Environment-friendly cooling device for building aluminum profile machining

By using a limiting plate and sliding column structure, the problems of uneven cooling and bending of aluminum profiles were solved, achieving uniform cooling and efficient water use, thus improving the processing quality of aluminum profiles.

CN120828074BActive Publication Date: 2025-11-18NANTONG INST OF TECH +1
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Patent Information

Application Number
CN202511324733.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-09-17
Publication Date
2025-11-18
Estimated Expiration
2045-09-17

AI Technical Summary

Technical Problem

Existing aluminum profile cooling devices suffer from uneven cooling during water cooling, leading to bending due to varying degrees of contact between the concave and convex structures. The lack of limiting devices causes localized bending to amplify, and high output pressure from the annular tube can leave marks on the aluminum profile surface, affecting product quality.

Method used

The system employs a limiting plate and sliding column structure. The limiting plate is driven by a motor to approach the aluminum profile, and the sliding column adjusts its position according to the concave and convex structure. Combined with a pressure mechanism and ball bearing buffer, it ensures uniform contact of cooling water and avoids bending and marks.

Benefits of technology

This achieves improved uniformity and efficiency in aluminum profile cooling, reduces material waste, lowers water consumption, and enhances product quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses an environment-friendly cooling device for building aluminum profile machining, belongs to the technical field of aluminum profile production and machining, and aims at solving the problems of different contact degrees of the inner and outer surfaces of the aluminum profile with water mist, no limiting during cooling, easy large-range bending caused by local bending, and easy traces on the surface of the aluminum profile caused by large jetting pressure of an outlet, and comprises a cooling tank, bottom plates fixedly connected to the two sides of the cooling tank, and supports fixedly connected to the top surfaces of the two bottom plates, a filter plate is fixedly connected to the top surface of the cooling tank, conveying mechanisms are fixedly and jointly installed on the outer walls of the two sides of the filter plate, the moving mechanism and the limiting plate are arranged to avoid large-range bending of the aluminum profile, the sliding column and the pressure mechanism are arranged to match the concave-convex structure of the aluminum profile, the clamping ring, the ball and the cleaning roller are arranged to buffer the impact of the cooling water and simultaneously avoid blockage of the overflow hole.
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Description

Technical Field

[0001] This invention relates to the field of aluminum profile production and processing technology, specifically to an environmentally friendly cooling device for processing architectural aluminum profiles. Background Technology

[0002] Aluminum profiles are alloy materials with aluminum as the main component. When assembling products, different specifications of profiles are used according to different load-bearing requirements, along with matching aluminum profile accessories. No welding is required, making them more environmentally friendly. Furthermore, they are lightweight, easy to carry, and extremely convenient to install, disassemble, and move. In the production of aluminum profiles, aluminum rods are melted and extruded to obtain aluminum materials with different cross-sectional shapes. After extrusion molding, aluminum profiles need to be rapidly cooled to achieve an online quenching effect. The main cooling methods include air cooling, water cooling, and oil cooling.

[0003] For example, patent CN114749503B describes an environmentally friendly cooling device for aluminum profile processing, comprising a conveying mechanism, a cooling box, an air-cooling mechanism, and a water-cooling mechanism. The cooling box has a cavity arranged along a first direction and an inlet and an outlet communicating with the cavity. The inlet and outlet are arranged opposite to each other, and the front and rear side walls of the cooling box are both water curtain walls. The top of the cooling box has multiple mounting holes. The air-cooling mechanism is located on the top of the cooling box and includes multiple fans, which are respectively located at the multiple mounting holes. The water-cooling mechanism is located inside the cavity and includes an annular spray pipe, multiple spray heads connected to the inside of the annular spray pipe, and a first water pump connected to the annular spray pipe. This environmentally friendly cooling device for aluminum profile processing can uniformly cool and reduce the temperature of aluminum profiles, improve the quenching effect, and improve the quality of aluminum profiles.

