A continuous conveying device for heat sink profile machining

CN122607696APending Publication Date: 2026-08-21SHENZHEN MINGRUIDA HARDWARE PROD CO LTD
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Patent Information

Application Number
CN202611058019.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-07-16
Publication Date
2026-08-21

AI Technical Summary

Technical Problem

[0003]散热器铝型材加工需连贯完成裁切、铣削、表面氧化、钻孔等多道工序,行业大多采用皮带输送线转运型材工件,现有传统皮带输送线仅依靠端部固定螺杆手动调节皮带张紧度,调节行程有限且无法同步校准两端轮体,散热器铝型材单件自重偏大,长期持续负载输送过程中皮带极易受拉力拉伸变长、张力衰减,出现传动打滑现象,直接造成型材输送位置偏移、各加工工位对位不准

Benefits of technology

[0021]本发明传输部件中,滑孔板底部配套小型气缸、卡盘、圆盘可同步推拉圆柱杆带动主动轮、从动轮平移,灵活调节皮带张紧度,避免皮带松弛打滑、型材输送偏移,圆柱杆外侧定位环、稳定板与滑孔板的稳定槽配合限位,调节轮距时圆柱杆不会歪斜,主动轮、从动轮配合皮带、圆孔带组成环形闭环输送回路,搭配两端弧形弯道实现承载架自动循环流转,实现型材不间断连续生产,中心架上方防护盖底部的防脱架贴合皮带,抵消型材自重防止皮带下坠脱齿,防护盖中心的更换槽配合可调轮距结构,调小主动轮、从动轮间距后可快速拆装皮带,缩短维护停机时间,圆盘底部驱动装置独立驱动主动轮,防护盖阻挡加工碎屑,避免杂物卡入啮合位置,延长皮带、主动轮、从动轮使用寿命。

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Abstract

This invention relates to the field of continuous conveying technology for radiator profile processing, and discloses a continuous conveying device for radiator profile processing. The device includes a base plate with a support rod fixedly connected to its top. It also includes a conveying component, comprising a conveying frame. Two sliding perforated plates are fixedly connected to the inner wall of the conveying frame. Cylindrical rods are slidably connected to the inner walls of the two sliding perforated plates. A driving wheel and a driven wheel are fixedly connected to the tops of the two cylindrical rods, respectively. A belt is drivingly connected to the surfaces of the driving wheel and the driven wheel. In this invention, a disc can synchronously push and pull the cylindrical rods, driving the driving wheel and driven wheel to move horizontally, flexibly adjusting the belt tension to prevent belt slippage and profile conveying deviation. The positioning ring and stabilizing plate on the outer side of the cylindrical rod cooperate with the stabilizing groove of the sliding perforated plate to limit movement, preventing the cylindrical rod from tilting when adjusting the wheel spacing. The driving wheel, driven wheel, belt, and perforated belt form a closed-loop conveying circuit, and the curved sections at both ends enable automatic circulation of the support frame.
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Description

Technical Field

[0001] This invention relates to the field of continuous conveying technology for radiator profile processing, specifically to a continuous conveying device for radiator profile processing. Background Technology

[0002] Aluminum profile radiators, also known as aluminum radiator profiles or sunflower aluminum profiles, are characterized by their beautiful appearance, light weight, good heat dissipation performance, and energy-saving effect. The surface of the processed aluminum profile radiators is anodized to increase the corrosion resistance, wear resistance, and appearance of the aluminum material. Commonly used types of aluminum profile radiators in China include: aluminum profiles for electronic, electrical, and computer radiators, sunflower aluminum profile radiators, and radiator profiles for power semiconductors, etc.

[0003] The processing of aluminum profiles for radiators requires the continuous completion of multiple processes such as cutting, milling, surface oxidation, and drilling. Most industries use belt conveyors to transport profile workpieces. Existing traditional belt conveyors rely solely on manual adjustment of belt tension using end-fixed screws. The adjustment stroke is limited and the pulleys at both ends cannot be simultaneously calibrated. The weight of a single aluminum profile for radiators is relatively large. During long-term continuous load transport, the belt is easily stretched and elongated by tension, resulting in transmission slippage. This directly causes the profile transport position to deviate and the alignment of each processing station to be inaccurate. Summary of the Invention

[0004] The purpose of this invention is to provide a continuous conveying device for processing radiator profiles, so as to solve the problems mentioned in the background art.

[0005] To solve the above-mentioned technical problems, the present invention is achieved through the following technical solution:

[0006] This invention relates to a continuous conveying device for processing radiator profiles, comprising a base plate, a support rod fixedly connected to the top of the base plate, and further comprising:

[0007] The transmission component includes a transmission frame, the inner wall of which is fixedly connected to two sliding perforated plates. The inner walls of the two sliding perforated plates are slidably connected to cylindrical rods, and the tops of the two cylindrical rods are fixedly connected to a driving wheel and a driven wheel, respectively. The surfaces of the driving wheel and the driven wheel are connected by a belt.

