PCB circuit board terminal assembly device and method

By designing a PCB circuit board terminal assembly device that cooperates with a rotating disk frame and an electric cylinder, the installation inconvenience caused by bent pins is solved, and efficient and stable assembly of the terminal and PCB circuit board is achieved, thereby improving electrical performance.

CN119812882BActive Publication Date: 2025-09-30DONGGUAN HUATONG IND CO LTD
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Patent Information

Application Number
CN202510022126.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-01-07
Publication Date
2025-09-30
Estimated Expiration
2045-01-07

AI Technical Summary

Technical Problem

During the PCB assembly process, the pin portion of the terminal block is easily bent due to vibration or impact, making it difficult to install accurately and affecting reliability and electrical performance.

Method used

A PCB circuit board terminal assembly device is used, including a rotating disk frame, an intermittent transmission component, a feeding component, a feeding correction component and a self-positioning clamping component. The intermittent gear is driven by a motor to drive the rotating disk frame to rotate. Combined with the design of an electric cylinder and a torsion spring, the pin part of the terminal is sorted and corrected, and the PCB circuit board is stably clamped by the clamping frame.

Benefits of technology

The assembly accuracy and reliability of the terminal blocks and PCB circuit boards are improved, the possibility of pin bending is reduced, and the stability of the electrical connection and assembly efficiency are enhanced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of circuit component production, and proposes a PCB circuit board terminal assembly device and method. The PCB circuit board terminal assembly device includes a fixed frame, a loading frame is installed on the side of the fixed frame, and includes a rotating disk frame, an intermittent transmission component, a loading component, a loading correction component, a slot body, and a self-positioning clamping component. The rotating disk frame is rotatably mounted on the upper part of the fixed frame, the intermittent transmission component is installed inside the fixed frame, the loading component is installed on the loading frame, and the loading correction component is installed on the loading component. The rotating disk frame is provided with a plurality of slot bodies at equal angles in a circular shape on each slot body, and a self-positioning clamping component is installed on each slot body. The above technical solution solves the problem in the prior art that it is difficult to accurately locate the PCB circuit board socket position due to the bending of the pin portion of the terminal, resulting in inconvenience in installation.
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Description

Technical Field

[0001] The present invention relates to the technical field of circuit element production, and in particular to a device and method for assembling PCB circuit board connection terminals. Background Art

[0002] Terminal blocks are accessories used to make electrical connections, primarily to facilitate the connection and disconnection of wires. They typically consist of a metal plug enclosed in insulating plastic, with holes at each end for inserting wires and screws for tightening and loosening. Terminal blocks are widely used, particularly in the power industry, connecting various devices and systems such as terminal blocks and terminal boxes. They are widely used in everyday life, industrial production, and electronics.

[0003] Terminal blocks on a PCB are connection points on the printed circuit board that transmit and distribute power and signals between electronic components. Terminal blocks on a PCB come in a variety of standard types, such as dual-in-line, surface-mount leadless packages, and leaded pin arrays. These types of terminals have different arrangements and spacing requirements on the PCB to ensure that components are correctly and reliably connected to the terminals. During the PCB design process, the layout and specifications of the terminals are crucial to ensuring good electrical connections.

[0004] In order to reduce errors caused by manual operation, lower product defect rates, and improve production efficiency, assembly equipment is generally used for processing. However, during the assembly process of the PCB, if the equipment moves or is impacted, it may cause vibration. At the same time, it may also cause the pin part of the terminal to bend, making it difficult to accurately install it on the PCB circuit board, thereby affecting its reliability and electrical performance, and greatly reducing the reliability and quality of the terminal. Summary of the Invention

[0005] The present invention provides a device and method for assembling PCB circuit board terminal blocks, which solves the problem in the prior art that it is difficult to accurately locate the PCB circuit board socket position due to bending of the pin portion of the terminal block, resulting in inconvenience in installation.

