Layered friction increasing type aluminum alloy profile conveying equipment
By using a layered friction-enhancing aluminum alloy profile conveying equipment, the magnetic adsorption of stacked limiting components and protective components, as well as auxiliary rollers, the wear and displacement problems during the transportation of aluminum alloy profiles are solved, achieving higher stability and convenience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- CHIZHOU ON NEW MATERIALS TECH CO LTD
- Filing Date
- 2026-04-08
- Publication Date
- 2026-05-12
AI Technical Summary
The lack of effective protection measures for existing aluminum alloy profiles during transportation leads to wear and displacement, affecting product quality and aesthetics.
A layered friction-enhancing aluminum alloy profile conveying device was designed. It adopts stacking limit components, transfer components and protection components. Through the magnetic attraction of electromagnet components and partition plates, combined with auxiliary rollers and clamping components, the device ensures the stability of the profile position and reduces friction loss.
It improves the stability and safety of aluminum alloy profiles during transportation, reduces wear and displacement, and enhances ease of use and transportation efficiency.
Smart Images

Figure CN122009652A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of transportation technology, and specifically relates to a layered friction-enhancing aluminum alloy profile conveying device. Background Technology
[0002] Aluminum alloy profiles are a type of non-ferrous metal structural material. With the rapid development of science and technology and industrial economy in recent years, they are widely used in automobiles, machinery, construction, and decoration. The processing of aluminum alloy profiles requires a variety of different processes, so transfer and transportation between these processes are necessary.
[0003] A search revealed that in the prior art, Chinese Patent Publication No. CN 221457745U, published on August 2, 2024, discloses a transfer device for aluminum alloy profile processing, relating to the field of aluminum alloy profile processing technology. The device includes a transfer cart with several rollers mounted on its lower surface and a limiting structure on its upper surface. The limiting structure includes a side plate, the lower surface of which is fixedly connected to the transfer cart. The side plate has an "L"-shaped cross-section. A telescopic rod is fixedly connected to the lower surface of the transfer cart, and a slider is fixedly connected to the output end of the telescopic rod. A sliding hole is formed on the lower surface of the transfer cart, and the slider is located within the sliding hole. An extrusion plate is fixedly connected to the upper surface of the slider, and a triangular block is fixedly connected to the upper surface of the transfer cart.
[0004] However, the device still has the following drawbacks: During the storage and transportation of aluminum alloy profiles, the lack of effective protective measures makes the ends of the profiles highly susceptible to wear and tear due to collisions and friction, leading to a decline in product quality and affecting subsequent use and sales. Furthermore, traditional storage methods cannot provide reasonable layering and positioning for the aluminum alloy profiles, causing them to shift and shake during transportation. This not only increases the risk of collision damage but also creates scratches due to mutual friction, reducing the product's aesthetics and overall quality. Therefore, a layered, friction-increasing aluminum alloy profile conveying equipment is needed. Summary of the Invention
[0005] To address the aforementioned problems, this invention provides a layered friction-enhancing aluminum alloy profile conveying device. It includes a storage box, on both sides of which are rotatably mounted a set of protective components for shielding and protection, and each set of protective components has a sealing plate at its end. Inside the storage box, several sets of stacked limiting components are slidably installed, along with transfer components that move in conjunction with the stacking limiting components. The stacking limiting assembly includes two sets of placement structures, each set of placement structures being rotatably connected by two sets of base plates. An electromagnet assembly is provided inside the base plate, an armature is embedded in the surface of the base plate, a baffle is fixedly installed on one side of the upper surface of the base plate, and several sets of partition plates are movably installed on the upper part of the base plate through the baffle. An iron plate for cooperating with the armature is embedded in the middle of the partition plate; and a clamping assembly for synchronously limiting the two sets of placement structures. The transfer assembly includes a placement plate and a cover plate that slide against the inner wall of the storage box, and a set of partition plates placed between every two sets of the stacking limiting assemblies; Because its stacking gravity is vertical, it can be stacked and packed using aluminum alloy profiles of different sizes.
[0006] Furthermore, several sets of auxiliary rollers are equidistantly mounted on the upper and lower sides of the inner wall of the storage box. Two sets of first moving grooves are symmetrically opened through the lower part of the storage box on both sides of the auxiliary rollers. Two sets of bottom grooves are opened on the lower surface of the storage box corresponding to the lower ends of the auxiliary rollers. Two sets of second moving grooves are opened through the upper part of the storage box corresponding to the positions of the two sets of bottom grooves. Two sets of docking grooves are opened on the upper surface of the storage box corresponding to the positions of the two sets of first moving grooves.
