Double-track board collecting machine for PCB (printed circuit board) production
By designing a dual-rail board collecting machine that includes a frame, a board conveying assembly, a material frame lifting assembly, and a traversing assembly, the problem of poor adaptability in existing technologies has been solved, achieving efficient PCB board collection and enhanced adaptability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HUIZHOU HUAYU TECH CO LTD
- Filing Date
- 2025-03-13
- Publication Date
- 2026-04-17
AI Technical Summary
The existing double plate collecting machine has poor adaptability and cannot adapt to the situation where the spacing between the double conveyor tracks is not equal under different manufacturers' working conditions, resulting in low plate collecting efficiency.
A dual-track board collecting machine for PCB board production was designed, comprising a frame, a board conveying assembly, a material frame lifting assembly, and a transverse moving assembly. The transverse moving assembly slides on the track assembly to adjust the board conveying channel to align with the conveying equipment track, and the material frame lifting assembly enables efficient collection of PCB boards, adapting to different working conditions.
It improves the efficiency of PCB board take-up and can adapt to different processing conditions, enhancing the adaptability of the dual-track take-up machine.
Smart Images

Figure CN224132024U_ABST
Abstract
Description
Technical Field
[0001] This disclosure relates to the field of PCB board manufacturing and processing, and in particular to a double-track board take-up machine for PCB board manufacturing. Background Technology
[0002] With the rapid development of the electronics industry, printed circuit boards (PCBs), as core components of electronic devices, reduce wiring and assembly errors and improve the automation of electronic devices. However, after PCBs are produced on the production line, they are transported by conveyor belt to the material frames in the receiving machine for batch recycling. PCB production lines are generally single-track, and with the increase in market demand, single-track production lines can no longer meet the needs. Therefore, dual-track production lines have emerged on the market. To meet the unloading requirements of dual-track production lines in batches, receiving machines are also being upgraded, resulting in dual-track receiving machines. For example, Chinese patent application number CN201510850631.7 discloses a dual receiving machine.
[0003] While the technical solution of the aforementioned patent can meet the plate-receiving requirements of a dual-track production line, it also has the following problems:
[0004] Because the lifting areas of the two material frames of the double-collecting plate machine are fixed, meaning the two collecting channels are also fixed, there is a gap between the two collecting channels due to space limitations. Furthermore, the positions of the two conveyor tracks of the double-collecting plate machine are also fixed. This means the double conveyor tracks of the front-end process must be aligned with the two conveyor tracks of the double-collecting plate machine; that is, the gap between the two conveyor tracks must be equal to the gap between the two collecting channels. Consequently, the double-collecting plate machine can only adapt to specific working conditions. However, different manufacturers may produce different working conditions. For example, the gap between the two conveyor tracks of the front-end process may not be equal to the gap between the two collecting channels of the double-collecting plate machine. This means the two conveyor tracks of the double-collecting plate machine cannot be aligned one-to-one with the two conveyor tracks of the front-end conveying equipment, making the double-collecting plate machine unsuitable for this processing condition. This also illustrates the poor adaptability of the double-collecting plate machine. Utility Model Content
[0005] The purpose of this disclosure is to overcome the shortcomings of the prior art and provide a dual-track PCB take-up machine that can improve the PCB take-up efficiency and adapt to different processing conditions.
[0006] The purpose of this disclosure is achieved through the following technical solution:
[0007] A dual-track board receiving machine for PCB board production includes: a frame, a board conveying assembly, and a material frame lifting assembly. The frame has an inlet, a board conveying cavity, a first receiving port, and a second receiving port. The board conveying cavity is connected to the inlet, the first receiving port, and the second receiving port, respectively. There is a gap between the first receiving port and the second receiving port. The board conveying assembly includes a first conveying component and a second conveying component, both of which are disposed within the board conveying cavity. The first conveying component forms a first conveying channel, and the second conveying component forms a second conveying channel. The material frame lifting assembly includes a first material frame lifting component and a second material frame lifting component, both of which are disposed on the frame. The first material frame lifting component is used to drive the first material frame to lift, and the second material frame lifting component is used to drive the second material frame to lift.
[0008] The dual-track plate take-up machine also includes a transverse movement assembly;
[0009] The lateral movement assembly includes a first track component, a second track component, a first lateral movement component, and a second lateral movement component. The first track component, the second track component, the first lateral movement component, and the second lateral movement component are all installed on the bottom of the conveying plate cavity. The moving end of the first lateral movement component is fixedly connected to the first conveying plate component. The first conveying plate component is slidably connected to the first track component and the second track component respectively. The moving end of the second lateral movement component is fixedly connected to the second conveying plate component. The second conveying plate component is slidably connected to the first track component and the second track component respectively.
