Feeding frame for aluminum profile film pasting

By designing a feeding rack for aluminum profile film, the collaborative work of the bracket, shifting mechanism and barrier mechanism is used to realize the automated separation and transportation of aluminum profiles, solving the problems of inefficiency and strong artificial dependence in the existing technology, and improving the production efficiency and scope of application.

CN223279414UActive Publication Date: 2025-08-29GUANGDONG TIANMA ALUMINUM IND CO LTD
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Patent Information

Application Number
CN202422837689.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-20
Publication Date
2025-08-29
Estimated Expiration
2034-11-20

AI Technical Summary

Technical Problem

The existing aluminum profiles are inefficient, have strong artificial dependence and narrow application range during the loading process, making it difficult to quickly adjust to meet production needs.

Method used

A feeding rack for aluminum profile film is designed, including a bracket, a first shifting mechanism, a second shifting mechanism and a barrier mechanism. Through the coordinated work of these mechanisms, the automatic separation, guidance and transportation of aluminum profiles are realized, and manual intervention is reduced.

Benefits of technology

The loading efficiency of aluminum profiles is improved, manual intervention is reduced, and the aluminum profile remains straight during the transportation process, avoids damage, and improves production efficiency and scope of application.

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Abstract

The utility model relates to the technical field of aluminum profile machining, in particular to a feeding frame for aluminum profile film pasting, which comprises a bracket, a first shifting mechanism, a second shifting mechanism and a blocking mechanism, the bracket is mounted on the horizontal ground, and the first shifting mechanism, the second shifting mechanism and the blocking mechanism are separately mounted on the bracket at intervals; the first shifting mechanism is used for driving the aluminum profile to move; the second shifting mechanism is used for separating the stacked aluminum profiles; the blocking mechanism is used for blocking the aluminum profile; one end of the second shifting mechanism is connected with the first shifting mechanism, and the other end is connected with the blocking mechanism; a conveying mechanism is arranged on the support, the conveying mechanism is installed on the support, one side of the conveying mechanism is connected with the second displacement mechanism, and the conveying mechanism is located below the second displacement mechanism. By arranging the first shifting mechanism, the second shifting mechanism, the blocking mechanism and the conveying mechanism, the problems that existing aluminum profile feeding is low in efficiency, high in manual dependence, narrow in application range and the like can be solved.
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Description

Technical Field

[0001] The present application relates to the technical field of aluminum profile processing, and in particular to a loading rack for aluminum profile film application. Background Art

[0002] Aluminum profiles are widely used in construction and industrial applications, and the requirements for surface quality during processing are becoming increasingly stringent. To prevent damage during transportation, storage, and use, a protective film is typically applied to the surface of the aluminum profile.

[0003] The process of laminating aluminum profiles involves loading the aluminum profiles. In the traditional processing process, manual loading is usually adopted to feed the aluminum profiles one by one into the laminating machine. This working method is difficult to adjust quickly to meet the actual needs of production, thus limiting the further improvement of production efficiency. Utility Model Content

[0004] In order to improve the existing problems of low efficiency, strong dependence on manual labor, and narrow scope of application of aluminum profile feeding, the present application provides a feeding rack for aluminum profile film pasting.

[0005] This application provides a loading rack for aluminum profile film lamination, which adopts the following technical solution:

[0006] A loading rack for aluminum profile film lamination, comprising a bracket mounted on a horizontal ground, and a first shifting mechanism for driving the aluminum profile to shift, a second shifting mechanism for separating the aluminum profiles from a pile, and a blocking mechanism for resisting the aluminum profiles, respectively mounted on the bracket;

[0007] One end of the second shifting mechanism is connected to the first shifting mechanism, and the other end is connected to the blocking mechanism;

[0008] A conveying mechanism is provided on the bracket, and the conveying mechanism is installed on the bracket. One side of the conveying mechanism is connected to the second shifting mechanism, and the conveying mechanism is located below the second shifting mechanism.

