A multi-die rapid assembly LED structure

By employing detachable sealing components and flexible driving elements in the LED structure, the problems of cumbersome LED installation and poor heat dissipation are solved, achieving rapid installation, dust prevention, and efficient heat dissipation, thus extending the lifespan of the LEDs.

CN120368251BActive Publication Date: 2026-05-12ZHEJIANG WANHAO OPTOELECTRONICS TECH CO LTD +1
View PDF 1 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
ZHEJIANG WANHAO OPTOELECTRONICS TECH CO LTD
Filing Date
2025-03-20
Publication Date
2026-05-12

AI Technical Summary

Technical Problem

The existing installation method for LED beads and substrates is cumbersome and easily leads to dust or moisture entering during the disassembly process, affecting the working performance and lifespan of the beads, while also resulting in poor heat dissipation.

Method used

The device employs a detachable sealing assembly, including first and second sealing elements. The opening and closing of the sealing elements are controlled by an elastic drive element, enabling quick installation and removal of the LED beads and ensuring the ventilation of the mounting holes. The mating design of the sealing elements prevents dust from entering and accelerates heat dissipation.

Benefits of technology

It enables quick installation and removal of LED chips, prevents dust from entering, improves heat dissipation efficiency, extends the lifespan of LED chips, and ensures the stability of electrical connections.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120368251B_ABST
    Figure CN120368251B_ABST
Patent Text Reader

Abstract

The application relates to the technical field of LED plate assembly, in particular to a multi-lamp-bead quick-assembly LED structure which comprises an LED plate, a plurality of mounting holes are formed in the LED plate, and lamp beads are detachably mounted in the mounting holes; the structure further comprises a plugging assembly arranged in the mounting holes, the plugging assembly comprises a first plugging piece and a second plugging piece arranged at two ends of the mounting hole, the first plugging piece is directionally slid through a limiting groove arranged on the side wall of the mounting hole, a connecting shaft arranged on the second plugging piece is inserted into a connecting sleeve mounted at the bottom of the first plugging piece; and an elastic driving piece is mounted on the second plugging piece and is slidably connected with the connecting sleeve; the first plugging piece is extruded by the lamp beads inserted into the mounting hole, the first plugging piece is moved relative to the side wall of the mounting hole, the elastic driving piece is extruded, the opening and closing of the first plugging piece is controlled, and the opening and closing of the second plugging piece is controlled when the first plugging piece rebounds.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention relates to the technical field of LED board assembly, specifically an LED structure for rapid assembly of multiple LED chips. Background Technology

[0002] LED chips generate heat during operation. If this heat cannot be dissipated effectively, the LED chip's temperature will rise, affecting its luminous efficiency and lifespan. Aluminum substrates, due to their excellent thermal conductivity, can quickly conduct the heat generated by the LED chips away, reducing their operating temperature and preventing performance degradation or damage caused by high temperatures. Furthermore, aluminum substrates also possess good electrical insulation and processability, ensuring effective heat dissipation while meeting the safety and structural design flexibility requirements of electronic products.

[0003] Traditionally, when connecting LED chips to the substrate after production, solder paste is evenly applied to the soldering area on the substrate. The LED is placed on the solder paste-coated area, and the substrate is heated to a minimum of around 200 degrees Celsius, depending on the amount of solder paste. At this temperature, the solder paste melts, and the LED chip is then soldered onto the aluminum substrate. If the solder joint is damaged, the damaged LED chip must be removed from the substrate and replaced with one of the same specifications. This cumbersome replacement process increases workload, and there is a risk of damaging other working LED chips during the replacement process. Therefore, existing LED chips and substrates are installed using a detachable installation method. However, when not installed, the mounting holes inside the substrate are prone to dust or moisture accumulation, which may affect the LED chip's operation when powered on. Summary of the Invention

[0004] The purpose of this invention is to provide an LED structure for rapid assembly of multiple LED chips, so as to solve the problems mentioned in the background art.

