Plate processing equipment and full-automatic drilling machine
By integrating the workbench and temporary storage device on the base of the plate processing equipment, the problem of low space utilization in the prior art is solved, a more compact equipment structure and higher space utilization are achieved, and the cost is reduced.
Patent Information
- Application Number
- CN202421911266.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-07
- Publication Date
- 2025-06-06
- Estimated Expiration
- 2034-08-07
AI Technical Summary
In existing board processing equipment, the workbench and temporary storage platform occupy a large space, resulting in low space utilization and increasing costs.
An integrated plate processing equipment is designed, and the workbench is integrated with the temporary storage device (including the lifting mechanism and the conveying mechanism) is integrated on the base. The conveying mechanism is driven to move in the height direction through the lifting mechanism, so as to achieve docking with the workbench, and to supply the materials to be processed or receive the processed materials.
It reduces the space occupied by the equipment, makes the overall structure more compact, improves space utilization, saves raw materials and costs, and improves the stability and flexibility of the equipment.
Smart Images

Figure CN222945719U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of PCB board conveying devices, and in particular to a board processing equipment and a fully automatic drilling machine. Background Art
[0002] In the production workshop of printed circuit boards (PCB), with the gradual maturity of PCB drilling machines and forming machines, the scale of processing has become increasingly prominent.
[0003] In the prior art, the sheet processing equipment includes a workbench and a temporary storage platform independently arranged on one side of the workbench. The temporary storage platform is used to transport the PCB boards from the batching trolley to the workbench, or to transport the PCB boards processed on the workbench to the batching trolley. The workbench and the temporary storage platform occupy a large space, which reduces the space utilization rate of the sheet processing equipment and increases the cost. Utility Model Content
[0004] In order to overcome the problems existing in the above-mentioned prior art, the main purpose of the present application is to provide a plate processing equipment and a fully automatic drilling machine that can improve space utilization.
[0005] In order to achieve the above objectives, this application specifically adopts the following technical solutions:
[0006] A plate processing device, comprising:
[0007] Pedestal;
[0008] A workbench, which is arranged on the base and is used to carry materials to be processed;
[0009] A temporary storage device, the temporary storage device comprising a lifting mechanism and a conveying mechanism;
[0010] The lifting mechanism is connected to the side of the base, and the conveying mechanism is connected to the lifting mechanism. The lifting mechanism is used to drive the conveying mechanism to move in the height direction; the conveying mechanism is used to dock with the workbench to supply the workbench with materials to be processed or receive processed materials conveyed by the workbench.
[0011] In the above scheme, the workbench is arranged on the base, and the temporary storage device includes a lifting mechanism, which is connected to the side of the base. By integrating the workbench and the temporary storage device into the base, the space occupied by the plate processing equipment is reduced, making the overall structure of the plate processing equipment more compact, improving space utilization, and eliminating the need to additionally set up a base for supporting the temporary storage device, thereby saving raw materials and reducing costs.
[0012] In some embodiments, the lifting mechanism includes a mounting seat, a driving assembly and a lifting assembly, the mounting seat is connected to the side of the base, the side of the driving assembly is arranged on the mounting seat, the lifting assembly is connected to the driving assembly, and the conveying mechanism is connected to the lifting assembly.
[0013] In the above solution, the conveying mechanism is connected to the lifting assembly and is driven by the lifting assembly, thereby ensuring that the conveying mechanism can be docked with the workbench.
[0014] In some embodiments, the lifting assembly is provided with two groups, and the two groups of the lifting assemblies are spaced apart along the length extension direction of the mounting seat, and the lifting assembly is any one of a screw nut assembly, a linear motor assembly, and a lifting cylinder.
[0015] In the above scheme, two groups of lifting components are provided to ensure the stability of lifting.
[0016] In some embodiments, the lifting assembly is a screw-nut assembly, and the driving assembly includes a second motor, a driving wheel, a synchronous wheel and a transmission belt. The second motor is arranged on the mounting seat, the driving wheel is connected to the second motor, and two synchronous wheels are provided. The two synchronous wheels are respectively connected to two groups of the screw-nut assemblies, and the transmission belt is respectively wound around the driving wheel and the synchronous wheel.