[0007] Furthermore, the protection component includes a rotating plate rotatably connected to the storage box, a corrugated folding plate connected to the rotating plate, and a positioning plate connected to the corrugated folding plate. Several sets of connecting rods for support are installed on the inner side of the positioning plate, and the two ends of each set of connecting rods are inserted into the interior of the corresponding side rotating plate and positioning plate for movable installation. The two sets of sealing plates are rotatably installed on the outer end of a set of positioning plates.
[0008] Furthermore, a set of slots is provided on the upper and lower sides of the inner wall of the storage box, a set of limiting grooves is provided on the middle of the corresponding sides of the two sets of rotating plates and positioning plates, and the upper and lower ends of the rotating plates and positioning plates are provided with matching side grooves corresponding to the slots. A set of locking grooves is provided on the middle of the outer surface of the two sets of sealing plates, and a set of matching latches is installed inside the two sets of locking grooves.
[0009] Furthermore, the placement plate and the cover plate are slidably installed inside the slot, and the placement plate and the cover plate are respectively attached to the outer arc surface of each set of auxiliary rollers. Several sets of auxiliary wheels are respectively installed on the surface of the placement plate and the cover plate, and the auxiliary wheels on the surface of the placement plate extend from inside the first moving groove, and the auxiliary wheels on the surface of the cover plate extend from inside the second moving groove.
[0010] Furthermore, an electromagnet assembly is provided inside the base plate. In each set of placement structures, several sets of connecting collars are alternately installed on the corresponding sides of the two sets of base plates, and each set of connecting collars is connected by a central axis. Each set of baffles has symmetrically opened sliding grooves inside, and a set of anti-collision pads are embedded in each set of sliding grooves.
[0011] Furthermore, the partition plate has an inner cavity extending through the middle, and two sets of slots are symmetrically formed on the inner wall of the inner cavity. Protective pads are glued and installed on the upper and lower sides of the inner cavity respectively.
[0012] Furthermore, a clamping plate is fixedly installed on both sides of the iron plate, and the clamping plate is inserted into the clamping groove for installation. Two sets of limiting sliders are installed through the partition plate on one side of the iron plate. A set of protective rubber blocks are installed on both sides of each set of limiting sliders. The limiting sliders are slidably installed inside the sliding groove, and the protective rubber blocks slide in contact with the anti-collision pad.
[0013] Furthermore, the clamping assembly includes two sets of pressure plates arranged in a corresponding placement structure, and a connecting structure for connecting the two sets of pressure plates; Each set of pressure plates has a connecting groove through the corresponding baffle, and a connecting rod is fixedly installed on the middle of the corresponding sides of the two sets of pressure plates.
[0014] Furthermore, the connection structure includes a rotating rod and internally threaded tubes located at both ends of the rotating rod and connected to the docking rod. External threads are respectively opened at both ends of the outer arc surface of the rotating rod. The rotating rod is threadedly connected to the internally threaded tubes. A set of positioning plugs that are inserted into the docking rods are installed at the outer end of each set of internally threaded tubes.
[0015] The beneficial effects of this invention are: 1. The stacking and limiting components limit the two ends of the aluminum alloy profile in layers. The electromagnet component in the base plate, together with the armature and the iron plate in the middle of the partition plate, further attracts the partition plate through magnetic force, ensuring the stability of the aluminum alloy profile during transportation and reducing friction loss. The clamping component can fix the placement of the structure, adapt to aluminum alloy profiles of different lengths, and improve the convenience of use.
[0016] 2. The placement plate and cover of the transfer components can be pulled out from inside the storage box, making it easy to push the stacking limiting components into the box after they are stacked on the outside, thus improving stacking convenience; the middle partition further separates the stacking limiting components, improving transportation safety; the auxiliary rollers work with the placement plate and cover to reduce friction when pushing in; the auxiliary wheels on the surface of the placement plate and cover facilitate the transfer of the stacking limiting components and the stacking of the storage boxes.
[0017] 3. The placement structure consists of two sets of rotating base plates. The base plates can be tilted during unloading to improve unloading efficiency. The side connecting collars of the base plates are connected by the central shaft and can rotate relative to each other to assist workers in unloading.
