A TYPE-C connector accessory assembly and molding device
By designing an automated TYPE-C connector accessories assembly molding device, the existing assembly process efficiency and easy damage to the metal shell is solved, and automated material conveying, assembly and stripping are realized, improving assembly efficiency and product quality.
Patent Information
- Application Number
- CN202510099437.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-22
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2045-01-22
AI Technical Summary
The assembly process of existing TYPE-C connectors is inefficient and relies on manual operation, which can easily damage the metal shell and cause scrapping.
A TYPE-C connector accessories assembly molding device is designed, including a chassis and assembly components, and automatic material conveying, assembly and stripping are realized through transmission structure and spring mechanism.
During the batch of conveying materials, the metal shell is automatically discharged and assembled onto the terminal tape, and automatically stripped and unloaded after assembly is completed, improving assembly efficiency and reducing the risk of manual operation.
Smart Images

Figure CN119542878B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of TYPE-C connector production, and in particular to a TYPE-C connector accessory assembly and molding device. Background Art
[0002] TYPE-C connectors can be plugged in on both sides without distinction, and have a faster transmission rate and higher transmission quality. Therefore, most electronic devices use TYPE-C interface connections. In the production and assembly process of TYPE-C connectors, the terminal accessories and metal shell accessories need to be plugged in. Both the terminal accessories and the metal shell accessories are fixed-length strips, among which the terminal strips are double-row strips. During the assembly process, two sets of metal shell strips are placed on both sides of the terminal strips, and are positioned on a special tooling platform and then plugged in for assembly.
[0003] At present, most TYPE-C connectors are manufactured by manual assembly. The terminal strips are placed on the workbench manually, and two sets of metal shell strips are placed on the workbench on both sides of the terminal strips. Then the strips on the side that need to be connected are manually broken and removed, and then the connection and pressing are carried out. However, the above assembly method is inefficient. Although the fixed-length strips can be used to assemble two rows of products at a time, manual operation is still required. In addition, the strength of the manual removal of the strips is inconsistent, which can easily damage the metal shell and cause scrapping.
[0004] Therefore, in view of this, the existing structure and defects are studied and improved, and a TYPE-C connector accessory assembly molding device is proposed. Summary of the invention
[0005] The object of the present invention is to provide a TYPE-C connector accessory assembly molding device to solve the problems raised in the above-mentioned background technology.
[0006] To achieve the above-mentioned objectives, the present invention provides the following technical solutions: a TYPE-C connector accessory assembly and molding device, comprising a chassis and an assembly component, wherein the assembly components are symmetrically arranged on both sides of the middle part of the chassis, the assembly component comprising a bottom frame, a return spring, a limit block, a base, a receiving groove, a through groove, a receiving spring, a partition, a folding plate, a lifting spring, a cam wheel and a pressure block wheel, the bottom frame is symmetrically arranged on both sides of the middle part of the chassis, and the return springs are symmetrically connected to both sides of the bottom frame, the other end of the return spring is connected to the limit block, and the base is connected between the limit blocks, a receiving groove is provided on the inner side of the base, and a through groove is provided on the upper part of the base, a receiving spring is connected in the receiving groove, and the other end of the receiving spring is connected to a partition, a folding plate is slidably connected in the through groove, and lifting springs are symmetrically connected on both sides of the folding plate, a cam wheel is arranged above the folding plate, and a pressure block wheel is connected on one side of the cam wheel.
[0007] Furthermore, the limit block is elastically connected to the bottom frame through a reset spring, and the base is slidably connected to the bottom frame through the limit block, the partition and the folding plate are elastically connected to the base through a storage spring and a lifting spring, respectively, and the partition and the folding plate are slidably connected to the base through a storage groove and a through groove, respectively.
[0008] Furthermore, a support is connected to the middle of the chassis, and a pad is symmetrically connected to one side of the support, a scraper is arranged above the pad, and a feed plate is symmetrically connected to one side of the chassis, and a shovel plate is connected to the feed plate.
[0009] Furthermore, buffer springs are symmetrically connected on both sides of the support, and a padding plate is symmetrically arranged in the middle of the support, and a discharge plate is symmetrically arranged on the other side of the support, and the padding plate and the discharge plate are both connected to the buffer springs, and the padding plate and the discharge plate are elastically connected to the support through the buffer springs.
