Computer conductive interface assembly
The computer conductive interface component, designed with a mechanical structure, enables one-handed locking and unlocking, solving the complexity and reliability issues of traditional interfaces in frequent plugging and unplugging scenarios, and improving equipment maintenance efficiency and user experience.
Patent Information
- Application Number
- CN202521577955.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-28
- Publication Date
- 2026-08-25
- Estimated Expiration
- 2035-07-28
AI Technical Summary
Traditional computer conductive interface components are highly complex to operate in scenarios involving frequent plugging and unplugging, requiring a three-level operation process, which affects maintenance efficiency, and are prone to loosening and have a high failure rate.
The mechanical structure design allows for unlocking and locking of the locking rod with a single hand, simplifying the operation to a single level. Combined with a three-level positioning system of insert block, insert hole, and locking rod and locking hole, it improves tensile and torsional strength.
It reduces the complexity of interface operations, improves device maintenance efficiency and user experience, and is especially suitable for frequent plugging and unplugging scenarios such as data centers and mobile workstations, ensuring connection stability and reliability.
Smart Images

Figure CN224683530U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of computer conductive connection device technology, and in particular to computer conductive interface components. Background Technology
[0002] In the field of modern computer technology, computers need to connect to a variety of external devices such as monitors, printers, and scanners through conductive interface components to achieve data transmission, interaction, and functional expansion. The performance and connection convenience of conductive interface components play a key role in the efficient operation of the entire computer system. Traditional computer conductive interface components have many limitations in connection methods. Common interfaces include DVI, VGA, Thunderbolt 3, and Type-C. When computer conductive connection devices are in use, current computer conductive interface components generally suffer from high operational complexity and insufficient reliability in scenarios involving frequent plugging and unplugging. The locking mechanism of traditional interfaces usually requires a three-stage operation process: first, manually unlocking the fixing device on the side wall of the interface; second, precise alignment and plugging; and finally, locking through additional actions, such as rotating the latch or pressing the lock. For example, although the Thunderbolt 3 interface has the advantage of high bandwidth, its locking structure relies on manually rotating the latch. In high-frequency plugging and unplugging scenarios such as data center server cluster maintenance, a single plugging and unplugging takes 5-8 seconds, significantly reducing maintenance efficiency. In addition, due to structural design defects, the Type-C interface is prone to oxidation and deformation of the contact pins due to long-term plugging and unplugging, which can lead to unstable charging or data transmission interruption, significantly increasing the failure rate.
[0003] Therefore, to address the issue of difficulty in reducing interface operation complexity in frequent plugging and unplugging scenarios, a computer conductive interface component can be designed. When using the computer conductive connection device, during connection, the operator holds the computer connector with one hand, simultaneously pinching the inner ends of the two sets of adjusting plates with their thumb and forefinger. This causes the two adjusting plates to retract the locking rods into the grooves, unlocking the locking mechanism. Then, while maintaining the pinched adjustment plates, the computer connector is aligned and inserted into the computer interface. When the computer connector is fully inserted, the two locking rods precisely enter the locking groove space on the interface sidewall. The adjusting plates are then released, and under the action of elastic potential energy, the locking rods are pushed into the inner wall of the locking groove. The locking holes form a mechanical lock, ensuring a secure connection between the computer connector and the computer interface. During unlocking, the adjustment plate's pinching action, repeated during the connection phase, causes the locking rods on both sides to disengage from the locking holes simultaneously. At this point, the connector is unlocked, and sliding it outwards quickly separates the connector from the interface. In summary, this computer conductive connection device, through mechanical structural innovation, simplifies interface operation from three levels (unlocking, plugging, and locking) to a single level (pinching and plugging) while maintaining electrical performance. This reduces the complexity of interface operation, making it particularly suitable for scenarios requiring frequent plugging and unplugging, such as data centers and mobile workstations, significantly improving equipment maintenance efficiency and user experience. Utility Model Content
[0004] To overcome the problem that traditional interface locking mechanisms for computer conductive connection devices typically require a three-stage operation process—first, manually unlocking the fixing device on the side wall of the interface, then precisely aligning and inserting the connector, and finally locking it by additional actions such as rotating or pressing the latch—this significantly reduces maintenance efficiency in high-frequency plugging and unplugging scenarios such as data center server cluster maintenance, and thus makes it difficult to reduce the complexity of interface operation.
