High-speed transmission optical module device pin cutting and shaping integrated machine
Patent Information
- Application Number
- CN202522065365.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-25
- Publication Date
- 2026-09-01
- Estimated Expiration
- 2035-09-25
AI Technical Summary
[0005]本实用新型的目的在于提供一种高速传输光模块器件引脚裁剪整形一体机,解决了现有技术中依赖工作人员放置光模块器件,单次仅能处理少量的工件,导致生产效率低的问题
[0011]本实用新型的一种高速传输光模块器件引脚裁剪整形一体机,将光模块器件依次放在所述第一输送轨道上,通过所述第一输送轨道进行输送,随后通过所述吸附器将光模块器件进行吸附,然后其中一个所述动力单元带动所述传动臂转动,所述传动臂带动所述连接架通过所述转动件进行转动,所述转动件的一端带动所述吸附器进行移动并90°转动,直至将光模块器件放入所述一体机本体上进行加工,加工完成后,通过另一个所述吸附器与前一个所述吸附器的运动方向相反,从而将光模块器件从所述一体机本体上取下并输送至所述第二输送轨道上,通过所述第二输送轨道进行输送,以此来进行连接加工,提高加工效率。
Smart Images

Figure CN224701052U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of optical module device manufacturing, and in particular to an integrated machine for cutting and shaping pins of high-speed transmission optical module devices. Background Technology
[0002] Currently, the main methods for operating the pins of optical module devices are as follows: operators use diagonal pliers to cut and bend the pins, but the consistency of the pin length and bending radius of the optical module device cannot be guaranteed during the production process.
[0003] In the prior art, patent (CN213079875U) proposes an integrated machine for cutting and shaping pins of high-speed transmission optical module devices. This machine includes a base, a workstation plate, a shaping mechanism, and a cutting mechanism. Positioning holes are formed on the workstation plate. The shaping mechanism is located on the side of the workstation plate where the pins extend outwards. The shaping mechanism includes a shaping mold with shaping holes and shaping grooves on the inner wall of the holes. The cutting mechanism includes a circular saw connected to a drive assembly, which drives the circular saw to move closer to or away from the side of the shaping mold away from the workstation plate. This application achieves both pin cutting and shaping of the optical module device by using a shaping mold for directional bending and by using a circular saw to cut off the portion of the pins extending out of the shaping mold, while ensuring consistency in the length and bending radius of the pins after the operation.
[0004] However, in the aforementioned existing technologies, the reliance on workers to place optical module devices means that only a small number of workpieces can be processed at a time, resulting in low production efficiency. Utility Model Content
[0005] The purpose of this invention is to provide a high-speed transmission optical module device pin cutting and shaping integrated machine, which solves the problem of low production efficiency caused by the reliance on manual placement of optical module devices in the prior art, which can only process a small number of workpieces at a time.
[0006] To achieve the above objectives, this utility model provides a high-speed transmission optical module device pin trimming and shaping integrated machine, including an integrated machine body and a conveying mechanism; the conveying mechanism includes a base, a first conveying track, a second conveying track, and two transplanting robotic arms. The base is fixedly connected to the integrated machine body and located at the lower end of the integrated machine body. The first conveying track and the second conveying track are fixedly connected to the base and symmetrically arranged on the base. Each transplanting robotic arm includes a power unit, a transmission arm, a connecting frame, a rotating component, and an adsorber. The power unit is fixedly connected to the base and located at one end of the base. The transmission arm is fixedly connected to the output end of the power unit. One end of the connecting frame is rotatably connected to the transmission arm and located at one end of the transmission arm. The rotating component is rotatably connected to both the connecting frame and the adsorber and is located at one end of the connecting frame and the adsorber, respectively. One end of the rotating component is rotatably connected to the base and located on one side of the base.
[0007] The conveying mechanism further includes two sensors, one of which is fixedly connected to the first conveying track and located at one end of the first conveying track, and the other sensor is fixedly connected to the base and located at one end of the base.
[0008] The power unit includes a servo motor and a rotating shaft. The servo motor is fixedly connected to the base and located at one end of the base. The rotating shaft is fixedly connected to the output end of the servo motor.
[0009] The transmission arm includes a support block and a connecting block. The support block is fixedly connected to the rotating shaft and located at one end of the rotating shaft. The connecting block is rotatably connected to the support block and located at one end of the support block.
[0010] The rotating component includes a drive wheel, a transmission wheel, and a conveyor belt. The drive wheel is fixedly connected to the base and located at one end of the base. The transmission wheel is connected to the drive wheel by the conveyor belt.
