Electronic component packaging equipment
By designing a pressing, pressure control, and pressure adjustment mechanism for electronic component packaging equipment, precise control and flexible adjustment of the pressing force are achieved, solving the problems of uneven pressing and limited applicability in existing equipment, and improving packaging quality and production efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-21
- Publication Date
- 2026-03-10
AI Technical Summary
Existing electronic component packaging equipment cannot precisely control the pressing force, resulting in uneven pressing or excessive pressure, which affects packaging quality and sealing performance. Furthermore, it lacks flexible adjustment functions, limiting its applicability.
A packaging device including pressing, pressure control and pressure adjustment mechanisms was designed. The device utilizes a motor-driven screw transmission block, combined with the elastic action of the locking block, locking groove and pressure spring, to achieve precise adjustment and automatic release of the pressing force. The pressure can be flexibly adjusted by rotating the rotating sleeve of the pressure adjustment mechanism to adjust the displacement of the limit block.
This ensures uniform and stable pressure between the top cover and the outer shell, preventing product damage and poor sealing, improving operational accuracy and equipment applicability, meeting the packaging needs of different components, and increasing production efficiency.
Smart Images

Figure CN223982762U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the packaging technical field of electronic components, more particularly, it relates to an electronic component packaging equipment. BACKGROUND
[0002] In the packaging process of electronic components, accurately controlling the pressing force between the shell and the top cover of the electronic components is a crucial link. In the existing technology, manual or fixed pressure devices are usually used to complete the pressing of the shell and the top cover. However, these devices cannot accurately adjust the applied pressure, which may lead to uneven pressing or excessive pressure, thereby affecting the packaging quality. Especially when dealing with precision components, excessive pressure may damage the components, and insufficient pressure may cause the shell and the top cover to fail to tightly combine, affecting the sealing and protection performance of the product. Therefore, how to accurately control the pressing force has become an important requirement for improving packaging quality and efficiency.
[0003] In addition, the existing equipment generally lacks flexible adjustment function for the pressing force, which makes it impossible to adjust the applied pressure according to actual needs during the packaging process of different batches or models of components. This limits the applicability of the equipment, especially when facing electronic components of different sizes or shapes, traditional equipment is difficult to provide appropriate pressing force, leading to instability in the packaging process and low production efficiency. SUMMARY
[0004] (I) Technical problems solved
[0005] In view of the problems existing in the prior art, the utility model provides an electronic component packaging equipment to solve the technical problems mentioned in the background art.
[0006] (II) Technical solutions
[0007] To achieve the above object, the utility model provides following technical scheme: a kind of electronic component packaging equipment, including base, the base is provided with pressing mechanism, the pressing mechanism includes support frame, motor, screw rod, transmission block, pressing plate and placing seat, support frame is fixed on base, motor is fixed on support frame top surface, screw rod rotates on support frame and is connected with motor output end, transmission block is threadedly connected on the outer wall of screw rod, pressing plate is fixed on the bottom surface of transmission block, placing seat is fixed on base, the motor is provided with pressure control mechanism between screw rod, the pressure control mechanism includes connecting rod, connecting sleeve, clamping block, slot, sliding hole, pressure regulating block, bottom plate, slide rod, set pressure spring and pressure block, connecting rod is fixed on motor output end, connecting sleeve is fixed on screw rod top end, clamping block is provided with multiple groups sliding in connecting sleeve, slot is provided with multiple groups distribution on the outer wall of connecting rod, sliding hole is provided with multiple groups distribution in connecting sleeve, pressure regulating block is arranged in multiple groups sliding hole, bottom plate is arranged at the bottom end of multiple groups sliding hole, slide rod is fixed on the top surface of multiple groups bottom plate and is slidably connected with pressure regulating block respectively, set pressure spring is installed on the top surface of multiple groups bottom plate and is respectively abutted with multiple groups pressure regulating block, pressure block is installed on the top end of multiple groups slide rod and is respectively abutted with multiple groups clamping block.
[0008] The utility model further provides that the outer wall of the connecting sleeve is provided with a pressure regulating mechanism, the pressure regulating mechanism includes a sliding groove, a sliding sleeve, a mounting sleeve, a positioning block, a positioning groove, a return spring and a locking mechanism, is distributed on the outside of multiple groups of sliding holes, the sliding sleeve is slidably connected with multiple groups of pressure regulating blocks in the sliding groove, the mounting sleeve is fixed on the top surface of the sliding sleeve, the positioning block is provided with multiple groups of positioning grooves on the outer wall of the mounting sleeve, the return spring is provided with multiple groups of return springs, which are respectively installed on the inside of multiple groups of positioning blocks and connected with the outer wall of the connecting sleeve.