[0010] Furthermore, the support is provided with a slide groove on one side of the discharge plate, and a slider is slidably engaged in the slide groove, the slider is connected to the discharge plate, and the discharge plate is rotatably connected to the support through the slider and the slide groove.
[0011] Furthermore, a crossbeam is connected above the chassis, and two terminal feeding wheels are arranged below the middle of the crossbeam, the terminal feeding wheel on one side is symmetrically connected to the shell feeding wheels on both sides, and the outer sides of the terminal feeding wheel and the shell feeding wheel are connected to an adhesive layer, and the adhesive layer is semicircular.
[0012] Furthermore, a driving motor is arranged on one side of the terminal feeding wheel on the other side, and the terminal feeding wheels are connected by belts and pulleys, and the terminal feeding wheels form a transmission structure through the belts, pulleys, cam wheels and pressure wheel.
[0013] Furthermore, the crossbeam is symmetrically rotatably connected to a flywheel on one side close to the unloading plate, and a connecting rod is connected between the flywheels. The middle part of the connecting rod is rotatably connected to a connecting rod, and the other end of the connecting rod is rotatably connected to a shift rod. The flywheel is connected to the terminal feeding wheel through a belt and a pulley.
[0014] Furthermore, a limit frame is arranged outside the shift rod, and the other end of the shift rod is connected to a base plate, hook rods are symmetrically connected to both sides of the base plate, the shift rod is slidably connected to the limit frame, and the limit frame is connected to the cross beam, and the hook rod is L-shaped.
[0015] Furthermore, a pressing knife is symmetrically connected to the middle of the lower surface of the bottom plate, and compression springs are symmetrically connected to both sides of the lower surface of the bottom plate. The other end of the compression spring is connected to a compression plate, and the compression plate is elastically connected to the bottom plate through the compression spring.
[0016] The present invention provides a TYPE-C connector accessory assembly and molding device, which has the following beneficial effects: when in use, the terminal material strip and the shell material strip can be synchronously intermittently conveyed, and in the interval of conveying the materials, the metal shell is automatically unloaded and assembled onto the terminal material strip, and after the assembly is completed, the material can be automatically unloaded and discharged.
[0017] 1. When conveying materials, the shell material belt of the present invention can be pushed into the receiving groove through the inclined surface of the partition and the receiving spring is compressed. When the feeding is suspended, the partition can be popped out from the receiving groove under the action of the receiving spring, and the metal shell on the material belt is separated and restricted. With the rotation of the cam wheel and the pressure block wheel, the cam wheel can first apply force to the folding plate, so that the folding plate compresses the lifting spring under the action of pressure and slides on the base through the through groove, cutting off the material belt and cutting off the connection between the metal shell and the material belt, so as to remove the metal shell. With the rotation of the cam wheel, the folding plate rises back under the action of the lifting spring until the cam wheel is out of contact with the folding plate, and the pressure block wheel is in contact with the base. The base can be pressed to move in the direction of the bottom frame toward the support, and the metal shell can be docked with the corresponding terminal on the terminal strip and pressed. When the base moves, the limit block can limit the base through the bottom frame to prevent the base from deflecting during movement. At the same time, the base drives the limit block to stretch the reset spring. After the docking is completed, as the pressure block wheel continues to rotate, the reset spring can drive the base to rebound through the limit block, so that the base is reset to facilitate subsequent feeding. When feeding again, the new material strip can push out the remaining material strip in the base to avoid affecting feeding and assembly. In summary, when in use, the metal shell can be automatically unloaded and assembled to the terminal material strip during the interval of conveying materials.