[0017] In the above solution, the two groups of screw nut assemblies are respectively arranged at intervals along the length extension direction of the mounting seat, thereby improving the stability of the lifting mechanism.
[0018] In some embodiments, the screw-nut assembly includes a fixed part, a screw, a movable part and a supporting part, the fixed part is connected to the mounting seat, the screw is arranged on the fixed part, and the screw is connected to the synchronous wheel, the movable part is movably connected to the screw, the supporting part is connected to the movable part, and the conveying mechanism is connected to the supporting part.
[0019] In the above solution, the driving is performed by a screw rod, thereby improving the stability of the lifting mechanism.
[0020] In some embodiments, the conveying mechanism includes a mounting bracket and a conveying assembly, the mounting bracket is connected to the lifting mechanism, the mounting bracket includes a feed layer and a discharge layer arranged in sequence along the height direction, and the conveying assembly is provided with two groups, and the two groups of conveying assemblies are respectively arranged in the feed layer and the discharge layer, one of the conveying assemblies is used to convey the material to be processed to the workbench, and the other conveying assembly is used to receive the processed material supplied by the workbench.
[0021] In the above scheme, the two groups of conveying components are respectively arranged in the feeding layer and the discharging layer, and the feeding and discharging can be carried out simultaneously, thereby improving the working efficiency.
[0022] In some embodiments, the conveying assembly includes a first motor, a transmission shaft and multiple synchronous belt modules. The multiple synchronous belt modules are respectively connected to the transmission shaft and are arranged at intervals along the length direction of the transmission shaft. The first motor is connected to the transmission shaft and is used to drive the transmission shaft to drive the multiple synchronous belt modules to move synchronously.
[0023] In the above solution, a plurality of synchronous belt modules are driven by one motor to move simultaneously, thereby reducing costs.
[0024] In some embodiments, among the plurality of synchronous belt modules, two adjacent synchronous belt modules form a conveying station, and the conveying mechanism further includes a plurality of pin guides, each of which is respectively arranged at each of the conveying stations.
[0025] In the above scheme, the material is guided by the pin guide, which prevents the material from shifting during transportation, thereby ensuring the stability of the transported material.
[0026] In some embodiments, the temporary storage device further comprises a plurality of lifting mechanisms, each of which is disposed at each of the conveying stations;
[0027] Each of the jacking mechanisms comprises two groups of jacking components spaced apart along the length direction, the jacking components comprising a jacking cylinder and a movable plate, the jacking cylinder being arranged on the mounting bracket, the movable plate being connected to the output end of the jacking cylinder, and the jacking cylinder being used to drive the movable plate to move along the height direction so that the material on the conveying station can be separated from the conveying component.
[0028] In the above scheme, the lifting mechanism is used to make it unnecessary for each conveying station to convey materials synchronously, thereby saving production time and improving the flexibility of the plate processing equipment.
[0029] In some embodiments, the plate processing equipment further includes an outer cover component, wherein the outer cover component is connected to the base and encloses the base to form a receiving cavity, and the temporary storage device is disposed in the receiving cavity.
[0030] In the above solution, the outer cover assembly prevents dust and other impurities from affecting the temporary storage device, thereby ensuring the stability of the temporary storage device.
[0031] A fully automatic drilling machine comprises a panel matching robot and any of the panel processing equipment described above, wherein the panel matching robot can dock with the panel processing equipment along the height direction to receive a PCB board transferred by the panel processing equipment or transfer the PCB board to the panel processing equipment. BRIEF DESCRIPTION OF THE DRAWINGS
[0032] Figure 1 A schematic diagram of the structure of a fully automatic drilling machine provided in an embodiment of the present application;
[0033] Figure 2 A schematic diagram of the structure of a plate processing device provided in an embodiment of the present application;
[0034] Figure 3 A schematic diagram of a partial structure of a plate processing device provided in an embodiment of the present application;
[0035] Figure 4 for Figure 3 A partial enlarged view of the middle A;
[0036] Figure 5 A schematic diagram of the structure of the lifting mechanism of the plate processing equipment provided in the embodiment of the present application;
[0037] Figure 6 This is a schematic diagram of the structure of the lifting mechanism of the plate processing equipment provided in an embodiment of the present application, viewed from above.