[0010] One end of the first conveying channel is movably connected to the first conveying track of the front-end conveying equipment, and the other end of the first conveying channel is movably connected to the first receiving port.
[0011] One end of the second conveying channel is movably connected to the second conveying track of the front-end conveying device, and the other end of the second conveying channel is movably connected to the second receiving port.
[0012] In one embodiment, the first conveying plate component includes a first conveying frame, a first conveying plate, a second conveying plate, a first conveying drive, a second conveying drive, a first conveying belt, and a second conveying belt. The first conveying frame is slidably connected to the first track component and the second track component. The first conveying plate and the second conveying plate are both disposed on the first conveying frame. The first conveying drive is mounted on the first conveying plate. The first conveying belt is sleeved on the rotating pulley end of the first conveying drive. The second conveying drive is mounted on the second conveying plate. The second conveying belt is sleeved on the rotating pulley end of the second conveying drive. The first conveying plate and the second conveying plate together form the first conveying plate channel.
[0013] In one embodiment, the second conveying plate component includes a second conveying frame, a third conveying plate, a fourth conveying plate, a third conveying drive, a fourth conveying drive, a third conveying belt, and a fourth conveying belt. The second conveying frame is slidably connected to the first track component and the second track component, respectively. The third and fourth conveying plates are both disposed on the second conveying frame. The third conveying drive is mounted on the third conveying plate. The third conveying belt is sleeved on the rotating pulley end of the third conveying drive. The fourth conveying drive is mounted on the fourth conveying plate. The fourth conveying belt is sleeved on the rotating pulley end of the fourth conveying drive. The third and fourth conveying plates together form the second conveying plate channel.
[0014] In one embodiment, the first material frame lifting component includes a first lifting drive component, a first lifting frame, a first transmission screw, and a first conveying component. The first lifting drive component is mounted on the frame. One end of the first transmission screw is fixedly connected to the power output end of the first lifting drive component, and the other end of the first transmission screw is rotatably connected to the frame. The first lifting frame is threadedly connected to the first transmission screw, and the first conveying component is disposed within the first lifting frame.
[0015] In one embodiment, the second material frame lifting component includes a second lifting drive component, a second lifting frame, a second transmission screw, and a second conveying component. The second lifting drive component is mounted on the frame. One end of the second transmission screw is fixedly connected to the power output end of the second lifting drive component, and the other end of the second transmission screw is rotatably connected to the frame. The second lifting frame is threadedly connected to the second transmission screw, and the second conveying component is disposed within the second lifting frame.
[0016] In one embodiment, the first traverse member includes a first traverse drive and a first traverse conveyor belt. Both the first traverse drive and the first traverse conveyor belt are mounted on the frame. The first traverse conveyor belt is sleeved on the rotating pulley end of the first traverse drive. The first transmission frame is fixedly connected to the first traverse conveyor belt.
[0017] In one embodiment, the second transverse component includes a second transverse drive and a second transverse conveyor belt. Both the second transverse drive and the second transverse conveyor belt are mounted on the frame. The second transverse conveyor belt is sleeved on the rotating pulley end of the second transverse drive. The second transmission frame is fixedly connected to the second transverse conveyor belt.
[0018] In one embodiment, the dual-track board take-up machine for PCB board production further includes a material frame conveying assembly. The material frame conveying assembly includes a first feeding frame, a first discharging frame, a first feeding conveyor, a first discharging conveyor, a second feeding frame, a second discharging frame, a second feeding conveyor, and a second discharging conveyor. The first feeding frame, the first discharging frame, the second feeding frame, and the second discharging frame are all disposed on the machine frame. The first feeding conveyor is disposed within the first feeding frame, the first discharging conveyor is disposed within the first discharging frame, the second feeding conveyor is disposed within the second feeding frame, and the second discharging conveyor is disposed within the second discharging frame.
[0019] In one embodiment, the first conveyor further includes a first translation plate, a first translation drive, a first translation conveyor belt, a first telescopic drive, and a first push plate. The first translation plate is mounted on the first transmission frame, the first translation drive is mounted on the first translation plate, the first translation conveyor belt is sleeved on the rotating wheel end of the first translation drive, the first telescopic drive is mounted on the first translation conveyor belt, and the first push plate is mounted on the telescopic end of the first telescopic drive.
