Charging wire injection molding equipment

By designing an installation and clamping device for the charging cable injection molding equipment, the feeding and injection molding process of the charging cable is automated, solving the problem of time-consuming manual operation, improving production efficiency and reducing costs.

CN224197186UActive Publication Date: 2026-05-05SHENZHEN JISHUANG AUTOMATION TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHENZHEN JISHUANG AUTOMATION TECH CO LTD
Filing Date
2025-05-06
Publication Date
2026-05-05

AI Technical Summary

Technical Problem

In the current injection molding process for charging cables, each cable needs to be manually placed into the mold one by one, which is time-consuming and inefficient.

Method used

A charging cable injection molding machine has been designed, including a frame, a mounting device, a clamping device, and an injection molding device. The clamping device automatically places the charging cable on the mounting frame into the injection position, and the injection molding device performs injection molding, reducing manual operation.

Benefits of technology

It improves the efficiency of charging cable injection molding, reduces labor costs, and enables automated production.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model is suitable for the technical field of injection molding equipment, and provides charging wire injection molding equipment which comprises a mounting table, a charging wire and a charging wire, the mounting device comprises a mounting frame, and the mounting frame is used for placing a plurality of charging wires; the clamping device comprises a first driving part and a group of clamping parts, and the injection molding device is used for injection molding of an external glue layer of the charging wire on the mounting frame. According to the utility model, the rack for mounting the mounting device, the clamping device and the injection molding device is arranged, and the mounting rack on the mounting device is used for mounting a plurality of charging wires; a first driving piece of a clamping device drives a clamping piece to move, so that the clamping piece clamps a mounting frame and places a charging wire mounted on the mounting frame on an injection molding position of an injection molding assembly; and a plurality of charging wires on the mounting frame are subjected to injection molding through the injection molding device, so that the injection molding efficiency of the charging wires is improved, and the manual operation cost is reduced.
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Description

Technical Field

[0001] This utility model belongs to the field of injection molding equipment technology, and in particular relates to a charging cable injection molding equipment. Background Technology

[0002] With the continuous development of smart terminal technology, the application range of charging cables is becoming wider and wider. Most mobile phone charging cables and computer charging cables are double-ended charging cables. Their function is to connect mobile devices and computers to achieve data transmission or charging purposes. Therefore, the precision requirements for charging cable connectors are very high. The existing production process of charging cable connectors is usually carried out through injection molds.

[0003] In existing technologies, most charging cables require workers to place the charging cable to be injected into a mold cavity that matches the connector of the charging cable during the actual injection molding process. Molten plastic is then poured into the mold and allowed to solidify. After molding, the mold is opened and the charging cable is removed after cooling. Throughout the entire injection molding process, the charging cables need to be placed into the mold one by one manually. The loading and unloading steps are all done manually, and the injection molding equipment performs the injection molding one by one. This results in high labor time costs and slow efficiency for the entire process. Utility Model Content

[0004] The purpose of this utility model embodiment is to provide a charging cable injection molding equipment, which aims to solve the problem that in the actual injection molding process of most charging cables, workers need to place the charging cable to be injected into the mold cavity that matches the connector of the charging cable, pour molten plastic into the mold and wait for it to form. After the molding is completed, the mold is opened and the charging cable is removed after it cools down. In the entire injection molding process, the charging cable needs to be placed into the mold one by one manually. The loading and unloading steps are all done manually, and the injection molding equipment performs the injection molding one by one. This makes the entire process labor-intensive and inefficient.

[0005] This utility model embodiment is implemented as follows: a charging cable injection molding device, the charging cable injection molding device comprising:

[0006] The frame includes a rotary table and a mounting table. The rotary table is located outside the mounting table. The rotary table is used for mounting the mounting device. The mounting table is used for mounting the clamping device and the injection molding device.

[0007] The mounting device includes a mounting frame for holding a plurality of charging cables;

[0008] A clamping device, comprising a first driving member and a set of clamping members, wherein the first driving member is mounted on a mounting table and connected to the clamping members, the first driving member is used to drive the clamping members to move, and the clamping members are used to clamp the mounting bracket so as to place the mounting bracket on the injection position of the injection molding device.

[0009] The injection molding device is used to injection mold the outer adhesive layer of the charging cable on the mounting bracket.

