Automatic stacking device for radiator fins
By designing an automatic chip device including a cleaning mechanism and a moving mechanism, the problem of impurities affecting the use during fin storage is solved, and the automatic cleaning and storage of fins is realized, and the working efficiency and cleanliness are improved.
Patent Information
- Application Number
- CN202510358997.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-25
- Publication Date
- 2025-06-06
AI Technical Summary
In the prior art, when storing the fins of the radiator, the remaining impurities on the fins will affect the working performance for subsequent use, resulting in low working efficiency.
An automatic chip device is designed, including a conveyor rack, a bracket, a moving mechanism and a storage rack. By cleaning the air outlet plate in the mechanism and cleaning cotton, impurities on the surface of the fins are cleaned, and automatic chips and storage of the fins are realized through clamping components and moving mechanisms.
Effectively remove impurities on the fins, ensure the cleanliness of the fins, improve work efficiency, and facilitate subsequent fins to be picked up and used.
Smart Images

Figure CN120097091A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of fin storage, and in particular to an automatic fin arrangement device for a radiator fin. Background Art
[0002] After the radiator fins are produced, they need to be neatly arranged to achieve efficient handling. Neat storage directly affects the smooth progress of subsequent processes and the performance of the final product.
[0003] At present, a code piece device is usually used to transport the fins, wherein the code piece device includes a moving structure and a clamping mechanism connected to the moving mechanism. The fins are clamped and fixed by the clamping mechanism, and the moving mechanism moves the clamping mechanism to the stacking place of the fins, so that the clamping mechanism carries the fins to a fixed position for storage.
[0004] During the production process of the radiator fins, a lot of debris and other impurities will remain on the fins after cutting and other processes. After production is completed, the clamping mechanism directly clamps the fins and moves them, so that the impurities are retained on the fins for storage. As a result, when the fins are taken out for subsequent use, the fins containing impurities may malfunction during use, affecting work efficiency, so there is room for improvement. Summary of the invention
[0005] In order to improve the storage of fins with impurities, the impurities will affect the working performance of the fins when they are subsequently taken out for use, resulting in a problem of low working efficiency. The present application provides an automatic fin coding device for a radiator.
[0006] The present application provides a radiator fin automatic chip device adopts the following technical solution: A radiator fin automatic coding device comprises a conveying frame, a bracket, a moving mechanism and a storage rack, wherein the bracket is located above the conveying frame, the moving mechanism is arranged on the bracket, the storage rack is located on one side of the conveying frame, the moving mechanism can move back and forth between the conveying frame and the storage rack, the moving mechanism is connected to the conveying frame, the conveying frame is provided with a clamping assembly and a cleaning mechanism, the cleaning mechanism comprises a cleaning frame, an air pipe and an air outlet plate, the cleaning frame is arranged on the conveying frame, the air pipe and the air outlet plate are arranged on the cleaning frame, the air pipe is used to convey gas to the air outlet plate, and the air outlet plate is provided with a plurality of air outlet holes facing the conveying frame.
[0007] By adopting the above technical solution, in the initial state, the moving mechanism drives the transport rack to align with the conveying rack. When the radiator fin processing is completed, the conveying rack transports the fin to the bottom of the bracket. During this process, the fin will pass through the cleaning mechanism, that is, the air outlet plate moves relatively above the fin, and the air pipe is started to fill the air into the air outlet plate, so that the gas is sprayed on the fin below through the air outlet hole. The high-speed airflow generated during blowing can impact and peel off impurities attached to the upper surface of the fin to achieve cleaning of the fin.
[0008] When the entire fin has passed through the air outlet plate and reached the bottom of the clamping assembly, the clamping assembly is started to clamp the fin on the conveying rack, and then the moving mechanism is started to drive the clamping assembly to move up with the fin and move toward the storage rack until the fin is inserted into the storage rack, completing the storage of the fin so that the subsequent fin can be directly taken and used. The working efficiency of the cleaner fin is not easily affected.
