Aluminum profile bundling device

By designing the feeding component, automatic strapping machine, and transverse movement component of the aluminum profile bundling device, the automatic conveying and multiple bundling of aluminum profiles were realized, solving the problem of manual turning and bundling in the existing technology and improving the convenience and efficiency of operation.

CN224393066UActive Publication Date: 2026-06-23DACHENG XINZHONGPENG ALUMINUM CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
DACHENG XINZHONGPENG ALUMINUM CO LTD
Filing Date
2025-07-08
Publication Date
2026-06-23

Smart Images

  • Figure CN224393066U_ABST
    Figure CN224393066U_ABST
Patent Text Reader

Abstract

The utility model belongs to aluminium profile packing technical field, specifically provides a kind of aluminium profile bundling device, including feeding assembly, automatic bundling machine, discharging assembly and horizontal shift subassembly, feeding assembly and discharging assembly are respectively arranged in the feeding side and discharging side of automatic bundling machine, and horizontal shift subassembly is respectively equipped on feeding assembly and discharging assembly, horizontal shift subassembly uses telescopic link as driving member, and two push plates are used to clamp and limit aluminium profile, and aluminium profile can be driven to move horizontally.The automatic conveying of aluminium profile is realized by the feeding assembly and the discharging assembly, so that the two ends of the aluminium profile pass through the automatic bundling machine in turn, eliminating the manual operation of turning around the aluminium profile. The horizontal movement of the aluminium profile is realized by the horizontal shift subassembly, so that the automatic bundling machine can generate two or more sensing signals, thereby bundling the aluminium profile multiple times, realizing the automatic conveying and automatic bundling of the aluminium profile.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This application belongs to the field of aluminum profile packaging technology, and more specifically, relates to an aluminum profile bundling device. Background Technology

[0002] Aluminum profiles are a type of metal profile used in the manufacture of aluminum alloy doors and windows, interior ceilings, and industrial products. Finished aluminum profiles are long, rod-shaped components, ranging in length from tens of centimeters to several meters. For ease of transport, aluminum profiles are bundled together in multiples before shipment to prevent them from scattering.

[0003] In existing technologies, there are already automatic strapping devices suitable for aluminum profiles. When using them, multiple stacked aluminum profiles are simply placed at the sensing position of the strapping device. Once the device senses the object, it automatically releases strapping tape, which wraps around the outer perimeter of the aluminum profile. The tape is then heat-sealed at the joint. The shortcomings of this existing technology are: long, strip-shaped aluminum profiles need to be strapped and secured at both ends. Currently, loading and unloading of strapping devices mostly relies on manual labor. That is, the worker places the aluminum profile at the sensing position of the strapping device, straps one end, and then turns around to place the other end at the sensing position. For longer aluminum profiles (such as those for floor-to-ceiling windows), manually turning around and strapping the other end is quite inconvenient. Utility Model Content

[0004] Based on the above-mentioned technical problems, this application provides an aluminum profile bundling device to solve the technical problem that in the prior art, after the automatic bundling device has bundled one end of the aluminum profile, it is necessary to manually turn it around and bundle the other end.

[0005] To achieve the above objectives, the technical solution adopted in this application is: an aluminum profile bundling device, comprising:

[0006] The feeding assembly is used to convey aluminum profiles horizontally.

[0007] An automatic strapping machine is located on the unloading side of the feeding assembly. The automatic strapping machine has a conveying channel through which aluminum profiles pass. A sensor is provided below the conveying channel, with the sensing end of the sensor facing upwards.

[0008] A feeding assembly, located on the side of the automatic strapping machine away from the feeding assembly, is used to horizontally convey aluminum profiles; and

[0009] Two transverse moving components are respectively disposed on the feeding component and the unloading component. Each transverse moving component includes two telescopic rods arranged opposite to each other, and two push plates respectively disposed on the two telescopic rods. The push plates are located above the conveying surface of the feeding component or the unloading component. The two push plates are parallel to each other, and a clamping space for accommodating aluminum profiles is formed between the two push plates.

