An ultra-low latency data transmission connection line locking structure

CN224669103UActive Publication Date: 2026-08-21JIANGSU SHENGQI ELECTRONICS CO LTD
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Patent Information

Application Number
CN202521537513.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-07-22
Publication Date
2026-08-21
Estimated Expiration
2035-07-22

AI Technical Summary

Technical Problem

[0006]因此,本实用新型目的是提供一种超低延迟数据传输连接线锁紧结构,解决了现有的数据传输连接线锁紧结构在快速锁紧连接操作上流程繁琐、效率低下,且一端固定安装后对穿设连接部分进行更换维修时拆卸困难、耗时长且易损坏周边部件的问题

Benefits of technology

1、本实用新型,利用设置的快速锁定防松,滑动顶杆可便捷解锁,无需复杂工具即可完成分离,解决传统结构操作繁琐、维修拆卸困难的问题。

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Abstract

The utility model discloses a kind of ultra-low delay data transmission connecting line locking structures, it is related to electronic accessories technical field, including connector, the connector includes male connector and female connector, the male connector and female connector are mutually inserted, one end of the male connector is sleeved with outer locking sleeve assembly, one end of the female connector is sleeved with inner locking seat assembly, the inner side wall of outer locking sleeve assembly and the outer side wall of inner locking seat assembly are threadedly connected.The connector provided by the utility model is convenient for both sides to be quickly connected and locked, and is also convenient for the fixed end to be quickly disassembled, repaired and replaced, thereby solving the problems of the existing data transmission connecting line locking structure, such as complicated process, low efficiency in quick locking operation, and difficult to disassemble, time-consuming and easy to damage surrounding components when replacing and repairing the connecting part.
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Description

Technical Field

[0001] This utility model relates to the field of electronic components technology, specifically to a locking structure for an ultra-low latency data transmission connection line. Background Technology

[0002] Ultra-low latency data transmission cables are specialized cables that can greatly shorten signal delay time during data transmission and have a robust locking structure to ensure connection reliability.

[0003] A search revealed the following publication (announcement) number: CN219304006U, titled: "A connector locking structure, comprising a housing, a latch, and wire harness terminals. The housing has a receiving groove, and the rear sidewall of the receiving groove is equipped with an elastic latch with an axial protrusion. The lower surface of the elastic latch is provided with limiting protrusions, etc. The beneficial effects are: the elastic latch has sufficient space to design the limiting protrusions, making it less prone to breakage or damage during use; the latch is fixed inside the connector housing, covering the elastic latch and protecting it."

[0004] The above technical solution has the following shortcomings; In actual use, the above-mentioned solution involves a cumbersome and complex locking process when connecting the connector, making it difficult to achieve a fast and efficient connection. In urgent tasks or large-scale connection operations requiring rapid connection, the lack of a similar efficient fast-locking design results in a time-consuming and laborious connection process, severely impacting work progress and efficiency. Furthermore, once one end of the connector is fixed to an object, subsequent replacement or maintenance of the through-connection becomes extremely inconvenient. Disassembling the through-connection with one end fixed is extremely difficult, often requiring complex tools and significant time investment. This not only increases maintenance costs but may also cause unnecessary damage to surrounding components due to prolonged disassembly, reducing the overall lifespan and stability of the equipment. Utility Model Content

[0005] In view of the problems existing in the current ultra-low latency data transmission connection locking structure, this utility model is proposed.

[0006] Therefore, the purpose of this utility model is to provide an ultra-low latency data transmission connection cable locking structure, which solves the problems of existing data transmission connection cable locking structures having cumbersome procedures and low efficiency in quick locking connection operations, and difficulties in disassembly, time-consuming process, and easy damage to surrounding components when replacing or repairing the through-connection part after one end is fixedly installed.

