Magnet assembling mechanism of display screen

By integrating the feeding suction cup and vacuum suction head onto the same mounting base and combining them with a multi-axis moving assembly, the problems of complex structure and poor adaptability of existing equipment are solved, achieving efficient and precise assembly of display screen back shell magnets and improving the integration and adaptability of the equipment.

CN223531817UActive Publication Date: 2025-11-11GUANGDONG CHUNTEX ELITE ELECTRONIC TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422955527.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-29
Publication Date
2025-11-11
Estimated Expiration
2034-11-29

AI Technical Summary

Technical Problem

Existing display screen back cover magnet assembly equipment has a complex structure, high maintenance costs, poor adaptability, insufficient positioning accuracy, and multiple independent components increase the size and weight of the equipment, reducing operational flexibility and accuracy.

Method used

Design a highly integrated magnet assembly mechanism that integrates a feeding suction cup and a vacuum suction head onto the same mounting base, and combines a first transverse component, a second transverse component, and a lifting component to achieve precise movement in the X, Y, and Z directions, adapting to back shells and magnets of different sizes and shapes.

Benefits of technology

It improves assembly accuracy and quality, reduces equipment complexity and space occupation, lowers maintenance costs, enhances equipment flexibility and adaptability, and reduces downtime.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223531817U_ABST
    Figure CN223531817U_ABST
Patent Text Reader

Abstract

The utility model discloses a magnet assembling mechanism of a display screen, which comprises a first transverse moving component, a second transverse moving component, a lifting component, a blanking sucker, a vacuum sucker and a mounting seat, the vacuum sucker is used for sucking a magnet on a feeding table and assembling the magnet on a rear shell, and the blanking sucker is used for taking down the rear shell assembled with the magnet from a positioning carrying table; the vacuum suction head and the discharging suction cup are both installed on the installation base, the installation base is installed on the second transverse moving assembly, and the second transverse moving assembly is installed on the lifting assembly and used for driving the installation base to move in the X-axis direction. The lifting assembly is installed on the first transverse moving assembly and used for driving the second transverse moving assembly to move in the Z-axis direction, and the first transverse moving assembly is used for driving the lifting assembly to move in the Y-axis direction; the blanking sucker and the vacuum sucker are integrated on the same mounting seat, so that the complexity and the occupied space of equipment are reduced, and the overall integration level and the space utilization rate are improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of display screen manufacturing equipment technology, and in particular to a magnet assembly mechanism for a display screen. Background Technology

[0002] In the field of electronic equipment manufacturing, the assembly of the display screen's back cover with the magnet is a crucial step in ensuring the normal operation of the equipment. Traditional assembly methods mainly rely on manual operation, which is not only inefficient but also prone to assembly errors. Furthermore, manual assembly suffers from high labor intensity, high production costs, and high skill requirements for operators.

[0003] With the development of automation technology, some patents propose using automated equipment to improve assembly efficiency and accuracy. However, existing automated assembly equipment is often structurally complex, has high maintenance costs, and poor adaptability to different models of display screen back covers. Furthermore, some equipment lacks sufficient positioning accuracy for magnets during assembly, leading to unstable assembly quality.

[0004] While existing technologies have made some progress in the field of magnet assembly for display screen back covers, there are still many areas for improvement. In current technologies, magnet assembly equipment typically requires multiple independent components to complete the magnet attraction and back cover removal, which not only increases the complexity of the equipment but also raises maintenance costs and failure rates. Furthermore, existing equipment often requires multiple independent drive systems to achieve three-axis movement, which not only increases the size and weight of the equipment but also reduces operational flexibility and precision. Utility Model Content

[0005] The main objective of this invention is to propose a magnet assembly mechanism for a highly integrated display screen.

