A lamp strip winding processing device
By adopting a single-cylinder driven loading and unloading mechanism in the LED strip winding processing equipment, combined with the wedge transmission of the wedge frame and the lifting frame, the synchronous operation of winding feeding and loading and unloading is realized, solving the problems of complex power structure and low production efficiency of the equipment, and realizing efficient automated production.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- ZHONGSHAN WEILAI LIGHTING CO LTD
- Filing Date
- 2026-03-17
- Publication Date
- 2026-06-05
AI Technical Summary
The existing LED strip winding processing equipment has two independent drive systems controlling the winding feed action and the loading and unloading transfer action, which results in a complex power structure, high cost, insufficient synchronization accuracy, easy to cause mechanical interference, and low production efficiency.
Using a single cylinder as the core drive source, the cylinders of the loading and unloading mechanism, the lifting frame and the traction component are linked together. Combined with the reversing of the fixed pulley and the rigid transmission of the traction rope, the synchronous operation of winding feeding and loading and unloading is realized. The wedge transmission of the wedge frame and the lifting frame is used to eliminate the mechanism interference caused by the synchronization deviation and simplify the power system.
The entire process of LED strip winding processing equipment has been automated, eliminating the risk of mechanical interference caused by synchronization deviation, shortening the single cycle operation, and improving production efficiency.
Smart Images

Figure CN122144565A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of winding processing, and in particular to a device for winding LED strips. Background Technology
[0002] Currently, most conventional LED strip winding processing equipment on the market is equipped with basic functional components such as a drive mechanism, winding rollers, and loading / unloading mechanisms. The drive mechanism drives the winding rollers to rotate, achieving continuous winding of the LED strips. Some more automated equipment is also equipped with auxiliary modules such as tension control mechanisms and correction mechanisms to adapt to the winding processing needs of LED strips of different specifications and thicknesses, realizing continuous and batch production of LED strips. However, existing LED strip winding processing equipment still has certain shortcomings:
[0003] Firstly, the winding and feeding actions and the loading and unloading actions of the equipment are mostly controlled by two independent drive systems. This not only makes the overall power structure of the equipment complex and increases manufacturing and maintenance costs, but also requires a complex synchronous control system to match the timing of the two sets of actions. This can easily lead to action deviations due to insufficient synchronization accuracy, causing problems such as mechanical interference. In order to avoid interference, safety redundancy is often set between the three actions of loading, winding and unloading. This means that after each action is completed, a short pause is required before the next action to prevent mechanical interference. This safety redundancy increases unnecessary time loss. In mass production, the cumulative safety redundancy between each action leads to a longer overall production cycle, which means that production efficiency needs to be improved. Summary of the Invention
[0004] In view of the problem that the winding feeding action and the loading and unloading transfer action in the above or existing technologies are controlled by two independent drive systems, the present invention is proposed.
[0005] Therefore, the purpose of this invention is to provide a light strip winding processing device.
[0006] To solve the above-mentioned technical problems, the present invention provides the following technical solution:
[0007] A light strip winding processing equipment, comprising,
[0008] The machine body and the gantry frame fixedly mounted on the machine body, the gantry frame is fixedly mounted with a support frame, the support frame is fixedly mounted with a cylinder, and the cylinder output end is fixedly mounted with a lifting frame;
[0009] The loading and unloading mechanism is installed on the machine body, and the loading and unloading mechanism includes...
[0010] A sliding support assembly that slidably supports the winding roller and controls its movement between a loading position and a unloading position;
[0011] A traction assembly, which is used to traction the sliding support assembly for loading or unloading materials;
[0012] A lifting assembly and a wedge frame, the wedge frame being used to cooperate with the lifting assembly; when the sliding support assembly moves to the unloading position, the lifting frame contacts the wedge frame and rises along its inclined surface, thereby lifting the winding roller away from the support platform.
[0013] As a preferred embodiment of the LED strip winding processing equipment of the present invention, the sliding support assembly includes two pairs of mounting plates fixedly installed on the machine body, a plurality of guide rods are installed between the same pair of mounting plates, and a sliding seat is slidably installed on the outer side of the plurality of guide rods.
[0014] In a preferred embodiment of the LED strip winding processing equipment of the present invention, a reset spring is fixedly installed between the sliding seat and the mounting plate, and the reset spring is set on the outside of the corresponding guide rod.
[0015] In a preferred embodiment of the LED strip winding processing equipment of the present invention, a support platform is installed between two sliding seats, a rotary table is rotatably installed on the support platform, and the winding roller is placed on the rotary table and slides with the rotary table through a spline.