[0004] The aforementioned patent still has some shortcomings in its application. For example, during water cooling, although an annular tube is installed, aluminum profiles often have different concave and convex structures. Their outer surfaces have more contact with water mist and dissipate heat faster, while their concave parts have less contact with water mist and dissipate heat slower. This can easily cause uneven cooling, resulting in bending of the aluminum profile. Furthermore, the lack of a limiting device during aluminum profile cooling means that localized bending can easily cause the aluminum profile to bend further on the conveying mechanism, making subsequent stretching and other operations inconvenient. Also, because the aluminum profile is at a high temperature after extrusion and is not fully shaped, when the spray pressure at the outlet of the annular tube is high, it can easily leave marks on the aluminum profile, affecting product quality.

[0005] To address the above issues, an environmentally friendly cooling device for processing architectural aluminum profiles is proposed. Summary of the Invention

[0006] The purpose of this invention is to provide an environmentally friendly cooling device for processing architectural aluminum profiles. By using this device, the problems mentioned above can be solved, such as the uneven cooling caused by aluminum profiles having different concave and convex structures and varying degrees of contact between their inner and outer surfaces and water mist, the lack of limiting the cooling of aluminum profiles, the tendency for local bending to lead to larger-scale bending, and the easy formation of marks on the surface of aluminum profiles when the spray pressure at the annular pipe outlet is too high, which affects the quality of the product.

[0007] To achieve the above objectives, the present invention provides the following technical solution: an environmentally friendly cooling device for processing architectural aluminum profiles, comprising a cooling tank, base plates fixedly connected to both sides of the cooling tank, and a bracket fixedly connected to the top surface of the two base plates. The bracket is a rectangular frame structure with a closed top surface. Side sealing plates are fixedly connected to both sides of the bracket. A filter plate is fixedly connected to the top surface of the cooling tank. A conveying mechanism is fixedly installed on both outer walls of the filter plate. An aluminum profile body is placed on the conveying mechanism. Baffles are provided at both ends of the bracket in the conveying direction of the conveying mechanism. A water pump is fixedly installed on the side wall of the cooling tank. The input end of the water pump is connected to the inside of the cooling tank through a pipe. A motor is fixedly installed on the outer wall of one of the side sealing plates. A moving mechanism is fixedly installed on the adjacent side walls of the two side sealing plates. The output end of the motor is fixedly connected to one end of the moving mechanism. A cooling mechanism is fixedly connected to the movable end of the moving mechanism. A pressure mechanism is fixedly installed on the side wall of the cooling mechanism.

[0008] Furthermore, the moving mechanism includes a bidirectional lead screw rotatably connected to one end of the sidewalls of the two side sealing plates and a guide rod fixedly connected to the other end of the sidewalls of the two side sealing plates. One end of the bidirectional lead screw is fixedly connected to the output shaft of the motor. A first moving frame is symmetrically threaded on the outer wall of the bidirectional lead screw, and a second moving frame is symmetrically slidably connected on the outer wall of the guide rod.

[0009] Furthermore, the cooling mechanism includes a limiting plate fixedly connected to the bottom surfaces of the first and second movable frames, the limiting plate having an inverted L-shaped structure.

[0010] Furthermore, multiple pressure grooves are provided on both the transverse and longitudinal sidewalls of the limiting plate, and a sliding column is slidably connected inside each pressure groove. A buffer groove is provided inward at the end of the sliding column away from the pressure groove, and a cooling water pipe is fixedly connected through the end of each sliding column near the pressure groove.

[0011] Furthermore, a snap ring is fixedly connected to the end of the sliding column away from the pressure groove, and a ball bearing is embedded inside the snap ring.

[0012] Furthermore, the ball is hollow, and multiple overflow holes are equidistantly spaced in a circular pattern on its outer wall.

[0013] Furthermore, the pressure mechanism includes two pressure cylinders fixedly connected to the side wall of the limiting plate, and an air inlet pipe is fixedly connected to one end of each pressure cylinder, and a solenoid valve is fixedly connected to each air inlet pipe.

[0014] Furthermore, each of the pressure cylinders is connected to the interior of multiple pressure slots on the same side via a pipe, and each of the air inlet pipes is connected to an external pressurization device via a pipe.