[0005] The technical solution of this utility model is as follows: a computer conductive interface assembly, including a computer connector, a matching computer interface on one side of the computer connector, a sliding groove through both sides of the top of the inner wall of the computer connector, a locking rod fixedly installed on both sides of the inner wall of the sliding groove, a locking groove on the top of the side wall of the computer interface, a locking hole on both sides of the inner wall of the locking groove, one end of the locking rod engaging with the inner wall of the locking hole, and two sets of horizontally movable adjustment plates on the top of the computer connector.
[0006] Preferably, when the computer conductive connection device is in use, during connection, the operator holds the computer connection connector with one hand, pinching the inner ends of the two sets of adjustment plates simultaneously with their thumb and forefinger. This causes the two locking rods on both sides to retract into the slide grooves, unlocking the locking mechanism. Then, while maintaining the pinched adjustment plates, the computer connection connector is aligned and inserted into the computer connection interface. When the computer connection connector is fully inserted, the two locking rods precisely enter the locking groove space on the side wall of the interface. The adjustment plates are then released, and under the action of elastic potential energy, the locking rods are pushed into the locking holes on the inner wall of the locking grooves, forming a mechanical lock, thereby causing the computer... The connector achieves a locking connection with the computer interface. During unlocking, the adjustment plate's pinching action, repeated during the connection phase, causes both locking rods to disengage from their respective locking holes simultaneously. At this point, the connector is unlocked, and sliding it outwards quickly separates the connector from the interface. In summary, this computer conductive connection device, through mechanical structural innovation, simplifies interface operation from three levels (unlocking, plugging, and locking) to a single level (pinching and plugging) while maintaining electrical performance. This reduces the complexity of interface operation, making it particularly suitable for scenarios requiring frequent plugging and unplugging, such as data centers and mobile workstations, significantly improving equipment maintenance efficiency and user experience.
[0007] Preferably, a slide rod is fixedly installed inside the slide groove, a slider is slidably installed on the side wall of the slide rod, a pressure spring is installed inside the slide groove, a cavity is opened on the side wall of the computer connection connector, the slide groove and the cavity are connected through each other, and the inner wall of one end of the adjustment plate is fixedly connected to the outer end of the slider.
[0008] Preferably, the other end of the locking rod is fixedly connected to the outer wall of the slider, one end of the pressure spring is fixedly connected to the inner wall of the slider, and the other end of the pressure spring is fixedly connected to the inner wall of the slider.
[0009] Preferably, the inner wall of the cavity is provided with a connector data serial port, and the side wall of the computer connection interface is provided with an interface data serial port, and the connector data serial port and the interface data serial port form a snap-fit engagement.
[0010] Preferably, the inner wall of the cavity is fixedly provided with plug blocks on both sides of the bottom, and the computer connection interface is provided with plug holes on both sides of the bottom of the side wall.
[0011] Preferably, insert plates are fixedly installed on both sides of the inner wall of the cavity, and slots are opened on both sides of the side wall of the computer connection interface.
[0012] Preferably, the insert block and the socket form a locking engagement, and the insert plate and the slot form a locking engagement.