[0009] Optionally, the moving mechanism includes a translation assembly and a lifting assembly, the translation assembly is arranged on the bracket, the lifting assembly is connected to the translation assembly, the translation assembly is used to drive the lifting assembly to move horizontally, the transport frame is connected to the lifting assembly, and the lifting assembly is used to drive the transport frame to move up and down.
[0010] By adopting the above technical solution, the lifting assembly is started to drive the transport rack to move up and down with the clamping assembly, so that the fins can be picked up from the conveying rack and placed down on the storage rack for storage. In this process, the translation assembly is started so that the lifting assembly can move horizontally with the transport rack, so that the fins can be transported back and forth between the conveying rack and the storage rack.
[0011] Optionally, the translation assembly includes a translation motor, a translation rod and a translation block, the translation motor is arranged on the bracket, the translation rod is arranged in the horizontal direction, and the end of the translation rod is rotatably connected to the bracket, the translation motor is coaxially fixed to one end of the translation rod and is used to drive the translation rod to rotate, the translation block is mounted on the translation rod and is threadedly connected to the translation rod, and the translation rod rotates to drive the translation block to move horizontally.
[0012] By adopting the above technical solution, the translation motor is started to drive the translation rod to rotate. Since the translation rod is threadedly connected to the translation block, the translation block moves along the length direction of the translation rod, driving the lifting assembly and the transport rack to move, so that the clamping assembly with the fins is moved from the conveying rack to the storage rack for storage.
[0013] Optionally, the lifting assembly includes a lifting motor, a lifting rod and a lifting block, the lifting motor is arranged on the translation block, the lifting rod is arranged in the vertical direction, and the end of the lifting rod is rotatably connected to the translation block, the output end of the lifting motor is coaxially fixed with one end of the lifting rod to drive the lifting rod to rotate, the lifting block is sleeved on the lifting rod and threadedly connected to the lifting rod, and the lifting rod rotates to drive the lifting block to move vertically.
[0014] By adopting the above technical solution, the lifting motor is started to drive the lifting rod to rotate. Since the lifting rod is threadedly connected to the lifting block, the lifting block moves along the length direction of the lifting rod, driving the conveying frame to move up and down, so that the clamping assembly can clamp the fin and lift it off the conveying frame. At the same time, the clamping assembly can also move downward to place the fin on the storage rack.
[0015] Optionally, the lifting block is connected to the transport frame via a flipping assembly, the flipping assembly includes a flipping cylinder and a connecting rod, the flipping cylinder is arranged on the lifting block, one end of the connecting rod is hinged to the output end of the flipping cylinder, and the other end is rotatably connected to the lifting block via a rotating shaft, and the transport frame is fixed to the rotating shaft.
[0016] By adopting the above technical solution, the fins are transported by the conveyor rack in a lying state. After the clamping assembly clamps the fins, the flipping assembly is started to drive the conveying rack to rotate 90°, so that the fins are in a vertical state. Then the translation assembly moves the fins to the storage rack, and the lifting assembly drives the fins downward and inserts them into the storage rack, so that several fins are arranged in a vertical state in sequence. Compared with several fins stacked flat, it is more convenient to take and use the fins later.
[0017] Optionally, the clamping assembly includes relatively arranged movable cylinders, the movable cylinders are arranged on the transport frame, the output ends of the movable cylinders are connected to clamping claws, and the movable cylinders are used to drive the clamping claws to move closer to or away from the center of the transport frame.
[0018] By adopting the above technical solution, in the initial state, the relative moving cylinders drive the clamps to move away from each other, so that the distance between the two relative clamps is larger. When the fin moves to directly below the clamping assembly, the lifting assembly drives the clamps to move downward until the fin is located between the relative clamps. Then the moving cylinders are started to drive the relative clamps to approach each other, that is, the clamps move toward the center of the transport frame until the relative clamps are in contact with the fin, so that the peripheral side of the fin is subjected to an inward squeezing force, thereby achieving the clamping and fixing of the fin by the clamps.