[0015] Furthermore, a bundle tube is fixedly connected to one end of each pressure cylinder, and one end of each bundle tube located inside the pressure cylinder is connected to multiple cooling water pipes on the same side through a pipe. The other end of each bundle tube is connected to the output end of a water pump.

[0016] Furthermore, a cleaning roller is rotatably connected to the inner wall of each of the buffer grooves.

[0017] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0018] By setting up a moving mechanism and limiting plates, when the aluminum profile body is cooled, the motor is started to drive the bidirectional lead screw to rotate, thereby causing the first moving frame with symmetrical threaded connection on its side wall to move and approach each other, and driving the limiting plates on both sides to move synchronously. At this time, the two second moving frames slide along the guide rod and approach each other. The setting of the guide rod increases the accuracy and stability of the movement of the limiting plate. The L-shaped limiting plates on both sides limit the offset range of the aluminum profile body on the conveying mechanism, avoiding the bending of the aluminum profile body in a local area leading to a larger bending range.

[0019] By setting up sliding columns and a pressure mechanism, as the two limiting plates approach each other, external equipment pressurizes the inside of the pressure cylinder. The applied pressure is transmitted through pipes to each pressure groove on the same side, thereby pushing the corresponding sliding columns to slide outward. Then, by closing the solenoid valve to maintain the pressure, multiple sliding columns can fit well into the concave and convex structure of the aluminum profile body, so that the cooling water can fully contact the aluminum profile body, avoiding the problem of some cooling water flowing back without contacting the aluminum profile body. This achieves a better cooling effect, improves the utilization rate of cooling water, reduces water consumption, and achieves a more uniform cooling effect through the setting of multiple sliding columns.

[0020] By setting up a snap ring, ball bearings, and cleaning roller components, the impact of cooling water is buffered. During the cooling process of the aluminum profile body, the ball bearings rotate and abut against the cleaning roller inside the buffer groove. The bristles of the cleaning roller continuously brush the outer surface of the ball bearings to prevent impurities from adhering. At the same time, it can prevent the overflow hole from clogging and affecting the cooling of the aluminum profile body, thus ensuring stable water output from the overflow hole. Attached Figure Description

[0021] Figure 1 This is a schematic diagram of the overall structure of an environmentally friendly cooling device for processing architectural aluminum profiles proposed in this invention.

[0022] Figure 2 This is a schematic diagram of the internal structure of an environmentally friendly cooling device for processing architectural aluminum profiles proposed in this invention.

[0023] Figure 3 This is a schematic diagram of the connection structure of the moving mechanism, cooling mechanism and pressure mechanism in an environmentally friendly cooling device for processing architectural aluminum profiles proposed in this invention.

[0024] Figure 4 This is a schematic diagram of the moving mechanism in an environmentally friendly cooling device for processing architectural aluminum profiles proposed in this invention.

[0025] Figure 5 This is a schematic diagram of the limiting plate part in an environmentally friendly cooling device for processing architectural aluminum profiles proposed in this invention.

[0026] Figure 6 This is a schematic diagram of the overall structure of the sliding column part in an environmentally friendly cooling device for processing architectural aluminum profiles proposed in this invention;

[0027] Figure 7 This is a cross-sectional view of the internal structure of the sliding column portion in an environmentally friendly cooling device for processing architectural aluminum profiles proposed in this invention.

[0028] Figure 8 This is a schematic diagram of the connection structure between the cooling tank and the filter plate in an environmentally friendly cooling device for processing architectural aluminum profiles proposed in this invention.

[0029] Figure 9 This is a schematic diagram showing the connection between the filter plate and the conveying mechanism in an environmentally friendly cooling device for processing architectural aluminum profiles proposed in this invention.