[0006] To solve the above-mentioned technical problems, the present invention adopts the following technical solution: a magnet assembly mechanism for a display screen, comprising a positioning platform, a feeding platform, a first transverse moving assembly, a second transverse moving assembly, a lifting assembly, a feeding suction cup, a vacuum suction head, and a mounting base. The positioning platform is used to support the back shell to be assembled, the feeding platform is used to support the magnet to be assembled, the vacuum suction head is used to pick up the magnet on the feeding platform and assemble it onto the back shell, and the feeding suction cup is used to remove the back shell with the assembled magnet from the positioning platform. The vacuum suction head and the feeding suction cup are both mounted on the mounting base, the mounting base is mounted on the second transverse moving assembly, the second transverse moving assembly is mounted on the lifting assembly and is used to drive the mounting base to move along the X-axis direction; the lifting assembly is mounted on the first transverse moving assembly and is used to drive the second transverse moving assembly to move along the Z-axis direction, and the first transverse moving assembly is used to drive the lifting assembly to move along the Y-axis direction.

[0007] In one embodiment, the first lateral movement assembly includes a first lateral movement support frame, a first lateral movement motor, a first lateral movement transmission belt, a first lateral movement slide rail, and a first lateral movement slider. The lifting assembly is mounted on the first lateral movement slider, which is slidably mounted on the first lateral movement slide rail and connected to the first lateral movement transmission belt. The first lateral movement motor, the first lateral movement transmission belt, and the first lateral movement slide rail are all mounted on the first lateral movement support frame. The first lateral movement motor is used to drive the first lateral movement transmission belt, and the first lateral movement slide rail extends along the Y-axis direction.

[0008] In one embodiment, the lifting assembly includes a lifting support frame, a lifting cylinder, a lifting slide rail, and a lifting slider. The lifting support frame is mounted on the first lateral movement assembly, the lifting cylinder and the lifting slide rail are mounted on the lifting support frame, the lifting slide rail extends along the Z-axis direction, the lifting slider is slidably mounted on the lifting slide rail, the lifting cylinder is used to drive the lifting slider to slide, and the second lateral movement assembly is mounted on the lifting slider.

[0009] In one embodiment, the second traverse assembly includes a second traverse support frame, a second traverse motor, a second traverse transmission belt, a second traverse slide rail, and a second traverse slider. The second traverse support frame is mounted on the lifting assembly. The second traverse motor, the second traverse transmission belt, and the second traverse slide rail are all mounted on the second traverse support frame. The second traverse slider is slidably mounted on the second traverse slide rail and connected to the second traverse transmission belt. The second traverse motor is used to drive the second traverse transmission belt. The second traverse motor extends along the X-axis direction. The mounting base is mounted on the second traverse slider.

[0010] In one embodiment, the feeding suction cup is detachably mounted on the mounting base.

[0011] In one embodiment, the vacuum suction head is detachably mounted on the mounting base.

[0012] In one embodiment, the number of vacuum suction heads is multiple.

[0013] In one embodiment, the mounting base is further provided with a clamping structure, the clamping structure including a clamping cylinder and a clamping seat, the output shaft of the clamping cylinder is connected to the clamping seat and used to drive the clamping seat to move along the Z-axis direction, and the vacuum suction head is mounted on the clamping seat.

[0014] In one embodiment, the mounting base is provided with a plurality of the clamping structures.

[0015] The beneficial effects of this utility model are as follows: The magnet assembly mechanism for the display screen provided by this utility model has a high degree of integration, integrating the feeding suction cup and vacuum suction head onto the same mounting base, reducing the complexity and space occupation of the equipment, improving the overall integration and space utilization, and enabling the magnet to be picked up and the back shell to be removed on the same mounting base, reducing downtime during the assembly process; through the coordinated work of the first transverse component, the second transverse component, and the lifting component, the mounting base can be moved precisely in the X, Y, and Z directions, ensuring accurate magnet picking up and precise assembly of the back shell, improving the assembly accuracy and quality; the design of the three-axis moving component allows the equipment to adapt to back shells and magnets of different sizes and shapes, improving the flexibility and adaptability of the equipment. Attached Figure Description

[0016] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, 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 utility model. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.

[0017] Figure 1 This is a schematic diagram of the magnet assembly mechanism of the display screen according to Embodiment 1 of this utility model.

