A conveying mechanism for marking electronic components
By introducing an inner conveyor belt in the conveying mechanism that connects to an external suction structure, combined with monitoring components and clamping assemblies, the problems of electronic components slipping and deforming during the conveying process are solved, improving production efficiency and marking quality, and ensuring the stability and performance of the components.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- KUNSHAN NEW FUXING ELECTRONIC TECH CO LTD
- Filing Date
- 2025-07-16
- Publication Date
- 2026-07-17
AI Technical Summary
Existing electronic component marking conveyor mechanisms are prone to component slippage and damage during transport, and the compression of fixed components results in slow conveying speed and uneven force, affecting production efficiency and quality.
The system uses an inner conveyor belt connected to an external suction structure. Suction is performed through the through holes in the conveyor belt. Combined with monitoring components and clamping assemblies, the system ensures stable component transport and prevents displacement. Static electricity is removed using an anti-static brush, and the clamping plate is used for position adjustment.
It achieves stable and uniform adsorption of electronic components during transportation, reduces deformation, improves marking efficiency and quality, extends the service life of monitoring components, and prevents electrostatic damage.
Smart Images

Figure CN224512245U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of electronic component marking, specifically to a conveying mechanism for electronic component marking. Background Technology
[0002] Electronic components are the basic units that make up electronic devices. They interact with each other through different electrical characteristics and functions to realize the control and conversion of signals such as current and voltage. However, existing electronic component marking conveyor mechanisms have certain defects. In particular, during the conveying process, electronic components are placed directly on the conveyor belt. This method can easily cause the components to slip off the conveyor belt and thus cause damage.
[0003] To overcome the above-mentioned defects, the prior art (Chinese Patent No. CN219858908U, Publication Date: October 20, 2023) discloses a conveying mechanism for embedded core board production, relating to the field of core board conveying technology, applicable to the production and conveying of embedded core boards. It includes a conveying housing unit, inside which a conveying mechanism is slidably installed. A drying device is fixedly installed on the upper left side of the conveying housing unit. The core board is conveyed by placing it in a placement box and moving it horizontally on a lead screw. The core board is snapped into a placement slot, and multiple core boards are pressed and fixed at their edges by a pressing and fixing assembly, preventing slippage during conveying and reducing damage to electronic components on the core board. Furthermore, multiple placement slots are provided, allowing for the conveying of multiple core boards at once, reducing the number of conveying operations. The drying device blows away dust and dries moisture from the core board during conveying, protecting the components on the core board.
[0004] While existing technologies transport the core board by placing it in a placement box and using a lead screw to move it horizontally, in actual operation, the core board needs to be clamped in the placement slot and fixed by a pressing and fixing component. This pressing and fixing component not only results in a slower transport speed, thus affecting production efficiency, but also the uneven force of the pressing and fixing component can easily cause excessive stress on the edges of the core board, leading to damage or deformation of the core board and affecting its subsequent performance and quality.
[0005] To address the aforementioned issues, there is an urgent need for innovative design based on the existing electronic component marking conveyor mechanism. Therefore, we propose that the electronic component marking conveyor mechanism can effectively solve the above problems. Utility Model Content
[0006] The purpose of this utility model is to provide a conveying mechanism for marking electronic components, in order to solve the problems mentioned in the background art. Currently, the core board is placed in a placement box and conveyed by a lead screw moving horizontally. However, in actual operation, the core board needs to be clamped in the placement slot and fixed by a pressing and fixing component. The pressing and fixing component not only leads to a slow conveying speed, thus affecting production efficiency, but also the uneven force of the pressing and fixing component can easily cause excessive force on the edge of the core board, which can lead to damage or deformation of the core board and affect its subsequent performance and quality.
[0007] To achieve the above objectives, this utility model provides the following technical solution: a conveying mechanism for marking electronic components, comprising a conveyor frame, a support mounted on the conveyor frame, a conveyor belt for conveying electronic components mounted on the support, an adjusting seat mounted on the side of the conveyor frame, a marking component mounted on the adjusting seat, a first monitoring component mounted on the support, a conveyor box mounted on the support, the conveyor box being located inside the conveyor belt, a first conveying pipe mounted below the conveyor box, a through groove formed on the conveyor box, and a through hole formed on the conveyor belt.