[0013] The beneficial effects of this utility model are: 1. When using the computer conductive connection device, during connection, the operator holds the computer connection connector with one hand, simultaneously pinching the inner ends of the two sets of adjustment plates with the thumb and forefinger. This causes the two locking rods on both sides to retract into the slide grooves, unlocking the locking mechanism. Then, while maintaining the pinched adjustment plates, the operator aligns and inserts the computer connection connector into the computer connection interface. When the computer connection connector is fully inserted, the two locking rods precisely enter the locking groove space on the side wall of the interface. Immediately, the adjustment plates are released, and under the action of elastic potential energy, the locking rods are pushed into the locking holes on the inner wall of the locking groove, forming a mechanical lock. This ensures that the computer connection... The connector achieves a locking connection with the computer interface. During unlocking, the adjustment plate's pinching action, repeated during the connection phase, causes the locking rods on both sides to disengage from the locking holes simultaneously. At this point, the connector is unlocked, and sliding it outwards quickly separates the connector from the interface. In summary, this computer conductive connection device, through mechanical structural innovation, simplifies interface operation from three levels (unlocking, plugging, and locking) to a single level (pinching and plugging) while maintaining electrical performance. This reduces the complexity of interface operation, making it particularly suitable for scenarios requiring frequent plugging and unplugging, such as data centers and mobile workstations, significantly improving equipment maintenance efficiency and user experience.
[0014] 2. By using a three-level positioning system consisting of insert block and insert hole, insert plate and slot, and locking rod and locking hole, the tensile and torsional strength of the interface is improved, effectively solving the defect of easy loosening of traditional interfaces. Attached Figure Description
[0015] Figure 1 The diagram shown is a first three-dimensional structural schematic of the computer conductive interface component of this utility model. Figure 2 The diagram shown is a three-dimensional structural schematic of the separation of the computer connection connector and the computer connection interface of the computer conductive interface assembly of this utility model. Figure 3 The diagram shown is a three-dimensional structural schematic of the computer connection connector of the computer conductive interface component of this utility model. Figure 4 The diagram shown is a partial three-dimensional structural schematic of the computer connection connector of the computer conductive interface component of this utility model. Figure 5 The diagram shown is a three-dimensional structural schematic of the computer connection interface of the computer conductive interface component of this utility model. Figure 6 The diagram shown is a three-dimensional structural representation of the adjustment plate of the computer conductive interface assembly of this utility model. Figure 7 The diagram shown is a three-dimensional structural schematic of the combination of locking rod and locking hole of the computer conductive interface component of this utility model. Figure 8 What is shown is Figure 4 Schematic diagram of the three-dimensional structure at the circled mark; Explanation of reference numerals in the attached drawings: 1. Computer connection connector; 2. Computer connection interface; 3. Cavity; 4. Slide groove; 5. Slide rod; 6. Slider; 7. Pressure spring; 8. Locking rod; 9. Adjusting plate; 10. Locking groove; 11. Locking hole; 12. Connector data serial port; 13. Interface data serial port; 14. Insert block; 15. Socket; 16. Insert plate; 17. Slot. Detailed Implementation
[0016] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0017] Please see Figure 1 and Figure 7 This utility model provides an embodiment of a computer conductive interface assembly, including a computer connector 1, a computer connector interface 2 that matches the computer connector 1 on one side, a sliding groove 4 that runs through both sides of the top of the inner wall of the computer connector 1, a locking rod 8 that is fixedly installed on both sides of the inner wall of the sliding groove 4, a locking groove 10 that is opened on the top of the side wall of the computer connector interface 2, a locking hole 11 that is opened on both sides of the inner wall of the locking groove 10, one end of the locking rod 8 engaging with the inner wall of the locking hole 11, and two sets of horizontally movable adjusting plates 9 that are provided on the top of the computer connector 1.
[0018] Please see Figure 6 and Figure 8 A slide rod 5 is fixedly installed inside the slide groove 4, and a slider 6 is slidably installed on the side wall of the slide rod 5. A pressure spring 7 is installed inside the slide groove 4. A cavity 3 is opened on the side wall of the computer connector 1, and the slide groove 4 is connected to the cavity 3. One end of the inner wall of the adjusting plate 9 is fixedly connected to the outer end of the slider 6. The operator holds the computer connector 1 with one hand and pinches the inner ends of the two sets of adjusting plates 9 with his thumb and forefinger at the same time. The two adjusting plates 9 drive the two sliders 6 to slide along the slide rod 5 into the slide groove 4. The other end of the locking rod 8 is fixedly connected to the outer wall of the slider 6. One end of the pressure spring 7 is fixedly connected to the inner wall of the slider 6, and the other end of the pressure spring 7 is fixedly connected to the inner wall of the slider 6. When the slider 6 moves, it compresses the pressure spring 7, and at the same time drives the locking rod 8 to retract into the slide groove 4, so that the locking mechanism is in the unlocked state.
