A data connection line injection molding apparatus

By introducing automated bottom mold injection components, outer mold injection components, and moving components into the data connection line injection molding machine, the problems of mold core demolding danger and low transfer efficiency are solved, and safe and efficient data connection line processing is achieved.

CN116079987BActive Publication Date: 2025-11-25TIANXUN ELECTRONIC YANTAI CO LTD
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Patent Information

Application Number
CN202310080566.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-01-31
Publication Date
2025-11-25
Estimated Expiration
2043-01-31

AI Technical Summary

Technical Problem

The existing data connection line poses a risk of manual operation during the mold core demolding process of the injection molding machine, and the transfer efficiency of the mold core between different injection molding machines is low, which affects production efficiency.

Method used

It adopts a bottom mold injection assembly, an outer mold injection assembly, and a moving assembly. The upper mold drives the mold core to engage in the groove of the lower mold. Combined with a reset component and a drive source, the mold core can be automatically demolded and transferred. The winding assembly facilitates the winding and transfer of data connection cables.

Benefits of technology

It improves the safety and production efficiency of mold core demolding, reduces manual operation, and enables efficient transfer of mold cores between different injection molding machines and convenient processing of data connection lines.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a data connection line injection molding equipment, which comprises a bottom mold injection assembly, an outer mold injection assembly and a moving assembly; the bottom mold injection assembly comprises an upper mold and a lower mold, the upper mold is matched with the lower mold, and the bottom mold injection assembly is used for injection molding of the bottom mold; the outer mold injection assembly is arranged side by side with the bottom mold injection assembly, and the outer mold injection assembly is used for injection molding of the outer mold; the moving assembly comprises a supporting block, a moving rod is slidably arranged on the supporting block, a mold core is slidably arranged on the moving rod, and a data connection line is inserted on the mold core; the lower mold is provided with a groove, and the mold core is in clamping connection with the groove. The application can facilitate demolding of the mold core and facilitate transfer of the mold core between different injection molding machines.
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Description

Technical Field

[0001] This application relates to the technical field of data cable injection molding equipment, and in particular to a data connection cable injection molding equipment. Background Technology

[0002] A data cable, also known as a data connection cable, is generally used for data exchange between digital products (such as computers and mobile phones) or for charging digital products.

[0003] refer to Figure 1 A data connection cable 100 generally includes a wire 101, terminals 102, a bottom mold 103, and an outer mold 104. Terminals 102 are electrically connected to both ends of the wire 101 to form a blank. For example, in a mobile phone data cable, one end of the wire 101 is electrically connected to a USB interface terminal 102, and the other end is electrically connected to a Type-C interface terminal 102. A bottom mold 103 is formed by injection molding between the terminals 102 and the wire 101 using an injection molding machine. The bottom mold 103 protects the connection circuit between the wire 101 and the terminals 102. Then, another injection molding machine is used to injection mold the end of the wire 101 to form the outer mold 104. The outer mold 104 covers the bottom mold 103 and improves the connection stability between the wire 101 and the terminals 102.

[0004] refer to Figure 2 and Figure 3 Injection molding machines in related technologies generally include an upper mold 11, a lower mold 12, an upper mold base 13, a guide rod 14, a top plate 15, a telescopic rod 16, an injection gun 17, and a mold core 34. The guide rod 14 passes through the upper mold base 13, and the upper mold 11 is fixedly connected to the upper mold base 13. The upper mold 11 mates with the lower mold 12, which has a groove 121 into which the mold core 34 can be engaged. The top plate 15 is fixedly connected to the top end of the guide rod 14. The telescopic rod 16 is positioned between the top plate 15 and the upper mold base 13. The injection gun 17 is mounted on the upper mold base 13 and communicates with the mold cavity. When the upper mold 11 and the lower mold 12 are pressed together, the injection gun 17 injects molten plastic into the mold cavity, and after cooling, the bottom mold 103 is formed. The blank with the bottom mold 103 is then transported to the next injection molding machine, which is used to injection mold the outer mold 104. The structure of the injection molding machine is largely the same as that of the injection molding machine that forms the bottom mold 103, and the two differ only in the structure of the mold cavity.