[0038] Reference numerals:
[0039] 1. Base;
[0040] 2. Temporary storage device;
[0041] 21, lifting mechanism; 210, mounting seat; 211, driving assembly; 211a, second motor; 211b, driving wheel; 211c, synchronous wheel; 211d, transmission belt; 211e, tensioning wheel; 212, screw nut assembly; 212a, fixing member; 212b, screw rod; 212c, movable member; 212d, supporting member;
[0042] 22, conveying mechanism; 220, mounting bracket; 220a, feeding layer; 220b, discharging layer; 221, conveying assembly; 221a, mounting member; 221b, first motor; 221c, transmission shaft; 221d, synchronous belt module; 221e, conveying station; 221f, driving wheel; 221g, driven wheel; 221h, synchronous belt; 221i, pin guide; 221j, first guide portion;
[0043] 23. Lifting mechanism; 230. Lifting assembly; 230a. Lifting cylinder; 230b. Movable plate;
[0044] 3. Cover assembly; 31. Opening;
[0045] 4. Electric box assembly;
[0046] 100. Fully automatic drilling machine; 101. Panel assembly robot; 102. Plate processing equipment. DETAILED DESCRIPTION
[0047] In order to make the purpose, technical solution and advantages of the present application more clearly understood, the present application is further described in detail below in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application and are not used to limit the present application.
[0048] In the description of this application, unless otherwise clearly specified and limited, the terms "first" and "second" are used for descriptive purposes only and cannot be understood as indicating or implying relative importance; unless otherwise specified or explained, the term "multiple" refers to two or more, and the term "multiple" refers to two or more; the terms "connected", "fixed", etc. should be understood in a broad sense, for example, "connected" can be a fixed connection, a detachable connection, an integral connection, or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium. For ordinary technicians in this field, the specific meanings of the above terms in this application can be understood according to specific circumstances.
[0049] In the description of this specification, it should be understood that the directional words such as "upper" and "lower" described in the embodiments of the present application are described at the angles shown in the accompanying drawings and should not be understood as limiting the embodiments of the present application. In addition, in the context, it should also be understood that when it is mentioned that an element is connected to another element "upper" or "lower", it can not only be directly connected to another element "upper" or "lower", but also indirectly connected to another element "upper" or "lower" through an intermediate element.
[0050] Reference Figure 1 As shown, Figure 1 A schematic diagram of the structure of a fully automatic drilling machine provided in an embodiment of the present application. This embodiment discloses a fully automatic drilling machine 100, which includes a panel matching robot 101 and a panel processing device 102, wherein the panel matching robot 101 can dock with the panel processing device 102 along a height direction to receive a PCB board transferred by the panel processing device 102 or transfer the PCB board to the panel processing device 102.
[0051] Reference Figure 2 As shown, Figure 2A schematic diagram of the structure of the plate processing equipment provided in the embodiment of the present application. The plate processing equipment 102 includes a base 1, a workbench (not shown in the figure), a temporary storage device 2, a base frame, a crossbeam and a processing device. The workbench is arranged on the base 1, and is used to carry the material to be processed and slide relative to the base 1 in the width direction. The temporary storage device 2 includes a lifting mechanism 21 and a conveying mechanism 22. The lifting mechanism 21 is connected to the side of the base 1. The conveying mechanism 22 is connected to the lifting mechanism 21. The lifting mechanism 21 is used to drive the conveying mechanism 22 to move in the height direction, and the conveying mechanism 22 is used to dock with the workbench in the height direction to supply the material to be processed to the workbench in the width direction or receive the processed material conveyed by the workbench. The base frame is arranged on one side of the base 1. The crossbeam is installed on the base frame. The processing device is installed on the crossbeam and is used to process the material to be processed on the workbench, wherein the length direction is Figure 2 In the X direction, the width direction is Figure 2 In the Y direction, the height direction is Figure 2 Middle Z direction.