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

[0006] An LED structure for rapid assembly of multiple LED chips includes a substrate on which multiple mounting holes are formed, and LED chips are detachably mounted in the mounting holes.

[0007] It also includes a sealing assembly disposed in the mounting hole. The sealing assembly includes a first sealing member and a second sealing member disposed at both ends of the mounting hole. The first sealing member slides in a direction through a limiting groove disposed on the side wall of the mounting hole. The connecting shaft disposed on the second sealing member is inserted into a connecting sleeve disposed at the bottom of the first sealing member.

[0008] An elastic drive element is mounted on the second sealing element, and the connecting sleeve is slidably connected. When the first sealing element moves relative to the side wall of the mounting hole, it compresses the elastic drive element to control the opening and closing of the first sealing element. When the first sealing element rebounds, it controls the opening and closing of the second sealing element.

[0009] The LED structure for rapid assembly of multiple LED beads as described above: The first sealing component includes a first sealing plate and a second sealing plate arranged axially along the mounting hole. The first sealing plate is provided with at least one set of strip blocks that slide in cooperation with the limiting groove. The connecting sleeve is arranged axially along the first sealing plate and rotatably connected to the second sealing plate. The first sealing plate and the second sealing plate abut against each other.

[0010] As described above, the LED structure for rapid assembly of multiple LED beads has the following characteristics: a cylindrical cavity is formed inside the connecting sleeve; one end of the connecting shaft away from the second sealing member passes through the elastic driving member and is slidably disposed inside the cylindrical cavity; a first sliding groove is formed inside the cylindrical cavity; and the first sliding groove is slidably engaged with a second ball bearing that is rolled on the connecting shaft.

[0011] As described above, the LED structure for rapid assembly of multiple LED beads includes a second sealing member comprising a third sealing plate and a fourth sealing plate arranged axially along the mounting hole. The third sealing plate is sealed and fixedly connected to the side wall of the mounting hole, and the connecting shaft is arranged axially along the fourth sealing plate and rotatably connected to the third sealing plate.

[0012] As described above, the LED structure for rapid assembly of multiple LED beads includes: the elastic drive component includes a sleeve fixedly installed on the third sealing plate, a second sliding groove is formed inside the sleeve, and the second sliding groove slides in cooperation with a first ball ball disposed on the outer wall of the connecting sleeve;

[0013] It also includes a first spring, which is disposed inside the sleeve. One end of the first spring abuts against the bottom of the inner side of the sleeve, and the other end abuts against the connecting sleeve.

[0014] As described above, the LED structure for rapid assembly of multiple LED beads is as follows: telescopic components are symmetrically arranged on the extension block at the bottom of the sleeve. The telescopic components include a connector and a connecting rod. One end of the connector is fixedly connected to the extension block, and the other end is slidably provided with the connecting rod. The end of the connecting rod away from the connector is fixedly connected to the second sealing plate.

[0015] The LED structure for rapid assembly of multiple LED beads as described above: the bottom of each LED bead is provided with a connector that matches the mounting hole, and locking grooves are symmetrically provided on the connector.

[0016] As described above, the LED structure for rapid assembly of multiple LED beads has the following features: a second conductive sheet symmetrically arranged on the connector head, and a first conductive sheet adapted to the second conductive sheet on the inner wall of the mounting hole.

[0017] The LED structure for rapid assembly of multiple LED beads as described above: symmetrical insertion slots are provided on the mounting holes, and locking components that can be inserted into the locking slots are provided in the insertion slots.

[0018] The LED structure for rapid assembly of multiple LED beads as described above: the locking component includes a movable plate, one end of which is slidably disposed in the insertion slot, and the other end is rotatably connected to a pulley, which can be inserted into the locking slot;

[0019] It also includes a second spring, which is disposed in the insertion slot. One end of the second spring abuts against the movable plate, and the other end abuts against the bottom of the insertion slot.

