Electronic feeding device for lighters
By installing a pressure boosting component in the lighter's electronic feeding device, the problem of electronic components getting caught on bent wires was solved, enabling stable electronic feeding and smooth automated assembly, thus improving the reliability and efficiency of the feeding mechanism.
Patent Information
- Application Number
- CN202520587623.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-31
- Publication Date
- 2026-01-27
- Estimated Expiration
- 2035-03-31
AI Technical Summary
During the vibration of the lighter's electronic components, the wires bent and hooked onto the guide rail inlet face, preventing smooth transport and affecting the operation of the automated assembly equipment.
An electronic vibrating feeder is combined with an electronic conveyor belt, and an electronic booster assembly is set up, including a booster frame and booster components. Through the squeezing action between the booster components and the conveyor belt, the friction between the electronic components and the conveyor belt is enhanced, ensuring that the electronic components are stably conveyed along the guide rail.
It improves the reliability and stability of electronic delivery, reduces jamming, meets the speed and precision requirements of automated assembly equipment, and ensures the smooth assembly of lighter electronics.
Smart Images

Figure CN223836408U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of lighter assembly equipment, and in particular to an electronic feeding device for lighters. Background Technology
[0002] Lighters on the market are generally assembled manually. To improve production efficiency, automated assembly equipment for lighters has emerged. To achieve automated assembly, the equipment is usually equipped with a feeding mechanism for feeding various components, especially for the lighter's electronic components. Vibratory feeders are typically used to feed a large number of electronic components onto the vibratory feeder, which vibrates and feeds them one by one onto a conveyor belt. This conveyor belt has multiple electronic guide rails to guide the electronic components along the electronic guide rails to the feeding station of the assembly equipment. However, because electronic components have wires, they squeeze and collide with each other during the vibration of the vibratory feeder. The electronic wires are prone to bending, causing the end of the wire to extend beyond the scope of the electronic component and hook onto the entrance face of the guide rail. Since the electronic component is lightweight, the friction between it and the conveyor belt is small. Once hooked, the electronic component cannot move forward along the guide rail driven by the conveyor belt. Utility Model Content
[0003] To address the aforementioned problems, the purpose of this utility model is to provide an electronic feeding device for lighters.
[0004] This utility model is implemented using the following method: an electronic feeding device for lighters, including an electronic vibrating feeding plate, the outlet end of which is connected to an electronic conveyor belt, an electronic guide rail on the electronic conveyor belt, an electronic guide groove on the electronic guide rail, an electronic pressurizing assembly above the electronic conveyor belt, the electronic pressurizing assembly including an electronic pressurizing frame mounted above the electronic conveyor belt, an electronic pressurizing component rotatably mounted on the electronic pressurizing frame, the electronic pressurizing component facing the electronic guide groove, and the electronic pressurizing component and the electronic conveyor belt pressing the electrons up and down.
[0005] Preferably, the electronic booster frame includes booster seats respectively disposed on both sides of the conveyor belt in the forward direction of conveying, a booster shaft is provided between the booster seats, and the electronic booster component is mounted on the booster shaft.
[0006] Preferably, multiple electronic guide rails are arranged side by side, and correspondingly multiple electronic booster components are arranged side by side on the booster shaft.
[0007] Preferably, there are two electronic booster frames, located at the inlet side of the electronic conveyor belt and the middle of the electronic conveyor belt, respectively, and the electronic booster component is installed between the booster shafts of the two electronic booster frames.
[0008] Preferably, the electronic booster includes an elastic circular belt, and multiple booster rollers are equidistantly mounted on the booster shaft. The elastic circular belt is wound between the booster rollers at the same position on the two booster shafts, and each booster roller is directly opposite the corresponding electronic guide groove.
[0009] Preferably, the pressure roller has a receiving groove on its circumferential surface, and the elastic circular belt is embedded in the receiving groove.
[0010] Preferably, the electronic conveyor belt is provided with a driving pulley and a driven pulley, the driving pulley is connected to the output shaft of the electronic conveyor motor, and a transmission component is connected between one of the booster shafts and the driving pulley.
[0011] Preferably, the transmission component includes a first transmission gear that is connected to the drive pulley, the first transmission gear meshing with a second transmission gear, the second transmission gear having a synchronous pulley, one of the booster shafts being connected to a synchronous pulley, and a synchronous belt connecting the two synchronous pulleys to drive the booster shaft to rotate.
