the top of the conveyor 2011, and a dividing member 2014 mounted on the top of the conveyor 2011; a discharging member 2012 is mounted on the top of the support base 100 and is connected to the conveyor 2011; a collection box 2016 is mounted on the top of the support base 100 and is connected to the conveyor 2011; a baffle plate 2015 is mounted on the top of the support base 100 and is slidably connected to the conveyor 2011; and the pushing assembly 202 includes a connecting seat 2021 mounted on the top of the support base 100, an electric push rod 2022 mounted on the top of the connecting seat 2021, and a dividing member 2014 mounted on the electric push rod. The push plate 2023 at the output end of 2022, the connecting rod 2024 installed on the outer diameter of the push plate 2023, and the rubber sliding ring 2025 installed on the other end of the connecting rod 2024, when cutting the aluminum shell, the aluminum shell is placed inside the feeding component 2012 and conveyed to the top of the conveying component 2011 by the feeding component 2012. At the same time, it is limited by the guide block 2013 and conveyed by the conveying component 2011 to the electric push rod 2022 and the connecting seat 2031, where it is fixed by the limiting component 302. Then, the electric push rod 2022 at the top of the connecting seat 2021 begins to extend. Assuming that the inner diameter of the aluminum shell is 136mm and the diameter of the rubber fixing component 2034 is 137mm, since the rubber surface is elastic, the aluminum shell can be fitted onto the outer diameter of the rubber fixing component 2034 under the action of the push plate 2023, waiting for subsequent cutting.

[0035] Compared to Embodiment 1, the fixed cutting assembly 203 further includes a connecting seat 2031 mounted on the top of the support base 100, a driving member 2032 mounted on the top of the connecting seat 2031, and a rubber fixing member 2034 mounted on the output end of the driving member 2032. The rubber fixing member 2034 is slidably connected to the rubber sliding ring 2025. An adjusting member 2033 is mounted on the top of the driving member 2032, and a circular saw cutting head 2035 is mounted on the output end of the adjusting member 2033. The circular saw cutting head 2035 is connected to the driving member 2032. In a sliding connection, assuming the inner diameter of the aluminum shell is 136mm and the diameter of the rubber fastener 2034 is 137mm, due to the elasticity of the rubber surface, the aluminum shell can be fitted onto the outer diameter of the rubber fastener 2034 under the action of the pusher 2023. The rubber fastener 2034 fits against the inside of the aluminum shell. Subsequently, the drive component 2032 drives the rubber fastener 2034 to rotate. Due to the friction between the outer wall of the rubber fastener 2034 and the inner wall of the aluminum shell, the aluminum shell will rotate synchronously with the rubber fastener 2034. The adjusting component 2033... The circular saw head 2035 is driven and lowered to cut the aluminum shell on the outer diameter of the rubber fastener 2034. After the circular saw head 2035 completes the cutting, the adjusting part 2033 moves upward again, and the electric push rod 2022 begins to retract, causing the connecting rod 2024 to move along the rubber sliding ring 2025 on the outer diameter of the rubber fastener 2034. The rubber sliding ring 2025 scrapes off the cut aluminum shell and the waste material left on the outer diameter of the rubber fastener 2034. The cut aluminum shells and waste materials fall onto the top of the conveyor 2011. Then, the corrector 301 drives the limiting 302 to move the cut aluminum shells. Under the action of the limiting 302, the cut aluminum shells are deflected. Thus, under the division of the dividing 2014, the cut aluminum shells and waste materials are automatically screened and fall into the collection box 2016. At the same time, the baffle 2015 blocks the deflected aluminum shells to prevent them from falling, thus completing the automatic screening and separation of the cut aluminum shells.

[0036] During use, when cutting the aluminum shell, the aluminum shell is placed inside the feeding component 2012 and conveyed to the top of the conveying component 2011 by the feeding component 2012. At the same time, it is limited by the guide block 2013 and conveyed by the conveying component 2011 to the electric push rod 2022 and the connecting seat 2031, where it is fixed by the limiting component 302. Then, the electric push rod 2022 at the top of the connecting seat 2021 begins to extend. Assuming that the inner diameter of the aluminum shell is 136mm and the diameter of the rubber fixing component 2034 is 137mm, since the rubber surface is elastic, the aluminum shell can be fitted onto the outer diameter of the rubber fixing component 2034 under the action of the push plate 2023, waiting for subsequent cutting.

