Intelligent machining equipment for flexible line lamp for new energy automobile

By designing an intelligent processing equipment for flexible line lamps for new energy vehicles, and using conveying rollers and cameras to simulate the torsional performance of flexible light belts, the problem of the lack of evaluation of torsional performance in existing detection methods is solved, and effective detection of the safety and reliability of flexible light belts is achieved.

CN119959031APending Publication Date: 2025-05-09GUANGDONG ANRUI CHUANGFU NEW ENERGY MATERIALS CO LTD
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Patent Information

Application Number
CN202510172463.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-17
Publication Date
2025-05-09

AI Technical Summary

Technical Problem

The existing detection methods are mainly focused on electrical connections and appearance inspections, and the lack of effective evaluation of the torsional performance of flexible line lamps under actual use conditions, resulting in certain limitations.

Method used

An intelligent processing equipment for flexible line lamps for new energy vehicles was designed. The flexible lamp belt is driven to twist in the silicone casing through the conveying roller, simulating the bending and torsional scenes in actual use, and monitoring the status of the lamp belt through the camera to conduct torsional performance detection.

Benefits of technology

By simulating the torsional scenario under actual use conditions, the torsional performance of the flexible lamp strip can be effectively evaluated, ensuring its safety and reliability in actual applications, and through the design of limit buffering and elastic scraper, the lamp beads can be prevented from damage and poor welding.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the field of line lamp processing, in particular to intelligent flexible line lamp processing equipment for a new energy automobile, which comprises a worktable, a mounting rod, a motor, a rotating unit, a conveying roller I, a conveying roller II and the like, the workbench is rotationally connected with a mounting rod used for fixing the winding wheel. The workbench is fixedly connected with a motor, and an output shaft of the motor is fixedly connected with the mounting rod; the workbench is connected with a rotating unit; the rotating unit is connected with a conveying roller I; the rotating unit is connected with a second conveying roller and used for driving the first conveying roller and the second conveying roller to rotate. The flexible lamp strip is driven to rotate through the first conveying roller and the second conveying roller, the flexible lamp strip is twisted, the flexible lamp strip is twisted in the silica gel sleeve, and therefore the scene that the flexible line lamp needs to be bent and twisted in actual use, and the inner lamp strip can be subjected to corresponding bending and twisting stress is simulated.
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Description

Technical Field

[0001] The present invention relates to the field of linear light processing, and in particular to intelligent processing equipment for flexible linear lights for new energy vehicles. Background Art

[0002] Flexible line lights are usually composed of soft light strips and flexible shells. They can be bent into different shapes to adapt to various complex installation scenarios. They are widely used in new energy vehicle decoration and can be installed in different positions in the car, such as the inside of the door, the edge of the floor, etc., to create a warm and comfortable driving environment.

[0003] The soft light strip is composed of components such as flexible PCB and lamp beads, and is usually made up of multiple sections of flexible PCB spliced ​​together by soldering so that the length can be adjusted according to actual needs. After the light strip is processed, it is usually powered on manually to detect whether the electrical connection of the light strip is normal, and then it is rolled up for subsequent packaging. However, when the light strip is used in a flexible linear light, in order to adapt to complex installation scenarios, the flexible linear light needs to be bent and twisted, which makes the internal light strip also subject to corresponding bending and torsional stress. Since the light strip is usually made up of multiple sections of flexible PCB spliced ​​together by soldering, it is easy to break in this case. The existing detection methods mainly focus on electrical connection and appearance inspection, lack of effective evaluation of the torsional performance of the light strip under actual use conditions, and have certain limitations. Summary of the invention

[0004] In order to overcome the shortcomings of existing detection methods that mainly focus on electrical connection and appearance inspection, lack of effective evaluation of the torsional performance of light strips under actual use conditions, and have certain limitations, the present invention provides an intelligent processing equipment for flexible linear lights for new energy vehicles.

