Side slotting device for inner conductor of dual radio frequency coaxial connector and method of use
Through the coordinated action of the pressurizing component, the driving clamping component and the auxiliary support component, the precise positioning and automated slotting of the inner conductor of the dual RF coaxial connector are achieved, which solves the slotting quality problem caused by inaccurate positioning of the inner conductor and improves production efficiency and stability.
Patent Information
- Application Number
- CN202411212084.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-30
- Publication Date
- 2025-10-17
- Estimated Expiration
- 2044-08-30
AI Technical Summary
The existing fixing structure simply fixes the inner conductor of the dual RF coaxial connector by clamping, which makes it difficult to align the drilling position with the drill bit, affecting the slotting quality and signal transmission performance.
The pressurizing component, the driven clamping component and the auxiliary support component are used to precisely position and clamp the inner conductor, and the synergistic effect of the conveyor belt and the servo motor is combined to achieve stable positioning of the inner conductor and an automated grooving process.
The slotting accuracy and quality are improved, the labor intensity is reduced, it is suitable for large-scale production, and the stability and consistency of the inner conductor during the slotting process are ensured.
Smart Images

Figure CN119050780B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of slotting devices, specifically a side slotting device for inner conductors of double radio frequency coaxial connectors and its method of use. BACKGROUND
[0002] The side slotting device for inner conductors of double radio frequency coaxial connectors is a mechanical device specifically designed to machine lateral slots on the inner conductors of radio frequency coaxial connectors. This device ensures the electrical performance of the inner conductors and the reliability of mechanical connections by precisely controlling the depth, position, and shape of the cuts or slots, which is crucial for improving the signal transmission quality of the connectors and meeting specific application requirements.
[0003] The part of the inner conductor that needs to be slotted is usually the pin portion of the inner conductor, specifically to create a limiting slot. This limiting slot serves to prevent the inner conductor from rotating in the connector during assembly, ensuring the stability of the connection and the reliability of signal transmission.
[0004] The inner conductor is usually small in size, so precise positioning during processing is a challenge. If the positioning is not accurate, the slotting position may deviate from the expected position, affecting the assembly quality of the connector and the signal transmission performance. The existing fixing structure simply fixes the double radio frequency coaxial connector inner conductor by clamping, but after fixing, the position that needs to be drilled cannot be guaranteed to be aligned with the drill bit, affecting the drilling quality of the double radio frequency coaxial connector inner conductor. Therefore, a side slotting device for inner conductors of double radio frequency coaxial connectors and its method of use are proposed to solve the above problems. SUMMARY
[0005] The purpose of the present application is to provide a side slotting device for inner conductors of double radio frequency coaxial connectors and its method of use to solve the problem that the existing fixing structure simply fixes the double radio frequency coaxial connector inner conductor by clamping, and after fixing, the position that needs to be drilled cannot be guaranteed to be aligned with the drill bit.
[0006] To achieve the above-mentioned purpose, the present application provides the following technical solutions:
[0007] The utility model provides a kind of side slot device of coaxial connector inner conductor of double radio frequency and its using method, including material receiving box and slot device assembly, the outside of the material receiving box is attached with the inside of slot device assembly, the inside of the upper end of slot device assembly is fixedly connected with pressurizing assembly, the inside of slot device assembly is rotatably connected with transport assembly, the outside of transport assembly is fixedly connected with drive clamping assembly, the inside of drive clamping assembly is attached with the outside of inner conductor body, the side of drive clamping assembly is fixedly connected with auxiliary support assembly, the pressurizing assembly includes first electric telescopic rod, the bottom of first electric telescopic rod is fixedly connected with empty box, the outside of empty box is fixedly connected with square rail plate, the inside of empty box is fixedly connected with first servo motor, the tail end of first servo motor spindle is fixedly connected with first rotating roller, first rotating roller outside is equipped with first conveyor belt, the transport assembly includes rotating roller column rod, the outside of rotating roller column rod is fixedly connected with second rotating roller, second rotating roller outside is equipped with second conveyor belt, the inside of second conveyor belt is attached with the outside of tensioning rotating roller, the inside of the front end of second conveyor belt is attached with the outside of third rotating roller, the auxiliary support assembly includes stamping cover plate, notch slot is formed in the inside of stamping cover plate, notch slot inside is rotatably connected with embedded shaft column, the side of embedded shaft column is fixedly connected with pressure-bearing column roller, the side of stamping cover plate is fixedly connected with spring telescopic rod, the drive clamping assembly includes placing table, the inside of placing table is formed with inner square rail groove, the side of the inner square rail groove formed in placing table is fixedly connected with second electric telescopic rod, the side of second electric telescopic rod is fixedly connected with zigzag plate, the outside of zigzag plate is fixedly connected with rail slide, the inside of zigzag plate is fixedly connected with third servo motor, the tail end of third servo motor spindle is fixedly connected with clamping roller rod, the upper end of placing table is fixedly connected with cylindrical roller, the outside of cylindrical roller is rotatably connected with cylinder column, the side of placing table is fixedly connected with the outside of second conveyor belt, the side of spring telescopic rod is fixedly connected with the side of placing table.