[0019] Optionally, the cleaning mechanism further includes a plurality of cleaning plates and a plurality of cleaning cottons, wherein the plurality of cleaning plates are arranged on the cleaning frame, the plurality of cleaning cottons correspond one-to-one to the cleaning plates, and the cleaning cottons cover the side of the cleaning plates facing the conveying frame.
[0020] By adopting the above technical solution, when the fins pass through the cleaning rack, the cleaning cotton contacts the surface of the fins and slides relatively on the surface of the fins, thereby cleaning the impurities on the fins to prevent the air outlet plate from blowing air and blowing the impurities on the fins to gather in the middle of the fins. The cleaning cotton can clean these impurities out of the fins, thereby improving the cleanliness of the fins.
[0021] Optionally, the cleaning frame is provided with a rotating motor and a plurality of rotating gears. The rotating motor is arranged on the cleaning frame and is coaxially fixed with one of the rotating gears. The rotating motor is used to drive the rotating gear to rotate. The plurality of rotating gears correspond to the cleaning plates one by one, and the rotating gear is coaxially fixed with the corresponding cleaning plates, and the plurality of rotating gears are meshed with each other.
[0022] By adopting the above technical solution, when the fin slides on the cleaning cotton, the rotating motor is started to drive one of the rotating gears to rotate, and the remaining rotating gears are driven to rotate synchronously, so that the cleaning plate rotates with the cleaning cotton, and the self-rotation of the cleaning cotton can increase the contact and friction with the impurities on the fins, thereby improving the cleaning ability. As a result, when the cleaning cotton moves relatively in a straight line on the fin, that is, while cleaning the fin in a straight line, the self-rotation of the cleaning cotton can contact the fin more comprehensively, increase the cleaning area, and thus improve the overall cleaning effect. This combination of rotational motion and linear motion can increase the cleaning force, making it less likely for impurities to remain on the fins and easier to clean.
[0023] Optionally, a winding roller and a release roller are rotatably connected to the cleaning plate, one end of the cleaning cotton is fixed on the winding roller, and the other end is fixed on the release roller, and the cleaning cotton is wound around the winding roller and the release roller.
[0024] By adopting the above technical solution, when the cleaning cotton cleans the fins, some impurities will adhere to the cleaning cotton, and the impurities will occupy the pores and fiber gaps of the cleaning cotton, resulting in a reduction in the effective cleaning area of the cleaning cotton, hindering its contact and absorption of more dirt, and reducing the cleaning ability of the cleaning cotton. At this time, the winding roller and the release roller are driven to rotate, so that the cleaning cotton originally attached to the cleaning plate is wound on the winding roller, and the clean cleaning cotton on the release roller is released and attached to the cleaning plate, thereby realizing the replacement of the cleaning cotton, ensuring that after long-term use, there is still clean cleaning cotton to clean the fins, thereby ensuring the cleaning ability of the fins.
[0025] Optionally, the winding roller and the release roller are located on the diameter of the cleaning plate, and are arranged up and down. The winding roller and the release roller are both fixedly sleeved with a transmission gear, and the two transmission gears are meshed with each other. The cleaning frame is provided with a crown gear, and the crown gear can move up and down, and the crown gear can mesh with one of the transmission gears.
[0026] By adopting the above technical solution, when the cleaning cotton is performing cleaning work, that is, when the cleaning plate rotates with the cleaning cotton, the crown teeth are located above the transmission gear, so that the crown teeth and the transmission gear are separated, thereby not interfering with the rotation of the cleaning plate. When the cleaning cotton needs to be replaced, the crown teeth are moved down so that the crown teeth are meshed with one of the transmission gears, and then the crown teeth are rotated to drive the transmission gear to rotate, so that the other transmission gear rotates synchronously, so that the winding roller and the release roller rotate at the same time, so as to realize the release and winding of the cleaning cotton, and complete the replacement of the cleaning cotton.