[0052] In this embodiment, two groups of temporary storage devices 2 are provided, and the two groups of temporary storage devices 2 are respectively arranged at intervals along the length extension direction of the base 1 to improve the processing efficiency of the plate processing equipment 102 .
[0053] The workbench of this embodiment is arranged on the base 1, and the temporary storage device 2 includes a lifting mechanism 21, and the lifting mechanism 21 is connected to the side of the base 1. By integrating the workbench and the temporary storage device 2 into the base 1, the space occupied by the plate processing equipment 102 is reduced, so that the overall structure of the plate processing equipment 102 is more compact, the space utilization rate is improved, and there is no need to additionally set up a base for supporting the temporary storage device 2, which saves raw materials and reduces costs.
[0054] Reference Figure 3 As shown, Figure 3 Schematic diagram of a partial structure of a plate processing device provided in an embodiment of the present application. The conveying mechanism 22 includes a mounting bracket 220 and a conveying assembly 221. The mounting bracket 220 includes a feed layer 220a and a discharge layer 220b sequentially arranged in the height direction. There are two groups of conveying assemblies 221, and the two groups of conveying assemblies 221 are respectively arranged in the feed layer 220a and the discharge layer 220b. One of the conveying assemblies 221 is used to convey the material to be processed to the workbench, and the other conveying assembly 221 is used to receive the processed material supplied by the workbench. The lifting mechanism 21 is connected to the mounting bracket 220.
[0055] Reference Figure 3 and Figure 4 As shown, Figure 4 for Figure 3A partial enlarged view of the position A in the middle. The conveying assembly 221 includes a plurality of mounting members 221a, a first motor 221b, a transmission shaft 221c and a plurality of synchronous belt modules 221d, wherein the plurality of mounting members 221a are arranged at intervals along the length extension direction of the mounting bracket 220. The transmission shaft 221c is rotatably arranged through the plurality of mounting members 221a, and the transmission shaft 221c is connected to the first motor 221b. Each synchronous belt module 221d is respectively arranged on each mounting member 221a, and the plurality of synchronous belt modules 221d are respectively connected to the transmission shaft 221c. Among the plurality of synchronous belt modules 221d, two adjacent synchronous belt modules 221d respectively form a conveying station 221e, and a plurality of materials to be processed are respectively located on each conveying station 221e, wherein the number and position of the conveying stations 221e are arranged corresponding to the number and position of the workbench. Among them, each conveying station 221e can be equipped with position sensors such as edge-finding sensors, material detection sensors, and in-place sensors to accurately locate and place the materials to be processed.
[0056] Each synchronous belt module 221d includes a driving wheel 221f, a driven wheel 221g and a synchronous belt 221h, respectively. The driving wheel 221f and the driven wheel 221g are respectively arranged at the two ends of the mounting member 221a. The synchronous belt 221h is respectively wound around the driving wheel 221f, the mounting member 221a and the driven wheel 221g. The mounting member 221a is used to support the synchronous belt 221h when carrying materials, so as to prevent the synchronous belt 221h from breaking due to excessive load, thereby improving the service life of the synchronous belt 221h. The transmission shaft 221c is connected to each driving wheel 221f respectively. The first motor 221b is used to drive the transmission shaft 221c to drive each driving wheel 221f to move synchronously, thereby driving each synchronous belt 221h to move, so that the materials to be processed located at each conveying station 221e move simultaneously along the width direction.
[0057] In this embodiment, the multiple synchronous belt modules 221d of the conveying mechanism 22 are respectively driven by a motor, which saves costs and ensures the synchronous movement of the multiple synchronous belt modules 221d. It can be understood that in other embodiments, the multiple synchronous belt modules 221d can also be driven by multiple motors.
[0058] In this embodiment, the conveying mechanism 22 is a synchronous belt conveyor, which enables flexible contact between the material and the synchronous belt, thereby reducing the bumps or wear generated during the material conveying process. It can be understood that in other embodiments, the conveying mechanism 22 can also adopt other structures, such as conveying rollers or chain conveying structures.