[0009] The utility model further provides that the locking mechanism includes a limiting sleeve, a mounting rod, a limiting block, a rotating sleeve, a limiting groove and an unlocking groove, the limiting sleeve is slidably connected with the outer wall of the connecting sleeve, the mounting rod is provided with multiple groups of mounting rods distributed on the top surface of the limiting sleeve, the limiting block is provided with multiple groups of limiting blocks respectively installed on the inside of multiple groups of mounting rods, the rotating sleeve is rotatably installed on the outer wall of the connecting sleeve, the limiting groove is provided on the outer wall of the rotating sleeve, and the unlocking groove is provided with multiple groups of unlocking grooves distributed on the outside of the rotating sleeve.
[0010] The utility model further provides that a cylinder is installed on the base, and a clamping block is fixedly installed on the telescopic end of the cylinder. The installation of the cylinder enables the clamping block to automatically extend and retract, thereby realizing accurate clamping of the electronic component shell, avoiding errors in manual operation, and improving the stability and automation level of clamping.
[0011] The utility model further provides that the bottom end of multiple groups of clamping blocks and the outside of the slot are provided with arc shapes. The arc design of the bottom end of the clamping block enables the clamping block to slide more smoothly when in contact with the slot, reduces friction, avoids jamming, ensures the smoothness of the pressing process, and improves the service life and reliability of the device.
[0012] The present invention is further configured such that a rotating shaft is installed at the top of the connecting rod, and a limiting shaft is provided on the outer wall of the rotating shaft. Multiple sets of limiting shafts are provided, all of which are rotatably connected to the connecting sleeve. The design of the rotating shaft and the limiting shaft ensures a more stable rotation process for the connecting rod, avoids unnecessary deviation, improves pressing accuracy, and achieves effective power transmission through rotational cooperation with the connecting sleeve.
[0013] The present invention is further configured such that the top surface of the rotating sleeve is provided with a pressing block, and the outer wall of the connecting sleeve is provided with a mounting block. Multiple sets of the pressing block and the mounting block are provided, and each is connected to a return spring. The cooperation between the pressing block and the return spring allows the rotating sleeve to quickly return to its original position after the operation is completed, thereby ensuring the stability of the system, avoiding over-pressuring, and improving the flexibility and efficiency of operation.
[0014] This invention is further configured such that the width of each of the multiple unlocking slots is greater than that of the limiting block. The design of the unlocking slot width allows the limiting block to move smoothly and release its limit, thereby achieving pressure adjustment and system reset, ensuring smooth operation and reliable adjustment function.
[0015] (III) Beneficial Effects
[0016] Compared with the prior art, the present invention provides an electronic component packaging device, which has the following beneficial effects:
[0017] 1. The pressing mechanism uses a motor to drive the screw to rotate, which in turn drives the transmission block to push the pressure plate to press the top cover and the outer shell together. This design ensures that the pressing force between the top cover and the outer shell is uniform and stable, avoiding product damage or poor sealing caused by improper pressing. At the same time, by controlling the rotation of the screw, the pressing process can be precisely adjusted, improving the operation accuracy and packaging quality.
[0018] 2. The pressure control mechanism, through the cooperation of the locking block and the locking slot and the elastic action of the pressure spring, can automatically release pressure after the predetermined force is reached, preventing excessive pressure from damaging the components. The arc design of the locking block and the locking slot ensures accurate pressure transmission, while the linkage between the pressure block and the slide rod can effectively stretch the pressure spring, thereby adjusting the pressure. This allows the pressure control mechanism to be flexibly adjusted under different packaging requirements, ensuring the integrity and stability of the components.
