Feeding device for nameplate laminating equipment
The feeding device simplifies the transport path of the information label plate in the nameplate bonding equipment, requiring only X-axis and Z-axis movement. This solves the problems of long operating time and high cost of existing equipment and achieves a highly efficient bonding process.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GUANGDONG RUNJIE CLOTHING CO LTD
- Filing Date
- 2025-06-30
- Publication Date
- 2026-05-08
AI Technical Summary
Existing nameplate bonding equipment relies on a six-axis robotic arm to bond the information label plate to the fixed base, resulting in long operating time and high equipment investment costs.
The feeding device includes a feeding cylinder, a first drive assembly, and a second drive assembly. The second drive assembly lifts the information label plate to the feeding port, and the first drive assembly pushes it to the transfer mechanism, simplifying the transportation path. Only X-axis and Z-axis movements are required, reducing the use of a six-axis robotic arm.
The transportation path of the information signboards was optimized, reducing equipment investment costs, improving transportation efficiency, reducing reliance on the six-axis robotic arm, and improving bonding efficiency.
Smart Images

Figure CN224211900U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of nameplate production, and in particular to a feeding device for nameplate bonding equipment. Background Technology
[0002] A nameplate is a sign used to display personal or spatial information. The types of information it displays are diverse (e.g., name, job title, department, contact information, or office number). Its main function is to clarify identity and improve organizational management efficiency.
[0003] Nameplates typically consist of a mounting base and an information label plate. The information label plate is printed with identification information. To improve the overall aesthetics of the nameplate, after the information label plate is printed, it needs to be bonded to the mounting base. A nameplate bonding device exists where the information label plates are typically mass-produced. This means that several information label plates are evenly distributed on an adhesive layer. Once all the information label plates on the adhesive layer have their identification information printed, a controller controls a first conveying component to transport the adhesive layer with the evenly distributed information label plates to a bonding mechanism. The bonding mechanism's drive component can drive a clamping arm (a six-axis robotic arm) to perform three-dimensional movement within a spatial range. With the cooperation of a detection mechanism, the information label plate is aligned with the mounting base on a second conveying component (used to transport the mounting base), allowing the subsequent bonding mechanism to accurately bond the information label plate to the mounting base.
[0004] However, because it requires a six-axis robotic arm to perform the above processing, and each change of the movement path when the six-axis robotic arm drives the gripping arm to move along the X / Y / Z axes in space requires time cost, the overall running time is relatively long. In addition, with a large number of production lines, the equipment investment cost is difficult to control, and there is room for improvement. Utility Model Content
[0005] To improve the feeding efficiency of nameplate processing, this application provides a feeding device for nameplate bonding equipment.
[0006] The technical solution of the feeding device for nameplate bonding equipment provided in this application is as follows:
[0007] A feeding device for a nameplate bonding equipment includes a frame and a feeding mechanism and a transfer mechanism disposed on the frame. The feeding mechanism is used to feed information label plates to the transfer mechanism, and the transfer mechanism is used to transfer the information label plates to a second conveying component. The feeding mechanism includes a material placement cylinder, a first driving component, and a second driving component. The material placement cylinder is used to hold the information label plates and has a feed port. The first driving component and the second driving component are sequentially disposed on the material placement cylinder. The second driving component is used to lift the information label plates located in the material placement cylinder, and the first driving component is used to push the information label plates to the transfer mechanism along the feed port. The lifting height of the second driving component each time is the same as the thickness of the information label plates.
[0008] By adopting the above technical solution, the material cylinder contains an information label plate. The second drive component lifts the information label plate inside the material cylinder, and the lifting height of the second drive component is the same as the thickness of the information label plate each time. This ensures that the second drive component can lift the information label plate inside the material cylinder to the material inlet with each action. The first drive component then pushes the information label plate at the material inlet to the transfer mechanism, achieving the purpose of orderly supplying the information label plate to the transfer mechanism. The transfer mechanism then pushes the information label plate to the second conveying component. Compared with existing nameplate bonding equipment, this application simplifies the transportation path of the information label plate. The transfer mechanism only needs to move along the X and Z axes within the spatial range to transport the information label plate to the fixed seat on the second conveying component. This optimizes the transportation path of the information label plate and eliminates the need for a six-axis robotic arm, which plays a positive guiding role in reducing equipment investment costs and improving the transportation efficiency of the information label plate.
[0009] Preferably, a lifting plate is provided inside the material feeding cylinder, and a sliding groove is provided inside the material feeding cylinder. The lifting plate slides and engages with the sliding groove, and the second driving component is used to drive the lifting plate to slide along the sliding groove.