[0012] The beneficial effects of this utility model are as follows: This utility model provides an electronic feeding device for lighters. Compared with the prior art, this utility model has at least the following technical effects: 1. Taking into account the characteristics of the light weight of the electronic components and the low friction between them and the conveyor belt, the squeezing action of the pressure boosting component enhances the contact between the electronic components and the conveyor belt, enabling them to move forward along the guide rail under the drive of the conveyor belt, thus solving the problem that the electronic components are easily caught and unable to move forward. This structure can stably transport the electronic components, reduce the jamming phenomenon caused by electronic wire problems, improve the reliability of the entire feeding mechanism, and ensure the smooth progress of the automated assembly process of the lighter's electronic components. 2. The pressure boosting frame adopts pressure boosting seats respectively located on both sides of the conveyor belt's forward direction and connected to the electronic pressure boosting component through a pressure boosting shaft. This structural design makes the pressure boosting component more stable and can better withstand the pressure and vibration during the electronic transport process, improving the structural stability of the entire feeding mechanism. 3. Multiple electronic guide rails are arranged side-by-side, and corresponding electronic pressure boosting components are also arranged side-by-side on the pressure boosting shaft. This allows for the simultaneous transport of multiple electronic components, greatly improving transport efficiency and meeting the electronic feeding speed requirements of automated lighter assembly equipment. The one-to-one correspondence between multiple electronic pressure boosting components and multiple electronic guide rails ensures that each electronic component receives uniform compression during transport, guaranteeing stable and consistent movement along its respective guide rail, thus improving feeding accuracy and consistency. 4. Pressure boosting frames are installed at the inlet side and in the middle, with electronic pressure boosting components installed between them. This allows for compression of electronic components from the inlet to the middle, further stabilizing the transport through increased friction, making the entire transport process smoother and more stable. 5. By installing multiple pressure boosting rollers equidistantly on the pressure boosting shaft and winding an elastic circular belt between them, a stable transmission connection is achieved between the pressure boosting shaft and the elastic circular belt. This ensures that the elastic circular belt moves smoothly with the rotation of the pressure boosting shaft, thereby providing stable compression and transport of the electronic components. 6. By setting a driving pulley and a driven pulley in the electronic conveyor belt, and connecting the driving pulley to the output shaft of the electronic conveyor motor, and connecting one of the booster shafts to the driving pulley with a transmission component, synchronous drive between the electronic conveyor belt and the booster shaft is achieved. This ensures that the electronic conveyor belt and the electronic booster can move in a coordinated manner, thereby improving the overall operating efficiency and stability of the feeding mechanism. Attached Figure Description
[0013] Figure 1 This is a structural schematic diagram of an electronic feeding device for lighters according to this utility model.
[0014] Figure 2 This is a schematic diagram of the structure of an electronic feeding device for lighters that removes the electronic vibration feeding tray.
[0015] Figure 3This is a schematic diagram of the electronic feeding device for lighters from another perspective after removing the electronic vibration feeding tray.
[0016] Explanation of reference numerals in the attached drawings: 1. Electronic vibratory feeder; 2. Electronic conveyor belt; 21. Drive pulley; 22. Electronic conveyor motor; 3. Electronic guide rail; 31. Electronic guide groove; 4. Electronic pressure booster frame; 41. Pressure booster base; 42. Pressure booster shaft; 5. Electronic pressure booster component; 51. Elastic round belt; 52. Pressure booster roller; 6. Transmission component; 61. First transmission gear; 62. Second transmission gear; 63. Synchronous pulley; 64. Synchronous belt. Detailed Implementation
[0017] The present invention will be further described below with reference to the accompanying drawings and specific embodiments.
[0018] Please see Figures 1 to 3 An electronic feeding device for lighters includes an electronic vibrating feeding tray 1, with an electronic conveyor belt 2 connected to the outlet end of the tray 1. An electronic guide rail 3 is provided on the conveyor belt 2, and an electronic guide groove 31 is formed in the guide rail 3. An electronic pressurizing assembly is provided above the conveyor belt 2, including an electronic pressurizing frame 4 mounted above the conveyor belt 2. An electronic pressurizing component 5 is rotatably mounted on the frame 4, facing the guide groove 31. The pressurizing component 5 and the conveyor belt 2 press the electronic components vertically. Taking advantage of the lightweight nature of the electronic components and the low friction with the conveyor belt, the pressurizing action of the pressurizing assembly enhances the contact between the electronic components and the conveyor belt, allowing them to move more smoothly along the guide rail under the drive of the conveyor belt. This solves the problem of electronic components easily getting caught and unable to move forward. This structure can stably feed the electronic components, reduce jamming caused by electronic wire issues, improve the reliability of the entire feeding mechanism, and ensure the smooth automated assembly process of the lighter's electronic components.
