A splicing device
By combining the base plate, conveyor track, moving components and limiting blocks, the problems of low efficiency, poor accuracy and inaccurate positioning of the connector cutting device are solved, realizing high-precision, stable and flexible connector cutting to meet the processing needs of different specifications.
Patent Information
- Application Number
- CN202521622098.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-31
- Publication Date
- 2026-08-25
- Estimated Expiration
- 2035-07-31
AI Technical Summary
Existing connector cutting devices suffer from low efficiency, difficulty in guaranteeing cutting accuracy, inaccurate positioning, and lack of flexibility, failing to meet the needs of mass production. Furthermore, connectors are prone to shaking during the cutting process, resulting in uneven cuts on the copper sheets.
The design incorporates a base plate, conveyor rail, moving components, cutting device, and limiting blocks. Precise positioning is achieved through the cooperation of the conveyor rail and the limiting blocks. The moving components feature a dual-drive design, which, combined with the guiding effect of the limiting rail, ensures the stability and cutting accuracy of the connector in three-dimensional space.
It achieves high-precision cutting of connectors, improves work efficiency, reduces space requirements and maintenance costs, and has good adaptability and stability, adapting to the processing needs of connectors of different specifications.
Smart Images

Figure CN224673884U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of cutting devices, and in particular to a connector cutting device. Background Technology
[0002] With the rapid development of the electronic components industry, connectors, as key components for circuit connections, require increasingly higher processing precision. In connector manufacturing, precise cutting of copper sheets is a crucial step in ensuring product quality. Traditional connector cutting processes suffer from the following technical drawbacks: First, manual operation is inefficient and lacks precision, failing to meet the demands of mass production; second, existing automated cutting equipment generally employs a single-direction positioning method, making precise connector positioning difficult; third, traditional cutting devices experience rapid tool wear and require frequent replacements, impacting production efficiency; furthermore, fixed cutting mechanisms lack flexibility and struggle to adapt to the processing needs of connectors of different specifications.
[0003] As precision components made of copper and plastic composites, connectors require careful attention to the positioning accuracy and cutting quality of the copper sheet during the cutting process. Traditional vibration feeding methods are prone to causing connector positional deviations, affecting cutting accuracy. Furthermore, the lack of effective limiting devices leads to connector wobbling during cutting, resulting in uneven copper sheet cuts. These technical deficiencies severely restrict the automation level and product yield of connector production lines. Utility Model Content
[0004] This application provides a connector cutting device, which solves the technical problems in the prior art where connector cutting is mostly done manually, resulting in low efficiency and difficulty in ensuring cutting accuracy, which cannot meet the needs of mass production. At the same time, the lack of an effective limiting device causes the connector to shake easily during the cutting process, resulting in uneven copper sheet cuts.
[0005] The technical solutions adopted in the embodiments of this application are as follows.
[0006] A connector cutting device includes a base plate, a conveying track for conveying connectors, a moving component for driving connectors to slide on the conveying track, a cutting device for cutting excess copper sheets in the connectors, and a limiting block for limiting one end of the connectors; the conveying track is installed on the top of the base plate; the moving component and the cutting device are respectively located on both sides of the conveying track and are both disposed on the top of the base plate; the limiting blocks are disposed on both sides of the top of the conveying track, symmetrically arranged with respect to the cutting end of the cutting device.
[0007] A further technical solution is as follows: the moving component includes a support plate, a moving plate for driving the connector to slide on the conveying track, a first limiting rail disposed on the top of the support plate, a first slider disposed on the bottom of the moving plate, a connecting block for driving the moving plate to move back and forth along both ends of the conveying track, a first driving device mounted on the top of the support plate, a second slider disposed on the bottom of the support plate, a second limiting rail for limiting the sliding of the second slider, a support frame mounted on the top of the base plate, a second driving device for driving the support plate to slide closer to or away from the conveying track, and a support seat mounted on the top of the base plate; the moving plate has a slot adapted to the connector; the moving plate is connected to the connecting block; the connecting block is disposed on the driving end of the first driving device; the first slider is slidably connected to the first limiting rail; the support plate is disposed on the driving end of the second driving device; the second driving device is mounted on the top of the support seat; the second slider is slidably connected to the second limiting rail; the second limiting rail is disposed on the top of the support frame.