[0010] By adopting the above technical solution, the lifting plate and the sliding groove cooperate to enable the lifting plate to slide smoothly along the material cylinder, thereby reducing the resistance borne by the lifting plate when the second drive component drives the lifting plate to slide along the sliding groove.
[0011] Preferably, a material placement plate is provided on the side of the material placement cylinder opposite to the first driving component. The material placement plate is located on the side of the material passage and is used to accommodate the information label plate pushed out along the material passage.
[0012] By adopting the above technical solution, after the first drive component pushes the information label plate out along the feed port, the information label plate will be located on the feeding plate, so that each information label plate is relatively fixed in the position of the frame after being pushed out by the first drive component, reducing the probability that the transfer mechanism cannot accurately fit the information label plate with the fixed seat due to the deviation of the information label plate position.
[0013] Preferably, the feeding mechanism further includes a conveying component, which is disposed on the frame above the material cylinder and is used to convey information label plates into the material cylinder.
[0014] By adopting the above technical solution, after the information labeling board in the material storage cylinder is transferred, the information labeling board can be transported into the material storage cylinder by the transport component, without the need for operators to manually add information labeling boards into the material storage cylinder.
[0015] Preferably, a guide plate is provided at the end of the material feeding cylinder facing the conveying component.
[0016] By adopting the above technical solution, the guide plate can guide the information labeling board into the material cylinder in an orderly manner when the conveying component transports the information labeling board into the material cylinder, reducing the probability of the information labeling board falling from the conveying component failing to fall accurately into the material cylinder.
[0017] Preferably, the transfer mechanism includes a transverse conveying component and a longitudinal conveying component. The longitudinal conveying component is disposed on the transverse conveying component. The longitudinal conveying component is used to remove the information label plate along the material placement plate and place the information label plate on a fixed seat located on the second conveying component. The transverse conveying component is used to carry the longitudinal conveying component to reciprocate between the material placement plate and the second conveying component.
[0018] By adopting the above technical solution, through the cooperation of the horizontal and vertical transport components, the transfer of information signboards can be achieved simply by moving along the X and Z axes within the spatial range. This optimizes the transfer path of the information signboards and plays a positive guiding role in improving the bonding efficiency between the information signboards and the fixed base.
[0019] Preferably, a magnetic lock is provided at the end of the material feeding cylinder that abuts against the frame, and the magnetic lock is used to lock the material feeding cylinder to the frame.
[0020] By adopting the above technical solution, the material cylinder is connected to the frame through a magnetic lock. At the same time, the material cylinder can be disassembled along the frame by controlling the magnetic lock to cut off the power. It has high stability and does not require other mechanical structures to disassemble or connect the material cylinder to the frame.
[0021] Preferably, the first drive component is provided with an infrared detection sensor, and the controller is electrically connected to the first drive component, the infrared detection sensor and the second drive component.
[0022] By adopting the above technical solution, since the infrared detection sensor is electrically connected to the controller, the detection function of the infrared detection sensor helps to reduce the probability of the first drive component being activated because the second drive component fails to lift the information label plate located in the material cylinder to the material outlet, but the material plate is not pushed with the information label plate, thus causing the transfer mechanism to operate without a load.
[0023] In summary, this application includes at least one of the following beneficial technical effects:
[0024] 1. The information label plate located in the material feeding cylinder is lifted by the second drive component, and the height of each lift by the second drive component is the same as the thickness of the information label plate. Thus, each action of the second drive component can lift the information label plate located in the material feeding cylinder to the material inlet. The information label plate located at the material inlet is then pushed to the transfer mechanism by the first drive component, thereby achieving the purpose of orderly providing the information label plate to the transfer mechanism.
[0025] 2. The first drive component pushes the information label plate onto the material placement plate, thereby fixing the position of each information label plate on the frame so that the transfer mechanism can transfer it.
[0026] 3. The information label board can be transported into the feeding cylinder by the conveying component, without the need for the operator to manually add the information label board into the feeding cylinder. Attached Figure Description
[0027] Figure 1 This is a schematic diagram of the overall structure of a feeding device for a nameplate bonding equipment according to an embodiment of this application.
[0028] Figure 2 yes Figure 1 A schematic diagram of the structure of a feeding device for a nameplate bonding equipment, concealing the frame, conveying components, and transfer mechanism.
[0029] Figure 3 yes Figure 2 A structural diagram from another perspective.