[0011] This utility model discloses a high-speed transmission optical module device pin trimming and shaping integrated machine. Optical module devices are sequentially placed on a first conveyor track and transported via this track. Then, an adsorbent picks up the optical module devices. One of the power units drives a transmission arm to rotate, which in turn drives a connecting frame to rotate via a rotating component. One end of the rotating component moves and rotates the adsorbent 90° until the optical module device is placed onto the integrated machine body for processing. After processing, another adsorbent moves in the opposite direction to the first adsorbent, thereby removing the optical module device from the integrated machine body and transporting it to a second conveyor track for connection processing, thus improving processing efficiency. Attached Figure Description
[0012] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the accompanying drawings used in the description of the embodiments or the prior art will be briefly introduced below.
[0013] Figure 1 This is a schematic diagram of the overall structure of a high-speed transmission optical module device pin trimming and shaping integrated machine according to the present invention.
[0014] Figure 2 This is a top view of a high-speed transmission optical module device pin trimming and shaping integrated machine according to the present invention.
[0015] Figure 3 This is a side view of a high-speed transmission optical module device pin trimming and shaping integrated machine according to the present invention.
[0016] 101-Integrated machine body, 102-Base, 103-First conveyor track, 104-Second conveyor track, 105-Connecting frame, 106-Adsorber, 107-Sensor, 108-Servo motor, 109-Rotating shaft, 110-Support block, 111-Connecting block, 112-Drive wheel, 113-Transmission wheel, 114-Conveyor belt. Detailed Implementation
[0017] The embodiments of the present invention are described in detail below. Examples of the embodiments are shown in the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain the present invention, but should not be construed as limiting the present invention.
[0018] Please see Figures 1-3 ,in Figure 1 This is a schematic diagram of the overall structure of a high-speed transmission optical module device pin trimming and shaping integrated machine according to this utility model. Figure 2 This is a top view of a high-speed transmission optical module device pin trimming and shaping integrated machine according to the present invention.
[0019] Figure 3 This is a side view of a high-speed transmission optical module device pin trimming and shaping integrated machine according to this utility model.
[0020] This utility model provides a high-speed transmission optical module device pin trimming and shaping integrated machine, including an integrated machine body 101, a base 102, a first conveying track 103, a second conveying track 104, a connecting frame 105, an adsorbent 106, a sensor 107, a servo motor 108, a rotating shaft 109, a support block 110, a connecting block 111, a drive wheel 112, a transmission wheel 113, and a conveyor belt 114.
[0021] In this specific embodiment, the conveying mechanism includes a base 102, a first conveying track 103, a second conveying track 104, and two transplanting robotic arms. The base 102 is fixedly connected to the integrated machine body 101 and is located at the lower end of the integrated machine body 101. The first conveying track 103 and the second conveying track 104 are fixedly connected to the base 102 and are symmetrically arranged on the base 102. Each transplanting robotic arm includes a power unit, a transmission arm, a connecting frame 105, a rotating component, and an adsorber 106. The power unit is fixedly connected to the base 102 and is located at one end of the base 102. The transmission arm is fixedly connected to the output end of the power unit. One end of the connecting frame 105 is rotatably connected to the transmission arm and is located at one end of the transmission arm. The rotating component is rotatably connected to both the connecting frame 105 and the adsorber 106 and is located at one end of the connecting frame 105 and the adsorber 106, respectively. One end of the rotating component is connected to the base 102. The base 102 is rotatably connected and located on one side of the base 102. The integrated machine body 101 is provided by the prior art patent CN213079875U. The optical module device is placed sequentially on the first conveying track 103 and conveyed through the first conveying track 103. Then, the optical module device is adsorbed by the adsorbent 106. Then, one of the power units drives the transmission arm to rotate. The transmission arm drives the connecting frame 105 to rotate through the rotating member. One end of the rotating member drives the adsorbent 106 to move and rotate 90° until the optical module device is placed on the integrated machine body 101 for processing. After processing, the optical module device is removed from the integrated machine body 101 and conveyed to the second conveying track 104 through the other adsorbent 106 in the opposite direction of movement to the first adsorbent 106. This process improves processing efficiency.
[0022] The conveying mechanism further includes two sensors 107. One sensor 107 is fixedly connected to the first conveying track 103 and located at one end of the first conveying track 103. The other sensor 107 is fixedly connected to the base 102 and located at one end of the base 102. The two sensors 107 transmit commands to the two transplanting robotic arms respectively.
[0023] Secondly, the power unit includes a servo motor 108 and a rotating shaft 109. The servo motor 108 is fixedly connected to the base 102 and is located at one end of the base 102. The rotating shaft 109 is fixedly connected to the output end of the servo motor 108. The servo motor 108 drives the rotating shaft 109 to rotate.