[0008] As further optimization of the present application, wherein: the slot device assembly includes a rack, the rack is fixedly connected with a machine box on one side, the rack is fixedly connected with a shelf on the top end, the slot device is installed on one side of the shelf, the inside of the front end of the rack is formed with a material box groove, the upper part of the front end of the rack is fixedly connected with a front rack body, the upper part of the rear end of the rack is fixedly connected with a convex frame, the right side of the rack is fixedly connected with a second servo motor, the inside of the convex frame is formed with a vertical sliding groove.
[0009] As further optimization of the present application, wherein: the slot device and the shelf are fixed by an electric telescopic rod, the slot device and the inner conductor body at the upper end are in the same horizontal plane, the material box groove penetrates the front of the rack, the outside of the material receiving box is attached with the inside of the material box groove formed in the rack.
[0010] As a further optimization of the present application, wherein: the vertical sliding groove is rectangular in shape, the inner hollow box is connected to the vertical sliding groove of the convex frame through the square rail plate, the inside of the convex frame is hollow, and the main shaft of the second servo motor is fixedly connected with the rotating roller column rod.
[0011] As a further optimization of the present application, wherein: the first electric telescopic rod is fixedly connected to one side of the upper end of the convex frame, the inside of the inner hollow box is hollow, and the number of the first rotating rollers is two.
[0012] As a further optimization of the present application, wherein: the rotating roller column rod is rotatably connected to the inside of the convex frame, the shape of the rotating roller column rod is a cylinder, the third rotating roller and the tensioning rotating roller are both fixedly connected with the rotating roller column rod, the third rotating roller is rotatably connected to the front frame body through the rotating roller column rod, the tensioning rotating roller is rotatably connected to the convex frame through the rotating roller column rod, and the second conveying belt is sleeved on the outside of the third rotating roller and the tensioning rotating roller.
[0013] As a further optimization of the present application, wherein: the number of each group of spring telescopic rods is four, one end of the inner conductor body is inside the notch groove, the top end of the inner conductor body is attached to the bottom end of the first conveying belt, the top end of the stamping cover plate is attached to the bottom end of the first conveying belt, the notch groove penetrates one end of the stamping cover plate, and the notch groove is rectangular in shape.
[0014] As a further optimization of the present application, wherein: the shape of the pressure-bearing column roller is a cylinder, the shape of the embedded shaft column is a cylinder, the number of the embedded shaft column and the pressure-bearing column roller is both two, the outside of the pressure-bearing column roller is attached to the outside of the inner conductor body, and the inner conductor body is between the two pressure-bearing column rollers.
[0015] As a further optimization of the present application, wherein: the number of the cylinder columns is two, the shape of the cylindrical roller is a cylinder, the inner conductor body is between the two cylinder columns, the outside of the inner conductor body is attached to the outside of the two cylinder columns, the outside of the clamping roller rod is attached to the outside of the inner conductor body, the folding plate is slidably connected to the inside of the inner square rail groove of the placement table through the rail slide, and the inner square rail groove penetrates one end of the placement table.
[0016] A method for using a side slot device of an inner conductor of a dual-radio-frequency coaxial connector,
[0017] S1: accurate positioning of the inner conductor body is realized, to prevent the slot position from deviating, the operation at the front end of the second conveying belt is performed, the position of the inner conductor body where the opening is needed is upwards, the inner conductor body is placed between the two cylinder columns and the clamping roller in the same group, after the placement is completed, the second electric telescopic rod is started to drive the folding plate to move, the folding plate is slidably connected inside the inner rail slot opened in the placement table through the rail slide, the movement of the folding plate drives the third servo motor fixedly connected inside to move, the third servo motor drives the clamping roller to move, when the outer side of the clamping roller is attached to the outer side of the lower part of the inner conductor body, the inner conductor body is clamped between the two cylinder columns and the clamping roller at this time, at the same time, the outer side of the other end of the inner conductor body is attached to the outer side of the two pressure column rollers, the outer sides of the cylinder columns, the clamping roller and the pressure column roller are all provided with a thin rubber layer, if the angle of the inner conductor body is relatively inclined, the third servo motor is started to drive the clamping roller to rotate, under the action of friction, the rotation of the clamping roller drives the rotation of the inner conductor body, the inner conductor body drives the rotation of the two cylinder columns and the two pressure column rollers at the same time, after the angle adjustment of the inner conductor body is completed, the third servo motor is automatically locked to the main shaft, at this time, the inner conductor body will not rotate, the first electric telescopic rod is started to drive the inner hollow box to move downwards, the inner hollow box drives the square rail plate fixedly connected to the outer side to move, the square rail plate is slidably connected inside the vertical sliding slot opened in the convex frame, the movement of the inner hollow box drives the first conveying belt installed inside to move, when the bottom end of the first conveying belt is attached to the stamping cover plate, at this time, the stamping cover plate will drive the spring telescopic rod to move a small distance, after the bottom end of the first conveying belt is attached to the top end of the inner conductor body, the upper end of the inner conductor body will move downwards until the bottom end of the upper end of the inner conductor body is attached to the top end of the placement table;