[0010] Preferably, the mounting device further includes a placement platform, which is mounted on a rotating platform. The placement platform is used to place the mounting frame. The mounting frame includes a positioning component and a mounting component. The positioning component is connected to the back of the mounting component. The mounting component is rod-shaped. The back of the mounting component is provided with a plurality of first mounting holes. The first mounting holes are used to install the head of the charging cable. The top surface of the mounting component is provided with a connecting groove for connecting to the injection molding device.

[0011] Preferably, the positioning member is used to position the wire portion of the charging cable. The positioning member is in the shape of a bent plate and includes a connecting portion and a mounting portion. The connecting portion is connected to the back of the mounting member. The top surface of the mounting portion is flush with the top surface of the mounting member. The top surface of the mounting portion is provided with a plurality of first positioning grooves and a plurality of clamping plates. Each first positioning groove corresponds to each first mounting hole and each set of clamping plates. The first positioning grooves are used to position the wire portion of the charging cable, and the clamping plates are used to clamp the charging cable to prevent the charging cable from moving.

[0012] Preferably, the clamping device further includes a mounting bracket, which is mounted on a mounting platform. The mounting bracket is used to mount the clamping component and the first driving component. The mounting bracket includes a first mounting plate and a second mounting plate. The first mounting plate is mounted on the mounting platform and has a positioning hole for positioning the first driving component. The second mounting plate is located above the first mounting plate and is used to mount the clamping component and the first driving component.

[0013] Preferably, the first driving member includes a first power member and a second power member. The first power member is connected to the back of the second mounting plate through a first transmission member. The first transmission member is sleeved in the positioning hole of the first mounting plate. The first transmission member is used to drive the second mounting plate and the clamping member to move in the vertical direction.

[0014] The second power component is connected to the front of the second mounting plate via a connecting bracket, and the output end of the second power component is connected to the clamping component to facilitate moving the clamping component along the horizontal direction.

[0015] Preferably, a set of clamping components is connected to a first driving component via a first connecting plate. The clamping components include a first guide, a second driving component, and a set of clamping blocks. The first connecting plate is used for mounting the first guide and the second driving component, and is connected to the output end of a second power component. The first guide includes a base and a guide rail. The base is connected to the front of a second mounting plate, the guide rail is slidably connected to the base, and the guide rail is connected to the top surface of the first connecting plate. The second driving component is mounted on the bottom surface of the first connecting plate and is connected to a set of clamping blocks. The second driving component is used to drive the set of clamping blocks to move in the opposite direction, and the set of clamping blocks is used to clamp the mounting frame.

[0016] Preferably, the injection molding device includes a connecting bracket, an injection assembly, and a mold assembly. The connecting bracket is mounted on a mounting platform and is used for mounting the injection assembly and the mold assembly. The upper connecting plate of the connecting bracket is connected to the injection barrel of the injection assembly. The injection assembly is provided with a third driving component mounted on the top surface of the upper connecting plate. The third driving component is used to push the molten raw material in the injection barrel.

[0017] Preferably, the mold assembly includes a positioning mold and a moving mold. The positioning mold is mounted on the back of the upper connecting plate via several connecting rods. The top surface of the positioning mold is provided with a first connecting hole for connecting with an injection cylinder. The back of the positioning mold is provided with a second positioning groove, several first positioning cavities, and several connecting protrusions. The second positioning groove is used to position the mounting bracket. The several first positioning cavities are arranged side by side on both sides of the second positioning groove. The first positioning cavities are used to position the charging cable. The connecting protrusions are used to connect with the moving mold.

[0018] Preferably, the top surface of the movable mold is provided with a placement groove, a plurality of second positioning cavities, and a plurality of second connecting holes. The placement groove is used to place the mounting bracket. The plurality of second positioning cavities are arranged side by side and located on both sides of the placement groove. The second positioning cavities are used to position the charging cable on the mounting bracket. The second connecting holes are used to connect with the connecting protrusion of the positioning mold. The bottom surface of the movable mold is connected to the lower connecting plate of the connecting bracket through a fourth driving member. The movable mold is located above the top surface of the mounting platform. The output end of the fourth driving member is connected to the bottom surface of the movable mold. The fourth driving member is used to drive the movable mold to move so as to close with the positioning mold and position the charging cable in the mold cavity.