[0008] A load-bearing component, the load-bearing component including a load-bearing frame, the end of which is fixedly connected to a telescopic frame;

[0009] A positioning component, comprising a bracket, the top of which is fixedly connected to the bottom of the transmission frame, and a shaft rotatably connected to the inner wall of the bracket;

[0010] The material distribution component includes a fixed frame, the bottom of which is fixedly connected to the top of the base plate. The ends of the fixed frame are respectively fixedly connected to an unloading conveyor and a loading conveyor, and the unloading conveyor and the loading conveyor are symmetrically arranged with the fixed frame as the center.

[0011] Furthermore, the transmission component includes two discs, the tops of which are rotatably connected to the bottoms of two cylindrical rods respectively. A small cylinder is fixedly connected to the bottom of the sliding plate, and a chuck is fixedly connected to the telescopic end of the small cylinder. The upper surface of the chuck contacts the inner wall of the disc. A central frame is fixedly connected to the bottom of the transmission frame. A driving device is installed at the bottom of the discs, and the output end of the driving device is fixedly connected to the bottom of the cylindrical rod. A perforated belt is fixedly connected to the surface of the belt. A stabilizing groove is formed on the inner wall of the sliding plate. A positioning ring is rotatably connected to the inner wall of the cylindrical rod. A stabilizing plate is fixedly connected to the surface of the positioning ring. A protective cover is fixedly connected to the top of the central frame, and an anti-detachment frame is fixedly connected to the bottom of the protective cover. A replacement groove is formed at the center of the surface of the protective cover.

[0012] Furthermore, the bottom of the transmission frame is fixedly connected to the top of the support rod, the protective cover is located on top of the driving wheel and the driven wheel, and a gap is provided between the protective cover and the driving wheel and the driven wheel, the belt meshes with the driving wheel and the driven wheel, the driving wheel and the driven wheel are respectively located on top of two sliding plates, the top of the disc contacts the bottom of the sliding plate, the surface of the stabilizing plate contacts the inner wall of the stabilizing groove, the inner wall of the anti-detachment frame contacts the surface of the belt, and the driving device is located below the driving wheel.

[0013] Furthermore, the supporting component includes a slide rail, the bottom of which is fixedly connected to the top of the transmission frame. The inner wall of the telescopic frame away from the supporting frame is in contact with the surface of the circular hole strip. A screw is threadedly connected to the inner wall of the telescopic frame, and the surface of the screw is in contact with the inner wall of the circular hole strip. A positioning wheel is rotatably connected to the bottom of the supporting frame.

[0014] Furthermore, the number of the support frame is set to multiple, and the multiple support frames are evenly distributed on the surface of the circular hole belt. The bottom of the support frame contacts the top of the slide rail. The bottom of the support frame is provided with four positioning wheels. The four positioning wheels are set to two groups, and each group has two. The surfaces of the two groups of positioning wheels contact the surface and inner wall of the slide rail, respectively.

[0015] Furthermore, the positioning component includes a bidirectional electric rod, the top of which is fixedly connected to the bottom of the central frame, a connecting frame sleeved on the telescopic end of the bidirectional electric rod, the inner wall of the connecting frame being fixedly connected to the surface of the shaft, an adjusting frame being fixedly connected to the surface of the shaft, a circular frame being rotatably connected to the upper surface of the adjusting frame, and a slanted groove frame being fixedly connected to the bottom of the bearing frame.

[0016] Furthermore, the connecting frame is located at the center of the surface of the shaft, and there are two shafts. The two shafts are arranged symmetrically with respect to the transmission frame. The opening of the inclined slot frame is inclined, and the surface of the circular frame is in contact with the inner wall of the inclined slot frame.

[0017] Furthermore, the material distribution component includes a bidirectional electric pusher frame one, the bottom of which is fixedly connected to the top of the protective cover. A pusher plate one is fixedly connected to the telescopic end of the bidirectional electric pusher frame one. A bidirectional electric pusher frame two is fixedly connected to the top of the protective cover. A pusher plate two is hinged to the telescopic end of the bidirectional electric pusher frame two. An electric push rod is fixedly connected to the center surface of the bidirectional electric pusher frame two. A discharge plate is fixedly connected to the telescopic end of the electric push rod. A feeding frame and a discharging frame are fixedly connected to the ends of the transmission frame respectively. An inclined plate is fixedly connected to the inner wall of the feeding transmission device. A slot is opened in the inner wall of the feeding transmission device. An installation rod is fixedly connected to the bottom of the inner wall of the slot. An inclined plate is slidably connected to the inner wall of the slot.

[0018] Furthermore, there are two of each of the feeding and unloading conveying devices, and they are symmetrically arranged around the conveying frame. The first bidirectional electric pusher corresponds to the unloading conveying device, and the second bidirectional electric pusher corresponds to the feeding conveying device. The bottom of the second pusher plate is in contact with the upper surface of the inclined plate. The feeding conveying device has two inclined panels inside, and the two inclined panels correspond to the feeding conveying device.