[0005] However, in the injection molding machines with data connection lines in related technologies, manual demolding is required when the mold core is placed into the groove of the lower mold and when the mold core is demolded from the lower mold, which can easily cause injury to the hands. Furthermore, the mold core needs to be manually placed into the next injection molding machine, that is, the mold core needs to be manually transferred between the injection molding machine that forms the bottom mold and the injection molding machine that forms the outer mold, which can easily lead to a decrease in production efficiency. Summary of the Invention

[0006] In order to facilitate mold core demolding and transfer between different injection molding machines, thereby improving production efficiency, this application provides a data connection line injection molding equipment.

[0007] This application provides a data connection cable injection molding equipment, which adopts the following technical solution:

[0008] A data connection line injection molding equipment includes a bottom mold injection assembly, an outer mold injection assembly, and a moving assembly;

[0009] The bottom mold injection assembly includes an upper mold and a lower mold, the upper mold and the lower mold cooperate with each other, and the bottom mold injection assembly is used to injection mold to form the bottom mold; the outer mold injection assembly is arranged side by side with the bottom mold injection assembly, the outer mold injection assembly has the same structure as the bottom mold injection assembly, and the outer mold injection assembly is used to injection mold to form the outer mold;

[0010] The movable component includes a support block, a movable rod slidably disposed on the support block, a mold core slidably disposed on the movable rod, and a data connection cable inserted into the mold core; the lower mold has a groove, and the mold core engages with the groove.

[0011] By adopting the above technical solution, when the mold core is moved into the bottom mold injection assembly, the upper mold drives the mold core to move downward when the upper mold and lower mold are pressed together, so that the mold core can be locked in the groove. At this time, the bottom mold injection assembly can injection mold to form the bottom mold. Then the upper mold and lower mold separate, and the moving rod is moved upward, thereby realizing the demolding of the mold core from the lower mold and reducing the danger to the hands when the upper mold is moved. Finally, the mold core is moved into the outer mold injection assembly, and the outer mold is formed by injection molding in the same way, thereby obtaining the data connection line of the finished product.

[0012] Optionally, a reset component is provided on the support block, and the reset component is connected to the moving rod.

[0013] By adopting the above technical solution, the reset component resets the moving rod, thereby achieving automatic demolding of the mold core and the lower mold and improving processing efficiency.

[0014] Optionally, the moving component further includes:

[0015] A rack, which is arranged along the length direction of the movable rod;

[0016] A first driving source is disposed on the mold core;

[0017] A gear is disposed at the output end of the first drive source and meshes with the rack.

[0018] By adopting the above technical solution, when the first drive source drives the gear to rotate, the gear meshes with the rack, enabling the mold core to move along the length of the moving rod. This facilitates the movement of the mold core from the bottom mold injection assembly to the outer mold injection assembly, thereby improving processing efficiency and safety.

[0019] Optionally, the data connection line injection molding equipment also includes a support assembly, which includes a base plate and a support plate, the base plate and the support plate being spaced apart;

[0020] The bottom mold injection assembly and the outer mold injection assembly are each provided in two sets. One set of the bottom mold injection assembly and the outer mold injection assembly is provided on the support plate, and the other set of the bottom mold injection assembly and the outer mold injection assembly is provided between the support plate and the bottom plate. The bottom mold injection assemblies and the outer mold injection assemblies on both sides of the support plate are symmetrically arranged about the support plate.

[0021] The movable component is also provided in two sets, both sets of movable components are set on the support plate, and the two sets of movable components are symmetrically arranged about the support plate.

[0022] By adopting the above technical solution, both the bottom mold injection assembly and the outer mold injection assembly are vertically arranged in two sets, which can process more data connection lines at the same time, while also reducing the floor space occupied.

[0023] Optionally, one end of the data connection cable is inserted into the mold core on one side of the support plate, and the other end of the data connection cable is inserted into the mold core on the other side of the support plate.

[0024] By adopting the above technical solution, one end of the data connection cable is inserted into the mold core on the upper side of the support plate, and the other end of the data connection cable is inserted into the mold core below the support plate. This makes the data connection cable more regular, which is convenient for installing the data connection cable on the mold core or for separating the data connection cable from the mold core.