[0018] Label Explanation:

[0019] 1. Machine base; 11. Positioning platform; 12. Feeding platform; 2. First transverse movement assembly; 21. First transverse movement support frame; 22. First transverse movement motor; 23. First transverse movement transmission belt; 24. First transverse movement slide rail; 25. First transverse movement slider; 3. Second transverse movement assembly; 31. Second transverse movement support frame; 32. Second transverse movement motor; 33. Second transverse movement transmission belt; 34. Second transverse movement slide rail; 35. Second transverse movement slider; 4. Lifting assembly; 41. Lifting support frame; 42. Lifting cylinder; 43. Lifting slide rail; 44. Lifting slider; 5. Mounting base; 6. Unloading suction cup; 7. Vacuum suction head; 8. Pressing structure; 81. Pressing cylinder; 82. Pressing seat. Detailed Implementation

[0020] The purpose, features, and advantages of this utility model will be further explained in conjunction with the embodiments and with reference to the accompanying drawings.

[0021] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0022] It should be noted that if the embodiments of this utility model involve directional indicators such as up, down, left, right, front, back, etc., the directional indicators are only used to explain the relative positional relationship and movement of the components in a specific posture as shown in the attached figure. If the specific posture changes, the directional indicators will also change accordingly.

[0023] Furthermore, if the embodiments of this utility model involve descriptions such as "first" or "second," such descriptions are for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined with "first" or "second" may explicitly or implicitly include at least one of those features.

[0024] Furthermore, if the meaning of "and / or" appears throughout the text, it refers to three parallel solutions. For example, "and / or" includes solution 1, solution 2, and solution 3, which simultaneously satisfy the above conditions. Additionally, the technical solutions of the various embodiments can be combined with each other, but this must be based on the ability of those skilled in the art to implement them. When the combination of technical solutions is contradictory or impossible to implement, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection claimed by this utility model.

[0025] In this application, unless otherwise expressly specified and limited, the terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.

[0026] Please refer to Figure 1A magnet assembly mechanism for a display screen includes a positioning platform 11, a feeding platform 12, a first transverse moving assembly 2, a second transverse moving assembly 3, a lifting assembly 4, a discharge suction cup 6, a vacuum suction head 7, and a mounting base 5. The positioning platform 11 supports a back shell to be assembled, the feeding platform 12 supports a magnet to be assembled, the vacuum suction head 7 picks up the magnet from the feeding platform 12 and assembles it onto the back shell, and the discharge suction cup 6 removes the assembled back shell from the positioning platform 11. The vacuum suction head 7 and the discharge suction cup 6 are both mounted on the mounting base 5, which is mounted on the second transverse moving assembly 3. The second transverse moving assembly 3 is mounted on the lifting assembly 4 and drives the mounting base 5 to move along the X-axis. The lifting assembly 4 is mounted on the first transverse moving assembly 2 and drives the second transverse moving assembly 3 to move along the Z-axis, and the first transverse moving assembly 2 drives the lifting assembly 4 to move along the Y-axis.

[0027] As can be seen from the above description, the beneficial effects of this utility model are as follows: integrating the unloading suction cup 6 and the vacuum suction head 7 onto the same mounting base 5 reduces the complexity and space occupied by the equipment, improves the overall integration and space utilization, and allows the magnet to be picked up and the back shell to be removed on the same mounting base 5, reducing downtime during assembly; through the coordinated work of the first transverse component 2, the second transverse component 3 and the lifting component 4, the mounting base 5 is able to move precisely in the X, Y and Z directions, ensuring accurate magnet picking up and precise assembly of the back shell, improving the accuracy and quality of assembly; the design of the three-axis moving component allows the equipment to adapt to back shells and magnets of different sizes and shapes, improving the flexibility and adaptability of the equipment.

