Aluminum alloy profile feeding equipment

By introducing components such as infrared ranging sensors and servo motors into the aluminum alloy profile feeding equipment, automatic feeding of aluminum alloy cylinders is achieved, solving the problem of single feeding method in the existing technology and improving processing efficiency and automation level.

CN223396863UActive Publication Date: 2025-09-30HUANGSHAN QIANGFENG ALUMINUM CO LTD
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Patent Information

Application Number
CN202422877545.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-25
Publication Date
2025-09-30
Estimated Expiration
2034-11-25

AI Technical Summary

Technical Problem

The existing aluminum alloy profile feeding method is single and lacks automation, resulting in increased labor intensity and low processing efficiency.

Method used

An infrared distance sensor is used to detect the position of the aluminum alloy cylinder, and automatic loading is achieved by combining a servo motor and an electric lifting cylinder. The horizontal and vertical movement of the aluminum alloy cylinder is achieved through rollers and hook racks, and flexible loading is achieved using a stainless steel conveyor belt.

Benefits of technology

The automation of aluminum alloy profile loading is realized, which reduces manual intervention and improves the flexibility and efficiency of the processing process.

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Abstract

The utility model relates to the technical field of machining feeding equipment, in particular to aluminum alloy section feeding equipment which comprises an installation support, and a side baffle is arranged on the outer wall of the installation support. When aluminum alloy cylinders are arranged on the base surfaces of the roller and the limiting rod, the device stops feeding, and when no aluminum alloy cylinder is arranged on the base surface of the roller and the aluminum alloy cylinder is arranged on the base surface of the limiting rod, the device automatically feeds; a servo motor drives a rotating sleeve to rotate through a rotating rod, then the rotating sleeve drives a stainless steel conveying belt to rotate, when the stainless steel conveying belt rotates, a hook frame drives an aluminum alloy cylinder to vertically move upwards, and the device transversely loads the aluminum alloy cylinder through a rolling wheel; or the device is used for vertically feeding the aluminum alloy cylinders through the hook frame.
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Description

Technical Field

[0001] The utility model relates to the technical field of processing and feeding equipment, in particular to aluminum alloy profile feeding equipment. Background Art

[0002] As the most widely used non-ferrous metal structural material in industry, aluminum alloy profiles have been widely used in many fields such as aviation, aerospace, automobile manufacturing, mechanical processing, shipbuilding, building decoration, and chemical industry.

[0003] However, the current production process still faces limitations in loading aluminum alloy profiles. Existing loading methods are relatively simple, which limits the flexibility and efficiency of the processing. Furthermore, many loading devices lack sufficient automation, often requiring manual control of operations such as start and stop, which increases labor intensity. Utility Model Content

[0004] The utility model provides an aluminum alloy profile feeding device to solve the above problems.

[0005] To achieve the above objectives, the present invention provides the following technical solutions:

[0006] A feeding device for aluminum alloy profiles comprises a mounting bracket, wherein the outer wall of the mounting bracket is provided with side baffles, wherein two groups of side baffles are provided and are respectively located on the opposite outer walls of the mounting bracket, and an aluminum alloy cylinder is provided between the side baffles and on the inner wall of the mounting bracket, a control panel is installed on the outer wall of the side baffle, a positioning baffle is installed on the inner wall of the mounting bracket, the positioning baffle is located on one side of the aluminum alloy cylinder, an infrared ranging sensor is installed on one side of the positioning baffle and on the inner wall of the mounting bracket, wherein a limit rod is provided directly below the infrared ranging sensor and on the base surface of the mounting bracket, a limit baffle is provided on one side of the limit rod and on the inner wall opposite to the mounting bracket, a feeding assembly is installed on the side wall of the mounting bracket, and a lifting electric control cylinder is installed on one side of the limit rod and on the inner wall of the mounting bracket.