[0019] This utility model provides a charging cable injection molding equipment. The utility model is provided with a frame for mounting a mounting device, a clamping device, and an injection molding device. The mounting device has a mounting frame for mounting a plurality of charging cables. The clamping device is driven by a first driving member to move the clamping member so that the clamping member clamps the mounting frame and the charging cables mounted on the mounting frame and places them on the injection position of the injection molding component. Then, the injection molding device injection molds the plurality of charging cables on the mounting frame, thereby improving the efficiency of charging cable injection molding and reducing the cost of manual operation. Attached Figure Description

[0020] Figure 1 A three-dimensional structural diagram of a charging cable injection molding device provided for an embodiment of this utility model;

[0021] Figure 2 A schematic diagram of the injection molding device in a charging cable injection molding equipment provided for an embodiment of this utility model;

[0022] Figure 3 A schematic diagram of the installation device and clamping device in a charging cable injection molding equipment provided in this embodiment of the utility model;

[0023] Figure 4 A schematic diagram of the installation device in a charging cable injection molding equipment provided for an embodiment of this utility model;

[0024] Figure 5 A schematic diagram of the clamping device in a charging cable injection molding equipment provided for an embodiment of this utility model;

[0025] Figure 6 A schematic diagram of the positioning mold in a charging cable injection molding device provided for an embodiment of this utility model;

[0026] Figure 7 This is a schematic diagram of the structure of a moving mold in a charging cable injection molding device provided for an embodiment of the present utility model.

[0027] In the attached diagram: 1. Frame; 11. Rotary table; 12. Mounting platform; 2. Mounting device; 21. Mounting bracket; 211. Mounting component; 2111. First mounting hole; 2112. Connecting groove; 212. Positioning component; 2121. First positioning groove; 2122. Clamping plate; 22. Placement platform; 3. Clamping device; 31. First driving component; 311. First power component; 312. Second power component; 32. Clamping component; 321. First connecting plate; 322. First guide component; 3221. Guide rail; 3222. Base; 323. Second driving component; 324. Clamping block; 33. Mounting bracket 331. First mounting plate; 332. Second mounting plate; 4. Injection molding device; 41. Injection assembly; 411. Injection barrel; 412. Third drive component; 42. Mold assembly; 421. Positioning mold; 4211. Connecting rod; 4212. Second positioning groove; 4213. First positioning cavity; 4214. Connecting protrusion; 4215. Through hole; 422. Moving mold; 4221. Fourth drive component; 4222. Second positioning cavity; 4223. Placement groove; 4224. Second connecting hole; 43. Connecting bracket; 431. Upper connecting plate; 432. Support column; 433. Lower connecting plate. Detailed Implementation

[0028] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.

[0029] The specific implementation of this utility model will be described in detail below with reference to specific embodiments.

[0030] like Figure 1 The diagram shown is a structural diagram of a charging cable injection molding equipment provided in an embodiment of the present utility model, including: a frame 1, the frame 1 including a rotating table 11 and a mounting table 12, the rotating table 11 being located outside the mounting table 12, the rotating table 11 being used for mounting a mounting device 2, and the mounting table 12 being used for mounting a clamping device 3 and an injection molding device 4.

[0031] Installation device 2, the installation device 2 includes a mounting frame 21, the mounting frame 21 is used to hold a plurality of charging cables;

[0032] The clamping device 3 includes a first driving member 31 and a set of clamping members 32. The first driving member 31 is mounted on the mounting platform 12 and is connected to the clamping members 32. The first driving member 31 is used to drive the clamping members 32 to move. The clamping members 32 are used to clamp the mounting bracket 21 so as to place the mounting bracket 21 on the injection position of the injection molding device 4.

[0033] Injection molding device 4 is used to injection mold the outer adhesive layer of the charging cable on the mounting bracket 21.