[0019] Furthermore, the distance between the two inclined plates is adapted to the inner wall of the support frame, the surface of the mounting rod is in contact with the inner wall of the inclined plate, the surface of the push plate and the surface of the unloading plate are adapted to the inner wall of the support frame, a distance is provided between the inclined plates and the inclined panels, the discharge rack and the loading rack are symmetrically arranged with the transmission rack as the center, and the discharge rack and the loading rack correspond to the support frame.

[0020] The present invention has the following beneficial effects:

[0021] In the transmission component of this invention, a small cylinder, chuck, and disc are fitted at the bottom of the sliding plate to synchronously push and pull the cylindrical rod, driving the drive wheel and driven wheel to move horizontally, flexibly adjusting the belt tension, and preventing belt slippage and profile conveying deviation. The positioning ring and stabilizing plate on the outer side of the cylindrical rod cooperate with the stabilizing groove of the sliding plate to limit the movement, ensuring that the cylindrical rod will not tilt when adjusting the wheel spacing. The drive wheel, driven wheel, belt, and circular belt form a closed-loop conveying circuit. With the arc-shaped bends at both ends, the bearing frame can automatically circulate, enabling uninterrupted continuous production of profiles. The anti-slip frame at the bottom of the protective cover above the center frame fits the belt, offsetting the weight of the profile and preventing the belt from falling off the teeth. The replacement groove in the center of the protective cover, combined with the adjustable wheel spacing structure, allows for quick disassembly and assembly of the belt after reducing the distance between the drive wheel and driven wheel, shortening maintenance downtime. The drive device at the bottom of the disc independently drives the drive wheel. The protective cover blocks processing debris, preventing foreign objects from getting stuck in the meshing position and extending the service life of the belt, drive wheel, and driven wheel.

[0022] In the bearing component of this invention, a fixed slide rail is located at the top of the transmission frame, and two sets of four positioning wheels at the bottom of the bearing frame respectively abut against the top surface and inner side of the slide rail to form a bidirectional clamping support. When carrying the heat sink profile, it will not tilt or tip over, and will always maintain a uniform horizontal processing benchmark. The telescopic frame at the end of the bearing frame is locked in the circular hole of the circular hole belt by a screw. The screw and the circular hole are precisely engaged, allowing the bearing frame and the belt to move synchronously without slippage, preventing misalignment of the profile conveying. The bearing frame can be disassembled individually by loosening the screw. The tooling is easy to assemble and disassemble, and the installation spacing of the bearing frame on the circular hole belt can be freely adjusted. Bearing frames with different inner cavity specifications can also be replaced. Multiple bearing frames are evenly distributed on the surface of the circular hole belt, which can simultaneously carry multiple profiles and realize parallel conveying of multiple workstations, improving the conveying capacity of the production line. The telescopic frame can use the tension of the belt to avoid the belt squeezing the bearing frame and getting stuck when adjusting the tension.

[0023] In the positioning component of this invention, the bidirectional electric rod at the bottom of the central frame drives the connecting frame to rotate two symmetrical shafts. The shafts are linked to the adjusting frame and the circular frame. The circular frame can be inserted into the inclined groove frame at the bottom of the support frame. The offset support frame is automatically corrected by the inclined surface of the inclined groove frame opening. The tooling position is periodically and automatically calibrated to ensure accurate alignment of profile loading and unloading and processing stations. The two shafts are symmetrically arranged with the transmission frame as the center. During positioning and correction, the tooling is subjected to uniform force without unilateral deviation. The inclined guide structure allows the circular frame to smoothly enter and exit the inclined groove frame without jamming the tooling or interrupting the production line. The bidirectional electric rod telescopic control automatically extends and retracts the entire positioning mechanism. No manual calibration is required throughout the process, making it suitable for fully automatic continuous production line operations.

[0024] In the material distribution component of this invention, two sets of unloading conveying devices and two sets of loading conveying devices are symmetrically arranged on the top fixed frame of the base plate. This allows the profiles to be diverted to multiple processing stations for parallel operation, improving overall processing efficiency. The top of the protective cover has a two-way electric pusher frame two hinged to a pusher plate two. The pusher plate two moves up and down along the inclined surface of the inclined plate inside the loading conveying device to push the profiles. The inclined panel slidably installed in the slot can correct the orientation of the profiles and prevent them from being tilted and jammed. The inclined panel can be disassembled and replaced with the mounting rod to accommodate profiles of different widths. The two-way electric pusher frame one drives the pusher plate one to complete the mid-process diversion and unloading. The two-way electric pusher frame two is equipped with an electric push rod to drive the unloading plate to complete the finished product output. The dimensions of the pusher plate one and the unloading plate are adapted to the inner cavity of the support frame, and the pushing force is uniform and stable, preventing the profiles from being scratched or falling off. The two ends of the conveying frame are symmetrically arranged with a loading frame and an unloading frame, which work together with the support frame to complete the loading and unloading of the profiles.

[0025] Of course, any product implementing this invention does not necessarily need to achieve all of the advantages described above at the same time. Attached Figure Description

[0026] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. 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.