[0006] The technical solutions of the present invention are as follows:

[0007] A PCB circuit board terminal assembly device includes a fixed frame, a loading frame is installed on the side of the fixed frame, and further includes:

[0008] A rotating disc rack, the rotating disc rack being rotatably mounted on the upper portion of the fixed frame;

[0009] An intermittent transmission assembly, the intermittent transmission assembly being installed inside the fixed frame and being used to drive the rotating disc rack to rotate intermittently;

[0010] A loading assembly, which is mounted on the loading frame and is used for loading materials;

[0011] A loading correction component, which is installed on the loading component and is used for loading;

[0012] A plurality of trough bodies are provided on the rotating disc frame in a circular shape with equal angles;

[0013] A self-positioning clamping component is installed on each of the slots and is used to clamp the circuit board.

[0014] On the basis of the above scheme, the intermittent transmission assembly includes:

[0015] An intermittent gear, the intermittent gear being rotatably mounted inside the fixed frame and fixedly connected to the rotating disc frame;

[0016] A motor, wherein the motor is fixedly mounted inside the fixed frame;

[0017] A driving gear is fixedly mounted on the output end of the motor and is engaged with the intermittent gear.

[0018] On the basis of the above scheme, the feeding assembly includes a first feeding device, which is fixedly mounted on the feeding frame, a feeding frame is fixedly mounted on the side of the fixed frame, and a second feeding device is fixedly mounted on the feeding frame, further comprising:

[0019] A loading robot arm, which is fixedly mounted on the loading frame and is located on one side of the first loading device;

[0020] A feeding robot arm, the feeding robot arm is fixedly mounted on the feeding frame, and the feeding robot arm is located on one side of the second loading device;

[0021] A clamping claw, the working ends of the loading robot arm and the feeding robot arm are both fixedly mounted with the clamping claw;

[0022] A deflection correcting frame is fixedly mounted on the second feeding device.

[0023] On the basis of the above scheme, the loading correction component includes:

[0024] A support plate, the support plate being fixedly mounted on the deviation-correcting frame;

[0025] First electric cylinders, two of which are symmetrically and fixedly mounted on the deflection-correcting frame;

[0026] A top frame, to which the output ends of the two first electric cylinders are fixedly mounted;

[0027] A shell, wherein the shell is rotatably mounted on the two top frames;

[0028] A torsion spring, wherein the two ends of the interior of the housing are fixedly mounted with the torsion spring, and the end of the torsion spring away from the housing is fixedly connected to the top frame;

[0029] Strip-shaped protrusions, a plurality of strip-shaped protrusions are fixedly arranged at equal distances on the two shells.

[0030] On the basis of the above solution, the self-positioning clamping assembly includes:

[0031] A positioning frame, each of the troughs is fixedly mounted with the positioning frame;

[0032] A fixing groove, each of the positioning frames is fixedly mounted with the fixing groove;

[0033] Side sliding frames, with the side sliding frames fixedly mounted on both sides of each positioning frame;

[0034] A mounting frame, wherein the mounting frame is fixedly installed between the two side sliding frames on both sides of each positioning frame;

[0035] A fixing portion, which is installed inside each of the side sliding frames and is used to fix the circuit board;

[0036] A driving part is installed on each of the mounting frames and is used to drive the fixing part.

[0037] On the basis of the above solution, the fixing portion includes:

[0038] Positioning slots, each positioning frame is symmetrically provided with two positioning slots;

[0039] A sliding frame is slidably mounted inside each of the positioning slots;

[0040] The mounting groove is provided inside each of the sliding frames.

[0041] In addition to the above solutions, it also includes:

[0042] A clamping frame, wherein each mounting groove is slidably mounted with the clamping frame, the two clamping frames in each positioning frame are symmetrically arranged, and the working section of each clamping frame is configured as an inclined surface;

[0043] Springs, multiple springs are fixedly installed in each installation slot at equal distances, and multiple springs are fixedly connected to the clamping frame.

[0044] On the basis of the above solution, the driving unit includes:

[0045] a second electric cylinder, wherein each of the mounting frames is fixedly mounted with the second electric cylinder;

[0046] A pushing frame is slidably mounted between the two side sliding frames on both sides of each positioning frame, and the pushing frame is fixedly connected to the output end of the second electric cylinder;

[0047] A connecting frame is fixedly mounted on the bottom of each sliding frame, and a side of the connecting frame away from the sliding frame is set as an inclined surface.