[0016] As a preferred embodiment of the LED strip winding processing equipment of the present invention, the traction component includes several fixed pulleys I fixedly installed, several fixed pulleys II fixedly installed on the gantry frame, and the same traction rope is wound around the outer side of the fixed pulleys I and II located on the same side, and the two ends of the traction rope are fixedly connected to the lifting frame and the support platform respectively.
[0017] As a preferred embodiment of the LED strip winding processing equipment of the present invention, the lifting assembly is configured as two sets of mutually symmetrical components along the sliding direction of the support platform. The lifting assembly includes several return springs two fixedly installed on the support platform. The ends of the several return springs two are jointly installed with a lifting frame. The lifting frame is inclined on the side away from the gantry.
[0018] As a preferred embodiment of the LED strip winding processing equipment of the present invention, two wedge-shaped frames that are symmetrical to each other along the sliding direction of the support platform are fixedly installed on the machine body, and the wedge-shaped frames are wedge-shapedly engaged with the corresponding lifting frames.
[0019] As a preferred embodiment of the LED strip winding processing equipment of the present invention, a plurality of limiting rods are fixedly installed on the lifting frame and the sliding through support platform, and the reset springs are sleeved on the outside of the corresponding limiting rods.
[0020] As a preferred embodiment of the LED strip winding processing equipment of the present invention, the sliding seat is provided with a clamping part, the clamping part includes two clamping arms that are symmetrical to each other, and the rotation shafts of the two clamping arms are connected by gear transmission.
[0021] As a preferred embodiment of the LED strip winding processing equipment of the present invention, wherein: an electric push rod is fixedly installed on the sliding seat, the output end of the electric push rod is hinged to the rotation shaft of the clamping arm, a drive motor is fixedly installed on the lifting frame, the output shaft of the drive motor is slidably engaged with the winding roller through a spline, and a rotating plate is rotatably installed at the bottom of the lifting frame.
[0022] The beneficial effects of the LED strip winding processing equipment of the present invention are as follows:
[0023] In this application, a single cylinder is used as the core drive source. By setting up a loading and unloading mechanism, the entire process of LED strip winding loading, processing, and unloading is automated. Through the linkage of the cylinder, lifting frame, and traction component, and with the help of the fixed pulley reversal and the rigid transmission of the traction rope, and the guide sliding structure of the return spring and the sliding support component, the vertical lifting action of the lifting frame is synchronously converted into the horizontal loading and unloading feeding action of the sliding support component. At the same time, with the wedge transmission of the lifting frame and the wedge frame, the unloading and finished product lifting are synchronously connected. Only a single drive system is needed to complete the coordinated operation of winding feeding and loading and unloading. The pure mechanical cooperation achieves absolute synchronization between each action, eliminating the risk of mechanism interference caused by synchronization deviation from the root. There is no need to set up a safety redundancy stop to prevent interference, and the single cycle operation cycle is greatly shortened. Attached Figure Description
[0024] To more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings used in the following description of the embodiments will be briefly introduced. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0025] Figure 1 This is a three-dimensional structural diagram of the present invention.
[0026] Figure 2 This is a three-dimensional structural diagram of the cylinder and lifting frame of the present invention.
[0027] Figure 3 This is a three-dimensional structural diagram of the gantry frame and support frame of the present invention.
[0028] Figure 4 This is a three-dimensional structural diagram of a portion of the guide rod, sliding seat, and return spring of the present invention.
[0029] Figure 5This is a three-dimensional structural diagram of the fixed pulley 1 and fixed pulley 2 parts of the present invention.
[0030] Figure 6 This is a three-dimensional structural diagram of the clamping arm and electric push rod of the present invention.
[0031] In the diagram: 1. Machine body; 2. Loading and unloading mechanism; 21. Sliding support assembly; 211. Mounting plate; 212. Guide rod; 213. Sliding seat; 214. Return spring one; 215. Support platform; 216. Rotary table; 22. Traction assembly; 221. Fixed pulley one; 222. Fixed pulley two; 223. Traction rope; 23. Lifting assembly; 231. Return spring two; 232. Lifting frame; 233. Limiting rod; 24. Wedge frame; 3. Winding roller; 4. Gantry frame; 5. Support frame; 6. Cylinder; 7. Lifting frame; 8. Drive motor; 9. Clamping part; 91. Clamping arm; 92. Electric push rod; 10. Turning plate. Detailed Implementation
[0032] To make the above-mentioned objects, features and advantages of the present invention more apparent and understandable, the specific embodiments of the present invention will be described in detail below with reference to the accompanying drawings.