[0010] In one possible implementation, the feeding assembly and the unloading assembly each include:

[0011] A frame is provided on one side of the automatic strapping machine, and the telescopic rod of one of the transverse components is provided on the frame;

[0012] Multiple conveyor rollers are spaced apart on the frame along the length of the aluminum profile; and

[0013] A rotary drive unit, located on the frame, is used to drive the conveying roller to rotate around a horizontal direction perpendicular to the length of the aluminum profile.

[0014] In one possible implementation, the pusher plate has a guide plate on one side facing the aluminum profile feeding direction. The guide plate is inclined in the aluminum profile feeding direction, and a guide channel that gradually narrows along the aluminum profile feeding direction is formed between two opposing guide plates.

[0015] In one possible implementation, the lateral movement assembly further includes two position detection elements, with the detection ends of the two position detection elements facing the two push plates respectively. The position detection elements are used to detect the horizontal position of the push plates in the telescopic direction of the telescopic rod.

[0016] In one possible implementation, the aluminum profile bundling device further includes an alignment assembly, the alignment assembly comprising:

[0017] A fixed bracket is provided on the side of the feeding assembly adjacent to the automatic strapping machine;

[0018] A lifting rod is mounted on the fixed bracket and has a downward-facing lifting end;

[0019] A mounting bracket is provided at the lifting end;

[0020] A sliding plate, vertically positioned, slides in conjunction with the mounting bracket; and

[0021] An alignment drive unit is provided on the mounting bracket and is used to drive the sliding plate to reciprocate along the conveying direction of the aluminum profile.

[0022] In one possible implementation, the alignment driving unit includes:

[0023] A drive motor is mounted on the mounting bracket, and the output shaft of the drive motor is connected to a cam, the outer peripheral surface of which abuts against one side of the sliding plate; and

[0024] A return spring is disposed between the mounting bracket and the sliding plate, and is configured with a preload force to move the sliding plate toward the drive motor.

[0025] In one possible implementation, the mounting bracket is provided with a guide rod, and the sliding plate has a guide hole that penetrates its own thickness, the guide hole being slidably engaged with the guide rod.

[0026] In one possible implementation, observation holes are respectively provided on the two push plates of the feeding assembly, and the observation holes penetrate the thickness direction of the push plates; the alignment assembly further includes a detection grating, which includes a transmitting end provided on the observation hole of one of the push plates and a receiving end provided on the observation hole of the other push plate.

[0027] In one possible implementation, the lower end of the sliding plate is detachably provided with an adjustment plate.

[0028] In one possible implementation, the feeding assembly and the unloading assembly are both belt conveyors.

[0029] Compared with the prior art, the beneficial effects of the aluminum profile bundling device provided in this application are:

[0030] This application provides an aluminum profile bundling device comprising a feeding assembly, an automatic bundling machine, a discharging assembly, and a lateral movement assembly. The feeding assembly and the discharging assembly are respectively located on the feeding side and the discharging side of the automatic bundling machine. A lateral movement assembly is provided on each of the feeding and discharging assemblies. The lateral movement assembly uses a telescopic rod as a driving component and employs two push plates to clamp and limit the aluminum profile, enabling the aluminum profile to move laterally. When bundling aluminum profiles, multiple stacked aluminum profiles are first placed on the feeding assembly, positioning them in the clamping space between the two push plates. The feeding assembly operates, conveying the aluminum profiles towards the automatic bundling machine until the automatic bundling machine's sensor detects the object passing by. The automatic bundling machine then performs a bundling operation, binding one end of the aluminum profile. Subsequently, the feeding assembly continues to transport the aluminum profiles to the discharging assembly until the other end of the aluminum profile approaches the automatic bundling machine. Then, the lateral moving component clamps the aluminum profile and moves it back and forth laterally once. The lateral moving component moves the clamped aluminum profile a certain distance laterally and returns to above the sensor, so that the sensor can detect the object passing by for the second time. The automatic strapping machine then straps the other end of the aluminum profile.