[0030] Figure 4 yes Figure 1 An enlarged structural diagram of part A in a feeding device for a nameplate bonding equipment.
[0031] Explanation of reference numerals in the attached drawings: 1. Frame; 2. Feeding mechanism; 21. Material cylinder; 211. Material inlet; 212. Lifting plate; 213. Sliding groove; 214. Material plate; 215. Guide plate; 216. Cavity; 22. First drive assembly; 221. First drive cylinder; 222. Push plate; 23. Second drive assembly; 231. Servo motor; 232. Drive screw; 233. Threaded sleeve; 24. Conveying assembly; 3. Transfer mechanism; 31. Lateral conveying assembly; 311. Rodless cylinder; 312. Mounting base; 32. Longitudinal conveying assembly; 321. Second drive cylinder; 322. Pneumatic suction cup; 4. Magnetic lock. Detailed Implementation
[0032] The following is in conjunction with the appendix Figure 1-4 This application will be described in further detail.
[0033] This application discloses a feeding device for a nameplate bonding equipment. (Refer to...) Figure 1 and Figure 2 A feeding device for a nameplate bonding equipment includes a frame 1 and a feeding mechanism 2 and a transfer mechanism 3 disposed on the frame 1. The feeding mechanism 2 is used to feed information label plates to the transfer mechanism 3. The transfer mechanism 3 is used to transfer the information label plates to a second conveying component. The feeding mechanism 2 includes a material placement cylinder 21, a first drive component 22 and a second drive component 23. The material placement cylinder 21 is used to hold the information label plates. A feed port 211 is provided on the material placement cylinder 21. The first drive component 22 and the second drive component 23 are sequentially disposed on the material placement cylinder 21. The second drive component 23 is used to lift the information label plates located in the material placement cylinder 21. The first drive component 22 is used to push the information label plates to the transfer mechanism 3 along the feed port 211. The height of each lift by the second drive component 23 is the same as the thickness of the information label plates.
[0034] Specifically, the end faces of the material cylinder 21 are through-through along the length direction to form a cavity 216 for accommodating the information signboard. The outline of the cavity 216 is adapted to the outer outline of the information signboard, and the size of the cavity 216 and the size tolerance of the information signboard are in clearance fit, so that the information signboard can move smoothly along the cavity 216.
[0035] Furthermore, the material passage 211 is opened on the side wall of the top of the material cylinder 21 and is formed by the two side walls of the material cylinder 21 along the width direction. The width of the material passage 211 is the same as the width of the cavity 216 so that the information label can be smoothly pushed out along the material passage 211.
[0036] Correspondingly, a material placement plate 214 is provided on the side of the material placement cylinder 21 away from the first drive assembly 22. The material placement plate 214 is located on the side of the feed port 211 and is used to accommodate the information label plates pushed out along the feed port 211. The material placement plate 214 and the material placement cylinder 21 are welded together, which facilitates processing and ensures high stability. At the same time, the end of the material placement plate 214 away from the end connected to the material placement cylinder 21 is also equipped with a material placement plate 214. The width between the material placement plate 214 and the material placement cylinder 21 is greater than the width of the information label plate, so that each information label plate pushed out by the first drive assembly 22 along the feed port 211 remains in a relatively uniform position on the material placement plate 214, which facilitates the transfer mechanism 3 for transfer.
[0037] On the other hand, a magnetic lock 4 is provided at the end of the frame 1 that abuts against the material cylinder 21. The magnetic lock 4 is used to lock the material cylinder 21 to the frame 1. The frame 1 is provided with a limiting groove, the contour of which matches the contour of the material cylinder 21, thereby limiting the installation position of the material cylinder 21 along the frame 1.
[0038] Meanwhile, the magnetic lock 4 is installed in the limiting groove. When the material cylinder 21 is located in the limiting groove, the end of the material cylinder 21 facing the limiting groove abuts against the magnetic lock 4. When the magnetic lock 4 is energized, the electromagnetic force is used to attract the material cylinder 21 to the frame 1.
[0039] Its function is to connect the material cylinder 21 to the frame 1 through the magnetic lock 4. At the same time, the material cylinder 21 can be disassembled along the frame 1 by controlling the magnetic lock 4 to be de-energized. It has high stability and does not require other mechanical structures to disassemble or connect the material cylinder 21 to the frame 1.