[0033] Reference Figures 1-6 This embodiment provides a light strip winding processing equipment that can achieve absolute synchronization between various actions. It includes a machine body 1 and a gantry frame 4 fixedly installed on the machine body 1. A support frame 5 is fixedly installed on the gantry frame 4, and a cylinder 6 is fixedly installed on the support frame 5. A lifting frame 7 is fixedly installed at the output end of the cylinder 6. A loading and unloading mechanism 2 is set on the machine body 1. The loading and unloading mechanism 2 includes a sliding support assembly 21, which slidably supports the winding roller 3 and controls its movement between the loading position and the unloading position; a traction assembly 22, which is used to traction the sliding support assembly 21 for loading or unloading; a lifting assembly 23 and a wedge frame 24, which is used to cooperate with the lifting assembly 23. When the sliding support assembly 21 moves to the unloading position, the lifting frame 232 contacts the wedge frame 24 and rises along its inclined surface, thereby lifting the winding roller 3 away from the support platform 215.
[0034] It should be noted that the feeding position is the winding processing station corresponding to the coaxiality of the winding roller 3 and the output shaft of the drive motor 8, and the unloading position is the finished product unloading station on the side of the winding roller 3 away from the gantry 4.
[0035] Reference Figures 2-6 The sliding support assembly 21 includes two pairs of mounting plates 211 fixedly installed on the body 1. Several guide rods 212 are installed between the same pair of mounting plates 211, and a sliding seat 213 is slidably installed on the outer side of the several guide rods 212.
[0036] Reference Figures 2-6 An electric push rod 92 is fixedly installed on the sliding seat 213. The output end of the electric push rod 92 is hinged to the rotation shaft of the clamping arm 91. A drive motor 8 is fixedly installed on the lifting frame 7. The output shaft of the drive motor 8 is slidably connected to the winding roller 3 through a spline. A rotating plate 10 is rotatably installed at the bottom of the lifting frame 7.
[0037] Reference Figures 2-6 A return spring 214 is fixedly installed between the sliding seat 213 and the mounting plate 211, and the return spring 214 is sleeved on the outside of the corresponding guide rod 212.
[0038] Reference Figures 2-6 A support platform 215 is installed between the two sliding seats 213. A rotary table 216 is rotatably installed on the support platform 215. The winding roller 3 is placed on the rotary table 216 and slides with the rotary table 216 through a spline.
[0039] Reference Figures 2-6 The traction assembly 22 includes several fixed pulleys 221 fixedly installed, and several fixed pulleys 222 fixedly installed on the gantry frame 4. The same traction rope 223 is wound around the outside of the fixed pulleys 221 and 222 on the same side. The two ends of the traction rope 223 are fixedly connected to the lifting frame 7 and the support platform 215 respectively.
[0040] Reference Figures 2-6 The sliding seat 213 is provided with a clamping part 9, which includes two clamping arms 91 that are symmetrical to each other, and the rotation shafts of the two clamping arms 91 are connected by gear transmission.
[0041] It should be noted that both fixed pulley 1 221 and fixed pulley 222 are arranged in a symmetrical double set, corresponding to the left and right sides of the equipment respectively. Fixed pulley 1 221 is fixed to the surface of the machine body 1, and fixed pulley 222 is fixed to the gantry frame 4. The traction rope 223 is a low-elongation galvanized steel wire rope. One end of the rope is fixedly connected to the lifting frame 7. After turning downwards around the fixed pulley 1 221 to the horizontal direction, the end is fixedly connected to the side of the support platform 215. This arrangement ensures that the vertical lifting displacement of the lifting frame 7 is synchronously converted into the horizontal sliding displacement of the support platform 215 through the symmetrical traction ropes 223 on both sides, avoiding During the sliding process, the support platform 215 experiences unilateral load imbalance and jamming. Simultaneously, through the reversing design of the fixed pulley, the tension of the traction rope 223 is released when the lifting frame 7 descends, and the automatic feeding of the support platform 215 is achieved in conjunction with the return spring 214. When the lifting frame 7 ascends, the traction rope 223 is re-tensioned, pulling the support platform 215 to overcome the elasticity of the return spring 214 and complete the unloading and resetting. There is no need to configure an additional horizontal drive motor 8 and transmission mechanism, which greatly simplifies the power system, reduces the equipment failure rate and manufacturing cost, and ensures the absolute synchronization of the lifting action and the loading and unloading action.