[0018] 2. When the present invention is in use, the terminal material strip and the shell material strip are first placed on the support and the feeding plate respectively, so that the pad can receive the terminals on the terminal material strip, and then the driving motor is started, and the driving motor can drive the terminal feeding wheel and the shell feeding wheel to rotate, and adhere the material strip through the adhesive layer, and the semi-circular ring shape of the adhesive layer allows the material strip to be intermittently fed under the rotation of the terminal feeding wheel and the shell feeding wheel, and the scraper and the shovel plate can peel the material strip from the adhesive layer to prevent the material strip from adhering too firmly to the adhesive layer and failing to feed normally, and when the terminal feeding wheel rotates, it can drive the convex wheel and the pressing wheel, and the adhesive layer is between the terminal feeding wheel and The distribution on the shell feeding wheel cooperates with the distribution of protrusions on the cam wheel and the pressure wheel to ensure that the feeding process and the material assembly process can be carried out alternately without interfering with each other. During the assembly process, as the bottom frame moves, the bottom frame can compress the buffer spring through the inclined surface of the gasket plate to avoid the gasket plate hindering the movement of the bottom frame and causing the material to be unable to be assembled normally. After the material assembly is completed, the material is fed again, and the assembled part on the terminal material belt can be transported to the unloading plate to wait for subsequent unloading. In summary, during use, the material can be transported intermittently, and the feeding process and the material assembly process can be carried out alternately.
[0019] The flywheel can then drive the shift rod to move downward through the connecting rod, so that the bottom plate presses the material onto the discharge plate through the pressing plate, thereby ensuring that the material is firmly pressed. At the same time, as the bottom plate continues to move, the pressing spring and the buffer spring are compressed, and the pressure knife can cut off the connection between the terminal and the material belt to remove the material. Then, as the flywheel rotates, the connecting rod drives the shift rod to rise through the connecting rod until the feeding is resumed. Then, the flywheel continues to drive the shift rod to rise, so that the bottom plate drives the discharge plate to rise through the hook rod. The side of the discharge plate away from the hook rod is restricted by the slider and the slide groove, so that the discharge plate can rotate and tilt on the support with the slider as the rotation center, thereby unloading the material after the belt is removed, and will not affect the normal transportation of the material. Then, the flywheel can drive the shift rod to descend, so that the discharge plate gradually returns to a horizontal state. During the movement of the shift rod, the limit frame can limit the shift rod to prevent the shift rod from being tilted. In summary, after the assembly is completed, the material can be automatically removed and discharged. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 It is a schematic diagram of the overall three-dimensional structure of a TYPE-C connector accessory assembly molding device of the present invention;
[0021] Figure 2 It is a schematic diagram of a three-dimensional exploded structure of an assembly component of a TYPE-C connector accessory assembly molding device of the present invention;
[0022] Figure 3A schematic diagram of a three-dimensional exploded structure of a chassis of a TYPE-C connector accessory assembly and molding device of the present invention;
[0023] Figure 4 It is a schematic diagram of the overall front view structure of a TYPE-C connector accessory assembly molding device of the present invention;
[0024] Figure 5 It is a schematic diagram of the overall half-section three-dimensional structure of a TYPE-C connector accessory assembly molding device of the present invention;
[0025] Figure 6 It is a schematic diagram of a half-section three-dimensional exploded structure of a crossbeam of a TYPE-C connector accessory assembly and molding device of the present invention.
[0026] In the figure: 1, chassis; 2, assembly components; 201, bottom frame; 202, return spring; 203, limit block; 204, base; 205, storage slot; 206, through slot; 207, storage spring; 208, partition; 209, folding plate; 210, lifting spring; 211, convex wheel; 212, block wheel; 3, support; 4, pad; 5, scraper; 6, feed plate; 7, shovel plate; 8. Buffer spring; 9. Pad plate; 10. Unloading plate; 11. Slide groove; 12. Slider; 13. Crossbeam; 14. Terminal feeding wheel; 15. Shell feeding wheel; 16. Adhesive layer; 17. Driving motor; 18. Flywheel; 19. Connecting rod; 20. Connecting rod; 21. Shifting rod; 22. Limiting frame; 23. Bottom plate; 24. Hook rod; 25. Pressing knife; 26. Compression spring; 27. Compression plate. DETAILED DESCRIPTION
[0027] See also Figures 1 to 6 The present invention provides a technical solution: a TYPE-C connector accessory assembly forming device, comprising a chassis 1 and an assembly component 2, the assembly components 2 are symmetrically arranged on both sides of the middle of the chassis 1, the assembly component 2 comprises a bottom frame 201, a reset spring 202, a limit block 203, a base 204, a receiving groove 205, a through groove 206, a receiving spring 207, a partition 208, a folding plate 209, a lifting spring 210, a convex wheel 211 and a pressing wheel 212, the bottom frame 201 is symmetrically arranged on both sides of the middle of the chassis 1, and the reset spring 202 is symmetrically connected to the bottom frame 201 on both sides. 2. The other end of the return spring 202 is connected to the limit block 203, and a base 204 is connected between the limit blocks 203. A receiving groove 205 is provided on the inner side of the base 204, and a through groove 206 is provided on the upper part of the base 204. A receiving spring 207 is connected in the receiving groove 205, and a partition plate 208 is connected to the other end of the receiving spring 207. A folding plate 209 is slidably connected in the through groove 206, and lifting springs 210 are symmetrically connected on both sides of the folding plate 209. A cam wheel 211 is provided above the folding plate 209, and a pressure wheel 212 is connected to one side of the cam wheel 211.