[0009] By adopting the above technical solution, when aluminum profiles are being laminated, a forklift moves the stacked aluminum profiles to the first shifting mechanism, and the first shifting mechanism drives the aluminum profiles to move to the second shifting mechanism. The second shifting mechanism works to separate a single aluminum profile from the piled aluminum profiles and conveys it to the blocking mechanism. While the blocking mechanism blocks the aluminum profiles, it can also guide the aluminum profiles to remain straight, so that when the aluminum profiles fall into the conveying mechanism, they are in a relatively straight placement state. The aluminum profiles remain in a straight state and are also easier to fall into the conveying mechanism, which addresses the problem of aluminum profiles flying out of the conveying mechanism when they fall. The aluminum profiles that fall into the conveying mechanism are driven by the conveying mechanism to enter the laminating machine for laminating processing; by providing the first shifting mechanism, the second shifting mechanism, the blocking mechanism and the conveying mechanism, the problems of low efficiency in existing aluminum profile loading, strong dependence on manual labor, and narrow scope of application can be improved.

[0010] Optionally, the first shifting mechanism includes:

[0011] a first moving member rotatably mounted on the bracket;

[0012] a first driving member, the first driving member being fixedly mounted on the bracket, the first moving member being connected to the first driving member, and the first driving member being used to drive the first moving member to move relative to the bracket;

[0013] The first moving member is provided with a first elastic member for buffering the weight of the aluminum profile itself. The first elastic member is elastic and is fixedly installed on the surface of the first moving member.

[0014] By adopting the above technical solution, bundles of aluminum profiles are placed on the first moving member, the first driving member drives the first moving member to rotate, and the rotating first moving member drives the bundled aluminum profiles to move toward the second shifting mechanism. During the movement, the first driving member drives the first moving member to rotate forward and reverse for a period of time, so that the aluminum profiles are dispersed, and then drives the aluminum profiles to move to the second shifting mechanism. The first elastic member can buffer the impact force of the aluminum profile on the first moving member, thereby extending the service life of the first moving member, and can also increase the friction between the first moving member and the aluminum profile, which is convenient for driving the aluminum profile to move. By setting the first moving member, the first elastic member and the first driving member, the dispersion and transportation of the aluminum profiles can be achieved.

[0015] Optionally, the second shifting mechanism includes a lifting member for lifting the aluminum profile, a forward moving member for driving the lifting member to slide, and a lifting member for driving the forward moving member to rise and fall, wherein the lifting member is slidably mounted on the bracket; one end of the forward moving member is connected to the lifting member, and the other end is connected to the lifting member;

[0016] The second shifting mechanism further includes an inclined portion, one end of which is connected to the first shifting mechanism;

[0017] The blocking mechanism is located on one end of the inclined portion away from the first displacement mechanism.

[0018] By adopting the above technical solution, the first shifting mechanism sends the aluminum profile to the second shifting mechanism, the lifting member drives the supporting member to rise, supports a single aluminum profile, and lifts the aluminum profile off the bracket, the forward moving member drives the lifting member to move along the direction where the blocking member is located, and the aluminum profile is moved to above the inclined portion, the lifting member drives the supporting member to move downward, the aluminum profile contacts the inclined portion, and moves to the blocking mechanism under the guidance of the inclined portion; by arranging the supporting member, the lifting member, the forward moving member and the inclined portion, they cooperate with each other to realize the separation and guidance of the aluminum profile, thereby separating a single aluminum profile from the stacked aluminum profiles, realizing material separation, improving the loading efficiency of the film laminating machine, and reducing manual intervention.

[0019] Optionally, the lifting member is provided with a second elastic member for increasing the friction between the lifting member and the aluminum profile, and the second elastic member is fixed on the lifting member.

[0020] By adopting the above technical solution, a second elastic elastic member is provided to increase the soft friction force. Compared with the hard friction force, on the one hand, it can protect the surface of the aluminum profile from being damaged, and on the other hand, it can limit the movement of the aluminum profile during transportation to prevent the aluminum profile from moving and falling.