[0042] In actual use, the cylinder 6 is at the end of its fully retracted stroke, the lifting frame 7 is at the upper limit position in the vertical direction, the traction rope 223 is continuously taut by the lifting frame 7 and is in a taut state, applying a stable horizontal pulling force to the support platform 215; this pulling force overcomes the compression force of the return spring 214, pulling the sliding seat 213 to stay stably along the guide rod 212 at the unloading position away from the gantry 4, while the lifting component 23 is in the lifting and waiting state.
[0043] Next, the operator places the empty winding roller 3 on the rotary table 216 for loading. After confirming that the loading is complete, the operator starts the cylinder 6. The output end of the cylinder 6 extends and drives the lifting frame 7 to feed downward in the vertical direction. During the downward movement of the lifting frame 7, the tension of the traction rope 223 is released simultaneously. The horizontal tension of the traction rope 223 on the support platform 215 gradually decreases until it disappears. The originally compressed reset spring 214 then releases its elastic potential energy, pushing the sliding seat 213 to slide horizontally along the guide rod 212 towards the gantry 4, thereby driving the support platform 215, the rotary table 216, and the winding roller 3 placed on the rotary table 216 to feed synchronously towards the winding processing station.
[0044] After the support platform 215 is fed to the winding processing station, the output end of the cylinder 6 continues to push the lifting frame 7 down a short distance. During this process, the output shaft of the drive motor 8 is precisely inserted into the spline interface of the winding roller 3 to complete the torque transmission of the circumferential drive. At the same time, the rotating plate 10 at the bottom of the lifting frame 7 is completely in contact with the top end face of the winding roller 3, and together with the rotating table 216 below, it forms a two-way axial limit on the winding roller 3, completely restricting the axial movement of the roller during the winding process. During this process, the clamping part 9 always remains fully open without any movement interference.
[0045] After coaxial alignment is completed, the drive motor 8 starts and outputs a stable rotational torque to the winding roller 3 through spline connection, driving the winding roller 3 and the rotary table 216 to rotate synchronously and uniformly, so that the light strip sent by the front conveyor mechanism is evenly and neatly wound onto the winding roller 3. During the winding operation, the rotating plate 10 rotates synchronously with the winding roller 3, which does not interfere with the rotation of the roller body, and maintains the axial limiting effect. This provides double protection for the rotational stability of the roller body during the winding process, avoiding problems such as the light strip running off course, interlayer stacking, uneven tension, and stretching deformation.
[0046] After the winding roller 3 has finished winding, the drive motor 8 stops, and the electric push rod 92 immediately starts. Through gear transmission, it drives two sets of clamping arms 91 to close synchronously in the opposite direction, centering and clamping the shaft of the full-load winding roller 3, forming a stable radial constraint. This completely limits the radial sway space of the winding roller 3, preparing it for subsequent material unloading and movement to prevent instability. Next, the cylinder 6 retracts in the opposite direction, driving the lifting frame 7 to reset vertically. Simultaneously, the output shaft of the drive motor 8 disengages from the splined interface of the winding roller 3, preparing it for subsequent... The unloading action provides complete vertical clearance space; when the output shaft of the drive motor 8 disengages from the spline interface of the winding roller 3, during the process of the lifting frame 7 continuing to move upward and reset, the traction rope 223 is pulled again to tighten it, and a continuously increasing horizontal pulling force is applied to the support platform 215. This pulling force overcomes the elastic force of the reset spring 214, and pulls the sliding seat 213 to slide horizontally along the guide rod 212 away from the gantry 4, driving the tightly held full-material winding roller 3 to move smoothly towards the initial unloading position.
[0047] As the full-load winding roller 3 gradually moves smoothly towards the initial unloading position, before the cylinder 6 is about to fully retract, the electric push rod 92 is controlled to reverse, driving the two sets of clamping arms 91 to open synchronously and release the constraint. Then, the lifting component 23 contacts and squeezes the wedge frame 24, lifting the finished winding roller 3 to a state that is easy to pick up. The operator can directly and smoothly remove the finished winding roller 3, and the equipment then returns to the initial standby state and enters the next operation cycle.
[0048] It should be noted that the aforementioned front-end conveying mechanism is existing technology, and therefore will not be described in detail in this application.