[0059] In this embodiment, the surface of the synchronous belt 221h is higher than the surface of the mounting member 221a to prevent the material from rubbing against the mounting member 221a when placed on the synchronous belt 221h, thereby ensuring smooth transportation of the material.
[0060] In this embodiment, the conveying mechanism 22 also includes a plurality of pin guides 221i, each pin guide 221i is respectively arranged at each conveying station 221e, and the pin guide 221i is formed with a pin guide groove for guiding the material to be processed to prevent the material from shifting during transportation, thereby ensuring the stability of the transported material, and the pin guide 221i located in the feeding layer 220a includes a first guide portion 221j at the end away from the workbench, and the opening of the first guide portion 221j at the end away from the workbench is larger than the opening of the first guide portion 221j at the end close to the workbench, and the pin guide 221i located in the discharging layer 220b includes a second guide portion at the end close to the workbench, and the opening of the second guide portion at the end close to the workbench is larger than the opening of the second guide portion at the end away from the workbench, so that the first guide portion 221j and the second guide portion are trumpet-shaped to facilitate guiding the pins.
[0061] Reference Figure 3 and Figure 4 As shown, the temporary storage device 2 further includes a plurality of lifting mechanisms 23, each of which is disposed at each conveying station 221e. Each lifting mechanism 23 includes two groups of lifting components 230 spaced apart along the length direction to support the two ends of the material respectively to ensure the stability of the lifted material.
[0062] The lifting assembly 230 includes a lifting cylinder 230a and a movable plate 230b. The lifting cylinder 230a is arranged on the mounting bracket 220. The movable plate 230b is connected to the output end of the lifting cylinder 230a. The lifting cylinder 230a is used to drive the movable plate 230b to move in the height direction. When a workbench corresponding to a conveying station 221e has not completed processing of materials, the material on the conveying station 221e is lifted so that the material on the conveying station 221e is separated from the conveying assembly 221, so that other conveying stations 221e do not need to wait for the workbench corresponding to the conveying station 221e to complete processing of the materials before conveying the materials, thereby saving production time, improving the flexibility of the plate processing equipment 102, and thus improving the utilization rate of the plate processing equipment 102. Among them, the number of lifting cylinders 230a is not specifically limited. The lifting cylinders 230a can be one, two or more than two. Preferably, the lifting cylinders 230a are set to two, and the two lifting cylinders 230a are respectively spaced along the length direction of the movable plate 230b to improve the stability when lifting the plate.
[0063] Reference Figure 5 and Figure 6 As shown, Figure 5 A schematic diagram of the structure of the lifting mechanism of the plate processing equipment provided in the embodiment of the present application, Figure 6A schematic diagram of the structure of the lifting mechanism of the plate processing equipment provided in the embodiment of the present application, viewed from above. The lifting mechanism 21 includes a mounting seat 210, a drive assembly 211 and a screw nut assembly 212, and the mounting seat 210 is connected to the side of the base 1. The drive assembly 211 is arranged on the mounting seat 210. The screw nut assembly 212 is connected to the drive assembly 211. The conveying mechanism 22 is connected to the screw nut assembly 212. This embodiment is driven by a screw drive mechanism, which improves the stability of the lifting mechanism 21. It can be understood that in other embodiments, the lifting mechanism 21 can also be other structures, such as a linear motor assembly, a lifting cylinder, etc.
[0064] There are two groups of screw nut assemblies 212, and the two groups of screw nut assemblies 212 are spaced apart along the length extension direction of the mounting seat 210. The driving assembly 211 includes a second motor 211a, a driving wheel 211b, a synchronous wheel 211c and a transmission belt 211d. The second motor 211a is arranged on the mounting seat 210. The driving wheel 211b is connected to the second motor 211a. There are two synchronous wheels 211c, and the two synchronous wheels 211c are respectively connected to the two groups of screw nut assemblies 212. The transmission belt 211d is respectively wound around the driving wheel 211b and the synchronous wheel 211c.