[0025] Optionally, the support plate is provided with a winding assembly, the winding assembly comprising:

[0026] The second driving source is disposed on the support plate and is located on the side of the outer mold injection assembly away from the bottom mold injection assembly;

[0027] A rotating rod, wherein multiple rotating rods are provided, the rotating rods are eccentrically positioned at the output end of the second drive source, and the moving component is capable of transporting the data connection cable between two rotating rods.

[0028] By adopting the above technical solution, after the data connection line is processed, the moving component can move the data connection line out of the outer mold injection component, and at the same time, it can position the data connection line between the two rotating rods; when the second drive source causes the rotating rods to rotate eccentrically, it can rewind the data connection line, making it convenient for workers to transfer the finished data connection line.

[0029] Optionally, the mold core includes:

[0030] A base block, through which the movable rod passes, and in sliding engagement with the base block and the movable rod;

[0031] A protrusion is provided on the base block, and a terminal is inserted into the protrusion;

[0032] An indicator light is disposed on the base block; the protrusion can supply current to the data connection line, and the indicator light can indicate whether current is flowing in the data connection line.

[0033] By adopting the above technical solution, when the bump passes current to the data connection line, the indicator light can receive the current and light up, thereby determining whether the data connection line is good or not, so that the staff can remove the defective data connection line in time.

[0034] Optionally, the base block has a receiving cavity, and the protrusion is slidably disposed within the receiving cavity;

[0035] The mold core also includes a third driving source, which is disposed in the receiving cavity, and the output end of the third driving source is connected to the protrusion.

[0036] By adopting the above technical solution, when the third driving source drives the protrusion to slide into the receiving cavity, the data connection line is separated from the mold core, which makes it easier to remove the data connection line and improves processing efficiency.

[0037] In summary, this application includes at least one of the following beneficial effects:

[0038] 1. During the pressing process, the upper mold can drive the mold core to move into the groove, reducing manual operation and improving processing efficiency and safety;

[0039] 2. When the upper mold moves up and down, the reset component resets the moving rod, thereby separating the mold core from the lower mold and achieving automatic demolding;

[0040] 3. The first driving source enables the base block to slide along the length of the moving rod, thereby transferring the mold core between the bottom mold injection assembly and the outer mold injection assembly, improving processing efficiency;

[0041] 4. The third drive source enables the bump to be located in the receiving groove, which facilitates the separation of the data connection line from the mold core. The winding assembly can wind the data connection line, which facilitates the transfer of the data connection line. Attached Figure Description

[0042] Figure 1 This is a schematic diagram of a data connection line in related technologies;

[0043] Figure 2 This is an overall schematic diagram of an injection molding machine in related technologies;

[0044] Figure 3 This is an exploded view of the mold core and lower mold in related technologies;

[0045] Figure 4 This is an overall schematic diagram of the data connection line injection molding equipment of Embodiment 1 of this application;

[0046] Figure 5 This is a partial schematic diagram of Embodiment 1 of this application showing the bottom mold injection assembly and the outer mold injection assembly;

[0047] Figure 6 This is a partial schematic diagram of Embodiment 1 of this application, showing the support block and the movable rod;

[0048] Figure 7 This is an exploded view of the mold core and data connection line shown in Embodiment 1 of this application;

[0049] Figure 8 This is an overall schematic diagram of the data connection line injection molding equipment of Embodiment 2 of this application;

[0050] Figure 9 This is a partial schematic diagram illustrating the winding assembly in Embodiment 2 of this application;

[0051] Figure 10 This is an exploded view of the mold core and data connection line shown in Embodiment 2 of this application.

[0052] Explanation of reference numerals in the attached drawings: 1. Bottom mold injection assembly; 11. Upper mold; 12. Lower mold; 121. Groove; 13. Upper mold base; 14. Guide rod; 15. Top plate; 16. Telescopic rod; 17. Injection gun; 2. Outer mold injection assembly; 3. Moving assembly; 31. Support block; 311. Slide groove; 32. Moving rod; 33. Spring; 34. Mold core; 341. Base block; 3411. Receiving cavity; 342. Protrusion; 343. Indicator light; 344. Third drive source; 35. First drive source; 36. Gear; 37. Rack; 4. Support assembly; 41. Base plate; 42. Support plate; 43. Support rod; 5. Winding assembly; 51. Second drive source; 52. Rotating disk; 53. Rotating rod; 100. Data connection cable; 101. Wire; 102. Terminal; 103. Bottom mold; 104. Outer mold. Detailed Implementation

[0053] The following is in conjunction with the appendix Figure 1-10 This application will be described in further detail.