[0018] 4. The internal sliding groove of the baffle ensures the stacking partition plate is limited, preventing it from detaching from the base plate during transportation; the anti-collision pads and protective rubber blocks work together to reduce wear on the aluminum alloy profiles caused by vibration during stacking; the number of partition plates can be changed according to different specifications of aluminum alloy profiles to adapt to the stacking state; the rotating rod of the clamping component can control the distance between the pressure plates on both sides, adapting to the stacking limiting component and completing the protection of both ends of the aluminum alloy profiles; the positioning plate of the protective component can adapt to different specifications of aluminum alloy profiles through the corrugated folding plate; the slots on the upper and lower sides of the storage box limit the placement plate and cover plate, reducing their movement and reducing the pressure on the protective component; the limiting grooves of the rotating plate and positioning plate limit the middle partition plate, stably separating the stacking limiting components of each layer and improving transportation safety; the protective pads on the upper and lower sides of the partition plate further limit the aluminum alloy profiles after being compressed, improving transportation stability.
[0019] Other features and advantages of the invention will be set forth in the description which follows, and will be apparent in part from the description, or may be learned by practicing the invention. The objects and other advantages of the invention may be realized and obtained by means of the structures pointed out in the description, claims and drawings. Attached Figure Description
[0020] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0021] Figure 1 A schematic diagram of a storage box structure according to an embodiment of the present invention is shown; Figure 2 A schematic diagram of the overall structure according to an embodiment of the present invention is shown; Figure 3 A schematic diagram showing the structural breakdown of the protection component according to an embodiment of the present invention is shown; Figure 4 A schematic diagram of the corrugated folding plate mounting structure according to an embodiment of the present invention is shown. Figure 5 A schematic diagram of the latch installation structure according to an embodiment of the present invention is shown; Figure 6 A schematic diagram of the stacking structure of the stacking limiting components according to an embodiment of the present invention is shown; Figure 7 A schematic diagram of a stacking limiting component structure according to an embodiment of the present invention is shown; Figure 8 A schematic diagram of the split-off structure of the central shaft mounting structure according to an embodiment of the present invention is shown; Figure 9A schematic diagram of the partition plate mounting structure according to an embodiment of the present invention is shown. Figure 10 A schematic diagram of the disassembled iron plate mounting structure according to an embodiment of the present invention is shown; Figure 11 A schematic diagram showing the disassembled structure of the clamping assembly according to an embodiment of the present invention is shown; Figure 12 A schematic diagram of the electromagnetic component installation structure according to an embodiment of the present invention is shown; Figure 13 A schematic diagram of the stacking state of aluminum alloy profiles according to an embodiment of the present invention is shown; Figure 14 A schematic diagram of the completed placement state of the aluminum alloy profile according to an embodiment of the present invention is shown; Figure 15 A schematic diagram of the closed state of the sealing plate according to an embodiment of the present invention is shown.
[0022] In the diagram: 1. Storage box; 2. Auxiliary roller; 3. First moving groove; 4. Bottom groove; 5. Second moving groove; 6. Docking groove; 7. Turning plate; 8. Corrugated folding plate; 9. Positioning plate; 10. Limiting groove; 11. Connecting rod; 12. Sealing plate; 13. Locking groove; 14. Buckle; 15. Placement plate; 16. Stacking limiting assembly; 17. Middle partition plate; 18. Cover plate; 19. Auxiliary wheel; 20. Base plate 21. Connecting collar; 22. Baffle; 23. Anti-collision pad; 24. Armature; 25. Divider plate; 26. Inner cavity; 27. Slot; 28. Protective pad; 29. Iron plate; 30. Clamping plate; 31. Limiting slider; 32. Protective rubber block; 33. Central shaft; 34. Pressure plate; 35. Connecting groove; 36. Connecting rod; 37. Rotating rod; 38. External thread; 39. Internal threaded tube; 40. Positioning plug. Detailed Implementation
[0023] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, 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, 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.