[0034] In this embodiment of the invention, preferably, the charging cable injection molding equipment is used to injection mold the protective rubber layer on the outside of the charging head of a single-headed, double-headed, or multi-headed charging cable. The charging cable injection molding equipment mainly includes a mounting platform 12, mounting devices 2, clamping devices 3, and injection molding devices 4. The injection molding devices 4 and clamping devices 3 can be mounted on the mounting platform 12 and are located in the middle layer of the entire charging cable injection molding equipment. Multiple mounting devices 2 can be provided as needed and evenly distributed on the rotating table 11, using program-controlled rotation to sequentially convey the charging cable. The mounting device 2 rotates to the injection position of the injection molding device 4. The rotary table 11 is located outside the mounting platform 12 and rotates around the mounting platform 12. The mounting device 2 includes a mounting bracket 21, which can be used to mount several charging cables. The clamping device 3 includes a first driving member 31 and a set of clamping members 32. The first driving member 31 is connected to a set of clamping members 32 respectively. The first driving member 31 drives the set of clamping members 32 to move, which can drive the clamping members 32 to move in the horizontal and / or vertical directions to move the clamping members 32 closer to the mounting device. The mounting bracket 21 of position 2 allows the clamping member 32 to clamp the mounting bracket 21. Then, the first driving member 31 drives the clamping member 32 and the mounting bracket 21 clamped by the clamping member 32 to be placed on the injection position of the injection molding device 4. After the injection molding device 4 injection molds the charging cable on the mounting bracket 21 to form a complete outer protective rubber layer, the first driving member 31 moves the clamping member 32 and the mounting bracket 21 clamped by the clamping member 32 out of the injection position, thus completing the entire charging cable injection molding process. The mounting bracket 21 can install several charging cables at the same time, thereby improving the injection molding efficiency and utilizing the clamping... The first driving member 31 of the device 3 drives the clamping member 32 to move, and the wire portion of the charging cable with a certain length can hang on the outside of the frame 1 to avoid the charging cable portion from getting tangled during the rotation of the rotary table 11, which would affect the injection molding effect. It also makes it easier for the clamping member 32 to clamp the mounting frame 21 and place it on the injection molding position. After injection molding, the clamping member 31 drives the clamping member 32 to move the mounting frame 21 out of the injection molding position. The entire processing reduces labor costs and improves efficiency. At the same time, the simultaneous injection molding and shaping of several charging cables can also improve efficiency.

[0035] In one embodiment of this utility model, a frame 1 is provided for mounting the mounting device 2, the clamping device 3, and the injection molding device 4. The mounting bracket 21 on the mounting device 2 is used to mount a plurality of charging cables. The clamping device 3 moves the clamping member 32 through the first driving member 31, so that the clamping member 32 clamps the mounting bracket 21 and the charging cables mounted on the mounting bracket 21 and places them on the injection position of the injection molding component. Then, the injection molding device 4 injection molds the plurality of charging cables on the mounting bracket 21, thereby improving the efficiency of the injection molding of the charging cables and reducing the cost of manual operation.

[0036] like Figure 1-4 As shown, in a preferred embodiment of the present invention, the mounting device 2 further includes a placement platform 22, which is mounted on a rotating table 11. The placement platform 22 is used to place the mounting frame 21. The mounting frame 21 includes a positioning member 212 and a mounting member 211. The positioning member 212 is connected to the back of the mounting member 211. The mounting member 211 is rod-shaped. The back of the mounting member 211 is provided with a plurality of first mounting holes 2111. The first mounting holes 2111 are used to install the head of the charging cable. The top surface of the mounting member 211 is provided with a connecting groove 2112 for connecting with the injection molding device 4.

[0037] In this embodiment of the present invention, preferably, the mounting device 2 mounted on the mounting platform 12 further includes a placement platform 22. The placement platform 22 is mounted on the table surface of the rotating table 11. The table surface of the placement platform 22 is used to place the mounting frame 21. The placement platform 22 can be a rectangular block with a certain thickness. The mounting frame 21 placed on the placement platform 22 includes a positioning frame and a mounting component 211. The back of the rod-shaped mounting component 211 is connected to the positioning component 212. The back of the rod-shaped mounting component 211 is also provided with a plurality of first mounting holes 2111. The first mounting holes 2111 are used to insert the head of the charging cable. A connecting groove 2112 connected to the injection molding device 4 can be provided on the top of the mounting component 211. The connecting groove 2112 can be a set of strip grooves with a certain length.

[0038] like Figure 4 As shown in the preferred embodiment of this utility model, the positioning member 212 is used to position the wire part of the charging cable. The positioning member 212 is in the shape of a bent plate. The positioning member 212 includes a connecting part and a mounting part. The connecting part is connected to the back of the mounting member 211. The top surface of the mounting part is flush with the top surface of the mounting member 211. The top surface of the mounting part is provided with a plurality of first positioning grooves 2121 and a plurality of clamping plates 2122. Each first positioning groove 2121 corresponds to each first mounting hole 2111 and each set of clamping plates 2122. The first positioning grooves 2121 are used to position the wire part of the charging cable, and the clamping plates 2122 are used to clamp the charging cable to prevent the charging cable from moving.