[0040] It should be noted that the magnetic lock 4 is a device that uses the principle of generating a magnetic field by passing an electric current through a coil, thereby generating a magnetic attraction or magnetic repulsion force. When the magnetic lock 4 is energized, it can attract an iron or magnetic object. When the magnetic lock 4 is de-energized, the attraction between the magnetic lock 4 and the iron or magnetic object disappears. This is existing technology and will not be elaborated on further here.
[0041] Reference Figure 1 and Figure 2 The feeding mechanism 2 also includes a conveying component 24, which is mounted on the frame 1 above the material cylinder 21. The conveying component 24 is used to convey information label plates into the material cylinder 21.
[0042] Specifically, the conveying component 24 includes a motor roller drive assembly and a conveyor belt. The conveyor belt is rotatably supported on the frame 1. The motor roller drive assembly drives the conveyor belt to rotate along the frame 1. After the information label is produced, it can be directly placed on the conveyor belt. When the information label needs to be replenished in the material storage cylinder 21, the motor roller drive assembly is activated, which causes the conveyor belt to rotate along the frame 1, so that the information label located on the conveyor belt can quickly fall into the material storage cylinder 21 without the need for the operator to manually replenish the information label in the material storage cylinder 21.
[0043] It should be noted that the motor roller transmission mechanism consists of a drive motor, a drive roller, and a transmission roller. The drive roller and the transmission roller are respectively rotatably supported at both ends of the frame 1 along the width direction. The conveyor table is sleeved on the drive roller and the transmission roller. The drive roller is driven to rotate by the drive motor, thereby realizing the purpose of the conveyor belt rotating along the frame 1. It is a conventional transmission component in the field of mechanical transmission, and its specific composition and working principle will not be described in detail here.
[0044] Furthermore, a guide plate 215 is provided at one end of the material cylinder 21 facing the conveying assembly 24; wherein, the guide plate 215 is located at the end of the material cylinder 21 facing the conveyor belt, and the guide plate 215 extends along the end of the material cylinder 21 in a direction away from the geometric center of the material cylinder 21.
[0045] Therefore, through the guiding effect of the guide plate 215, when the information identification piece is transported into the material storage cylinder 21 along the conveyor belt, the guide plate 215 can fall into the material storage cylinder 21 in an orderly manner, reducing the probability of the information identification piece falling along the conveyor belt failing to fall accurately into the material storage cylinder 21.
[0046] Reference Figure 2 and Figure 3 The first drive assembly 22 includes a first drive cylinder 221 and a push plate 222. The first drive cylinder 221 is mounted on the frame 1, and the piston rod of the first drive cylinder 221 faces the feed port 211. The push plate 222 is fixedly connected to the piston rod of the first drive cylinder 221. When the piston rod of the first drive cylinder 221 moves, the push plate 222 moves synchronously with the piston rod of the first drive cylinder 221, thereby achieving the purpose of pushing the information label plate in the accommodating cylinder to the material placement plate 214 along the feed port 211. The mechanical structure is simple.
[0047] Reference Figures 1-3The second drive assembly 23 includes a servo motor 231, a drive screw 232, and a threaded sleeve 233. The servo motor 231 is mounted on the frame 1. The drive screw 232 is coaxially fixed with the output shaft of the servo motor 231, and the threaded sleeve 233 is threadedly engaged with the drive screw 232. The end of the drive screw 232 away from the output shaft of the servo motor 231 is rotatably connected to the frame 1, and the end of the drive screw 232 connected to the frame 1 is located below the material placement plate 214. That is, the length of the drive screw 232 is the distance between the output shaft of the servo motor 231 and the material placement plate 214.
[0048] Furthermore, a lifting plate 212 is provided inside the material feeding cylinder 21, and a sliding groove 213 is provided inside the material feeding cylinder 21. The lifting plate 212 and the sliding groove 213 slide together. The second driving component 23 is used to drive the lifting plate 212 to slide along the sliding groove 213.
[0049] The sliding groove 213 is formed by the recesses on both sides of the material cylinder 21 along the width direction. The lifting plate 212 is connected to the two ends of the lifting plate 212 along the width direction. The sliding rails slide and cooperate with the sliding groove 213, thereby realizing the purpose of the lifting plate 212 being able to move smoothly back and forth along the material cylinder 21.
[0050] Meanwhile, a groove is provided along the length of the side of the feeding cylinder 21 facing the servo motor 231, and the threaded sleeve 233 is fixedly connected to the lifting plate 212 through the groove.