[0005] The technical solution is as follows: An intelligent processing equipment for flexible linear lights for new energy vehicles, including a workbench, a mounting rod and a motor; the workbench is rotatably connected to a mounting rod for fixing a winding wheel; the workbench is fixedly connected to a motor, and the motor output shaft is fixedly connected to the mounting rod; it also includes a rotating unit, a conveying roller one, a conveying roller two, a silicone sleeve, an annular mounting frame, a conveying roller three and a conveying roller four; the workbench is connected to a rotating unit; the rotating unit is connected to conveying roller one; the rotating unit is connected to conveying roller two, and the rotating unit is used to drive conveying roller one and conveying roller two to rotate; the workbench is fixedly connected to an annular mounting frame; the annular mounting frame is rotatably connected to conveying roller three; the annular mounting frame is rotatably connected to conveying roller four, conveying roller one, conveying roller two, conveying roller three and conveying roller four are all provided with electric motors, and conveying roller one, conveying roller two, conveying roller three and conveying roller four are all used to convey flexible light strips; the workbench is fixedly connected to a silicone sleeve through a mounting plate, and the silicone sleeve is fixedly connected to the annular mounting frame.

[0006] Optionally, the silicone sleeve is composed of a silicone upper cover and a silicone base, the silicone upper cover and the silicone base are snap-connected, and the silicone base is fixedly connected to a mounting plate of the workbench, and the silicone base is fixedly connected to a ring-shaped mounting frame.

[0007] Optionally, a buffer sheet is also included; the silicone upper cover and the silicone base are each fixedly connected with a plurality of buffer sheets.

[0008] Optionally, all the non-connecting ends of the buffer sheets are arranged to be inclined to the left, and the distance between every two upper and lower corresponding buffer sheets is greater than the width of the flexible light strip.

[0009] Optionally, conveying roller one is provided with a clamping portion one, conveying roller two is provided with a limiting groove one, and the clamping portion one corresponds to the limiting groove one, conveying roller three is provided with a clamping portion two, conveying roller four is provided with a limiting groove two, and the clamping portion two corresponds to the limiting groove two.

[0010] Optionally, the clamping part 1 is provided with a plurality of avoidance grooves 1, and the circumferential spacing between adjacent avoidance grooves 1 on the clamping part 1 is the same as the length of the spacing between lamp beads on the flexible light strip; the clamping part 2 is provided with a plurality of avoidance grooves 2, and the circumferential spacing between adjacent avoidance grooves 2 on the clamping part 2 is the same as the length of the spacing between lamp beads on the flexible light strip.

[0011] Optionally, it also includes a supporting plate, a support plate and a camera; the workbench is fixedly connected to the supporting plate; the supporting plate is fixedly connected to the support plate; and the support plate is installed with a camera.

[0012] Optionally, elastic scraping rods are also included; a plurality of elastic scraping rods are fixedly connected in each avoidance groove two.

[0013] Optionally, the elastic scraper rod is made of silicone material.

[0014] Optionally, an expansion airbag is also included; the mounting rod is fixedly connected with the expansion airbag for fixing the winding wheel, and the expansion airbag is connected to an external pump.

[0015] Compared with the prior art, the present invention has the following advantages: The flexible light strip is driven to rotate by conveyor roller one and conveyor roller two, and is twisted. The flexible light strip is twisted inside the silicone sleeve to simulate the bending and twisting of the flexible linear light in actual use, so that the internal light strip is also subjected to corresponding bending and torsional stress. The flexible light strip after the simulated twisting is observed and monitored by a camera, and the state of the flexible light strip after the simulated twisting is monitored, so as to detect the torsional performance of the flexible light strip, and ensure the safety and reliability of the flexible light strip in actual applications.

[0016] The broken end of the flexible light strip is limited and buffered by the silicone sleeve and the buffer sheet to prevent the broken end of the flexible light strip from repeatedly swinging and scratching inside the silicone sleeve, causing damage to the lamp beads and affecting the normal use of the flexible light strip.