[0039] In this embodiment of the present invention, preferably, the positioning member 212 connected to the back of the mounting member 211 can be a bent plate. The positioning member 212 is used to position the wire portion of the charging cable. The positioning member 212 mainly includes a connecting part and a mounting part. The connecting part can be an L-shaped plate. The connecting part is provided with a set of parallel arrangements and is connected to the mounting part respectively. The two connecting parts can be mirror images. The mounting part can be an L-shaped plate. The two sides of the mounting part are connected to the two connecting parts respectively. The bottom surface of the mounting part is in contact with the table surface of the placement platform 22. A plurality of first positioning grooves 2121 and a plurality of clamping plates 2122 are provided on the top surface of the mounting part. The plurality of first positioning grooves 2121 are arranged in parallel and each first positioning groove 2121 corresponds to each set of clamping plates 2122 and each first mounting hole 2111. When the head of the charging cable is inserted into the first mounting hole 2111, the wire portion of the charging cable is positioned in the first positioning groove 2121 and clamped by a set of clamping plates 2122, thereby completing the installation of the entire charging cable.

[0040] like Figure 1-5 As shown, in a preferred embodiment of the present invention, the clamping device 3 further includes a mounting bracket 33, which is mounted on the mounting platform 12. The mounting bracket 33 is used to mount the clamping component 32 and the first driving component 31. The mounting bracket 33 includes a first mounting plate 331 and a second mounting plate 332. The first mounting plate 331 is mounted on the mounting platform 12 and has a positioning hole for positioning the first driving component 31. The second mounting plate 332 is located above the first mounting plate 331 and is used to mount the clamping component 32 and the first driving component 31.

[0041] In a preferred embodiment of this utility model, the clamping device 3 mounted on the mounting platform 12 further includes a mounting bracket 33. The mounting bracket 33 includes a first mounting plate 331 and a second mounting plate 332. The first mounting plate 331 is mounted on the mounting platform 12. The first mounting plate 331 and the second mounting plate 332 can be in a vertical array. The second mounting plate 332 is located directly above the first mounting plate 331. The first mounting plate 331 is provided with a positioning hole for positioning the first driving member 31. The back side of the second mounting plate 332 is connected to the first driving member 31. The top surface of the second mounting plate 332 is used to mount the clamping member 32.

[0042] like Figure 5 As shown, in a preferred embodiment of the present utility model, the first driving member 31 includes a first power member 311 and a second power member 312. The first power member 311 is connected to the back of the second mounting plate 332 through a first transmission member. The first transmission member is sleeved in the positioning hole of the first mounting plate 331. The first transmission member is used to drive the second mounting plate 332 and the clamping member 32 to move in the vertical direction.

[0043] The second power component 312 is connected to the front of the second mounting plate 332 via a connecting bracket, and the output end of the second power component 312 is connected to the clamping component 32 so as to drive the clamping component 32 to move in the horizontal direction.

[0044] In this embodiment of the present invention, preferably, the first driving member 31 for moving the clamping member 32 mainly includes a first power member 311 and a second power member 312. The first power member 311 can be installed on the bottom surface of the mounting platform 12, and the output end of the first power member 311 is connected to the first transmission member. The first transmission member passes through the positioning hole of the first mounting plate 331 and is connected to the back of the second mounting plate 332 so as to drive the second mounting plate 332 to move in the vertical direction. The second power member 312 is connected to the front of the second mounting plate 332 through a bent plate-shaped connecting frame, and the output end of the second power member 312 can be connected to the clamping member 32 so as to drive the clamping member 32 to move in the horizontal direction. The first power member 311 drives the second mounting plate 332, the second power member 312 installed on the second mounting plate 332, and the clamping member 32 connected to the second power member 312 to move in the vertical direction.