[0024] Meanwhile, the transmission arm includes a support block 110 and a connecting block 111. The support block 110 is fixedly connected to the rotating shaft 109 and is located at one end of the rotating shaft 109. The connecting block 111 is rotatably connected to the support block 110 and is located at one end of the support block 110. The rotating shaft 109 drives the support block 110 to rotate, the support block 110 drives one end of the connecting block 111 to rotate, and the other end of the connecting block 111 drives the connecting frame 105 to rotate back and forth.
[0025] In addition, the rotating component includes a drive wheel 112, a transmission wheel 113, and a conveyor belt 114. The drive wheel 112 is fixedly connected to the base 102 and is located at one end of the base 102. The transmission wheel 113 is connected to the drive wheel 112 by the conveyor belt 114. The connecting frame 105 drives the transmission wheel 113 to rotate 90° around the drive wheel 112 via the transmission belt.
[0026] In this embodiment, optical module devices are sequentially placed on the first conveying track 103 and conveyed through the first conveying track 103. When an optical module device passes one of the sensors 107, the corresponding adsorbent 106 adsorbs it, and the corresponding servo motor 108 drives the rotating shaft 109 to rotate. The rotating shaft 109 drives the support block 110 to rotate, and the support block 110 drives one end of the connecting block 111 to rotate. The other end of the connecting block 111 drives the connecting frame 105 to rotate. The transmission wheel 113 and the driving wheel 112 are connected by the conveyor belt 114. The connecting frame 105 drives the transmission wheel 113 to rotate 90° around the driving wheel 112 via the transmission belt. The receiving frame 105 moves the adsorber 106, and the transmission wheel 113 drives the adsorber 106 to rotate 90°, thereby placing the optical module device into the integrated machine body 101. Then it returns to its original position. After the integrated machine body 101 finishes processing the optical module device, after sensing by another sensor 107, another servo motor 108 moves the adsorber 106 above the optical module device and adsorbs it. Then, by moving in the opposite direction to the first adsorber 106, the optical module device is removed from the integrated machine body 101 and transported to the second conveying track 104. The second conveying track 104 is used for transport to perform connection processing, thereby improving processing efficiency.
[0027] The above-disclosed embodiments are merely preferred embodiments of the present utility model and should not be construed as limiting the scope of the present utility model. Those skilled in the art can understand that implementing all or part of the above-described embodiments and making equivalent changes in accordance with the claims of the present utility model are still within the scope of the utility model.
Claims
1. A high-speed transmission optical module device pin trimming and shaping integrated machine, comprising an integrated machine body, characterized in that, It also includes a conveying mechanism; The conveying mechanism includes a base, a first conveying track, a second conveying track, and two transplanting robotic arms. The base is fixedly connected to the integrated machine body and located at the lower end of the integrated machine body. The first and second conveying tracks are fixedly connected to the base and symmetrically arranged on the base. Each transplanting robotic arm includes a power unit, a transmission arm, a connecting frame, a rotating component, and an adsorber. The power unit is fixedly connected to the base and located at one end of the base. The transmission arm is fixedly connected to the output end of the power unit. One end of the connecting frame is rotatably connected to the transmission arm and located at one end of the transmission arm. The rotating components are rotatably connected to the connecting frame and the adsorber and are respectively located at one end of the connecting frame and the adsorber. One end of the rotating component is rotatably connected to the base and located on one side of the base.
2. The high-speed transmission optical module device pin trimming and shaping integrated machine as described in claim 1, characterized in that, The conveying mechanism also includes two sensors, one of which is fixedly connected to the first conveying track and located at one end of the first conveying track, and the other sensor is fixedly connected to the base and located at one end of the base.
3. The high-speed transmission optical module device pin trimming and shaping integrated machine as described in claim 2, characterized in that, The power unit includes a servo motor and a rotating shaft. The servo motor is fixedly connected to the base and located at one end of the base. The rotating shaft is fixedly connected to the output end of the servo motor.
4. The high-speed transmission optical module device pin trimming and shaping integrated machine as described in claim 3, characterized in that, The transmission arm includes a support block and a connecting block. The support block is fixedly connected to the rotating shaft and located at one end of the rotating shaft. The connecting block is rotatably connected to the support block and located at one end of the support block.
5. The high-speed transmission optical module device pin trimming and shaping integrated machine as described in claim 4, characterized in that, The rotating component includes a drive wheel, a transmission wheel, and a conveyor belt. The drive wheel is fixedly connected to the base and located at one end of the base. The transmission wheel is connected to the drive wheel by the conveyor belt.
Citation Information
Patent Citations
Pin cutting and shaping all-in-one machine for high-speed transmission optical module device
CN213079875U