[0020] Compared with the prior art, the beneficial effects of the present invention are as follows: by inserting the LED bead into the mounting hole, the first sealing member is squeezed. When the first sealing member moves relative to the side wall of the mounting hole, it squeezes the elastic drive member to control the opening and closing of the first sealing member. When the first sealing member rebounds, the opening and closing of the second sealing member is controlled. This allows the LED bead and LED board to be quickly disassembled and installed while controlling the opening and closing of the mounting hole. This prevents dust from entering when not installed and allows air circulation in the mounting hole after installation, ensuring that the heat generated by the LED bead dissipates more quickly when it is working. Attached Figure Description

[0021] Figure 1 This is a schematic diagram of an LED structure for rapid assembly of multiple LED chips.

[0022] Figure 2 This is a schematic diagram of the mounting holes in an LED structure for rapid assembly of multiple LED chips.

[0023] Figure 3 This is a schematic diagram of the bottom of the substrate in an LED structure for rapid assembly of multiple LED chips.

[0024] Figure 4 This is a schematic diagram of the LED structure used in a multi-LED rapid assembly system.

[0025] Figure 5 This is a schematic diagram of the first and second sealing components in an LED structure for rapid assembly of multiple LED beads.

[0026] Figure 6 This is a schematic diagram of the first sealing plate, the second sealing plate, and the elastic driving component in an LED structure for rapid assembly of multiple LED beads.

[0027] Figure 7 This is a schematic diagram of the internal structure of the sleeve in an LED structure for rapid assembly of multiple LED chips.

[0028] Figure 8 This is a schematic diagram of the third and fourth sealing plates in an LED structure for rapid assembly of multiple LED beads.

[0029] Figure 9 This is a schematic diagram of the internal structure of the connecting sleeve in an LED structure for rapid assembly of multiple LED chips.

[0030] Figure 10 This is a schematic diagram of the locking mechanism in an LED structure designed for rapid assembly of multiple LED chips.

[0031] In the diagram: 1. Base plate; 101. Mounting hole; 102. Limiting groove; 103. First conductive sheet; 2. LED bead; 3. Connector; 301. Second conductive sheet; 302. Locking groove; 4. First sealing plate; 401. Strip block; 5. Second sealing plate; 6. Connecting sleeve; 601. First ball bearing; 7. Sleeve; 701. Second sliding groove; 8. Insertion pipe; 9. Insertion rod; 10. First spring; 11. Third sealing plate; 12. Fourth sealing plate; 13. Damping sleeve; 14. Connecting shaft; 1401. Second ball bearing; 15. Pulley; 16. Movable plate; 17. Second spring. Detailed Implementation

[0032] Various exemplary embodiments, features, and aspects of this application will now be described in detail with reference to the accompanying drawings. The same reference numerals in the drawings denote elements that have the same or similar functions. Although various aspects of the embodiments are shown in the drawings, they are not necessarily drawn to scale unless specifically indicated otherwise.

[0033] The term “exemplary” as used herein means “serving as an example, embodiment, or illustration.” Any embodiment illustrated herein as “exemplary” is not necessarily to be construed as superior to or better than other embodiments.

[0034] Furthermore, to better illustrate this application, numerous specific details are provided in the following detailed embodiments. Those skilled in the art should understand that this application can be implemented even without certain specific details. In some instances, methods, means, and elements well-known to those skilled in the art have not been described in detail in order to highlight the main points of this application.

[0035] Please see Figures 1-10 In this embodiment of the invention, an LED structure for rapid assembly of multiple LED beads includes a substrate 1, mounting holes 101, LED beads 2, connecting sleeves 6, connecting shafts 14, limiting grooves 102, a first sealing member, a second sealing member, and an elastic driving member.

[0036] For details, please refer to the following: Figure 1 , Figure 2 , Figure 5 , Figure 6 ,include;

[0037] Includes a substrate 1, on which a plurality of mounting holes 101 are formed, and an LED bead 2 is detachably mounted in the mounting holes 101;

[0038] It also includes a sealing assembly disposed in the mounting hole 101. The sealing assembly includes a first sealing member and a second sealing member disposed at both ends of the mounting hole 101. The first sealing member slides in a direction through a limiting groove 102 disposed on the side wall of the mounting hole 101. The connecting shaft 14 disposed on the second sealing member is inserted into the connecting sleeve 6 disposed at the bottom of the first sealing member.