[0007] As a preferred solution of the present invention, the positioning baffles are provided in multiple groups from left to right and are respectively located on the inner wall of the mounting bracket, the infrared ranging sensors are provided in multiple groups and are respectively located on the inner wall of the mounting bracket, the limit rod is inclined 15 degrees relative to the inner wall of the mounting bracket, the limit rod is located directly below the aluminum alloy cylinder, and the limit baffles are provided in multiple groups and are respectively located on the inner wall of the mounting bracket;

[0008] The loading assembly includes a fixed bracket and a side wall bracket. The fixed bracket is provided in multiple groups and is respectively located on the side walls of the mounting bracket. A driving motor is installed on the outer wall of the fixed bracket, and a rotating rod is installed on the driving shaft of the driving motor.

[0009] As a preferred solution of the present invention, one end of the rotating rod passes through the fixed bracket and extends to the inner wall of the fixed bracket, on which a roller is installed, and the connection method between the rotating rod and the fixed bracket is a rotating connection. A side wall bracket is installed on one side of the fixed bracket and on the outer wall of the mounting bracket, and a fence is installed on the outer wall opposite to the side wall bracket.

[0010] As a preferred solution of the present invention, rotating rods are rotatably connected to the opposite inner walls of the enclosure, wherein multiple groups of rotating rods are provided and are respectively located on the inner walls of the enclosure, and rotating sleeves are installed on the outer walls of the rotating rods.

[0011] As a preferred solution of the present invention, the rotating sleeves are arranged in groups of two and multiple groups of rotating sleeves are arranged in sequence from left to right. A stainless steel conveyor belt is installed on the outer wall of the rotating sleeve, wherein multiple groups of stainless steel conveyor belts are arranged and are respectively located on the outer wall of the rotating sleeve, and a hook rack is installed on the outer wall of the stainless steel conveyor belt.

[0012] As a preferred solution of the present invention, the hook rack is provided in multiple groups and is respectively located on the outer wall of the stainless steel conveyor belt. The hook rack is located on one side of the aluminum alloy cylinder. One end of the rotating rod passes through the enclosure and extends to the outer wall of the enclosure, on which a servo motor is installed, wherein the servo motor is installed on the outer wall of the enclosure.

[0013] As a preferred solution of the present invention, first foot pads are respectively provided at the bottom corners of the mounting bracket, and second foot pads are respectively provided at the bottom corners of the fixing bracket and the side wall bracket.

[0014] As a preferred solution of the present invention, the control panel is respectively connected to the drive motor, the infrared ranging sensor, the lifting electric control cylinder and the servo motor through wires, and the connection method is electrical connection. The infrared ranging sensor is provided in multiple groups and is respectively located directly above the limit rod and the roller. The lifting electric control cylinder is provided in multiple groups and is respectively located on the inner wall of the mounting bracket. There are multiple groups of lifting electric control cylinders from left to right and the lifting electric control cylinders are located directly below the aluminum alloy cylinder.

[0015] The utility model can detect the position of the aluminum alloy cylinder by arranging an infrared distance measuring sensor in the feeding equipment during the processing of the aluminum alloy profile. The infrared distance measuring sensor detects the position of the aluminum alloy cylinder, and then the infrared distance measuring sensor generates an electrical signal which is transmitted to the control panel through a wire. When the set parameters are reached, when there are aluminum alloy cylinders on the base surfaces of the roller and the limit rod, the device stops feeding. When there are no aluminum alloy cylinders on the base surface of the roller and there are aluminum alloy cylinders on the base surface of the limit rod, the device automatically feeds, thereby solving the problem that the feeding device lacks a sufficient level of automation and often needs to rely on manual control of operations such as start and stop, thereby increasing labor intensity.