[0048] The working principle and beneficial effects of the present invention are:

[0049] 1. In the present invention, the first electric cylinder pushes the shell to move through the top frame until the multiple strip-shaped protrusions on the shell abut against the pins of the terminal blocks. At this time, as the first electric cylinder moves, the top frame pushes the shell to continue moving. At this time, the torsion spring is twisted, and the top frame and the shell rotate relative to each other, so that the pin parts of the terminal blocks are sorted and corrected through the strip-shaped protrusions, making their positions more neat and convenient for installation. When the shell moves to the required position, the terminal blocks can be pulled out from above, thereby further sorting the pin parts of the terminal blocks, making it easier to align the pins of the terminal blocks with the PCB circuit board, thereby improving the assembly speed and the stability of the connection between the terminal blocks and the PCB.

[0050] 2. In the present invention, the sliding frame drives the clamping frame to move, and the inclined surface of the clamping frame abuts against the PCB circuit board, thereby correcting the position of the PCB circuit board. When the clamping frame abuts against the PCB circuit board, the spring is compressed to a certain extent, thereby facilitating stable clamping of the PCB circuit board, reducing the possibility of the PCB circuit board being crushed, and improving assembly efficiency.

[0051] 3. In the present invention, the possibility of bending of the pin portion of the terminal block is reduced by cooperating with the feeding assembly and the feeding correction assembly, thereby avoiding the possibility of the terminal block being difficult to accurately install on the PCB circuit board, and improving the electrical performance of the connection. By setting the self-positioning clamping assembly, the PCB circuit board can be clamped quickly and stably, and the skewness of the PCB circuit board is reduced, which facilitates smooth assembly and greatly improves the reliability and quality of the assembly of the terminal block and the PCB circuit board. BRIEF DESCRIPTION OF THE DRAWINGS

[0052] The present invention will be further described in detail below with reference to the accompanying drawings and specific embodiments.

[0053] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0054] Figure 2 It is a cross-sectional structural diagram of the intermittent transmission assembly and the rotating disc frame in the present invention;

[0055] Figure 3 Schematic diagram of the structure of the feeding and correcting assembly in the present invention;

[0056] Figure 4 This is a schematic diagram of the structure of the cooperation between the first electric cylinder, the top frame, the torsion spring and the strip-shaped protrusion in the present invention;

[0057] Figure 5 Schematic diagram of the structure of the self-positioning clamping assembly of the present invention;

[0058] Figure 6 It is a cross-sectional structural diagram of the cooperation among the self-positioning clamping assembly, the fixing portion and the driving portion in the present invention;

[0059] Figure 7 Schematic diagram of the cross-sectional structure of the self-positioning clamping assembly of the present invention;

[0060] Figure 8 Schematic diagram of the structure of the fixed part in the present invention;

[0061] Figure 9 It is a schematic cross-sectional structural diagram of the driving part in the present invention.

[0062] In the figure: 1. Fixed frame; 2. Loading frame; 3. Rotating disk frame; 4. Trough body; 5. Intermittent gear; 6. Motor; 7. Driving gear; 8. First loading device; 9. Feeding frame; 10. Second loading device; 11. Loading robot arm; 12. Feeding robot arm; 13. Clamping claw; 14. Correction frame; 15. Support plate; 16. First electric cylinder; 17. Top frame; 18. Shell; 19. Torsion spring; 20. Bar protrusion; 21. Positioning frame; 22. Fixed groove; 23. Side sliding frame; 24. Mounting frame; 25. Positioning slide; 26. Sliding frame; 27. Mounting groove; 28. Clamping frame; 29. ​​Spring; 30. Second electric cylinder; 31. Pushing frame; 32. Connecting frame; 33. Pushing slide; 34. Push rod; 35. Raised ridge. DETAILED DESCRIPTION

[0063] The following will be combined with the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making any creative efforts are within the scope of protection of the present invention.