[0031] This application achieves automatic conveying of aluminum profiles through feeding and unloading components, allowing both ends of the aluminum profiles to pass sequentially through the automatic strapping machine, eliminating the need for manual reversal. A lateral movement component enables the aluminum profiles to move laterally, allowing the automatic strapping machine to generate two or more sensor signals, thereby performing multiple strapping operations on the aluminum profiles, achieving automatic conveying and automatic strapping. Attached Figure Description

[0032] To more clearly illustrate the technical solutions in the embodiments of this application, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0033] Figure 1 A schematic diagram of the structure of an aluminum profile bundling device in the alignment working state provided in this application embodiment. Figure 1 ;

[0034] Figure 2 A top view of an aluminum profile bundling device in an alignment working state, provided in an embodiment of this application;

[0035] Figure 3 A schematic diagram of the structure of an aluminum profile bundling device in the alignment working state provided in this application embodiment. Figure 2 ;

[0036] Figure 4 This is a schematic diagram of the structure of an aluminum profile bundling device in the bundling working state, provided in an embodiment of this application.

[0037] Figure 5 A partial schematic diagram of an aluminum profile bundling device at the alignment component position, provided for an embodiment of this application;

[0038] Explanation of reference numerals in the attached figures:

[0039] 10. Feeding assembly; 11. Frame; 12. Conveyor roller; 13. Rotary drive unit; 20. Automatic strapping machine; 21. Sensor; 30. Unloading assembly; 40. Lateral movement assembly; 41. Telescopic rod; 42. Push plate; 421. Guide plate; 43. Position detection element; 50. Alignment assembly; 51. Fixed bracket; 52. Lifting rod; 53. Mounting bracket; 531. Guide rod; 54. Sliding plate; 541. Adjusting plate; 55. Alignment drive unit; 551. Drive motor; 552. Cam; 553. Return spring; 56. Detection grating; 60. Aluminum profile. Detailed Implementation

[0040] To make the technical problems, technical solutions, and beneficial effects to be solved by this application clearer, the following detailed description is provided in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and are not intended to limit the scope of this application.

[0041] It should be noted that when a component is referred to as being "fixed to" or "set on" another component, it can be directly on or indirectly on that other component. When a component is referred to as being "connected to" another component, it can be directly connected to or indirectly connected to that other component.

[0042] It should be understood that the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.

[0043] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this application, "multiple" or "several" means two or more, unless otherwise explicitly specified.

[0044] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains.

[0045] Please refer to the following: Figures 1 to 5 The following describes an aluminum profile bundling device provided by an embodiment of this utility model.

[0046] Please see Figures 1 to 4This utility model provides an aluminum profile bundling device, including a feeding component 10, an automatic bundling machine 20, a feeding component 30, and a transverse component 40. The feeding assembly 10 is used to convey aluminum profiles 60 in a horizontal direction; the automatic strapping machine 20 is located on the unloading side of the feeding assembly 10, and the automatic strapping machine 20 has a conveying channel through which the aluminum profiles 60 pass. A sensor 21 is provided below the conveying channel, and the sensing end of the sensor 21 faces upward; the unloading assembly 30 is located on the side of the automatic strapping machine 20 away from the feeding assembly 10, and is used to convey aluminum profiles 60 in a horizontal direction; two transverse moving assemblies 40 are respectively located on the feeding assembly 10 and the unloading assembly 30. The transverse moving assembly 40 includes two telescopic rods 41 arranged opposite to each other, and two push plates 42 respectively located on the two telescopic rods 41. The push plates 42 are located above the conveying surface of the feeding assembly 10 or the unloading assembly 30. The two push plates 42 are parallel to each other, and a clamping space for accommodating the aluminum profiles 60 is formed between the two push plates 42.

[0047] Compared with the prior art, the beneficial effects of the aluminum profile bundling device provided in this application embodiment are:

[0048] This application provides an aluminum profile bundling device comprising a feeding assembly 10, an automatic bundling machine 20, an unloading assembly 30, and a lateral movement assembly 40. The feeding assembly 10 and the unloading assembly 30 are respectively disposed on the feeding side and the unloading side of the automatic bundling machine 20. The feeding assembly 10 and the unloading assembly 30 are each equipped with a lateral movement assembly 40. The lateral movement assembly 40 uses a telescopic rod 41 as a driving component and two push plates 42 to clamp and limit the aluminum profile 60, enabling the aluminum profile 60 to move laterally. When bundling the aluminum profile 60, a person or a robot first places multiple stacked aluminum profiles 60 onto the feeding assembly 10, placing the aluminum profile 60 in the clamping space between the two push plates 42. The feeding assembly 10 operates, conveying the aluminum profile 60 towards the automatic bundling machine 20 until the sensor 21 of the automatic bundling machine 20 detects the object passing through. The automatic bundling machine 20 then performs a bundling operation, bundling one end of the aluminum profile 60. The feeding assembly 10 then continues to feed the aluminum profile 60 to the feeding assembly 30 until the other end of the aluminum profile 60 approaches the automatic strapping machine 20. Next, the lateral movement assembly 40 clamps the aluminum profile 60 and moves it back and forth laterally once. The lateral movement assembly 40 then moves the clamped aluminum profile 60 laterally a certain distance and returns it to above the sensor 21, allowing the sensor 21 to detect the object passing by a second time. The automatic strapping machine 20 then straps the other end of the aluminum profile 60.

[0049] In this embodiment, the aluminum profile 60 is automatically conveyed via the feeding component 10 and the unloading component 30, allowing both ends of the aluminum profile 60 to pass sequentially through the automatic strapping machine 20, eliminating the need for manual reversal of the aluminum profile 60. The lateral movement component 40 enables the aluminum profile 60 to move laterally, allowing the automatic strapping machine 20 to generate two or more sensing signals, thereby performing multiple strapping operations on the aluminum profile 60, achieving automatic conveying and automatic strapping of the aluminum profile 60.

[0050] The feeding assembly 10 and the unloading assembly 30 are respectively located on the front and rear sides of the automatic strapping machine 20. They can be common conveying equipment, such as belt conveyors, chain conveyors, roller conveyors, etc. There are no specific restrictions on the feeding speed, length and width of the conveying equipment. Users can choose according to their actual situation.

[0051] The automatic strapping machine 20 is used to automatically strap aluminum profiles 60. It can directly use existing, mature products on the market, without restrictions on specific specifications or models. Normally, the automatic strapping machine 20 has a sensor 21. When an object is placed on top of the sensor 21, the sensor 21 generates a sensing signal and performs one automatic strapping operation. When two or more strapping operations are required, the object needs to be removed and placed back on the sensor 21 to generate a sensing signal again.

[0052] To enable the sensor 21 to generate two or more sensing signals, a transverse movement assembly 40 is provided on both the feeding assembly 10 and the unloading assembly 30. During normal conveying of the aluminum profile 60, the transverse movement assembly 40 can not clamp the aluminum profile 60, that is, the distance between the two push plates 42 is slightly larger than the width when multiple aluminum profiles 60 are stacked together. At this time, the two push plates 42 act as guides, which helps to prevent the aluminum profile 60 from shifting significantly during conveying.

[0053] The push plate 42 is a thin plate of metal or other materials. The length of the push plate 42 extends along the length of the aluminum profile 60, and the height of the push plate 42 is higher than the height of the stacked aluminum profile 60.

[0054] When the aluminum profile 60 needs to be moved laterally, the two push plates 42 clamp the aluminum profile 60, the telescopic rod 41 moves and moves the aluminum profile 60 laterally out of the sensing range of the sensor 21, and then the telescopic rod 41 moves and moves the aluminum profile 60 back to above the sensor 21, so that the sensor 21 generates a new sensing signal, and the automatic strapping machine 20 works to perform a strapping operation.

[0055] Understandably, for aluminum profiles of general length 60 (e.g., less than 2 meters), only the two ends need to be secured. When the length of the aluminum profile 60 is longer (e.g., exceeding 2 meters), it can be secured at both ends and the middle. When securing the middle of the aluminum profile 60, the operation of the transverse component 40 is the same as at the ends, and will not be described again here.

[0056] During the operation of the transverse component 40, the loading component 10 and the unloading component 30 may remain stationary or move slowly, as long as it does not affect the movement of the transverse component 40 and the aluminum profile 60.