[0017] The elastic scraper rod is driven to rotate by the conveying roller three at the same time to move the lamp beads on the flexible light strip entering the avoidance groove two, and the moved flexible light strip continues to be conveyed to the left. When the flexible light strip passes by the camera, the position of the lamp beads on the flexible light strip is observed through the camera to detect the firmness of the welding between the lamp beads and the flexible light strip, so as to avoid the situation of cold welding of the lamp beads on the flexible light strip, which affects the normal use of the subsequent flexible light strip. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 This is a schematic diagram of the structure disclosed by the intelligent processing equipment for flexible linear lights for new energy vehicles of the present invention; Figure 2 This is a schematic diagram of the combined structure of a workbench, a mounting rod, a motor and an inflatable airbag disclosed in the intelligent processing equipment for flexible linear lights for new energy vehicles of the present invention; Figure 3 It is a schematic diagram of the combined structure of the conveying roller 1, conveying roller 2, silicone sleeve, circular guide rail and electric slider disclosed in the intelligent processing equipment for flexible linear lights for new energy vehicles of the present invention; Figure 4 An exploded view of the silicone upper cover and the silicone base disclosed by the intelligent processing equipment for flexible linear lights for new energy vehicles of the present invention; Figure 5 This is a schematic diagram of the buffer sheet structure disclosed by the intelligent processing equipment for flexible linear lights for new energy vehicles of the present invention; Figure 6 It is a schematic diagram of the combined structure of the conveying roller 1 and the conveying roller 2 disclosed in the intelligent processing equipment for flexible linear lights for new energy vehicles of the present invention; Figure 7 A schematic diagram of the structure of a conveying roller disclosed by the intelligent processing equipment for flexible linear lights for new energy vehicles of the present invention; Figure 8 It is a schematic diagram of the combined structure of the annular mounting frame, the third conveying roller and the fourth conveying roller disclosed in the intelligent processing equipment for flexible linear lights for new energy vehicles of the present invention; Fig. 9 It is a schematic diagram of the combined structure of the conveying roller three and the elastic scraper rod disclosed in the intelligent processing equipment for flexible linear lights for new energy vehicles of the present invention; Fig.10 The present invention is a schematic diagram of the combined structure of a supporting plate, a support plate and a camera disclosed in the intelligent processing equipment for flexible linear lights for new energy vehicles.

[0019] Explanation of the reference numerals: 1-workbench, 2-mounting rod, 3-motor, 4-conveyor roller one, 5-conveyor roller two, 6-silicone sleeve, 7-annular mounting frame, 8-conveyor roller three, 9-conveyor roller four, 101-circular guide rail, 102-electric slider, 103-buffer plate, 111-elastic scraper rod, 112-support plate, 113-support plate, 114-camera, 201-inflatable airbag, 41-clamping part one, 42-avoidance groove one, 51-limiting groove one, 61-silicone upper cover, 62-silicone base, 81-clamping part two, 82-avoidance groove two, 91-limiting groove two, 100-winding wheel, 200-flexible light strip. DETAILED DESCRIPTION

[0020] The following descriptions are merely preferred embodiments of the present invention and are not intended to limit the protection scope of the present invention. Example

[0021] An intelligent processing equipment for flexible line lights for new energy vehicles, such as Figure 1-Figure 10 As shown, it includes a workbench 1, a mounting rod 2 and a motor 3; the workbench 1 is rotatably connected to the mounting rod 2; the workbench 1 is fixedly connected to the motor 3, and the output shaft of the motor 3 is fixedly connected to the mounting rod 2; It also includes a rotating unit, a conveying roller 1 4, a conveying roller 2 5, a silicone sleeve 6, an annular mounting frame 7, a conveying roller 3 8 and a conveying roller 4 9; the workbench 1 is connected to the rotating unit; the rotating unit is connected to the conveying roller 1 4; the rotating unit is connected to the conveying roller 2 5, and the rotating unit is used to drive the conveying roller 1 4 and the conveying roller 2 5 to rotate; the workbench 1 is fixedly connected to the annular mounting frame 7; the annular mounting frame 7 is rotatably connected to the conveying roller 3 8; the annular mounting frame 7 is rotatably connected to the conveying roller 4 9, the conveying roller 1 4, the conveying roller 2 5, the conveying roller 3 8 and the conveying roller 4 9 are all provided with electric motors, and the conveying roller 1 4, the conveying roller 2 5, the conveying roller 3 8 and the conveying roller 4 9 are all used to convey the flexible light strip 200; the workbench 1 is fixedly connected to the silicone sleeve 6 through the mounting plate, and the silicone sleeve 6 is fixedly connected to the annular mounting frame 7.