[0018] S2: a large number of inner conductor bodies are continuously slotted to improve production capacity, the second rotating roller is started to drive the second rotating roller to rotate, the rotating roller is rotatably connected to the inner side of the convex frame, the rotation of the rotating roller drives the second rotating roller fixedly connected to the outer side to rotate, under the cooperation of the second conveying belt and the third rotating roller, the second rotating roller drives the second conveying belt sleeved on the outer side to rotate, at the same time, the third rotating roller rotates, the friction between the tensioning roller and the second conveying belt is sufficient to rotate, through the rotation of the second conveying belt, the inner conductor body can be moved to one end of the slotting device;
[0019] S3: the slotted inner conductor body is automatically discharged to reduce labor intensity, when the slotted inner conductor body moves under the action of the second conveying belt, at the same time, the first servo motor is started, the first servo motor drives the first rotating roller to rotate, the first rotating roller drives the first conveying belt sleeved on the outer side to rotate, which can also assist the movement of the inner conductor body and the auxiliary supporting assembly, when the slotted inner conductor body is above the collecting box, the second electric telescopic rod is started to drive the folding plate to move, the folding plate drives the clamping roller to move through the device, when the clamping roller moves away from the inner conductor body, the inner conductor body falls into the interior of the collecting box.
[0020] Compared with the prior art, the present application has the following advantages:
[0021] 1、The present application, by setting the pressurizing assembly, driving clamping assembly and auxiliary supporting assembly, the device realizes the accurate positioning and clamping of the inner conductor body, which ensures that the position of the inner conductor body does not shift during the slotting process, thereby improving the accuracy and quality of slotting, and the rubber layer on the outer side of the cylinder column, clamping roller and pressure column roller increases the friction between the inner conductor body, preventing the inner conductor body from rotating, further improving the stability of positioning;
[0022] 2、The present application, by setting the rotating roller column, second rotating roller, second conveyor belt and tensioning roller, the device realizes the continuous slotting of a large number of inner conductor bodies, which not only improves the production efficiency, but also ensures the stability and consistency during the processing process, suitable for large-scale production requirements;
[0023] 3、The present application, by setting the pressurizing assembly, second electric telescopic rod, folding plate and clamping roller, the device realizes the automatic unloading of the inner conductor body after slotting, which reduces manual operation and reduces labor intensity, and through the cooperation of the second electric telescopic rod, folding plate, clamping roller and other components, the inner conductor body is collected into the material box, simplifying the production process and improving the production efficiency. BRIEF DESCRIPTION OF DRAWINGS
[0024] Figure 1 is a schematic diagram of the overall structure of the present application;
[0025] Figure 2 is a schematic diagram of the rack structure of the present application;
[0026] Figure 3 is a schematic diagram of the material box slot structure of the present application;
[0027] Figure 4 is a schematic diagram of the vertical chute structure of the present application;
[0028] Figure 5 is a schematic diagram of the pressurizing assembly structure of the present application;
[0029] Figure 6 is a schematic diagram of the transportation assembly structure of the present application;
[0030] Figure 7 is a schematic diagram of the auxiliary supporting assembly structure of the present application;
[0031] Figure 8 is a schematic diagram of the inner conductor body structure of the present application;
[0032] Figure 9Structure diagram of driving clamping assembly of the application
[0033] Figure 10 Structure diagram of A of the application Figure 9
[0034] Figure: 1, material receiving box;
[0035] 2, slotting device assembly; 21, rack; 22, box body; 23, rack plate; 24, slotting device; 25, material box slot; 26, front rack body; 27, convex frame; 28, second servo motor; 29, vertical sliding groove;
[0036] 3, pressurizing assembly; 31, first electric telescopic rod; 32, hollow box; 33, square rail plate; 34, first servo motor; 35, first rotating roller; 36, first conveying belt;
[0037] 4, conveying assembly; 41, rotating roller column rod; 42, second rotating roller; 43, second conveying belt; 44, tensioning rotating roller; 45, third rotating roller;
[0038] 5, auxiliary support assembly; 51, stamping cover plate; 52, notch slot; 53, embedded shaft column; 54, pressure bearing column roller; 55, spring telescopic rod;
[0039] 6, driving clamping assembly; 61, placement table; 62, inner square rail slot; 63, second electric telescopic rod; 64, folding plate; 65, rail sliding strip; 66, third servo motor; 67, clamping roller rod; 68, cylindrical roller; 69, cylinder column;
[0040] 7, inner conductor body. DETAILED DESCRIPTION
[0041] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.
