Aluminum profile extrusion forming cooling equipment

By designing aluminum profile cooling equipment with retractable water-cooling pipes and wind direction adjustment components, the problem that cooling equipment cannot adapt to aluminum profiles of different specifications is solved, flexible cooling and efficient resource utilization are achieved, and cooling effect and production efficiency are improved.

CN223352574UActive Publication Date: 2025-09-19FOSHAN XIHUI ALUMINUM CO LTD
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Patent Information

Application Number
CN202422782520.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-15
Publication Date
2025-09-19
Estimated Expiration
2034-11-15

AI Technical Summary

Technical Problem

Existing aluminum profile extrusion cooling equipment cannot flexibly adjust the cooling range and cannot adapt to aluminum profiles of different specifications, resulting in poor cooling effect and waste of water resources.

Method used

A cooling device including a retractable water-cooling pipe and a wind direction adjustment component was designed. By adjusting the width of the water-cooling pipe and the wind direction, it can adapt to aluminum profiles of different widths and achieve flexible cooling.

Benefits of technology

It improves the applicability of the equipment to aluminum profiles of different specifications, reduces water waste, ensures uniform cooling of the entire profile surface, and improves cooling efficiency and production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of aluminum profile processing, in particular to aluminum profile extrusion forming cooling equipment, and solves the technical problem that the cooling range of the existing cooling equipment cannot be adjusted. The cooling equipment comprises a first cooling structure and a second cooling structure, the first cooling structure comprises a first supporting assembly, a water tank, a water pump and a water cooling structure, the water cooling structure comprises a water cooling pipeline and a plurality of nozzles, the water cooling pipeline is of a telescopic pipeline structure and communicates with the water tank through the water pump, and the nozzles communicate with the bottom of the water cooling pipeline; the second cooling structure comprises a second supporting assembly, a draught fan and an air cooling structure, the air cooling structure comprises an air cooling pipeline and two air direction adjusting assemblies, and the two air direction adjusting assemblies can adjust the air direction towards the two sides in the width direction of the conveying device. And through the flexible adjusting mode of the first cooling structure and the second cooling structure, the applicability of the equipment to aluminum profiles of different specifications is greatly improved, and the universality of the equipment is enhanced.
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Description

Technical Field

[0001] The utility model relates to the technical field of aluminum profile processing, in particular to aluminum profile extrusion molding cooling equipment. Background Art

[0002] The extrusion process of aluminum profiles generates a significant amount of heat, causing the profile temperature to rise. If not cooled promptly, the profile will continue to deform at high temperatures, affecting dimensional accuracy. Cooling allows the aluminum profile to solidify quickly, shortening production cycles and improving efficiency. Therefore, on continuous extrusion lines, the efficient operation of the cooling system is one of the key factors in ensuring high-speed operation.

[0003] Currently, cooling equipment is typically installed on the conveyor used to transport aluminum profiles to cool the aluminum profiles as they exit the extruder. However, the water and air cooling structures of existing cooling equipment have fixed water and air outlet sizes, making it impossible to adjust the cooling range to accommodate different aluminum profile sizes, resulting in limited flexibility. Utility Model Content

[0004] The purpose of the utility model is to provide an aluminum profile extrusion molding cooling device, which has the characteristic of being able to adjust the cooling range according to different rules of the aluminum profile.

[0005] To achieve this purpose, the present invention adopts the following technical solutions:

[0006] An aluminum profile extrusion cooling device is used to cool the aluminum profile conveyed from the extruder outlet to the conveyor device, the cooling device comprising:

[0007] a first cooling structure, the first cooling structure comprising a first support assembly, a water tank, a water pump, and a water cooling structure, the water cooling structure comprising a water cooling pipe and a plurality of nozzles, the water cooling pipe being a retractable pipe structure, the water cooling pipe being connected to the first support assembly and being located above the conveying device, the water cooling pipe being in communication with the water tank via the water pump, and each of the nozzles being in communication with the bottom of the water cooling pipe; and,

[0008] The second cooling structure includes a second supporting assembly, a fan and an air-cooling structure, the air-cooling structure includes an air-cooling pipe and two wind direction adjustment components, the air-cooling pipe is connected to the second supporting assembly and is located above the conveying device, the air-cooling pipe is connected to the fan, an air outlet is provided at the bottom of the air-cooling pipe, the two wind direction adjustment components are both arranged at the air outlet and arranged along the width direction of the conveying device, the two wind direction adjustment components are both connected to the air-cooling pipe, and the two wind direction adjustment components can adjust the wind direction toward both sides along the width direction of the conveying device.

