A device for processing an anti-eccentricity internet router antenna
By designing molded components in the Internet router antenna processing device to inject injection molding from four directions, the problem of the antenna core tilting during the glue-encapsulating injection molding process is solved, product quality is improved, and the appearance and performance of the antenna are optimized by repairing the components.
Patent Information
- Application Number
- CN202210432952.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-04-24
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2042-04-24
AI Technical Summary
During the glue-encapsulated injection molding process of existing Internet router antenna processing devices, the flowing injection molding impacts the antenna core from one side, causing the antenna core to tilt, affecting the quality and performance of the antenna.
An anti-eccentric Internet router antenna processing device is designed. The injection molding object is injected into the antenna core from four opposite directions through the molding assembly, and the impact force is cancelled out to ensure that the antenna core maintains its central position during the molding process.
It effectively avoids the inclination phenomenon caused by the impact of the single-side injection molding, greatly improves the product quality, and further optimizes the appearance and performance of the antenna through repair components.
Smart Images

Figure CN114801037B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the field of router processing, in particular to an anti-eccentricity internet router antenna processing device. Background Art
[0002] A router is a hardware device that connects two or more networks, acting as a gateway between the networks;
[0003] Existing Chinese patent: (CN107553819A) An Internet router antenna processing device, by arranging a movable cover plate pre-installed with an antenna core to overlap with a fixed cover plate, so that the antenna core is placed inside a receiving groove, and the antenna is obtained by injecting melt into the receiving groove provided inside the processing plate for overmolding, thereby ensuring that the size and shape of the hardware structure of the antenna body are reliably protected and the antenna performance is ensured. In addition, since the outer diameter of the antenna core matches the inner diameter of the through hole of the fixed cover plate, and the through hole is located at the center of the top of the receiving groove, the antenna core is located at the center of the antenna body after overmolding, effectively ensuring the quality of the antenna body;
[0004] The cover plate is used to fix and limit one end of the antenna core, so that the antenna is located at the center position of the top of the receiving groove. During the injection molding process, the flowing injection molding is injected into the receiving groove from one side to cover the antenna core. That is, the flowing injection molding impacts the antenna core from one side, causing the end of the antenna core away from the fixed limit to tilt back to the injection side. As a result, after the overmolding is completed, the antenna core is not completely located in the center position, which greatly affects the quality and performance of the antenna.
[0005] Therefore, it is necessary to design a device for processing an anti-eccentricity internet router antenna. Summary of the invention
[0006] In order to overcome the disadvantage that during the antenna core overmolding process of the existing equipment, the flowing injection molding material impacts the antenna core from one side, causing the end of the antenna core away from the fixed limit to tilt back to the injection side, the present invention provides an anti-eccentricity Internet router antenna processing device.
[0007] The technical solution is: an anti-eccentricity Internet router antenna processing device, including a first support frame, a base plate, a first support plate, a second support plate, a forming component, a driving component, a transfer component, a first repair component and a second repair component; two first support frames are provided; a base plate is fixedly connected between the upper sides of the two first support frames; two first support plates are fixedly connected to the left upper side of the base plate; two second support plates are fixedly connected to the left upper side of the base plate, and the two second support plates are located on the inner sides of the two first support plates; a forming component is installed between the upper sides of the two second support plates; the forming component is connected to the two first support plates; a driving component is installed on the upper sides of the two first support plates; a transfer component is installed on the right upper side of the base plate; the antenna core is transferred to the forming component by the transfer component, and the driving component drives the forming component to be formed. The molding component operates, and the molding component operates to clamp and cover the antenna core. The molding component simultaneously injects the injection molding material into the antenna core from four opposite directions. The impact forces of the injection molding material hitting the antenna core offset each other. The molding component completes the overmolding of the antenna core, so that a cylindrical shell is formed on the surface of the antenna core; the first repair component for avoiding residual function is installed on the upper right side of the first support plate on the right; the second repair component for avoiding scratching the antenna core is installed on the right side of the upper side of the bottom plate, and the second repair component is located outside the first repair component; the small cylinder remaining on the surface of the cylindrical shell is cut off by the first repair component, leaving a protrusion after cutting, and the first repair component performs multi-stage grinding on the protrusion, and the thin cylinder remaining on the right side of the cylindrical shell is pre-cut and pulled out by the second repair component.