[0057] The telescopic rod 41 and the lifting rod 52 (described below) can be electrically driven, hydraulically driven, or pneumatically driven. When the aluminum profile 60 is moved laterally, the first telescopic rod 41 first extends, pushing the aluminum profile 60 closer to the push plate 42 on the other side, clamping and fixing the aluminum profile 60. Then, the second telescopic rod 41 retracts, and the first telescopic rod 41 extends simultaneously, pushing the aluminum profile 60 away from above the sensor 21. Upon resetting, the first telescopic rod 41 retracts, and the second telescopic rod 41 extends simultaneously, causing the aluminum profile 60 to move back above the sensor 21.

[0058] The telescopic rod 41, the feeding assembly 10, and the unloading assembly 30 can be operated by a PLC control program, or a control panel can be set on the equipment, and workers can manually operate them through the buttons on the control panel.

[0059] Understandably, the clamping force of the telescopic rod 41 should not be too great, otherwise the aluminum profile 60 may be deformed or indented. A protective layer made of flexible material (such as rubber) can be provided on the side of the push plate 42 near the aluminum profile 60.

[0060] Please see Figure 1 and Figure 2 In some possible embodiments, the feeding assembly 10 and the unloading assembly 30 each include a frame 11, conveying rollers 12, and a rotary drive unit 13. The frame 11 is located on one side of the automatic strapping machine 20, and the telescopic rod 41 of one of the transverse components 40 is located on the frame 11; a plurality of conveying rollers 12 are spaced apart along the length direction of the aluminum profile 60 on the frame 11, and the conveying rollers 12 are used to support the aluminum profile 60; the rotary drive unit 13 is located on the frame 11 and is used to drive the conveying rollers 12 to rotate around a horizontal direction perpendicular to the length direction of the aluminum profile 60.

[0061] The rotary drive unit 13 can specifically be a geared motor. Each conveyor roller 12 can be driven by a separate motor, or by a single motor. The output shaft of one motor drives multiple conveyor rollers 12 to rotate synchronously through gear transmission, chain transmission, or other means. Gear transmission and chain transmission are common transmission methods, and their specific installation and setup will not be described in detail.

[0062] Please see Figure 1 and Figure 2 In some possible embodiments, the push plate 42 is provided with a guide plate 421 on the side facing the incoming direction of the aluminum profile 60. The guide plate 421 is inclined in the incoming direction of the aluminum profile 60, and a guide channel that gradually narrows along the incoming direction of the aluminum profile 60 is formed between the two opposing guide plates 421, which helps to guide the aluminum profile 60 into the clamping space between the two push plates 42.

[0063] Please see Figure 1 In some possible embodiments, the lateral movement assembly 40 further includes two position detection elements 43, with the detection ends of the two position detection elements 43 facing the two push plates 42 respectively. The position detection elements 43 are used to detect the horizontal position of the push plates 42 in the extension and retraction direction of the telescopic rod 41.

[0064] The position detection element 43 can be a laser distance sensor or the like in the prior art. The detection end of the position detection element 43 faces the push plate 42 and can detect the lateral position of the push plate 42, thereby determining whether the telescopic rod 41 connected to the push plate 42 has moved into place.

[0065] During the conveying of aluminum profiles 60, factors such as vibration and collision may cause the ends of multiple aluminum profiles 60 to become uneven, affecting the aesthetics of the bundled product. To solve the above problem, please refer to [link / reference needed]. Figure 1 , Figure 3 and Figure 5 In some possible embodiments, an aluminum profile bundling device further includes an alignment assembly 50, which includes a fixed bracket 51, a lifting rod 52, a mounting bracket 53, a sliding plate 54, and an alignment drive unit 55. The fixed bracket 51 is located on the side of the feeding assembly 10 adjacent to the automatic bundling machine 20; the lifting rod 52 is located on the fixed bracket 51 and has a downward lifting end; the mounting bracket 53 is located on the lifting end; the sliding plate 54 is vertically arranged and slides in cooperation with the mounting bracket 53; the alignment drive unit 55 is located on the mounting bracket 53 and is used to drive the sliding plate 54 to reciprocate along the conveying direction of the aluminum profile 60.