[0049] Reference Figures 2-6 The lifting assembly 23 is configured as two sets of mutually symmetrical components along the sliding direction of the support platform 215. The lifting assembly 23 includes several return springs 231 fixedly installed on the support platform 215. The ends of the several return springs 231 are jointly installed with a lifting frame 232. The lifting frame 232 is inclined on the side away from the gantry frame 4.
[0050] Reference Figures 2-6 The machine body 1 is fixedly installed with two wedge-shaped frames 24 that are symmetrical to each other along the sliding direction of the support platform 215. The wedge-shaped frames 24 are wedge-shaped and cooperate with the corresponding lifting frame 232.
[0051] Reference Figures 2-6 The lifting frame 232 is fixedly installed with several limiting rods 233 that slide through the support platform 215, and the reset spring 231 is sleeved on the outside of the corresponding limiting rod 233.
[0052] It should be noted that the splined fit between the rotary table 216 and the winding roller 3, and the splined fit between the output shaft of the drive motor 8 and the winding roller 3, adopt a high-precision coaxiality fit. The module and number of teeth of the two splined fits are completely consistent, which ensures that the winding roller 3 can slide smoothly in the vertical direction and achieves backlash-free torque transmission in the circumferential direction, avoiding slippage and speed fluctuation during winding, and ensuring the uniformity of the tension of the light strip winding. The rotating plate 10 at the bottom of the lifting frame 7 is made of wear-resistant and self-lubricating polytetrafluoroethylene material, and its lower end face is in contact with the top end face of the winding roller 3. When the lifting frame 7 descends to the lower stroke limit, the rotating plate 10 and the rotary table 216 are in contact with the winding roller 3. Platform 216 together form a bidirectional axial limit on the winding roller 3 to prevent axial movement of the winding roller 3 during the winding process. At the same time, the rotating plate 10 can rotate synchronously with the winding roller 3 without interfering with the winding rotation action. The timing of the electric push rod 92 is linked with the stroke of the cylinder 6 and the start and stop of the drive motor 8. When the winding is completed, the electric push rod 92 extends to drive the two clamping arms 91 to close synchronously, and perform radial clamping and positioning on the shaft of the winding roller 3. Then the sliding support assembly 21 moves to the unloading position, thereby ensuring the stability of the winding roller 3 during the unloading movement. After the winding roller 3 moves to the unloading position, the clamping and positioning of the winding roller 3 is released.
[0053] In practical use, during initial standby and operator-assisted empty roller loading, cylinder 6 is fully retracted, lifting frame 7 is at its upper limit position, support platform 215 is precisely positioned at the unloading position, and the inclined surface of lifting frame 232 is fully engaged with wedge frame 24 on machine body 1. Wedge frame 24, through inclined surface transmission, overcomes the elastic force of return spring 231, stably lifting lifting frame 232 to a high position. When cylinder 6 extends and support platform 215 feeds towards the winding processing station, the tension of traction rope 223 is released, and return spring 214 pushes the support... The support platform 215 feeds horizontally along the guide rod 212 toward the gantry 4, driving the lifting frame 232 to move horizontally in sync. The inclined surface of the lifting frame 232 gradually disengages from the wedge frame 24, and the horizontal constraint and lifting force of the wedge frame 24 on the lifting frame 232 gradually disappear. The reset spring 231 then releases its elastic potential energy, pushing the lifting frame 232 to fall vertically and smoothly along the guide of the limit rod 233. The empty winding roller 3 placed on the lifting frame 232 falls down and enters the spline interface of the rotary table 216, completing the automatic alignment of the circumferential limit.
[0054] When the corresponding winding operation is completed, the clamping part 9 closes to clamp the full material roller, and the cylinder 6 retracts to drive the support platform 215 to move downward to the material position reset, the support platform 215 drives the clamped full material winding roller 3 to move horizontally away from the gantry frame 4. The inclined surface of the lifting frame 232 first contacts the inclined surface of the wedge frame 24. The wedge frame 24 applies a continuously increasing vertical upward component force to the lifting frame 232 through the inclined surface. This component force gradually overcomes the elastic force of the reset spring 231, pushing the lifting frame 232 to rise along the limit rod 233. At the moment when the support platform 215 reaches the unloading position, the inclined surface of the lifting frame 232 is completely along the wedge frame 24. When the inclined plane completes its full stroke, the horizontal thrust of the wedge frame 24 is completely converted into a vertically upward lifting force through the inclined plane transmission. This force overcomes the elasticity of the return spring 231 and pushes the two sets of lifting frames 232 to rise vertically along the limit rod 233 to the lifting limit position. This completely lifts the fully loaded finished winding roller 3 from the spline interface of the rotary table 216, allowing it to completely disengage from the spline engagement and form an unrestrained material handling state. This lifting action is completely synchronized with the unloading action of the support platform 215, without any timing delay or error. Finally, the operator can directly move and remove the finished winding roller 3 and place a new empty winding roller 3 to enter the downward movement cycle.