[0021] Optionally, the second elastic member has a resistance portion, and a plurality of the resistance portions are provided.

[0022] By adopting the above technical solution and providing a resistance portion on the second elastic member, the movement of the aluminum profile can be further restricted, so that the aluminum profile can be stably placed on the lifting member during the lifting movement.

[0023] Optionally, the blocking mechanism includes a blocking member and a blocking driving member, one end of the blocking member is hinged to the bracket, the blocking driving member is installed on the bracket, and one end of the blocking member is also hinged to the blocking driving member.

[0024] By adopting the above technical solution, the blocking driving member is used to drive the blocking member to swing relative to the bracket; the aluminum profile moves along the inclined portion to the blocking member, and the two ends of the slightly inclined aluminum profile are in the same straight line under the obstruction of the blocking member. The blocking driving member drives the blocking member to swing, and the aluminum profile falls into the conveying mechanism without being obstructed by the blocking member. The conveying mechanism sends the aluminum profile into the film laminating machine for film laminating, thereby realizing stable feeding of the aluminum profile and improving loading efficiency.

[0025] Optionally, the conveying mechanism includes a rolling member and a rolling driving member, the rolling member is rotatably mounted on the bracket, the rolling driving member is mounted on the bracket, and the rolling member is connected to the rolling driving member;

[0026] The rolling element is provided with a third elastic element, the third elastic element is elastic, and the third elastic element is sleeved on the rolling element.

[0027] By adopting the above technical solution, the aluminum profile moves to the blocking mechanism, the blocking driving member drives one end of the blocking member to swing, the aluminum profile falls into the rolling member, the rolling driving member drives the rolling member to rotate, and the aluminum profile is sent into the film laminating machine for film laminating processing; when the aluminum profile falls into the rolling member, there is a certain impact force between the aluminum profile and the rolling member. By inserting a third elastic member with elastic force, the impact force between the aluminum profile and the rolling member can be buffered, thereby protecting the surface of the aluminum profile from damage.

[0028] Optionally, a set of guide members are provided on both sides of the rolling member;

[0029] The bracket is provided with a sliding member that drives the guide member to slide. The sliding member is slidably mounted on the bracket, and the guide member is rotatably mounted on the sliding member.

[0030] The bracket is provided with a guide portion and a fourth elastic member with elasticity. The sliding member is slidably connected to the guide portion. The fourth elastic member is sleeved on the guide portion, and one end of the fourth elastic member abuts against the sliding member.

[0031] By adopting the above technical solution, the aluminum profile will inevitably deviate when it enters the rolling member from the inclined part. By setting the guide member, the rolling member drives the aluminum profile to move toward the film laminating machine, and the two sets of guide members straighten it. In order to reduce the pressure of the guide member on the aluminum profile, a sliding member and a fourth elastic member are installed on the guide part, and then the guide member is rotatably installed on the sliding member. The rotating guide member can reduce the friction between the guide member and the aluminum profile. The sliding guide member and the fourth elastic member are elastic, which can further reduce the impact force of the collision with the aluminum profile and protect the aluminum profile.

[0032] In summary, this application has the following beneficial effects:

[0033] 1. By setting up a first shifting mechanism, a second shifting mechanism, a blocking mechanism and a conveying mechanism, the problems of low efficiency, strong dependence on manual labor and narrow scope of application of existing aluminum profile feeding can be improved.

[0034] 2. Installing a first elastic member on the first moving member can buffer the impact force of the aluminum profile on the first moving member, thereby extending the service life of the first moving member. It can also increase the friction between the first moving member and the aluminum profile, making it easier to drive the aluminum profile to move. By arranging the first moving member, the first elastic member and the first driving member, the aluminum profile can be dispersed and conveyed.

[0035] 3. By setting up lifting parts, lifting parts, forward moving parts and inclined parts, they cooperate with each other to achieve the separation and guidance of aluminum profiles, so as to separate single aluminum profiles from the stacked aluminum profiles, realize material separation, improve the loading efficiency of the film laminating machine, and reduce manual intervention.