[0008] Preferably, a detection component is mounted on the bracket, and the detection component includes a support frame mounted on the bracket.
[0009] Preferably, a filter box is provided inside the support frame, and a second conveying pipe is installed on the filter box.
[0010] Preferably, a second monitoring element is installed under the filter box, and the second monitoring element is located on the upper surface of the conveyor belt.
[0011] Preferably, the filter box is connected to an adsorption head via a third pipe at its side end, and the adsorption head is located at the side end of the second monitoring element.
[0012] Preferably, a rotating shaft is installed on the support frame, and an anti-static brush is installed on the outside of the rotating shaft, with the anti-static brush located at the top of the conveyor belt.
[0013] Preferably, the bracket is provided with a clamping assembly, the clamping assembly including a storage box mounted on the bracket, the storage boxes being arranged symmetrically.
[0014] Preferably, a rotating seat is installed inside the storage box, and a telescopic cylinder is provided on the rotating seat. The output end of the telescopic cylinder is connected to a clamping plate.
[0015] Compared with the prior art, the beneficial effects of this utility model are as follows: This electronic component marking conveying mechanism places the electronic component on a conveyor belt inside the support for conveying. It connects to an external suction structure through a first conveying pipe, allowing the conveyor box to draw air through a through-slot. This facilitates the suction operation of gas through the through-holes on the conveyor belt, ensuring stable conveying of the electronic component on the conveyor belt and preventing displacement during transport. It also reduces the need for compression fixing components, thus minimizing production efficiency. Furthermore, the overall adsorption force is uniform, reducing the problem of component deformation caused by compression. The specific details are as follows: Electronic components are placed on a conveyor belt inside the support for transport. The first conveying pipe is connected to an external air intake structure. Gas is drawn in through the through holes on the conveyor belt, which makes the electronic components transported stably on the conveyor belt, avoids deviation during transport, and reduces the problem of component deformation caused by squeezing.
[0016] The first monitoring component on the support will perform preliminary monitoring of the electronic components on the conveyor belt, quickly confirm whether the electronic components are accurately fed, and facilitate the marking component to accurately complete the marking operation on the electronic components, thereby improving the overall marking efficiency.
[0017] The second monitoring element accurately determines whether it meets the marking requirements. The adsorption head easily adsorbs dust from the surface of the second monitoring element, and then the filter box filters the adsorbed dust to ensure that the detection accuracy of the second monitoring element is not affected by dust and to extend its service life.
[0018] The anti-static brush on the outside of the rotating shaft installed on the support frame is located at the top of the conveyor belt. The anti-static brush contacts the electronic components, effectively removing static electricity from the electronic components, preventing static electricity from damaging the electronic components, and ensuring the stable performance of the electronic components.
[0019] The rotating seat drives the telescopic cylinder to rotate, making the clamping plate connected to the output end of the telescopic cylinder easy to adjust. The clamping plate will not cause squeezing damage to the electronic components, and the clamping plate will adjust the position of the electronic components, improving the overall marking quality and consistency. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the overall structure of this utility model; Figure 2 This is a schematic diagram of the overall left side view of the present invention; Figure 3 This is a schematic diagram of the overall right-side view of the present invention; Figure 4 This is a schematic diagram of the cross-sectional structure of the bracket of this utility model; Figure 5 This is a cross-sectional view of the support frame structure of this utility model; Figure 6This is a schematic diagram of the support and conveyor box structure of this utility model; Figure 7 This is a schematic diagram of the connection structure between the rotating seat and the telescopic cylinder of this utility model.