[0027] In summary, the present application includes at least one of the following beneficial effects: 1. When the fins slide on the cleaning cotton, start the rotating motor to drive one of the rotating gears to rotate, and drive the other rotating gears to rotate synchronously, so that the cleaning plate rotates with the cleaning cotton. The self-rotation of the cleaning cotton can increase the contact and friction with the impurities on the fins, and improve the cleaning ability. As a result, when the cleaning cotton moves relatively in a straight line on the fins, that is, while cleaning the fins in a straight line, the self-rotation of the cleaning cotton can contact the fins more comprehensively, increase the cleaning area, and thus improve the overall cleaning effect. This combination of rotational motion and linear motion can increase the cleaning force, making it less likely for impurities to remain on the fins and easier to clean; 2. When the cleaning cotton cleans the fins, some impurities will adhere to the cleaning cotton. The impurities will occupy the pores and fiber gaps of the cleaning cotton, resulting in a reduction in the effective cleaning area of the cleaning cotton, hindering its contact and absorption of more dirt, and reducing the cleaning ability of the cleaning cotton. At this time, the winding roller and the release roller are driven to rotate, so that the cleaning cotton originally attached to the cleaning plate is wound on the winding roller, and the clean cleaning cotton on the release roller is released and attached to the cleaning plate, so as to realize the replacement of the cleaning cotton and ensure that after long-term use, there is still clean cleaning cotton to clean the fins, thereby ensuring the cleaning ability of the fins. BRIEF DESCRIPTION OF THE DRAWINGS
[0028] Figure 1 This is a schematic diagram of the structure of the automatic fin chip device for the radiator according to the embodiment of the present application; Figure 2 It is a structural schematic diagram of the mobile mechanism; Figure 3 It is a schematic diagram of the structure of the cleaning mechanism.
[0029] In the figure: 10, conveying rack; 20, bracket; 30, storage rack; 40, moving mechanism; 41, translation assembly; 411, translation motor; 412, translation rod; 413, translation block; 42, lifting assembly; 421, lifting motor; 422, lifting rod; 423, lifting block; 50, flip assembly; 51, flip cylinder; 52, connecting rod; 60, transport rack; 70, clamping assembly; 71, moving cylinder; 72, clamping claw; 80, cleaning mechanism; 81, cleaning rack; 811, rotating motor; 812, rotating gear; 82, air pipe; 83, air outlet plate; 84, cleaning plate; 841, winding roller; 842, release roller; 843, transmission gear; 85, cleaning cotton; 90, crown tooth. DETAILED DESCRIPTION
[0030] The following is combined with Figure 1-3 This application is described in further detail.
[0031] The present application embodiment discloses a radiator fin automatic chip device. Figure 1 and Figure 2 The radiator fin automatic code chip device includes a conveying frame 10, a bracket 20, a moving mechanism 40 and a storage frame 30. The bracket 20 is located above the conveying frame 10, the moving mechanism 40 is arranged on the bracket 20, the storage frame 30 is located on the side of the conveying frame 10, and the storage frame 30 is serrated, and the fins can be inserted between adjacent serrations. The moving mechanism 40 can go back and forth between the conveying frame 10 and the storage frame 30. The moving mechanism 40 is connected to the conveying frame 60, and the conveying frame 60 is provided with a clamping assembly 70 and a cleaning mechanism 80. The cleaning mechanism 80 includes a cleaning frame 81, an air pipe 82 and an air outlet plate 83. The cleaning frame 81 is arranged on the conveying frame 60, and the air pipe 82 and the air outlet plate 83 are arranged on the cleaning frame 81. The air pipe 82 is used to transport gas to the air outlet plate 83, and a plurality of air outlet holes are opened on the bottom wall of the air outlet plate 83.