[0036] 4. A second elastic member is provided on the lifting member to increase the soft friction. Compared with the hard friction, it can protect the surface of the aluminum profile from damage on the one hand, and limit the movement of the aluminum profile during transportation on the other hand to prevent the aluminum profile from moving and falling.

[0037] 5. When the aluminum profile falls into the rolling element, there is a certain impact force between the aluminum profile and the rolling element. By inserting the third elastic element with elastic force, the impact force between the aluminum profile and the rolling element can be buffered, protecting the surface of the aluminum profile from damage. BRIEF DESCRIPTION OF THE DRAWINGS

[0038] Figure 1 This is a diagram showing the overall structure of a loading rack for aluminum profile film application disclosed in this embodiment;

[0039] Figure 2 This is a structural view of a first shift mechanism in a loading rack for aluminum profile film lamination disclosed in this embodiment;

[0040] Figure 3 This embodiment discloses a structural view of a conveying mechanism in a loading rack for aluminum profile film application.

[0041] Description of reference numerals:

[0042] 1. Bracket; 11. Dispersion rod; 2. First shifting mechanism; 21. First shifting member; 22. First driving member; 23. First elastic member; 3. Second shifting mechanism; 31. Lifting member; 32. Forward moving member; 33. Lifting member; 34. Second elastic member; 340. Resistance part; 4. Blocking mechanism; 41. Blocking member; 42. Blocking driving member; 5. Conveying mechanism; 51. Rolling member; 52. Rolling driving member; 53. Third elastic member; 6. Inclined portion; 7. Guide member; 8. Sliding member; 9. Fourth elastic member. DETAILED DESCRIPTION

[0043] The following is combined with Figure 1-3 This application is described in further detail.

[0044] The present application embodiment discloses a loading rack for aluminum profile film application, see Figure 1, including a bracket 1, a first shifting mechanism 2, a second shifting mechanism 3 and a blocking mechanism 4. The bracket 1 is installed on the horizontal ground. The first shifting mechanism 2, the second shifting mechanism 3 and the blocking mechanism 4 are respectively installed on the bracket 1 at intervals. The first shifting mechanism 2 is used to drive the aluminum profile to move; the second shifting mechanism 3 is used to separate the clustered aluminum profiles; the blocking mechanism 4 is used to block the aluminum profiles; one end of the second shifting mechanism 3 is connected to the first shifting mechanism 2, and the other end is connected to the blocking mechanism 4; a conveying mechanism 5 is provided on the bracket 1, and the conveying mechanism 5 is installed on the bracket 1. One side of the conveying mechanism 5 is connected to the second shifting mechanism 3, and the conveying mechanism 5 is located below the second shifting mechanism 3. The first shifting mechanism 2 drives the aluminum profile to move to the second shifting mechanism 3. The second shifting mechanism 3 works to separate a single aluminum profile from the piled aluminum profiles and convey it to the blocking mechanism 4. The blocking mechanism 4 can block the aluminum profile while guiding the aluminum profile to remain straight, so that when the aluminum profile falls into the conveying mechanism 5, it is in a relatively straight placement state. The aluminum profile remains in a straight state and is easier to fall into the conveying mechanism 5. In order to deal with the problem of the aluminum profile flying out of the conveying mechanism 5 when it falls, the aluminum profile that falls into the conveying mechanism 5 enters the film laminating machine under the drive of the conveying mechanism 5 for film laminating processing.

[0045] See also Figure 1 and Figure 2 Furthermore, the first shifting mechanism 2 includes a first moving member 21 and a first driving member 22. The first moving member 21 is rotatably mounted on the bracket 1; the first driving member 22 is fixedly mounted on the bracket 1. The first moving member 21 is connected to the first driving member 22. The first driving member 22 is used to drive the first moving member 21 to move relative to the bracket 1; the first moving member 21 is provided with a first elastic member 23 for buffering the weight of the aluminum profile itself. The first elastic member 23 is elastic and is fixedly mounted on the surface of the first moving member 21.