[0021] In the diagram: 1. Conveyor frame; 2. Support frame; 3. Conveyor belt; 4. Adjusting seat; 5. Marking component; 6. First monitoring component; 7. Conveyor box; 8. Through groove; 9. First conveying pipe; 10. Through hole; 11. Support frame; 12. Filter box; 13. Second conveying pipe; 14. Second monitoring component; 15. Third pipe; 16. Adsorption head; 17. Rotating shaft; 18. Antistatic brush; 19. Storage box; 20. Rotating seat; 21. Telescopic cylinder; 22. Clamping plate. Detailed Implementation
[0022] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0023] Example 1: In this example, the conveyor belt 3 uniformly adsorbs electronic components through the through holes 10, thereby ensuring stable transport of the electronic components on the conveyor belt 3 and reducing the problem of component deformation caused by squeezing. Figures 1-4The technical solution shown includes a conveyor frame 1, a support frame 2 mounted on the conveyor frame 1, a conveyor belt 3 for conveying electronic components mounted on the support frame 2, an adjusting seat 4 mounted on the side of the conveyor frame 1, a marking component 5 mounted on the adjusting seat 4, a first monitoring component 6 mounted on the support frame 2, a conveyor box 7 mounted on the support frame 2, the conveyor box 7 being located inside the conveyor belt 3, a first conveying pipe 9 mounted below the conveyor box 7, a through groove 8 on the conveyor box 7, and through holes 10 on the conveyor belt 3. Electronic components are placed on the conveyor belt 3 inside the support frame 2 for conveying, and connected to an external air intake structure through the first conveying pipe 9. The first conveying pipe 9 has good sealing performance to ensure no air leakage during the air intake process, ensuring stable air intake force. This allows the conveyor box 7 to intake air through the through groove 8, facilitating the air intake operation through the through holes 10 on the conveyor belt 3. The through holes 10 are evenly distributed, enabling uniform adsorption of electronic components, thereby... The electronic components are transported stably on the conveyor belt 3, avoiding deviation during transport and reducing the production efficiency caused by the use of compression fixing components for limiting. Furthermore, the uniform overall adsorption force reduces the risk of component deformation caused by compression. When the conveyor belt 3 transports the electronic components to the side of the first monitoring element 6, the first monitoring element 6 on the bracket 2 performs preliminary monitoring of the electronic components on the conveyor belt 3. The first monitoring element 6 has a fast response speed and high accuracy, quickly confirming whether the electronic components are accurately fed, facilitating data transmission to the processor, enabling the processor to activate the marking structure. When the electronic components are transported to the marking area by the conveyor belt 3, the adjusting seat 4 can adjust the position of the marking element 5 as needed. The adjusting seat 4 is flexible and precise in positioning, adapting to the marking requirements of electronic components of different specifications, ensuring that the marking element 5 can accurately complete the marking operation on the electronic components, thus improving the overall marking efficiency.
[0024] Example 2: In this example, the adsorption head 16 adsorbs dust from the surface of the second monitoring element 14, improving the monitoring effect of the second monitoring element 14, specifically as follows: Figure 3 , Figure 5 and Figure 6As shown, a detection assembly is installed on the bracket 2. The detection assembly includes a support frame 11 mounted on the bracket 2, a filter box 12 inside the support frame 11, a second conveying pipe 13 mounted on the filter box 12, and a second monitoring element 14 mounted below the filter box 12. The second monitoring element 14 is located on the upper surface of the conveyor belt 3. An adsorption head 16 is connected to the side of the filter box 12 via a third pipe 15. The adsorption head 16 is located on the side of the second monitoring element 14. During the detection process, the second monitoring element 14 can capture the subtle features of electronic components and accurately determine whether they meet the marking requirements. The second conveying pipe 13 is connected to an external suction structure, enabling... The filter box 12 inside the support frame 11 works in conjunction with the adsorption head 16 connected to its side via a third pipe 15. The filter box 12 has high filtration efficiency and can effectively intercept dust and impurities. The third pipe 15 is tightly connected to prevent airflow leakage. The adsorption head 16 is located on the side of the second monitoring element 14. The adsorption head 16 has moderate adsorption force and can accurately align with the surface of the second monitoring element 14 to adsorb dust from its surface. Then, the filter box 12 filters the adsorbed dust, and the filtered impurities are discharged through the second