[0032] Reference Figure 1 and Figure 2 In the initial state, the moving mechanism 40 drives the transport rack 60 to align with the conveying rack 10. When the radiator fin processing is completed, the conveying rack 10 transports the fin to the bottom of the bracket 20. During this process, the fin will pass through the cleaning mechanism 80, that is, the air outlet plate 83 moves relatively above the fin, and the air pipe 82 is started to fill the air into the air outlet plate 83, so that the gas is sprayed on the fin below through the air outlet hole. The high-speed airflow generated during the blowing can impact and peel off the impurities attached to the upper surface of the fin to achieve the cleaning of the fin.
[0033] When the entire fin has passed through the air outlet plate 83 and reaches the bottom of the clamping assembly 70, the clamping assembly 70 is started to clamp the fin on the conveying rack 10, and then the moving mechanism 40 is started to drive the clamping assembly 70 to move up with the fin and move toward the storage rack 30 until the fin is inserted into the storage rack 30, completing the storage of the fin so that the subsequent fin can be directly taken out and used, and the working efficiency of the cleaner fin is not easily affected.
[0034] Reference Figure 1 and Figure 2 Specifically, the moving mechanism 40 includes a translation assembly 41 and a lifting assembly 42. The translation assembly 41 is arranged on the bracket 20, and is mainly used to drive the lifting assembly 42 to move horizontally; the lifting assembly 42 is connected to the translation assembly 41, and is used to drive the transport frame 60 to move up and down. The translation assembly 41 includes a translation motor 411, a translation rod 412 and a translation block 413. The translation motor 411 is installed at the end of the bracket 20 by bolts, the translation rod 412 is arranged in the horizontal direction, and the end of the translation rod 412 is rotatably connected to the bracket 20. The translation motor 411 is coaxially fixed with one end of the translation rod 412, and is used to drive the translation rod 412 to rotate. The translation block 413 is sleeved on the translation rod 412 and is threadedly connected to the translation rod 412. The translation rod 412 rotates to drive the translation block 413 to move horizontally. The translation rod 412 here can be a ball screw or an ordinary threaded rod. The translation rod 412 of different materials and sizes can be selected according to actual needs to adapt to different load requirements, such as stainless steel or aluminum alloy.
[0035] Reference Figure 1 and Figure 2 The lifting assembly 42 includes a lifting motor 421, a lifting rod 422 and a lifting block 423. The lifting motor 421 is installed on the top of the translation block 413 by bolts. The lifting rod 422 is arranged in the vertical direction, and the end of the lifting rod 422 is rotatably connected to the translation block 413. The output end of the lifting motor 421 is coaxially fixed with one end of the lifting rod 422 to drive the lifting rod 422 to rotate. The lifting block 423 is sleeved on the lifting rod 422 and is threadedly connected to the lifting rod 422. The lifting rod 422 rotates to drive the lifting block 423 to move vertically. The lifting rod 422 here can also be a ball screw or an ordinary threaded rod, and its material can be selected from stainless steel or aluminum alloy to ensure sufficient strength and wear resistance.
[0036] Reference Figure 1 and Figure 2In order to adjust the angle of the transport frame 60, the lifting block 423 is connected to the transport frame 60 through the flip assembly 50. The flip assembly 50 includes a flip cylinder 51 and a connecting rod 52. The flip cylinder 51 is arranged on the lifting block 423. One end of the connecting rod 52 is hinged to the output end of the flip cylinder 51, and the other end is rotatably connected to the lifting block 423 through a rotating shaft. The transport frame 60 is fixed to the rotating shaft.
[0037] The fins are transported by the conveyor rack 10 in a lying state. After the clamping assembly 70 clamps the fins, the flipping assembly 50 is started to drive the transport rack 60 to rotate 90°, so that the fins are in a vertical state. Then the translation assembly 41 moves the fins to the storage rack 30, and the lifting assembly 42 drives the fins downward and inserts them into the storage rack 30, so that several fins are arranged in a vertical state in sequence. Compared with several fins stacked flat, it is more convenient to take and use the fins later.