[0066] In this embodiment, the alignment component 50 is used to align the ends of multiple aluminum profiles 60 before they enter the conveying channel of the automatic strapping machine 20, improving the aesthetics of the strapped items. The specific working principle of the alignment component 50 is as follows: Before the aluminum profiles 60 move to the automatic strapping machine 20, the lifting rod 52, mounting bracket 53, sliding plate 54, and alignment drive unit 55 descend, bringing the sliding plate 54 to a height where it can touch the ends of the aluminum profiles 60. Then, the alignment drive unit 55 drives the sliding plate 54 to move back and forth, colliding with the ends of the aluminum profiles 60 and pushing the protruding aluminum profiles 60 backward, making the ends of multiple aluminum profiles 60 flush. After this, the lifting rod 52 drives the mounting bracket 53, sliding plate 54, and alignment drive unit 55 to rise, and the aligned aluminum profiles 60 enter the conveying channel of the automatic strapping machine 20 for strapping.

[0067] The alignment drive unit 55 can be an electric telescopic rod 41, a lead screw and slider mechanism, or other drive structures that can drive the sliding plate 54 to move linearly and reciprocally.

[0068] It is understandable that the alignment component 50 is set on the feeding side of the automatic strapping machine 20. After one end of the aluminum profile 60 is strapped, the strapping tape has a restraining effect on the aluminum profile 60, and the aluminum profile 60 will not fall apart. Therefore, the alignment component 50 does not need to perform alignment operation on the other end of the aluminum profile.

[0069] Please see Figure 5 In some possible embodiments, the alignment drive unit 55 includes a drive motor 551 and a return spring 553. The drive motor 551 is mounted on the mounting bracket 53, and the output shaft of the drive motor 551 is connected to a cam 552, the outer peripheral surface of which abuts against one side of the sliding plate 54. The return spring 553 is located between the mounting bracket 53 and the sliding plate 54 and is configured with a preload force to move the sliding plate 54 toward the drive motor 551.

[0070] In this embodiment, the alignment drive unit 55 uses a drive motor 551 as the drive component. The output shaft of the drive motor 551 is connected to a cam 552. A return spring 553 is provided on the side of the sliding plate 54 away from the cam 552. The return spring 553 is in a compressed state. The drive motor 551 can drive the cam 552 to rotate. The cam 552 and the return spring 553 work together to realize the reciprocating movement of the sliding plate 54.

[0071] Please see Figure 5 In some possible embodiments, the mounting bracket 53 is provided with a guide rod 531, and the sliding plate 54 is provided with a guide hole that penetrates its own thickness. The guide hole and the guide rod 531 slide together, which can improve the stability of the sliding movement.

[0072] To enable the alignment assembly 50 to know the movement position of the aluminum profile 60, please refer to [link / reference]. Figure 2 and Figure 3 In some possible embodiments, observation holes are respectively provided on the two push plates 42 of the feeding assembly 10, and the observation holes penetrate through the thickness direction of the push plate 42; the alignment assembly 50 also includes a detection grating 56, which includes an emitting end of the observation hole provided on one of the push plates 42 and a receiving end of the observation hole provided on the other push plate 42.

[0073] In this embodiment, the detection grating 56 includes a transmitter and a receiver, which are positioned opposite each other on two push plates 42. When there is no object between them, the light emitted by the transmitter can be received by the receiver. When the aluminum profile 60 moves between the transmitter and receiver, the light is blocked, and the detection grating 56 generates a signal. This signal is sent to the controller, which then determines the position of the aluminum profile 60 as it is being transported to the detection grating 56. The controller then lowers the lifting rod 52, allowing the alignment assembly 50 to align the ends of the aluminum profile 60. The height of the detection grating 56 should ensure that it is blocked by the aluminum profile 60 during transport.

[0074] Please see Figure 5 The lower end of the sliding plate 54 is detachably provided with an adjustment plate 541. Depending on the size or number of aluminum profiles 60, different sizes of adjustment plates 541 can be replaced. The adjustment plate 541 only needs to be able to cover the ends of all aluminum profiles 60.

[0075] It is understood that the parts in the above embodiments can be freely combined or deleted to form different combined embodiments. The specific contents of each combined embodiment will not be repeated here. After this description, it can be considered that the present utility model specification has recorded each combined embodiment and can support different combined embodiments.