[0028] See also Figures 1 to 5 The limit block 203 is elastically connected to the bottom frame 201 through the return spring 202, and the base 204 is slidably connected to the bottom frame 201 through the limit block 203, the partition 208 and the folding plate 209 are elastically connected to the base 204 through the storage spring 207 and the lifting spring 210, and the partition 208 and the folding plate 209 are slidably connected to the base 204 through the storage groove 205 and the through groove 206, respectively. The middle part of the chassis 1 is connected to the support 3, and the support 3 is symmetrically connected to the pad 4 on one side, and a scraper 5 is arranged above the pad 4, and the chassis 1 is symmetrically connected to the feeding plate on one side. 6, and a shovel plate 7 is connected to the feeding plate 6, buffer springs 8 are symmetrically connected to the two sides of the support 3, and a padding plate 9 is symmetrically arranged in the middle of the support 3, and a discharge plate 10 is symmetrically arranged on the other side of the support 3, and the padding plate 9 and the discharge plate 10 are both connected to the buffer spring 8, and the padding plate 9 and the discharge plate 10 are elastically connected to the support 3 through the buffer spring 8, and the support 3 is provided with a slide groove 11 on one side of the discharge plate 10, and a slider 12 is slidably connected in the slide groove 11, and the slider 12 is connected to the discharge plate 10, and the discharge plate 10 is rotatably connected to the support 3 through the slider 12 and the slide groove 11;
[0029] The specific operation is as follows: when conveying materials, the shell material belt can be pushed into the storage groove 205 through the inclined surface of the partition plate 208, and the storage spring 207 is compressed. When the feeding is suspended, the partition plate 208 can be popped out from the storage groove 205 under the action of the storage spring 207, and the metal shell on the material belt is separated and restricted. With the rotation of the cam wheel 211 and the pressure block wheel 212, the cam wheel 211 can first apply force to the folding plate 209, so that the folding plate 209 compresses the lifting spring 210 under the action of the pressure, and slides on the base 204 through the through groove 206, cutting off the material belt and cutting off the connection between the metal shell and the material belt, so as to remove the metal shell. With the rotation of the cam wheel 211, the folding plate 209 rises back under the action of the lifting spring 210 until the cam wheel 211 is out of contact with the folding plate 209, and the pressure block wheel 212 and When the base 204 contacts, the base 204 can be pressed to move in the direction close to the support 3 on the bottom frame 201, and the metal shell is docked to the corresponding terminal on the terminal strip and pressed. When the base 204 moves, the limit block 203 can limit the base 204 through the bottom frame 201 to prevent the base 204 from deflecting during movement. At the same time, the base 204 drives the limit block 203 to stretch the reset spring 202. After the docking is completed, as the pressure block wheel 212 continues to rotate, the reset spring 202 can drive the base 204 to rebound through the limit block 203, so that the base 204 is reset to facilitate subsequent feeding. When feeding again, the new material strip can push out the remaining material strip in the base 204 to avoid affecting feeding and assembly. In summary, when in use, the metal shell can be automatically unloaded and assembled to the terminal material strip during the interval of conveying materials.