[0008] A further technical solution is that both the first driving device and the second driving device are cylinders.
[0009] One or more technical solutions provided in the embodiments of this application have at least the following technical effects or advantages: 1. The system utilizes a base plate, conveyor rails, moving components, a cutting device, and limiting blocks. The coordinated design of the conveyor rails and limiting blocks achieves precise positioning of the connectors, solving the problem of inaccurate positioning in traditional cutting devices. Symmetrically arranged limiting blocks ensure the stability of the connectors during the cutting process. The moving component employs a dual-drive design; the coordinated operation of the first and second drive devices, along with the guiding action of the first and second limiting rails, achieves precise positioning of the connectors in three-dimensional space. The slot design on the moving plate ensures stability during connector transport. The symmetrical layout of the cutting device and moving components optimizes the cutting process, resulting in a smoother cut surface for the copper sheet. The support frame and support base provide a stable installation foundation for the entire system, effectively absorbing vibrations during the cutting process. The modular design of this device makes it highly adaptable; by adjusting the position of the limiting blocks and replacing different sized slots, it can quickly adapt to the processing needs of connectors of different sizes. The standardized design of the base plate facilitates integration of the equipment into existing production lines. The automated cutting process significantly improves operational efficiency compared to manual operation. The dual limit rail design ensures stable processing accuracy even at high speeds. The equipment operates stably and reliably, and maintenance is simple. Major moving parts, such as the first and second drive units, utilize standardized cylinder designs for easy replacement. The wear-resistant design of the limit rails extends the equipment's lifespan and reduces maintenance costs. The overall structure is compact and efficient, occupying a small area. Compared to traditional cutting equipment, this device significantly reduces space requirements while maintaining high precision, resulting in substantial economic benefits. Attached Figure Description
[0010] Figure 1 This is a schematic diagram of the overall structure of a connector cutting device according to an embodiment of the present invention.
[0011] Figure 2 This is a partial structural diagram illustrating the moving component in an embodiment of this utility model.
[0012] In the diagram: 1. Base plate; 2. Conveying track; 3. Moving component; 31. Support plate; 32. Moving plate; 321. Slot; 33. First limiting rail; 34. First slider; 35. Connecting block; 36. First driving device; 37. Second slider; 38. Second limiting rail; 39. Support frame; 391. Second driving device; 392. Support base; 4. Cutting device; 5. Limiting block. Detailed Implementation
[0013] This application provides a connector cutting device, which solves the technical problems in the prior art where connector cutting is mostly done manually, resulting in low efficiency and difficulty in ensuring cutting accuracy, which cannot meet the needs of mass production. At the same time, the lack of an effective limiting device causes the connector to shake easily during the cutting process, resulting in uneven copper sheet cuts.
[0014] The technical solution in this application embodiment is to solve the above problems, and the overall idea is as follows: To better understand the above technical solutions, the following will provide a detailed explanation of the technical solutions in conjunction with the accompanying drawings and specific implementation methods.
[0015] A connector cutting device, such as Figure 1 and Figure 2 As shown, it includes a base plate 1, a conveying track 2 for conveying connectors, a moving component 3 for driving connectors to slide on the conveying track 2, a cutting device 4 for cutting excess copper sheets in connectors, and a limiting block 5 for limiting one end of connectors; the conveying track 2 is installed on the top of the base plate 1; the moving component 3 and the cutting device 4 are located on both sides of the conveying track 2, and are both set on the top of the base plate 1; limiting blocks 5 are provided on both sides of the top of the conveying track 2, symmetrically arranged with the cutting end of the cutting device 4.