[0038] Reference Figure 1 and Figure 2 The clamping assembly 70 includes relatively arranged moving cylinders 71, which are arranged on the transport frame 60. The output end of the moving cylinder 71 is connected to a clamping claw 72. The relatively moving cylinders 71 are started at the same time, and the relatively clamping claws 72 are moved closer or farther away from each other. In the initial state, the relatively moving cylinders 71 drive the clamping claws 72 to move away from each other, so that the distance between the two relatively clamping claws 72 is larger. When the fin moves to the bottom of the clamping assembly 70, the lifting assembly 42 drives the clamping claws 72 to move downward until the fin is located between the relatively clamping claws 72.
[0039] Then, the moving cylinder 71 is started to drive the relative clamping jaws 72 to approach each other, that is, the clamping jaws 72 move toward the center of the transport frame 60 until the relative clamping jaws 72 are in contact with the fins, so that the circumference of the fins is subjected to an inward squeezing force, thereby clamping and fixing the fins with the clamping jaws 72. The clamping jaws 72 can be made of rubber material to increase friction and prevent the fins from slipping, and can also be made of metal material and equipped with anti-skid pads to improve clamping reliability.
[0040] Reference Figure 2 and Figure 3When the air outlet plate 83 blows air, it is easy to blow the impurities on the fins to gather in the middle of the fins. In order to clean the impurities on the fins, the cleaning mechanism 80 also includes a plurality of cleaning plates 84 and a plurality of cleaning cottons 85. The plurality of cleaning plates 84 are arranged on the cleaning frame 81. The plurality of cleaning cottons 85 correspond to the cleaning plates 84 one by one. The cleaning cottons 85 cover the side of the cleaning plates 84 facing the conveying frame 10. The cleaning frame 81 is provided with a rotating motor 811 and a plurality of rotating gears 812. The rotating motor 811 is mounted on the cleaning frame 81 and is coaxially fixed with one of the rotating gears 812. The rotating motor 811 is used to drive the rotating gear 812 to rotate. The plurality of rotating gears 812 correspond to the cleaning plates 84 one by one, and the rotating gears 812 are coaxially fixed with the corresponding cleaning plates 84 through the mounting frame. The plurality of rotating gears 812 are meshed with each other.
[0041] When the fin passes through the cleaning rack 81, the cleaning cotton 85 contacts the surface of the fin and slides relatively on the surface of the fin, thereby cleaning the impurities on the fin. When the fin slides on the cleaning cotton 85, the rotating motor 811 is started to drive one of the rotating gears 812 to rotate, driving the remaining rotating gears 812 to rotate synchronously, so that the cleaning plate 84 rotates with the cleaning cotton 85. The self-rotation of the cleaning cotton 85 can increase the contact and friction with the impurities on the fin, thereby improving the cleaning ability. As a result, when the cleaning cotton 85 moves relatively in a straight line on the fin, that is, while cleaning the fin in a straight line, the self-rotation of the cleaning cotton 85 can contact the fin more comprehensively, increase the cleaning area, and thus improve the overall cleaning effect. This combination of rotational motion and linear motion can increase the cleaning force, making it difficult for impurities to remain on the fin and easier to clean.
[0042] Reference Figure 2 and Figure 3 A buffer spring is provided on the cleaning rack 81, so that when the cleaning cotton slides against the fin, the buffer spring plays a buffering role to prevent the fin from being damaged. At the same time, the buffer spring makes the height of the cleaning rack 81 adjustable, so that the cleaning cotton 85 can contact and clean fins of different thicknesses, and has better applicability.