[0009] Furthermore, the water cooling pipe also includes a plurality of fixed pipes and telescopic pipes, the fixed pipes and the telescopic pipes are arranged at intervals, and each of the nozzles is connected to one of the fixed pipes respectively.

[0010] Furthermore, the water-cooling pipe also includes a connecting pipe connected to the first supporting assembly, one end of the connecting pipe is connected to the fixed pipe near the center of the water-cooling pipe, and the other end of the connecting pipe is connected to the water pump.

[0011] Furthermore, the number of the fixed tubes is an odd number.

[0012] Furthermore, the first cooling structure further includes a water outlet pipe, one end of the water outlet pipe is connected to the water pump, and the other end of the water outlet pipe is connected to the connecting pipe.

[0013] Furthermore, the telescopic tube is a corrugated hose.

[0014] Furthermore, the wind direction adjustment assembly includes a plurality of blades, connecting rods and connecting shafts. The side of each blade facing the inside of the air-cooling pipe is vertically connected to the connecting rod. The two sides of the blade are respectively hinged to the inner walls of the air-cooling pipe on both sides, and every two adjacent connecting rods are hinged through one connecting shaft.

[0015] Furthermore, the wind direction adjustment component also includes a fixed air duct, which is arranged between the two wind direction adjustment components and is connected to the air cooling pipe.

[0016] Furthermore, the wind direction adjustment component also includes an adjustment knob, and the adjustment knob is connected to the side of the blade facing the outside of the air cooling pipe.

[0017] Furthermore, there are a plurality of the second support assemblies and the air-cooling structures, an air outlet pipe is provided between every two adjacent second support assemblies, and each of the air-cooling pipes is connected to the fan through the adjacent air outlet pipes.

[0018] The technical solution provided by the utility model may have the following beneficial effects:

[0019] The utility model adjusts the distance between each nozzle by adjusting the width of the retractable water-cooling pipe, thereby adjusting the water cooling range. This allows the first cooling structure to adapt to aluminum profiles of different widths, such as narrower or wider. This can not only avoid water waste but also ensure that the entire surface of the aluminum profile is effectively cooled. By adjusting the wind direction of the two wind direction adjustment components, the wind cooling range of the second cooling structure can be controlled. Whether the aluminum profile is narrow or wide, the cold air can cover its surface and effectively remove heat. The flexible adjustment method of the first cooling structure and the second cooling structure greatly improves the applicability of the device to aluminum profiles of different specifications and enhances the versatility of the device. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 This is a schematic structural diagram of a cooling device according to an embodiment of the present invention;

[0021] Figure 2 This is a schematic structural diagram of a water cooling structure according to an embodiment of the present invention;

[0022] Figure 3 This is a schematic cross-sectional view of an air cooling structure according to an embodiment of the present invention;

[0023] Figure 4 This is another cross-sectional structural diagram of the air-cooling structure of one embodiment of the utility model;

[0024] Figure 5 This is another cross-sectional structural diagram of the air cooling structure of an embodiment of the utility model;

[0025] Among them, the extruder outlet 1, the conveying device 2, the first cooling structure 3, the first supporting assembly 31, the water-cooling structure 32, the water-cooling pipe 321, the fixed pipe 3211, the telescopic pipe 3212, the connecting pipe 3213, the nozzle 322, the water outlet pipe 33, the second cooling structure 4, the second supporting assembly 41, the fan 42, the air-cooling structure 43, the air-cooling pipe 431, the air outlet 4311, the wind direction adjustment assembly 432, the blades 4321, the connecting rod 4322, the connecting shaft 4323, the fixed air guide pipe 4324, the adjusting knob 4325, and the air outlet pipe 44. DETAILED DESCRIPTION

[0026] The following describes embodiments of the present invention in detail. Examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are intended only to explain the present invention and are not to be construed as limiting the present invention.

[0027] In the description of the present invention, it should be understood that the terms "longitudinal", "transverse", "upper", "lower", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., indicating directions or positional relationships, are based on the directions or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific direction, be constructed and operate in a specific direction, and therefore should not be understood as limiting the present invention. In addition, features defined as "first" or "second" may explicitly or implicitly include one or more such features, and are used to distinguish between the described features, without distinction of order or importance.

[0028] In the description of the present invention, unless otherwise specified, “a plurality of” means two or more.