[0016] The utility model can realize flexible feeding of aluminum alloy cylinders by arranging a feeding component in the feeding equipment during the processing of aluminum alloy profiles. The servo motor drives the rotating sleeve to rotate via the rotating rod, and then the rotating sleeve drives the stainless steel conveyor belt to rotate. When the stainless steel conveyor belt rotates, the hook frame drives the aluminum alloy cylinder to move vertically upward. The device loads the aluminum alloy cylinder horizontally via the roller, or the device loads the aluminum alloy cylinder vertically via the hook frame, thereby solving the problem that the existing loading method is relatively single and limits the flexibility and efficiency of the processing process. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 It is a schematic diagram of the overall structure of the utility model;

[0018] Figure 2 This is a schematic diagram of the side wall bracket structure of the present utility model;

[0019] Figure 3 This is a schematic diagram of the mounting bracket structure of the utility model;

[0020] Figure 4 This is a side structural diagram of the present utility model;

[0021] Figure 5 For this utility model Figure 4 A magnified schematic diagram of the A structure.

[0022] In the figure: 1. Mounting bracket; 2. Side baffle; 3. Aluminum alloy cylinder; 4. Control panel; 5. Positioning baffle; 6. Infrared ranging sensor; 7. Limit rod; 8. Limit baffle; 9. Loading assembly; 901. Fixed bracket; 902. Side wall bracket; 903. Drive motor; 904. Rotating rod; 905. Roller; 906. Enclosure; 907. Rotating rod; 908. Rotating sleeve; 909. Stainless steel conveyor belt; 910. Hook rack; 911. Servo motor; 10. Lifting electric cylinder; 11. First foot pad; 12. Second foot pad. DETAILED DESCRIPTION

[0023] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the present invention.

[0024] Example: See Figure 1-5 The aluminum alloy profile feeding equipment shown in the figure includes a mounting bracket 1, a side baffle 2 is provided on the outer wall of the mounting bracket 1, wherein the side baffle 2 is provided in two groups and is respectively located on the opposite outer walls of the mounting bracket 1, and an aluminum alloy cylinder 3 is provided between the side baffles 2 and on the inner wall of the mounting bracket 1, a control panel 4 is installed on the outer wall of the side baffle 2, and a positioning baffle 5 is installed on the inner wall of the mounting bracket 1, and the positioning baffle 5 is provided in multiple groups from left to right and is respectively located on the inner wall of the mounting bracket 1, the positioning baffle 5 is located on one side of the aluminum alloy cylinder 3, and an infrared ranging device is installed on one side of the positioning baffle 5 and on the inner wall of the mounting bracket 1 Sensor 6, infrared ranging sensors 6 are provided in multiple groups and are respectively located on the inner wall of the mounting bracket 1, wherein a limit rod 7 is provided directly below the infrared ranging sensor 6 and on the base surface of the mounting bracket 1, and the limit rod 7 is inclined 15 degrees relative to the inner wall of the mounting bracket 1, the limit rod 7 is located directly below the aluminum alloy cylinder 3, and an upper limit baffle 8 is provided on one side of the limit rod 7 and on the inner wall opposite to the mounting bracket 1. The limit baffle 8 is provided in multiple groups and is respectively located on the inner wall of the mounting bracket 1, a loading assembly 9 is installed on the side wall of the mounting bracket 1, and a lifting electric control cylinder 10 is installed on one side of the limit rod 7 and on the inner wall of the mounting bracket 1.

[0025] Based on the structural relationship and connection conditions of the above-mentioned characteristics, since the limit rod 7 is inclined 15 degrees relative to the inner wall of the mounting bracket 1, when the aluminum alloy cylinder 3 is located on the surface of the limit rod 7, it is affected by gravity. At the same time, a positioning baffle 5 is provided on the inner wall of the mounting bracket 1, so that the limit rod 7 and the positioning baffle 5 cooperate with each other, and the aluminum alloy cylinder 3 slides to one side along the surface of the limit rod 7, thereby moving the aluminum alloy cylinder 3 to directly above the lifting electric control cylinder 10.