[0019] 3. The pressure regulating mechanism adjusts the displacement of the limit block by rotating the rotating sleeve, thereby achieving precise adjustment of the preset force of the pressure spring. This design makes the pressure adjustment more flexible and precise, and can adjust the pressing force according to the needs of different electronic components, ensuring that each component is subjected to appropriate pressure during the pressing process. Through the cooperation of the sliding sleeve and the pressure regulating block, the pressure regulating mechanism can meet diverse production needs while ensuring the stability of the equipment, thereby improving the applicability and working efficiency of the equipment. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the overall structure of an electronic component packaging equipment according to the present invention;
[0021] Figure 2 This is a schematic diagram of the clamping block in this utility model;
[0022] Figure 3 This is a schematic diagram of the connection structure of the pressure regulating mechanism in this utility model;
[0023] Figure 4 This is a cross-sectional view of the pressure regulating mechanism in this utility model;
[0024] Figure 5 This is a cross-sectional structural diagram of the pressure control mechanism in this utility model.
[0025] In the diagram: 1. Base; 2. Support frame; 3. Motor; 4. Screw; 5. Transmission block; 6. Pressure plate; 7. Placement seat; 8. Connecting rod; 9. Connecting sleeve; 10. Locking block; 11. Locking groove; 12. Sliding hole; 13. Pressure adjusting block; 14. Base plate; 15. Sliding rod; 16. Pressure spring; 17. Pressure applying block; 18. Sliding groove; 19. Sliding sleeve; 20. Mounting sleeve; 21. Positioning block; 22. Positioning groove; 23. Return spring; 24. Limiting sleeve; 25. Mounting rod; 26. Limiting block; 27. Rotating sleeve; 28. Limiting groove; 29. Unlocking groove; 30. Cylinder; 31. Clamping block; 32. Rotating shaft; 33. Limiting shaft; 34. Pressing block; 35. Mounting block; 36. Return spring. Detailed Implementation
[0026] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. The present invention will now be described in detail with reference to the accompanying drawings and embodiments.
[0027] It should be noted that, unless otherwise specified, all technical and scientific terms used in this application have the same meaning as commonly understood by one of ordinary skill in the art to which this application pertains.
[0028] In this utility model, unless otherwise stated, the orientations used, such as "up" and "down", usually refer to the direction shown in the accompanying drawings, or to the vertical, perpendicular, or gravitational direction; similarly, for ease of understanding and description, "left" and "right" usually refer to the left and right shown in the accompanying drawings; "inner" and "outer" refer to the inner and outer contours of each component itself, but the above directional terms are not used to limit this utility model.
[0029] Please see Figures 1-5 An electronic component packaging device includes a base 1, on which a pressing mechanism is mounted. The pressing mechanism includes a support frame 2, a motor 3, a screw 4, a transmission block 5, a pressure plate 6, and a placement seat 7. The support frame 2 is fixed to the base 1, the motor 3 is fixed to the top surface of the support frame 2, the screw 4 rotates on the support frame 2 and is connected to the output end of the motor 3, the transmission block 5 is threaded to the outer wall of the screw 4, the pressure plate 6 is fixed to the bottom surface of the transmission block 5, and the placement seat 7 is fixed to the base 1. A pressure control mechanism is provided between the motor 3 and the screw 4. The pressure control mechanism includes a connecting rod 8, a connecting sleeve 9, a locking block 10, a locking groove 11, a sliding hole 12, a pressure adjusting block 13, a base plate 14, and a sliding rod 15. The system includes a compression spring 16 and a pressure block 17. A connecting rod 8 is fixed to the output end of the motor 3, a connecting sleeve 9 is fixed to the top of the screw 4, a locking block 10 has multiple sets of sliding blocks that slide inside the connecting sleeve 9, a locking groove 11 has multiple sets of grooves distributed on the outer wall of the connecting rod 8, a sliding hole 12 has multiple sets of sliding holes distributed inside the connecting sleeve 9, a pressure adjusting block 13 is set inside the multiple sets of sliding holes 12, a base plate 14 is set at the bottom end of the multiple sets of sliding holes 12, a sliding rod 15 is fixed to the top surface of the multiple sets of base plates 14 and is slidably connected to the pressure adjusting block 13, a compression spring 16 is installed on the top surface of the multiple sets of base plates 14 and abuts against the multiple sets of pressure adjusting blocks 13, and a pressure block 17 is installed on the top of the multiple sets of sliding rods 15 and abuts against the multiple sets of locking blocks 10.