conveying pipe 13 on the filter box 12, ensuring that the detection accuracy of the second monitoring element 14 is not affected by dust and extending its service life. Example 3: In this example, the rotation of the shaft 17 drives the anti-static brush 18 to contact the electronic components, effectively removing static electricity from the electronic components and ensuring the stable performance of the electronic components. Specifically, as shown below... Figure 2 and Figures 5-7 As shown, a rotating shaft 17 is mounted on the support frame 11, and an anti-static brush 18 is mounted on the outside of the rotating shaft 17. The anti-static brush 18 is located at the top of the conveyor belt 3. A clamping assembly is provided on the bracket 2, which includes a storage box 19 mounted on the bracket 2. The storage boxes 19 are symmetrically arranged, and a rotating seat 20 is installed inside the storage box 19. A telescopic cylinder 21 is provided on the rotating seat 20, and the output end of the telescopic cylinder 21 is connected to a clamping plate 22. During the conveying process, the anti-static brush 18 on the outside of the rotating shaft 17 mounted on the support frame 11 is located at the top of the conveyor belt 3. The anti-static brush 18 is made of soft material and will not scratch electronic components. The rotation of the rotating shaft 17 drives the anti-static brush 18 to contact the electronic components, effectively removing static electricity. To eliminate static electricity on electronic components and prevent damage caused by static electricity, ensuring stable performance of electronic components, the storage box 19 on the bracket 2 provides protection and storage space for internal components, reducing external interference. The rotating seat 20 drives the telescopic cylinder 21 to rotate, making the clamping plate 22 connected to the output end of the telescopic cylinder 21 easy to adjust. The clamping plate 22 will not cause squeezing damage to the electronic components, allowing the clamping plate 22 to adjust the position of the electronic components, ensuring that the electronic components are aligned with the marking part 5 on the side adjustment seat 4 of the conveyor frame 1, improving the overall marking quality and consistency, and reducing the defect rate. The contents not described in detail in this specification are existing technologies known to those skilled in the art.
[0025] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A conveying mechanism for marking electronic components, comprising a conveying frame (1) arranged, characterized in that, A bracket (2) is installed on the conveyor frame (1), and a conveyor belt (3) for conveying electronic components is provided on the bracket (2). An adjustment seat (4) is installed on the side of the conveyor frame (1), and a marking component (5) is provided on the adjustment seat (4). A first monitoring component (6) is installed on the bracket (2), and a conveyor box (7) is installed on the bracket (2). The conveyor box (7) is located inside the conveyor belt (3). A first conveying pipe (9) is installed under the conveyor box (7). A through groove (8) is opened on the conveyor box (7), and a through hole (10) is opened on the conveyor belt (3).
2. The electronic component marking conveying mechanism according to claim 1, characterized in that: The bracket (2) is equipped with a detection component, which includes a support frame (11) mounted on the bracket (2).
3. The conveying mechanism for marking electronic components according to claim 2, wherein: The support frame (11) is equipped with a filter box (12), and a second conveying pipe (13) is installed on the filter box (12).
4. The conveying mechanism for marking electronic components according to claim 3, wherein: A second monitoring element (14) is installed under the filter box (12), and the second monitoring element (14) is located on the upper surface of the conveyor belt (3).
5. The conveying mechanism for marking electronic components according to claim 3, wherein: The filter box (12) is connected to an adsorption head (16) via a third pipe (15) at one end. The adsorption head (16) is located at the side of the second monitoring element (14).
6. The conveying mechanism for marking electronic components according to claim 3, wherein: A rotating shaft (17) is installed on the support frame (11), and an antistatic brush (18) is installed on the outside of the rotating shaft (17). The antistatic brush (18) is located at the top of the conveyor belt (3).
7. The conveying mechanism for marking electronic components according to claim 1, wherein: The bracket (2) is provided with a clamping assembly, which includes a storage box (19) installed on the bracket (2) and the storage box (19) is arranged symmetrically.
8. The conveying mechanism for marking electronic components according to claim 7, characterized in that: The storage box (19) is equipped with a rotating seat (20), and a telescopic cylinder (21) is provided on the rotating seat (20). The output end of the telescopic cylinder (21) is connected to a clamping plate (22).