[0054] refer to Figure 1 A data connection cable 100 generally includes a wire 101, terminals 102, a bottom mold 103, and an outer mold 104. Terminals 102 are electrically connected to both ends of the wire 101 to form a blank. For example, in a mobile phone data cable, one end of the wire 101 is electrically connected to a USB interface terminal 102, and the other end is electrically connected to a Type-C interface terminal 102. A bottom mold 103 is formed by injection molding between the terminals 102 and the wire 101 using an injection molding machine. The bottom mold 103 protects the connection circuit between the wire 101 and the terminals 102. Then, another injection molding machine is used to injection mold the end of the wire 101 to form the outer mold 104. The outer mold 104 covers the bottom mold 103 and improves the connection stability between the wire 101 and the terminals 102.

[0055] refer to Figure 2 and Figure 3 Injection molding machines in related technologies generally include an upper mold 11, a lower mold 12, an upper mold base 13, a guide rod 14, a top plate 15, a telescopic rod 16, an injection gun 17, and a mold core 34. The guide rod 14 passes through the upper mold base 13, and the upper mold 11 is fixedly connected to the upper mold base 13. The upper mold 11 mates with the lower mold 12, and the lower mold 12 has a groove 121 into which the mold core 34 can be engaged. The top plate 15 is fixedly connected to the top end of the guide rod 14. The telescopic rod 16 is located between the top plate 15 and the upper mold base 13. The injection gun 17 is mounted on the upper mold base 13 and communicates with the mold cavity.

[0056] When the upper mold 11 and the lower mold 12 are pressed together, the injection gun 17 injects molten plastic into the mold cavity, and after cooling, the bottom mold 103 is formed. Then, the blank with the bottom mold 103 is transported to the next injection molding machine, which is used to injection mold the outer mold 104. The structure of this injection molding machine is largely the same as that of the injection molding machine that forms the bottom mold 103, and the two differ only in the structure of the mold cavity.

[0057] Example 1:

[0058] Embodiment 1 of this application discloses a data connection line injection molding equipment.

[0059] refer to Figure 4A data connection line injection molding equipment includes a bottom mold injection assembly 1, an outer mold injection assembly 2, a moving assembly 3, and a support assembly 4. The bottom mold injection assembly 1 and the outer mold injection assembly 2 are arranged side by side, and the moving assembly 3 is disposed on the support assembly 4. The moving assembly 3 can transport the blank into the bottom mold injection assembly 1 and the outer mold injection assembly 2 respectively for processing the blank.

[0060] refer to Figure 4 The support assembly 4 includes a base plate 41, a support plate 42, and support rods 43. Multiple support rods 43 are vertically arranged and are fixedly connected to the base plate 41. The support plate 42 is fixedly connected to the support rods 43, and is spaced apart from the base plate 41.

[0061] refer to Figure 5 The bottom mold injection assembly 1 includes an upper mold 11, a lower mold 12, an upper mold base 13, and a guide rod 14. The upper mold base 13 is spaced apart from the support plate 42, and the guide rod 14 passes through the upper mold base 13, allowing the upper mold base 13 to slide along the length of the guide rod 14. The guide rod 14 is fixedly connected to the base plate 41. The lower mold 12 is fixedly connected to the support plate 42, and the upper mold 11 is fixedly connected to the upper mold base 13, with the upper mold 11 and lower mold 12 cooperating.

[0062] In this embodiment, the bottom mold injection assembly 1 has four guide rods 14. Two guide rods 14 on one side pass through the support plate 42 and are connected to the support plate 42 fixing plate. There is a gap between the two guide rods 14 on the other side and the support plate 42.

[0063] refer to Figure 5 The bottom mold injection assembly 1 also includes a top plate 15 and a telescopic rod 16. The top plate 15 is spaced above the upper mold base 13 and is fixedly connected to the guide rod 14. The telescopic rod 16 is disposed between the top plate 15 and the upper mold base 13, with one end of the telescopic rod 16 fixedly connected to the top plate 15 and the other end fixedly connected to the upper mold base 13. In this embodiment, the telescopic rod 16 is a hydraulic cylinder; in other embodiments of this application, it can also be a pneumatic cylinder or other driving source. When the telescopic rod 16 applies force, it can push the upper mold base 13 downward, thereby causing the upper mold 11 to press against the lower mold 12.