[0024] This invention provides a layered friction-enhancing aluminum alloy profile conveying device. It includes a storage box 1, exemplarily, such as... Figure 2 and Figure 12As shown, a set of protective components for shielding and protection are rotatably installed on both sides of the storage box 1, and a set of sealing plates 12 is installed at the end of each set of protective components. Several sets of stacking limiting components 16 are slidably installed inside the storage box 1, as well as a transfer component that moves in coordination with each set of stacking limiting components 16. The protective components protect the stacking limiting components 16 inside the storage box 1 from both sides, thereby better limiting the stacked aluminum alloy profiles. The stacking limiting components 16 can limit the two ends of the aluminum alloy profiles in layers, thereby avoiding wear at the two ends of the aluminum alloy profiles during transportation. In addition, the stacking limiting components 16 also layer the aluminum alloy profiles and increase the friction of each layer of aluminum alloy profiles, greatly improving the stability of the aluminum alloy profiles during transportation, thereby avoiding the occurrence of collision damage to the aluminum alloy profiles. For example, such as Figure 7 and Figure 9 As shown, the stacking limiting assembly 16 includes two sets of placement structures, each set of placement structures being rotatably connected by two sets of base plates 20. An electromagnet assembly is installed inside the base plate 20, and an armature 24 is embedded in the surface of the base plate 20. A baffle 22 is fixedly installed on one side of the upper surface of the base plate 20, and several sets of partition plates 25 are movably installed on the upper part of the base plate 20 via the baffle 22. An iron plate 29 for cooperating with the armature 24 is embedded in the middle of the partition plate 25. A clamping assembly is also included for synchronously limiting the two sets of placement structures. The placement structures are combined by two sets of rotating base plates 20, which are connected to the central shaft 33 via connecting collars 21. When in use, the stacking limiting assembly 16 needs to be placed flat on the ground or limited by the placement plates 15 to ensure stable use of the two sets of base plates 20. During unloading, the stacking limiting assembly 16 is lifted to allow the two sides to... The base plate 20 moves laterally under gravity, and the two sets of base plates 20 can rotate outward due to the limiting of the central axis 33. This tilting of the base plate 20 can improve unloading efficiency. In addition, the electromagnet assembly inside the base plate 20 can make the armature 24 magnetic. Together with the iron plate 29 in the middle of each set of partition plates 25, the stacked partition plates 25 not only receive the pressure from the aluminum alloy profile, but also further attract it through magnetic force. This ensures that the aluminum alloy profile will not change its position during transportation, further improving the safety of aluminum alloy profile transportation and reducing friction loss. The clamping assembly can fix the position of the two sets of placement structures inside the stacking limiting assembly 16, so that the two sets of placement structures can adapt to aluminum alloy profiles of different lengths, further improving the convenience of product use. A removable battery is inserted at the bottom of the base plate 20 to control the magnetic force of the electromagnet assembly.
[0025] For example, such as Figure 6As shown, the transfer assembly includes a placement plate 15 and a cover plate 18 that slide against the inner wall of the storage box 1, and a set of partition plates 17 placed between every two sets of stacking limiting components 16. The placement plate 15 and the cover plate 18 can be pulled out from inside the storage box 1. Since the height of the bottom plate 20 and the baffle 22 remains unchanged, a fixed number of stacking limiting components 16 can be stacked inside the storage box 1. By pulling out the placement plate 15 and the cover plate 18, each set of stacking limiting components 16 can be stacked on the outside and easily pushed into the storage box 1, improving the convenience of stacking aluminum alloy profiles. The partition plates 17 can further separate the stacked stacking limiting components 16 to improve the safety during transportation. Because its stacking gravity is vertical and it is constrained by limiting components and magnetic forces, it can be stacked and packed using aluminum alloy profiles of different sizes.
[0026] For example, such as Figure 3 As shown, several sets of auxiliary rollers 2 are equidistantly mounted on the upper and lower sides of the inner wall of the storage box 1. Two sets of first moving grooves 3 are symmetrically opened through the lower part of the storage box 1 on both sides of the auxiliary rollers 2. Two sets of bottom grooves 4 are opened on the lower surface of the storage box 1 corresponding to the lower ends of the auxiliary rollers 2. Two sets of second moving grooves 5 are opened through the upper part of the storage box 1 corresponding to the positions of the two sets of bottom grooves 4. Two sets of docking grooves 6 are opened on the upper surface of the storage box 1 corresponding to the positions of the two sets of first moving grooves 3. The auxiliary rollers 2 installed on the inner wall of the storage box 1 cooperate with the placement plate 15 and the cover plate 18 to reduce friction when the placement plate 15 and the cover plate 18 are pushed into the storage box 1, improving efficiency. To improve the convenience of the transfer process, the first moving groove 3 at the bottom of the storage box 1 allows the auxiliary wheels 19 at the bottom of the placement plate 15 to extend downwards and contact the ground. The stacking limiting component 16 is more stable and safe when pushed into the storage box 1. In addition, the bottom groove 4 on the lower surface of the storage box 1 is for the purpose of stacking each group of storage boxes 1 to avoid affecting the auxiliary wheels 19 when stacking each group of storage boxes 1. The second moving groove 5 at the top of the storage box 1 ensures that the auxiliary wheels 19 on the surface of the cover plate 18 can extend. During the stacking process, the storage box 1 at the top can slide with the help of force, improving the convenience of stacking.