[0037] Assuming the inner diameter of the aluminum shell is 136mm and the diameter of the rubber fastener 2034 is 137mm, due to the elasticity of the rubber surface, the aluminum shell can be fitted onto the outer diameter of the rubber fastener 2034 under the action of the push plate 2023. The rubber fastener 2034 fits against the inside of the aluminum shell. Subsequently, the drive component 2032 drives the rubber fastener 2034 to rotate. Due to the friction between the outer wall of the rubber fastener 2034 and the inner wall of the aluminum shell, the aluminum shell will rotate synchronously with the rubber fastener 2034. The adjusting component 2033 starts to drive and lower the circular saw cutting head 2035 to cut the aluminum shell on the outer diameter of the rubber fastener 2034. After the circular saw cutting head 2035 completes the cutting, the adjusting component 2033 moves upward again, and the electric push rod 2022 begins to retract, thereby causing the connecting rod 2024 to... The rubber sliding ring 2025 moves in a contraction motion on the outer diameter of the rubber fixing member 2034. The rubber sliding ring 2025 scrapes down the cut aluminum shell and the waste material left on the outer diameter of the rubber fixing member 2034, so that the cut aluminum shell and waste material fall on the top of the conveyor 2011. Then, the correcting component 301 drives the limiting component 302 to move the cut aluminum shell. Under the action of the limiting component 302, the cut aluminum shell is deflected. Thus, under the division of the dividing component 2014, the cut aluminum shell and waste material are automatically screened and fall into the collection box 2016. At the same time, the baffle plate 2015 blocks the deflected aluminum shell to prevent it from falling, thus completing the automatic screening and separation of the cut aluminum shell.

[0038] Reference Figure 9 The aluminum shell is conveyed at the top of the guide block 2013. When it reaches the guide plate 3024, it is stopped and limited by the guide plate 3024 as shown in Figure (1). Then, the electric push rod 2022 begins to extend, pushing the aluminum shell onto the outer diameter of the rubber fastener 2034 until the aluminum shell is fitted onto the outer diameter of the rubber fastener 2034 as shown in Figure (2). After the aluminum shell is pushed and fitted onto the rubber fastener 2034 by the electric push rod 2022, the drive member 2032 rotates the rubber fastener 2034. Furthermore, due to the friction of the rubber fastener 2034, the aluminum shell rotates along with the rubber fastener 2034, and the circular saw cutting head 2035 moves downward to cut as shown in Figure (3). After the aluminum shell is cut, the electric push rod 2022 begins to retract, and moves along with the rubber sliding ring 2025, so that the rubber sliding ring 2025 pulls the aluminum shell and the waste generated by cutting on the outer diameter of the rubber fastener 2034 together, and falls back onto the top of the guide block 2013 to complete the cutting as shown in Figure (4).

[0039] The remaining structure is the same as that in Example 1.

[0040] Example 3, referring to Figure 1 - Figure 8 This is the third embodiment of the present invention, which differs from the second embodiment in that: the correction component 301 includes a fixing member 3011 mounted on the top of the support base 100, a return spring 3012 slidably mounted inside the fixing member 3011, a moving block 3013 mounted on the other end of the return spring 3012, and a toothed plate 3014 mounted on the other side of the moving block 3013. Both the toothed plate 3014 and the moving block 3013 are slidably connected to the fixing member 3011. A connecting seat 3019 is mounted on the top of the support base 100, and a motor 3015 is mounted on the top of the connecting seat 3019. The motor 3015 is meshed with the toothed plate 3014, and the top of the connecting seat 3019 rotates. A rotating rod 3017 is installed, with gears 3016 installed at both ends of the rotating rod 3017. The gears 3016 mesh with the gear plate 3014. A flip-limiting plate 3018 is installed on the outer diameter of the rotating rod 3017, and the flip-limiting plate 3018 cooperates with the conveying component 2011. The limiting assembly 302 includes a limiting rod 3023 installed on the top of the connecting seat 2031 and the connecting seat 1 2021, a second return spring 3022 installed on the outer diameter of the limiting rod 3023, and a moving plate 3021 installed between the second return spring 3022. The moving plate 3021 is slidably connected to the limiting rod 3023. A guide plate 3024 is installed on the other end of the moving plate 3021. A contact roller 3025 is rotatably mounted on the side, and a guide roller 3026 is rotatably mounted on the bottom of the guide plate 3024. After the fixed cutting assembly 203 completes the cutting of the aluminum shell, the pushing assembly 202 pulls the aluminum shell off the fixed cutting assembly 203. Then, the motor 3015 drives the toothed plate 3014 to move inside the fixing member 3011. At the same time, the moving block 3013, along with the moving toothed plate 3014, begins to press against the return spring 3012, thereby pressing the moving plate 3021 against the moving plate 3021. This causes the moving plate 3021 to move upward on the outer diameter of the limiting rod 3023. Simultaneously, the guide plate 3024 and the contact roller 3025 also move upward, completing the cutting. The aluminum shell can move from the bottom of the contact roller 3025. Simultaneously, through the conveyor 2011, the cut aluminum shell, as it passes the bottom of the contact roller 3025 and the guide plate 3024, contacts the guide wheel 3026 at the bottom of the guide plate 3024. Because the guide wheel 3026 is inclined, the cut aluminum shell gradually changes direction and becomes inclined. At the same time, the cut aluminum shell is adjusted along the direction of the guide block 2013. Since the waste falls directly onto the top of the conveyor 2011, the waste does not contact the guide wheel 3026 and thus remains unchanged. Under the division of the divider 2014, the automatic separation and collection of the aluminum shell and waste are completed.