[0019] Please see Figures 1 to 3 Preferably, the electronic booster frame 4 includes booster seats 41 respectively disposed on both sides of the conveyor belt in the forward direction of conveying, and a booster shaft 42 is provided between the booster seats 41. The electronic booster component 5 is mounted on the booster shaft 42. The booster frame adopts a structure where booster seats 41 are respectively disposed on both sides of the conveyor belt in the forward direction of conveying, and the electronic booster component 5 is connected through the booster shaft 42. This structural design makes the booster assembly more stable, can better withstand the pressure and vibration during the electronic conveying process, and improves the structural stability of the entire feeding mechanism.
[0020] Please see Figures 1 to 3Preferably, multiple electronic guide rails 3 are arranged side by side, and correspondingly multiple electronic booster components 5 are arranged side by side on the booster shaft 42. The arrangement of multiple electronic guide rails 3 and corresponding multiple electronic booster components 5 on the booster shaft 42 allows for the simultaneous transport of multiple electronic components, significantly improving transport efficiency and meeting the requirements of automated lighter assembly equipment for electronic loading speed. The one-to-one correspondence between the multiple electronic booster components 5 and the multiple electronic guide rails 3 ensures that each electronic component receives uniform compression during transport, guaranteeing stable and consistent movement along its respective guide rail, thus improving loading accuracy and consistency.
[0021] Please see Figures 1 to 3 Preferably, two electronic booster frames 4 are provided, located at the inlet side of the electronic conveyor belt 2 and the middle of the electronic conveyor belt 2, respectively. The electronic booster component 5 is installed between the booster shafts 42 of the two electronic booster frames 4. By setting booster frames at the inlet side and the middle, and installing the electronic booster component 5 between them, the electrons can be squeezed from the inlet to the middle, and the booster friction is used to further stabilize the conveying, making the entire conveying process more stable and smooth.
[0022] Please see Figures 1 to 3 Preferably, the electronic booster component 5 includes an elastic circular belt 51, and multiple booster rollers 52 are equidistantly mounted on the booster shaft 42. The elastic circular belt 51 is wound between the booster rollers 52 at the same position on both booster shafts 42, and each booster roller 52 is directly opposite the corresponding electronic guide groove 31. By equidistantly mounting multiple booster rollers 52 on the booster shaft 42 and winding the elastic circular belt 51 between the booster rollers 52, a stable transmission connection between the booster shaft 42 and the elastic circular belt 51 is achieved, ensuring that the elastic circular belt 51 can move smoothly with the rotation of the booster shaft 42, thereby providing stable compression and delivery of electrons.
[0023] Please see Figures 1 to 3 Preferably, the pressure roller 52 has a receiving groove on its circumferential surface, and the elastic circular belt 51 is embedded in the receiving groove. The receiving groove on the circumferential surface of the pressure roller 52, with the elastic circular belt 51 embedded in it, effectively prevents the elastic circular belt 51 from shifting or slipping during movement, enhancing the stability of the elastic circular belt 51 and improving the reliability of the pressure boosting assembly.
[0024] Please see Figures 1 to 3Preferably, the electronic conveyor belt 2 is provided with a driving pulley 21 and a driven pulley. The driving pulley is connected to the output shaft of the electronic conveyor motor 22, and a transmission component 6 is connected between one of the booster shafts 42 and the driving pulley 21. By setting a driving pulley 21 and a driven pulley in the electronic conveyor belt 2, connecting the driving pulley to the output shaft of the electronic conveyor motor 22, and connecting one of the booster shafts 42 to the driving pulley 21 with the transmission component 6, synchronous drive between the electronic conveyor belt 2 and the booster shaft 42 is achieved. This ensures that the electronic conveyor belt 2 and the electronic booster 5 can move in a coordinated manner, improving the overall operating efficiency and stability of the feeding mechanism.
[0025] Please see Figures 1 to 3 Preferably, the transmission component 6 includes a first transmission gear 61 that is connected to the drive pulley 21. The first transmission gear 61 meshes with a second transmission gear 62. The second transmission gear 62 is provided with a synchronous pulley 63. One of the booster shafts 42 is connected to a synchronous pulley 63, and a synchronous belt 64 is connected between the two synchronous pulleys 63 to drive the booster shaft 42 to rotate. By combining gear transmission and synchronous belt 64 transmission, through the meshing of the first transmission gear 61 and the second transmission gear 62, and the connection of the synchronous pulley 63 and the synchronous belt 64, precise transmission control of the booster shaft 42 can be achieved, ensuring that the rotational speed of the booster shaft 42 matches the running speed of the electronic conveyor belt 2, further improving the accuracy and stability of electronic conveying.