[0027] For example, such as Figure 4 and Figure 5As shown, the protection assembly includes a rotating plate 7 rotatably connected to the storage box 1, a corrugated folding plate 8 connected to the rotating plate 7, and a positioning plate 9 connected to the corrugated folding plate 8. Several sets of connecting rods 11 for support are installed on the inner side of the positioning plate 9, and the two ends of each set of connecting rods 11 are inserted into the corresponding side of the rotating plate 7 and the positioning plate 9 for movable installation. Two sets of sealing plates 12 are rotatably installed on the outer end of one set of positioning plates 9. The rotating plates 7 rotatably installed on both sides of the storage box 1 control the overall usage angle of the protection assembly. The corrugated folding plate 8 installed on the outer end of the rotating plate 7 can control the usage position of the positioning plate 9, so that the positioning plate 9 can adapt to different specifications of aluminum alloy profiles. At the same time, after the positioning plate 9 determines the usage position, the two sets of sealing plates 12 rotate and close inside the storage box 1. The connecting rods 11 are used to support the corrugated folding plate 8, so that the corrugated folding plate 8 will not loosen when fully opened or folded, further improving the protection of the protection assembly for the stacking limit assembly 16 inside the storage box 1.
[0028] For example, such as Figure 3 As shown, a set of slots is provided on the upper and lower sides of the inner wall of the storage box 1. A set of limiting grooves 10 is provided on the middle of the corresponding sides of the two sets of rotating plates 7 and positioning plates 9. The upper and lower ends of the rotating plates 7 and positioning plates 9 are provided with matching side grooves corresponding to the slots. A set of locking grooves 13 is provided on the middle of the outer surface of the two sets of sealing plates 12. A set of matching latches 14 is installed inside the two sets of locking grooves 13. The slots provided on the upper and lower sides of the storage box 1 limit the placement plate 15 and the cover plate 18, so that the placement plate 15 and the cover plate 18 can be placed stably and used, reducing the movement of the placement plate 15 and the cover plate 18, thereby reducing the pressure on the protective components. In addition, the limiting grooves 10 provided in the middle of the rotating plates 7 and positioning plates 9 can limit the middle partition 17 to protect and stably separate the stacking limiting components 16 of each layer, improving the safety of its transportation.
[0029] For example, such as Figure 6 As shown, the placement plate 15 and the cover plate 18 are slidably installed inside the slot, and the placement plate 15 and the cover plate 18 are respectively attached to the outer arc surface of each set of auxiliary rollers 2. Several sets of auxiliary wheels 19 are installed on the surface of the placement plate 15 and the cover plate 18, and the auxiliary wheels 19 on the surface of the placement plate 15 extend from the inside of the first moving groove 3, and the auxiliary wheels 19 on the surface of the cover plate 18 extend from the inside of the second moving groove 5. The auxiliary rollers 2 assist the placement plate 15 and the cover plate 18 in being sent into the storage box 1. The auxiliary wheels 19 at the bottom of the placement plate 15 can quickly transfer the stacking limiting component 16 to the inside of the storage box 1 after it is stacked outside. The auxiliary wheels 19 installed on the surface of the cover plate 18 can ensure the convenience of the storage box 1 during the stacking process.
[0030] For example, such as Figure 8 and Figure 9As shown, in each placement structure, several sets of connecting collars 21 are alternately installed on the corresponding sides of the two sets of base plates 20, and each set of connecting collars 21 is connected by a central shaft 33. Each set of baffles 22 has symmetrically opened grooves inside, and a set of anti-collision pads 23 are embedded in each set of grooves. The connecting collars 21 installed on the side of the base plate 20 are connected by the central shaft 33 so that the two sets of connecting collars 21 can rotate relative to each other, thereby better assisting the staff to complete the unloading operation of aluminum alloy profiles. The grooves opened inside the baffles 22 can ensure that the stacking partitions 25 are limited, so that the partitions 25 will not detach from the upper part of the base plate 20 during transportation, further improving the stability of transportation. In addition, the anti-collision pads 23 embedded in the baffles 22 can cooperate with the protective rubber blocks 32 to reduce the wear of aluminum alloy profiles caused by vibration during transportation, thereby ensuring the safety of aluminum alloy profile transportation.