[0064] Example 1, as Figures 1 to 9 As shown, this embodiment proposes a PCB circuit board terminal assembly device, including a fixed frame 1, a loading frame 2 is installed on the side of the fixed frame 1, including a rotating disk frame 3, an intermittent transmission component, a loading component, a loading correction component, a trough body 4 and a self-positioning clamping component, the rotating disk frame 3 is rotatably installed on the upper part of the fixed frame 1, the intermittent transmission component is installed inside the fixed frame 1, and is used to drive the rotating disk frame 3 to rotate intermittently, the intermittent transmission component includes an intermittent gear 5, a motor 6 and a driving gear 7, the intermittent gear 5 is rotatably installed inside the fixed frame 1, the intermittent gear 5 is fixedly connected to the rotating disk frame 3, the motor 6 is fixedly installed inside the fixed frame 1, the drive gear 7 is fixedly installed at the output end of the motor 6, and the drive gear 7 is engaged with the intermittent gear 5.

[0065] Specifically, when assembling and processing the PCB circuit board terminals, the PCB circuit board to be processed and the terminal to be installed are first placed on the loading assembly, and the loading assembly is used to move the PCB circuit board to the clamping position in sequence, and then it is placed on the self-positioning clamping assembly on the slot body 4. At this time, the motor 6 is started, and the motor 6 drives the driving gear 7 to rotate, and the driving gear 7 drives the intermittent gear 5 to rotate intermittently. The number of times the intermittent gear 5 stops rotating each time it rotates one circle is the same as the number of slot bodies 4. That is, each time the intermittent gear 5 stops rotating, it can drive the corresponding slot body 4 on the rotating disc 3 to move to the corresponding position, and then the corresponding PCB circuit board is placed on the self-positioning clamping assembly on the corresponding slot body 4 and fixed. As the rotating disc 3 rotates, when the clamped PCB circuit board is moved to the position of the loading correction assembly, the terminal blocks moved to the specified positions in sequence are clamped, and under the action of the loading correction assembly, the pin parts of the terminal blocks are straightened to improve the assembly accuracy and quality. After the corresponding terminal blocks are assembled at the specified positions on the PCB circuit board, they are welded and can be collected.

[0066] like Figure 1As shown, the loading assembly is installed on the loading frame 2 for loading, and the loading assembly includes a first loading device 8, which is fixedly installed on the loading frame 2, and a feeding frame 9 is fixedly installed on the side of the fixed frame 1, and a second loading device 10 is fixedly installed on the feeding frame 9, and also includes a loading robot arm 11, a feeding robot arm 12, a clamping claw 13 and a correction frame 14. The loading robot arm 11 is fixedly installed on the loading frame 2, and the loading robot arm 11 is located on one side of the first loading device 8, and a feeding robot arm 12 is fixedly installed on the feeding frame 9, and the feeding robot arm 12 is located on one side of the second loading device 10. The working ends of the loading robot arm 11 and the feeding robot arm 12 are fixedly installed with a clamping claw 13, and the second loading device 10 is fixedly installed with a correction frame 14.

[0067] Specifically, during the loading process, the PCB circuit boards are placed on the first loading device 8 in sequence, and the first loading device 8 is started to transport the PCB circuit boards. At the same time, the wiring terminals are placed on the second loading device 10 in sequence, and the second loading device 10 is started to transport the wiring terminals. At this time, the loading robot arm 11 is started. As the rotating disc rack 3 rotates, the PCB circuit boards are placed on the fixed grooves 22 in sequence through the setting of the clamping claws 13. As the rotating disc rack 3 rotates, until the corresponding PCB circuit board moves to the position of the feeding rack 9, the feeding robot arm 12 is started to move the wiring terminals to the upper part of the corresponding PCB circuit board, find the installation position, and install the wiring terminals on the PCB circuit board.

[0068] like Figure 3 、 Figure 4 As shown, the feeding correction component is installed on the feeding component and is used for feeding. The feeding correction component includes a support plate 15, a first electric cylinder 16, a top frame 17, a shell 18, a torsion spring 19 and a strip protrusion 20. The support plate 15 is fixedly installed on the correction frame 14. Two first electric cylinders 16 are symmetrically and fixedly installed on the correction frame 14. The output ends of the two first electric cylinders 16 are fixedly installed with a top frame 17. The shell 18 is rotatably installed on the two top frames 17. The torsion springs 19 are fixedly installed at both ends of the inside of the shell 18. The end of the torsion spring 19 away from the shell 18 is fixedly connected to the top frame 17. A plurality of strip protrusions 20 are fixedly provided at equal distances on the two shells 18.