[0026] In this embodiment, specific reference Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 and Figure 5, the feeding component 9 includes a fixed bracket 901 and a side wall bracket 902, the fixed bracket 901 is provided with multiple groups and are respectively located on the side walls of the mounting bracket 1, a driving motor 903 is installed on the outer wall of the fixed bracket 901, and a driving shaft of the driving motor 903 is installed with a rotating rod 904, one end of the rotating rod 904 passes through the fixed bracket 901 and extends to the inner wall of the fixed bracket 901, and a roller 905 is installed, and the connection mode of the rotating rod 904 and the fixed bracket 901 is a rotating connection, and a side wall bracket 902 is installed on one side of the fixed bracket 901 and located on the outer wall of the mounting bracket 1, and a fence 906 is installed on the outer wall opposite to the side wall bracket 902, and a rotating rod 907 is rotatably connected on the inner wall opposite to the fence 906, wherein the rotating rod 907 is provided with multiple groups and They are respectively located on the inner wall of the enclosure 906, and a rotating sleeve 908 is installed on the outer wall of the rotating rod 907. The rotating sleeves 908 are grouped in twos and there are multiple groups of rotating sleeves 908 from left to right. A stainless steel conveyor belt 909 is installed on the outer wall of the rotating sleeve 908, wherein the stainless steel conveyor belts 909 are provided in multiple groups and are respectively located on the outer wall of the rotating sleeve 908. A hook rack 910 is installed on the outer wall of the stainless steel conveyor belt 909, and the hook rack 910 is provided in multiple groups and are respectively located on the outer wall of the stainless steel conveyor belt 909. The hook rack 910 is located on one side of the aluminum alloy cylinder 3. One end of the rotating rod 907 passes through the enclosure 906 and extends to the outer wall of the enclosure 906, and a servo motor 911 is installed, wherein the servo motor 911 is installed on the outer wall of the enclosure 906.

[0027] Based on the structural relationship and connection method of the above characteristics, the hook frame 910 is located on one side of the roller 905. When the drive motor 903 drives the roller 905 to load the material horizontally, the servo motor 911 stops running. Conversely, when the servo motor 911 drives the stainless steel conveyor belt 909 to operate through the rotating sleeve 908, and then the stainless steel conveyor belt 909 drives the hook frame 910 to load the aluminum alloy cylinder 3 vertically, the drive motor 903 stops running.

[0028] Among them, the control panel 4 is connected to the drive motor 903, the infrared ranging sensor 6, the lifting electric control cylinder 10 and the servo motor 911 through wires, and the connection method is electrical connection, so that the control panel 4 controls the drive motor 903, the infrared ranging sensor 6, the lifting electric control cylinder 10 and the servo motor 911 to be energized. The infrared ranging sensor 6 is provided in multiple groups and is respectively located directly above the limit rod 7 and the roller 905. The lifting electric control cylinder 10 is provided in multiple groups and is respectively located on the inner wall of the mounting bracket 1. The lifting electric control cylinder 10 is provided in multiple groups from left to right and is located directly below the aluminum alloy cylinder 3. A guide plate is provided on the outer wall of the side wall bracket 902. When the aluminum alloy cylinder 3 moves through the hook rack 910, the wire plate guides the aluminum alloy cylinder 3.

[0029] When the feeding equipment in the aluminum alloy profile processing process of this scheme is working, by turning on the switch of the control panel 4, the control panel 4 controls the jacking electric control cylinder 10 to operate. When the jacking electric control cylinder 10 is in operation, one end of the jacking electric control cylinder 10 lifts the aluminum alloy cylinder 3, and then the aluminum alloy cylinder 3 is subjected to the upward thrust of the jacking electric control cylinder 10, and the aluminum alloy cylinder 3 moves upward in the inner cavity of the mounting bracket 1. When the aluminum alloy cylinder 3 moves to one side of the limit baffle 8, the limit baffle 8 plays a limiting and guiding role on the aluminum alloy cylinder 3, thereby causing the aluminum alloy cylinder 3 to move along the limit baffle 8. Sliding to one side, when the aluminum alloy cylinder 3 slides onto the inner wall of the roller 905, since the infrared ranging sensor 6 is located directly above the roller 905, when the aluminum alloy cylinder 3 is located on the base surface of the roller 905, the infrared ranging sensor 6 generates an electrical signal which is transmitted to the control panel 4 through a wire. When the set parameters are reached, the control panel 4 controls the drive motor 903 to operate, and then the drive shaft of the drive motor 903 drives the rotating rod 904 to rotate, and then the rotating rod 904 drives the roller 905 to rotate, and then the roller 905 drives the aluminum alloy cylinder 3 to move laterally to one side.