[0031] For example, such as Figure 10 As shown, an inner cavity 26 is formed through the middle of the partition plate 25. Two sets of slots 27 are symmetrically formed on the inner wall of the inner cavity 26. Protective pads 28 are glued and installed on the upper and lower sides of the inner cavity 26. The inner cavity 26 inside the partition plate 25 is used to limit the iron plate 29. The electromagnetic component in the base plate 20 is used to control the magnetic force of the armature 24, so as to better cooperate with the iron plate 29 to complete the pressure increase at each stage, thereby improving the friction at each stage. The protective pads 28 on the upper and lower sides of the partition plate 25 can further limit the aluminum alloy profile after it is compressed, thereby improving the stability of its transportation.
[0032] For example, such as Figure 10 As shown, clamping plates 30 are fixedly installed on both sides of the iron plate 29. The clamping plates 30 are snapped into the slots 27 for secure installation. Two sets of limiting sliders 31 are installed on one side of the iron plate 29 through the partition plate 25. Each set of limiting sliders 31 has a set of protective rubber blocks 32 installed on both sides. The limiting sliders 31 are slidably installed inside the slide groove, and the protective rubber blocks 32 slide against the anti-collision pad 23. The clamping plates 30 installed on both sides of the iron plate 29 are snapped into the slots 27, thereby fixing the iron plate 29 and limiting the sliding of the sliders 31 inside the slide groove. The protective rubber blocks 32 sliding inside the anti-collision pad 23 ensure the overall stability of the movement of the partition plate 25. In addition, the number of partition plates 25 can be changed according to the different specifications of the aluminum alloy profiles to further adapt to the stacking state.
[0033] For example, such as Figure 11As shown, the clamping assembly includes two sets of pressure plates 34 with corresponding placement structures, and a connecting structure for connecting the two sets of pressure plates 34; each set of pressure plates 34 has a connecting groove 35 through the corresponding baffle 22, and a connecting rod 36 is fixedly installed in the middle of the corresponding side of the two sets of pressure plates 34. The connecting pressure plates 34 limit the two sets of baffles 22 in a single placement structure, improve the stability of the single placement structure, and press down each set of partition plates 25 by the weight of the pressure plates 34, so that the stacked aluminum alloy profiles can be more stable.
[0034] For example, such as Figure 11 As shown, the connecting structure includes a rotating rod 37 and internally threaded tubes 39 located at both ends of the rotating rod 37 and connected to the docking rod 36. External threads 38 are respectively opened at both ends of the outer arc surface of the rotating rod 37. The rotating rod 37 is threadedly connected to the internally threaded tubes 39. A set of positioning plugs 40 that are inserted into the docking rod 36 are installed at the outer end of each set of internally threaded tubes 39. The internally threaded tubes 39 at both ends of the rotating rod 37 are fixed to the docking rod 36 through the positioning plugs 40. The operator controls the spacing of the pressure plates 34 on both sides by rotating the rotating rod 37, so that the clamping assembly can adapt to the stacking limit assembly 16 for use, and complete the protection of both ends of the aluminum alloy profile.