[0029] In the description of this utility model, it should be noted that, unless otherwise expressly specified or limited, the terms "mounted," "connected," and "connected" should be understood in a broad sense. For example, they can refer to fixed connections, detachable connections, or integral connections; mechanical connections, electrical connections; direct connections, indirect connections through an intermediate medium, and internal communication between two components. Those skilled in the art will understand the specific meanings of the above terms in this utility model based on the specific circumstances.

[0030] The following combination Figures 1 to 5 , describes the aluminum profile extrusion molding cooling equipment of an embodiment of the present utility model.

[0031] An aluminum profile extrusion cooling device is used to cool the aluminum profile conveyed from the extruder outlet 1 to the conveyor 2. The cooling device includes:

[0032] a first cooling structure 3, which includes a first support assembly 31, a water tank, a water pump, and a water cooling structure 32. The water cooling structure 32 includes a water cooling pipe 321 and a plurality of nozzles 322. The water cooling pipe 321 is a retractable pipe structure. The water cooling pipe 321 is connected to the first support assembly 31 and is located above the conveying device 2. The water cooling pipe 321 is connected to the water tank via the water pump, and each nozzle 322 is connected to the bottom of the water cooling pipe 321; and

[0033] The second cooling structure 4 includes a second supporting assembly 41, a fan 42 and an air-cooling structure 43. The air-cooling structure 43 includes an air-cooling pipe 431 and two wind direction adjustment components 432. The air-cooling pipe 431 is connected to the second supporting assembly 41 and is located above the conveying device 2. The air-cooling pipe 431 is connected to the fan 42. An air outlet 4311 is provided at the bottom of the air-cooling pipe 431. The two wind direction adjustment components 432 are both arranged at the air outlet 4311 and arranged along the width direction of the conveying device 2. The two wind direction adjustment components 432 are both connected to the air-cooling pipe 431. The two wind direction adjustment components 432 can adjust the wind direction toward both sides along the width direction of the conveying device 2.

[0034] It should be noted that the width direction of the conveyor 2 is consistent with the width direction of the aluminum profile, and the two wind direction adjustment components 432 are both capable of adjusting the wind direction in both directions along the width direction of the conveyor 2. This means that the two wind direction adjustment components 432 can independently adjust the wind direction in both directions of their positions. For example, the initial state of the two wind direction adjustment components 432 can be a vertical downward blowing state or a horizontal closed air outlet 4311 state. One wind direction adjustment component 432 is adjusted to the left to form a certain angle with the width direction of the conveyor 2 (such as a 30-degree left tilt) or to the right to a corresponding angle (such as a 30-degree right tilt), and the other wind direction adjustment component 432 is adjusted to the right to form a certain angle with the width direction of the conveyor 2 (such as a 30-degree right tilt) or to the left to a corresponding angle (such as a 30-degree left tilt), so that the air cooling range is narrowed or widened.

[0035] It should be noted that water-cooling pipe 321 is a retractable structure that can adapt to aluminum profiles of varying widths. For narrower profiles, the width of water-cooling pipe 321 can be shortened to reduce unnecessary cooling water spraying and avoid water waste. For wider profiles, water-cooling pipe 321 can be stretched to expand the water cooling range and ensure effective cooling across the entire profile surface.

[0036] In addition, when water-cooling aluminum profiles of different widths, the speed or output power of the water pump can be adjusted according to the size of the aluminum profile to control the flow and pressure of the cooling water, thereby controlling the spray range of the nozzle 322.

[0037] Specifically, the water tank serves as a storage container for cooling water, providing a stable water source throughout the cooling process. Before the cooling equipment is started, the width of the retractable water-cooling pipe 321 is adjusted according to the width of the aluminum profile, and the wind direction of the two wind direction adjustment components 432 is adjusted. When the cooling equipment is started, the water pump starts working, which extracts the cooling water from the water tank and transports it to the water-cooling pipe 321. Under the pressure of the water pump, the cooling water flows in the water-cooling pipe 321 and is sprayed out through a number of nozzles 322 connected to the bottom of the water-cooling pipe 321. The nozzles 322 evenly sprinkle the cooling water on the surface of the aluminum profile located on the conveying device 2. The cooling water contacts the high-temperature surface of the aluminum profile, and heat exchange occurs. The heat of the aluminum profile is transferred to the cooling water, which increases the temperature of the cooling water, while the temperature of the aluminum profile itself decreases, thereby achieving a cooling effect. When the cooling device is started, the fan 42 starts working and generates a strong airflow. The airflow flows along the air-cooling duct 431. When it reaches the air outlet 4311 opened at the bottom of the air-cooling duct 431, the airflow will blow the cold air accurately to the surface of the aluminum profile according to the guiding effect of the two wind direction adjustment components 432, taking away the residual heat on the surface of the aluminum profile after water cooling or further enhancing the heat dissipation effect.