[0051] Therefore, when the output shaft of the servo motor 231 rotates, it will drive the drive screw 232 to rotate along the frame 1. Since the threaded sleeve 233 is connected to the lifting plate 212, when the output shaft of the servo motor 231 rotates in the clockwise direction, the threaded sleeve 233 will drive the lifting plate 212 to rise, thereby lifting the information label plate located in the material cylinder 21 towards the material outlet 211.
[0052] Meanwhile, when the output shaft of the servo motor 231 rotates counterclockwise, the threaded sleeve 233 will drive the lifting plate 212 to descend, so as to lower the information label plate on the conveyor belt into the material cylinder 21.
[0053] Reference Figure 1 and Figure 4 The transfer mechanism 3 includes a transverse conveying component 31 and a longitudinal conveying component 32. The longitudinal conveying component 32 is disposed on the transverse conveying component 31. The longitudinal conveying component 32 is used to take out the information label plate along the material plate 214 and place the information label plate on the fixed seat located on the second conveying component. The transverse conveying component 31 is used to carry the longitudinal conveying component 32 to reciprocate between the material plate 214 and the second conveying component.
[0054] Specifically, the transverse conveying assembly 31 includes a rodless cylinder 311 and a mounting base 312. A vertical frame is installed on the frame 1 located on one side of the material feeding cylinder 21. The rodless cylinder 311 is installed on the vertical frame, and the vertical frame supports the rodless cylinder 311 above the frame 1. The mounting base 312 and the slider of the rodless cylinder 311 are fixedly connected by bolts to facilitate the replacement of mounting bases 312 of different sizes.
[0055] Furthermore, the longitudinal conveying assembly 32 includes a second drive cylinder 321 and a pneumatic suction cup 322. The base of the second drive cylinder 321 is fixed to the mounting base 312 by bolts, and the pneumatic suction cup 322 is fixedly connected to the piston rod of the second drive cylinder 321.
[0056] Therefore, when it is necessary to transfer the information label on the placement plate 214 to the second conveying component, the slider of the rodless cylinder 311 drives the second drive cylinder 321 to move upwards towards the placement plate 214. When the pneumatic suction cup 322 faces the placement plate 214 on which the information label is placed, the piston rod of the second drive cylinder 321 extends, thereby driving the pneumatic suction cup 322 to move towards the information label. When the pneumatic suction cup 322 comes into contact with the information label, the pneumatic suction cup 322 starts to work, thereby achieving the adsorption of the information label.
[0057] Subsequently, the piston rod of the second drive cylinder 321 retracts, thereby carrying the pneumatic suction cup 322 to move towards the stand. At the same time, the rodless cylinder 311 starts to work, driving the slider of the rodless cylinder 311 to move towards the second conveying component. When the pneumatic suction cup 322 with the information label attached reaches above the second conveying component, the piston rod of the second drive cylinder 321 extends again, driving the pneumatic suction cup 322 to move towards the second conveying component. Then the pneumatic suction cup 322 stops working, achieving the purpose of placing the information label on the fixed seat on the second conveying component and making it fit together.
[0058] Reference Figures 1-4 An infrared detection sensor (not shown in the figure) is provided on the first drive component 22, and the controller is electrically connected to the first drive component 22, the infrared detection sensor and the second drive component 23.
[0059] First, it should be noted that the controller mentioned is the existing controller of the nameplate bonding equipment, which is a PLC (Programmable Logic Controller). It includes multiple functions such as logic control, timing control, analog control, and multi-machine communication, and has a human-machine interface to facilitate the control and adjustment of the PLC. As it is an existing controller, its specific composition and working principle will not be elaborated here.
[0060] Specifically, the infrared detection sensor is installed on the push plate 222, and the detection end of the infrared detection sensor faces the material placement plate 214.
[0061] Its function is to detect whether there is an information label between the push plate 222 and the material placement plate 214 through an infrared detection sensor;
[0062] When the infrared detection sensor detects an information label plate between the pusher plate 222 and the material placement plate 214, the infrared detection sensor sends the detection information to the controller. The controller can then control the piston rod of the first drive cylinder 221 to move, thereby driving the pusher plate 222 to push the information label plate located at the material outlet 211 of the material placement cylinder 21 towards the material placement plate 214.
[0063] If the infrared detection sensor detects that there is no information label between the push plate 222 and the material placement plate 214, the infrared detection sensor will send the detection information to the controller. The controller will then control the servo motor 231 to start working, thereby driving the drive screw 232, which is coaxially fixed with the servo motor 231, to rotate. This drives the threaded sleeve 233 to move the lifting plate 212 along the material placement cylinder 21, thereby lifting the information label inside the material placement cylinder 21. This process continues until the infrared detection sensor detects that there is an information label between the push plate 222 and the material placement plate 214. After that, the controller will control the servo motor 231 to stop working.