[0035] The specific working principle of this device is as follows: Figures 1-15 As shown, the overall size and specifications of the storage box 1 remain unchanged. The box structure of the storage box 1 can be selected according to the size of different towing vehicles, so as to effectively carry aluminum alloy profiles of different specifications. The stacking limiting component 16 installed inside the storage box 1 can be selected according to the different specifications of aluminum alloy profiles, so as to adapt to the length of the storage box 1. The following can be selected: aluminum alloy profiles whose length is fully adapted to the length of the storage box 1, aluminum alloy profiles whose length is slightly shorter than the storage box 1, and aluminum alloy profiles with shorter lengths are continuously placed inside the longer storage box 1 for large-scale carrying. The placement plate 15 and cover plate 18 used for limiting the stacking limiting component 16 can be selected as plates of appropriate length for supporting when stacking aluminum alloy profiles of different specifications, or plates of corresponding length can be directly selected and equipped with casters. When the length of the aluminum alloy profile is perfectly matched to the length of the storage box 1, the aluminum alloy profile can be directly stacked inside the stacking limiting component 16 and then inserted into the storage box 1 to complete the limiting of the aluminum alloy profile. When the length of the aluminum alloy profile is slightly shorter than that of the storage box 1, the corrugated folding plates 8 provided on both sides of the storage box 1 can be folded back, thereby changing the closed position of the sealing plate 12, thereby completing the limitation of the stacking limiting component 16 placed inside the storage box 1, and thus completing the further limitation of the aluminum alloy profile. When the aluminum alloy profile is short, multiple sets of stacking limiting components 16 can be used simultaneously. When one set of stacking limiting components 16 completes the stacking of the shorter aluminum alloy profile, it is first placed inside the storage box 1. Then, another set of aluminum alloy profiles is stacked using the stacking limiting components 16. After stacking, it is placed inside the storage box 1 and placed in close contact with the previous set of stacking limiting components 16 until the storage box 1 is completely filled with several sets of stacking limiting components 16 or until no new stacking limiting components 16 can be placed. This can better complete the carrying and limiting of aluminum alloy profiles. The stacking limiting component 16 includes a partition plate 25 that can be adjusted to select the number of aluminum alloy profiles to be inserted based on their height. After the first layer of aluminum alloy profiles is placed on the top of the base plate 20, the partition plate 25 slides into the groove inside the baffle 22 via the limiting slider 31 and protective rubber block 32 on one side of the iron plate 29 to press down the lower aluminum alloy profiles. The partition plate 25 also limits the placement of the upper aluminum alloy profiles. The aluminum alloy profiles are continuously stacked by adding partition plates 25, and each stacked layer of aluminum alloy profiles presses down on the lower layer. The system further enhances the limitation of aluminum alloy profiles. At the same time, the magnetic components inside the base plate 20 magnetically attract the iron plates 29 inside each set of partition plates 25. Since the stacking gravity is in a vertical state and is constrained by the limiting components and magnetic force, aluminum alloy profiles of different sizes can be stacked and packed. In addition, in order to ensure the overall stability of the stacking limiting components 16, the cover plate 18 installed on the upper side of each set of stacking limiting components 16 can also further satisfy the limitation of the uppermost aluminum alloy profile, so as to further ensure the overall stability of the placement of the aluminum alloy profiles. In addition, the electromagnet components used in this device can be purchased directly on the market. Any electromagnet component that meets the requirements of this device can be selected. Since the electromagnet components themselves are quite common and the technology itself does not require innovation, and the usage method is also known to those skilled in the art, they are not described in detail in this application, nor is it necessary to protect their usage method and model.
[0036] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.
Claims
1. A layered friction-enhancing aluminum alloy profile conveying device, comprising a storage box (1), characterized in that: The storage box (1) is rotatably installed on both sides with a set of protective components for shielding and protection, and a set of sealing plates (12) is installed at the end of each set of protective components. Several sets of stacking limiting components (16) are slidably installed inside the storage box (1), as well as a transfer component that moves in coordination with each set of stacking limiting components (16). The stacking limiting component (16) includes two sets of placement structures. Each set of placement structures is rotatably connected by two sets of base plates (20). An electromagnet assembly is provided inside the base plate (20). An armature (24) is embedded in the surface of the base plate (20). A baffle (22) is fixedly installed on one side of the upper surface of the base plate (20). Several sets of partition plates (25) are movably installed on the upper part of the base plate (20) through the baffle (22). An iron plate (29) for cooperating with the armature (24) is embedded in the middle of the partition plate (25). A clamping component is used to synchronously limit the two sets of placement structures. The transfer assembly includes a placement plate (15) and a cover plate (18) that slide against the inner wall of the storage box (1), and a set of partition plates (17) placed between each two sets of the stacking limiting assemblies (16).
2. The layered friction-enhancing aluminum alloy profile conveying equipment according to claim 1, characterized in that: The storage box (1) has several sets of auxiliary rollers (2) rotatably installed at equal intervals on the upper and lower sides of its inner wall. The lower part of the storage box (1) is symmetrically provided with two sets of first moving grooves (3) on both sides of the auxiliary rollers (2). The lower surface of the storage box (1) is provided with two sets of bottom grooves (4) at the lower ends of the auxiliary rollers (2). The upper part of the storage box (1) is provided with two sets of second moving grooves (5) at the positions of the two sets of bottom grooves (4). The upper surface of the storage box (1) is provided with two sets of docking grooves (6) at the positions of the two sets of first moving grooves (3).