[0041] During the movement of the guide plate 3024 driven by the motor 3015, the reset spring 3022 also buffers and stabilizes the movement of the guide plate 3024 and the moving plate 3021. During the movement of the toothed plate 3014, the gear 3016 also rotates the rotating rod 3017 and the flipping limit plate 3018 on the top of the conveyor 2011, so that the next aluminum shell can continue to be conveyed and conveyed between the pushing component 202 and the fixed cutting component 203 for cutting. Thus, the motor 3015 can drive the unloading while also directly loading, completing the entire process operation from automatic loading to fixed cutting to unloading to separation.

[0042] During use, after the fixed cutting assembly 203 completes the cutting of the aluminum shell, the pushing assembly 202 pulls the aluminum shell off the fixed cutting assembly 203. Then, the motor 3015 drives the toothed plate 3014 to move inside the fixing member 3011. Simultaneously, the moving block 3013, along with the toothed plate 3014, begins to press against the return spring 3012, causing the moving block 3013 to press against the moving plate 3021. This causes the moving plate 3021 to move upwards along the outer diameter of the limiting rod 3023. At the same time, the guide plate 3024 and the contact roller 3025 also move upwards, allowing the cut aluminum shell to be removed from the fixing member. The bottom of the contact roller 3025 moves, and the aluminum shell is conveyed by the conveyor 2011. When the aluminum shell passes the bottom of the contact roller 3025 and the guide plate 3024, it contacts the guide wheel 3026 at the bottom of the guide plate 3024. Because the guide wheel 3026 is inclined, the aluminum shell also slowly changes direction and becomes inclined. At the same time, the aluminum shell is adjusted along the direction of the guide block 2013. Since the waste falls directly on the top of the conveyor 2011, the waste does not contact the guide wheel 3026 and does not change. Under the division of the divider 2014, the automatic separation and collection of the aluminum shell and the waste are completed.

[0043] During the movement of the guide plate 3024 driven by the motor 3015, the reset spring 3022 also buffers and stabilizes the movement of the guide plate 3024 and the moving plate 3021. During the movement of the toothed plate 3014, the gear 3016 also rotates the rotating rod 3017 and the flipping limit plate 3018 on the top of the conveying component 2011, so that the next aluminum shell can continue to be conveyed and transported between the pushing component 202 and the fixed cutting component 203 for cutting. This realizes that the motor 3015 can drive the unloading while also directly loading, completing the entire process operation from automatic loading to fixed cutting to unloading to separation. This breaks the limitation of the traditional equipment where positioning cutting and unloading actions are performed in separate steps, and improves the overall operating efficiency of the equipment.

[0044] The remaining structure is the same as that in Example 2.

[0045] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit it. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of the present invention without departing from the spirit and scope of the technical solutions of the present invention, and all such modifications or substitutions should be covered within the scope of the claims of the present invention.