[0039] An elastic drive is mounted on the second sealing member and slidably connected to the connecting sleeve 6. When the first sealing member moves relative to the side wall of the mounting hole 101, it compresses the elastic drive to control the opening and closing of the first sealing member. When the first sealing member rebounds, it controls the opening and closing of the second sealing member.

[0040] In detail, in this embodiment, the LED structure of rapid assembly of multiple LED beads described in this invention is used. During use, by aligning the LED bead 2 with the mounting hole 101 and inserting it into the mounting hole 101, the first sealing member is compressed, causing it to slide relative to the mounting hole 101. When the first sealing member moves, it drives the connecting sleeve 6 to move synchronously, thereby compressing the elastic driving member to deform and rotate relative to the second sealing member, thus acting on the first sealing member and releasing it from its sealing state. When the elastic driving member is compressed to a fully compressed state, controlling the rotation of the LED bead 2 can drive the first sealing member to move. The first sealing component and the elastic drive component rotate synchronously until the position of the LED bead 2 is locked and then the pressing stops. Under the action of the elastic drive component, the first sealing component rebounds. At this time, the first sealing component is in a completely unsealed state, while the second sealing component is unsealed under the action of the connecting sleeve 6 and the connecting shaft 14. This allows the LED bead 2 to be quickly disassembled and installed from the substrate 1, while controlling the opening and closing of the mounting hole 101. This prevents dust from entering when not installed and allows air circulation in the mounting hole 101 after installation, ensuring that the LED bead 2 can work and further accelerate the dissipation of heat generated by the LED bead 2.

[0041] It should be noted that the first and second sealing components release their sealing states at different times. The force driving the first sealing component to release its sealing state is mainly controlled by human intervention, while the force driving the second sealing component to release its sealing state relies on the elastic potential energy stored in the elastic driving force itself. When the first sealing component rebounds, it drives the second sealing component to release its sealing state.

[0042] Please see Figure 5The first sealing component includes a first sealing plate 4 and a second sealing plate 5 axially arranged along the mounting hole 101. The first sealing plate 4 is provided with at least one set of strip blocks 401 that slide in cooperation with the limiting groove 102. The connecting sleeve 6 is arranged axially along the first sealing plate 4 and rotatably connected to the second sealing plate 5. The first sealing plate 4 and the second sealing plate 5 abut against each other.

[0043] Preferably, the first sealing plate 4 has symmetrically arranged fan-shaped grooves, which are adapted to the shape of the second sealing plate 5. When the second sealing plate 5 is aligned with the fan-shaped grooves, the first sealing plate 4 and the second sealing plate 5 cooperate to perform sealing work to prevent external dust from entering the mounting hole 101 when the lamp bead 2 is not installed.

[0044] In detail, when the LED bead 2 is installed, it squeezes the first sealing plate 4, causing the first sealing plate 4 to move. With the cooperation of the limiting groove 102 and the strip block 401, the first sealing plate 4 moves directionally relative to the inner wall of the mounting hole 101. The limiting groove 102 is divided into a first strip groove, a second arc groove, and a third strip groove. When the first sealing plate 4 moves downward, the strip block 401 always slides in the first strip groove. The connecting sleeve 6 squeezes the elastic drive member, causing the elastic drive member to control the second sealing plate 5 to rotate. At this time, the second sealing plate 5 rotates to a position that is offset from the fan-shaped groove. However, when the strip block 401 slides to the bottom of the first strip groove, the rotation angle of the second sealing plate 5 is too large, causing the second sealing plate 5 to overlap with the fan-shaped groove. At this time, the first sealing plate 4 and the second sealing plate 5 are not completely unsealed.

[0045] Please see Figure 6 and Figure 9 The connecting sleeve 6 has a cylindrical cavity, and the end of the connecting shaft 14 away from the second sealing member passes through the elastic drive member and is slidably disposed in the cylindrical cavity. A first sliding groove 602 is formed in the cylindrical cavity, and the first sliding groove 602 is slidably engaged with a second ball bearing 1401 that is rolled on the connecting shaft 14.