[0042] It should be noted that the terms used herein are only intended to describe specific embodiments, and are not intended to limit the exemplary embodiments according to the present application. As used herein, the singular form is intended to include the plural form unless the context clearly indicates otherwise, and furthermore, it should be understood that when the terms "comprise" and / or "include" are used in the specification, there is a feature, step, operation, device, component and / or combination thereof.
[0043] Please refer to Figures 1-10 , the present application provides a technical solution:
[0044] A side slotting device for the inner conductor of a dual-RF coaxial connector and a method for using the same include a material receiving box 1 and a slotting device assembly 2. The outer side of the material receiving box 1 is fitted with the inner side of the slotting device assembly 2. The inner side of the upper end of the slotting device assembly 2 is fixedly connected to a pressurizing assembly 3. The inner side of the slotting device assembly 2 is rotatably connected to a transport assembly 4. The outer side of the transport assembly 4 is fixedly connected to a driving clamping assembly 6. The inner side of the driving clamping assembly 6 is fitted with the outer side of the inner conductor body 7. One side of the driving clamping assembly 6 is fixedly connected to an auxiliary support assembly 5. The pressurizing assembly 3 includes a first electric The telescopic rod 31, the bottom end of the first electric telescopic rod 31 is fixedly connected to the inner empty box 32, the outer side of the inner empty box 32 is fixedly connected to the square rail plate 33, the inner side of the inner empty box 32 is fixedly connected to the first servo motor 34, the end of the main shaft of the first servo motor 34 is fixedly connected to the first roller 35, the outer side of the first roller 35 is provided with a first conveyor belt 36, the transport component 4 includes a roller column 41, the outer side of the roller column 41 is fixedly connected to the second roller 42, the outer side of the second roller 42 is provided with a second conveyor belt 43, the inner side of the second conveyor belt 43 is connected to the tensioning roller The outer side of the roller 44 is fitted, and the inner side of the front end of the second conveyor belt 43 is fitted with the outer side of the third roller 45. The auxiliary support assembly 5 includes a stamped cover plate 51, and a notch groove 52 is opened on the inner side of the stamped cover plate 51. The inner side of the notch groove 52 is rotatably connected to an embedded shaft column 53, and one side of the embedded shaft column 53 is fixedly connected to a pressure column roller 54. A spring telescopic rod 55 is fixedly connected to one side of the stamped cover plate 51. The driving clamping assembly 6 includes a placing table 61, and an inner square rail groove 62 is opened on the inner side of the placing table 61. One side of the inner square rail groove 62 opened on the placing table 61 is fixedly connected There is a second electric telescopic rod 63, one side of the second electric telescopic rod 63 is fixedly connected to a folding plate 64, the outer side of the folding plate 64 is fixedly connected to a track slide 65, the inner side of the folding plate 64 is fixedly connected to a third servo motor 66, the end of the main shaft of the third servo motor 66 is fixedly connected to a clamping roller rod 67, the upper end of the placement table 61 is fixedly connected to a cylindrical roller 68, the outer side of the cylindrical roller 68 is rotatably connected to a column 69, one side of the placement table 61 is fixedly connected to the outer side of the second conveyor belt 43, and one side of the spring telescopic rod 55 is fixedly connected to one side of the placement table 61.
[0045] As a further implementation of the scheme, the slotting device assembly 2 comprises a rack 21, one side of the rack 21 is fixedly connected with a machine box body 22, the top end of the machine box body 22 is fixedly connected with a rack plate 23, one side of the rack plate 23 is installed with a slotting device 24, the inner side of the front end of the rack 21 is provided with a material box groove 25, the upper part of the front end of the rack 21 is fixedly connected with a front rack body 26, the upper part of the rear end of the rack 21 is fixedly connected with a convex frame 27, the right side of the rack 21 is fixedly connected with a second servo motor 28, the inner side of the convex frame 27 is provided with a vertical sliding groove 29, the slotting device 24 is fixed between the slotting device 24 and the rack plate 23 through an electric telescopic rod, the slotting device 24 and the inner conductor body 7 at the upper end are in the same horizontal plane, the material box groove 25 penetrates the front part of the rack 21, the outer side of the material box 1 is attached to the inner side of the material box groove 25 provided in the rack 21, which plays a role in limiting the movement of the pressurizing assembly 3, and the slotting device 24 can continuously slot the plurality of inner conductor bodies 7;