[0045] like Figure 5 As shown, in a preferred embodiment of this utility model, a set of clamping components 32 are connected to a first driving component 31 via a first connecting plate 321. The clamping component 32 includes a first guide component 322, a second driving component 323, and a set of clamping blocks 324. The first connecting plate 321 is used for mounting the first guide component 322 and the second driving component 323, and is connected to the output end of the second power component 312. The first guide component 322 includes a base 3222 and a guide rail 3221. The base 3222 is connected to the front of the second mounting plate 332, and the guide rail 3221 is slidably connected to the base 3222. The guide rail 3221 is connected to the top surface of the first connecting plate 321. The second driving component 323 is mounted on the bottom surface of the first connecting plate 321 and is connected to a set of clamping blocks 324. The second driving component 323 is used to drive the set of clamping blocks 324 to move in the opposite direction, and the set of clamping blocks 324 is used to clamp the mounting frame 21.

[0046] In this embodiment of the present invention, preferably, a set of clamping members 32 are respectively installed on the first connecting plate 321 and connected to the second power member 312 of the first driving member 31 through the first connecting plate 321. The set of clamping members 32 can be used to clamp the two ends of the mounting bracket 21 so that the mounting bracket 21 can be clamped and placed on the injection position of the injection molding device 4. The center position of the first connecting plate 321 can be connected to the output end of the second power member 312. The set of clamping members 32 are respectively installed on the two ends of the first connecting plate 321. The clamping members 32 mainly include a first guide member 322, a second driving member 323 and a set of clamping blocks 324. The first guide member 322 is installed on the front side of the second mounting plate 332 using a base 3222, and the guide rail 3221 is embedded in the base 3222. The first connecting plate 321 and the base 3222 are slidably connected. One end of the guide rail 3221 is connected to the second driving member 323 to guide the first connecting plate 321, the guide rail 3221 connected to the first connecting plate 321, and the second driving member 323 to move along the length direction of the guide rail 3221. The output end of the second driving member 323 connected to the first connecting plate 321 and the guide rail 3221 is mainly connected to a set of clamping blocks 324. The second driving member 323 drives the two clamping blocks 324 to move backward. The moving direction of the two clamping blocks 324 is perpendicular to the length direction of the mounting bracket 21 so that the two clamping blocks 324 can clamp the top and bottom surfaces of the mounting bracket 21. The second driving member 323 drives the clamping blocks 324 to move so that the clamping blocks 324 can be permanently fixed to clamp the mounting bracket 21.

[0047] like Figure 1-2 As shown, in a preferred embodiment of the present invention, the injection molding device 4 includes a connecting bracket 43, an injection assembly 41, and a mold assembly 42. The connecting bracket 43 is mounted on the mounting platform 12 and is used for mounting the injection assembly 41 and the mold assembly 42. The upper connecting plate 431 of the connecting bracket 43 is connected to the injection cylinder 411 of the injection assembly 41. The injection assembly 41 is provided with a third driving member 412 mounted on the top surface of the upper connecting plate 431. The third driving member 412 is used to push the molten raw material in the injection cylinder 411.

[0048] In this embodiment of the present invention, preferably, the injection molding device 4 installed on the mounting platform 12 mainly includes a connecting bracket 43, an injection assembly 41, and a mold assembly 42. The injection assembly 41 and the mold assembly 42 are installed using the connecting bracket 43. The connecting bracket can be composed of an upper connecting plate 431, a lower connecting plate 433, and several support columns 432. The support columns 432 are connected between the upper connecting plate 431 and the lower connecting plate 433. The upper connecting plate 431 is connected to the injection cylinder 411 of the injection assembly 41. The injection cylinder 411 can be inserted into the upper connecting plate 431 with the injection cylinder 411 facing the lower connecting plate 433. A third driving member 412 is provided on the top surface of the upper connecting plate 431 so as to push the molten raw material in the injection cylinder 411 into the mold assembly 42 using the third driving member 412.

[0049] like Figure 1-7 As shown, in a preferred embodiment of the present invention, the mold assembly 42 includes a positioning mold 421 and a moving mold 422. The positioning mold 421 is mounted on the back of the upper connecting plate 431 via several connecting rods 4211. The top surface of the positioning mold 421 is provided with a first connecting hole for connecting with the injection cylinder 411. The back of the positioning mold 421 is provided with a second positioning groove 4212, several first positioning cavities 4213, and several connecting protrusions 4214. The second positioning groove 4212 is used to position the mounting bracket 21. The several first positioning cavities 4213 are arranged side by side and located on both sides of the second positioning groove 4212. The first positioning cavities 4213 are used to position the charging cable. The connecting protrusions 4214 are used to connect with the moving mold 422.