[0008] Furthermore, the molding assembly includes a first connecting ring, a first elastic telescopic rod, a linkage rod, a mold, a condenser, a first connecting frame, an injection molding head and a limit frame; a first connecting ring is fixedly connected to the upper side of each of the two second support plates; four first elastic telescopic rods are fixedly connected to the inside of each of the two first connecting rings, and each adjacent four first elastic telescopic rods are arranged in a circular array; a linkage rod is fixedly connected between the telescopic ends of each two adjacent first elastic telescopic rods on the left and right; a mold is fixedly connected to the centripetal sides of the four linkage rods; a condenser is embedded in the four molds; four first connecting frames are fixedly connected between the inner sides of the two first connecting rings, and the four first connecting frames are arranged in a circular array; a number of injection molding heads are fixedly connected to the centripetal ends of the four first connecting frames; a limit frame is fixedly connected to the upper parts of the opposite sides of the two first support plates; and the four linkage rods are slidably connected to the two limit frames respectively.
[0009] Furthermore, the condenser is arranged in an S shape to improve the cooling effect.
[0010] Furthermore, the driving assembly located on the left includes a motor, a spur gear, a first linkage ring, a gear ring and a first linkage block; a motor is fixedly connected to the lower left part of the first support plate located on the left, and the output end of the motor passes through the first support plate; a spur gear is fixedly connected to the output end of the motor; the first linkage ring is rotatably connected inside the first support plate located on the left; a gear ring is fixedly connected to the outer right part of the first linkage ring; the gear ring is meshed with the spur gear; four first linkage blocks are fixedly connected inside the first linkage ring, and the four first linkage blocks are arranged in a ring array.
[0011] Furthermore, the transfer assembly includes a second support frame, a first electric slide rail, a first electric slider and an electric clamp; the second support frame is fixedly connected to the upper right part of the base plate; the first electric slide rail is fixedly connected to the upper side of the second support frame; the first electric slider is slidably connected to the first electric slide rail; and the electric clamp is installed on the upper side of the first electric slider.
[0012] Furthermore, the first repair component includes a second connecting frame, a circular ring, a first cutter, a second elastic telescopic rod, a grinding block, a shielding block and a second connecting ring; two second connecting frames are fixedly connected to the upper right side of the first support plate on the right; a circular ring is fixedly connected between the lower sides of the two second connecting frames; the first cutter is fixedly connected to the left side of the circular ring; four groups of second elastic telescopic rods are fixedly connected to the inside of the circular ring, and the four groups of second elastic telescopic rods are arranged in a circular array; each group of second elastic telescopic rods is equidistantly arranged with a number of rods; a grinding block is fixedly connected to the telescopic end of each second elastic telescopic rod; four shielding blocks are fixedly connected to the left side of the circular ring, and the four shielding blocks are arranged in a circular array; the four shielding blocks are all in contact with the first cutter; and a second connecting ring is fixedly connected to the right side of the circular ring.
[0013] Furthermore, the second repair component includes a second electric slide rail, a second electric slider, a linkage plate, a second linkage ring, a telescopic cylinder and a clamping assembly; two second electric slide rails are fixedly connected to the upper right part of the base plate, and the two second electric slide rails are located on the inner side of the second support frame; a second electric slider is slidably connected to the two second electric slide rails; a linkage plate is fixedly connected between the upper sides of the two second electric sliders; a second linkage ring is fixedly connected to the upper side of the linkage plate; four telescopic cylinders are penetrated by the second linkage ring, and the four telescopic cylinders are arranged in a circular array; a clamping assembly is installed on the telescopic ends of the four telescopic cylinders.
[0014] Furthermore, the clamping assembly located at the front of the upper side includes a second linkage block, a first limiting rod, a second cutter and a first spring; the telescopic end of the telescopic cylinder located at the front of the upper side is fixedly connected to the second linkage block; the left part of the second linkage block is slidably connected to the first limiting rod; the centripetal end of the first limiting rod is fixedly connected to the second cutter; the first spring is sleeved on the first limiting rod, one end of the first spring is fixedly connected to the first limiting rod, and the other end of the first spring is fixedly connected to the second linkage block.
[0015] Furthermore, the clamping assembly located at the front of the upper side also includes a third linkage block, a second limiting rod, a second spring, a fourth linkage block and a clamping block; two third linkage blocks are fixedly connected to the middle part of the second linkage block; a second limiting rod is slidably connected to the middle part of the two third linkage blocks; a second spring is sleeved on the two second limiting rods, one end of the second spring is fixedly connected to the adjacent third linkage block, and the other end of the second spring is fixedly connected to the adjacent second limiting rod; a fourth linkage block is fixedly connected to the right ends of the two second limiting rods; a clamping block is fixedly connected between the lower sides of the two fourth linkage blocks.
[0016] Furthermore, a rubber pad is provided on the centripetal side of the clamping block to provide friction.