[0030] The outer wall of the connecting sleeve 9 is provided with a pressure regulating mechanism, which includes a sliding groove 18, a sliding sleeve 19, a mounting sleeve 20, a positioning block 21, a positioning groove 22, a return spring 23, and a locking mechanism. These components are distributed on the outside of multiple sets of sliding holes 12. The sliding sleeve 19 slides in the sliding groove 18 and is fixedly connected to multiple sets of pressure regulating blocks 13. The mounting sleeve 20 is fixed on the top surface of the sliding sleeve 19. Multiple sets of positioning blocks 21 are provided and installed on the outer wall of the mounting sleeve 20. Multiple sets of positioning grooves 22 are provided and distributed on the outer wall of the connecting sleeve 9. Multiple sets of return springs 23 are provided and installed on the inner side of multiple sets of positioning blocks 21 and connected to the outer wall of the connecting sleeve 9.
[0031] The locking mechanism includes a limiting sleeve 24, a mounting rod 25, a limiting block 26, a rotating sleeve 27, a limiting groove 28, and an unlocking groove 29. The limiting sleeve 24 slides on the outer wall of the connecting sleeve 9. Multiple sets of mounting rods 25 are distributed on the top surface of the limiting sleeve 24. Multiple sets of limiting blocks 26 are respectively installed on the inner side of the multiple sets of mounting rods 25. The rotating sleeve 27 is rotatably installed on the outer wall of the connecting sleeve 9. The limiting groove 28 is located on the outer wall of the rotating sleeve 27. Multiple sets of unlocking grooves 29 are distributed on the outer side of the rotating sleeve 27.
[0032] A cylinder 30 is mounted on the base 1, and a clamping block 31 is fixedly mounted on the telescopic end of the cylinder 30. The telescopic movement of the cylinder drives the clamping block 31 to achieve automatic clamping, thereby improving clamping accuracy and automation.
[0033] The bottom of the multiple sets of locking blocks 10 and the outer side of the locking slots 11 are all provided with arc-shaped features. The arc design reduces friction, ensuring that the locking blocks can smoothly disengage from the locking slots, thus improving smoothness and durability.
[0034] A rotating shaft 32 is installed at the top of the connecting rod 8. A limiting shaft 33 is provided on the outer wall of the rotating shaft 32. Multiple sets of limiting shafts 33 are provided, and all of them are rotatably connected to the connecting sleeve 9. The rotating shaft and the limiting shaft ensure stable rotation of the connecting rod, avoid deviation, and improve operating accuracy.
[0035] The top surface of the rotating sleeve 27 is provided with a pressing block 34, and the outer wall of the connecting sleeve 9 is provided with a mounting block 35. Multiple sets of pressing blocks 34 and mounting blocks 35 are provided, and reset springs 36 are connected to each other. The pressing blocks and reset springs ensure that the rotating sleeve is reset, avoid excessive compression, and enhance elasticity and stability.
[0036] The width of each of the multiple unlocking slots 29 is greater than that of the limiting block 26. This width design allows the limiting block to disengage smoothly, provides adjustment space, and ensures a smooth unlocking process.
[0037] In this embodiment, the electronic component housing is placed on the placement seat 7. The extension end of the cylinder 30 is operated to push the clamping block 31 to clamp the housing. Then, the component is placed inside the housing, and the top cover is placed on top of the housing. The motor 3 is started to drive the screw 4 to rotate and engage with the transmission block 5 through a thread. This causes the transmission block 5 to push the pressure plate 6 to press the top rod, so that the top rod is fastened to the housing. When fastened, the resistance received by the pressure plate 6 is greater than the preset force of the multiple sets of pressure springs 16. The multiple sets of locking blocks 10 interact with the locking slots 11. The arc design allows multiple sets of locking blocks 10 to disengage from the slots 11 and from the contact of the pressure block 17. The pressure block 17 pushes the slide rod 15 and the base plate 14 to stretch the pressure spring 16, thereby overcoming the thrust of the pressure spring 16 on the pressure block 17. At this time, the connecting sleeve 9 and the connecting rod 8 rotate freely, cutting off the power transmission between the motor 3 and the screw 4. Then the motor 3 is turned off, and the multiple sets of pressure springs 16 reset and push the pressure block 17 to push the multiple sets of locking blocks 10 back into the slots 11, restoring the engagement connection between the connecting rod 8 and the connecting sleeve 9.