[0030] See also Figure 1 and Figures 4 to 6A crossbeam 13 is connected to the top of the chassis 1, and two terminal feeding wheels 14 are arranged at the lower middle part of the crossbeam 13. The terminal feeding wheels 14 on one side are symmetrically connected to the shell feeding wheels 15 on both sides, and the outer sides of the terminal feeding wheels 14 and the shell feeding wheels 15 are connected with an adhesive layer 16, and the adhesive layer 16 is semi-circular. A driving motor 17 is arranged on one side of the terminal feeding wheel 14 on the other side, and the terminal feeding wheels 14 are connected by belts and pulleys. The terminal feeding wheels 14 form a transmission structure with the convex wheel 211 and the briquetting wheel 212 through the belts and pulleys. The crossbeam 13 is symmetrically rotatably connected to the flywheel 18 on the side close to the unloading plate 10, and a connecting rod 19 is connected between the flywheels 18. The connecting rod A connecting rod 20 is rotatably connected to the middle part of 19, and a shifting rod 21 is rotatably connected to the other end of the connecting rod 20. The flywheel 18 is connected to the terminal feeding wheel 14 through a belt and a pulley. A limit frame 22 is arranged outside the shifting rod 21, and a bottom plate 23 is connected to the other end of the shifting rod 21. Hook rods 24 are symmetrically connected to both sides of the bottom plate 23. The shifting rod 21 is slidably connected to the limit frame 22 by snapping, and the limit frame 22 is connected to the cross beam 13. The hook rod 24 is L-shaped. A pressing knife 25 is symmetrically connected to the middle part of the lower surface of the bottom plate 23, and a clamping spring 26 is symmetrically connected to both sides of the lower surface of the bottom plate 23. A clamping plate 27 is connected to the other end of the clamping spring 26, and the clamping plate 27 is elastically connected to the bottom plate 23 through the clamping spring 26.
[0031] The specific operation is as follows. When in use, first place the terminal material strip and the shell material strip on the support 3 and the feeding plate 6 respectively, so that the pad 4 can receive the terminals on the terminal material strip, and then start the driving motor 17. The driving motor 17 can drive the terminal feeding wheel 14 and the shell feeding wheel 15 to rotate, and adhere the material strip through the adhesive layer 16. The semi-circular shape of the adhesive layer 16 allows the material strip to be intermittently fed under the rotation of the terminal feeding wheel 14 and the shell feeding wheel 15, and the scraper 5 and the shovel plate 7 can peel the material strip from the adhesive layer 16 to prevent the material strip from adhering too firmly to the adhesive layer 16 and failing to feed normally. When the terminal feeding wheel 14 rotates, it can The convex wheel 211 and the pressing wheel 212 are driven, and the distribution of the adhesive layer 16 on the terminal feeding wheel 14 and the shell feeding wheel 15 is matched with the convex distribution on the convex wheel 211 and the pressing wheel 212, which can ensure that the feeding process and the material assembly process can be carried out alternately without interfering with each other. During the assembly process, as the bottom frame 201 moves, the bottom frame 201 can compress the buffer spring 8 through the inclined surface of the cushioning plate 9 to prevent the cushioning plate 9 from hindering the movement of the bottom frame 201 and causing the material to be unable to be assembled normally. After the material assembly is completed, the material is fed again, and the assembled part on the terminal material belt can be transported to the unloading plate 10, waiting for subsequent unloading. In summary, when in use, the material can be intermittently conveyed, and it is ensured that the feeding process and the material assembly process can be carried out alternately. When the feeding is stopped, as the flywheel 18 rotates, the connecting rod 19 can drive the shift rod 21 to move downward through the connecting rod 20, so that the bottom plate 23 presses the material on the discharge plate 10 through the pressing plate 27 to ensure that the material is firmly pressed. At the same time, as the bottom plate 23 continues to move, the pressing spring 26 and the buffer spring 8 are compressed, and the pressing knife 25 can cut off the connection between the terminal and the material strip, and remove the material. Then, as the flywheel 18 rotates, the connecting rod 19 drives the shift rod 21 to rise through the connecting rod 20 until the feeding is resumed. Then the flywheel 18 continues to drive the shift rod 21 to rise, so that the bottom plate 23 drives the unloading plate 10 to rise through the hook rod 24, and the side of the unloading plate 10 away from the hook rod 24 is restricted by the slider 12 and the slide groove 11, so that the unloading plate 10 can rotate and tilt on the support 3 with the slider 12 as the rotation center, so as to unload the material after being taken off the belt without affecting the normal transportation of the material. Then the flywheel 18 can drive the shift rod 21 to descend, so that the unloading plate 10 gradually returns to a horizontal state. During the movement of the shift rod 21, the limit frame 22 can limit the shift rod 21 to prevent the shift rod 21 from being tilted. In summary, after the assembly is completed, the material can be automatically unloaded and unloaded.