[0046] Specifically, the first moving member 21 includes a stainless steel chain plate and multiple chain rollers. The multiple chain rollers are installed on the bracket 1 for rotation at intervals, and the stainless steel chain plate is wrapped around the multiple chain rollers; the first driving member 22 includes a first servo motor, and the first servo motor is fixedly installed on the bracket 1; one end of one of the multiple chain rollers is fixedly connected to the output main shaft of the first servo motor.

[0047] The first elastic member 23 is specifically a first rubber pad, which is bonded to the surface of the stainless steel chain plate supporting the aluminum profile.

[0048] See also Figure 1 A dispersion rod 11 is provided on the bracket 1, one end of the dispersion rod 11 is fixedly connected to the bracket 1, and the other end of the dispersion rod 11 extends above the first moving member 21. The dispersion rod 11 is used to block and disperse the clustered aluminum profiles, and a layer of rubber is wrapped on the dispersion rod 11.

[0049] See also Figure 1 and Figure 2 Furthermore, the second shifting mechanism 3 includes a lifting member 31 for lifting the aluminum profile, a forward moving member 32 for driving the lifting member 31 to slide, and a lifting member 33 for driving the forward moving member 32 to rise and fall. The lifting member 31 is slidably installed on the bracket 1; one end of the forward moving member 32 is connected to the lifting member 31, and the other end is connected to the lifting member 33; the second shifting mechanism 3 also includes an inclined portion 6, one end of the inclined portion 6 is connected to the first shifting mechanism 2; the blocking mechanism 4 is located on one end of the inclined portion 6 away from the first shifting mechanism 2.

[0050] Specifically, the lifting member 31 includes a lifting plate, which is slidably connected to the bracket 1; the forward moving member 32 includes a forward moving cylinder, which is fixedly installed on the bracket 1 and is installed toward the blocking mechanism 4; the jacking member 33 includes a jacking cylinder, the body of the jacking cylinder is fixedly connected to the piston rod of the forward moving cylinder, and the lower surface of the lifting plate is fixedly connected to the piston rod of the forward moving cylinder.

[0051] The inclined portion 6 is specifically a conveyor belt obliquely installed on the bracket 1 and a transmission motor installed on the bracket 1. The driving shaft of the conveyor belt is fixedly connected to the output main shaft of the transmission motor; the aluminum profile is sent to the inclined portion 6 by the second shifting mechanism 3, that is, it falls on the conveyor belt, and the conveyor motor drives the conveyor belt to rotate. The aluminum profile is then driven by the conveyor belt to move to the blocking mechanism 4, thereby realizing the material separation and transportation of a single aluminum profile.

[0052] See also Figure 2 Furthermore, a second elastic member 34 is provided on the lifting member 31 to increase the friction between the lifting member 31 and the aluminum profile, and the second elastic member 34 is fixed on the lifting member 31; the second elastic member 34 has a resistance part 340, and there are multiple resistance parts 340.

[0053] Specifically, the second elastic member 34 includes a second rubber pad, which is bonded to the surface of the lifting plate. The resistance portion 340 is specifically a groove formed on the second rubber pad.

[0054] See also Figure 1 and Figure 2 Furthermore, the blocking mechanism 4 includes a blocking member 41 and a blocking driving member 42, one end of the blocking member 41 is hinged to the bracket 1, the blocking driving member 42 is installed on the bracket 1, and one end of the blocking member 41 is also hinged to the blocking driving member 42.

[0055] Specifically, the blocking member 41 includes a blocking rod, one end of which is hinged to the bracket 1; the blocking driving member 42 includes a blocking cylinder, which is fixedly mounted on the bracket 1, and one end of the blocking rod hinged to the bracket 1 is also hinged to the output spindle of the blocking cylinder.