[0007] To achieve the above objectives, this utility model provides the following technical solution: A locking structure for an ultra-low latency data transmission connection line includes a connector, which includes a male connector and a female connector that are plugged into each other. One end of the male connector is fitted with an outer locking sleeve assembly, and one end of the female connector is fitted with an inner locking seat assembly. The inner sidewall of the outer locking sleeve assembly and the outer sidewall of the inner locking seat assembly are threadedly connected. Both the outer locking sleeve assembly and the inner locking seat assembly include a shielding shell layer. A buffer layer is fixedly connected to the inner sidewall of the shielding shell layer. A rubber compression ring is fixedly connected to the inner sidewall of both the outer locking sleeve assembly and the inner locking seat assembly. A sealing groove is provided at one end of the male connector. A silicone sealing ring is fixedly connected to the sidewall of one end of the female connector. The sidewall of the silicone sealing ring engages with the sealing groove. An installation mechanism is fixedly connected to the sidewall of the female connector. A sliding seat is fixedly connected to the sidewall of the outer locking sleeve assembly. A support slide rod is slidably connected inside the cavity of the sliding seat. A locking separation mechanism is provided between one end of the support slide rod and the inner locking seat assembly.

[0008] Preferably, the locking separation mechanism includes a locking head assembly, a limiting slot, a sliding top opening, and a sliding top rod. One end of the supporting slide rod passes through the side wall of the sliding seat and is fixedly connected to the locking head assembly. The side wall of the inner locking seat assembly has a limiting slot and a sliding top opening. The sliding top rod is slidably connected in the sliding top opening. The locking head assembly engages with the limiting slot, and the sliding top rod corresponds to the position of the locking head assembly.

[0009] Preferably, the installation mechanism includes a buffer pad, an L-shaped clamping plate, a U-shaped clamping seat, a threaded hole, and a limiting bolt. The side wall of the buffer pad is engaged with the side wall of the inner locking seat assembly. L-shaped clamping plates are fixedly connected to the side walls of both ends of the buffer pad. U-shaped clamping seats are fixedly connected to the side walls of both ends of the inner locking seat assembly. The L-shaped clamping plates at both ends are engaged with the corresponding U-shaped clamping seats. A threaded hole is provided between the L-shaped clamping plates and the U-shaped clamping seats at both ends, and a limiting bolt is threadedly connected thereto.

[0010] Preferably, the side wall of the sliding seat is provided with an adjustment slot and is slidably connected to a toggle plate, wherein the side wall of the toggle plate is fixedly connected to the side wall of the supporting slide rod.

[0011] Preferably, the shielding shell is a metal shielding layer, and the buffer layer is a silicone layer.

[0012] Furthermore, the card head assembly includes a connecting block, and a card head is slidably connected to the cavity of the connecting block through an opening. A spring is fixedly connected to the side wall of the card head, and one end of the card head is engaged with the sliding top opening.

[0013] Preferably, both the outer locking sleeve assembly and the inner locking seat assembly have a ceramic insulating coating on their surfaces.

[0014] The technical effects and advantages provided by this utility model in the above technical solution are as follows: 1. This utility model utilizes a quick-locking anti-loosening design, allowing the sliding top rod to be easily unlocked and separated without the need for complex tools, thus solving the problems of cumbersome operation and difficult maintenance and disassembly of traditional structures.

[0015] 2. This utility model utilizes a metal shielding shell to effectively block electromagnetic interference and ensure ultra-low latency transmission. The silicone buffer layer, in conjunction with the rubber compression ring and silicone sealing ring, enhances buffering, shock absorption, and waterproof and dustproof performance. The ceramic insulating coating avoids the risk of short circuits, ensuring stable and secure data transmission.

[0016] 3. This utility model utilizes an installation mechanism that uses an L-shaped card plate to engage with a U-shaped card seat and is fixed with limit bolts. Combined with a buffer pad for shock absorption, and a set actuating plate to drive the support slide rod to control the locking state, the overall installation is stable and disassembly is simple, reducing maintenance difficulty and time consumption. Attached Figure Description

[0017] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this utility model. For those skilled in the art, other drawings can be obtained based on these drawings.

[0018] Figure 1 This is a three-dimensional structural diagram of the present invention; Figure 2 This is a front sectional view of the present invention; Figure 3 This is a partial cross-sectional view of the present invention; Figure 4 For the present utility model Figure 2 Enlarged schematic diagram of part A.