[0032] In summary, when using the TYPE-C connector accessory assembly molding device, first place the terminal material strip and the shell material strip on the support 3 and the feeding plate 6 respectively, so that the pad 4 can receive the terminals on the terminal material strip, and then start the driving motor 17, the driving motor 17 can drive the terminal feeding wheel 14 and the shell feeding wheel 15 to rotate, and adhere the material strip through the adhesive layer 16, and the semi-circular shape of the adhesive layer 16 allows the material strip to be intermittently fed under the rotation of the terminal feeding wheel 14 and the shell feeding wheel 15, and the scraper 5 and the shovel plate 7 can peel the material strip from the adhesive layer 16 to prevent the material strip from adhering too firmly to the adhesive layer 16 and failing to feed normally, and when the terminal feeding wheel 14 rotates, it can drive the bump wheel 211 and the pressing block Wheel 212, and the distribution of the adhesive layer 16 on the terminal feeding wheel 14 and the shell feeding wheel 15 is matched with the protrusion distribution on the convex wheel 211 and the pressure block wheel 212, which can ensure that the feeding process and the material assembly process can be carried out alternately without interfering with each other. When conveying materials, the shell material belt can be pushed into the receiving groove 205 through the inclined surface of the partition 208, and the receiving spring 207 is compressed. When the feeding is suspended, the partition 208 can be ejected from the receiving groove 205 under the action of the receiving spring 207, and the metal shell on the material belt is separated and restricted. With the rotation of the convex wheel 211 and the pressure block wheel 212, the convex wheel 211 can first apply force to the folding plate 209, so that the folding plate 209 compresses the lifting spring 210 under the action of pressure. The cam wheel 211 rotates, and the folding plate 209 rises up under the action of the lifting spring 210 until the cam wheel 211 is out of contact with the folding plate 209. The folding wheel 212 contacts the base 204, and the base 204 can be pressed to move in the direction close to the support 3 on the bottom frame 201, so that the metal shell is docked with the corresponding terminal on the terminal strip and pressed. When the base 204 moves, the limit block 203 can limit the base 204 through the bottom frame 201 to prevent the base 204 from deflecting during movement. At the same time, the base 204 drives the limit block 203 to pull the reset spring 202 When the material is assembled, the material is fed back to the unloading plate 10, and the unloading plate 10 is stopped ...The connecting rod 19 can drive the shift rod 21 to move downward through the connecting rod 20, so that the bottom plate 23 presses the material on the discharge plate 10 through the pressing plate 27 to ensure that the material is firmly pressed. At the same time, as the bottom plate 23 continues to move, the pressing spring 26 and the buffer spring 8 are compressed, and the pressing knife 25 can cut off the connection between the terminal and the material strip to remove the material. Then, as the flywheel 18 rotates, the connecting rod 19 drives the shift rod 21 to rise through the connecting rod 20 until the feeding is resumed, and then the flywheel 18 continues to drive the shift rod 21 to rise, so that The bottom plate 23 drives the unloading plate 10 to rise through the hook rod 24, and the side of the unloading plate 10 away from the hook rod 24 is restricted by the slider 12 and the slide slot 11, so that the unloading plate 10 can rotate and tilt on the support 3 with the slider 12 as the rotation center, so as to unload the material after being taken off the belt without affecting the normal transportation of the material. Then the flywheel 18 can drive the shift rod 21 to descend, so that the unloading plate 10 gradually returns to a horizontal state. During the movement of the shift rod 21, the limit frame 22 can restrict the shift rod 21 to prevent the shift rod 21 from deflecting.
[0033] The embodiments of the present invention are given for the purpose of illustration and description, and are not intended to be exhaustive or to limit the invention to the disclosed forms. Many modifications and variations will be apparent to those of ordinary skill in the art. The embodiments are selected and described in order to better illustrate the principles and practical applications of the present invention and to enable those of ordinary skill in the art to understand the present invention and thereby design various embodiments with various modifications suitable for specific uses.