[0056] See also Figure 1 and Figure 3Furthermore, the conveying mechanism 5 includes a rolling member 51 and a rolling driving member 52. The rolling member 51 is rotatably installed on the bracket 1, and the rolling driving member 52 is installed on the bracket 1. The rolling member 51 is connected to the rolling driving member 52; a third elastic member 53 is provided on the rolling member 51, and the third elastic member 53 is elastic. The third elastic member 53 is sleeved on the rolling member 51.

[0057] Specifically, the rolling element 51 includes multiple rollers and chains, one end of the multiple rollers are linked by a chain, and the multiple rollers are installed on the bracket 1 at intervals and are respectively rotatably connected to the bracket 1; the rolling drive element 52 includes a rolling servo motor, which is fixedly installed on the bracket 1, and one end of one of the multiple rollers is fixedly connected to the output spindle of the rolling servo motor.

[0058] See also Figure 1 and Figure 3 A group of guide members 7 are respectively provided on both sides of the rolling member 51; a sliding member 8 is provided on the bracket 1 to drive the guide member 7 to slide, the sliding member 8 is slidably installed on the bracket 1, and the guide member 7 is rotatably installed on the sliding member 8; a guide portion and an elastic fourth elastic member 9 are provided on the bracket 1, the sliding member 8 is slidably connected to the guide portion, the fourth elastic member 9 is sleeved on the guide portion, and one end of the fourth elastic member 9 is in contact with the sliding member 8.

[0059] Each group of guide members 7 includes multiple guide rollers, the sliding members 8 include multiple sliding blocks, the guiding part is specifically a guide rod, and the number of guide rods is consistent with the number of sliding blocks; the fourth elastic member 9 includes a spring; the multiple sliding blocks are respectively slidably installed on the guide rods, the springs are sleeved on the guide rods, and the multiple guide rollers are respectively rotatably installed on the sliding blocks.

[0060] The working principle of the aluminum profile film loading rack of the present application is as follows:

[0061] The bundled aluminum profiles are placed on the first moving member 21. The first driving member 22 drives the first moving member 21 to rotate. The rotating first moving member 21 drives the bundled aluminum profiles to move toward the second shifting mechanism 3. During the movement, the first driving member 22 drives the first moving member 21 to rotate forward and reverse for a period of time. At the same time, the aluminum profiles are further dispersed and spread on the first moving member 21 under the action of the dispersion rod 11. Then, the first moving member 21 drives the aluminum profiles to move to the second shifting mechanism 3.

[0062] The lifting member 33 drives the supporting member 31 to rise, lifts a single aluminum profile, and lifts the aluminum profile off the bracket 1. The forward moving member 32 drives the lifting member 33 to move along the direction where the blocking member 41 is located. The aluminum profile is moved above the inclined portion 6. The lifting member 33 drives the supporting member 31 to move downward. The aluminum profile contacts the inclined portion 6 and moves to the blocking mechanism 4 under the guidance of the inclined portion 6.

[0063] The aluminum profile moves along the inclined portion 6 to the blocking member 41 . The two ends of the slightly inclined aluminum profile are in the same straight line under the obstruction of the blocking member 41 . The blocking driving member 42 drives the blocking member 41 to swing, and the aluminum profile falls into the conveying mechanism 5 without being obstructed by the blocking member 41 .

[0064] The aluminum profile moves to the blocking mechanism 4, and the blocking drive 42 drives one end of the blocking member 41 to swing. The aluminum profile falls into the rolling member 51, and the rolling drive 52 drives the rolling member 51 to rotate. The two sets of guide members 7 straighten it. During the movement, the guide member 7 produces a reciprocating motion relative to the bracket 1 with the cooperation of the sliding member 8, the guide part and the fourth elastic member 9. The aluminum profile is gradually straightened under the action of the two sets of guide members 7, so that the aluminum profile remains straight and enters the film laminating machine for film laminating processing.

[0065] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit the same. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent replacements for some of the technical features therein. These modifications or replacements do not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions of the various embodiments of the present invention, and should all be included in the scope of protection of the present invention.