[0016] The moving assembly 3 includes a support plate 31, a moving plate 32 for driving the connector to slide on the conveying track 2, a first limiting rail 33 disposed on the top of the support plate 31, a first slider 34 disposed on the bottom of the moving plate 32, a connecting block 35 for driving the moving plate 32 to move back and forth along both ends of the conveying track 2, a first driving device 36 mounted on the top of the support plate 31, a second slider 37 disposed on the bottom of the support plate 31, a second limiting rail 38 for limiting the sliding of the second slider 37, a support frame 39 mounted on the top of the base plate 1, and a mechanism for driving the support plate 31 to move closer to or away from the conveying track 2. The second drive device 391 slides along the track 2 and the support base 392 is mounted on the top of the base plate 1; the moving plate 32 has a slot 321 adapted to the plug-in; the moving plate 32 is connected to the connecting block 35; the connecting block 35 is set on the driving end of the first drive device 36; the first slider 34 is slidably connected to the first limiting rail 33; the support plate 31 is set on the driving end of the second drive device 391; the second drive device 391 is mounted on the top of the support base 392; the second slider 37 is slidably connected to the second limiting rail 38; the second limiting rail 38 is set on the top of the support frame 39.
[0017] Both the first drive unit 36 and the second drive unit 391 are cylinders.
[0018] The conveyor track 2 is fixedly installed on the top of the base plate 1 for conveying the connectors to be processed. The moving assembly 3 includes a support plate 31, a moving plate 32, a first limiting rail 33, a first slider 34, a connecting block 35, and a first driving device 36, which achieves precise positioning of the connectors through cylinder drive. The cutting device 4 is located on the other side of the conveyor track 2 and works in conjunction with the moving assembly 3. The limiting blocks 5 are symmetrically arranged on both sides of the conveyor track 2 to ensure the stability of the connectors during cutting. This device achieves high-precision cutting of the copper sheets of the connectors through the precise positioning of the moving assembly 3 and the coordinated operation of the cutting device 4.
[0019] Operating procedures Equipment preparation stage Check whether the connections of each component of the conveyor track 2, the moving component 3 and the cutting device 4 are secure. Confirm that the air pressure parameters of the first drive device 36 and the second drive device 391 are set correctly. Adjust the position spacing of the limit block 5 according to the specifications of the plug-in to be processed. Install the appropriate cutting tool and check its sharpness.
[0020] Material loading and positioning stage Arrange the connectors to be processed neatly on the feed end of the conveying track 2, start the first drive device 36, drive the moving plate 32 to move along the first limit rail 33 to the receiving position, and the second drive device 391 pushes the support plate 31 close to the conveying track 2 so that the slot 321 of the moving plate 32 is aligned with the connector.
[0021] Conveying and cutting stage The first driving device 36 drives the connecting block 35, which in turn drives the moving plate 32 to push the connector to the cutting station. The two ends of the connector are precisely positioned and fixed by the limiting blocks 5. The cutting device 4 starts and completes the precise cutting of the copper sheet of the connector. After the cutting is completed, the moving component 3 is reset to prepare for the next conveying.
[0022] Material Inspection Stage After the cut connector is completed, it continues to move along the conveyor track 2 to the discharge end. The first product is inspected for dimensional accuracy and cut quality. After it is confirmed to be qualified, it enters the mass production mode.
[0023] Maintenance and upkeep phase Regularly clean debris and oil stains on the conveyor track 2, check the wear of each limit rail and lubricate it in time, replace worn cutting tools, and check the cylinder seals and air pipe connections.