[0046] The second sealing component includes a third sealing plate 11 and a fourth sealing plate 12 arranged axially along the mounting hole 101. The third sealing plate 11 is sealed and fixedly connected to the side wall of the mounting hole 101. The connecting shaft 14 is arranged axially along the fourth sealing plate 12 and rotatably connected to the third sealing plate 11.

[0047] Preferably, a damping sleeve 13 is provided between the connecting shaft 14 and the third sealing plate 11.

[0048] It should be noted that the first groove 602 is divided into a horizontal groove A, an arc groove B, and a threaded groove C. When the connecting sleeve 6 moves down, the second ball 1401 always moves in the horizontal groove A. At this time, the downward movement of the connecting sleeve 6 does not affect the connecting shaft 14. When the control lamp bead 2 rotates and drives the first sealing plate 4 to rotate synchronously, the strip block 401 slides in the second arc groove, and the connecting sleeve 6 rotates accordingly. At this time, the second ball 1401 is slidably set in the arc groove B. Under the action of the damping sleeve 13, it can prevent the connecting sleeve 6 from rotating synchronously and driving the connecting shaft 14 to rotate synchronously.

[0049] When the LED bead 2 stops pressing after being locked, the first sealing plate 4 loses its pressure. Under the action of the elastic drive, the first sealing plate 4 springs back and moves upward. At this time, the strip block 401 slides in the third strip groove, while the second ball 1401 slides into the C thread groove. When the connecting sleeve 6 moves, the second ball 1401 exerts an inclined pressing force on the C thread groove, causing the connecting shaft 14 to rotate. When the connecting shaft 14 rotates, it drives the fourth sealing plate 12 to rotate synchronously. The third sealing plate 11 and the fourth sealing plate 12 are respectively formed with fan-shaped grooves. When the fan-shaped grooves on the third sealing plate 11 and the fourth sealing plate 12 are completely misaligned, the third sealing plate 11 and the fourth sealing plate 12 perform the sealing work. When the third sealing plate 11 rotates, it can drive the fan-shaped grooves on the third sealing plate 11 and the fourth sealing plate 12 to be completely aligned, so as to completely release the sealing state of the third sealing plate 11 and the fourth sealing plate 12.

[0050] Please see Figure 6 and Figure 7 The elastic drive component includes a sleeve 7 fixedly installed on the third sealing plate 11. A second sliding groove 701 is formed inside the sleeve 7. The second sliding groove 701 slides in cooperation with a first ball 601 on the outer wall of the connecting sleeve 6.

[0051] It also includes a first spring 10, which is disposed inside the sleeve 7. One end of the first spring 10 abuts against the bottom of the inner side of the sleeve 7, and the other end abuts against the connecting sleeve 6.

[0052] The extension block at the bottom of the sleeve 7 is symmetrically provided with telescopic components. The telescopic components include a plug tube 8 and a plug rod 9. One end of the plug tube 8 is fixedly connected to the extension block, and the other end is slidably provided with the plug rod 9. The end of the plug rod 9 away from the plug tube 8 is fixedly connected to the second sealing plate 5.

[0053] Preferably, the second groove 701 is a threaded groove, and the thread direction of the threaded groove is the same as the direction of the second arc-shaped groove.

[0054] Initially, the first spring 10 is in a compressed state. When the connecting sleeve 6 moves, it compresses the first spring 10 again, causing the first spring 10 to continue to be compressed and store elastic potential energy. At this time, with the cooperation of the first ball 601 and the second slide groove 701, the connecting sleeve 6 moves and drives the sleeve 7 to rotate. When the sleeve 7 rotates, under the action of the insertion pipe 8 and the insertion rod 9, it drives the second sealing plate 5 to rotate relative to the first sealing plate 4. When the first ball 601 moves to the bottom of the second slide groove 701, the fan-shaped groove on the first sealing plate 4 overlaps with the second sealing plate 5, so that the sealing state on the first sealing plate 4 and the second sealing plate 5 is not completely released.