[0030] In the diagram: 1. Cooling tank; 2. Base plate; 3. Support; 4. Side sealing plate; 5. Filter plate; 6. Conveying mechanism; 7. Aluminum profile body; 8. Curtain; 9. Water pump; 10. Motor; 20. Moving mechanism; 201. Two-way lead screw; 202. Guide rod; 203. First moving frame; 204. Second moving frame; 30. Cooling mechanism; 301. Limiting plate; 3011. Pressure groove; 302. Sliding column; 3021. Buffer groove; 303. Snap-fit ​​ring; 304. Ball bearing; 3041. Overflow hole; 305. Cooling water pipe; 306. Cleaning roller; 40. Pressure mechanism; 401. Pressure cylinder; 402. Air inlet pipe; 403. Bundling pipe; 404. Solenoid valve. Detailed Implementation

[0031] 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.

[0032] To address the technical problem of the lack of a limiting device during aluminum profile cooling, which causes localized bending and leads to greater bending of the aluminum profile on the conveyor mechanism 6, hindering subsequent stretching and other operations, such as... Figures 1-5 , Figure 8 and Figure 9 As shown, the following preferred technical solutions are provided:

[0033] An environmentally friendly cooling device for processing architectural aluminum profiles includes a cooling tank 1, base plates 2 fixedly connected to both sides of the cooling tank 1, and supports 3 fixedly connected to the top surfaces of the two base plates 2. The supports 3 are rectangular frame structures with closed top surfaces. Side sealing plates 4 are fixedly connected to both sides of the supports 3. The side sealing plates 4 are removable to facilitate internal inspection and maintenance of the device. A filter plate 5 is fixedly connected to the top surface of the cooling tank 1 to treat the cooling return water and isolate dust particles and other impurities washed down during cooling, preventing them from re-entering the cooling water circulation. A conveying mechanism 6 is fixedly installed on both outer walls of the filter plate 5 to convey the extruded aluminum profile. This is existing technology and will not be described in detail here. The aluminum profile body 7 is placed on the conveying mechanism 6. The support 3 is equipped with baffles 8 at both ends of the conveying direction of the conveying mechanism 6. A water pump 9 is fixedly installed on the side wall of the cooling tank 1. The input end of the water pump 9 is connected to the inside of the cooling tank 1 through a pipe to transport the cooling water in the cooling tank 1. A motor 10 is fixedly installed on the outer wall of one of the side sealing plates 4. A moving mechanism 20 is installed on the adjacent side walls of the two side sealing plates 4. The output end of the motor 10 is fixedly connected to one end of the moving mechanism 20 to drive the movement of the moving mechanism 20. A cooling mechanism 30 is fixedly connected to the movable end of the moving mechanism 20. The cooling water transported by the water pump 9 enters the cooling mechanism 30 to cool the aluminum profile body 7. A pressure mechanism 40 is fixedly installed on the side wall of the cooling mechanism 30.

[0034] In use, the extruded aluminum profile body 7 is conveyed by the conveying mechanism 6 and the external traction device. After the aluminum profile body 7 enters the support 3, the motor 10 drives the moving mechanism 20 to operate, which drives the cooling mechanisms 30 on both sides to approach the aluminum profile body 7. The pressure mechanism 40 adjusts the water outlet of the cooling mechanism 30 to better fit the concave and convex shape of the aluminum profile body 7, so that the aluminum profile body 7 can fully contact the cooling water, improve the uniformity and efficiency of cooling, reduce water consumption, and improve the environmental friendliness of the device.

[0035] By adapting the cooling mechanism 30 to the shape of the aluminum profile body 7, it can play a certain limiting role in the cooling and conveying process of the aluminum profile body 7, so that it is conveyed in a straight line and its deviation to both sides is reduced. Even if the aluminum profile body 7 is bent unexpectedly, the limiting of the aluminum profile body 7 can prevent the local bending from causing a larger range of bending deformation, thus facilitating subsequent stretching and other operations.

[0036] The moving mechanism includes a bidirectional lead screw 201 rotatably connected to one end of the side wall of the two side sealing plates 4 and a guide rod 202 fixedly connected to the other end of the side wall of the two side sealing plates 4. One end of the bidirectional lead screw 201 is fixedly connected to the output shaft of the motor 10, so that the motor 10 can drive the bidirectional lead screw 201 to rotate. The outer wall of the bidirectional lead screw 201 is symmetrically threaded with a first moving frame 203. When the bidirectional lead screw 201 rotates, the two first moving frames 203 move closer or further away from each other, thereby driving the cooling mechanism 30 connected to it to move. The outer wall of the guide rod 202 is symmetrically slidably connected with a second moving frame 204. The second moving frame 204 slides on the guide rod 202 to improve the stability of the movement of the cooling mechanism 30.