[0065] The screw nut assembly 212 includes a fixed member 212a, a screw rod 212b, a movable member 212c and a support member 212d, wherein the fixed member 212a is connected to the mounting seat 210. The screw rod 212b is arranged on the fixed member 212a, and the screw rod 212b is connected to the synchronous wheel 211c. The movable member 212c is movably connected to the screw rod 212b. The support member 212d includes a first connecting portion, a second connecting portion and a support portion, wherein the first connecting portion and the second connecting portion are arranged at intervals, and one end of the first connecting portion and the second connecting portion is connected to the movable member 212c, and the other end of the first connecting portion and the second connecting portion is connected to the support portion, and the stability of the support is improved by the first connecting portion and the second connecting portion. The conveying mechanism 22 is connected to the support portion.
[0066] During operation, the second motor 211a drives the driving wheel 211b to rotate, the driving wheel 211b rotates to drive the transmission belt 211d to move, the transmission belt 211d moves to drive the synchronous wheel 211c to rotate, the synchronous wheel 211c rotates to drive the screw rod 212b to rotate, the screw rod 212b rotates to drive the movable part 212c to move along the length extension direction of the screw rod 212b, thereby driving the support part 212d to move along the height direction, the support part 212d moves along the height direction to drive the conveying mechanism 22 to move along the height direction, so that the conveying mechanism 22 is docked with the workbench along the height direction.
[0067] In this embodiment, two groups of screw nut assemblies 212 are provided to ensure the stability of the screw nut assemblies 212 driving the conveying mechanism 22 to move. It can be understood that in other embodiments, the screw nut assemblies 212 may also be provided with only one group, three groups, or more than three groups.
[0068] In this embodiment, the driving component 211 also includes two tensioning wheels 211e. The two tensioning wheels 211e are respectively arranged on the mounting seat 210. The transmission belt 211d is wound around the two tensioning wheels 211e. The tensioning wheel 211e is used to further tighten the transmission belt 211d to improve the transmission stability of the transmission belt 211d.
[0069] Reference Figure 1 and Figure 2 As shown, the plate processing equipment 102 further includes an outer cover component 3 and an electric box component 4. The outer cover component 3 is connected to the base 1 and encloses the base 1 to form a receiving cavity. The temporary storage device 2 is arranged in the receiving cavity, and the outer cover component 3 is provided with an opening 31. The panel distribution robot 101 is docked with the plate processing equipment 102 through the opening 31. The outer cover component 3 is used to prevent dust and other impurities from affecting the temporary storage device 2, thereby ensuring the working stability of the temporary storage device 2. The electric box component 4 is arranged in the receiving cavity, and the electric box component 4 is used to centrally supply power to the equipment for easy maintenance and replacement.
[0070] In a specific application scenario, when working, the panel matching robot 101 is first docked with the conveying mechanism 22, and then the panel matching robot 101 cooperates with the conveying component 221 located at the feeding layer 220a to convey the material to be processed on the panel matching robot 101 to the feeding layer 220a, and then the conveying mechanism 22 is driven to move by the lifting mechanism 21 to make the feeding layer 220a docked with the workbench, and the conveying component 221 of the feeding layer 220a conveys the plate to be processed to the workbench for processing. After the processing is completed, The lifting mechanism 21 drives the conveying mechanism 22 to move, so that the discharge layer 220b is docked with the workbench, and the processed materials are transported to the discharge layer 220b through the conveying component 221 of the discharge layer 220b, and then the panel matching robot 101 is docked with the conveying mechanism 22, and the panel matching robot 101 cooperates with the conveying component 221 located at the discharge layer 220b to transport the processed materials to the panel matching robot 101, and then the cycle is repeated. When the panel matching robot 101 is full of processed plates, it moves to the next process.
[0071] The above is only a preferred specific implementation of the present application, but the protection scope of the present application is not limited thereto. Any changes or substitutions that can be easily thought of by a person skilled in the art within the technical scope disclosed in the present application should be included in the protection scope of the present application. Therefore, the protection scope of the present application should be based on the protection scope of the claims.