[0038] The aluminum profile extrusion molding cooling equipment described in the above embodiment adjusts the distance between each nozzle 322 by adjusting the width of the retractable water-cooling pipe 321, thereby adjusting the water cooling range, so that the first cooling structure 3 can adapt to aluminum profiles of different widths, such as narrower or wider, which can not only avoid waste of water resources, but also ensure that the entire surface of the aluminum profile can be effectively cooled. By adjusting the wind direction of the two wind direction adjustment components 432, the wind cooling range of the second cooling structure 4 can be controlled. Whether it is a narrow or wide aluminum profile, the cold wind can cover its surface and effectively take away the heat. The flexible adjustment method of the first cooling structure 3 and the second cooling structure 4 greatly improves the applicability of the device to aluminum profiles of different specifications and enhances the versatility of the device.

[0039] In addition, this equipment achieves multi-path heat exchange through a combination of water cooling and air cooling. Water cooling can quickly absorb heat from the surface of the aluminum profile, allowing the internal heat to be quickly transferred to the surface; air cooling promptly blows away the hot air on the surface, accelerating heat dissipation. The synergistic effect of the two greatly improves cooling efficiency, shortens the cooling time of the aluminum profile, and helps improve production efficiency.

[0040] In another embodiment, the water-cooling pipe 321 further includes a plurality of fixed pipes 3211 and telescopic pipes 3212 . The fixed pipes 3211 and the telescopic pipes 3212 are arranged at intervals, and each nozzle 322 is connected to a fixed pipe 3211 .

[0041] Specifically, the fixed tube 3211 provides a stable framework for the entire water-cooling pipe 321. By spacing the fixed tube 3211 and the telescopic tube 3212 apart, the telescopic tube 3212 has a clear path for expansion and contraction during width adjustment, preventing twisting, entanglement, and other confusion. This structure not only facilitates precise width adjustment of the water-cooling pipe 321, but also ensures the proper functioning of the nozzle 322.

[0042] In another embodiment, the water cooling pipe 321 further includes a connecting pipe 3213 connected to the first supporting assembly 31 , one end of the connecting pipe 3213 is connected to the fixed pipe 3211 near the center of the water cooling pipe 321 , and the other end of the connecting pipe 3213 is connected to the water pump.

[0043] Specifically, one end of the connecting pipe 3213 is connected to the fixed pipe 3211 near the center of the water-cooling pipe 321, allowing the cooling water delivered by the water pump to first enter the center of the water-cooling pipe 321. By starting the water supply from the center, the cooling water is diverted to both ends of the water-cooling pipe 321 under the action of water pressure. This allows the cooling water to be more evenly distributed to each nozzle 322, ensuring that the nozzles 322 along the entire water-cooling pipe 321 receive relatively stable water pressure and water volume. This ensures that the cooling water is sprayed more evenly on the surface of the aluminum profile, improving the consistency of the cooling effect.

[0044] In another embodiment, the number of the fixed tubes 3211 is an odd number.

[0045] Specifically, when the number of fixed tubes 3211 is an odd number, the water-cooling pipe 321 can form an approximately centrally symmetrical structure around the fixed tube 3211 located in the center. This centrally symmetrical layout is conducive to maintaining better balance when adjusting the width of the water-cooling pipe 321. For example, when the telescopic tube 3212 is telescoped to accommodate aluminum profiles of different widths, the odd number of fixed tubes 3211 can make the telescopic tubes 3212 on both sides more evenly stressed, reducing pipe distortion or deviation caused by uneven stress, ensuring that the water-cooling pipe 321 can be stably located above the conveyor 2 in different width adjustment states, ensuring that the nozzle 322 is always aligned with the aluminum profile for cooling, and improving the accuracy and stability of the cooling.

[0046] In another embodiment, the first cooling structure 3 further includes a water outlet pipe 33 , one end of the water outlet pipe 33 is connected to the water pump, and the other end of the water outlet pipe 33 is connected to the connecting pipe 3213 .

[0047] Specifically, the water outlet pipe 33 is an independent pipe component. When the water pump or the water cooling pipe 321 needs to be repaired or replaced, there is no need to dismantle the entire first cooling structure 3 on a large scale, thereby reducing maintenance costs and time.