[0064] refer to Figure 5 The bottom mold injection assembly 1 also includes an injection gun 17, which is disposed on the upper mold base 13. The mold cavities of the upper mold 11 and the lower mold 12 are connected to the injection gun 17. When the upper mold 11 and the lower mold 12 are pressed together, the injection gun 17 injects injection liquid into the mold cavity, thereby forming the bottom mold 103 of the product.

[0065] refer to Figure 5To accelerate the production efficiency of the bottom mold 103, a bottom mold injection assembly 1 is also provided between the support plate 42 and the bottom plate 41. The bottom mold injection assembly 1 above the support plate 42 and the bottom mold injection assembly 1 below the support plate 42 are symmetrically arranged with respect to the support plate 42, and the two sets of bottom mold injection assemblies 1 start synchronously. For a data connection cable 100, one end of the data connection cable 100 is processed above the support plate 42, and the other end of the data connection cable 100 is processed below the support plate 42. The difference between the bottom mold injection assembly 1 above the support plate 42 and the bottom mold injection assembly 1 below the support plate 42 lies in the different mold cavity structures, thereby adapting to the different shapes of the terminals 102 at both ends of the data connection cable 100.

[0066] refer to Figure 5 The outer mold injection assembly 2 and the bottom mold injection assembly 1 are arranged side by side. The outer mold injection assembly 2 and the bottom mold injection assembly 1 have largely the same structure and move synchronously. The difference between the outer mold injection assembly 2 and the bottom mold injection assembly 1 lies in their mold cavities, enabling the outer mold injection assembly 2 to process the outer mold 104 of the data connection line 100. An outer mold injection assembly 2 is also arranged between the support plate 42 and the base plate 41. The outer mold injection assembly 2 above the support plate 42 and the outer mold injection assembly 2 below the support plate 42 are symmetrically arranged about the support plate 42, and the difference between the two outer mold injection assemblies 2 also lies in their mold cavities, thus adapting to the different shapes of the terminals 102 at both ends of the data connection line 100.

[0067] refer to Figure 6 The movable component 3 includes a support block 31, a movable rod 32, and a reset component. Two support blocks 31 are provided, each fixedly connected to one end of the support plate 42 along its length. Each support block 31 has a vertically oriented groove 311. The movable rod 32 is a rectangular rod that slidably rests within the groove 311. The reset component includes a spring 33, which is disposed within the groove 311. One end of the spring 33 is fixedly connected to the top wall of the groove 311, and the other end is fixedly connected to the movable rod 32.

[0068] refer to Figure 5 and Figure 7 The movable component 3 includes a mold core 34, which includes a base block 341 and a protrusion 342. The base block 341 is a rectangular block, through which the movable rod 32 passes, and the base block 341 can slide along the length of the movable rod 32. The lower mold 12 has a groove 121, which mates with the base block 341. The protrusion 342 is fixedly connected to the base block 341, and the terminal 102 of the data connection cable 100 can be inserted into the protrusion 342 to fix the data connection cable 100 to the base block 341.

[0069] When the upper mold 11 moves downward, it can drive the base block 341 to move downward into the groove 121 of the lower mold 12. At this time, the spring 33 is stretched. After injection molding, the upper mold 11 moves upward. At this time, the spring 33 is reset. Under the action of the spring 33, the base block 341 is demolded from the lower mold 12.

[0070] refer to Figure 7 The mold core 34 also includes an indicator light 343, which is fixedly connected to the base block 341. When the data connection cable 100 is plugged in, one end of the data connection cable 100 is plugged into the base block 341 above the support plate 42, and the other end of the data connection cable 100 is plugged into the base block 341 below the support plate 42. The protrusion 342 below the support plate 42 supplies current to the terminal 102, and the protrusion 342 above the support plate 42 can receive current. When the protrusion 342 above the support plate 42 receives current, the indicator light 343 can be lit, thus indicating that the data connection cable 100 is a good product; when the indicator light 343 is not lit, it indicates that the data connection cable 100 is a defective product and needs to be replaced in time.