[0020] In one embodiment, the second conveyor further includes a second translation plate, a second translation drive, a second translation conveyor belt, a second telescopic drive, and a second push plate. The second translation plate is mounted on the second transmission frame, the second translation drive is mounted on the second translation plate, the second translation conveyor belt is sleeved on the rotating wheel end of the second translation drive, the second telescopic drive is mounted on the second translation conveyor belt, and the second push plate is mounted on the telescopic end of the second telescopic drive.
[0021] Compared with the prior art, this disclosure has at least the following advantages:
[0022] 1. By driving the first transverse component to slide on the first and second track components, one end of the first conveying channel of the first conveying component is aligned with the first conveying track of the front-end conveying device. The PCB board is conveyed from the first conveying track into the first conveying channel. Then, the first transverse component is driven to slide on the first and second track components, so that the other end of the first conveying channel of the first conveying component is aligned with the first receiving port. At the same time, the first material frame lifting component drives the first material frame to rise and fall, driving the first conveying component to convey the PCB board in the first conveying channel from the first receiving port into the first material frame. Similarly, by driving the second transverse component to slide on the first and second track components, one end of the second conveying channel of the second conveying component is aligned with the second conveying track of the front-end conveying device. The PCB board is conveyed from the second conveying track into the second conveying channel. Then, the second transverse component is driven to slide on the first and second track components, so that the other end of the first conveying channel of the second conveying component is aligned with the second receiving port. At the same time, the second material frame lifting component drives the second material frame to rise and fall, driving the second conveying component to convey the PCB board in the second conveying channel from the second receiving port into the second material frame. This can improve the PCB board receiving efficiency.
[0023] 2. When the distance between the first and second receiving ports is not equal to the distance between the first and second conveying tracks of the front-end conveying equipment, the first and second conveying components can be moved by the first and second transverse components respectively, so that the first conveying track is movably connected to one end of the first conveying channel, the first receiving port is movably connected to the other end of the first conveying channel, the second conveying track is movably connected to one end of the second conveying channel, and the second receiving port is movably connected to the other end of the second conveying channel. This allows the double-track receiving machine to adapt to different processing conditions, thereby improving the adaptability of the double-track receiving machine. Attached Figure Description
[0024] To more clearly illustrate the technical solutions of the embodiments of this disclosure, the accompanying drawings used in the embodiments will be briefly described below. It should be understood that the following drawings only show some embodiments of this disclosure and should not be regarded as a limitation of the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.
[0025] Figure 1 This is a schematic diagram of a dual-track PCB winding machine used in PCB board production in one embodiment.
[0026] Figure 2 for Figure 1 The diagram shows a partial structural schematic of a dual-track PCB take-up machine used in PCB production.
[0027] Figure 3 for Figure 2The diagram shows a partial structural schematic of a dual-track PCB take-up machine used in PCB production.
[0028] Figure 4 for Figure 2 The diagram shows a partial structural schematic of a dual-track PCB take-up machine used in PCB production.
[0029] Figure 5 for Figure 2 The diagram shows a partial structural schematic of a dual-track PCB take-up machine used in PCB production.
[0030] Figure 6 for Figure 5 The diagram shows a structural schematic of a dual-track PCB winding machine from another perspective.
[0031] Figure 7 for Figure 2 The diagram shows a partial structural schematic of a dual-track PCB take-up machine used in PCB production.
[0032] Figure 8 for Figure 7 The diagram shows a structural schematic of a dual-track PCB winding machine from another perspective.
[0033] Figure 9 for Figure 1 The diagram shows a partial structural schematic of a dual-track PCB take-up machine used in PCB production.
[0034] Figure 10 This is a picture of a dual-track PCB winding machine used in PCB production. Detailed Implementation
[0035] To facilitate understanding of this disclosure, a more complete description will be given below with reference to the accompanying drawings, which illustrate preferred embodiments of the present disclosure. However, this disclosure can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to provide a more thorough and complete understanding of the disclosure.
[0036] It should be noted that when an element is referred to as being "fixed to" another element, it can be directly attached to the other element or there may be an intervening element. When an element is referred to as being "connected to" another element, it can be directly connected to the other element or there may be an intervening element. The terms "vertical," "horizontal," "left," "right," and similar expressions used herein are for illustrative purposes only and do not represent the only possible implementation.
[0037] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this disclosure belongs. The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of this disclosure. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.