[0022] The silicone sleeve 6 is composed of a silicone upper cover 61 and a silicone base 62, which are snap-connected and fixedly connected to the mounting plate of the workbench 1, and fixedly connected to the annular mounting frame 7. When the end of the flexible light strip 200 is passed through the silicone sleeve 6, the silicone upper cover 61 is first opened manually, and then the flexible light strip 200 is passed through the silicone base 62, and finally the silicone upper cover 61 is re-covered and re-engaged with the silicone base 62. By opening the silicone upper cover 61, it is easier to pass the flexible light strip 200 through the silicone sleeve 6.

[0023] It also includes a buffer sheet 103 ; the silicone upper cover 61 and the silicone base 62 are each fixedly connected with a plurality of buffer sheets 103 .

[0024] All the non-connecting ends of the buffer sheets 103 are tilted to the left, and the distance between every two corresponding upper and lower buffer sheets 103 is greater than the width of the flexible light strip 200, which facilitates the flexible light strip 200 to be transmitted to the left and wound up, and the buffer sheets 103 will not interfere with the torsion detection of the flexible light strip 200.

[0025] The conveying roller 1 4 is provided with a clamping portion 1 41, the conveying roller 2 5 is provided with a limiting groove 1 51, and the clamping portion 1 41 and the limiting groove 1 51 correspond to each other, the conveying roller 3 8 is provided with a clamping portion 2 81, the conveying roller 4 9 is provided with a limiting groove 2 91, and the clamping portion 2 81 and the limiting groove 2 91 correspond to each other. The flexible light strip 200 for torsion detection is limited by the clamping portion 1 41 and the limiting groove 1 51, as well as the clamping portion 2 81 and the limiting groove 2 91 to prevent it from sliding during the detection process and affecting the detection result.

[0026] The clamping part 41 is provided with two avoidance grooves 42, and the circumferential spacing between adjacent avoidance grooves 42 on the clamping part 41 is the same as the length of the spacing between the lamp beads on the flexible light strip 200; the clamping part 81 is provided with two avoidance grooves 82, and the circumferential spacing between adjacent avoidance grooves 82 on the clamping part 81 is the same as the length of the spacing between the lamp beads on the flexible light strip 200. When the conveying roller 4 rotates to convey the flexible light strip 200, the avoidance grooves 42 and 82 are used to avoid the lamp beads on the flexible light strip 200, so as to prevent the clamping part 41 or the clamping part 81 from squeezing the lamp beads during the conveying process, thereby causing damage to the lamp beads.

[0027] It also includes a supporting plate 112 , a supporting plate 113 and a camera 114 ; the workbench 1 is fixedly connected to the supporting plate 112 ; the supporting plate 112 is fixedly connected to the supporting plate 113 ; and the camera 114 is installed on the supporting plate 113 .

[0028] The rotating unit includes a circular guide rail 101 and an electric slider 102; the workbench 1 is fixedly connected to the circular guide rail 101; the circular guide rail 101 is slidably connected to two electric sliders 102; the conveying roller 1 4 is rotatably connected to the two electric sliders 102, and the conveying roller 2 5 is rotatably connected to the two electric sliders 102.