[0055] When the strip block 401 moves to the bottom of the first strip groove, the first spring 10 is in a fully compressed state, but the position of the lamp bead 2 in the mounting hole 101 is not yet locked. When the lamp bead 2 is rotated, it can drive the first sealing plate 4 to rotate synchronously, so that the strip block 401 slides into the second arc groove. When the strip block 401 moves to the end of the second arc groove, regardless of whether the lamp bead 2 is locked at this time, the first sealing plate 4 cannot rotate under the restriction of the end of the second arc groove. The lamp bead 2 continues to rotate until it is locked. Then, the pressing and rotation of the lamp bead 2 is stopped. Under the elastic action of the first spring 10, the first sealing plate 4 rebounds upward. At this time, the strip block 401 slides in the third strip groove. Under the restriction of the top of the third strip groove, the locking work of the first sealing plate 4 and the mounting hole 101 is realized.

[0056] Please see Figure 4 The bottom of the lamp bead 2 is provided with a connector 3 that is adapted to the mounting hole 101, and the connector 3 is symmetrically provided with locking grooves 302.

[0057] The detachable installation of the LED bead 2 and the substrate 1 is achieved by inserting the connector 3 into the mounting hole 101. When the connector 3 is inserted into the mounting hole 101 and locked with the mounting hole 101, the mounting hole 101 is driven to release the blockage state, so that even after the connector 3 is installed in the mounting hole 101, it can still communicate with the outside world, thereby quickly reducing the heat emitted by the LED bead 2 when it is working.

[0058] Please see Figure 4 The connector 3 is symmetrically provided with a second conductive sheet 301, and the inner wall of the mounting hole 101 is provided with a first conductive sheet 103 that is adapted to the second conductive sheet 301.

[0059] When connector 3 is inserted into mounting hole 101, the second conductive piece 301 can slide to abut against the first conductive piece 103 while the locking member locks connector 3. After the second conductive piece 301 abuts against the first conductive piece 103, multiple LED beads 2 can be connected in series.

[0060] Please see Figure 2 , Figure 4 and Figure 10 The mounting hole 101 is symmetrically provided with insertion slots, and a locking member that can be inserted into the locking slot 302 is provided in the insertion slot.

[0061] The locking component includes a movable plate 16, one end of which is slidably disposed in the insertion groove, and the other end is rotatably connected to a pulley 15, which can be inserted into the locking groove 302.

[0062] It also includes a second spring 17, which is disposed in the insertion slot. One end of the second spring 17 abuts against the movable plate 16, and the other end abuts against the bottom of the insertion slot.

[0063] Furthermore, when the first sealing plate 4 moves downward, it compresses the pulley 15. The pulley 15, under this compression, moves the movable plate 16 towards the insertion slot, compressing the second spring 17 and storing its elastic potential energy. After the first sealing plate 4 disengages from the pulley 15, the pulley 15 is again compressed by the connector 3, keeping it in a yielding state. Subsequently, when the strip block 401 moves to the end of the second arc-shaped groove, regardless of whether the locking groove 302 on the connector 3 rotates to align with the pulley 15, the first sealing plate 4 cannot rotate further until the locking groove 302 on the connector 3 aligns with the pulley 15. Then, the force applied to the connector 3 is stopped, and the first sealing plate 4 rebounds under the elastic action of the first spring 10, causing the strip block 401 to slide in the third strip groove. When the first sealing plate 4 rebounds, it squeezes the connector 3. When the connector 3 moves upward, the locking groove 302 moves relative to the pulley 15, but the pulley 15 is always inserted in the locking groove 302. When the end of the locking groove 302 moves to abut against the pulley 15, the strip block 401 can no longer move due to the restriction at the end of the third strip groove. This restricts the position of the first sealing plate 4 and achieves the locking operation between the connector 3 and the mounting hole 101.

[0064] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.