[0027] Figure 1 This is a schematic diagram of the overall structure of the present invention;

[0028] Figure 2 This is a schematic diagram of the overall structure of the transmission component of the present invention;

[0029] Figure 3 This is another structural schematic diagram of the transmission component of the present invention;

[0030] Figure 4 This is a schematic diagram of the bottom structure of the transmission frame of the present invention;

[0031] Figure 5 This is a schematic cross-sectional view of the sliding perforated plate of the present invention;

[0032] Figure 6 This is a schematic diagram of the anti-detachment frame structure of the present invention;

[0033] Figure 7 This is a schematic diagram of the overall structure of the load-bearing component of the present invention;

[0034] Figure 8 For the present invention Figure 7 Enlarged diagram of part A in the diagram;

[0035] Figure 9 This is another structural schematic diagram of the bearing component of the present invention;

[0036] Figure 10 This is a schematic diagram of the overall structure of the positioning component of the present invention;

[0037] Figure 11 For the present invention Figure 10 Enlarged schematic diagram of part B in the diagram;

[0038] Figure 12 This is a schematic diagram of the overall structure of the material distribution component of the present invention;

[0039] Figure 13 For the present invention Figure 12 Enlarged schematic diagram of part C in the diagram.

[0040] The attached diagram lists the components represented by each number as follows:

[0041] In the diagram: 1. Base plate; 2. Support rod; 3. Transmission component; 4. Bearing component; 5. Positioning component; 6. Material distribution component; 10. Transmission frame; 11. Protective cover; 12. Replacement slot; 13. Driven wheel; 14. Sliding plate; 15. Center frame; 16. Perforated belt; 17. Drive wheel; 18. Belt; 19. Disc; 20. Chuck; 21. Small cylinder; 22. Drive unit; 23. Stabilizing slot; 24. Cylindrical rod; 25. Positioning ring; 26. Stabilizing plate; 27. Anti-detachment frame; 30. Slide rail; 31. Bearing frame; 32. 33. Positioning wheel; 34. Telescopic frame; 45. Screw; 46. Bracket; 47. Shaft; 48. Bidirectional electric rod; 49. Connecting frame; 40. Adjusting frame; 41. Inclined trough frame; 42. Round frame; 53. Bidirectional electric pusher frame one; 54. Inclined panel; 55. Pusher plate one; 56. Unloading transmission device; 57. Fixed frame; 58. Loading transmission device; 59. Bidirectional electric pusher frame two; 50. Pusher plate two; 61. Inclined plate; 62. Electric pusher rod; 63. Unloading plate; 64. Loading frame; 65. Discharge frame; 66. Slot; 67. Mounting rod. Detailed Implementation

[0042] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0043] Please see Figures 1-13 As shown, the present invention is a continuous conveying device for processing radiator profiles, including a base plate 1, a support rod 2 fixedly connected to the top of the base plate 1, and further including:

[0044] The transmission component 3 includes a transmission frame 10. Two sliding plate 14 are fixedly connected to the inner wall of the transmission frame 10. Cylindrical rods 24 are slidably connected to the inner walls of the two sliding plate 14 respectively. A driving wheel 17 and a driven wheel 13 are fixedly connected to the top of the two cylindrical rods 24 respectively. A belt 18 is connected to the surface of the driving wheel 17 and the surface of the driven wheel 13.

[0045] The bearing component 4 includes a bearing frame 31, and a telescopic frame 33 is fixedly connected to the end of the bearing frame 31.

[0046] Positioning component 5 includes a bracket 40, the top of the bracket 40 is fixedly connected to the bottom of the transmission frame 10, and a shaft 41 is rotatably connected to the inner wall of the bracket 40.

[0047] Material sorting component 6 includes a fixed frame 54. The bottom of the fixed frame 54 is fixedly connected to the top of the base plate 1. The ends of the fixed frame 54 are respectively fixedly connected to the unloading conveyor 53 and the loading conveyor 55, and the unloading conveyor 53 and the loading conveyor 55 are symmetrically arranged with the fixed frame 54 as the center.

[0048] The transmission component 3 includes two discs 19, the tops of which are rotatably connected to the bottoms of two cylindrical rods 24 respectively. A small cylinder 21 is fixedly connected to the bottom of the sliding plate 14, and a chuck 20 is fixedly connected to the telescopic end of the small cylinder 21. The upper surface of the chuck 20 contacts the inner wall of the disc 19. A central frame 15 is fixedly connected to the bottom of the transmission frame 10. A drive device 22 is installed at the bottom of the disc 19, and the output end of the drive device 22 is fixedly connected to the bottom of the cylindrical rod 24. A perforated belt 16 is fixedly connected to the surface of the belt 18. A stabilizing groove 23 is formed on the inner wall of the sliding plate 14. A positioning ring 25 is rotatably connected to the inner wall of the cylindrical rod 24, and a stabilizing plate 26 is fixedly connected to the surface of the positioning ring 25. The top of the central frame 15 is fixedly connected to... A protective cover 11 is attached, and an anti-slip frame 27 is fixedly connected to the bottom of the protective cover 11. A replacement groove 12 is opened in the center of the surface of the protective cover 11. The bottom of the sliding plate 14 is equipped with a small cylinder 21, a chuck 20, and a disc 19, which can push and pull the cylindrical rod 24 to drive the drive wheel 17 and the driven wheel 13 to move horizontally and flexibly adjust the tension of the belt 18 to avoid the belt 18 from slipping and the profile conveying deviation. The positioning ring 25 and the stabilizing plate 26 on the outer side of the cylindrical rod 24 cooperate with the stabilizing groove 23 of the sliding plate 14 to limit the movement. When adjusting the wheel distance, the cylindrical rod 24 will not be tilted. The drive wheel 17 and the driven wheel 13, together with the belt 18 and the circular hole belt 16, form a closed-loop conveying circuit. With the arc curves at both ends, the bearing frame 31 can automatically circulate and achieve uninterrupted continuous production of profiles.