[0017] The beneficial effect is that when in use, the antenna core is simultaneously coated and injection molded by the injection molding heads of four groups of circular arrays, so that the injection molding impacts the antenna core from four relative directions, so that the impact forces on the antenna core offset each other, thereby avoiding the tilting phenomenon caused by the impact of the injection molding on one side of the antenna core, greatly improving the product quality, and at the same time, the small cylinder remaining on the surface of the cylindrical shell is cut off by the first cutter, leaving a small protrusion, and the small cylindrical protrusion is polished multiple times by multiple polishing blocks arranged in a horizontal array to avoid incomplete polishing, so that the small cylindrical protrusion is polished clean, and the shielding block is used to prevent the cut residue from being stuck in the gap between the polishing block and the ring, thereby avoiding the residue from blocking the centrifugal movement of the polishing block, thereby avoiding affecting the polishing process, and at the same time, the blade of the second cutter first moves to the right of the cutting groove on the upper side of the thin cylinder, and then moves to the right with the thin cylinder, thereby avoiding the second cutter from scratching the antenna core when moving to the right. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 It is a structural schematic diagram of an anti-eccentricity internet router antenna processing device of the present invention;
[0019] Figure 2 It is a front view of the anti-eccentricity internet router antenna processing device of the present invention;
[0020] Figure 3 It is a structural schematic diagram of the combination of the forming component and the driving component of the present invention;
[0021] Figure 4 It is a partial structural schematic diagram of the combination of the forming component and the driving component of the present invention;
[0022] Figure 5 It is a schematic diagram of a first partial structure of the molding assembly of the present invention;
[0023] Figure 6 is a schematic diagram of a second partial structure of the molding assembly of the present invention;
[0024] Figure 7It is a left side view of the combination of the forming assembly and the driving assembly of the present invention;
[0025] Figure 8 is a schematic diagram of the structure of the transfer assembly of the present invention;
[0026] Fig. 9 is a schematic diagram of a first structure of the first repair component of the present invention;
[0027] Fig.10 is a second structural schematic diagram of the first repair component of the present invention;
[0028] Fig.11 is a schematic structural diagram of a second repair component of the present invention;
[0029] Fig.12 It is a partial structural schematic diagram of the second repair component of the present invention.
[0030] In the accompanying drawings: 1-first support frame, 2-bottom plate, 3-first support plate, 4-second support plate, 201-first connecting ring, 202-first elastic telescopic rod, 203-linking rod, 204-mold, 205-condenser, 206-first connecting frame, 207-injection head, 208-limiting frame, 301-motor, 302-spur gear, 303-first linkage ring, 304-tooth ring, 305-first linkage block, 401-second support frame, 402-first electric slide rail, 403-first electric slider, 404-electric clamp, 501-second Connecting frame, 502-circular ring, 503-first cutter, 504-second elastic telescopic rod, 505-grinding block, 506-blocking block, 507-second connecting ring, 601-second electric slide rail, 602-second electric slider, 603-linkage plate, 604-second linkage ring, 605-telescopic cylinder, 606-second linkage block, 607-first limiting rod, 608-second cutter, 609-first spring, 6010-third linkage block, 6011-second limiting rod, 6012-second spring, 6013-fourth linkage block, 6014-clamping block. DETAILED DESCRIPTION
[0031] The present invention is described in detail below with reference to the accompanying drawings and specific embodiments.
[0032] Example 1
[0033] A device for processing an anti-eccentricity internet router antenna, such as Figure 1-8As shown, it includes a first support frame 1, a base plate 2, a first support plate 3, a second support plate 4, a forming assembly, a driving assembly, a transfer assembly, a first repair assembly and a second repair assembly; two first support frames 1 are provided; the base plate 2 is bolted between the upper sides of the two first support frames 1; two first support plates 3 are bolted to the left upper side of the base plate 2; two second support plates 4 are bolted to the left upper side of the base plate 2, and the two second support plates 4 are located on the inner sides of the two first support plates 3; a forming assembly is installed between the upper sides of the two second support plates 4; the forming assembly is connected to the two first support plates 3; a driving assembly is installed on the upper parts of the two first support plates 3; a transfer assembly is installed on the right upper side of the base plate 2; the first repair assembly is installed on the upper right side of the first support plate 3 located on the right; the second repair assembly is installed on the right upper side of the base plate 2, and the second repair assembly is located on the outer side of the first repair assembly.