[0048] In another embodiment, the telescopic tube 3212 is a corrugated hose.

[0049] Specifically, corrugated hoses not only offer excellent flexibility, allowing them to bend and deform flexibly in a variety of complex installation environments and operating conditions, but they also possess a certain degree of pressure resistance. During the process of cooling water delivery by the pump, the hose is subjected to a certain amount of water pressure. The corrugated structure helps to disperse this pressure, allowing it to maintain a stable shape and performance within the normal operating pressure range, and resist easily breaking or deforming. This ensures the normal flow of cooling water within the pipe and the continuous cooling process.

[0050] For example, the corrugated hose can be made of rubber, plastic, metal or composite materials.

[0051] In another embodiment, the wind direction adjustment assembly 432 includes a plurality of blades 4321, connecting rods 4322 and a connecting shaft 4323. The side of each blade 4321 facing the inside of the air-cooling pipe 431 is vertically connected to the connecting rod 4322. The two sides of the blade 4321 are hinged to the inner walls of the air-cooling pipe 431 on both sides, and every two adjacent connecting rods 4322 are hinged through a connecting shaft 4323.

[0052] Specifically, the blades 4321 are hinged to each other via a connecting rod 4322 and a connecting shaft 4323, forming a linkage mechanism. To adjust the wind direction, the operator applies external force to one of the blades 4321 in each wind direction adjustment assembly 432, causing it to rotate around its hinge point with the inner wall of the air-cooling duct 431. Since each blade 4321 is perpendicularly connected to a connecting rod 4322 on the side facing the interior of the air-cooling duct 431, when the blade 4321 rotates, the connecting rod 4322 moves along with the blade 4321. Every two adjacent connecting rods 4322 are hinged via a connecting shaft 4323, so when one connecting rod 4322 moves, it drives the adjacent connecting rod 4322 to move via the connecting shaft 4323, thereby causing the adjacent blade 4321 to rotate as well. Therefore, the wind direction of the entire wind direction adjustment assembly 432 can be adjusted by simply adjusting one of the blades 4321 in each wind direction adjustment assembly 432, without the need to operate each blade 4321 separately, which greatly improves the operability and adjustment efficiency of the equipment.

[0053] For example, if uniform cooling is required for the surface of a narrow aluminum profile, the blades 4321 of the two wind direction adjustment assemblies 432 can be deflected toward the center of the conveyor 2 to reduce the cooling area. If uniform cooling is required for the surface of a wide aluminum profile, the blades 4321 of the two wind direction adjustment assemblies 432 can be deflected toward the sides of the conveyor 2 to increase the cooling area. If concentrated cooling is required on a single side of the aluminum profile, the blades 4321 can be adjusted to an angle that deflects the airflow toward that side.

[0054] In another embodiment, the wind direction adjustment component 432 further includes a fixed air duct 4324 . The fixed air duct 4324 is disposed between the two wind direction adjustment components 432 , and the fixed air duct 4324 is communicated with the air cooling duct 431 .

[0055] Specifically, the fixed air duct 4324 is located between the two wind direction adjustment components 432. When the air blown by the fan 42 enters the air cooling duct 431, part of the air is adjusted by the wind direction adjustment component 432 and blown toward the aluminum profile, while the other part of the air is blown directly out through the fixed air duct 4324. This makes the distribution of cooling air more diverse, covering a wider area of ​​the aluminum profile surface, and reduces the cooling blind spots that may be caused by the limited adjustment range of the wind direction adjustment component 432.

[0056] In another embodiment, the wind direction adjustment component 432 further includes an adjustment knob 4325 , which is connected to a surface of the blade 4321 facing the outside of the air-cooling duct 431 .

[0057] Specifically, the operator can easily operate the adjustment knob 4325 outside the air-cooling duct 431. By simply manually rotating the adjustment knob 4325, the angle of the blade 4321 can be changed, thereby adjusting the wind direction. There is no need to go deep into the equipment or use complicated tools, making the wind direction adjustment process faster and more efficient.

[0058] In another embodiment, there are several second support assemblies 41 and air cooling structures 43 , and an air outlet duct 44 is installed between every two adjacent second support assemblies 41 . Each air cooling duct 431 is connected to the fan 42 through the adjacent air outlet duct 44 .