[0038] More specifically, when the preset force needs to be adjusted, rotating the rotating sleeve 27 causes multiple sets of limiting blocks 26 to slide along the limiting groove 28, while simultaneously driving multiple sets of pressing blocks 34 to press against the reset spring 36. When the multiple sets of limiting blocks 26 move into the unlocking groove 29, they release the limiting sleeve 24, and the sliding limiting sleeve 24 releases its contact with the multiple sets of positioning blocks 21. Through the multiple sets of return springs 23, the positioning blocks 21 are pushed away from the positioning groove 22, releasing the positioning of the sliding sleeve 19. The sliding sleeve 19 then slides along the multiple sets of returning springs 24. The sliding groove 18 drives the pressure adjusting block 13 to stretch the pressure spring 16, increasing the preset force of multiple pressure springs 16. Decreasing the tension on the pressure spring 16 reduces the preset force on the pressure spring 16. After adjustment, the limiting sleeve 24 is pushed to abut against the top of multiple positioning blocks 21, so that the bottom of multiple positioning blocks 21 is engaged in the positioning groove 22, positioning the sliding sleeve 19. Then, the rotating sleeve 27 is rotated to move multiple limiting blocks 26 into the limiting groove 28, restricting the limiting sleeve 24.
[0039] In summary, during the use or operation of the overall equipment: The electronic component housing is placed on the placement seat 7. The extension end of the control cylinder 30 pushes the clamping block 31 to clamp the housing. Then, the component is placed inside the housing, and the top cover is placed on top of the housing. The motor 3 is started, driving the screw 4 to rotate and engage with the transmission block 5 via a threaded connection. This causes the transmission block 5 to push the pressure plate 6 to press the top rod, thus fastening the top rod to the housing. When fastened, the resistance received by the pressure plate 6 exceeds the preset force of the multiple sets of pressure springs 16. The multiple sets of clamping blocks 10, through their interaction with… The arc design of the slot 11 allows multiple sets of locking blocks 10 to disengage from the slot 11 and from the contact of the pressure block 17. The pressure block 17 pushes the slide rod 15 and the base plate 14 to stretch the pressure spring 16, thereby overcoming the thrust of the pressure spring 16 on the pressure block 17. At this time, the connecting sleeve 9 and the connecting rod 8 rotate freely, cutting off the power transmission between the motor 3 and the screw 4. Then the motor 3 is turned off, and the multiple sets of pressure springs 16 reset and push the pressure block 17 to push the multiple sets of locking blocks 10 back into the slot 11, restoring the engagement connection between the connecting rod 8 and the connecting sleeve 9.
[0040] When the preset force needs to be adjusted, rotating the rotating sleeve 27 causes multiple sets of limiting blocks 26 to slide along the limiting groove 28, simultaneously driving multiple sets of pressing blocks 34 to press the return spring 36. When the multiple sets of limiting blocks 26 move into the unlocking groove 29, they release the limiting sleeve 24, and the sliding limiting sleeve 24 releases its contact with the multiple sets of positioning blocks 21. Through the multiple sets of return springs 23, the positioning blocks 21 are pushed away from the positioning groove 22, releasing the positioning of the sliding sleeve 19. The sliding sleeve 19 then slides along the multiple sets of sliding grooves 1... 8. The sliding action of the pressure regulating block 13 stretches the pressure spring 16, increasing the preset force of the multiple pressure springs 16. Decreasing the tension on the pressure spring 16 reduces the preset force of the pressure spring 16. After adjustment, the limiting sleeve 24 is pushed to abut against the top of the multiple positioning blocks 21, so that the bottom of the multiple positioning blocks 21 is engaged in the positioning groove 22, positioning the sliding sleeve 19. Then, the rotating sleeve 27 is rotated to move the multiple limiting blocks 26 into the limiting groove 28, restricting the limiting sleeve 24.
[0041] Of all the solutions mentioned above, those involving the connection between two components can be selected according to the actual situation, such as welding, bolt and nut connection, bolt or screw connection, or other known connection methods, which will not be elaborated here. For all the fixed connections mentioned above, welding is preferred. Although embodiments of this utility model have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of this utility model. The scope of this utility model is defined by the appended claims and their equivalents.