[0019] Explanation of reference numerals in the attached figures: 1. Connector; 2. Male connector; 3. Female connector; 4. Outer locking sleeve assembly; 5. Inner locking seat assembly; 6. Shielding shell; 7. Buffer layer; 8. Rubber compression ring; 9. Sealing groove; 10. Silicone sealing ring; 11. Sliding seat; 12. Support slide rod; 13. Clamping head assembly; 14. Limiting jaw; 15. Sliding top opening; 16. Sliding top rod; 17. Buffer pad; 18. L-shaped clamping plate; 19. U-shaped clamping seat; 20. Threaded hole; 21. Limiting bolt; 22. Adjusting slide; 23. Actuating plate; 24. Connecting block; 25. Clamping head; 26. Spring. Detailed Implementation

[0020] To enable those skilled in the art to better understand the technical solution of this utility model, the present utility model will be further described in detail below with reference to the accompanying drawings.

[0021] This utility model discloses a locking structure for an ultra-low latency data transmission connection line.

[0022] This utility model provides, for example Figure 1-4 The present invention discloses an ultra-low latency data transmission connection cable locking structure, including a connector 1, the connector 1 including a male connector 2 and a female connector 3, the male connector 2 and the female connector 3 being inserted into each other, one end of the male connector 2 being sleeved with an outer locking sleeve assembly 4, one end of the female connector 3 being sleeved with an inner locking seat assembly 5, the inner side wall of the outer locking sleeve assembly 4 and the outer side wall of the inner locking seat assembly 5 being threadedly connected. Both the outer locking sleeve assembly 4 and the inner locking seat assembly 5 include a shielding shell 6. A buffer layer 7 is fixedly connected to the inner wall of the shielding shell 6. A rubber compression ring 8 is fixedly connected to the inner wall of both the outer locking sleeve assembly 4 and the inner locking seat assembly 5. A sealing groove 9 is provided at one end of the male connector 2. A silicone sealing ring 10 is fixedly connected to the side wall of one end of the female connector 3, and the side wall of the silicone sealing ring 10 engages with the sealing groove 9. An installation mechanism is fixedly connected to the side wall of the female connector 3. A sliding seat 11 is fixedly connected to the side wall of the outer locking sleeve assembly 4. A support slide rod 12 is slidably connected within the cavity of the sliding seat 11. A locking separation mechanism is provided between one end of the support slide rod 12 and the inner locking seat assembly 5. The basic connection of the data transmission path is achieved through the insertion of the male connector 2 and the female connector 3. The threaded connection between the outer locking sleeve assembly 4 and the inner locking seat assembly 5 allows for quick initial locking, making operation convenient. Compared to traditional structures, this design reduces locking steps, improves connection efficiency, and the tightness of the threaded connection helps ensure connection stability and reduces signal transmission delay caused by loosening. The shielding shell 6 effectively blocks external electromagnetic interference, ensuring ultra-low latency data transmission. The buffer layer 7 buffers vibration and impact during the connection process, protecting the internal structure of the connector. The rubber compression ring 8 further enhances the sealing and stability of the connection. Combined with the engagement of the silicone sealing ring 10 and the sealing groove 9, it improves the overall waterproof and dustproof performance. The locking and separating mechanism facilitates quick locking and separation based on the threaded connection. This solves the problems of existing data transmission cable locking structures, such as cumbersome and inefficient quick locking operations, and difficulties in disassembly, time-consuming disassembly, and easy damage to surrounding components when replacing or repairing the threaded connection after one end is fixed.