Claims
1. A sheet metal processing equipment, characterized in that: include: Pedestal; A workbench, which is arranged on the base and is used to carry materials to be processed; A temporary storage device, the temporary storage device comprising a lifting mechanism and a conveying mechanism; The lifting mechanism is connected to the side of the base, and the conveying mechanism is connected to the lifting mechanism. The lifting mechanism is used to drive the conveying mechanism to move in the height direction; the conveying mechanism is used to dock with the workbench to supply the workbench with materials to be processed or receive processed materials conveyed by the workbench.
2. The plate processing equipment according to claim 1, characterized in that: The lifting mechanism includes a mounting seat, a driving assembly and a lifting assembly, wherein the mounting seat is connected to the side of the base, the side of the driving assembly is arranged on the mounting seat, the lifting assembly is connected to the driving assembly, and the conveying mechanism is connected to the lifting assembly.
3. The plate processing equipment according to claim 2, characterized in that: The lifting components are provided with two groups, and the two groups of lifting components are respectively arranged at intervals along the length extension direction of the mounting seat. The lifting components are any one of a screw nut assembly, a linear motor assembly, and a lifting cylinder.
4. The plate processing equipment according to claim 3, characterized in that: The lifting assembly is a screw nut assembly, and the driving assembly includes a second motor, a driving wheel, a synchronous wheel and a transmission belt. The second motor is arranged on the mounting seat, the driving wheel is connected to the second motor, two synchronous wheels are provided, and the two synchronous wheels are respectively connected to two groups of the screw nut assemblies, and the transmission belt is respectively wound around the driving wheel and the synchronous wheel.
5. The sheet material processing equipment according to claim 4, characterized in that: The screw-nut assembly includes a fixed part, a screw, a movable part and a supporting part. The fixed part is connected to the mounting seat, the screw is arranged on the fixed part, and the screw is connected to the synchronous wheel. The movable part is movably connected to the screw, the supporting part is connected to the movable part, and the conveying mechanism is connected to the supporting part.
6. The plate processing equipment according to claim 1, characterized in that: The conveying mechanism includes a mounting bracket and a conveying component, the mounting bracket is connected to the lifting mechanism, the mounting bracket includes a feed layer and a discharge layer arranged in sequence along the height direction, the conveying component is provided with two groups, the two groups of conveying components are respectively arranged in the feed layer and the discharge layer, one of the conveying components is used to convey the material to be processed to the workbench, and the other conveying component is used to receive the processed material supplied by the workbench.
7. The plate processing equipment according to claim 6, characterized in that: The conveying assembly includes a first motor, a transmission shaft and multiple synchronous belt modules. The multiple synchronous belt modules are respectively connected to the mounting bracket and are arranged at intervals along the length extension direction of the mounting bracket. The transmission shaft is respectively connected to the multiple synchronous belt modules. The first motor is connected to the transmission shaft and is used to drive the transmission shaft to drive the multiple synchronous belt modules to move synchronously.
8. The plate processing equipment according to claim 7, characterized in that: Among the plurality of synchronous belt modules, two adjacent synchronous belt modules form a conveying station, and the conveying mechanism further comprises a plurality of pin guides, each of which is respectively arranged at each of the conveying stations.
9. The plate processing equipment according to claim 8, characterized in that: The temporary storage device further comprises a plurality of lifting mechanisms, each of which is respectively arranged at each of the conveying stations; Each of the jacking mechanisms comprises two groups of jacking components spaced apart along the length direction, the jacking components comprising a jacking cylinder and a movable plate, the jacking cylinder being arranged on the mounting bracket, the movable plate being connected to the output end of the jacking cylinder, and the jacking cylinder being used to drive the movable plate to move along the height direction so that the material on the conveying station can be separated from the conveying component.
10. The plate processing equipment according to any one of claims 1 to 9, characterized in that: The plate processing equipment further comprises an outer cover component, wherein the outer cover component is connected to the base and encloses the base to form a receiving cavity, and the temporary storage device is arranged in the receiving cavity.
11. A fully automatic drilling machine, characterized in that: It comprises a panel matching robot and a panel processing device as described in any one of claims 1 to 10, wherein the panel matching robot can dock with the panel processing device along the height direction to receive the PCB board transferred by the panel processing device or transfer the PCB board to the panel processing device.