[0037] The cooling mechanism 30 includes a limiting plate 301 fixedly connected to the bottom surface of the first moving frame 203 and the second moving frame 204. The limiting plate 301 has an inverted L-shaped structure. When the aluminum profile body 7 is cooled, the limiting plates 301 on both sides move closer to the aluminum profile body 7, limiting the offset of the aluminum profile body 7 on the conveying mechanism 6. This reduces the degree of bending when the aluminum profile body 7 bends, so that local bending will not lead to a larger range of bending.

[0038] Specifically, when the aluminum profile body 7 is cooled, the start motor 10 drives the bidirectional lead screw 201 to rotate, thereby causing the first moving frame 203 with symmetrical threaded connections on its side walls to move and approach each other, and driving the limiting plates 301 on both sides to move synchronously. At this time, the two second moving frames 204 also slide along the guide rod 202 and approach each other. The setting of the guide rod 202 increases the accuracy and stability of the movement of the limiting plate 301. The L-shaped limiting plates 301 on both sides limit the offset range of the aluminum profile body 7 on the conveying mechanism 6. When the cooling device malfunctions and causes uneven cooling of the aluminum profile body 7, resulting in local bending, the limiting plate 301 has a certain straightening effect on the aluminum profile body 7. Moreover, the bending of the aluminum profile 7 at one end of the limiting plate 301 will not affect the aluminum profile at the other end, thereby avoiding the bending of the aluminum profile body 7 in a local area from causing a larger bending range. The aluminum profile body 7 can be continued to be conveyed and cooled by cutting off the small bending part, which greatly reduces material waste, is environmentally friendly, and facilitates subsequent stretching operations.

[0039] To address the technical problem of uneven cooling caused by varying degrees of contact between the inner and outer surfaces of aluminum profiles with different concave and convex structures and water mist, such as... Figures 5-7 As shown, the following preferred technical solutions are provided:

[0040] Multiple pressure grooves 3011 are provided on both the transverse and longitudinal sidewalls of the limiting plate 301. A sliding column 302 is slidably connected inside each pressure groove 3011. A buffer groove 3021 is formed at the end of the sliding column 302 furthest from the pressure groove 3011. The delivered cooling water first enters the buffer groove 3021, loses some kinetic energy, and then exits to cool the aluminum profile body 7, thus reducing its impact on the surface of the aluminum profile body. A cooling water pipe 30 is fixedly connected through the end of each sliding column 302 closest to the pressure groove 3011. 5. By sliding the sliding column 302 inside the pressure groove 3011, the extension distance of the sliding column 302 can be changed, thereby allowing the sliding column 302 to fit as closely as possible to the different concave and convex structures of the aluminum profile body 7. This allows the cooling water input by the cooling water pipe 305 to fully contact the aluminum profile body 7 and cool it down, improving the cooling efficiency of the aluminum profile body 7, reducing water consumption, and enhancing the environmental friendliness of the device. Furthermore, the multiple sliding columns 302 and their retractable structure achieve a relatively uniform cooling effect.

[0041] The pressure mechanism 40 includes two pressure cylinders 401 fixedly connected to the side wall of the limiting plate 301. One end of each pressure cylinder 401 is fixedly connected to an air inlet pipe 402. Each air inlet pipe 402 is fixedly connected to a solenoid valve 404. The solenoid valve 404 is used to isolate the air inlet pipe 402 to maintain the pressure inside the pressure groove 3011.

[0042] Each pressure cylinder 401 is connected to the interior of multiple pressure grooves 3011 on the same side through a pipe, and each air inlet pipe 402 is connected to an external pressurization device through a pipe. By pressurizing the interior of the pressure cylinder 401, the pressure is transmitted to the interior of each pressure groove 3011 through the pipe, thereby pushing the sliding column 302 to slide along the pressure groove 3011, so that the multiple sliding columns 302 can fit well into the different concave and convex structures of the aluminum profile body 7.