[0046] As a further implementation of the scheme, the vertical sliding groove 29 is provided in the shape of a rectangular body, the hollow box 32 is slidably connected with the vertical sliding groove 29 provided in the convex frame 27 through a square rail plate 33, the inner side of the convex frame 27 is hollow, the main shaft of the second servo motor 28 is fixedly connected with a rotating roller column 41, the top end of the first electric telescopic rod 31 is fixedly connected with one side of the upper end of the convex frame 27, the inner side of the hollow box 32 is hollow, the number of the first rotating rollers 35 is two, the first rotating rollers 35 are rotatably connected to the inner side of the hollow box 32, which plays a role in limiting the inner conductor body 7, preventing the inner conductor body 7 from moving inside the auxiliary supporting assembly 5 and the driving clamping assembly 6, so as to prevent the inner conductor body 7 from moving when slotting the inner conductor body 7;
[0047] As a further implementation of the scheme, the rotating roller column 41 is rotatably connected to the inner side of the convex frame 27, the shape of the rotating roller column 41 is a cylindrical body, the third rotating roller 45 and the tension rotating roller 44 are both fixed with the rotating roller column 41, the third rotating roller 45 is rotatably connected with the front rack body 26 through the rotating roller column 41, the tension rotating roller 44 is rotatably connected with the convex frame 27 through the rotating roller column 41, the second conveying belt 43 is sleeved outside the third rotating roller 45 and the tension rotating roller 44, which can drive the inner conductor body 7 to move to one end of the slotting device 24, realizing the effect of continuously slotting the inner conductor body 7;
[0048] As a further implementation of the scheme, the number of the spring telescopic rods 55 in each group is four, one end of the inner conductor body 7 is inside the notch groove 52, the top end of the upper end inner conductor body 7 is attached to the bottom end of the first conveying belt 36, the top end of the upper end stamping cover plate 51 is attached to the bottom end of the first conveying belt 36, the notch groove 52 penetrates one end of the stamping cover plate 51, the notch groove 52 is provided in the shape of a rectangular body, realizing the automatic unloading of the inner conductor body 7 after slotting. This automatic unloading mechanism reduces manual operation and reduces labor intensity;
[0049] As a further implementation of the present scheme, the shape of the pressure column roller 54 is a cylinder, the shape of the embedded shaft column 53 is a cylinder, the number of embedded shaft columns 53 and pressure column rollers 54 is two, the outer side of the pressure column roller 54 is attached to the outer side of the inner conductor body 7, the inner conductor body 7 is between the two pressure column rollers 54, which plays a supporting role for the inner conductor body 7, preventing damage to the inner conductor body 7 due to the pressure of the slotting device 24 when slotting the inner conductor body 7;
[0050] As a further implementation of the present scheme, the number of cylinder columns 69 is two, the shape of the cylindrical roller 68 is a cylinder, the inner conductor body 7 is between the two cylinder columns 69, the outer side of the inner conductor body 7 is attached to the outer side of the two cylinder columns 69, the outer side of the clamping roller 67 is attached to the outer side of the inner conductor body 7, the folding plate 64 is connected to the inner side of the inner rail groove 62 opened in the placement table 61 through the track sliding strip 65, the inner rail groove 62 runs through one end of the placement table 61, the rubber layer on the outer side of the cylinder column 69, the clamping roller 67 and the pressure column roller 54 increases the friction between them and the inner conductor body 7, preventing large deformation, further improving the stability of positioning, and facilitating accurate adjustment of the angle of the inner conductor body 7.
[0051] Workflow: To realize the accurate positioning of the inner conductor body 7, prevent the slotting position from deviating, operate at the front end of the second conveying belt 43, place the position of the inner conductor body 7 that needs to be opened upwards, place the inner conductor body 7 between the two cylinder columns 69 and the clamping roller 67 in the same group, and then start the second electric telescopic rod 63 to drive the folding plate 64 to move. The folding plate 64 is slidably connected inside the inner rail groove 62 of the placement table 61 through the track slide 65. The inner rail groove 62 and the track slide 65 are arranged to stabilize the movement of the folding plate 64. The movement of the folding plate 64 drives the third servo motor 66 fixedly connected to the inner side to move. The third servo motor 66 drives the clamping roller 67 to move. When the outer side of the clamping roller 67 is in contact with the outer side of the lower part of the inner conductor body 7, the inner conductor body 7 is clamped between the two cylinder columns 69 and the clamping roller 67 at this time. The outer side of the other end of the inner conductor body 7 is in contact with the outer side of the two pressure column rollers 54. The outer sides of the cylinder columns 69, the clamping roller 67, and the pressure column rollers 54 are all