Claims

1. A device for cutting aluminum shells for capacitor heat dissipation, comprising a support base (100), characterized in that: It also includes, The feeding and cutting unit (200) includes a feeding assembly (201) mounted on the top of the support base (100), a pushing assembly (202) mounted on one side of the feeding assembly (201), and a pushing assembly (202) mounted on the other side of the feeding assembly (201), and both the feeding assembly (201) and the pushing assembly (202) are connected to the top of the support base (100); The feeding assembly (201) includes a conveyor (2011) mounted on top of a support base (100), a guide block (2013) mounted on top of the conveyor (2011), and a divider (2014) mounted on top of the conveyor (2011). The push assembly (202) includes a connecting seat (2021) mounted on the top of the support base (100), an electric push rod (2022) mounted on the top of the connecting seat (2021), a push plate (2023) mounted on the output end of the electric push rod (2022), a connecting rod (2024) mounted on the outer diameter of the push plate (2023), and a rubber sliding ring (2025) mounted on the other end of the connecting rod (2024). The fixed cutting assembly (203) includes a second connecting seat (2031) mounted on the top of the support base (100), a driving member (2032) mounted on the top of the second connecting seat (2031), and a rubber fixing member (2034) mounted on the output end of the driving member (2032), and the rubber fixing member (2034) is slidably connected to the rubber sliding ring (2025); The unloading unit (300) includes a straightening component (301) mounted on top of a support base (100) and a limiting component (302) mounted on top of a pushing component (202) and a fixed cutting component (203), and the limiting component (302) is slidably connected to the straightening component (301).

2. The capacitor heat dissipation aluminum shell cutting device according to claim 1, characterized in that: The top of the support base (100) is equipped with a feeding component (2012), and the feeding component (2012) is connected to the conveyor (2011).

3. The capacitor heat dissipation aluminum shell cutting device according to claim 2, characterized in that: A collection box (2016) is mounted on the top of the support base (100), and the collection box (2016) is connected to the conveyor (2011).

4. The capacitor heat dissipation aluminum shell cutting device according to claim 3, characterized in that: A baffle plate (2015) is mounted on the top of the support base (100), and the baffle plate (2015) is slidably connected to the conveyor (2011).

5. The capacitor heat dissipation aluminum shell cutting device according to claim 4, characterized in that: An adjusting component (2033) is mounted on the top of the driving component (2032), and a circular saw cutting head (2035) is mounted on the output end of the adjusting component (2033), and the circular saw cutting head (2035) is slidably connected to the driving component (2032).

6. The capacitor heat dissipation aluminum shell cutting device according to claim 5, characterized in that: The correction assembly (301) includes a fixing member (3011) mounted on the top of the support base (100), a return spring (3012) slidably mounted inside the fixing member (3011), a moving block (3013) mounted on the other end of the return spring (3012), and a toothed plate (3014) mounted on the other side of the moving block (3013), wherein both the toothed plate (3014) and the moving block (3013) are slidably connected to the fixing member (3011).

7. The capacitor heat dissipation aluminum shell cutting device according to claim 6, characterized in that: A connecting seat three (3019) is installed on the top of the support base (100), and a motor (3015) is installed on the top of the connecting seat three (3019), and the motor (3015) is meshed with the toothed plate (3014).

8. The capacitor heat dissipation aluminum shell cutting device according to claim 7, characterized in that: A rotating rod (3017) is rotatably mounted on the top of the connecting seat three (3019). Gears (3016) are mounted on both ends of the rotating rod (3017), and the gears (3016) mesh with the toothed plate (3014). A flipping limit plate (3018) is mounted on the outer diameter of the rotating rod (3017), and the flipping limit plate (3018) cooperates with the conveyor (2011).

9. The capacitor heat dissipation aluminum shell cutting device according to claim 8, characterized in that: The limiting assembly (302) includes a limiting rod (3023) installed on the top of the connecting seat two (2031) and the connecting seat one (2021), a reset spring two (3022) installed on the outer diameter of the limiting rod (3023), and a moving plate (3021) installed between the reset spring two (3022), and the moving plate (3021) is slidably connected to the limiting rod (3023).

10. The capacitor heat dissipation aluminum shell cutting device according to claim 9, characterized in that: A guide plate (3024) is installed at the other end of the movable plate (3021). A contact roller (3025) is rotatably installed on one side of the guide plate (3024), and a guide wheel (3026) is rotatably installed at the bottom of the guide plate (3024).