[0065] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. An LED structure for rapid assembly of multiple LED beads, comprising a substrate (1), wherein a plurality of mounting holes (101) are formed on the substrate (1), and LED beads (2) are detachably mounted in the mounting holes (101), characterized in that... ; It also includes a sealing assembly disposed in the mounting hole (101). The sealing assembly includes a first sealing member and a second sealing member disposed at both ends of the mounting hole (101). The first sealing member slides in a direction through a limiting groove (102) disposed on the side wall of the mounting hole (101). The connecting shaft (14) disposed on the second sealing member is inserted into the connecting sleeve (6) disposed at the bottom of the first sealing member. An elastic drive is installed on the second sealing member, and the connecting sleeve (6) is slidably connected. When the first sealing member moves relative to the side wall of the mounting hole (101), it squeezes the elastic drive to control the opening and closing of the first sealing member, and controls the opening and closing of the second sealing member when the first sealing member rebounds. The first sealing component includes a first sealing plate (4) and a second sealing plate (5) axially arranged along the mounting hole (101). The first sealing plate (4) is provided with at least one set of strip blocks (401) that slide in cooperation with the limiting groove (102). The connecting sleeve (6) is arranged axially along the first sealing plate (4) and rotatably connected to the second sealing plate (5). The first sealing plate (4) and the second sealing plate (5) abut against each other. The second sealing component includes a third sealing plate (11) and a fourth sealing plate (12) arranged axially along the mounting hole (101). The third sealing plate (11) is sealed and fixedly connected to the side wall of the mounting hole (101). The connecting shaft (14) is arranged axially along the fourth sealing plate (12) and rotatably connected to the third sealing plate (11). The elastic drive component includes a sleeve (7) fixedly installed on the third sealing plate (11), and a second sliding groove (701) is formed inside the sleeve (7). The second sliding groove (701) slides in cooperation with a first ball (601) on the outer wall of the connecting sleeve (6). It also includes a first spring (10), which is disposed inside the sleeve (7). One end of the first spring (10) abuts against the bottom of the inner side of the sleeve (7), and the other end abuts against the connecting sleeve (6). The extension block at the bottom of the sleeve (7) is symmetrically provided with telescopic components. The telescopic components include a plug tube (8) and a plug rod (9). One end of the plug tube (8) is fixedly connected to the extension block, and the other end is slidably provided with the plug rod (9). The end of the plug rod (9) away from the plug tube (8) is fixedly connected to the second sealing plate (5).

2. The LED structure for rapid assembly of multiple LED beads according to claim 1, characterized in that, A cylindrical cavity is formed inside the connecting sleeve (6). The end of the connecting shaft (14) away from the second sealing member passes through the elastic drive member and is slidably disposed in the cylindrical cavity. A first sliding groove (602) is formed inside the cylindrical cavity. The first sliding groove (602) is slidably engaged with a second ball (1401) that is rolled on the connecting shaft (14).

3. The LED structure for rapid assembly of multiple LED beads according to claim 1, characterized in that, The bottom of the lamp bead (2) is provided with a connector (3) that is adapted to the mounting hole (101), and the connector (3) is provided with locking grooves (302) symmetrically.

4. The LED structure for rapid assembly of multiple LED beads according to claim 3, characterized in that, The connector (3) is symmetrically provided with a second conductive sheet (301), and the inner wall of the mounting hole (101) is provided with a first conductive sheet (103) that is adapted to the second conductive sheet (301).

5. The LED structure for rapid assembly of multiple LED beads according to claim 3, characterized in that, The mounting hole (101) is symmetrically provided with insertion slots, and the insertion slots are provided with locking members that can be inserted into the locking slots (302).

6. The LED structure for rapid assembly of multiple LED beads according to claim 5, characterized in that, The locking component includes a movable plate (16), one end of which is slidably disposed in the insertion groove, and the other end is rotatably connected to a pulley (15), which can be inserted into the locking groove (302); It also includes a second spring (17), which is disposed in the insertion slot. One end of the second spring (17) abuts against the movable plate (16), and the other end abuts against the bottom of the insertion slot.