[0069] Specifically, when the feeding robot arm 12 uses the clamping claw 13 to clamp the terminal on the second loading device 10, the terminal is first placed on the support plate 15 so that the multiple pins in the two rows at the bottom of the terminal are located on both sides of the support plate 15. At this time, the two first electric cylinders 16 are started, and the first electric cylinder 16 pushes the top frame 17 to move, and the top frame 17 pushes the shell 18 to move until the multiple strip protrusions 20 on the shell 18 abut against the pins of the terminal. At this time, with the action of the first electric cylinder 16, the top frame 17 pushes the shell 18 to move continuously. At this time, the torsion spring 19 is twisted, and the top frame 17 and the shell 18 rotate relative to each other, so that the pin part of the pin of the terminal is combed and corrected through the strip protrusion 20, so that its position is more neat and easy to install. When the shell 18 moves to the required position, the terminal can be pulled out from the top, thereby further combing the pin part of the terminal.

[0070] like Figures 5 to 9 As shown, a plurality of grooves 4 are provided on the rotating disk frame 3 in a circular shape at equal angles, and each groove 4 is equipped with a self-positioning clamping assembly for clamping the circuit board. The self-positioning clamping assembly includes a positioning frame 21, a fixing groove 22, a side sliding frame 23, a mounting frame 24, a fixing part and a driving part. A positioning frame 21 is fixedly installed on each groove 4, a fixing groove 22 is fixedly installed on each positioning frame 21, side sliding frames 23 are fixedly installed on both sides of each positioning frame 21, a mounting frame 24 is fixedly installed between the two side sliding frames 23 on both sides of each positioning frame 21, a fixing part is installed inside each side sliding frame 23 for fixing the circuit board, and a driving part is installed on each mounting frame 24 for driving the fixing part.

[0071] Specifically, after the PCB circuit board is placed on the fixing groove 22, the driving part is started to drive the fixing part to move, thereby clamping the PCB circuit board. During the movement process, the relative position of the PCB circuit board and the fixing groove 22 is corrected during the process of fixing the PCB circuit board through the setting of the fixing part, thereby improving the stability of the installation.

[0072] The above, such as Figure 8 As shown, the fixed part includes a positioning slide 25, a sliding frame 26 and a mounting groove 27. Two positioning slides 25 are symmetrically opened on each positioning frame 21. A sliding frame 26 is slidably installed inside each positioning slide 25. A mounting groove 27 is opened inside each sliding frame 26. It also includes a clamping frame 28 and a spring 29. A clamping frame 28 is slidably installed inside each mounting groove 27. The two clamping frames 28 in each positioning frame 21 are symmetrically arranged. The working section of each clamping frame 28 is set as an inclined plane. Multiple springs 29 are fixedly installed at equal distances in each mounting groove 27, and multiple springs 29 are fixedly connected to the clamping frame 28.

[0073] Specifically, when clamping the PCB circuit board in the installation groove 27, the sliding frame 26 moves on the positioning slide groove 25, and the sliding frame 26 drives the clamping frame 28 in the installation groove 27 to move until the inclined surface of the clamping frame 28 abuts against the PCB circuit board, thereby correcting the position of the PCB circuit board. Under the action of the spring 29, when the clamping frame 28 abuts against the PCB circuit board, the spring 29 is compressed to a certain extent, thereby facilitating stable clamping of the PCB circuit board and reducing the possibility of the PCB circuit board being crushed.