[0071] refer to Figure 7 The moving component 3 also includes a first drive source 35, a gear 36, and a rack 37. In this embodiment, the first drive source 35 is a motor, which is fixedly connected to the base block 341. The output end of the first drive source 35 is fixedly connected to the gear 36. The rack 37 is arranged along the length direction of the moving rod 32, and is fixedly connected to or integrally formed with the moving rod 32. The gear 36 meshes with the rack 37. When the first drive source 35 drives the gear 36 to rotate, the base block 341 can slide along the length direction of the moving rod 32.

[0072] refer to Figure 4 and Figure 5 To accelerate processing efficiency, in this embodiment, two sets of moving components 3 are provided, and the two sets of moving components 3 are symmetrically arranged about the support plate 42. For the moving components 3 on the same side of the support plate 42, two sets of mold cores 34 are provided, and the two sets of mold cores 34 move synchronously.

[0073] The implementation principle of the data connection line injection molding equipment in Embodiment 1 of this application is as follows: The starting position is the side of the bottom mold injection assembly 1 away from the outer mold injection assembly 2. When the two sets of mold cores 34 are in the starting position, the data connection line 100 is first installed on the mold core 34 closer to the bottom mold injection assembly 1. The first drive source 35 transports the mold core 34 into the bottom mold injection assembly 1. The upper mold 11 and the lower mold 12 are pressed together to form the bottom mold 103. At this time, the data connection line 100 is installed on the other mold core 34. Subsequently, the first drive source 35 transports the two sets of mold cores 34 into the interior of the bottom mold injection assembly 1 and the interior of the outer mold injection assembly 2, respectively, and processes the data connection lines 100 on the two sets of mold cores 34 simultaneously. At this time, the data connection line 100 of one mold core 34 is processed with the bottom mold 103 and the outer mold 104, and the data connection line 100 of the other mold core 34 is processed with the bottom mold 103. Then the first drive source 35 continues to move, transporting one mold core 34 out of the outer mold injection assembly 2, while the other mold core 34 remains inside the outer mold injection assembly 2. Finally, the first drive source 35 transports the remaining mold core 34 out, removes the data connection line 100 of the mold core 34, and then transports the mold core 34 to the starting position.

[0074] Example 2:

[0075] Embodiment 2 of this application discloses a data connection line injection molding equipment.

[0076] refer to Figure 8 The difference between Embodiment 2 and Embodiment 1 is that Embodiment 2 further includes a winding assembly 5, which is disposed on the support plate 42 and is capable of winding the wire 101.

[0077] refer to Figure 9 The winding assembly 5 includes a second drive source 51, a rotating disk 52, and rotating rods 53. The second drive source 51 is a motor, which is fixedly connected to the support plate 42. The rotating disk 52 is coaxial with and fixedly connected to the output shaft of the second drive source 51. Two rotating rods 53 are provided, both of which are fixedly connected to the rotating disk 52 and are eccentrically positioned. The length direction of the two rotating rods 53 is parallel to the support plate 42. In this embodiment, the initial state is when the plane containing the two supporting rods 43 is perpendicular to the support plate 42. After processing, the mold core 34 moves to the right, at which point the wire 101 is located between the two rotating rods 53. In this embodiment, the two rotating rods 53 are positioned close to the mold core 34 to reduce the possibility of the wire 101 not being positioned between the two rotating rods 53.

[0078] refer to Figure 10To facilitate the disengagement of terminal 102 from protrusion 342, base block 341 has a receiving cavity 3411. A third driving source 344, which is an electric cylinder or a pneumatic cylinder, is fixedly connected to the inner wall of base block 341. The output end of the third driving source 344 is fixedly connected to protrusion 342. Protrusion 342 is slidably disposed within receiving cavity 3411. The third driving source 344 can drive protrusion 342 to be located within or protrude from receiving cavity 3411, thereby facilitating the insertion of terminal 102 onto or separation from protrusion 342.