[0043] Reference Figure 2 and Figure 3, a winding roller 841 and a release roller 842 are rotatably connected on the cleaning plate 84, one end of the cleaning cotton 85 is fixed on the winding roller 841, and the other end is fixed on the release roller 842, and the cleaning cotton 85 is wound on the winding roller 841 and the release roller 842. The winding roller 841 and the release roller 842 are located on the diameter of the cleaning plate 84, and the winding roller 841 and the release roller 842 are arranged up and down, and the winding roller 841 and the release roller 842 are fixedly sleeved with a transmission gear 843, and the two transmission gears 843 are meshed, and the cleaning frame 81 is provided with a crown gear 90, which can move up and down, and the crown gear 90 can be meshed with one of the transmission gears 843. When the crown gear 90 is meshed with the transmission gear 843, the winding roller 841 or the release roller 842 can be driven to rotate, thereby realizing the replacement of the cleaning cotton 85, ensuring that the cleaning effect is consistent.
[0044] Reference Figure 2 and Figure 3 The crown gear 90 is connected to the cleaning frame 81 through a cylinder, and the outer shell of the cylinder is installed on the frame by bolts. The output end of the cylinder is fixed to the crown gear 90 to drive the crown gear 90 to move up and down. At the same time, a motor is also installed on the cleaning frame 81. The motor is coaxially fixed with a gear, and a linkage gear is fixed on the peripheral side wall of the crown gear 90. When the cylinder drives the crown gear 90 to move down to mesh with the transmission gear 843, the linkage gear is also meshed with the gear at this time, so that the motor can drive the gear to rotate, driving the linkage gear to rotate, and several linkage gears are meshed with each other to realize the synchronous rotation of several crown teeth 90, so that the cleaning cotton 85 on all cleaning plates 84 can be replaced at the same time, which is convenient to operate.
[0045] The implementation principle of an automatic fin coding device for a radiator in an embodiment of the present application is as follows: through the cooperation of a translation component 41 and a lifting component 42, the transport rack 60 is accurately moved between the conveying rack 10 and the storage rack 30. The clamping component 70 is responsible for grabbing and releasing the fins, and the cleaning mechanism 80 uses an air outlet plate 83 to blow off impurities from the fins on the conveying rack 10. At the same time, the cleaning cotton 85 slides on the fins to clean the fins, thereby completing the cleaning of the fin surface.
[0046] The above are all preferred embodiments of the present application, and the protection scope of the present application is not limited thereto. Therefore, any equivalent changes made according to the structure, shape, and principle of the present application should be included in the protection scope of the present application.
Claims
1. A radiator fin automatic chip device, characterized in that: The invention comprises a conveying frame (10), a support (20), a moving mechanism (40) and a storage frame (30), wherein the support (20) is located above the conveying frame (10), the moving mechanism (40) is arranged on the support (20), the storage frame (30) is located on one side of the conveying frame (10), the moving mechanism (40) can move back and forth between the conveying frame (10) and the storage frame (30), the moving mechanism (40) is connected to a transport frame (60), and the transport frame (60) is connected to the transport frame (60). 0) is provided with a clamping assembly (70) and a cleaning mechanism (80), the cleaning mechanism (80) comprising a cleaning frame (81), an air pipe (82) and an air outlet plate (83), the cleaning frame (81) is arranged on the transport frame (60), the air pipe (82) and the air outlet plate (83) are arranged on the cleaning frame (81), the air pipe (82) is used to transport gas to the air outlet plate (83), and the air outlet plate (83) is provided with a plurality of air outlet holes facing the transport frame (10).
2. The radiator fin automatic chipping device according to claim 1, characterized in that: The moving mechanism (40) comprises a translation assembly (41) and a lifting assembly (42); the translation assembly (41) is arranged on the bracket (20); the lifting assembly (42) is connected to the translation assembly (41); the translation assembly (41) is used to drive the lifting assembly (42) to move horizontally; the transport frame (60) is connected to the lifting assembly (42); the lifting assembly (42) is used to drive the transport frame (60) to move up and down.