[0043] One end of each pressure cylinder 401 is fixedly connected to a bundle tube 403. One end of each bundle tube 403 inside the pressure cylinder 401 is connected to multiple cooling water pipes 305 on the same side through a pipe. The other end of each bundle tube 403 is connected to the output end of the water pump 9. Thus, the cooling water in the cooling tank 1 can be distributed to each cooling water pipe 305 through the bundle tube 403 by the action of the water pump 9, and then enter the buffer tank 3021, and finally sprayed onto the aluminum profile body 7 to cool it down.

[0044] Specifically, as the two limiting plates 301 approach each other, external equipment pressurizes the inside of the pressure cylinder 401. The applied pressure is transmitted through pipes to the pressure grooves 3011 on the same side, thereby pushing the corresponding sliding column 302 to slide outward. Then, the pressure is maintained by closing the solenoid valve 404, allowing the multiple sliding columns 302 to fit well against the concave and convex structure of the aluminum profile body 7. This ensures that the cooling water can fully contact the aluminum profile body 7, preventing the problem of some cooling water flowing back without contacting the aluminum profile body 7. The cooling system achieves a good cooling effect, improves the utilization rate of cooling water, and reduces water consumption. At the same time, the setting of multiple sliding columns 302 achieves a relatively uniform cooling effect. During cooling, the water pump 9 draws the cooling water in the cooling tank 1 into the bundle pipe 403, and then distributes the cooling water to the cooling water pipes 305 of each sliding column 302 on the same side. Finally, the cooling water is sprayed out from one end of the sliding column 302 to cool the aluminum profile body 7. After passing through the filter plate 5, the cooling water re-enters the cooling tank 1 for cooling and recycling.

[0045] To address the technical problem of high temperatures after aluminum extrusion, resulting in incomplete shaping, and the tendency for high injection pressure at the annular tube outlet to leave marks on the aluminum profile, thus affecting product quality, such as… Figures 6-7 As shown, the following preferred technical solutions are provided:

[0046] A snap ring 303 is fixedly connected to one end of the sliding column 302 away from the pressure groove 3011. A ball bearing 304 is embedded inside the snap ring 303. When the aluminum profile body 7 moves during cooling, the ball bearing 304 will rotate along its conveying direction.

[0047] The ball bearing 304 has a hollow structure. Cooling water enters the ball bearing 304 after being buffered by the buffer tank 3021 for further buffering. Multiple overflow holes 3041 are equidistantly arranged in a circular pattern on the outer wall of the ball bearing 304. Cooling water entering the buffer tank 3021 through the cooling water pipe 305 first enters the ball bearing 304 through the overflow holes 3041, and then the cooling water inside the ball bearing 304 finally overflows through the overflow holes 3041 and is sprayed onto the aluminum profile body 7.

[0048] Each buffer groove 3021 has a cleaning roller 306 rotatably connected to its inner wall, which is used to clean the outer surface of the corresponding ball 304, so as to prevent impurities from solidifying on the outer surface of the ball 304 and causing scratches on the aluminum profile body 7 during cooling. At the same time, it can also continuously clean the overflow hole 3041.

[0049] Specifically, during the cooling process of the aluminum profile body 7, the ball bearing 304 rotates and abuts against the cleaning roller 306 inside the buffer groove 3021. The bristles of the cleaning roller 306 continuously brush the outer surface of the ball bearing 304 to prevent impurities from solidifying on the outer surface of the ball bearing 304. The solidified impurities exert a large force on the aluminum profile body 7 and are prone to scratches. After the impurities are washed down, some of them flow out with the water flow and eventually enter the filter plate 5 under the flushing action of the water flow. The setting of the cleaning roller 306 can also prevent the overflow hole 3041 from being blocked, thereby avoiding the impact on the cooling of the aluminum profile body 7 and making the water output from the overflow hole 3041 stable.