Claims

1. A loading rack for aluminum profile film lamination, characterized by: It comprises a bracket (1) installed on a horizontal ground, a first displacement mechanism (2) for driving the displacement of aluminum profiles, a second displacement mechanism (3) for separating the clustered aluminum profiles, and a blocking mechanism (4) for resisting the aluminum profiles, which are respectively installed on the bracket (1); One end of the second shifting mechanism (3) is connected to the first shifting mechanism (2), and the other end is connected to the blocking mechanism (4); A conveying mechanism (5) is provided on the bracket (1), the conveying mechanism (5) is installed on the bracket (1), one side of the conveying mechanism (5) is connected to the second shifting mechanism (3), and the conveying mechanism (5) is located below the second shifting mechanism (3).

2. The loading rack for aluminum profile film lamination according to claim 1, characterized in that: The first shifting mechanism (2) comprises: A first moving member (21), the first moving member (21) being rotatably mounted on the bracket (1); a first driving member (22), the first driving member (22) being fixedly mounted on the bracket (1), the first moving member (21) being connected to the first driving member (22), and the first driving member (22) being used to drive the first moving member (21) to move relative to the bracket (1); The first moving member (21) is provided with a first elastic member (23) for buffering the weight of the aluminum profile itself. The first elastic member (23) is elastic and is fixedly mounted on the surface of the first moving member (21).

3. The loading rack for aluminum profile film lamination according to claim 1, characterized in that: The second shifting mechanism (3) comprises a lifting member (31) for lifting the aluminum profile, a forward moving member (32) for driving the lifting member (31) to slide, and a lifting member (33) for driving the forward moving member (32) to rise and fall, wherein the lifting member (31) is slidably mounted on the bracket (1); one end of the forward moving member (32) is connected to the lifting member (31), and the other end is connected to the lifting member (33); The second shifting mechanism (3) further comprises an inclined portion (6), one end of which is connected to the first shifting mechanism (2); The blocking mechanism (4) is located on one end of the inclined portion (6) away from the first displacement mechanism (2).

4. The loading rack for aluminum profile film lamination according to claim 3, characterized in that: The lifting member (31) is provided with a second elastic member (34) for increasing the friction between the lifting member (31) and the aluminum profile, and the second elastic member (34) is fixed on the lifting member (31).

5. The loading rack for aluminum profile film lamination according to claim 4, characterized in that: The second elastic member (34) has a resistance portion (340), and a plurality of the resistance portions (340) are provided.

6. The loading rack for aluminum profile film lamination according to claim 5, characterized in that: The blocking mechanism (4) comprises a blocking member (41) and a blocking driving member (42), one end of the blocking member (41) is hinged to the bracket (1), the blocking driving member (42) is mounted on the bracket (1), and one end of the blocking member (41) is also hinged to the blocking driving member (42).

7. The loading rack for aluminum profile film lamination according to claim 2, characterized in that: The conveying mechanism (5) comprises a rolling member (51) and a rolling driving member (52), wherein the rolling member (51) is rotatably mounted on the bracket (1), the rolling driving member (52) is mounted on the bracket (1), and the rolling member (51) is connected to the rolling driving member (52); The rolling element (51) is provided with a third elastic element (53), the third elastic element (53) is elastic, and the third elastic element (53) is sleeved on the rolling element (51).

8. The loading rack for aluminum profile film lamination according to claim 7, characterized in that: A group of guide members (7) are respectively provided on both sides of the rolling member (51); The bracket (1) is provided with a sliding member (8) for driving the guide member (7) to slide. The sliding member (8) is slidably mounted on the bracket (1), and the guide member (7) is rotatably mounted on the sliding member (8). The bracket (1) is provided with a guide portion and a fourth elastic member (9) having elasticity, the sliding member (8) is slidably connected to the guide portion, the fourth elastic member (9) is sleeved on the guide portion, and one end of the fourth elastic member (9) is in contact with the sliding member (8).