[0049] The bottom of the transmission frame 10 is fixedly connected to the top of the support rod 2. The protective cover 11 is located on the top of the driving wheel 17 and the driven wheel 13, and there is a gap between the protective cover 11 and the driving wheel 17 and the driven wheel 13. The belt 18 meshes with the driving wheel 17 and the driven wheel 13. The driving wheel 17 and the driven wheel 13 are respectively located on the top of the two sliding plates 14. The top of the disc 19 contacts the bottom of the sliding plate 14. The surface of the stabilizing plate 26 contacts the inner wall of the stabilizing groove 23. The inner wall of the anti-detachment frame 27 contacts the surface of the belt 18. The drive device 22 is located below the driving wheel 17.

[0050] The supporting component 4 includes a slide rail 30, the bottom of which is fixedly connected to the top of the transmission frame 10. The inner wall of the telescopic frame 33 away from the supporting frame 31 contacts the surface of the circular hole belt 16. The inner wall of the telescopic frame 33 is threaded with a screw 34, and the surface of the screw 34 contacts the inner wall of the circular hole of the circular hole belt 16. The bottom of the supporting frame 31 is rotatably connected with a positioning wheel 32. The two sets of four positioning wheels 32 at the bottom of the supporting frame 31 respectively fit against the top surface and the inner side of the slide rail 30 to form a two-way clamping support. When carrying the heat sink profile, it will not tilt or overturn, and always maintain a uniform horizontal processing benchmark. The telescopic frame 33 at the end of the supporting frame 31 is locked in the circular hole of the circular hole belt 16 by the screw 34. The screw 34 and the circular hole are precisely engaged, so that the supporting frame 31 and the belt 18 move synchronously without slippage, preventing misalignment of the profile conveying.

[0051] Multiple support frames 31 are provided, and the multiple support frames 31 are evenly distributed on the surface of the circular hole belt 16. The bottom of the support frame 31 contacts the top of the slide rail 30. The bottom of the support frame 31 is provided with four positioning wheels 32. The four positioning wheels 32 are set in two groups, and each group has two. The surfaces of the two groups of positioning wheels 32 contact the surface and inner wall of the slide rail 30, respectively.

[0052] The positioning component 5 includes a bidirectional electric rod 42. The top of the bidirectional electric rod 42 is fixedly connected to the bottom of the center frame 15. The telescopic end of the bidirectional electric rod 42 is sleeved with a connecting frame 43. The inner wall of the connecting frame 43 is fixedly connected to the surface of the shaft 41. An adjusting frame 44 is fixedly connected to the surface of the shaft 41. A circular frame 46 is rotatably connected to the upper surface of the adjusting frame 44. A slanted groove frame 45 is fixedly connected to the bottom of the bearing frame 31. The shaft 41 is linked to the adjusting frame 44 and the circular frame 46. The circular frame 46 can be inserted into the slanted groove frame 45 at the bottom of the bearing frame 31. The offset bearing frame 31 is automatically corrected by the inclined surface of the opening of the slanted groove frame 45. The tooling position is periodically and automatically calibrated to ensure accurate alignment of the profile loading and unloading and the processing station.

[0053] The connecting frame 43 is located at the center of the surface of the shaft 41. There are two shafts 41. The two shafts 41 are arranged symmetrically with the transmission frame 10 as the center. The opening of the inclined groove frame 45 is set as an inclined surface. The surface of the circular frame 46 is in contact with the inner wall of the inclined groove frame 45.

[0054] The material distribution component 6 includes a bidirectional electric pusher frame 50, the bottom of which is fixedly connected to the top of the protective cover 11. A pusher plate 52 is fixedly connected to the telescopic end of the bidirectional electric pusher frame 50. A bidirectional electric pusher frame 56 is fixedly connected to the top of the protective cover 11. A pusher plate 57 is hinged to the telescopic end of the bidirectional electric pusher frame 56. An electric push rod 59 is fixedly connected to the center surface of the bidirectional electric pusher frame 56. A discharge plate 60 is fixedly connected to the telescopic end of the electric push rod 59. A feeding rack 61 and a discharging rack 62 are fixedly connected to the ends of the transmission rack 10. An inclined plate 58 is fixedly connected to the inner wall of the feeding transmission device 55. A slot 63 is opened in the inner wall of the feeding transmission device 55. An installation rod 64 is fixedly connected to the bottom of the inner wall of the slot 63. An inclined plate 51 is slidably connected to the inner wall of the slot 63.