[0055] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit it. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of the present invention without departing from the spirit and scope of the technical solutions of the present invention, and all such modifications or substitutions should be covered within the scope of the claims of the present invention.
Claims
1. A light strip winding processing equipment, characterized in that: include, The machine body (1) and the gantry frame (4) fixedly installed on the machine body (1), the gantry frame (4) is fixedly installed with a support frame (5), the support frame (5) is fixedly installed with a cylinder (6), and the output end of the cylinder (6) is fixedly installed with a lifting frame (7). The loading and unloading mechanism (2) is provided on the machine body (1), and the loading and unloading mechanism (2) includes, A sliding support assembly (21) slidably supports the winding roller (3) and controls its movement between the loading position and the unloading position; The traction assembly (22) is used to traction the sliding support assembly (21) for loading or unloading. The lifting assembly (23) and the wedge frame (24) are used to cooperate with the lifting assembly (23); when the sliding support assembly (21) moves to the unloading position, the lifting frame (232) contacts the wedge frame (24) and rises along its slope, thereby lifting the winding roller (3) away from the support platform (215).
2. The LED strip winding processing equipment as described in claim 1, characterized in that: The sliding support assembly (21) includes two pairs of mounting plates (211) fixedly installed on the body (1). Several guide rods (212) are installed together between the same pair of mounting plates (211), and a sliding seat (213) is slidably installed on the outer side of the several guide rods (212).
3. The LED strip winding processing equipment as described in claim 2, characterized in that: A reset spring (214) is fixedly installed between the sliding seat (213) and the mounting plate (211), and the reset spring (214) is sleeved on the outside of the corresponding guide rod (212).
4. The LED strip winding processing equipment as described in claim 3, characterized in that: A support platform (215) is installed between the two sliding seats (213). A rotary table (216) is rotatably installed on the support platform (215). The winding roller (3) is placed on the rotary table (216) and slides with the rotary table (216) through a spline.
5. The LED strip winding processing equipment as described in claim 4, characterized in that: The traction assembly (22) includes several fixed pulleys (221) fixedly installed, and several fixed pulleys (222) fixedly installed on the gantry (4). The same traction rope (223) is wound around the outside of the fixed pulleys (221) and fixed pulleys (222) located on the same side. The two ends of the traction rope (223) are fixedly connected to the lifting frame (7) and the support platform (215) respectively.
6. The LED strip winding processing equipment as described in claim 5, characterized in that: The lifting assembly (23) is configured as two sets of symmetrical components along the sliding direction of the support platform (215). The lifting assembly (23) includes several return springs (231) fixedly installed on the support platform (215). The ends of the several return springs (231) are all equipped with a lifting frame (232). The lifting frame (232) is inclined on the side away from the gantry (4).
7. The LED strip winding processing equipment as described in claim 6, characterized in that: Two wedge-shaped frames (24) are fixedly installed on the body (1) and are symmetrical to each other along the sliding direction of the support platform (215). The wedge-shaped frames (24) are wedge-shaped and cooperate with the corresponding lifting frame (232).
8. The LED strip winding processing equipment as described in claim 7, characterized in that: The lifting frame (232) is fixedly installed with several limiting rods (233) of the sliding through support platform (215), and the second reset spring (231) is sleeved on the outside of the corresponding limiting rod (233).
9. The LED strip winding processing equipment as described in claim 8, characterized in that: The sliding seat (213) is provided with a clamping part (9), which includes two clamping arms (91) that are symmetrical to each other, and the rotation shafts of the two clamping arms (91) are connected by gear transmission.
10. The LED strip winding processing equipment as described in claim 9, characterized in that: An electric push rod (92) is fixedly installed on the sliding seat (213). The output end of the electric push rod (92) is hinged to the rotation shaft of the clamping arm (91). A drive motor (8) is fixedly installed on the lifting frame (7). The output shaft of the drive motor (8) is slidably connected to the winding roller (3) through a spline. A rotating plate (10) is rotatably installed at the bottom of the lifting frame (7).