provided with a thin layer of rubber, which can improve the friction between the inner conductor body 7 and the outer sides. At the same time, it will not deform greatly. If the angle of the inner conductor body 7 is relatively steep, start the third servo motor 66 to drive the clamping roller 67 to rotate. Under the action of friction, the rotation of the clamping roller 67 drives the inner conductor body 7 to rotate. The inner conductor body 7 drives the two cylinder columns 69 and the two pressure column rollers 54 to rotate simultaneously. After adjusting the angle of the inner conductor body 7, the third servo motor 66 automatically locks the main shaft. At this time, the inner conductor body 7 will not rotate. Start the first electric telescopic rod 31 to drive the inner hollow box 32 to move downwards. The inner hollow box 32 drives the square rail plate 33 fixedly connected to the outer side to move. The square rail plate 33 is slidably connected inside the vertical sliding groove 29 of the convex frame 27. It plays a role in limiting the movement of the inner hollow box 32. The movement of the inner hollow box 32 drives the first conveying belt 36 installed on the inner side to move. When the bottom end of the first conveying belt 36 is in contact with the stamping cover plate 51, the stamping cover plate 51 will drive the spring telescopic rod 55 to move a small distance. When the bottom end of the first conveying belt 36 is in contact with the top end of the inner conductor body 7, the upper end of the inner conductor body 7 will move downwards until the bottom end of the upper end of the inner conductor body 7 is in contact with the top end of the placement table 61. Under the action of the pressing assembly 3, it plays a role in limiting the inner conductor body 7. Prevent the inner conductor body 7 from moving inside the auxiliary support assembly 5 and the driving clamping assembly 6, so as to prevent the inner conductor body 7 from moving when slotting the inner conductor body 7. Under the action of the auxiliary support assembly 5 and the driving clamping assembly 6, it can prevent the inner conductor body 7 from rotating, and at the same time can make the position of the inner conductor body 7 that needs to be slotted accurately aligned with the drill bit of the slotting device 24, ensuring the stability and slotting quality of the slotting device 24 when slotting the inner conductor body 7;
[0052] When a large number of inner conductor bodies 7 are continuously slotted to improve production, the second rotating roller 42 is driven to rotate by the rotating roller column rod 41, the rotating roller column rod 41 is rotatably connected to the inner side of the convex frame 27, and plays a role of limiting the rotation of the rotating roller column rod 41. The second rotating roller 42 is driven to rotate by the rotating roller column rod 41 rotatably connected to the outer side, and under the cooperation of the second conveying belt 43 and the third rotating roller 45, the second conveying belt 43 rotatably connected to the outer side is driven to rotate by the second rotating roller 42, and the third rotating roller 45 is rotated. The tensioning roller 44 plays a role of supporting the second conveying belt 43, and the second conveying belt 43 is self-rotated after the friction between the tensioning roller 44 and the second conveying belt 43 is sufficient. Under the tensioning action of the tensioning roller 44, the second conveying belt 43 can maintain the effect of being tensioned, ensuring the stability of the auxiliary supporting assembly 5 and the driving clamping assembly 6 during transportation, and ensuring the stability of the inner conductor body 7 during slotting. Through the rotation of the second conveying belt 43, the inner conductor body 7 can be moved to one end of the slotting device 24, and the effect of continuously slotting the inner conductor body 7 is realized through the fixed electric telescopic rod on one side of the slotting device 24.
[0053] When the inner conductor body 7 after slotting is automatically discharged to reduce labor intensity, the inner conductor body 7 after slotting is moved under the action of the second conveying belt 43, and the first servo motor 34 is started. The first servo motor 34 drives the first rotating roller 35 to rotate, and the first rotating roller 35 drives the first conveying belt 36 rotatably connected to the outer side to rotate. The first conveying belt 36 plays a role of pressing and fixing the inner conductor body 7, and can also assist the movement of the inner conductor body 7 and the auxiliary supporting assembly 5, preventing friction between the inner conductor body 7, the auxiliary supporting assembly 5 and the first conveying belt 36 when the inner conductor body 7 and the auxiliary supporting assembly 5 move through the second conveying belt 43. When the inner conductor body 7 after slotting is above the collecting box 1, the second electric telescopic rod 63 is started to drive the folding plate 64 to move, and the folding plate 64 drives the clamping roller 67 to move through the device. When the clamping roller 67 moves away from the inner conductor body 7, the inner conductor body 7 falls into the inside of the collecting box 1, realizing the effect of collection and reducing the labor intensity during production of the inner conductor body 7.