[0029] When the light strip is processed, workers usually power on the light strip to detect whether the electrical connection of the light strip is normal, and then reel it up for subsequent packaging. However, the existing detection method mainly focuses on electrical connection and appearance inspection, lacks effective evaluation of the torsional performance of the light strip under actual use conditions, and has certain limitations; therefore, after manually completing the electrical connection and appearance inspection of the light strip, when the light strip is reeled up, the reeling wheel 100 is manually fixed on the mounting rod 2, and then the end of the flexible light strip 200 is manually pulled out and passed between the conveying roller 1 4 and the conveying roller 2 5. , enters the silicone sleeve 6, then passes through the inside of the silicone sleeve 6, and then passes between the conveying roller three 8 and the conveying roller four 9, and is finally fixed on the winding wheel 100. Before winding, the electric slider 102 is controlled to drive the conveying rollers one 4 and the conveying rollers two 5 to rotate along the circular guide rail 101, and the conveying rollers one 4 and the conveying rollers two 5 drive the flexible light strip 200 to rotate, and the flexible light strip 200 is twisted. The flexible light strip 200 is twisted inside the silicone sleeve 6, so as to simulate the scene that the flexible linear light needs to be bent and twisted during actual use, so that the internal light strip will also be subjected to corresponding bending and torsional stresses.

[0030] After completing the simulated twisting of the flexible light strip 200, the electric slider 102 is controlled to move and reset, and then the conveying rollers 1 4 and 2 5 are controlled to rotate by the electric motor, and at the same time, the conveying rollers 3 8 and 4 9 are controlled to rotate by the electric motor to convey the twisted flexible light strip 200 to the left. When the twisted flexible light strip 200 passes the camera 114, the flexible light strip 200 after the simulated twisting is observed and monitored by the camera 114, and the state of the flexible light strip 200 after the simulated twisting is monitored, so as to complete the torsional performance test of the flexible light strip 200 and ensure the safety and reliability of the flexible light strip 200 in actual applications. When the camera 114 observes that the flexible light strip 200 is not broken, it means that the torsional performance of the flexible light strip 200 meets the standard, and synchronously controls the motor 3 to drive the safety The mounting rod 2 and the winding wheel 100 rotate to wind up the flexible light strip 200 section that has completed the inspection. At the same time, the new flexible light strip 200 section is conveyed into the silicone sleeve 6, and the torsional performance is tested in the same way as above, so as to test the torsional performance of the entire flexible light strip 200 and ensure the overall reliability of the flexible light strip 200. It should be noted that the silicone sleeve 6 is composed of a silicone upper cover 61 and a silicone base 62, and the silicone upper cover 61 and the silicone base 62 are snap-connected. When the end of the flexible light strip 200 is passed through the silicone sleeve 6, the silicone upper cover 61 is first opened manually, and then the flexible light strip 200 is passed through the silicone base 62, and finally the silicone upper cover 61 is re-covered and re-snaked with the silicone base 62. By opening the silicone upper cover 61, it is easier to pass the flexible light strip 200 through the silicone sleeve 6.

[0031] In addition, in order to be flexible in use according to different application scenarios and length requirements, and to facilitate maintenance and replacement, the light strip is usually made of multiple sections of flexible PCB spliced ​​by soldering; when there is poor welding at the connection part of the light strip, the flexible light strip 200 will be broken during the torsion detection process of the flexible light strip 200, and after the flexible light strip 200 is broken, the broken section of the flexible light strip 200 located between the conveying roller three 8, the conveying roller four 9 and the conveying roller one 4, the conveying roller two 5 will swing under the action of elasticity, causing the lamp beads on the flexible light strip 200 to collide and be damaged. Therefore, during the torsion detection process of the flexible light strip 200, the silicone sleeve 6 can limit and buffer the broken section of the flexible light strip 200 to prevent it from swinging around and being damaged by impact; At the same time, there is a certain space inside the silicone sleeve 6. When the flexible light strip 200 is twisted and broken in the silicone sleeve 6, the broken end will still swing repeatedly inside the silicone sleeve 6 and repeatedly scratch the inner wall of the silicone sleeve 6. The lamp beads on the flexible light strip 200 are scratched many times, which may easily lead to poor contact between the lamp beads and the flexible light strip 200, affecting the normal use of the flexible light strip 200. Therefore, a buffer sheet 103 is provided inside the silicone sleeve 6. When the flexible light strip 200 breaks, the buffer sheet 103 is used to further limit and buffer the broken end of the flexible light strip 200 to prevent the broken end of the flexible light strip 200 from repeatedly swinging and scratching inside the silicone sleeve 6, resulting in poor contact between the lamp beads and the flexible light strip 200, affecting the normal use of the flexible light strip 200.