[0023] To achieve rapid locking and disengagement of the outer locking sleeve assembly and the inner locking seat assembly, and to improve operational convenience, such as... Figure 2 and 4As shown, the locking and separating mechanism includes a locking head assembly 13, a limiting slot 14, a sliding top opening 15, and a sliding top rod 16. One end of the supporting slide rod 12 passes through the side wall of the sliding seat 11 and is fixedly connected to the locking head assembly 13. The side wall of the inner locking seat assembly 5 is provided with a limiting slot 14 and a sliding top opening 15. The sliding top rod 16 is slidably connected in the sliding top opening 15. The locking head assembly 13 is engaged with the limiting slot 14, and the sliding top rod 16 is positioned corresponding to the locking head assembly 13. By engaging the locking head assembly 13 with the limiting slot 14, the threaded connection can be further locked to prevent loosening. The sliding top rod 16 can be used to push out the locking head assembly 13 and quickly release the lock. Separation can be completed without complicated tools, which facilitates the replacement and maintenance of the connecting wire and reduces operation time.

[0024] To achieve a secure connection between the female connector and the mounting surface, and to facilitate disassembly and maintenance, such as Figure 1-3 As shown, the installation mechanism includes a buffer pad 17, an L-shaped clamping plate 18, a U-shaped clamping seat 19, a threaded hole 20, and a limiting bolt 21. The side wall of the buffer pad 17 is engaged with the side wall of the inner locking seat assembly 5. The two end side walls of the buffer pad 17 are fixedly connected to the L-shaped clamping plate 18, and the two end side walls of the inner locking seat assembly 5 are fixedly connected to the U-shaped clamping seat 19. The two end L-shaped clamping plates 18 are engaged with the corresponding U-shaped clamping seats 19. A threaded hole 20 is provided between the two end L-shaped clamping plates 18 and the U-shaped clamping seat 19, and the threaded connection is a limiting bolt 21. The buffer pad 17 can buffer vibration during installation and avoid damage to components caused by rigid connection. The engagement of the L-shaped clamping plate 18 and the U-shaped clamping seat 19 with the limiting bolt 21 locks the parts together, achieving a stable installation. Disassembly is simple and easy to perform by unscrewing the limiting bolt.

[0025] To facilitate manual adjustment of the support slide bar and control of the working state of the locking separation mechanism, such as Figure 1 and 2 As shown, the side wall of the sliding seat 11 is provided with an adjusting slide 22, such as... Figure 1 and 2 As shown, the side wall of the sliding seat 11 is provided with an adjustment slide 22, and a toggle plate 23 is slidably connected thereto. The side wall of the toggle plate 23 is fixedly connected to the side wall of the support slide rod 12. By sliding the toggle plate 23 along the adjustment slide 22, the support slide rod 12 can be moved, thereby controlling the engagement or disengagement of the locking head assembly 13 and the limiting locking slot 14. The operation is intuitive and effortless, improving the convenience of locking and disengaging.

[0026] To enhance the electromagnetic shielding performance and buffering effect of the structure, such as Figure 2 and 3As shown, the shielding shell 6 is a metal shielding layer, and the buffer layer 7 is a silicone layer. The metal shielding layer can effectively block external electromagnetic signal interference and ensure ultra-low latency of data transmission. The silicone layer has good elasticity and buffering performance, which can absorb vibration and impact, protect the internal connector, and improve the sealing performance of the structure.

[0027] To improve the engagement stability between the card head assembly and the limit switch, and to facilitate unlocking, such as Figure 2 and 4 As shown, the locking head assembly 13 includes a connecting block 24. A locking head 25 is slidably connected to the cavity of the connecting block 24 through an opening. A spring 26 is fixedly connected to the side wall of the locking head 25. One end of the locking head 25 is engaged with the sliding top opening 15. The elastic force of the spring 26 pushes the locking head 25 tightly into the limiting locking opening 14 to ensure reliable locking. When the sliding top rod 16 pushes the locking head 25, the spring 26 is compressed, the locking head 25 retracts, and the lock can be easily released. The structure is simple and the operation is reliable.

[0028] To improve the insulation performance of the structure and avoid the risk of short circuits, such as Figure 1-3 As shown, both the outer locking sleeve assembly 4 and the inner locking seat assembly 5 are provided with a ceramic insulating coating. The ceramic insulating coating can prevent the risk of short circuit or leakage caused by exposed metal parts, and ensure the safety and stability of data transmission. It is especially suitable for use in complex electromagnetic environments.

[0029] The foregoing description only illustrates certain exemplary embodiments of the present invention. Undoubtedly, those skilled in the art can modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the above drawings and descriptions are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present invention.