[0054] Although embodiments of the present application have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made therein without departing from the principles and spirit of the application, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A side slotting device for an inner conductor of a dual RF coaxial connector, comprising a material receiving box (1) and a slotting device assembly (2), characterized in that: The outer side of the material receiving box (1) is fitted with the inner side of the slotting device assembly (2); the inner side of the upper end of the slotting device assembly (2) is fixedly connected to the pressurizing assembly (3); the inner side of the slotting device assembly (2) is rotatably connected to the transport assembly (4); the outer side of the transport assembly (4) is fixedly connected to the driving clamping assembly (6); the inner side of the driving clamping assembly (6) is fitted with the outer side of the inner conductor body (7); and one side of the driving clamping assembly (6) is fixedly connected to the auxiliary support assembly (5); The pressurizing component (3) includes a first electric telescopic rod (31), the bottom end of the first electric telescopic rod (31) is fixedly connected to an inner hollow box (32), the outer side of the inner hollow box (32) is fixedly connected to a square rail plate (33), the inner side of the inner hollow box (32) is fixedly connected to a first servo motor (34), the end of the main shaft of the first servo motor (34) is fixedly connected to a first roller (35), the outer side of the first roller (35) is provided with a first conveyor belt (36), the transport component (4) includes a roller column (41), the outer side of the roller column (41) is fixedly connected to a second roller (42), the outer side of the second roller (42) is provided with a second conveyor belt (43), the inner side of the second conveyor belt (43) is in contact with the outer side of the tensioning roller (44), and the inner side of the front end of the second conveyor belt (43) is in contact with the outer side of the third roller (45), the auxiliary support component (5) includes a stamping cover plate (51), the inner side of the stamping cover plate (51) is provided with a gap. The notch (52) is rotatably connected to an embedded shaft column (53) on the inner side of the notch (52), and a pressure column roller (54) is fixedly connected to one side of the embedded shaft column (53). A spring telescopic rod (55) is fixedly connected to one side of the stamping cover (51). The driving clamping assembly (6) includes a placement table (61), an inner square rail groove (62) is opened on the inner side of the placement table (61), and a second electric telescopic rod is fixedly connected to one side of the inner square rail groove (62) opened on the placement table (61). Rod (63), one side of the second electric telescopic rod (63) is fixedly connected to a folding plate (64), the outer side of the folding plate (64) is fixedly connected to a track slide (65), the inner side of the folding plate (64) is fixedly connected to a third servo motor (66), the end of the main shaft of the third servo motor (66) is fixedly connected to a clamping roller rod (67), the upper end of the placement table (61) is fixedly connected to a cylindrical roller (68), and the outer side of the cylindrical roller (68) is rotatably connected to a cylinder (69); One side of the placement platform (61) is fixedly connected to the outside of the second conveyor belt (43), and one side of the spring telescopic rod (55) is fixedly connected to one side of the placement platform (61).
2. The side slotting device for the inner conductor of a dual RF coaxial connector according to claim 1, characterized in that: The slotting device assembly (2) comprises a frame (21), one side of the frame (21) is fixedly connected to a housing (22), the top of the housing (22) is fixedly connected to a frame plate (23), one side of the frame plate (23) is mounted with a slotting device (24), the inner side of the front end of the frame (21) is provided with a material box slot (25), the upper part of the front end of the frame (21) is fixedly connected to a front frame (26), the upper part of the rear end of the frame (21) is fixedly connected to a convex frame (27), the right side of the frame (21) is fixedly connected to a second servo motor (28), and the inner side of the convex frame (27) is provided with a vertical slide groove (29).
3. The side slotting device for the inner conductor of a dual RF coaxial connector according to claim 2, characterized in that: The slotting device (24) is fixed to the frame plate (23) via an electric telescopic rod. The slotting device (24) and the inner conductor body (7) at the upper end are in the same horizontal plane. The material box slot (25) passes through the front of the frame (21). The outer side of the material receiving box (1) is in contact with the inner side of the material box slot (25) opened on the frame (21).
4. The side slotting device for the inner conductor of a dual RF coaxial connector according to claim 3, characterized in that: The vertical slide groove (29) is formed in a rectangular shape. The inner hollow box (32) is slidably connected to the vertical slide groove (29) formed in the convex frame (27) via a square rail plate (33). The inner side of the convex frame (27) is hollow. The main shaft of the second servo motor (28) is fixedly connected to the roller column (41).
5. The side slotting device for the inner conductor of a dual RF coaxial connector according to claim 4, characterized in that: The top end of the first electric telescopic rod (31) is fixedly connected to one side of the upper end of the convex frame (27); the inner side of the inner hollow box (32) is hollow; there are two first rotating rollers (35); and the first rotating rollers (35) are rotatably connected to the inner side of the inner hollow box (32).
6. The side slotting device for the inner conductor of a dual RF coaxial connector according to claim 5, characterized in that: The roller column (41) is rotatably connected to the inner side of the convex frame (27). The roller column (41) is in the shape of a cylinder. The roller column (41) is fixed inside the third roller (45) and the tensioning roller (44). The third roller (45) is rotatably connected to the front frame (26) through the roller column (41). The tensioning roller (44) is rotatably connected to the convex frame (27) through the roller column (41). The second conveyor belt (43) is sleeved on the outer sides of the third roller (45) and the tensioning roller (44).
7. The side slotting device for the inner conductor of a dual RF coaxial connector according to claim 6, characterized in that: The number of each group of the spring telescopic rods (55) is four, one end of the inner conductor body (7) is located inside the notch groove (52), the top end of the inner conductor body (7) is in contact with the bottom end of the first conveyor belt (36), the top end of the stamping cover plate (51) is in contact with the bottom end of the first conveyor belt (36), the notch groove (52) passes through one end of the stamping cover plate (51), and the opening shape of the notch groove (52) is a rectangular body.