[0074] The above, such as Figure 9 As shown, the driving part includes a second electric cylinder 30, a pushing frame 31 and a connecting frame 32. The second electric cylinder 30 is fixedly installed on each mounting frame 24, and a pushing frame 31 is slidably installed between the two side slides 23 on both sides of each positioning frame 21. The pushing frame 31 is fixedly connected to the output end of the second electric cylinder 30. The bottom of each sliding frame 26 is fixedly installed with a connecting frame 32, and the side of the connecting frame 32 away from the sliding frame 26 is set as an inclined surface, and also includes a pushing slide groove 33, a push rod 34 and a ridge 35. A pushing slide groove 33 is provided on the inclined surface of each connecting frame 32, and a push rod 34 is symmetrically and fixedly installed on each pushing frame 31. Each push rod 34 is provided with an inclined surface at one end away from the connecting frame 32, and a ridge 35 is fixedly installed on the inclined surface of each push rod 34, and multiple ridges 35 are slidably connected to multiple pushing slide grooves 33 respectively.

[0075] Specifically, when clamping the PCB circuit board in the fixing groove 22, the corresponding second electric cylinder 30 is started, and the second electric cylinder 30 pushes the pushing frame 31 to move, and the pushing frame 31 pushes the push rod 34 to move, and the push rod 34 pushes the sliding frame 26 through the setting of the inclined surface through the connecting frame 32, and the sliding connection between the push rod 34 and the connecting frame 32 can be achieved by cooperating with the ridge 35 on the inclined surface of the moving push rod 34 and the pushing groove 33 on the inclined surface of the connecting frame 32. When the pushing frame 31 moves, the sliding frame 26 can be pushed to move, and when the pushing frame 31 is reset, the sliding frame 26 can also be moved back to its original position.

[0076] To sum up, when assembling and processing the PCB circuit board terminals, first place the PCB circuit board to be processed and the terminal to be installed in the designated position, place the PCB circuit board on the first loading device 8 in sequence, start the first loading device 8 to transport the PCB circuit board, and at the same time place the terminal on the second loading device 10 in sequence, start the second loading device 10 to transport the terminal, and at this time start the loading robot arm 11, and through the setting of the clamping claw 13, place the PCB circuit board on the fixing groove 22 in sequence to fix it.

[0077] When the cam 33 is in the unlock state, the second lever 31 is unlocked and the second lever 31 is unlocked, so that the cam 33 can be unlocked and the second lever 31 is unlocked, thereby unlocking the cam 33 and the second lever 31. When the cam 33 is unlocked, the second lever 31 is unlocked and the second lever 31 is unlocked, so that the cam 33 can be unlocked and the second lever 31 is unlocked.

[0078] At this time, the motor 6 is started, and the motor 6 drives the driving gear 7 to rotate, and the driving gear 7 drives the intermittent gear 5 to rotate intermittently. The number of times the intermittent gear 5 stops rotating each time it rotates one circle is the same as the number of slots 4. That is, each time the intermittent gear 5 stops rotating, it can drive the corresponding slot 4 on the rotating disc rack 3 to move to the corresponding position.

[0079] As the rotating disc rack 3 rotates, until the corresponding PCB circuit board moves to the position of the feeding rack 9, the feeding robot arm 12 is started to move the terminal block to the upper part of the corresponding PCB circuit board, find the installation position, and install the terminal block on the PCB circuit board.

[0080] Before moving the terminal to the upper part of the corresponding PCB circuit board, the terminal is first placed on the support plate 15 so that the multiple pins in the two rows at the bottom of the terminal are located on both sides of the support plate 15. At this time, the two first electric cylinders 16 are started, and the first electric cylinder 16 pushes the top frame 17 to move, and the top frame 17 pushes the shell 18 to move until the multiple strip protrusions 20 on the shell 18 abut against the pins of the terminal. At this time, with the action of the first electric cylinder 16, the top frame 17 pushes the shell 18 to move continuously, and the torsion spring 19 is twisted, and the top frame 17 and the shell 18 rotate relative to each other, so that the pin parts of the pins of the terminal are sorted and corrected through the strip protrusions 20, making their positions more neat and convenient for installation. When the shell 18 moves to the required position, the terminal can be pulled out from above, thereby further sorting the pin parts of the terminal. After the corresponding terminal is assembled at the specified position on the PCB circuit board, it is welded and can be collected.

[0081] Embodiment 2: This embodiment 2 is based on a PCB circuit board terminal assembly device and also proposes a PCB circuit board terminal assembly method, including the following steps:

[0082] The first step is to place the PCB circuit boards on the first loading device 8 in sequence, and start the first loading device 8 to transport the PCB circuit boards.