[0050] In this embodiment of the present invention, preferably, the mold assembly 42 for forming the mold cavity mainly includes a positioning mold 421 and a moving mold 422. The top surface of the positioning mold 421 is mounted on the back of the upper connecting plate 431 using several connecting rods 4211. A first connecting hole for connecting to the end of the injection cylinder 411 is provided on the top surface of the positioning mold 421 so that the raw material molten inside the injection cylinder 411 can be injected into the mold assembly 42. A second positioning groove 4212 for positioning the mounting bracket 21 is provided on the back of the positioning mold 421. A mounting bracket 21 can also be provided on the groove wall of the second positioning groove 4212 for positioning the mounting bracket 21. The through hole 4215 corresponds to the position of the connecting groove 2112 on the upper part. The through hole 4215 is connected to the connecting groove 2112. After the molten raw material is injected into the mold cavity after the positioning mold 421 and the moving mold 422 are closed, the first connecting hole is connected to the first positioning cavity 4213 on the back of the positioning mold 421 to facilitate the external injection molding of the protective layer of the charging cable. Several first positioning cavities 4213 are arranged side by side and located on both sides of the second positioning groove 4212. The charging cable is positioned by the first positioning cavity 4213, and a connecting protrusion 4214 is provided to connect with the moving mold 422 so that the positioning mold 421 and the moving mold 422 are completely connected when they are closed.

[0051] like Figure 1-7 As shown, in a preferred embodiment of this utility model, the top surface of the movable mold 422 is provided with a placement groove 4223, a plurality of second positioning cavities 4222, and a plurality of second connecting holes 4224. The placement groove 4223 is used to place the mounting bracket 21. The plurality of second positioning cavities 4222 are arranged side by side and located on both sides of the placement groove 4223. The second positioning cavities 4222 are used to position the charging cable on the mounting bracket 21. The second connecting holes 4224 are used to connect with the connecting protrusion 4214 of the positioning mold 421. The bottom surface of the movable mold 422 is connected to the lower connecting plate 433 of the connecting bracket through a fourth driving member 4221. The movable mold 422 is located above the top surface of the mounting platform 12. The output end of the fourth driving member 4221 is connected to the bottom surface of the movable mold 422. The fourth driving member 4221 is used to drive the movable mold 422 to move so as to close with the positioning mold 421 to position the charging cable in the mold cavity.

[0052] In this embodiment of the present invention, preferably, the top surface of the movable mold 422 may be provided with a placement groove 4223 for placing the mounting bracket 21, so that the clamping member 32 can place the clamped mounting bracket 21 and the charging cable on the movable mold 422, so that the charging cable is positioned in the second positioning cavity 4222, and the provided second connecting hole 4224 allows the connecting protrusion 4214 on the positioning mold 421 to be inserted into the second connecting hole 4224 when the mold is closed, so that the mold is completely closed. The movable mold 4222 is provided with a fourth driving member 4221 on the bottom surface, and the fourth driving member 4221 is connected to the lower connecting plate 433 of the connecting bracket 43. The lower connecting plate 433 may be located below the bottom surface of the mounting platform 12. The fourth driving member 4221 drives the movable mold 422 to move toward the positioning mold 421, so that the positioning mold 421 and the movable mold 422 form a complete mold cavity to realize the injection molding of the outer protective layer of the charging cable.

[0053] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A charging cable injection molding equipment, characterized in that, The charging cable injection molding equipment includes: The frame includes a rotary table and a mounting table. The rotary table is located outside the mounting table. The rotary table is used for mounting the mounting device. The mounting table is used for mounting the clamping device and the injection molding device. The mounting device includes a mounting frame for holding a plurality of charging cables; A clamping device, comprising a first driving member and a set of clamping members, wherein the first driving member is mounted on a mounting table and connected to the clamping members, the first driving member is used to drive the clamping members to move, and the clamping members are used to clamp the mounting bracket so as to place the mounting bracket on the injection position of the injection molding device. The injection molding device is used to injection mold the outer adhesive layer of the charging cable on the mounting bracket.

2. The charging cable injection molding equipment according to claim 1, characterized in that, The installation device further includes a placement platform, which is mounted on a rotating platform. The placement platform is used to place the mounting frame. The mounting frame includes a positioning component and a mounting component. The positioning component is connected to the back of the mounting component. The mounting component is rod-shaped. The back of the mounting component is provided with a plurality of first mounting holes. The first mounting holes are used to install the head of the charging cable. The top surface of the mounting component is provided with a connecting groove for connecting with an injection molding device.