[0038] Please see Figures 1 to 9 To better understand the double-track take-up machine 10 for PCB board production disclosed herein, the following further explanation of the double-track take-up machine 10 for PCB board production is provided:
[0039] A dual-track board take-up machine 10 for PCB board production according to one embodiment includes a frame 100, a board conveying assembly 200, and a material frame lifting assembly 300. The frame 100 has an inlet 101, a board conveying cavity 102, a first take-up port 103, and a second take-up port 104. The board conveying cavity 102 is connected to the inlet 101, the first take-up port 103, and the second take-up port 104, respectively. There is a gap between the first take-up port 103 and the second take-up port 104. The board conveying assembly 200 includes a first board conveying component 210 and a second board conveying component 220. The first conveyor plate 210 and the second conveyor plate 220 are both disposed within the conveyor plate cavity 102. The first conveyor plate 210 forms a first conveyor plate channel 201, and the second conveyor plate 220 forms a second conveyor plate channel 202. The material frame lifting assembly 300 includes a first material frame lifting component 310 and a second material frame lifting component 320, both of which are disposed on the frame 100. The first material frame lifting component 310 is used to drive the first material frame to lift, and the second material frame lifting component 320 is used to drive the second material frame to lift. The double-rail plate collecting machine 10 also includes a transverse movement assembly 400. The transverse assembly 400 includes a first track component 410, a second track component 420, a first transverse component 430, and a second transverse component 440. All four components are mounted on the bottom of the conveying cavity 102. The moving end of the first transverse component 430 is fixedly connected to the first conveying component 210, and the first conveying component 210 is slidably connected to both the first track component 410 and the second track component 420. The moving end of the second transverse component 440 is fixedly connected to the second conveying component 220, and the second conveying component 220 is slidably connected to both the first track component 410 and the second track component 420. One end of the first conveying channel 201 is movably connected to the first conveying track of the front-end conveying device, and the other end is movably connected to the first receiving port 103. One end of the second conveying channel 202 is movably connected to the second conveying track of the front-end conveying equipment, and the other end of the second conveying channel 202 is movably connected to the second receiving port 104.
[0040] In this embodiment, by driving the first transverse member 430 to slide on the first track member 410 and the second track member 420, one end of the first conveying channel 201 of the first conveying member 210 is aligned with the first conveying track of the front-end conveying device, and the PCB board is conveyed from the first conveying track to the first conveying channel 201. Then, the first transverse member 430 is driven to slide on the first track member 410 and the second track member 420, so that the other end of the first conveying channel 201 of the first conveying member 210 is aligned with the first receiving port 103. At the same time, the first material frame lifting member 310 drives the first material frame to rise and fall, and drives the first conveying member 210 to convey the PCB board in the first conveying channel 201 from the first receiving port 103 to the first material frame. Similarly, by driving the second transverse member 440 to slide on the first track member 410 and the second track member 420, one end of the second conveying channel 202 of the second conveying member 220 is aligned with the second conveying track of the front-end conveying device. The PCB board is conveyed from the second conveying track into the second conveying channel 202. Then, the second transverse member 440 is driven to slide on the first track member 410 and the second track member 420, so that the other end of the first conveying channel 201 of the second conveying member 220 is aligned with the second receiving port 104. At the same time, the second material frame lifting member 320 drives the second material frame to rise and fall, and drives the second conveying member 220 to convey the PCB board in the second conveying channel 202 from the second receiving port 104 into the second material frame. This can improve the PCB board receiving efficiency.
[0041] Furthermore, when the distance between the first receiving port 103 and the second receiving port 104 is not equal to the distance between the first conveying track and the second conveying track of the front-end conveying equipment, the first conveying component 210 and the second conveying component 220 can be moved by the first transverse component 430 and the second transverse component 440 respectively, so that the first conveying track is movably connected to one end of the first conveying channel 201, the first receiving port 103 is movably connected to the other end of the first conveying channel 201, the second conveying track is movably connected to one end of the second conveying channel 202, and the second receiving port 104 is movably connected to the other end of the second conveying channel 202, so that the double-track receiving machine 10 can adapt to different processing conditions, thereby improving the adaptability of the double-track receiving machine 10.
[0042] like Figure 2 , Figure 3 , Figure 5 and Figure 6As shown, in one embodiment, the first conveying plate component 210 includes a first conveying frame 2101, a first conveying plate 2102, a second conveying plate 2103, a first conveying drive 2104, a second conveying drive 2105, a first conveying belt 2106, and a second conveying belt 2107. The first conveying frame 2101 is slidably connected to the first track component 410 and the second track component 420, respectively. The first conveying plate 2102 and the second conveying plate 2103 are both disposed on the first conveying frame 2101. The first conveying drive 2104 is mounted on the first conveying plate 2102. The first conveying belt 2106 is sleeved on the rotating pulley end of the first conveying drive 2104. The second conveying drive 2105 is mounted on the second conveying plate 2103. The second conveying belt 2107 is sleeved on the rotating pulley end of the second conveying drive 2105. The first conveying plate 2102 and the second conveying plate 2103 together form a first conveying plate channel 201. It is understandable that by driving the output of the first transmission drive unit 2104 and the second transmission drive unit 2105, the first transmission belt 2106 and the second transmission belt 2107 are driven to rotate respectively, thereby enabling the PCB board on the first transmission belt 2106 and the second transmission belt 2107 to be transferred, thus realizing the PCB board conveying function.