[0076] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. An aluminum profile bundling device, characterized in that, include: A feeding assembly (10) is used to convey aluminum profiles (60) in a horizontal direction; An automatic strapping machine (20) is located on the unloading side of the feeding assembly (10). The automatic strapping machine (20) has a conveying channel through which aluminum profiles (60) pass. A sensor (21) is provided below the conveying channel, with the sensing end of the sensor (21) facing upward. A feeding assembly (30), located on the side of the automatic strapping machine (20) away from the feeding assembly (10), is used to horizontally convey aluminum profiles (60); and Two transverse components (40) are respectively disposed on the loading component (10) and the unloading component (30). The transverse component (40) includes two telescopic rods (41) arranged opposite to each other, and two push plates (42) respectively disposed on the two telescopic rods (41). The push plates (42) are located above the conveying surface of the loading component (10) or the unloading component (30). The two push plates (42) are parallel to each other, and a clamping space for accommodating the aluminum profile (60) is formed between the two push plates (42).

2. The aluminum profile bundling device according to claim 1, characterized in that, The feeding assembly (10) and the unloading assembly (30) respectively include: A frame (11) is provided on one side of the automatic strapping machine (20), wherein the telescopic rod (41) of one of the transverse components (40) is provided on the frame (11); Multiple conveyor rollers (12) are spaced apart along the length of the aluminum profile (60) on the frame (11); and A rotary drive unit (13) is provided on the frame (11) for driving the conveying roller (12) to rotate in a horizontal direction perpendicular to the length of the aluminum profile (60).

3. The aluminum profile bundling device according to claim 1, characterized in that, The push plate (42) is provided with a guide plate (421) on the side facing the material feeding direction of the aluminum profile (60). The guide plate (421) is inclined in the material feeding direction of the aluminum profile (60), and a guide channel that gradually shrinks along the material feeding direction of the aluminum profile (60) is formed between the two opposite guide plates (421).

4. The aluminum profile bundling device according to claim 1, characterized in that, The lateral movement assembly (40) further includes two position detection elements (43), the detection ends of the two position detection elements (43) are respectively facing the two push plates (42), and the position detection elements (43) are used to detect the horizontal position of the push plates (42) in the extension and retraction direction of the telescopic rod (41).

5. The aluminum profile bundling device according to claim 1, characterized in that, The aluminum profile bundling device further includes an alignment component (50), the alignment component (50) comprising: A fixed bracket (51) is provided on the side of the feeding assembly (10) adjacent to the automatic strapping machine (20); A lifting rod (52) is provided on the fixed bracket (51) and has a downward lifting end; Mounting bracket (53) is provided at the lifting end; A sliding plate (54) is vertically arranged and slides in cooperation with the mounting bracket (53); and An alignment drive unit (55) is provided on the mounting bracket (53) for driving the sliding plate (54) to reciprocate along the conveying direction of the aluminum profile (60).

6. The aluminum profile bundling device according to claim 5, characterized in that, The alignment driving unit (55) includes: A drive motor (551) is mounted on the mounting bracket (53). The output shaft of the drive motor (551) is connected to a cam (552), and the outer peripheral surface of the cam (552) abuts against one side of the sliding plate (54). A return spring (553) is disposed between the mounting bracket (53) and the sliding plate (54) and is configured with a preload force to move the sliding plate (54) toward the drive motor (551).

7. The aluminum profile bundling device according to claim 5, characterized in that, The mounting bracket (53) is provided with a guide rod (531), and the sliding plate (54) has a guide hole that penetrates its own thickness. The guide hole is slidably engaged with the guide rod (531).

8. The aluminum profile bundling device according to claim 5, characterized in that, The two push plates (42) of the same feeding assembly (10) are respectively provided with observation holes, which penetrate the thickness direction of the push plate (42); the alignment assembly (50) also includes a detection grating (56), which includes an emitting end provided in the observation hole of one of the push plates (42) and a receiving end provided in the observation hole of the other push plate (42).

9. The aluminum profile bundling device according to claim 5, characterized in that, The lower end of the sliding plate (54) is detachably provided with an adjusting plate (541).

10. The aluminum profile bundling device according to claim 1, characterized in that, The feeding assembly (10) and the unloading assembly (30) are both belt conveyors.