Claims
1. A TYPE-C connector accessory assembly molding device, characterized in that: The invention comprises a chassis and an assembly component, wherein the assembly components are symmetrically arranged on both sides of the middle part of the chassis, and the assembly component comprises a bottom frame, a return spring, a limit block, a base, a receiving groove, a through groove, a receiving spring, a partition, a folding plate, a lifting spring, a cam wheel and a folding plate wheel, the bottom frame is symmetrically arranged on both sides of the middle part of the chassis, and the return springs are symmetrically connected to the two sides of the bottom frame, the other end of the return spring is connected to the limit block, and the base is connected between the limit blocks, a receiving groove is provided on the inner side of the base, and a through groove is provided on the upper part of the base, a receiving spring is connected in the receiving groove, and the other end of the receiving spring is connected to the partition, a folding plate is slidably connected in the through groove, and the folding plate is symmetrically connected to the lifting springs on both sides, a cam wheel is arranged above the folding plate, and one side of the cam wheel is connected There is a briquetting wheel, a crossbeam is connected above the chassis, and two terminal feeding wheels are arranged below the middle of the crossbeam, the terminal feeding wheels on one side are symmetrically connected to shell feeding wheels on both sides, and the terminal feeding wheels and the shell feeding wheels are connected with adhesive layers on the outside, and the adhesive layer is semicircular, and a driving motor is arranged on one side of the terminal feeding wheel on the other side, and the terminal feeding wheels are connected by belts and pulleys, and the terminal feeding wheels form a transmission structure with the cam wheel and the briquetting wheel through the belts and pulleys, the crossbeam is symmetrically rotatably connected to the flywheel on the side close to the unloading plate, and a connecting rod is connected between the flywheels, a connecting rod is rotatably connected to the middle of the connecting rod, and a shift rod is rotatably connected to the other end of the connecting rod, and the flywheel is connected to the terminal feeding wheel through a belt and a pulley.
2. A TYPE-C connector accessory assembly and molding device according to claim 1, characterized in that: The limit block is elastically connected to the bottom frame through a reset spring, and the base is slidably connected to the bottom frame through the limit block. The partition and the folding plate are elastically connected to the base through a storage spring and a lifting spring respectively, and the partition and the folding plate are slidably connected to the base through a storage groove and a through groove respectively.
3. A TYPE-C connector accessory assembly and molding device according to claim 2, characterized in that: A support is connected to the middle of the chassis, and a pad is symmetrically connected to one side of the support. A scraper is arranged above the pad. A feeding plate is symmetrically connected to one side of the chassis, and a shovel plate is connected to the feeding plate.
4. A TYPE-C connector accessory assembly and molding device according to claim 3, characterized in that: Buffer springs are symmetrically connected to both sides of the support, and a padding plate is symmetrically arranged in the middle of the support. A discharge plate is symmetrically arranged on the other side of the support, and the padding plate and the discharge plate are both connected to the buffer springs. The padding plate and the discharge plate are elastically connected to the support through the buffer springs.
5. A TYPE-C connector accessory assembly and molding device according to claim 4, characterized in that: The support is provided with a slide groove on one side of the discharge plate, and a slider is slidably engaged in the slide groove, the slider is connected to the discharge plate, and the discharge plate is rotatably connected to the support through the slider and the slide groove.
6. A TYPE-C connector accessory assembly and molding device according to claim 5, characterized in that: A limit frame is arranged outside the shift rod, and the other end of the shift rod is connected to a bottom plate, hook rods are symmetrically connected to both sides of the bottom plate, the shift rod is slidably connected to the limit frame, and the limit frame is connected to the cross beam, and the hook rod is L-shaped.
7. A TYPE-C connector accessory assembly and molding device according to claim 6, characterized in that: A pressing knife is symmetrically connected to the middle of the lower surface of the bottom plate, and compression springs are symmetrically connected to both sides of the lower surface of the bottom plate. The other end of the compression spring is connected to a compression plate, and the compression plate is elastically connected to the bottom plate through the compression spring.
Citation Information
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