[0043] like Figure 2 , Figure 4 , Figure 7 and Figure 8 As shown, in one embodiment, the second conveying plate component 220 includes a second conveying frame 2201, a third conveying plate 2202, a fourth conveying plate 2203, a third conveying drive 2204, a fourth conveying drive 2205, a third conveying belt 2206, and a fourth conveying belt 2207. The second conveying frame 2201 is slidably connected to the first track component 410 and the second track component 420, respectively. The third conveying plate 2202 and the fourth conveying plate 2203 are both disposed on the second conveying frame 2201. The third conveying drive 2204 is mounted on the third conveying plate 2202. The third conveying belt 2206 is sleeved on the rotating pulley end of the third conveying drive 2204. The fourth conveying drive 2205 is mounted on the fourth conveying plate 2203. The fourth conveying belt 2207 is sleeved on the rotating pulley end of the fourth conveying drive 2205. The third conveying plate 2202 and the fourth conveying plate 2203 together form a second conveying plate channel 202. It is understandable that by driving the output of the third transmission drive unit 2204 and the fourth transmission drive unit 2205, the third transmission belt 2206 and the fourth transmission belt 2207 are driven to rotate respectively, thereby enabling the PCB boards on the third transmission belt 2206 and the fourth transmission belt 2207 to be transferred, thus realizing the PCB board conveying function.
[0044] like Figure 4 and Figure 9As shown, in one embodiment, the first material frame lifting component 310 includes a first lifting drive component 3110, a first lifting frame 3120, a first transmission screw 3130, and a first conveying component 3140. The first lifting drive component 3110 is mounted on the frame 100. One end of the first transmission screw 3130 is fixedly connected to the power output end of the first lifting drive component 3110, and the other end of the first transmission screw 3130 is rotatably connected to the frame 100. The first lifting frame 3120 is threadedly connected to the first transmission screw 3130. The first conveying component 3140 is disposed within the first lifting frame 3120. It can be understood that by driving the first lifting drive component 3110 to output power, the first lifting frame 3120 is driven to perform lifting operations, allowing the first material frame to be filled with PCB boards. Then, by driving the first conveying component 3140, the first material frame is moved within the first lifting frame 3120, facilitating feeding and discharging operations of the first material frame and improving the automation level of the double-rail board receiving machine 10.
[0045] like Figure 3 and Figure 9 As shown, in one embodiment, the second material frame lifting component 320 includes a second lifting drive component 3210, a second lifting frame 3220, a second transmission screw 3230, and a second conveyor component 3240. The second lifting drive component 3210 is mounted on the frame 100. One end of the second transmission screw 3230 is fixedly connected to the power output end of the second lifting drive component 3210, and the other end of the second transmission screw 3230 is rotatably connected to the frame 100. The second lifting frame 3220 is threadedly connected to the second transmission screw 3230. The second conveyor component 3240 is disposed within the second lifting frame 3220. It can be understood that by driving the output of the second lifting drive component 3210, the second lifting frame 3220 is driven to perform lifting operations, allowing the second material frame to be filled with PCB boards. Then, by driving the first conveyor component 3240, the first material frame is moved within the first lifting frame 3120, facilitating feeding and discharging operations of the first material frame and improving the automation level of the double-rail board receiving machine 10.
[0046] like Figure 3As shown, in one embodiment, the first transverse movement member 430 includes a first transverse movement drive member 4310 and a first transverse movement conveyor belt 4320. Both the first transverse movement drive member 4310 and the first transverse movement conveyor belt 4320 are mounted on the frame 100. The first transverse movement conveyor belt 4320 is sleeved on the rotating pulley end of the first transverse movement drive member 4310. The first transmission frame is fixedly connected to the first transverse movement conveyor belt 4320. It can be understood that by driving the output of the first transverse movement drive member 4310, the first transverse movement conveyor belt 4320 is driven to rotate, thereby causing the first transmission frame to slide on the first track member 410 and the second track member 420, so as to adapt to the plate collection requirements of different working conditions, thereby improving the adaptability of the dual-track plate collector 10.