[0050] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0051] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. An environmentally friendly cooling device for processing architectural aluminum profiles, comprising a cooling tank (1), base plates (2) fixedly connected to both sides of the cooling tank (1), and a support (3) fixedly connected to the top surface of the two base plates (2), wherein the support (3) is a rectangular frame structure with a closed top surface, characterized in that: Side sealing plates (4) are fixedly connected to both sides of the bracket (3). A filter plate (5) is fixedly connected to the top surface of the cooling tank (1). A conveying mechanism (6) is fixedly installed on both outer walls of the filter plate (5). An aluminum profile body (7) is placed on the conveying mechanism (6). A curtain (8) is provided at both ends of the bracket (3) in the conveying direction of the conveying mechanism (6). A water pump (9) is fixedly installed on the side wall of the cooling tank (1). The input end of the water pump (9) is connected to the inside of the cooling tank (1) through a pipe. A motor (10) is fixedly installed on the outer wall of one of the side sealing plates (4). A moving mechanism (20) is installed on the adjacent side walls of the two side sealing plates (4). The output end of the motor (10) is fixedly connected to one end of the moving mechanism (20). A cooling mechanism (30) is fixedly connected to the movable end of the moving mechanism (20). A pressure mechanism (40) is fixedly installed on the side wall of the cooling mechanism (30). The moving mechanism includes (20) a bidirectional lead screw (201) rotatably connected to one end of the side wall of the two side sealing plates (4) and a guide rod (202) fixedly connected to the other end of the side wall of the two side sealing plates (4). One end of the bidirectional lead screw (201) is fixedly connected to the output shaft of the motor (10). A first moving frame (203) is symmetrically threaded on the outer wall of the bidirectional lead screw (201), and a second moving frame (204) is symmetrically slidably connected on the outer wall of the guide rod (202). The cooling mechanism (30) includes a limiting plate (301) fixedly connected to the bottom surfaces of the first movable frame (203) and the second movable frame (204), the limiting plate (301) having an inverted L-shaped structure; The limiting plate (301) has multiple pressure grooves (3011) on its transverse and longitudinal sidewalls. Each pressure groove (3011) has a sliding column (302) slidably connected inside it. The end of the sliding column (302) away from the pressure groove (3011) has a buffer groove (3021) formed inward. The end of each sliding column (302) near the pressure groove (3011) is fixedly connected to a cooling water pipe (305). The pressure mechanism (40) includes two pressure cylinders (401) fixedly connected to the side wall of the limiting plate (301). One end of each pressure cylinder (401) is fixedly connected to an air inlet pipe (402), and each air inlet pipe (402) is fixedly connected to a solenoid valve (404). Each of the pressure cylinders (401) is connected to the interior of a plurality of pressure slots (3011) on the same side via a pipe, and each of the air inlet pipes (402) is connected to an external pressurization device via a pipe.

2. The environmentally friendly cooling device for processing architectural aluminum profiles according to claim 1, characterized in that: The sliding column (302) is fixedly connected to a snap ring (303) at the end away from the pressure groove (3011), and the snap ring (303) is embedded with a ball (304).

3. The environmentally friendly cooling device for processing architectural aluminum profiles according to claim 2, characterized in that: The ball (304) has a hollow structure, and multiple overflow holes (3041) are equidistantly arranged in a circular pattern on the outer wall of the ball (304).

4. The environmentally friendly cooling device for processing architectural aluminum profiles according to claim 3, characterized in that: One end of each pressure cylinder (401) is fixedly connected to a bundle tube (403). One end of each bundle tube (403) inside the pressure cylinder (401) is connected to multiple cooling water pipes (305) on the same side through a pipe. The other end of each bundle tube (403) is connected to the output end of the water pump (9).

5. The environmentally friendly cooling device for processing architectural aluminum profiles according to claim 4, characterized in that: A cleaning roller (306) is rotatably connected to the inner wall of each of the buffer tanks (3021).

Citation Information

Patent Citations

  • An environmentally friendly cooling device for aluminum profile processing

    CN114749503B

  • Intelligent extrusion device for aluminum alloy sections

    CN116689533A

  • Injection molding equipment facilitating rapid cooling of daily necessities

    CN214354000U