[0028] Furthermore, the first lateral movement assembly 2 includes a first lateral movement support frame 21, a first lateral movement motor 22, a first lateral movement transmission belt 23, a first lateral movement slide rail 24, and a first lateral movement slider 25. The lifting assembly 4 is mounted on the first lateral movement slider 25. The first lateral movement slider 25 is slidably mounted on the first lateral movement slide rail 24 and connected to the first lateral movement transmission belt 23. The first lateral movement motor 22, the first lateral movement transmission belt 23, and the first lateral movement slide rail 24 are all mounted on the first lateral movement support frame 21. The first lateral movement motor 22 is used to drive the first lateral movement transmission belt 23. The first lateral movement slide rail 24 extends along the Y-axis direction.

[0029] As can be seen from the above description, the design of the first transverse component 2 allows the lifting component 4 to move along the Y-axis, increasing the flexibility and applicability of the assembly mechanism; the use of the first transverse motor 22 and the transmission belt provides precise drive control, ensuring the stability and reliability of the assembly process.

[0030] Furthermore, the lifting assembly 4 includes a lifting support frame 41, a lifting cylinder 42, a lifting slide rail 43, and a lifting slider 44. The lifting support frame 41 is installed on the first transverse assembly 2. The lifting cylinder 42 and the lifting slide rail 43 are installed on the lifting support frame 41. The lifting slide rail 43 extends along the Z-axis direction. The lifting slider 44 is slidably installed on the lifting slide rail 43. The lifting cylinder 42 is used to drive the lifting slider 44 to slide. The second transverse assembly 3 is installed on the lifting slider 44.

[0031] As can be seen from the above description, the design of the lifting component 4 allows the second transverse component 3 to move along the Z-axis, further improving the flexibility of the assembly mechanism; the use of the lifting cylinder 42 provides fast and stable lifting action, improving assembly efficiency.

[0032] Furthermore, the first transverse component 2 includes a second transverse support frame 31, a second transverse motor 32, a second transverse transmission belt 33, a second transverse slide rail 34, and a second transverse slider 35. The second transverse support frame 31 is mounted on the lifting component 4. The second transverse motor 32, the second transverse transmission belt 33, and the second transverse slide rail 34 are all mounted on the second transverse support frame 31. The second transverse slider 35 is slidably mounted on the second transverse slide rail 34 and connected to the second transverse transmission belt 33. The second transverse motor 32 is used to drive the second transverse transmission belt 33. The second transverse motor 32 extends along the X-axis direction. The mounting base 5 is mounted on the second transverse slider 35.

[0033] As described above, the design of the second transverse component 3 allows the mounting base 5 to move along the X-axis, achieving precise positioning in the X-axis direction; the use of the second transverse motor 32 and the transmission belt provides precise drive control, ensuring the stability and reliability of the assembly process.

[0034] Furthermore, the feeding suction cup 6 is detachably mounted on the mounting base 5.

[0035] As can be seen from the above description, the detachable design of the feeding suction cup 6 makes maintenance and replacement more convenient and reduces maintenance costs; the detachable design also allows the feeding suction cup 6 to be quickly adjusted according to different back shell sizes, improving the adaptability of the equipment.

[0036] Furthermore, the vacuum suction head 7 is detachably mounted on the mounting base 5.

[0037] As can be seen from the above description, the detachable design of the vacuum head 7 also provides convenience for maintenance and replacement, reducing maintenance costs; the detachable design also allows the vacuum head 7 to be quickly adjusted according to different magnet sizes, improving the adaptability of the equipment.

[0038] Furthermore, the number of vacuum suction heads 7 is multiple.

[0039] As can be seen from the above description, designing multiple vacuum heads 7 can simultaneously pick up multiple magnets, significantly improving assembly efficiency; the design of multiple vacuum heads 7 also provides better balance and stability, reducing errors in the assembly process.

[0040] Furthermore, the mounting base 5 is also provided with a clamping structure 8, which includes a clamping cylinder 81 and a clamping seat 82. The output shaft of the clamping cylinder 81 is connected to the clamping seat 82 and is used to drive the clamping seat 82 to move along the Z-axis direction. The vacuum suction head 7 is mounted on the clamping seat 82.