[0047] like Figure 4 As shown, in one embodiment, the second transverse component 440 includes a second transverse drive component 4410 and a second transverse conveyor belt 4420. Both the second transverse drive component 4410 and the second transverse conveyor belt 4420 are mounted on the frame 100. The second transverse conveyor belt 4420 is sleeved on the rotating pulley end of the second transverse drive component 4410. The second transmission frame is fixedly connected to the second transverse conveyor belt 4420. It can be understood that by driving the output of the second transverse drive component 4410, the second transverse conveyor belt 4420 is rotated, thereby causing the second transmission frame to slide on the first track component 410 and the second track component 420, adapting to the plate-collecting requirements of different working conditions, and thus improving the adaptability of the dual-track plate-collecting machine 10.
[0048] like Figure 3 and Figure 4As shown, in one embodiment, the dual-track board take-up machine 10 for PCB board production further includes a material frame conveying assembly 500. The material frame conveying assembly 500 includes a first feeding frame 510, a first discharging frame 520, a first feeding conveyor frame 530, a first discharging conveyor frame 540, a second feeding frame 550, a second discharging frame 560, a second feeding conveyor frame 570, and a second discharging conveyor frame 580. The first feeding frame 510, the first discharging frame 520, the second feeding frame 550, and the second discharging frame 560 are all disposed on the frame 100. The first feeding conveyor frame 530 is disposed within the first feeding frame 510, the first discharging conveyor frame 540 is disposed within the first discharging frame 520, the second feeding conveyor frame 570 is disposed within the second feeding frame 550, and the second discharging conveyor frame 580 is disposed within the second discharging frame 560. Understandably, the empty first material frame is placed inside the first feeding rack 510. The first lifting drive component 3110 is driven to align the first lifting frame 3120 with the first feeding rack 510. Then, the first feeding conveyor component 530 is driven to transfer the empty first material frame into the first lifting frame 3120. After the first material frame is filled with PCB boards, the first lifting drive component 3110 is driven to align the first lifting frame 3120 with the first discharging rack 520, conveying the first material frame into the first discharging rack 520. Finally, the first discharging conveyor component 540 is driven to unload the first material frame filled with PCB boards. Similarly, an empty second material frame is placed inside the second feeding rack 550. By driving the second lifting drive component 3210, the second lifting frame 3220 is aligned with the second feeding rack 550. Then, by driving the second feeding conveyor component 570, the empty second material frame is transferred into the second lifting frame 3220. After the second material frame is filled with PCB boards, by driving the second lifting drive component 3210, the second lifting frame 3220 is aligned with the second discharging rack 560, and the second material frame inside the second lifting frame 3220 is conveyed into the second discharging rack 560. Then, by driving the second discharging conveyor component 580, the second material frame filled with PCB boards is unloaded. This allows for batch processing of PCB boards, improving PCB board collection efficiency.
[0049] like Figure 2 , Figure 3 , Figure 5 and Figure 6As shown, in one embodiment, the first conveyor plate 210 further includes a first translation plate 2108, a first translation drive 2109, a first translation conveyor belt 2110, a first telescopic drive 2111, and a first push plate 2112. The first translation plate 2108 is mounted on the first transmission frame 2101, the first translation drive 2109 is mounted on the first translation plate 2108, the first translation conveyor belt 2110 is sleeved on the rotating pulley end of the first translation drive 2109, the first telescopic drive 2111 is mounted on the first translation conveyor belt 2110, and the first push plate 2112 is mounted on the telescopic end of the first telescopic drive 2111. Understandably, by driving the first telescopic drive component 2111 to output, the first push plate 2112 is lowered onto the first conveyor channel 201. Then, by driving the first translation drive component 2109, the first translation conveyor belt 2110 is rotated, thereby driving the first telescopic drive component 2111 to translate, so that the first push plate 2112 abuts against the PCB board in the first conveyor channel 201, thereby transferring the PCB board from the first receiving port 103 into the first material frame.