[0030] By turning on the switch of the control panel 4, the control panel 4 controls the infrared distance sensor 6 to operate. When the infrared distance sensor 6 detects the aluminum alloy cylinder 3 on the base surface of the limit rod 7, the infrared distance sensor 6 generates an electrical signal which is transmitted to the control panel 4 through the wire. When the set parameters are reached, the control panel 4 controls the lifting electric control cylinder 10 to operate. At the same time, the infrared distance sensor 6 detects the aluminum alloy cylinder 3 on the base surface of the roller 905. Then the infrared distance sensor 6 generates an electrical signal which is transmitted to the control panel 4 through the wire. When the set parameters are reached, the control panel 4 controls the lifting electric control cylinder 10 to operate. When the parameters are set, the control panel 4 controls the drive motor 903 to operate, and the device is provided with multiple groups of infrared ranging sensors 6 to monitor the material position. When there are aluminum alloy cylinders 3 on the base surfaces of the roller 905 and the limit rod 7, the device stops loading. When there is no aluminum alloy cylinder 3 on the base surface of the roller 905 and there is an aluminum alloy cylinder 3 on the base surface of the limit rod 7, the device automatically loads the material, thereby solving the problem that the loading device lacks a sufficient level of automation and often needs to rely on manual control to start and stop operations, thereby increasing labor intensity and reducing the practicality and safety of the entire production line.

[0031] The servo motor 911 is controlled to operate through the control panel 4, so that the driving shaft of the servo motor 911 drives the rotating rod 907 to rotate, and then the rotating rod 907 drives the rotating sleeve 908 to rotate. When the rotating sleeve 908 rotates, the rotating sleeve 908 drives the stainless steel conveyor belt 909 to rotate. When the stainless steel conveyor belt 909 rotates, the stainless steel conveyor belt 909 drives the hook rack 910 to rotate. Then, when the hook rack 910 moves to one side of the aluminum alloy cylinder 3, the hook rack 910 will hang on the aluminum alloy cylinder 3. When the stainless steel conveyor belt 909 is conveyed, the hook rack 910 drives the aluminum alloy cylinder 3 to move vertically upward. The device loads the aluminum alloy cylinder 3 horizontally through the roller 905, or the device loads the aluminum alloy cylinder 3 vertically through the hook rack 910, thereby solving the problem that the existing loading method is relatively single, which to a certain extent limits the flexibility and efficiency of the processing process.

[0032] Although the embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An aluminum alloy profile feeding device, comprising a mounting bracket (1), characterized in that: The outer wall of the mounting bracket (1) is provided with a side baffle (2), wherein the side baffles (2) are provided in two groups and are respectively located on the opposite outer walls of the mounting bracket (1), and an aluminum alloy cylinder (3) is provided between the side baffles (2) and on the inner wall of the mounting bracket (1), a control panel (4) is installed on the outer wall of the side baffle (2), and a positioning baffle (5) is installed on the inner wall of the mounting bracket (1), the positioning baffle (5) is located on one side of the aluminum alloy cylinder (3), and the positioning baffle (5) is provided on the inner wall of the mounting bracket (1). An infrared distance measuring sensor (6) is installed on one side and located on the inner wall of the mounting bracket (1), wherein a limit rod (7) is provided directly below the infrared distance measuring sensor (6) and located on the base surface of the mounting bracket (1), an upper limit baffle (8) is provided on one side of the limit rod (7) and located on the inner wall opposite to the mounting bracket (1), a loading assembly (9) is installed on the side wall of the mounting bracket (1), and a lifting electric control cylinder (10) is installed on one side of the limit rod (7) and located on the inner wall of the mounting bracket (1).