[0034] The molding assembly includes a first connecting ring 201, a first elastic telescopic rod 202, a linkage rod 203, a mold 204, a condenser tube 205, a first connecting frame 206, an injection head 207 and a limiting frame 208; a first connecting ring 201 is fixedly connected to the upper side of each of the two second support plates 4; four first elastic telescopic rods 202 are fixedly connected inside the two first connecting rings 201, and each adjacent four first elastic telescopic rods 202 are arranged in a ring array; a linkage rod 203 is fixedly connected between the telescopic ends of each adjacent two first elastic telescopic rods 202 on the left and right; four linkage rods 203 are fixedly connected to the upper side of each of the two second support plates 4 ... A mold 204 is fixedly connected to the centripetal side of the moving rod 203; a condenser 205 is embedded inside each of the four molds 204; four first connecting frames 206 are welded between the inner sides of the two first connecting rings 201, and the four first connecting frames 206 are arranged in a ring array; a number of injection heads 207 are fixedly connected to the centripetal ends of the four first connecting frames 206; a limit frame 208 is fixedly connected to the upper parts of the opposite sides of the two first support plates 3; the four linkage rods 203 are slidably connected to the two limit frames 208 respectively; the condenser 205 is arranged in an S shape to improve the cooling effect.
[0035] The driving assembly located on the left includes a motor 301, a spur gear 302, a first linkage ring 303, a gear ring 304 and a first linkage block 305; the motor 301 is fixedly connected to the lower left part of the first support plate 3 located on the left, and the output end of the motor 301 passes through the first support plate 3; the output end of the motor 301 is fixedly connected to the spur gear 302; the first linkage ring 303 is rotatably connected inside the first support plate 3 located on the left; the gear ring 304 is fixedly connected to the outer right part of the first linkage ring 303; the gear ring 304 is meshed with the spur gear 302; four first linkage blocks 305 are welded inside the first linkage ring 303, and the four first linkage blocks 305 are arranged in a ring array.
[0036] The transfer assembly includes a second support frame 401, a first electric slide rail 402, a first electric slider 403 and an electric clamp 404; the second support frame 401 is bolted to the right upper side of the base plate 2; the first electric slide rail 402 is fixedly connected to the upper side of the second support frame 401; the first electric slider 403 is slidably connected to the first electric slide rail 402; the electric clamp 404 is installed on the upper side of the first electric slider 403.
[0037] During the preparation work, the two first support frames 1 are fixed to the workbench by bolts to keep the device stable, the power is turned on, the injection molding channel is manually connected to the multiple injection molding heads 207, the condenser is connected to the four condensation tubes 205, so that the condensate circulates between the condensation tubes 205 and the condenser, the right end of the antenna core is manually placed in the electric clamp 404, the electric clamp 404 clamps the right end of the antenna core so that the central axis of the antenna core is aligned with the central axis of the limit frame 208, and then the first electric slider 403 moves to the left on the first electric slide rail 402, the first electric slider 403 drives the electric clamp 404 to move to the left, and the electric clamp 404 drives the antenna core to move to the left, so that the left part of the antenna core moves to the four The middle of the gap of the mold 204 is then started, and the motor 301 is driven by the motor 301 to rotate the spur gear 302, the spur gear 302 drives the gear ring 304 to rotate, the gear ring 304 drives the first linkage ring 303 to rotate, and the first linkage ring 303 drives the first linkage block 305 to perform a circular motion, so that the lower side of the first linkage block 305 contacts the upper edge of the linkage rod 203. When the first linkage block 305 continues to perform a circular motion, the first linkage block 305 pushes the linkage rod 203 to slide centripetally on the limit frame 208 and stretches the first elastic telescopic rod 202. At the same time, the other three first linkage blocks 305 respectively link the other three linkage rods 203 to move, so that the four linkage rods 203 move centripetally synchronously, and the four linkage rods 203 The four molds 204 are driven to move centripetally, so that the four molds 204 contact each other at the same time to cover the antenna core. At this time, a cylindrical cavity is formed inside the four molds 204, and the antenna core is located at the center of the cylindrical cavity. At the same time, every two adjacent molds 204 clamp the corresponding ends of the injection molding heads 207, so that the multiple injection molding heads 207 are connected to the cavities inside the four molds 204, and then the external injection molding channel simultaneously transports the injection molding to the multiple injection molding heads 207, and then the four groups of injection molding heads 207 on the four first connecting frames 206 inject the injection molding into the cavities inside the four molds 204 at the same time, that is, the injection molding impacts the antenna core from four relative angles respectively, so that the impact force on each part of the antenna core is the same, thereby avoiding The antenna core is tilted due to the impact of the unilateral injection molding. When the injection molding fills the cavities inside the four molds 204, the external condenser injects condensate into the condenser tube 205, thereby cooling the mold 204. The injection molding inside the mold 204 solidifies quickly, and then the motor 301 drives the spur gear 302 to rotate, so that the first linkage ring 303 drives the first linkage block 305 to rotate back to its original position and close, that is, the first linkage block 305 stops limiting the linkage rod 203, and then the first elastic telescopic rod 202 rebounds to drive the linkage rod 203 to move back to its original position, and the linkage rod 203 drives the mold 204 to move back to its original position, thereby completing the coating injection molding operation. When in use, the antenna core is coated and injection molded at the same time through the four groups of annular array injection molding heads 207.The injection molding impacts the antenna core from four opposite directions, so that the impact forces on the antenna core offset each other, thereby avoiding the tilting of the antenna core caused by the impact of the injection molding on one side, greatly improving the product quality.