[0064] Therefore, by combining the infrared detection sensor and the controller, the probability of production disorder is effectively reduced due to the lack of an information label between the push plate 222 and the material placement plate 214, which causes the transfer mechanism 3 to operate idly and fail to transfer the information label to the fixed seat of the second conveying component.
[0065] The implementation principle of the feeding device for a nameplate bonding equipment according to an embodiment of this application is as follows: An information label plate is placed inside a feeding cylinder 21. A second driving component 23 lifts the information label plate inside the feeding cylinder 21, with the lifting height of the second driving component 23 being the same as the thickness of the information label plate each time. This ensures that each action of the second driving component 23 lifts the information label plate inside the feeding cylinder 21 to the feeding port 211. A first driving component 22 pushes the information label plate at the feeding port 211 to the transfer mechanism 3, achieving the purpose of orderly supplying the information label plate to the transfer mechanism 3. The transfer mechanism 3 then pushes the information label plate to the second conveying component. Compared with existing nameplate bonding equipment, this application simplifies the transportation path of the information label plate. The transfer mechanism 3 only needs to move along the X and Z axes within the spatial range to transport the information label plate to the fixed seat on the second conveying component. This optimizes the transportation path of the information label plate and eliminates the need for a six-axis robotic arm, playing a positive guiding role in reducing equipment investment costs and improving the transportation efficiency of the information label plate.
[0066] The above are all preferred embodiments of this application and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A feeding device for a nameplate bonding equipment, characterized in that: The frame (1) includes a feeding mechanism (2) and a transfer mechanism (3) mounted on the frame (1). The feeding mechanism (2) is used to convey information label plates to the transfer mechanism (3). The transfer mechanism (3) is used to transfer the information label plates to the second conveying component. The feeding mechanism (2) includes a feeding cylinder (21), a first drive component (22), and a second drive component (23). The feeding cylinder (21) is used to hold the information label plates. The feeding cylinder (21) has a feed port (211). The first drive component (22) and the second drive component (23) are sequentially mounted on the feeding cylinder (21). The second drive component (23) is used to lift the information label plates located in the feeding cylinder (21). The first drive component (22) is used to push the information label plates to the transfer mechanism (3) along the feed port (211). The height that the second drive component (23) lifts each time is the same as the thickness of the information label plates.
2. The feeding device for a nameplate bonding equipment according to claim 1, characterized in that: The material feeding cylinder (21) is provided with a lifting plate (212) and a sliding groove (213) is provided inside the material feeding cylinder (21). The lifting plate (212) and the sliding groove (213) slide together. The second driving component (23) is used to drive the lifting plate (212) to slide along the sliding groove (213).
3. The feeding device for a nameplate bonding equipment according to claim 1, characterized in that: The feeding cylinder (21) has a feeding plate (214) on the side opposite to the first driving component (22). The feeding plate (214) is located on the side of the feed port (211) and is used to accommodate the information label plate pushed out along the feed port (211).
4. A feeding device for a nameplate bonding equipment according to claim 3, characterized in that: The feeding mechanism (2) further includes a conveying component (24), which is disposed on the frame (1) above the material cylinder (21). The conveying component (24) is used to convey information label plates into the material cylinder (21).
5. A feeding device for a nameplate bonding equipment according to claim 4, characterized in that: The material feeding cylinder (21) is provided with a guide plate (215) at one end facing the conveying component (24).
6. A feeding device for a nameplate bonding equipment according to claim 5, characterized in that: The transfer mechanism (3) includes a transverse conveying component (31) and a longitudinal conveying component (32). The longitudinal conveying component (32) is disposed on the transverse conveying component (31). The longitudinal conveying component (32) is used to take out the information label along the material plate (214) and place the information label on the fixed seat located on the second conveying component. The transverse conveying component (31) is used to carry the longitudinal conveying component (32) to reciprocate between the material plate (214) and the second conveying component.
7. A feeding device for a nameplate bonding equipment according to claim 1, characterized in that: A magnetic lock (4) is provided at one end of the frame (1) that abuts against the material cylinder (21), and the magnetic lock (4) is used to lock the material cylinder (21) to the frame (1).
8. A feeding device for a nameplate bonding equipment according to claim 1, characterized in that: An infrared detection sensor (5) is provided on the first drive component (22), and the controller is electrically connected to the first drive component (22), the infrared detection sensor and the second drive component (23).