Claims

1. A locking structure for an ultra-low latency data transmission connection line, comprising a connector (1), characterized in that, The connector (1) includes a male connector (2) and a female connector (3), which are plugged into each other. One end of the male connector (2) is fitted with an outer locking sleeve assembly (4), and one end of the female connector (3) is fitted with an inner locking seat assembly (5). The inner sidewall of the outer locking sleeve assembly (4) and the outer sidewall of the inner locking seat assembly (5) are threaded together. Both the outer locking sleeve assembly (4) and the inner locking seat assembly (5) include a shielding shell layer (6). The inner sidewall of the shielding shell layer (6) is fixedly connected to a buffer layer (7). The inner sidewall of both the outer locking sleeve assembly (4) and the inner locking seat assembly (5) is fixedly connected to a rubber compression ring (8). One end of the male connector (2) is provided with a sealing groove (9). One sidewall of the female connector (3) is fixedly connected to a silicone sealing ring (10). The sidewall of the silicone sealing ring (10) is engaged with the sealing groove (9). The sidewall of the female connector (3) is fixedly connected to an installation mechanism. The sidewall of the outer locking sleeve assembly (4) is fixedly connected to a sliding seat (11). A support slide rod (12) is slidably connected inside the cavity of the sliding seat (11). A locking separation mechanism is provided between one end of the support slide rod (12) and the inner locking seat assembly (5).

2. The locking structure for an ultra-low latency data transmission connection line according to claim 1, characterized in that, The locking and separating mechanism includes a locking head assembly (13), a limiting slot (14), a sliding top opening (15), and a sliding top rod (16). One end of the supporting slide rod (12) passes through the side wall of the sliding seat (11) and is fixedly connected to the locking head assembly (13). The side wall of the inner locking seat assembly (5) is provided with a limiting slot (14) and a sliding top opening (15). The sliding top opening (15) is slidably connected to the sliding top rod (16). The locking head assembly (13) is engaged with the limiting slot (14), and the sliding top rod (16) is positioned corresponding to the locking head assembly (13).

3. The locking structure for an ultra-low latency data transmission connection line according to claim 1, characterized in that, The installation mechanism includes a buffer pad (17), an L-shaped clamping plate (18), a U-shaped clamping seat (19), a threaded hole (20), and a limiting bolt (21). The side wall of the buffer pad (17) is engaged with the side wall of the inner locking seat assembly (5). The two side walls of the buffer pad (17) are fixedly connected with L-shaped clamping plates (18). The two side walls of the inner locking seat assembly (5) are fixedly connected with U-shaped clamping seats (19). The L-shaped clamping plates (18) at both ends are engaged with the corresponding U-shaped clamping seats (19). A threaded hole (20) is provided between the L-shaped clamping plates (18) and the U-shaped clamping seats (19) at both ends, and a limiting bolt (21) is threadedly connected thereto.

4. The ultra-low latency data transmission connection cable locking structure according to claim 1, characterized in that, The sliding seat (11) has an adjustment slot (22) on its side wall and is slidably connected to a toggle plate (23). The side wall of the toggle plate (23) is fixedly connected to the side wall of the support slide rod (12).

5. The locking structure for an ultra-low latency data transmission connection line according to claim 1, characterized in that, The shielding shell (6) is a metal shielding layer, and the buffer layer (7) is a silicone layer.

6. The locking structure for an ultra-low latency data transmission connection line according to claim 2, characterized in that, The clamping head assembly (13) includes a connecting block (24), and a clamping head (25) is slidably connected to the cavity of the connecting block (24) through an opening. A spring (26) is fixedly connected to the side wall of the clamping head (25), and one end of the clamping head (25) is engaged with the sliding top opening (15).

7. The locking structure for an ultra-low latency data transmission connection line according to claim 1, characterized in that, Both the outer locking sleeve assembly (4) and the inner locking seat assembly (5) have a ceramic insulating coating on their surfaces.

Citation Information

Patent Citations

  • Connector locking structure

    CN219304006U