[0038] Example 2
[0039] On the basis of Example 1, Figure 1-2 and Figure 9-12 As shown, the first repair assembly includes a second connecting frame 501, a circular ring 502, a first cutting knife 503, a second elastic telescopic rod 504, a grinding block 505, a shielding block 506 and a second connecting ring 507; two second connecting frames 501 are bolted to the upper right side of the first supporting plate 3 on the right; a circular ring 502 is fixedly connected between the lower sides of the two second connecting frames 501; the first cutting knife 503 is fixedly connected to the left side of the circular ring 502; four sets of second Elastic telescopic rod 504, and four groups of second elastic telescopic rods 504 are arranged in a circular array; each group of second elastic telescopic rods 504 is equidistantly arranged with a number of second elastic telescopic rods 504; a grinding block 505 is fixedly connected to the telescopic end of each second elastic telescopic rod 504; four blocking blocks 506 are fixedly connected to the left side of the ring 502, and the four blocking blocks 506 are arranged in a circular array; the four blocking blocks 506 are all in contact with the first cutting knife 503; a second connecting ring 507 is fixedly connected to the right side of the ring 502.
[0040] The second repair component includes a second electric slide rail 601, a second electric slider 602, a linkage plate 603, a second linkage ring 604, a telescopic cylinder 605 and a clamping assembly; two second electric slide rails 601 are fixedly connected to the right upper part of the base plate 2, and the two second electric slide rails 601 are located on the inner side of the second support frame 401; a second electric slider 602 is slidably connected to the two second electric slide rails 601; a linkage plate 603 is fixedly connected between the upper sides of the two second electric sliders 602; a second linkage ring 604 is fixedly connected to the upper side of the linkage plate 603; four telescopic cylinders 605 are penetrated by the second linkage ring 604, and the four telescopic cylinders 605 are arranged in a ring array; a clamping assembly is installed on the telescopic ends of the four telescopic cylinders 605.
[0041] The clamping assembly located at the front of the upper side includes a second linkage block 606, a first limiting rod 607, a second cutter 608 and a first spring 609; the telescopic end of the telescopic cylinder 605 located at the front of the upper side is fixedly connected to the second linkage block 606; the left part of the second linkage block 606 is slidably connected to the first limiting rod 607; the centripetal end of the first limiting rod 607 is fixedly connected to the second cutter 608; the first limiting rod 607 is sleeved with a first spring 609, one end of the first spring 609 is fixedly connected to the first limiting rod 607, and the other end of the first spring 609 is fixedly connected to the second linkage block 606.
[0042] The clamping assembly located at the front of the upper side also includes a third linkage block 6010, a second limiting rod 6011, a second spring 6012, a fourth linkage block 6013 and a clamping block 6014; two third linkage blocks 6010 are welded in the middle of the second linkage block 606; the middle of the two third linkage blocks 6010 are slidably connected with a second limiting rod 6011; the two second limiting rods 6011 are each sleeved with a second spring 6012, one end of the second spring 6012 is fixedly connected to the adjacent third linkage block 6010, and the other end of the second spring 6012 is fixedly connected to the adjacent second limiting rod 6011; the right ends of the two second limiting rods 6011 are each fixedly connected to a fourth linkage block 6013; a clamping block 6014 is fixedly connected between the lower sides of the two fourth linkage blocks 6013; a rubber pad is provided on the centripetal side of the clamping block 6014 to provide friction.