[0032] Furthermore, when the flexible light strip 200 is broken, the conveying rollers 1 4 and 2 5, as well as the conveying rollers 3 8 and 4 9 are controlled to rotate and convey the flexible light strip 200. When the broken flexible light strip 200 is conveyed to the left through the camera 114, the flexible light strip 200 is observed and monitored through the camera 114. When the flexible light strip 200 is detected to be broken, a signal can be sent to control the entire device to stop working, and an alarm can be issued to notify relevant staff. When the staff finds the breakage, they manually connect the two ends of the broken flexible light strip 200. The head is realigned and placed on the supporting plate 112, and the broken parts are re-soldered together with the support of the supporting plate 112. When the welding is cooled, the conveyor rollers 1 4 and 2 5, as well as the conveyor rollers 3 8 and 4 9 are controlled to rotate in the opposite direction, and the motor 3 is controlled to drive the mounting rod 2 and the winding wheel 100 to rotate in the opposite direction, and the re-welded part of the flexible light strip 200 is re-conveyed to the right side of the conveyor rollers 1 4 and 2 5, and the same operation is performed again to inspect the re-welded flexible light strip 200 to ensure the quality of the re-welded flexible light strip 200.

[0033] In addition, the conveying roller 14 is provided with a clamping portion 141, the conveying roller 25 is provided with a limiting groove 151, and the clamping portion 141 and the limiting groove 151 correspond to each other, the conveying roller 38 is provided with a clamping portion 281, the conveying roller 49 is provided with a limiting groove 291, and the clamping portion 281 and the limiting groove 291 correspond to each other, the flexible light strip 200 passes through the clamping portion 141 of the conveying roller 14 and the limiting groove 151 of the conveying roller 25, and passes through the clamping portion 281 and the limiting groove 291. When the flexible light strip 200 is subjected to torsion detection, the flexible light strip 200 subjected to torsion detection is limited by the clamping portion 141 and the limiting groove 151, and the clamping portion 281 and the limiting groove 291 to prevent sliding during the detection process, which affects the accuracy of the torsion performance detection of the flexible light strip 200.

[0034] At the same time, considering that the lamp beads on the flexible light belt 200 are fixed on the flexible light belt 200 by soldering, and there are several protruding lamp beads on the surface of the flexible light belt 200, when the conveying roller 14 and the conveying roller 25, as well as the conveying roller 38 and the conveying roller 49 are controlled to rotate to convey the flexible light belt 200, the conveying roller 14 and the conveying roller 38 will squeeze the lamp beads on the flexible light belt 200, which may easily cause the lamp beads to be squeezed and damaged. Therefore, the clamping part 141 is provided with several avoidance grooves 42, and the adjacent avoidance grooves 4 The circumferential spacing on the clamping part 41 is the same as the length of the spacing between the lamp beads on the flexible light strip 200; the clamping part 81 is provided with a plurality of avoidance grooves 82, and the circumferential spacing between adjacent avoidance grooves 82 on the clamping part 81 is the same as the length of the spacing between the lamp beads on the flexible light strip 200. When the conveying roller 4 rotates to convey the flexible light strip 200, the lamp beads on the flexible light strip 200 can be avoided by the avoidance grooves 42 and the avoidance grooves 82, so as to prevent the lamp beads from being squeezed and damaged during the conveying process. Example

[0035] On the basis of Example 1, Figure 2 and Figure 8-Figure 10 As shown, it also includes elastic scraping rods 111; a plurality of elastic scraping rods 111 are fixedly connected in each of the second avoidance grooves 82.

[0036] The elastic scraper rod 111 is made of silicone material to avoid scratching the flexible light strip 200 .