[0083] The second step is to discharge the materials synchronously, and place the connecting terminals on the second loading device 10 in sequence, and start the second loading device 10 to transport the connecting terminals.

[0084] The third step is loading. At this time, the loading robot arm 11 is started, and the PCB circuit boards are placed on the fixing slots 22 in sequence through the setting of the clamping claws 13.

[0085] The fourth step is pushing, starting the corresponding second electric cylinder 30, and the second electric cylinder 30 pushes the pushing frame 31 to move.

[0086] The fifth step is ejection. The pushing frame 31 pushes the ejector rod 34 to move. The ejector rod 34 pushes the sliding frame 26 to move through the connecting frame 32 through the setting of the inclined surface.

[0087] The sixth step is correction. The sliding frame 26 drives the clamping frame 28 in the installation groove 27 to move until the inclined surface of the clamping frame 28 abuts against the PCB circuit board, thereby correcting the position of the PCB circuit board.

[0088] The seventh step is clamping. Under the action of the spring 29, when the clamping frame 28 abuts against the PCB circuit board, the spring 29 is compressed to a certain extent, thereby facilitating stable clamping of the PCB circuit board and reducing the possibility of the PCB circuit board being crushed.

[0089] The eighth step is to rotate and start the motor 6. The motor 6 drives the driving gear 7 to rotate, and the driving gear 7 drives the intermittent gear 5 to rotate intermittently. The number of times the intermittent gear 5 stops rotating each time it rotates one circle is the same as the number of slots 4. That is, each time the intermittent gear 5 stops rotating, it can drive the corresponding slot 4 on the rotating disc rack 3 to move to the corresponding position.

[0090] The ninth step is to move, as the rotating disc rack 3 rotates, until the corresponding PCB circuit board moves to the position of the feeding rack 9.

[0091] The tenth step is placement. Place the terminal block on the support plate 15 so that the multiple pins in the two rows at the bottom of the terminal block are located on both sides of the support plate 15.

[0092] The eleventh step is to start. At this time, the two first electric cylinders 16 are started. The first electric cylinders 16 push the top frame 17 to move, and the top frame 17 pushes the shell 18 to move until the multiple strip protrusions 20 on the shell 18 abut against the pins of the terminal.

[0093] The twelfth step is correction. The top frame 17 pushes the shell 18 to move continuously. At this time, the torsion spring 19 is twisted, and the top frame 17 and the shell 18 rotate relative to each other, so that the pin part of the terminal pin is sorted and corrected through the strip protrusion 20, making its position more neat and easy to install. When the shell 18 moves to the required position, the terminal can be pulled out from the top, thereby further sorting the pin part of the terminal pin.

[0094] The thirteenth step is assembly. Start the feeding robot arm 12 and move the terminal blocks to the upper part of the corresponding PCB circuit board. After assembling the corresponding terminal blocks at the designated position on the PCB circuit board, solder them.