[0043] After the injection molding is completed, a cylindrical shell is formed on the outer surface of the left part of the antenna core, and a small cylindrical residue is formed at the position of the cylindrical shell corresponding to the injection holes of the four molds 204. Then the first electric slider 403 drives the electric clamp 404 to move rightward, and the electric clamp 404 drives the antenna core to move rightward, and the antenna core drives the cylindrical shell thereon to move rightward, so that the cylindrical shell moves to the inside of the ring 502, and the cylindrical shell is in close contact with the inner wall of the ring 502, and the cylindrical shell continues to move to the right. When the small cylindrical residue above it moves to the left of the first cutter 503, the cylindrical shell continues to move to the right so that the first cutter 503 cuts off the small cylindrical residue. In order to prevent the first cutter 503 from scratching the outer surface of the cylindrical shell, the first The inner diameter of the cutter 503 is slightly larger than the outer diameter of the cylindrical shell, that is, after the first cutter 503 cuts off the small cylindrical residue, a small cylindrical protrusion will be formed at the cutting position, and the cylindrical shell continues to move to the right, so that the cylindrical protrusion contacts the leftmost grinding block 505 and squeezes it upward, so that the leftmost grinding block 505 compresses the leftmost second elastic telescopic rod 504, and the small cylindrical protrusion moves to the right at the lower side of the grinding block 505, and the second elastic telescopic rod 504 presses the grinding block 505 against the small cylindrical protrusion, so that the grinding block 505 grinds the small cylindrical protrusion, and the multiple grinding blocks 505 arranged in a horizontal array are used to grind the small cylindrical protrusion multiple times to avoid incomplete grinding, thereby grinding the small cylindrical protrusion cleanly. The small cylindrical residue on the surface of the cylindrical shell is completely removed. During this process, the shielding block 506 is used to prevent the cut residue from moving into the gap between the grinding block 505 and the ring 502, thereby avoiding the residue from blocking the grinding block 505 from performing centrifugal movement, thereby avoiding affecting the grinding process; during the injection molding process, the right ends of the four molds 204 clamp the antenna core, and after the injection molding is injected, part of the injection molding penetrates into the gap between the right ends of the four molds 204 and the antenna core, so that after the injection molding is completed, a circle of thin cylindrical residue remains on the right edge of the cylindrical shell on the antenna core, and the cylindrical shell continues to move to the right. When the right edge of the cylindrical shell is aligned with the second cutter 608, the telescopic cylinder 605 drives the second linkage block 606 to move centripetally, and the second linkage block 60 6 drives the parts thereon to move centripetally, so that the four second cutters 608 move centripetally at the same time, and then the four second cutters 608 contact the left surface of the thin cylindrical residue, while the clamping block 6014 has not yet contacted the thin cylindrical residue, and the telescopic cylinder 605 drives the second linkage block 606 to continue to move centripetally, so that the four clamping blocks 6014 contact the thin cylindrical residue at the same time, and the second linkage block 606 slides relatively on the first limiting rod 607, and stretches the first spring 609, and the first spring 609 applies a centripetal thrust to the first limiting rod 607, and the first limiting rod 607 presses the second cutters 608 against the left surface of the thin cylindrical residue, and the four second cutters 608 cooperate to cut a groove on the left surface of the thin cylindrical residue.At this time, the second cutter 608 does not cut through the thin cylindrical residual material, that is, the second cutter 608 does not contact the antenna core, thereby avoiding the problem of directly cutting through and then cutting the antenna core. Then the two second electric sliders 602 slide to the right on the two second electric slide rails 601, and the two second electric sliders 602 simultaneously drive the linkage plate 603 to move to the right, the linkage plate 603 drives the second linkage ring 604 to move to the right, the second linkage ring 604 drives the telescopic cylinder 605 to move to the right, and the telescopic cylinder 605 drives the second linkage block 606 to move to the right. Since the four clamping blocks 6014 clamp the outer surface of the thin cylinder at the same time, the clamping block 6014 is kept stationary by friction, and the second linkage block 606 drives the first limiting block 6014 to move to the right. The positioning rod 607 moves to the right, and the first limiting rod 607 drives the second cutter 608 to move to the right, so that the second cutter 608 moves to the right of the thin cylinder cutting groove. At the same time, the second linkage block 606 drives the third linkage block 6010 to slide to the right on the second limiting rod 6011, and stretches the second spring 6012. The fourth linkage block 6013 and the clamping block 6014 remain stationary. When the third linkage block 6010 contacts the fourth linkage block 6013, the third linkage block 6010 drives the fourth linkage block 6013 to move to the right, and the fourth linkage block 6013 drives the clamping block 6014 to move to the right, so that the four clamping blocks 6014 simultaneously drive the thin cylinder to move to the right through friction, so that the thin cylinder moves along the cutting groove. The first spring 609 rebounds to make the second cutter 608 contact the antenna core, thereby preventing the second cutter 608 from scratching the antenna core when moving to the right. Then the telescopic cylinder 605 drives the second linkage block 606 to move back to its original position. The first spring 609 rebounds to drive the first limiting rod 607 to move back to its original position. The first limiting rod 607 drives the second cutter 608 to move back to its original position. The second spring 6012 rebounds to drive the second limiting rod 6011 to move back to its original position, so that the clamping block 6014 moves back to its original position. Then the clamping block 6014 is manually put on the antenna core. The thin cylinder is pulled out to the right; when in use, the small cylinder remaining on the surface of the cylindrical shell is cut off by the first cutter 503, leaving a small protrusion, and the small cylindrical protrusion is polished multiple times by multiple polishing blocks 505 arranged in a horizontal array to avoid incomplete polishing, so that the small cylindrical protrusion is polished cleanly, and the shielding block 506 is used to prevent the cut residual material from being stuck in the gap between the polishing block 505 and the ring 502, thereby preventing the residual material from blocking the centrifugal movement of the polishing block 505, thereby avoiding affecting the polishing process. At the same time, the blade of the second cutter 608 first moves to the right of the cutting groove on the upper side of the thin cylinder, and then moves to the right with the thin cylinder, thereby preventing the second cutter 608 from scratching the antenna core when moving to the right.