[0055] There are two loading conveyor devices 55 and two unloading conveyor devices 53, symmetrically arranged around the conveyor frame 10. A bidirectional electric pusher frame 1 50 corresponds to the unloading conveyor device 53, and a bidirectional electric pusher frame 2 56 corresponds to the loading conveyor device 55. The bottom of the pusher plate 2 57 contacts the upper surface of the inclined plate 58. The loading conveyor device 55 has two inclined panels 51 inside, corresponding to the loading conveyor device 55. Two sets of unloading conveyor devices 53 and two sets of loading conveyor devices 55 are symmetrically arranged on the top fixing frame 54 of the base plate 1, which can separate the profiles... The material flows to multiple processing stations for parallel operation, improving overall processing efficiency. The top of the protective cover 11 has a two-way electric pusher frame 2 56 with a hinged pusher plate 2 57. The pusher plate 2 57 moves up and down along the inclined plate 58 inside the feeding conveyor 55 to push the profile. The inclined plate 51, which is slidably installed in the slot 63, can correct the orientation of the profile and prevent it from being crooked and stuck. The inclined plate 51 can be disassembled and replaced with the mounting rod 64 to adapt to profiles of different widths. The two-way electric pusher frame 1 50 drives the pusher plate 1 52 to complete the mid-process diversion and unloading. The two-way electric pusher frame 2 56 is equipped with an electric push rod 59 to drive the unloading plate 60 to complete the finished product output.

[0056] The distance between the two inclined plates 51 is adapted to the inner wall of the support frame 31. The surface of the mounting rod 64 is in contact with the inner wall of the inclined plate 51. The surfaces of the push plate 52 and the unloading plate 60 are adapted to the inner wall of the support frame 31. There is a distance between the inclined plate 58 and the inclined plate 51. The discharge rack 62 and the loading rack 61 are symmetrically arranged with the transmission rack 10 as the center, and the discharge rack 62 and the loading rack 61 correspond to the support frame 31.

[0057] In use, after the radiator profile is loaded into the support frame 31 via the loading rack 61, the drive device 22 is activated to rotate the cylindrical rod 24. The rotation of the cylindrical rod 24 drives the drive wheel 17 to rotate, which in turn drives the belt 18 to rotate. The belt 18, in turn, drives the driven wheel 13 to rotate. The drive wheel 17 and driven wheel 13 limit the belt 18, improving its stability during transport. An anti-slip bracket 27 is installed at the bottom of the protective cover 11 to limit the belt 18 and prevent it from falling due to the weight of the radiator profile. During operation, the belt 18 drives the support frame 31 to rotate via the connection between the perforated belt 16 and the telescopic frame 33. The radiator profile in the support frame 31 is conveyed by a slide rail 30 at the bottom to prevent tilting under load, which would affect the stability of conveying the radiator profile. A positioning wheel 32 is located at the bottom of the support frame 31, contacting the slide rail 30 to limit its movement and improve the stability of the belt 16. When the tension of the belt 18 needs adjustment, two small cylinders 21 are activated simultaneously. These cylinders, through the contact between the chuck 20 and the disc 19, push the drive wheel 17 and the driven wheel 13 to move closer or further apart. The belt tension is adjusted by regulating the distance between the drive wheel 17 and the driven wheel 13. The tension of belt 18 is adjusted to prevent slippage due to looseness. Cylindrical rod 24 rotates within the positioning ring 25. The positioning ring 25 supports cylindrical rod 24 through the contact between stabilizing plate 26 and stabilizing groove 23, thereby improving the stability of cylindrical rod 24's support for drive pulley 17 and driven pulley 13. After the support frame 31 moves with belt 18 to below the replacement groove 12, the operator can disassemble screw 34 to disassemble and reassemble the support frame 31. When belt 18 needs replacement, a small cylinder 21 is used to move drive pulley 17 and driven pulley 13 closer together, reducing the distance between them to facilitate removal of pulley 18. This also makes it easier to fit belt 18 onto the drive pulley during installation. The surfaces of the driving wheel 17 and driven wheel 13 improve the ease of replacing the belt 18. After the support frame 31 transfers the radiator profile to the corresponding unloading conveyor 53, the bidirectional electric pusher 50 is started to operate. The bidirectional electric pusher 50 pushes the radiator profile to the surface of the corresponding unloading conveyor 53 through the pusher plate 52. The unloading conveyor 53 then transfers the radiator profile to the corresponding processing position. Two unloading conveyors 53 are provided to transfer the radiator profile to different processing positions, improving the conveying efficiency. After processing is completed, the processed radiator profile is placed on the surface of the loading conveyor 55. When the radiator profile on the surface of the loading conveyor 55 contacts the inclined plate 51,The bidirectional electric pusher 256 is activated, pulling the pusher plate 257 towards the transfer frame 10. The pusher plate 257 gradually moves downwards along the inclination of the inclined plate 58. After moving a certain distance, the pusher plate 257 contacts the end of the radiator profile. At this point, the pusher plate 257 pushes the radiator profile into the support frame 31. The inclined plate 51 is used to correct the radiator profile, ensuring its stable entry into the support frame 31 for conveying. When the bidirectional electric pusher 256 begins its extension operation, the pusher plate 257... As it moves, it moves on the surface of the inclined plate 58, using the inclined plate 58 to limit the pusher plate 57, thereby separating the pusher plate 57 from the transmission end of the feeding conveyor 55. The inclined plate 51 is inserted into the inner wall of the slot 63 for easy replacement. When the support frame 31 aligns with the discharge frame 62, the electric push rod 59 is activated to push the unloading plate 60 to push the radiator profile into the discharge frame 62, thereby unloading the processed radiator profile. When positioning of the support frame 31 is required, the support frame... 31. After the belt 18 moves above the adjusting frame 44, the bidirectional electric rod 42 is activated to begin the extension operation. At this time, the bidirectional electric rod 42 pulls the shaft 41 to rotate through the connecting frame 43. The support 40 supports the shaft 41. When the shaft 41 rotates, it pushes the top of the adjusting frame 44 to move into the inclined slot frame 45. When the adjusting frame 44 moves, it pushes the round frame 46 into the interior of the inclined slot frame 45 and into contact with the interior of the inclined slot frame 45. Thus, the compression of the inclined slot frame 45 positions the bearing frame 31. After a period of use, the support frame 31 is positioned to ensure the stability of the heat sink profile conveying operation and prevent tilting, which would affect the loading and unloading of the heat sink profile. The opening of the inclined slot frame 45 is sloped so that the circular frame 46 can enter the interior of the inclined slot frame 45 to correct and position the support frame 31. When the bidirectional electric rod 42 is activated for retraction, the shaft 41 will rotate in the opposite direction. At this time, the shaft 41 will pull the adjusting frame 44 to separate from the inclined slot frame 45, so as to continuously position the support frame 31.