[0041] As can be seen from the above description, the design of the clamping structure 8 can ensure the magnet is firmly fixed during the assembly process, thus improving the assembly quality; the use of the clamping cylinder 81 provides precise pressure control, ensuring the stability and reliability of the assembly.

[0042] Furthermore, the mounting base 5 is provided with a plurality of the clamping structures 8.

[0043] As can be seen from the above description, designing multiple clamping structures 8 can fix multiple magnets at the same time, further improving assembly efficiency; the design of multiple clamping structures 8 also provides better balance and stability, reduces errors in the assembly process, and ensures assembly quality.

[0044] Example 1

[0045] Please refer to Figure 1Embodiment 1 of this utility model is: a magnet assembly mechanism for a display screen, including a machine base 1, a positioning platform 11, a feeding platform 12, a first transverse moving assembly 2, a second transverse moving assembly 3, a lifting assembly 4, a feeding suction cup 6, a vacuum suction head 7, and a mounting base 5. The positioning platform 11, the feeding platform 12, and the first transverse moving assembly 2 are all mounted on the machine base 1. The positioning platform 11 is used to support the back shell to be assembled, the feeding platform 12 is used to support the magnet to be assembled, the vacuum suction head 7 is used to pick up the magnet on the feeding platform 12 and assemble it onto the back shell, and the feeding suction cup 6 is used to remove the back shell with the assembled magnet from the positioning platform 11. The vacuum suction head 7 and the feeding suction cup 6 are both mounted on the mounting base 5, the mounting base 5 is mounted on the second transverse moving assembly 3, the second transverse moving assembly 3 is mounted on the lifting assembly 4 and is used to drive the mounting base 5 to move along the X-axis direction; the lifting assembly... Component 4 is installed on the first transverse component 2 and is used to drive the second transverse component 3 to move along the Z-axis. The first transverse component 2 is used to drive the lifting component 4 to move along the Y-axis. It can be understood that the magnet assembly mechanism of the display screen integrates the unloading suction cup 6 and the vacuum suction head 7 onto the same mounting base 5, which reduces the complexity of the equipment and the space occupied, improves the overall integration and space utilization, and allows the magnet to be picked up and the back cover to be removed on the same mounting base 5, reducing downtime during the assembly process. Through the coordinated work of the first transverse component 2, the second transverse component 3 and the lifting component 4, the mounting base 5 is accurately moved in the X, Y and Z directions, ensuring the accurate picking up of the magnet and the accurate assembly of the back cover, improving the accuracy and quality of the assembly. The design of the three-axis moving component allows the equipment to adapt to back covers and magnets of different sizes and shapes, improving the flexibility and adaptability of the equipment.

[0046] Preferably, the first lateral movement assembly 2 includes a first lateral movement support frame 21, a first lateral movement motor 22, a first lateral movement transmission belt 23, a first lateral movement slide rail 24, and a first lateral movement slider 25. The first lateral movement support frame 21 is mounted on the machine base 1, and the lifting assembly 4 is mounted on the first lateral movement slider 25. The first lateral movement slider 25 is slidably mounted on the first lateral movement slide rail 24 and connected to the first lateral movement transmission belt 23. The first lateral movement motor 22, the first lateral movement transmission belt 23, and the first lateral movement slide rail 24 are all mounted on the first lateral movement support frame 21. The first lateral movement motor 22 is used to drive the first lateral movement transmission belt 23, and the first lateral movement slide rail 24 extends along the Y-axis direction. It is easily understood that the design of the first lateral movement assembly 2 allows the lifting assembly 4 to move along the Y-axis direction, increasing the flexibility and applicability of the assembly mechanism. The use of the transverse motor 22 and the transmission belt provides precise drive control, ensuring the stability and reliability of the assembly process. Specifically, the lifting assembly 4 includes a lifting support frame 41, a lifting cylinder 42, a lifting slide rail 43, and a lifting slider 44. The lifting support frame 41 is mounted on the first transverse assembly 2, the lifting cylinder 42 and the lifting slide rail 43 are mounted on the lifting support frame 41, the lifting slide rail 43 extends along the Z-axis, and the lifting slider 44 is slidably mounted on the lifting slide rail 43. The lifting cylinder 42 is used to drive the lifting slider 44 to slide. The second transverse assembly 3 is mounted on the lifting slider 44. The design of the lifting assembly 4 allows the second transverse assembly 3 to move along the Z-axis, further improving the flexibility of the assembly mechanism. The use of the lifting cylinder 42 provides fast and stable lifting action, improving assembly efficiency.