[0037] It also includes an expansion airbag 201; the installation rod 2 is fixedly connected with the expansion airbag 201, and the expansion airbag 201 is connected to an external pump.

[0038] On the basis of the above-mentioned embodiment 1, the lamp beads are fixed on the lamp strip by soldering. However, during the processing, due to insufficient solder, inappropriate temperature or improper operation, the solder joints of the lamp beads may be poorly soldered. Poor soldering will make the connection between the lamp beads and the lamp strip unreliable, thereby affecting the subsequent use of the lamp strip. Therefore, an elastic scraper 111 made of silicone material is provided in the avoidance groove 2 82. When the conveying roller 3 8 rotates to convey the flexible lamp strip 200, the elastic scraper 111 in the avoidance groove 2 82 rotates with the conveying roller 3 8 to move the lamp beads on the flexible lamp strip 200 entering the avoidance groove 2 82. The moved flexible lamp strip 200 continues to be conveyed to the left. When the flexible light strip 200 passes the camera 114, the position of the lamp beads on the flexible light strip 200 is observed through the camera 114, thereby detecting the firmness of the welding between the lamp beads and the flexible light strip 200, thereby avoiding the poor soldering of the lamp beads on the flexible light strip 200, which affects the subsequent normal use of the flexible light strip 200.

[0039] After the lamp beads are moved by the elastic scraper 111, the flexible light strip 200 is transported to the left as the conveying rollers 3 8 and 4 9 rotate. When the flexible light strip 200 passes the camera 114, the position of the lamp beads on the flexible light strip 200 can be monitored through the camera 114 to monitor whether the lamp beads are offset. When the lamp beads are not offset, it means that there is no problem with the firmness of the lamp bead welding, and the subsequent winding work is carried out normally; when the position of the lamp beads is offset, a signal is sent to control the entire equipment to stop working, and notify relevant personnel to manually re-weld the lamp bead position through the support of the supporting plate 112, and after the welding cooling is completed, the conveying rollers 3 8 and 4 9, as well as the conveying rollers 1 4 and 2 5 are controlled to rotate in the opposite direction, and the motor 3 is synchronously controlled to drive the mounting rod 2 and the winding wheel 100 to rotate in the opposite direction, and the re-welded part of the flexible light strip 200 is re-conveyed to the right side of the conveying rollers 3 8 and 4 9, and then the same operation is performed to re-inspect the re-welded part, so as to ensure the quality of the overall flexible light strip 200.

[0040] In addition, an expansion airbag 201 is provided on the mounting rod 2. After the winding wheel 100 is manually put on the mounting rod 2, the external pump is controlled to inflate the expansion airbag 201 to expand it, thereby supporting and fixing the winding wheel 100 put on the mounting rod 2. When the light strip is subsequently wound up, the expansion airbag 201 is controlled to deflate and shrink, and the winding wheel 100 with the wound light strip is manually removed. The winding wheel 100 is quickly fixed by inflating the expansion airbag 201, thereby increasing the adaptability of the mounting rod 2 to winding wheels 100 of different specifications.

[0041] The above is a detailed introduction to the present application. Specific examples are used in this article to illustrate the principles and implementation methods of the present application. The description of the above embodiments is only used to help understand the method of the present application and its core idea. At the same time, for general technical personnel in this field, according to the idea of ​​the present application, there will be changes in the specific implementation methods and application scope. In summary, the content of this specification should not be understood as a limitation on the present application.