[0024] Beneficial effects The use of a base plate 1, conveyor rail 2, moving component 3, cutting device 4, and limiting block 5, along with the coordinated design of the conveyor rail 2 and limiting block 5, achieves precise positioning of the connector, solving the problem of inaccurate positioning in traditional cutting devices. The symmetrically arranged limiting blocks 5 ensure the stability of the connector during the cutting process. The moving component 3 employs a dual-drive design; through the coordinated work of the first drive device 36 and the second drive device 391, combined with the guiding action of the first limiting rail 33 and the second limiting rail 38, precise positioning of the connector in three-dimensional space is achieved. The slot 321 design on the moving plate 32 ensures the stability of the connector during transport. The symmetrical layout of the cutting device 4 and the moving component 3 optimizes the cutting process, resulting in a smoother cut surface for the copper sheet. The support frame 39 and support base 392 provide a stable installation foundation for the entire system, effectively absorbing vibrations during the cutting process. The modular design of this device gives it good adaptability; by adjusting the position of the limiting block 5 and replacing different specifications of the slot 321, it can quickly adapt to the processing requirements of connectors of different sizes. The standardized design of base plate 1 facilitates integration of the equipment into existing production lines. The automated cutting process significantly improves operational efficiency, offering a marked improvement over manual operation. The dual limit rail design ensures stable processing accuracy even at high speeds. The equipment operates stably and reliably, and maintenance is simple. Key moving parts, such as the first drive unit 36 and the second drive unit 391, utilize standardized cylinder designs for easy replacement. The wear-resistant design of the limit rails extends the equipment's lifespan and reduces maintenance costs. The overall structure is compact and efficient, occupying a small area. Compared to traditional cutting equipment, this device maintains high precision while significantly reducing space requirements, resulting in substantial economic benefits.
[0025] Although preferred embodiments of the present invention have been described, those skilled in the art, upon learning the basic inventive concept, can make other changes and modifications to these embodiments. Therefore, the appended claims are intended to be interpreted as including the preferred embodiments as well as all changes and modifications falling within the scope of the present invention.
[0026] Obviously, those skilled in the art can make various modifications and variations to this utility model without departing from its spirit and scope. Therefore, if these modifications and variations fall within the scope of the claims of this utility model and their equivalents, this utility model also intends to include these modifications and variations.
Claims
1. A connector cutting device, characterized in that, The device includes a base plate (1), a conveying track (2) for conveying the connector, a moving component (3) for driving the connector to slide on the conveying track (2), a cutting device (4) for cutting excess copper pieces in the connector, and a limiting block (5) for limiting one end of the connector; the conveying track (2) is installed on the top of the base plate (1); the moving component (3) and the cutting device (4) are located on both sides of the conveying track (2) and are both set on the top of the base plate (1); the limiting blocks (5) are provided on both sides of the top of the conveying track (2) and are symmetrically arranged with respect to the cutting end of the cutting device (4).
2. The connector cutting device as described in claim 1, characterized in that, The moving assembly (3) includes a support plate (31), a moving plate (32) for driving the connector to slide on the conveying track (2), a first limiting rail (33) disposed on the top of the support plate (31), a first slider (34) disposed on the bottom of the moving plate (32), a connecting block (35) for driving the moving plate (32) to move back and forth along both ends of the conveying track (2), a first driving device (36) mounted on the top of the support plate (31), a second slider (37) disposed on the bottom of the support plate (31), a second limiting rail (38) for limiting the sliding of the second slider (37), a support frame (39) mounted on the top of the base plate (1), and a mechanism for driving the support plate (31) to move closer to or away from the conveying track. 2) A sliding second drive device (391) and a support base (392) mounted on the top of the base plate (1); the moving plate (32) is provided with a slot (321) adapted to the plug-in; the moving plate (32) is connected to the connecting block (35); the connecting block (35) is set on the driving end of the first drive device (36); the first slider (34) is slidably connected to the first limiting rail (33); the support plate (31) is set on the driving end of the second drive device (391); the second drive device (391) is mounted on the top of the support base (392); the second slider (37) is slidably connected to the second limiting rail (38); the second limiting rail (38) is set on the top of the support frame (39).
3. The connector cutting device as described in claim 2, characterized in that, Both the first drive device (36) and the second drive device (391) are cylinders.