[0050] like Figure 2 , Figure 4 , Figure 7 and Figure 8 As shown, in one embodiment, the second conveyor plate 220 further includes a second translation plate 2208, a second translation drive 2209, a second translation conveyor belt 2210, a second telescopic drive 2211, and a second push plate 2212. The second translation plate 2208 is mounted on the second transmission frame 2201, the second translation drive 2209 is mounted on the second translation plate 2208, the second translation conveyor belt 2210 is sleeved on the rotating pulley end of the second translation drive 2209, the second telescopic drive 2211 is mounted on the second translation conveyor belt 2210, and the second push plate 2212 is mounted on the telescopic end of the second telescopic drive 2211. Understandably, by driving the output of the second telescopic drive member 2211, the second push plate 2212 is lowered onto the second conveyor channel 202. Then, by driving the second translation drive member 2209, the second translation conveyor belt 2210 is rotated, thereby driving the second telescopic drive member 2211 to translate, so that the second push plate 2212 abuts against the PCB board in the second conveyor channel 202, thereby transferring the PCB board from the second receiving port 104 into the second material frame.
[0051] Compared with the prior art, this disclosure has at least the following advantages:
[0052] 1. By driving the first transverse component to slide on the first and second track components, one end of the first conveying channel of the first conveying component is aligned with the first conveying track of the front-end conveying device. The PCB board is conveyed from the first conveying track into the first conveying channel. Then, the first transverse component is driven to slide on the first and second track components, so that the other end of the first conveying channel of the first conveying component is aligned with the first receiving port. At the same time, the first material frame lifting component drives the first material frame to rise and fall, driving the first conveying component to convey the PCB board in the first conveying channel from the first receiving port into the first material frame. Similarly, by driving the second transverse component to slide on the first and second track components, one end of the second conveying channel of the second conveying component is aligned with the second conveying track of the front-end conveying device. The PCB board is conveyed from the second conveying track into the second conveying channel. Then, the second transverse component is driven to slide on the first and second track components, so that the other end of the first conveying channel of the second conveying component is aligned with the second receiving port. At the same time, the second material frame lifting component drives the second material frame to rise and fall, driving the second conveying component to convey the PCB board in the second conveying channel from the second receiving port into the second material frame. This can improve the PCB board receiving efficiency.
[0053] 2. When the distance between the first and second receiving ports is not equal to the distance between the first and second conveying tracks of the front-end conveying equipment, the first and second conveying components can be moved by the first and second transverse components respectively, so that the first conveying track is movably connected to one end of the first conveying channel, the first receiving port is movably connected to the other end of the first conveying channel, the second conveying track is movably connected to one end of the second conveying channel, and the second receiving port is movably connected to the other end of the second conveying channel. This allows the double-track receiving machine to adapt to different processing conditions, thereby improving the adaptability of the double-track receiving machine.
[0054] The embodiments described above are merely illustrative of several implementations of this disclosure, and while the descriptions are specific and detailed, they should not be construed as limiting the scope of the disclosed patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this disclosure, and these all fall within the protection scope of this disclosure. Therefore, the protection scope of this patent should be determined by the appended claims.
Claims
1. A double track board receiver for PCB production, comprising: The machine includes a frame, a conveying assembly, and a material frame lifting assembly. The frame has an inlet, a conveying cavity, a first receiving port, and a second receiving port. The conveying cavity communicates with the inlet, the first receiving port, and the second receiving port, respectively. A gap exists between the first receiving port and the second receiving port. The conveying assembly includes a first conveying component and a second conveying component, both of which are disposed within the conveying cavity. The first conveying component forms a first conveying channel, and the second conveying component forms a second conveying channel. The material frame lifting assembly includes a first material frame lifting component and a second material frame lifting component, both of which are disposed on the frame. The first material frame lifting component is used to drive the first material frame to lift, and the second material frame lifting component is used to drive the second material frame to lift. The machine is characterized by further including a transverse movement assembly. The lateral movement assembly includes a first track component, a second track component, a first lateral movement component, and a second lateral movement component. The first track component, the second track component, the first lateral movement component, and the second lateral movement component are all installed on the bottom of the conveying plate cavity. The moving end of the first lateral movement component is fixedly connected to the first conveying plate component. The first conveying plate component is slidably connected to the first track component and the second track component respectively. The moving end of the second lateral movement component is fixedly connected to the second conveying plate component. The second conveying plate component is slidably connected to the first track component and the second track component respectively. One end of the first conveying channel is movably connected to the first conveying track of the front-end conveying equipment, and the other end of the first conveying channel is movably connected to the first receiving port. One end of the second conveying channel is movably connected to the second conveying track of the front-end conveying device, and the other end of the second conveying channel is movably connected to the second receiving port.