[0047] Preferably, the second transverse component 3 includes a second transverse support frame 31, a second transverse motor 32, a second transverse transmission belt 33, a second transverse slide rail 34, and a second transverse slider 35. The second transverse support frame 31 is mounted on the lifting component 4. The second transverse motor 32, the second transverse transmission belt 33, and the second transverse slide rail 34 are all mounted on the second transverse support frame 31. The second transverse slider 35 is slidably mounted on the second transverse slide rail 34 and connected to the second transverse transmission belt 33. The second transverse motor 32 is used to drive the second transverse transmission belt 33. The second transverse motor 32 extends along the X-axis direction. The mounting base 5 is mounted on the second transverse slider 35. The design of the second transverse component 3 allows the mounting base 5 to move along the X-axis direction, achieving precise positioning in the X-axis direction. The use of the second transverse motor 32 and the transmission belt provides precise drive control, ensuring the stability and reliability of the assembly process.

[0048] Optionally, the unloading suction cup 6 can be detachably installed on the mounting base 5. The detachable design of the unloading suction cup 6 makes maintenance and replacement more convenient and reduces maintenance costs. The detachable design also allows the unloading suction cup 6 to be quickly adjusted according to different back shell sizes, improving the adaptability of the equipment. The vacuum suction head 7 can be detachably installed on the mounting base 5. The detachable design of the vacuum suction head 7 also provides convenience for maintenance and replacement, reducing maintenance costs. The detachable design also allows the vacuum suction head 7 to be quickly adjusted according to different magnet sizes, improving the adaptability of the equipment. Further optionally, the number of vacuum suction heads 7 can be multiple. Designing multiple vacuum suction heads 7 can simultaneously pick up multiple magnets, significantly improving assembly efficiency. The design of multiple vacuum suction heads 7 also provides better balance and stability, reducing errors during the assembly process.

[0049] In this embodiment, the mounting base 5 is further provided with a clamping structure 8, which includes a clamping cylinder 81 and a clamping seat 82. The output shaft of the clamping cylinder 81 is connected to the clamping seat 82 and is used to drive the clamping seat 82 to move along the Z-axis. The vacuum suction head 7 is mounted on the clamping seat 82. The design of the clamping structure 8 can ensure the magnet is firmly fixed during the assembly process, improving the assembly quality. The use of the clamping cylinder 81 provides precise pressure control, ensuring the stability and reliability of the assembly. Specifically, the mounting base 5 is provided with multiple clamping structures 8. The design of multiple clamping structures 8 can fix multiple magnets simultaneously, further improving assembly efficiency. The design of multiple clamping structures 8 also provides better balance and stability, reducing errors during the assembly process and ensuring assembly quality.

[0050] In summary, the magnet assembly mechanism for the display screen provided by this utility model features high integration. It integrates the feeding suction cup and vacuum suction head onto the same mounting base, reducing equipment complexity and space occupation, and improving overall integration and space utilization. It allows for magnet pickup and back cover removal on the same mounting base, reducing downtime during assembly. Through the coordinated work of the first transverse component, the second transverse component, and the lifting component, precise movement of the mounting base in the X, Y, and Z directions is achieved, ensuring accurate magnet pickup and precise back cover assembly, thus improving assembly precision and quality. The three-axis moving component design allows the equipment to adapt to back covers and magnets of different sizes and shapes, improving the equipment's flexibility and adaptability.