8. The side slotting device for the inner conductor of a dual RF coaxial connector according to claim 7, characterized in that: The pressure column roller (54) is in the shape of a cylinder, the embedded shaft column (53) is in the shape of a cylinder, the embedded shaft column (53) and the pressure column roller (54) are both two in number, the outer side of the pressure column roller (54) is in contact with the outer side of the inner conductor body (7), and the inner conductor body (7) is located between the two pressure column rollers (54).
9. The side slotting device for the inner conductor of a dual RF coaxial connector according to claim 8, characterized in that: The number of the cylinders (69) is two, the cylindrical roller (68) is in the shape of a cylinder, the inner conductor body (7) is located between the two cylinders (69), the outer side of the inner conductor body (7) is in contact with the outer sides of the two cylinders (69), the outer side of the clamping roller rod (67) is in contact with the outer side of the inner conductor body (7), and the folding plate (64) is slidably connected to the inner side of the inner square rail groove (62) opened on the placement table (61) through the track slide (65), and the inner square rail groove (62) passes through one end of the placement table (61).
10. A method for using the side slotting device for the inner conductor of a dual RF coaxial connector according to claim 9, characterized in that: S1: To achieve accurate positioning of the inner conductor body (7) and prevent the slotting position from deviating, operate at the front end of the second conveyor belt (43), turn the position of the inner conductor body (7) to be opened upward, and place the inner conductor body (7) between the two cylinders (69) and the clamping roller rod (67) of the same group. After the placement is completed, start the second electric telescopic rod (63) to drive the folding plate (64) to move. The folding plate (64) is slidably connected to the inner side of the inner square rail groove (62) opened on the placement table (61) through the track slide (65). The movement of the folding plate (64) drives the second fixedly connected inner side to move. The three servo motors (66) move, and the third servo motor (66) drives the clamping roller (67) to move. When the outer side of the clamping roller (67) fits with the outer side of the lower part of the inner conductor body (7), the inner conductor body (7) is clamped between the two cylinders (69) and the clamping roller (67). At the same time, the outer side of the other end of the inner conductor body (7) fits with the outer sides of the two pressure column rollers (54). A thin rubber layer is provided on the outer sides of the cylinder (69), the clamping roller (67) and the pressure column roller (54). If the angle of the inner conductor body (7) is relatively oblique, the third servo motor is started. The motor (66) drives the clamping roller (67) to rotate. Under the action of friction, the clamping roller (67) rotates to drive the inner conductor body (7) to rotate. The inner conductor body (7) drives the two cylinders (69) and the two pressure column rollers (54) to rotate at the same time. After the angle adjustment of the inner conductor body (7) is completed, the third servo motor (66) automatically locks the main shaft. At this time, the inner conductor body (7) will not rotate. The first electric telescopic rod (31) is started to drive the inner empty box (32) to move downward. The inner empty box (32) drives the square rail plate (33) fixed on the outside to move. The shaped rail plate (33) is slidably connected to the inner side of the vertical slide groove (29) opened in the convex frame (27), and the movement of the inner empty box (32) drives the first conveyor belt (36) installed on the inner side to move. When the bottom end of the first conveyor belt (36) is in contact with the stamping cover plate (51), the stamping cover plate (51) drives the spring telescopic rod (55) to move a small distance. After the bottom end of the first conveyor belt (36) is in contact with the top end of the inner conductor body (7), the inner conductor body (7) at the upper end moves downward until the bottom end of the inner conductor body (7) at the upper end is in contact with the top end of the placement table (61); S2: To realize continuous slotting of a large number of inner conductor bodies (7) and to increase production, the roller column (41) is started to drive the second roller (42) to rotate, and the roller column (41) is rotatably connected to the inner side of the convex frame (27). The rotation of the roller column (41) drives the second roller (42) fixedly connected on the outer side to rotate. Under the cooperation of the second conveyor belt (43) and the third roller (45), the second roller (42) drives the second conveyor belt (43) sleeved on the outer side to rotate, and at the same time, the third roller (45) rotates. When the friction between the tensioning roller (44) and the second conveyor belt (43) is sufficient, the roller rotates by itself, and the inner conductor body (7) is driven to move to one end of the slotting device (24) through the rotation of the second conveyor belt (43); S3: Automatic unloading of the slotted inner conductor body (7) is realized to reduce labor intensity. The slotted inner conductor body (7) moves under the drive of the second conveyor belt (43), and the first servo motor (34) is started at the same time. The first servo motor (34) drives the first roller (35) to rotate, and the first roller (35) drives the first conveyor belt (36) sleeved on the outside to rotate, and assists the inner conductor body (7) and the auxiliary support assembly (5) to move. When the slotted inner conductor body (7) is directly above the material receiving box (1), the second electric telescopic rod (63) is started to drive the folding plate (64) to move. The folding plate (64) drives the clamping roller rod (67) to move through the device. When the clamping roller rod (67) is away from the inner conductor body (7), the inner conductor body (7) falls into the inside of the material receiving box (1).
Citation Information
Patent Citations
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CN116765907A
Closing device for slotted jack of connector
CN219286859U