[0058] The preferred embodiments of the present invention disclosed above are merely illustrative of the invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the invention to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of the invention, thereby enabling those skilled in the art to better understand and utilize the invention. The invention is limited only by the claims and their full scope and equivalents.

Claims

1. A continuous conveying device for processing radiator profiles, comprising a base plate (1), wherein a support rod (2) is fixedly connected to the top of the base plate (1), characterized in that, Also includes: The transmission component (3) includes a transmission frame (10). Two sliding plate (14) are fixedly connected to the inner wall of the transmission frame (10). Cylindrical rods (24) are slidably connected to the inner walls of the two sliding plate (14). A driving wheel (17) and a driven wheel (13) are fixedly connected to the top of the two cylindrical rods (24). A belt (18) is drivingly connected to the surface of the driving wheel (17) and the surface of the driven wheel (13). The supporting component (4) includes a support frame (31), and a telescopic frame (33) is fixedly connected to the end of the support frame (31). Positioning component (5), the positioning component (5) includes a bracket (40), the top of the bracket (40) is fixedly connected to the bottom of the transmission frame (10), and the inner wall of the bracket (40) is rotatably connected to a shaft (41). The material distribution component (6) includes a fixed frame (54), the bottom of which is fixedly connected to the top of the base plate (1). The ends of the fixed frame (54) are respectively fixedly connected to an unloading conveyor (53) and a loading conveyor (55), and the unloading conveyor (53) and the loading conveyor (55) are symmetrically arranged with the fixed frame (54) as the center.

2. The continuous conveying device for radiator profile processing according to claim 1, characterized in that: The transmission component (3) includes two discs (19), the tops of which are rotatably connected to the bottoms of two cylindrical rods (24), respectively. A small cylinder (21) is fixedly connected to the bottom of the sliding plate (14), and a chuck (20) is fixedly connected to the telescopic end of the small cylinder (21). The upper surface of the chuck (20) contacts the inner wall of the disc (19). A center frame (15) is fixedly connected to the bottom of the transmission frame (10), and a driving device (22) is installed at the bottom of the disc (19). The transmission device (22) transmits... The outlet end is fixedly connected to the bottom of the cylindrical rod (24), the surface of the belt (18) is fixedly connected to the circular hole belt (16), the inner wall of the sliding plate (14) is provided with a stabilizing groove (23), the inner wall of the cylindrical rod (24) is rotatably connected to a positioning ring (25), the surface of the positioning ring (25) is fixedly connected to a stabilizing plate (26), the top of the central frame (15) is fixedly connected to a protective cover (11), the bottom of the protective cover (11) is fixedly connected to an anti-detachment frame (27), and the center of the surface of the protective cover (11) is provided with a replacement groove (12).