[0044] The above is only a specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art can easily think of changes or substitutions within the technical scope disclosed by the present invention, which should be included in the protection scope of the present invention. Therefore, the protection scope of the present invention should be based on the protection scope of the claims.
Claims
1. An anti-eccentricity internet router antenna processing device, comprising a first support frame (1), a bottom plate (2), a first support plate (3), and a second support plate (4); two first support frames (1) are provided; a bottom plate (2) is fixedly connected between the upper sides of the two first support frames (1); the two first support plates (3) are fixedly connected to the left upper side of the bottom plate (2); two second support plates (4) are fixedly connected to the left upper side of the bottom plate (2), and the two second support plates (4) are located inside the two first support plates (3); characterized in that: It also includes a molding component, a driving component, a transfer component, a first repair component and a second repair component; a molding component is installed between the upper sides of the two second support plates (4); the molding component is connected to the two first support plates (3); a driving component is installed on the upper part of the two first support plates (3); a transfer component is installed on the right part of the upper side of the bottom plate (2); the antenna core is transferred to the molding component by the transfer component, the driving component drives the molding component to operate, the molding component operates to clamp and cover the antenna core, and the molding material is injected into the antenna core from four relative directions at the same time by the molding component, and the impact of the molding material on the antenna core is reduced. The forces cancel each other out, and the molding component completes the overmolding of the antenna core, so that a cylindrical shell is formed on the surface of the antenna core; a first repair component for avoiding residual function is installed on the upper right side of the first support plate (3) located on the right; a second repair component for avoiding scratching the antenna core is installed on the upper right side of the bottom plate (2), and the second repair component is located outside the first repair component; the small cylinder remaining on the surface of the cylindrical shell is cut off by the first repair component, and a protrusion is left after the cutting, and the first repair component performs multi-level grinding on the protrusion, and the thin cylinder remaining on the right side of the cylindrical shell is pre-cut and removed by the second repair component.
2. The anti-eccentricity internet router antenna processing device according to claim 1 is characterized in that: The molding assembly comprises a first connecting ring (201), a first elastic telescopic rod (202), a linkage rod (203), a mold (204), a condenser tube (205), a first connecting frame (206), an injection head (207) and a limiting frame (208); a first connecting ring (201) is fixedly connected to the upper side of each of the two second support plates (4); four first elastic telescopic rods (202) are fixedly connected inside each of the two first connecting rings (201), and each of the four adjacent first elastic telescopic rods (202) is arranged in a ring array; a first connecting ring (201) is fixedly connected between the telescopic ends of each of the two adjacent first elastic telescopic rods (202) on the left and right sides; linkage rods (203); a mold (204) is fixedly connected to the centripetal side of the four linkage rods (203); a condenser tube (205) is embedded in the interior of each of the four molds (204); four first connection frames (206) are fixedly connected between the inner sides of the two first connection rings (201), and the four first connection frames (206) are arranged in a ring array; a plurality of injection heads (207) are fixedly connected to the centripetal ends of the four first connection frames (206); a limit frame (208) is fixedly connected to the upper parts of the opposite sides of the two first support plates (3); and the four linkage rods (203) are slidably connected to the two limit frames (208) respectively.
3. The anti-eccentricity internet router antenna processing device according to claim 2 is characterized in that: The condenser tube (205) is arranged in an S shape to improve the cooling effect.
4. The anti-eccentricity internet router antenna processing device according to claim 2, characterized in that: The driving assembly located on the left side comprises a motor (301), a spur gear (302), a first linkage ring (303), a gear ring (304) and a first linkage block (305); the motor (301) is fixedly connected to the lower left side of the first support plate (3) located on the left side, and the output end of the motor (301) passes through the first support plate (3); the output end of the motor (301) is fixedly connected to the spur gear (302); the first linkage ring (303) is rotatably connected inside the first support plate (3) located on the left side; the gear ring (304) is fixedly connected to the right outside of the first linkage ring (303); the gear ring (304) is meshed with the spur gear (302); four first linkage blocks (305) are fixedly connected inside the first linkage ring (303), and the four first linkage blocks (305) are arranged in a ring array; When the first linkage block (305) continues to perform circular motion, the first linkage block (305) pushes the linkage rod (203) to slide centripetally on the limit frame (208) and stretches the first elastic telescopic rod (202). At the same time, the other three first linkage blocks (305) respectively link the other three linkage rods (203) to move, so that the four linkage rods (203) synchronously perform centripetal motion, and the four linkage rods (203) drive the four molds (204) to move centripetally.