Claims
1. An electronic component packaging apparatus comprising a base (1), characterized by: The base (1) is provided with a pressing mechanism, the pressing mechanism includes support frame (2), motor (3), screw rod (4), transmission block (5), pressing plate (6) and placing seat (7), support frame (2) is fixed on the base (1), motor (3) is fixed on the top surface of support frame (2), screw rod (4) is rotated on support frame (2) and is connected with the output end of motor (3), transmission block (5) is threadedly connected on the outer wall of screw rod (4), pressing plate (6) is fixed on the bottom surface of transmission block (5), placing seat (7) is fixed on the base (1), the motor (3) is provided with pressure control mechanism between screw rod (4), the pressure control mechanism includes connecting rod (8), connecting sleeve (9), clamping block (10), clamping groove (11), sliding hole (12), pressure regulating block (13), bottom plate (14), sliding rod (15), pressure spring (16) and pressure block (17), connecting rod (8) is fixed on the output end of motor (3), connecting sleeve (9) is fixed on the top end of screw rod (4), clamping block (10) is provided with multiple groups of sliding in connecting sleeve (9), clamping groove (11) is provided with multiple groups of distribution on the outer wall of connecting rod (8), sliding hole (12) is provided with multiple groups of distribution in connecting sleeve (9), pressure regulating block (13) is arranged in multiple sliding holes (12), bottom plate (14) is arranged at the bottom end of multiple sliding holes (12), sliding rod (15) is fixed on the top surface of multiple bottom plates (14) and is slidably connected with pressure regulating block (13) respectively, pressure spring (16) is installed on the top surface of multiple bottom plates (14) and abuts with multiple pressure regulating blocks (13) respectively, pressure block (17) is installed on the top end of multiple sliding rods (15) and abuts with multiple clamping blocks (10) respectively.
2. An electronic component packaging apparatus according to claim 1, characterized by: The outer wall of the connecting sleeve (9) is provided with a pressure regulating mechanism, the pressure regulating mechanism includes a sliding groove (18), a sliding sleeve (19), an installation sleeve (20), a positioning block (21), a positioning groove (22), a return spring (23) and a locking mechanism, which is distributed on the outer side of the multiple sliding holes (12), the sliding sleeve (19) is slidably connected with the multiple pressure regulating blocks (13) in the sliding groove (18), the installation sleeve (20) is fixed on the top surface of the sliding sleeve (19), the positioning block (21) is provided with multiple groups of installation on the outer wall of the installation sleeve (20), the positioning groove (22) is provided with multiple groups of distribution on the outer wall of the connecting sleeve (9), the return spring (23) is provided with multiple groups of installation on the inner side of the multiple positioning blocks (21) and connected with the outer wall of the connecting sleeve (9).
3. An electronic component packaging apparatus according to claim 2, wherein: The locking mechanism includes a limiting sleeve (24), an installation rod (25), a limiting block (26), a rotating sleeve (27), a limiting groove (28) and an unlocking groove (29), the limiting sleeve (24) is slidably connected with the outer wall of the connecting sleeve (9), the installation rod (25) is provided with multiple groups of distribution on the top surface of the limiting sleeve (24), the limiting block (26) is provided with multiple groups of installation on the inner side of the multiple installation rods (25), the rotating sleeve (27) is rotatably installed on the outer wall of the connecting sleeve (9), the limiting groove (28) is provided on the outer wall of the rotating sleeve (27), and the unlocking groove (29) is provided with multiple groups of distribution on the outer side of the rotating sleeve (27).
4. An electronic component packaging apparatus according to claim 3, wherein: The base (1) is provided with a cylinder (30), and the telescopic end of the cylinder (30) is fixedly provided with a clamping block (31).
5. An electronic component packaging apparatus according to claim 4, characterized by: The bottom end of each group of clamping blocks (10) and the outer side of each clamping groove (11) are provided with a circular arc.
6. An electronic component packaging apparatus according to claim 5, wherein: The top end of the connecting rod (8) is provided with a rotating shaft (32), the outer wall of the rotating shaft (32) is provided with a limiting shaft (33), and the limiting shaft (33) is provided with a plurality of limiting shafts (33) and is rotationally connected with the connecting sleeve (9).
7. An electronic component packaging apparatus according to claim 6, wherein: The top surface of the rotating sleeve (27) is provided with an extrusion block (34), the outer wall of the connecting sleeve (9) is provided with a mounting block (35), and the extrusion block (34) and the mounting block (35) are provided with a plurality of extrusion blocks (34) and mounting blocks (35) and are respectively connected with the reset spring (36).
8. An electronic component packaging apparatus according to claim 7, wherein: The width of each group of unlocking grooves (29) is greater than that of the limiting block (26).