[0079] The implementation principle of the data connector injection molding equipment in Embodiment 2 of this application is as follows: After the data connector 100 is processed, the mold core 34 moves to the right. At this time, the wire 101 will be between the two rotating rods 53. The second drive source 51 drives the rotating rods 53 to rotate through the rotating disk 52, thereby causing the wire 101 to be wound around the rotating rods 53. The third drive source 344 drives the protrusion 342 to move, thereby facilitating the separation of the protrusion 342 from the terminal 102. The operator pulls the wound data connector 100 out of the rotating rods 53, and then the processed data connector 100 can be transferred.

[0080] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A data connection cable injection molding equipment, characterized in that: It includes a bottom mold injection assembly (1), an outer mold injection assembly (2), and a moving assembly (3); The bottom mold injection assembly (1) includes an upper mold (11) and a lower mold (12). The upper mold (11) and the lower mold (12) cooperate with each other. The bottom mold injection assembly (1) is used to injection mold the bottom mold (103). The outer mold injection assembly (2) is arranged side by side with the bottom mold injection assembly (1). The outer mold injection assembly (2) has the same structure as the bottom mold injection assembly (1). The outer mold injection assembly (2) is used to injection mold the outer mold (104). The moving component (3) includes a support block (31), a moving rod (32) is slidably disposed on the support block (31), a mold core (34) is slidably disposed on the moving rod (32), and a data connection cable (100) is inserted into the mold core (34); the lower mold (12) has a groove (121), and the mold core (34) is engaged with the groove (121); A reset component is provided on the support block (31), and the reset component is connected to the moving rod (32); The moving component (3) also includes: A rack (37) is provided along the length direction of the moving rod (32); The first driving source (35) is disposed on the mold core (34); Gear (36), the gear (36) is disposed at the output end of the first drive source (35), and the gear (36) meshes with the rack (37); The moving component (3) moves the mold core (34) into the bottom mold injection assembly (1) and the outer mold injection assembly (2) respectively.

2. The data connection cable injection molding equipment according to claim 1, characterized in that: The data connection line injection molding equipment also includes a support assembly (4), which includes a base plate (41) and a support plate (42), which are spaced apart. The bottom mold injection assembly (1) and the outer mold injection assembly (2) are each provided in two sets. One set of bottom mold injection assembly (1) and outer mold injection assembly (2) is provided on the support plate (42), and the other set of bottom mold injection assembly (1) and outer mold injection assembly (2) is provided between the support plate (42) and the bottom plate (41). The bottom mold injection assembly (1) and outer mold injection assembly (2) on both sides of the support plate (42) are symmetrically arranged about the support plate (42). The moving component (3) is also provided in two sets, both sets of moving components (3) are provided on the support plate (42), and the two sets of moving components (3) are symmetrically arranged about the support plate (42).

3. The data connection cable injection molding equipment according to claim 2, characterized in that: One end of the data connection line (100) is inserted into the mold core (34) on one side of the support plate (42), and the other end of the data connection line (100) is inserted into the mold core (34) on the other side of the support plate (42).

4. The data connection cable injection molding equipment according to claim 2, characterized in that: The support plate (42) is provided with a winding assembly (5), the winding assembly (5) comprising: The second drive source (51) is disposed on the support plate (42) and the second drive source (51) is located on the side of the outer mold injection assembly (2) away from the bottom mold injection assembly (1); Rotating rod (53), multiple rotating rods (53) are provided, the rotating rods (53) are eccentrically located at the output end of the second drive source (51), and the moving component (3) can transport the data connection line (100) between two rotating rods (53).

5. The data connection cable injection molding equipment according to claim 1, characterized in that: The mold core (34) includes: The base block (341) has the moving rod (32) passing through it, and the base block (341) and the moving rod (32) are in sliding engagement. A protrusion (342) is disposed on the base block (341), and a terminal (102) is inserted into the protrusion (342); Indicator light (343) is disposed on the base block (341); the protrusion (342) can supply current to the data connection line (100), and the indicator light (343) can indicate whether current flows in the data connection line (100).

6. The data connection cable injection molding equipment according to claim 5, characterized in that: The base block (341) has a receiving cavity (3411), and the protrusion (342) is slidably disposed in the receiving cavity (3411); The mold core (34) also includes a third drive source (344), which is disposed in the receiving cavity (3411), and the output end of the third drive source (344) is connected to the protrusion (342).

Citation Information

Patent Citations

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