[0026] The working principle of this utility model is as follows:
[0027] The electronic vibrating feeding tray 1 vibrates to feed the electronic components to the inlet end of the electronic conveyor belt 2. Then, driven by the electronic conveyor belt 2, the components are guided into the electronic guide groove 31. During this process, some electronic wires may bend and hook their tails onto the end face of the electronic guide rail 3. However, due to the presence of the elastic circular belt 51 above the electronic guide groove 31, and the pressure boosting shaft 42 being driven by the electronic conveyor motor 22 and moving synchronously with the electronic conveyor belt 2, the upper elastic circular belt 51 and the lower electronic conveyor belt 2 clamp together, increasing the friction between the electronic components and the electronic conveyor belt 2 and the elastic circular belt 51. The upper and lower surfaces of the electronic components are subjected to frictional force to overcome the tension of the electronic wires and drive them to move forward along the electronic guide rail 3. This avoids the problem of the electronic components hooking onto the guide rail and being unable to move forward, ensuring that the electronic components can be stably fed to the automated assembly equipment and ensuring the stable operation of the automated assembly equipment for assembling lighters.
[0028] Several points should be noted: First, in the description of this application, it should be noted that, unless otherwise specified and limited, the terms "installation", "connection" and "linkage" should be interpreted broadly, and can be mechanical or electrical connection, or internal connection between two components, or direct connection. "Up", "down", "left", "right", etc. are only used to indicate relative positional relationship. When the absolute position of the described object changes, the relative positional relationship may change.
[0029] Secondly: The accompanying drawings of the embodiments disclosed in this utility model only involve the structures involved in the embodiments disclosed in this utility model. Other structures can refer to the general design. In the absence of conflict, the same embodiment and different embodiments of this utility model can be combined with each other.
[0030] Finally, the above description is only a preferred embodiment of the present utility model. The protection scope of the present utility model is not limited to the above embodiments. All technical solutions that fall within the scope of the present utility model are protected by the present utility model.
[0031] It should be noted that for those skilled in the art, any improvements and modifications made without departing from the principles of this utility model should also be considered within the scope of protection of this utility model.
Claims
1. An electronic feeding device for lighters, comprising an electronic vibrating feeding tray, characterized in that: The outlet end of the electronic vibrating feeder is connected to an electronic conveyor belt. The electronic conveyor belt is equipped with an electronic guide rail, and the electronic guide rail has an electronic guide groove. An electronic pressurization assembly is provided above the electronic conveyor belt. The electronic pressurization assembly includes an electronic pressurization frame mounted above the electronic conveyor belt. An electronic pressurization component is rotatably mounted on the electronic pressurization frame. The electronic pressurization component is directly opposite the electronic guide groove. The electronic pressurization component and the electronic conveyor belt squeeze the electronic components up and down.
2. The electronic feeding device for lighters according to claim 1, characterized in that: The electronic booster frame includes booster seats respectively located on both sides of the conveyor belt in the forward direction of transport, a booster shaft is provided between the booster seats, and the electronic booster component is installed on the booster shaft.
3. The electronic feeding device for lighters according to claim 2, characterized in that: Multiple electronic guide rails are arranged side by side, and correspondingly multiple electronic booster components are arranged side by side on the booster shaft.
4. The electronic feeding device for lighters according to claim 2, characterized in that: Two electronic booster frames are provided, located at the inlet side of the electronic conveyor belt and the middle of the electronic conveyor belt, respectively, and the electronic booster component is installed between the booster shafts of the two electronic booster frames.
5. The electronic feeding device for lighters according to claim 4, characterized in that: The electronic booster includes an elastic circular belt, and multiple booster rollers are equidistantly mounted on the booster shaft. The elastic circular belt is wound between the booster rollers at the same position on the two booster shafts, and each booster roller is directly opposite the corresponding electronic guide groove.
6. The electronic feeding device for lighters according to claim 5, characterized in that: The pressure roller has a receiving groove on its circumferential surface, and the elastic circular belt is embedded in the receiving groove.
7. The electronic feeding device for lighters according to claim 2, characterized in that: The electronic conveyor belt is provided with a driving pulley and a driven pulley. The driving pulley is connected to the output shaft of the electronic conveyor motor, and a transmission component is connected between the booster shaft and the driving pulley.
8. The electronic feeding device for lighters according to claim 7, characterized in that: The transmission component includes a first transmission gear that is connected to the drive pulley, the first transmission gear meshing with a second transmission gear, the second transmission gear having a synchronous pulley, one of the booster shafts being connected to a synchronous pulley, and a synchronous belt connecting the two synchronous pulleys to drive the booster shaft to rotate.