3. The radiator fin automatic chipping device according to claim 2, characterized in that: The translation assembly (41) comprises a translation motor (411), a translation rod (412) and a translation block (413); the translation motor (411) is arranged on the bracket (20); the translation rod (412) is arranged in a horizontal direction, and the end of the translation rod (412) is rotatably connected to the bracket (20); the translation motor (411) is coaxially fixed to one end of the translation rod (412) and is used to drive the translation rod (412) to rotate; the translation block (413) is sleeved on the translation rod (412) and is threadedly connected to the translation rod (412); the translation rod (412) rotates to drive the translation block (413) to move horizontally.
4. The radiator fin automatic chipping device according to claim 3, characterized in that: The lifting assembly (42) comprises a lifting motor (421), a lifting rod (422) and a lifting block (423); the lifting motor (421) is arranged on the translation block (413); the lifting rod (422) is arranged in a vertical direction, and the end of the lifting rod (422) is rotatably connected to the translation block (413); the output end of the lifting motor (421) is coaxially fixed with one end of the lifting rod (422) and is used to drive the lifting rod (422) to rotate; the lifting block (423) is sleeved on the lifting rod (422) and is threadedly connected to the lifting rod (422); the lifting rod (422) rotates to drive the lifting block (423) to move vertically.
5. The radiator fin automatic chipping device according to claim 4, characterized in that: The lifting block (423) is connected to the transport frame (60) via a flip assembly (50). The flip assembly (50) comprises a flip cylinder (51) and a connecting rod (52). The flip cylinder (51) is arranged on the lifting block (423). One end of the connecting rod (52) is hinged to the output end of the flip cylinder (51), and the other end is rotatably connected to the lifting block (423) via a rotating shaft. The transport frame (60) is fixed to the rotating shaft.
6. The radiator fin automatic chipping device according to claim 1, characterized in that: The clamping assembly (70) comprises relatively arranged movable cylinders (71), wherein the movable cylinders (71) are arranged on the transport frame (60), and the output end of the movable cylinder (71) is connected with a clamping claw (72), and the movable cylinder (71) is used to drive the clamping claw (72) to move toward or away from the center of the transport frame (60).
7. The radiator fin automatic chipping device according to claim 1, characterized in that: The cleaning mechanism (80) further comprises a plurality of cleaning plates (84) and a plurality of cleaning cottons (85). The plurality of cleaning plates (84) are arranged on the cleaning frame (81), and the plurality of cleaning cottons (85) correspond to the cleaning plates (84) one by one. The cleaning cottons (85) cover one side of the cleaning plates (84) facing the conveying frame (10).
8. The radiator fin automatic chipping device according to claim 7, characterized in that: The cleaning frame (81) is provided with a rotating motor (811) and a plurality of rotating gears (812). The rotating motor (811) is provided on the cleaning frame (81) and is coaxially fixed with one of the rotating gears (812). The rotating motor (811) is used to drive the rotating gear (812) to rotate. The plurality of rotating gears (812) correspond to the cleaning plates (84) one by one, and the rotating gears (812) are coaxially fixed with the corresponding cleaning plates (84). The plurality of rotating gears (812) mesh with each other.
9. The radiator fin automatic chipping device according to claim 7, characterized in that: The cleaning plate (84) is rotatably connected to a winding roller (841) and a releasing roller (842); one end of the cleaning cotton (85) is fixed on the winding roller (841) and the other end is fixed on the releasing roller (842); the cleaning cotton (85) is wound around the winding roller (841) and the releasing roller (842).
10. The radiator fin automatic chipping device according to claim 9, characterized in that: The winding roller (841) and the releasing roller (842) are located on the diameter of the cleaning plate (84), and the winding roller (841) and the releasing roller (842) are arranged up and down. The winding roller (841) and the releasing roller (842) are both fixedly sleeved with a transmission gear (843), and the two transmission gears (843) are meshed with each other. The cleaning frame (81) is provided with a crown gear (90), and the crown gear (90) can move up and down, and the crown gear (90) can mesh with one of the transmission gears (843).
Citation Information
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