Claims

1. An intelligent processing device for flexible linear lights for new energy vehicles, comprising a workbench (1), a mounting rod (2) and a motor (3); the workbench (1) is rotatably connected to the mounting rod (2) for fixing a winding wheel (100); the workbench (1) is fixedly connected to the motor (3), and the output shaft of the motor (3) is fixedly connected to the mounting rod (2); the characteristics are: The invention also comprises a rotating unit, a conveying roller 1 (4), a conveying roller 2 (5), a silicone sleeve (6), an annular mounting frame (7), a conveying roller 3 (8) and a conveying roller 4 (9); the workbench (1) is connected to the rotating unit; the rotating unit is connected to the conveying roller 1 (4); the rotating unit is connected to the conveying roller 2 (5), and the rotating unit is used to drive the conveying roller 1 (4) and the conveying roller 2 (5) to rotate; the workbench (1) is fixedly connected to the annular mounting frame (7); the annular mounting frame (7) is rotatably connected to the conveying roller 3 (8); the annular mounting frame (7) is rotatably connected to the conveying roller 4 (9); the conveying roller 1 (4), the conveying roller 2 (5), the conveying roller 3 (8) and the conveying roller 4 (9) are all provided with electric motors, and the conveying roller 1 (4), the conveying roller 2 (5), the conveying roller 3 (8) and the conveying roller 4 (9) are all used to convey the flexible light strip (200); the workbench (1) is fixedly connected to the silicone sleeve (6) through a mounting plate, and the silicone sleeve (6) is fixedly connected to the annular mounting frame (7).

2. According to claim 1, the intelligent processing equipment for flexible linear lights for new energy vehicles is characterized in that: The silicone sleeve (6) is composed of a silicone upper cover (61) and a silicone base (62), the silicone upper cover (61) and the silicone base (62) are snap-connected, the silicone base (62) is fixedly connected to the mounting plate of the workbench (1), and the silicone base (62) is fixedly connected to the annular mounting frame (7).

3. The intelligent processing equipment for flexible linear lights for new energy vehicles according to claim 2 is characterized in that: It also includes a buffer sheet (103); the silicone upper cover (61) and the silicone base (62) are each fixedly connected to a plurality of buffer sheets (103).

4. According to any one of claims 2-3, a smart processing device for flexible linear lights for new energy vehicles is characterized in that: The non-connecting ends of all buffer sheets (103) are arranged obliquely to the left, and the distance between every two buffer sheets (103) corresponding to each other is greater than the width of the flexible light strip (200).

5. According to claim 1, the intelligent processing equipment for flexible linear lights for new energy vehicles is characterized in that: The conveying roller 1 (4) is provided with a clamping portion 1 (41), the conveying roller 2 (5) is provided with a limiting groove 1 (51), and the clamping portion 1 (41) corresponds to the limiting groove 1 (51), the conveying roller 3 (8) is provided with a clamping portion 2 (81), and the conveying roller 4 (9) is provided with a limiting groove 2 (91), and the clamping portion 2 (81) corresponds to the limiting groove 2 (91).

6. The intelligent processing equipment for flexible linear lights for new energy vehicles according to claim 5 is characterized in that: The first clamping portion (41) is provided with a plurality of avoidance grooves (42), and the circumferential spacing between adjacent avoidance grooves (42) on the first clamping portion (41) is the same as the length of the spacing between lamp beads on the flexible light strip (200); the second clamping portion (81) is provided with a plurality of avoidance grooves (82), and the circumferential spacing between adjacent avoidance grooves (82) on the second clamping portion (81) is the same as the length of the spacing between lamp beads on the flexible light strip (200).

7. The intelligent processing equipment for flexible linear lights for new energy vehicles according to claim 6 is characterized in that: It also includes a supporting plate (112), a support plate (113) and a camera (114); the workbench (1) is fixedly connected to the supporting plate (112); the supporting plate (112) is fixedly connected to the support plate (113); and the camera (114) is installed on the support plate (113).

8. The intelligent processing equipment for flexible linear lights for new energy vehicles according to claim 7 is characterized in that: It also includes elastic scraping rods (111); a plurality of elastic scraping rods (111) are fixedly connected in each of the second avoidance grooves (82).

9. The intelligent processing equipment for flexible linear lights for new energy vehicles according to claim 8 is characterized in that: The elastic scraper rod (111) is made of silicone material.

10. The intelligent processing equipment for flexible linear lights for new energy vehicles according to claim 1 is characterized in that: It also includes an expansion airbag (201); the installation rod (2) is fixedly connected with the expansion airbag (201) for fixing the winding wheel (100), and the expansion airbag (201) is connected to an external pump.