2. The dual track board receiver for PCB board production as claimed in claim 1 wherein, The first conveying component includes a first conveying frame, a first conveying plate, a second conveying plate, a first conveying drive, a second conveying drive, a first conveying belt, and a second conveying belt. The first conveying frame is slidably connected to the first track component and the second track component. The first conveying plate and the second conveying plate are both disposed on the first conveying frame. The first conveying drive is mounted on the first conveying plate. The first conveying belt is sleeved on the rotating pulley end of the first conveying drive. The second conveying drive is mounted on the second conveying plate. The second conveying belt is sleeved on the rotating pulley end of the second conveying drive. The first conveying plate and the second conveying plate together form the first conveying channel.
3. The dual track board receiver for PCB board production as claimed in claim 1 wherein, The second conveying component includes a second conveying frame, a third conveying plate, a fourth conveying plate, a third conveying drive, a fourth conveying drive, a third conveying belt, and a fourth conveying belt. The second conveying frame is slidably connected to the first track component and the second track component. The third and fourth conveying plates are both disposed on the second conveying frame. The third conveying drive is mounted on the third conveying plate. The third conveying belt is sleeved on the rotating pulley end of the third conveying drive. The fourth conveying drive is mounted on the fourth conveying plate. The fourth conveying belt is sleeved on the rotating pulley end of the fourth conveying drive. The third and fourth conveying plates together form the second conveying channel.
4. The dual track board receiver for PCB board production as claimed in claim 1 wherein, The first material frame lifting component includes a first lifting drive component, a first lifting frame, a first transmission screw, and a first conveying component. The first lifting drive component is mounted on the frame. One end of the first transmission screw is fixedly connected to the power output end of the first lifting drive component, and the other end of the first transmission screw is rotatably connected to the frame. The first lifting frame is threadedly connected to the first transmission screw, and the first conveying component is disposed within the first lifting frame.
5. The dual track board receiver for PCB board production as claimed in claim 1 wherein, The second material frame lifting component includes a second lifting drive component, a second lifting frame, a second transmission screw, and a second conveying component. The second lifting drive component is mounted on the frame. One end of the second transmission screw is fixedly connected to the power output end of the second lifting drive component, and the other end of the second transmission screw is rotatably connected to the frame. The second lifting frame is threadedly connected to the second transmission screw, and the second conveying component is disposed within the second lifting frame.
6. The dual track board receiver for PCB board production as claimed in claim 2 wherein, The first transverse component includes a first transverse drive and a first transverse conveyor belt. Both the first transverse drive and the first transverse conveyor belt are mounted on the frame. The first transverse conveyor belt is sleeved on the rotating pulley end of the first transverse drive. The first transmission frame is fixedly connected to the first transverse conveyor belt.
7. The dual track board receiver for PCB board production as claimed in claim 3 wherein, The second transverse component includes a second transverse drive and a second transverse conveyor belt. Both the second transverse drive and the second transverse conveyor belt are mounted on the frame. The second transverse conveyor belt is sleeved on the rotating pulley end of the second transverse drive. The second transmission frame is fixedly connected to the second transverse conveyor belt.
8. The dual track board receiver for PCB board production as claimed in claim 1 wherein, It also includes a material frame conveying assembly, which includes a first feeding frame, a first discharging frame, a first feeding conveyor, a first discharging conveyor, a second feeding frame, a second discharging frame, a second feeding conveyor, and a second discharging conveyor. The first feeding frame, the first discharging frame, the second feeding frame, and the second discharging frame are all mounted on the frame. The first feeding conveyor is located inside the first feeding frame, the first discharging conveyor is located inside the first discharging frame, the second feeding conveyor is located inside the second feeding frame, and the second discharging conveyor is located inside the second discharging frame.
9. The dual track board receiver for PCB board production as claimed in claim 2 wherein, The first conveyor plate also includes a first translation plate, a first translation drive, a first translation conveyor belt, a first telescopic drive, and a first push plate. The first translation plate is mounted on the first transmission frame, the first translation drive is mounted on the first translation plate, the first translation conveyor belt is sleeved on the rotating wheel end of the first translation drive, the first telescopic drive is mounted on the first translation conveyor belt, and the first push plate is mounted on the telescopic end of the first telescopic drive.
10. The dual track board receiver for PCB board production as claimed in claim 3 wherein, The second conveyor also includes a second translation plate, a second translation drive, a second translation conveyor belt, a second telescopic drive, and a second push plate. The second translation plate is mounted on the second transmission frame, the second translation drive is mounted on the second translation plate, the second translation conveyor belt is sleeved on the rotating wheel end of the second translation drive, the second telescopic drive is mounted on the second translation conveyor belt, and the second push plate is mounted on the telescopic end of the second telescopic drive.
Citation Information
Patent Citations
Double plate receiving machine
CN105346747A