2. The aluminum alloy profile feeding equipment according to claim 1, characterized in that: The positioning baffles (5) are provided in multiple groups from left to right and are respectively located on the inner wall of the mounting bracket (1); the infrared distance measuring sensors (6) are provided in multiple groups and are respectively located on the inner wall of the mounting bracket (1); the limiting rod (7) is inclined at 15 degrees relative to the inner wall of the mounting bracket (1); the limiting rod (7) is located directly below the aluminum alloy cylinder (3); and the limiting baffles (8) are provided in multiple groups and are respectively located on the inner wall of the mounting bracket (1); The loading assembly (9) comprises a fixed bracket (901) and a side wall bracket (902), wherein the fixed bracket (901) is provided with multiple groups and is respectively located on the side wall of the mounting bracket (1), a driving motor (903) is installed on the outer wall of the fixed bracket (901), and a rotating rod (904) is installed on the driving shaft of the driving motor (903).

3. The aluminum alloy profile feeding equipment according to claim 2, characterized in that: One end of the rotating rod (904) passes through the fixed bracket (901) and extends to the inner wall of the fixed bracket (901), on which a roller (905) is installed. The rotating rod (904) and the fixed bracket (901) are connected in a rotating manner. A side wall bracket (902) is installed on one side of the fixed bracket (901) and on the outer wall of the mounting bracket (1). A fence (906) is installed on the outer wall opposite to the side wall bracket (902).

4. The aluminum alloy profile feeding equipment according to claim 3, characterized in that: Rotating rods (907) are rotatably connected to the opposite inner walls of the enclosure (906), wherein the rotating rods (907) are provided in multiple groups and are respectively located on the inner walls of the enclosure (906), and rotating sleeves (908) are installed on the outer walls of the rotating rods (907).

5. The aluminum alloy profile feeding equipment according to claim 4, characterized in that: The rotating sleeves (908) are arranged in groups of two and multiple groups of rotating sleeves (908) are arranged in sequence from left to right. A stainless steel conveyor belt (909) is installed on the outer wall of the rotating sleeve (908), wherein the stainless steel conveyor belt (909) is provided in multiple groups and is respectively located on the outer wall of the rotating sleeve (908). A hook rack (910) is installed on the outer wall of the stainless steel conveyor belt (909).

6. The aluminum alloy profile feeding equipment according to claim 5, characterized in that: The hook racks (910) are provided in multiple groups and are respectively located on the outer wall of the stainless steel conveyor belt (909). The hook racks (910) are located on one side of the aluminum alloy cylinder (3). One end of the rotating rod (907) passes through the enclosure (906) and extends to the outer wall of the enclosure (906) where a servo motor (911) is installed, wherein the servo motor (911) is installed on the outer wall of the enclosure (906).

7. The aluminum alloy profile feeding equipment according to claim 2, characterized in that: First foot pads (11) are respectively provided at the bottom corners of the mounting bracket (1), and second foot pads (12) are respectively provided at the bottom corners of the fixing bracket (901) and the side wall bracket (902).

8. The aluminum alloy profile feeding equipment according to claim 6, characterized in that: The control panel (4) is connected to a driving motor (903), an infrared distance sensor (6), a lifting electric control cylinder (10) and a servo motor (911) through wires, and the connection method is electrical connection. The infrared distance sensor (6) is provided in multiple groups and is respectively located directly above the limit rod (7) and the roller (905). The lifting electric control cylinder (10) is provided in multiple groups and is respectively located on the inner wall of the mounting bracket (1). The lifting electric control cylinder (10) is provided in multiple groups from left to right and is located directly below the aluminum alloy cylinder (3).