5. The anti-eccentricity internet router antenna processing device according to claim 4 is characterized in that: The transfer assembly comprises a second support frame (401), a first electric slide rail (402), a first electric slider (403) and an electric clamp (404); the second support frame (401) is fixedly connected to the upper right part of the bottom plate (2); the first electric slide rail (402) is fixedly connected to the upper side of the second support frame (401); the first electric slider (403) is slidably connected to the first electric slide rail (402); and the electric clamp (404) is installed on the upper side of the first electric slider (403).
6. The anti-eccentricity internet router antenna processing device according to claim 5, characterized in that: The first repair component comprises a second connecting frame (501), a circular ring (502), a first cutting knife (503), a second elastic telescopic rod (504), a grinding block (505), a shielding block (506) and a second connecting ring (507); two second connecting frames (501) are fixedly connected to the upper right side of the first supporting plate (3) located on the right; a circular ring (502) is fixedly connected between the lower sides of the two second connecting frames (501); the first cutting knife (503) is fixedly connected to the left side of the circular ring (502); four sets of second elastic The invention relates to a first elastic telescopic rod (504), and four groups of second elastic telescopic rods (504) are arranged in a ring array; each group of second elastic telescopic rods (504) is equidistantly arranged with a plurality of second elastic telescopic rods (504); a grinding block (505) is fixedly connected to the telescopic end of each second elastic telescopic rod (504); four blocking blocks (506) are fixedly connected to the left side of the circular ring (502), and the four blocking blocks (506) are arranged in a ring array; the four blocking blocks (506) are all in contact with the first cutting knife (503); and a second connecting ring (507) is fixedly connected to the right side of the circular ring (502).
7. The anti-eccentricity internet router antenna processing device according to claim 6, characterized in that: The second repair component comprises a second electric slide rail (601), a second electric slider (602), a linkage plate (603), a second linkage ring (604), a telescopic cylinder (605) and a clamping assembly; two second electric slide rails (601) are fixedly connected to the right upper part of the bottom plate (2), and the two second electric slide rails (601) are located on the inner side of the second support frame (401); a second electric slider (602) is slidably connected to each of the two second electric slide rails (601); a linkage plate (603) is fixedly connected between the upper sides of the two second electric sliders (602); a second linkage ring (604) is fixedly connected to the upper side of the linkage plate (603); four telescopic cylinders (605) are arranged through the second linkage ring (604), and the four telescopic cylinders (605) are arranged in a ring array; and a clamping assembly is installed on the telescopic ends of the four telescopic cylinders (605).
8. The anti-eccentricity internet router antenna processing device according to claim 7, characterized in that: The clamping assembly located at the front of the upper side comprises a second linkage block (606), a first limiting rod (607), a second cutter (608) and a first spring (609); the telescopic end of the telescopic cylinder (605) located at the front of the upper side is fixedly connected to the second linkage block (606); the left part of the second linkage block (606) is slidably connected to the first limiting rod (607); the centripetal end of the first limiting rod (607) is fixedly connected to the second cutter (608); the first limiting rod (607) is sleeved with a first spring (609), one end of the first spring (609) is fixedly connected to the first limiting rod (607), and the other end of the first spring (609) is fixedly connected to the second linkage block (606).
9. The anti-eccentricity internet router antenna processing device according to claim 8, characterized in that: The clamping assembly located at the front of the upper side also includes a third linkage block (6010), a second limiting rod (6011), a second spring (6012), a fourth linkage block (6013) and a clamping block (6014); two third linkage blocks (6010) are fixedly connected to the middle of the second linkage block (606); the middle of the two third linkage blocks (6010) are slidably connected to a second limiting rod (6011); a second spring (6012) is sleeved on the two second limiting rods (6011), one end of the second spring (6012) is fixedly connected to the adjacent third linkage block (6010), and the other end of the second spring (6012) is fixedly connected to the adjacent second limiting rod (6011); the right ends of the two second limiting rods (6011) are fixedly connected to a fourth linkage block (6013); and a clamping block (6014) is fixedly connected between the lower sides of the two fourth linkage blocks (6013).
10. The anti-eccentricity internet router antenna processing device according to claim 9, characterized in that: A rubber pad is provided on the centripetal side of the clamping block (6014) to provide friction.
Citation Information
Patent Citations
Internet router antenna processing device
CN107553819A
Automatic wire harness injection molding machine
CN212528591U