[0051] The above are merely optional embodiments of this utility model and do not limit the patent scope of this utility model. Any equivalent structural transformations made based on the contents of this utility model specification and drawings under the utility model concept, or direct / indirect applications in other related technical fields, are included within the patent protection scope of this utility model.

Claims

1. A magnet assembly mechanism for a display screen, characterized in that, The assembly includes a positioning platform, a feeding platform, a first transverse moving assembly, a second transverse moving assembly, a lifting assembly, a discharge suction cup, a vacuum suction head, and a mounting base. The positioning platform carries the rear shell to be assembled, the feeding platform carries the magnet to be assembled, the vacuum suction head picks up the magnet from the feeding platform and assembles it onto the rear shell, and the discharge suction cup removes the rear shell with the assembled magnet from the positioning platform. Both the vacuum suction head and the discharge suction cup are mounted on the mounting base, which is mounted on the second transverse moving assembly. The second transverse moving assembly is mounted on the lifting assembly and drives the mounting base to move along the X-axis. The lifting assembly is mounted on the first transverse moving assembly and drives the second transverse moving assembly to move along the Z-axis, and the first transverse moving assembly drives the lifting assembly to move along the Y-axis.

2. The magnet assembly mechanism for the display screen according to claim 1, characterized in that, The first lateral movement assembly includes a first lateral movement support frame, a first lateral movement motor, a first lateral movement transmission belt, a first lateral movement slide rail, and a first lateral movement slider. The lifting assembly is mounted on the first lateral movement slider. The first lateral movement slider is slidably mounted on the first lateral movement slide rail and connected to the first lateral movement transmission belt. The first lateral movement motor, the first lateral movement transmission belt, and the first lateral movement slide rail are all mounted on the first lateral movement support frame. The first lateral movement motor is used to drive the first lateral movement transmission belt. The first lateral movement slide rail extends along the Y-axis direction.

3. The magnet assembly mechanism for the display screen according to claim 1, characterized in that, The lifting assembly includes a lifting support frame, a lifting cylinder, a lifting slide rail, and a lifting slider. The lifting support frame is installed on the first transverse component. The lifting cylinder and the lifting slide rail are installed on the lifting support frame. The lifting slide rail extends along the Z-axis direction. The lifting slider is slidably installed on the lifting slide rail. The lifting cylinder is used to drive the lifting slider to slide. The second transverse component is installed on the lifting slider.

4. The magnet assembly mechanism for the display screen according to claim 1, characterized in that, The second lateral movement assembly includes a second lateral movement support frame, a second lateral movement motor, a second lateral movement transmission belt, a second lateral movement slide rail, and a second lateral movement slider. The second lateral movement support frame is mounted on the lifting assembly. The second lateral movement motor, the second lateral movement transmission belt, and the second lateral movement slide rail are all mounted on the second lateral movement support frame. The second lateral movement slider is slidably mounted on the second lateral movement slide rail and connected to the second lateral movement transmission belt. The second lateral movement motor is used to drive the second lateral movement transmission belt. The second lateral movement motor extends along the X-axis direction. The mounting base is mounted on the second lateral movement slider.

5. The magnet assembly mechanism for the display screen according to claim 1, characterized in that, The feeding suction cup can be detachably installed on the mounting base.

6. The magnet assembly mechanism for the display screen according to claim 1, characterized in that, The vacuum suction head can be detachably installed on the mounting base.

7. The magnet assembly mechanism for the display screen according to claim 1, characterized in that, The number of vacuum suction heads is multiple.

8. The magnet assembly mechanism for the display screen according to claim 1, characterized in that, The mounting base is also provided with a clamping structure, which includes a clamping cylinder and a clamping seat. The output shaft of the clamping cylinder is connected to the clamping seat and is used to drive the clamping seat to move along the Z-axis. The vacuum suction head is mounted on the clamping seat.

9. The magnet assembly mechanism for the display screen according to claim 8, characterized in that, The mounting base is provided with multiple clamping structures.