[0059] Specifically, the connection between the fan 42 and each of the air outlet ducts 44 and the air cooling duct 431 allows the wind force generated by the fan 42 to be more evenly distributed to each of the air cooling ducts 431. After being diverted by the air outlet duct 44, the powerful airflow output by the fan 42 can enter each of the air cooling ducts 431 at a relatively stable pressure and flow rate, ensuring that each of the air cooling ducts 431 has sufficient cooling air, thereby achieving a stable and uniform air cooling effect throughout the entire cooling area.

[0060] Other structures and operations of the aluminum profile extrusion molding cooling equipment according to the embodiment of the present invention are known to ordinary technicians in this field and will not be described in detail here.

[0061] Throughout this specification, references to terms such as "embodiment" and "example" indicate that the specific features, structures, materials, or characteristics described in conjunction with that embodiment or example are included in at least one embodiment or example of the present invention. In this specification, schematic representations of these terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.

[0062] Although the embodiments of the present invention have been shown and described, those skilled in the art will appreciate that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and purpose of the present invention, and that the scope of the present invention is defined by the claims and their equivalents.

Claims

1. A cooling device for aluminum profile extrusion molding, used for cooling aluminum profiles transported from the extruder outlet to a conveyor, characterized in that: The cooling device comprises: a first cooling structure, the first cooling structure comprising a first support assembly, a water tank, a water pump, and a water cooling structure, the water cooling structure comprising a water cooling pipe and a plurality of nozzles, the water cooling pipe being a retractable pipe structure, the water cooling pipe being connected to the first support assembly and being located above the conveying device, the water cooling pipe being in communication with the water tank via the water pump, and each of the nozzles being in communication with the bottom of the water cooling pipe; and, The second cooling structure includes a second supporting assembly, a fan and an air-cooling structure, the air-cooling structure includes an air-cooling pipe and two wind direction adjustment components, the air-cooling pipe is connected to the second supporting assembly and is located above the conveying device, the air-cooling pipe is connected to the fan, an air outlet is provided at the bottom of the air-cooling pipe, the two wind direction adjustment components are both arranged at the air outlet and arranged along the width direction of the conveying device, the two wind direction adjustment components are both connected to the air-cooling pipe, and the two wind direction adjustment components can adjust the wind direction toward both sides along the width direction of the conveying device.

2. The aluminum profile extrusion molding cooling equipment according to claim 1, characterized in that: The water cooling pipeline further comprises a plurality of fixed pipes and telescopic pipes, wherein the fixed pipes and the telescopic pipes are arranged at intervals, and each of the nozzles is respectively connected to one of the fixed pipes.

3. The aluminum profile extrusion molding cooling equipment according to claim 2, characterized in that: The water-cooling pipe further includes a connecting pipe connected to the first supporting assembly, one end of the connecting pipe is connected to the fixed pipe near the center of the water-cooling pipe, and the other end of the connecting pipe is connected to the water pump.

4. The aluminum profile extrusion molding cooling equipment according to claim 3, characterized in that: The number of the fixed tubes is an odd number.

5. The aluminum profile extrusion molding cooling equipment according to claim 3, characterized in that: The first cooling structure further includes a water outlet pipe, one end of which is connected to the water pump, and the other end of which is connected to the connecting pipe.

6. The aluminum profile extrusion molding cooling equipment according to claim 2, characterized in that: The telescopic tube is a corrugated hose.

7. The aluminum profile extrusion molding cooling equipment according to claim 1, characterized in that: The wind direction adjustment assembly includes a plurality of blades, connecting rods and connecting shafts. The side of each blade facing the inside of the air-cooling pipe is vertically connected to the connecting rod. The two sides of the blade are respectively hinged to the inner walls of the air-cooling pipe on both sides, and every two adjacent connecting rods are hinged through one connecting shaft.

8. The aluminum profile extrusion molding cooling equipment according to claim 7, characterized in that: The wind direction adjustment component further includes a fixed air duct, which is arranged between the two wind direction adjustment components and is communicated with the air cooling pipe.

9. The aluminum profile extrusion molding cooling equipment according to claim 7, characterized in that: The wind direction adjustment component further includes an adjustment knob, and the adjustment knob is connected to a side of the blade facing the outside of the air cooling pipe.

10. The aluminum profile extrusion molding cooling equipment according to claim 7, characterized in that: There are a plurality of the second support assemblies and the air-cooling structures, and an air outlet pipe is provided between every two adjacent second support assemblies. Each of the air-cooling pipes is connected to the fan through the adjacent air outlet pipes.