3. The charging cable injection molding equipment according to claim 2, characterized in that, The positioning element is used to position the wire portion of the charging cable. The positioning element is in the shape of a bent plate and includes a connecting part and a mounting part. The connecting part is connected to the back of the mounting element. The top surface of the mounting part is flush with the top surface of the mounting element. The top surface of the mounting part is provided with a plurality of first positioning grooves and a plurality of clamping plates. Each first positioning groove corresponds to each first mounting hole and each set of clamping plates. The first positioning grooves are used to position the wire portion of the charging cable, and the clamping plates are used to clamp the charging cable to prevent the charging cable from moving.

4. The charging cable injection molding equipment according to claim 1, characterized in that, The clamping device further includes a mounting bracket, which is mounted on a mounting platform. The mounting bracket is used to mount the clamping component and the first driving component. The mounting bracket includes a first mounting plate and a second mounting plate. The first mounting plate is mounted on the mounting platform and has a positioning hole for positioning the first driving component. The second mounting plate is located above the first mounting plate and is used to mount the clamping component and the first driving component.

5. The charging cable injection molding equipment according to claim 4, characterized in that, The first driving component includes a first power component and a second power component. The first power component is connected to the back of the second mounting plate through a first transmission component. The first transmission component is fitted into the positioning hole of the first mounting plate. The first transmission component is used to drive the second mounting plate and the clamping component to move in the vertical direction. The second power component is connected to the front of the second mounting plate via a connecting bracket, and the output end of the second power component is connected to the clamping component to facilitate moving the clamping component along the horizontal direction.

6. The charging cable injection molding equipment according to claim 5, characterized in that, A set of clamping components is connected to a first driving component via a first connecting plate. The clamping components include a first guide, a second driving component, and a set of clamping blocks. The first connecting plate is used for mounting the first guide and the second driving component, and is connected to the output end of a second power component. The first guide includes a base and a guide rail. The base is connected to the front of a second mounting plate, the guide rail is slidably connected to the base, and the guide rail is connected to the top surface of the first connecting plate. The second driving component is mounted on the bottom surface of the first connecting plate and is connected to a set of clamping blocks. The second driving component is used to drive the set of clamping blocks to move in the opposite direction, and the set of clamping blocks is used to clamp the mounting frame.

7. The charging cable injection molding equipment according to claim 1, characterized in that, The injection molding device includes a connecting bracket, an injection assembly, and a mold assembly. The connecting bracket is mounted on a mounting platform and is used for mounting the injection assembly and the mold assembly. The upper connecting plate of the connecting bracket is connected to the injection barrel of the injection assembly. The injection assembly is provided with a third driving component mounted on the top surface of the upper connecting plate. The third driving component is used to push the molten raw material in the injection barrel.

8. The charging cable injection molding equipment according to claim 7, characterized in that, The mold assembly includes a positioning mold and a moving mold. The positioning mold is mounted on the back of the upper connecting plate via several connecting rods. The top surface of the positioning mold is provided with a first connecting hole for connecting with an injection cylinder. The back of the positioning mold is provided with a second positioning groove, several first positioning cavities, and several connecting protrusions. The second positioning groove is used to position the mounting bracket. The several first positioning cavities are arranged side by side on both sides of the second positioning groove. The first positioning cavities are used to position the charging cable. The connecting protrusions are used to connect with the moving mold.

9. The charging cable injection molding equipment according to claim 8, characterized in that, The top surface of the movable mold is provided with a placement groove, several second positioning cavities, and several second connecting holes. The placement groove is used to place the mounting bracket. The several second positioning cavities are arranged side by side on both sides of the placement groove. The second positioning cavities are used to position the charging cable on the mounting bracket. The second connecting holes are used to connect with the connecting protrusion of the positioning mold. The bottom surface of the movable mold is connected to the lower connecting plate of the connecting bracket through a fourth driving component. The movable mold is located above the top surface of the mounting platform. The output end of the fourth driving component is connected to the bottom surface of the movable mold. The fourth driving component is used to drive the movable mold to move so as to close with the positioning mold and position the charging cable in the mold cavity.