[0095] The above are only preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. A PCB circuit board terminal assembly device, comprising a fixed frame (1), a feeding frame (2) is installed on the side of the fixed frame (1), characterized in that: Also includes: A rotating disc rack (3), wherein the rotating disc rack (3) is rotatably mounted on the upper portion of the fixed frame (1); An intermittent transmission assembly, the intermittent transmission assembly being installed inside the fixed frame (1) and being used to drive the rotating disc frame (3) to perform intermittent rotation; A loading assembly, the loading assembly being mounted on the loading frame (2) and being used for loading materials; The feeding assembly comprises a first feeding device (8), the first feeding device (8) is fixedly mounted on the feeding frame (2), a feeding frame (9) is fixedly mounted on the side of the fixed frame (1), and a second feeding device (10) is fixedly mounted on the feeding frame (9), and is characterized in that it also includes: A loading robot arm (11), the loading robot arm (11) is fixedly mounted on the loading frame (2), and the loading robot arm (11) is located on one side of the first loading device (8); A feeding mechanical arm (12), the feeding mechanical arm (12) is fixedly mounted on the feeding frame (9), and the feeding mechanical arm (12) is located on one side of the second loading device (10); A clamping claw (13), the working ends of the loading robot arm (11) and the feeding robot arm (12) are both fixedly mounted with the clamping claw (13); A deflection-correcting frame (14), wherein the deflection-correcting frame (14) is fixedly mounted on the second feeding device (10); A loading correction component, which is installed on the loading component and is used for loading; The loading correction component includes: A support plate (15), wherein the support plate (15) is fixedly mounted on the deviation-correcting frame (14); A first electric cylinder (16), two of which are symmetrically and fixedly mounted on the deviation-correcting frame (14); A top frame (17), the output ends of the two first electric cylinders (16) are both fixedly mounted with the top frame (17); The loading correction component includes: A shell (18), wherein the shell (18) is rotatably mounted on each of the two top frames (17); A torsion spring (19), wherein the torsion spring (19) is fixedly mounted at both ends of the interior of the housing (18), and the end of the torsion spring (19) away from the housing (18) is fixedly connected to the top frame (17); Strip-shaped protrusions (20), a plurality of strip-shaped protrusions (20) are fixedly provided at equal distances on the two shells (18); A trough body (4), wherein a plurality of the trough bodies (4) are provided on the rotating disc frame (3) at equal angles in a circular shape; A self-positioning clamping component is installed on each of the slot bodies (4) and is used for clamping a circuit board.

2. A PCB circuit board terminal assembly device according to claim 1, characterized in that: The intermittent transmission assembly comprises: An intermittent gear (5), the intermittent gear (5) being rotatably mounted inside the fixed frame (1), and the intermittent gear (5) being fixedly connected to the rotating disc frame (3); A motor (6), wherein the motor (6) is fixedly mounted inside the fixed frame (1); A driving gear (7) is fixedly mounted on the output end of the motor (6), and the driving gear (7) is meshed with the intermittent gear (5).

3. A PCB circuit board terminal assembly device according to claim 2, characterized in that: The self-positioning clamping assembly comprises: A positioning frame (21), wherein each of the trough bodies (4) is fixedly mounted with the positioning frame (21); A fixing groove (22), each of the positioning frames (21) is fixedly mounted with the fixing groove (22); Side sliding frames (23) are fixedly mounted on both sides of each positioning frame (21).

4. The PCB circuit board terminal assembly device according to claim 3, characterized in that: The self-positioning clamping assembly comprises: A mounting frame (24), wherein the mounting frame (24) is fixedly mounted between the two side sliding frames (23) on both sides of each positioning frame (21); A fixing portion, wherein each side sliding frame (23) is provided with the fixing portion inside and is used for fixing the circuit board; A driving part is installed on each of the mounting frames (24) and is used to drive the fixing part.

5. The PCB circuit board terminal assembly device according to claim 4, characterized in that: The fixing portion includes: Positioning slots (25), each of the positioning frames (21) is symmetrically provided with two positioning slots (25); A sliding frame (26), wherein each of the positioning slide grooves (25) is slidably mounted with the sliding frame (26); A mounting groove (27) is provided inside each of the sliding frames (26).

6. The PCB circuit board terminal assembly device according to claim 5, characterized in that: Also includes: A clamping frame (28), wherein the clamping frame (28) is slidably mounted inside each of the mounting grooves (27), the two clamping frames (28) in each of the positioning frames (21) are symmetrically arranged, and the working section of each of the clamping frames (28) is configured as an inclined surface; Springs (29), a plurality of springs (29) are fixedly installed at equal distances in each of the installation slots (27), and the plurality of springs (29) are fixedly connected to the clamping frame (28).

7. The PCB circuit board terminal assembly device according to claim 6, characterized in that: The driving unit includes: A second electric cylinder (30), wherein each of the mounting frames (24) is fixedly mounted with the second electric cylinder (30); A pushing frame (31) is slidably mounted between the two side sliding frames (23) on both sides of each positioning frame (21), and the pushing frame (31) is fixedly connected to the output end of the second electric cylinder (30); A connecting frame (32) is fixedly mounted on the bottom of each sliding frame (26), and a side of the connecting frame (32) away from the sliding frame (26) is set as an inclined surface.