3. The layered friction-enhancing aluminum alloy profile conveying equipment according to claim 2, characterized in that: The protective assembly includes a rotating plate (7) rotatably connected to the storage box (1), a corrugated folding plate (8) connected to the rotating plate (7), and a positioning plate (9) connected to the corrugated folding plate (8). Several sets of connecting rods (11) for support are installed on the inner side of the positioning plate (9), and the two ends of each set of connecting rods (11) are inserted into the corresponding side rotating plate (7) and positioning plate (9) for movable installation. Two sets of sealing plates (12) are rotatably installed on the outer end of a set of positioning plates (9).
4. The layered friction-enhancing aluminum alloy profile conveying equipment according to claim 3, characterized in that: The storage box (1) has a set of slots on the upper and lower sides of its inner wall. The two sets of rotating plates (7) and positioning plates (9) have a set of limiting grooves (10) on their corresponding middle parts. The upper and lower ends of the rotating plates (7) and positioning plates (9) have side grooves for cooperation. The two sets of sealing plates (12) have a set of locking grooves (13) on their outer middle parts. The two sets of locking grooves (13) have a set of locking locks (14) for cooperation installed inside them.
5. A layered friction-enhancing aluminum alloy profile conveying device according to claim 4, characterized in that: The placement plate (15) and the cover plate (18) are slidably installed inside the slot, and the placement plate (15) and the cover plate (18) are respectively attached to the outer arc surface of each set of auxiliary rollers (2). Several sets of auxiliary wheels (19) are respectively installed on the surface of the placement plate (15) and the cover plate (18). The auxiliary wheels (19) on the surface of the placement plate (15) extend from inside the first moving groove (3), and the auxiliary wheels (19) on the surface of the cover plate (18) extend from inside the second moving groove (5).
6. The layered friction-enhancing aluminum alloy profile conveying equipment according to claim 5, characterized in that: The base plate (20) is equipped with an electromagnet assembly. In each set of the placement structure, several sets of connecting collars (21) are alternately installed on the corresponding sides of the two sets of base plates (20), and each set of connecting collars (21) is connected by a central shaft (33). Each set of baffles (22) has symmetrically opened sliding grooves inside, and each set of sliding grooves has a set of anti-collision pads (23) embedded inside.
7. A layered friction-enhancing aluminum alloy profile conveying device according to claim 6, characterized in that: The partition plate (25) has an inner cavity (26) through the middle. The inner wall of the inner cavity (26) has two sets of slots (27) symmetrically opened. Protective pads (28) are glued and installed on the upper and lower sides of the inner cavity (26).
8. A layered friction-enhancing aluminum alloy profile conveying device according to claim 7, characterized in that: The iron plate (29) is fixedly installed with a card plate (30) on both sides. The card plate (30) is inserted into the card slot (27) for installation. Two sets of limiting sliders (31) are installed through the partition plate (25) on one side of the iron plate (29). Each set of limiting sliders (31) has a set of protective rubber blocks (32) installed on both sides. The limiting sliders (31) are slidably installed inside the slide groove, and the protective rubber blocks (32) slide against the anti-collision pad (23).
9. A layered friction-enhancing aluminum alloy profile conveying device according to claim 8, characterized in that: The clamping assembly includes two sets of pressure plates (34) with corresponding placement structures, and a connecting structure for connecting the two sets of pressure plates (34); Each set of pressure plates (34) has a connecting groove (35) through the corresponding baffle (22), and a connecting rod (36) is fixedly installed on the middle of the corresponding side of the two sets of pressure plates (34).
10. A layered friction-enhancing aluminum alloy profile conveying device according to claim 9, characterized in that: The connection structure includes a rotating rod (37) and an internally threaded tube (39) located at both ends of the rotating rod (37) and connected to the docking rod (36). The rotating rod (37) has external threads (38) at both ends of its outer arc surface. The rotating rod (37) is threadedly connected to the internally threaded tube (39). Each set of internally threaded tubes (39) has a set of positioning plugs (40) installed at the outer end of its outer end, which are inserted into the docking rod (36).