3. The continuous conveying device for radiator profile processing according to claim 2, characterized in that: The bottom of the transmission frame (10) is fixedly connected to the top of the support rod (2). The protective cover (11) is located on the top of the driving wheel (17) and the driven wheel (13), and there is a gap between the protective cover (11) and the driving wheel (17) and the driven wheel (13). The belt (18) meshes with the driving wheel (17) and the driven wheel (13). The driving wheel (17) and the driven wheel (13) are respectively located on the top of the two sliding plates (14). The top of the disc (19) is in contact with the bottom of the sliding plate (14). The surface of the stabilizing plate (26) is in contact with the inner wall of the stabilizing groove (23). The inner wall of the anti-detachment frame (27) is in contact with the surface of the belt (18). The driving device (22) is located below the driving wheel (17).

4. The continuous conveying device for radiator profile processing according to claim 3, characterized in that: The bearing component (4) includes a slide rail (30), the bottom of which is fixedly connected to the top of the transmission frame (10). The inner wall of the telescopic frame (33) away from the bearing frame (31) is in contact with the surface of the circular hole belt (16). The inner wall of the telescopic frame (33) is threaded with a screw (34), and the surface of the screw (34) is in contact with the inner wall of the circular hole of the circular hole belt (16). The bottom of the bearing frame (31) is rotatably connected with a positioning wheel (32).

5. The continuous conveying device for radiator profile processing according to claim 4, characterized in that: The number of the support frame (31) is set to multiple, and the multiple support frames (31) are evenly distributed on the surface of the circular hole belt (16). The bottom of the support frame (31) is in contact with the top of the slide rail (30). The bottom of the support frame (31) is provided with four positioning wheels (32). The four positioning wheels (32) are set in two groups, and each group has two. The surfaces of the two groups of positioning wheels (32) are in contact with the surface and inner wall of the slide rail (30) respectively.

6. The continuous conveying device for radiator profile processing according to claim 5, characterized in that: The positioning component (5) includes a bidirectional electric rod (42), the top of which is fixedly connected to the bottom of the center frame (15). A connecting frame (43) is sleeved on the telescopic end of the bidirectional electric rod (42). The inner wall of the connecting frame (43) is fixedly connected to the surface of the shaft (41). An adjusting frame (44) is fixedly connected to the surface of the shaft (41). A circular frame (46) is rotatably connected to the upper surface of the adjusting frame (44). A slanted groove frame (45) is fixedly connected to the bottom of the bearing frame (31).

7. The continuous conveying device for radiator profile processing according to claim 6, characterized in that: The connecting frame (43) is located at the center of the surface of the shaft (41). There are two shafts (41). The two shafts (41) are arranged symmetrically with the transmission frame (10) as the center. The opening of the inclined slot frame (45) is set as an inclined surface. The surface of the round frame (46) is in contact with the inner wall of the inclined slot frame (45).

8. The continuous conveying device for radiator profile processing according to claim 7, characterized in that: The material distribution component (6) includes a bidirectional electric pusher frame one (50), the bottom of which is fixedly connected to the top of the protective cover (11). A pusher plate one (52) is fixedly connected to the telescopic end of the bidirectional electric pusher frame one (50). A bidirectional electric pusher frame two (56) is fixedly connected to the top of the protective cover (11). A pusher plate two (57) is hinged to the telescopic end of the bidirectional electric pusher frame two (56). An electric push rod (57) is fixedly connected to the center surface of the bidirectional electric pusher frame two (56). 9) The telescopic end of the electric push rod (59) is fixedly connected to the unloading plate (60), the end of the transmission frame (10) is fixedly connected to the loading frame (61) and the unloading frame (62), the inner wall of the loading transmission device (55) is fixedly connected to the inclined plate (58), the inner wall of the loading transmission device (55) is provided with a slot (63), the bottom of the inner wall of the slot (63) is fixedly connected to the mounting rod (64), and the inner wall of the slot (63) is slidably connected to the inclined plate (51).

9. A continuous conveying device for processing radiator profiles according to claim 8, characterized in that: The number of the feeding conveyor (55) and the unloading conveyor (53) are each set in two, and they are symmetrically arranged with the conveyor frame (10) as the center. The first bidirectional electric pusher frame (50) corresponds to the unloading conveyor (53), and the second bidirectional electric pusher frame (56) corresponds to the feeding conveyor (55). The bottom of the second pusher plate (57) is in contact with the upper surface of the inclined plate (58). The feeding conveyor (55) is provided with two inclined panels (51) inside, and the two inclined panels (51) correspond to the feeding conveyor (55).

10. A continuous conveying device for processing radiator profiles according to claim 9, characterized in that: The distance between the two inclined panels (51) is adapted to the inner wall of the support frame (31). The surface of the mounting rod (64) is in contact with the inner wall of the inclined panel (51). The surface of the push plate (52) and the surface of the unloading plate (60) are adapted to the inner wall of the support frame (31). There is a distance between the inclined plate (58) and the inclined panel (51). The discharge rack (62) and the loading rack (61) are symmetrically arranged with the transmission rack (10) as the center, and the discharge rack (62) and the loading rack (61) correspond to the support frame (31).