[0019] Please see Figure 2 and Figure 4The inner wall of cavity 3 is provided with a connector data serial port 12, and the side wall of computer connection interface 2 is provided with an interface data serial port 13. The connector data serial port 12 and the interface data serial port 13 form a snap-fit engagement, keeping the adjustment plate 9 in a pinched state. The connector data serial port 12 and the interface data serial port 13 are aligned and plugged in. Insert blocks 14 are fixedly provided on both sides of the bottom of the inner wall of cavity 3, and insertion holes 15 are opened on both sides of the bottom of the side wall of computer connection interface 2. The insert blocks 14 on the inner wall of cavity 3 are simultaneously inserted into the insertion holes 15 on the side wall of interface, forming the first stage of mechanical positioning.
[0020] Please see Figure 3 and Figure 5 Both sides of the inner wall of the cavity 3 are fixedly provided with insert plates 16, and both sides of the side wall of the computer connection interface 2 are provided with slots 17. The insert plates 16 on the inner wall of the cavity 3 are simultaneously inserted into the slots 17 on the side wall of the interface to form a second-level anti-torsional positioning. The insert block 14 and the socket 15 form a locking engagement, and the insert plate 16 and the slot 17 form a locking engagement. Through the dual-level positioning system of the insert block 14 and the socket 15, and the insert plate 16 and the slot 17, the tensile strength and torsional strength of the interface are improved, effectively solving the defect of easy loosening of traditional interfaces.
[0021] When the computer conductive connection device is in use, it enables quick plugging and unplugging and stable connection between the computer device and external devices through a mechanical locking mechanism; During connection, the operator holds the computer connection connector 1 with one hand, pinching the inner ends of the two sets of adjustment plates 9 with the thumb and forefinger. The adjustment plates 9 on both sides drive the sliders 6 on both sides to slide along the slide rod 5 into the slide groove 4. When the sliders 6 move, they compress the pressure spring 7, which in turn drives the locking rod 8 to retract into the slide groove 4, so that the locking mechanism is in the unlocked state. Then, while keeping the adjustment plates 9 pinched, the connector data serial port 12 and the interface data serial port 13 are aligned and plugged in. At this time, the plug 14 on the inner wall of the cavity 3 is inserted into the plug hole 15 on the side wall of the interface to form the first level of mechanical positioning. In addition, the plug plate 16 on the inner wall of the cavity 3 is inserted into the slot 17 on the side wall of the interface to form the second level of anti-torsion positioning. When the data serial port is fully plugged in, the locking rods 8 on both sides just enter the locking groove 10 space on the side wall of the interface, and then the adjustment plate 9 is released. Under the action of elastic potential energy, the pressure spring 7 pushes the slider 6 to reset along the slider 5 to the outside, and drives the locking rod 8 to insert into the locking hole 11 on the inner wall of the locking groove 10, forming a three-level mechanical lock, so that the computer connection connector 1 and the computer connection interface 2 can achieve the effect of locking connection. During unlocking, the adjustment plate 9 is repeatedly engaged during the connection phase, causing the locking rods 8 on both sides to disengage from the locking holes 11 on both sides simultaneously. At this time, the connector is in the unlocked state. Moving it outwards will quickly separate the connector from the interface. At this time, the separation process of the plug block 14 and the plug hole 15, and the plug plate 16 and the slot 17 forms a reverse unlocking sequence, ensuring that the data serial port is smoothly disconnected. This computer conductive connection device adopts a dual-adjustment plate 9 linkage design, enabling the entire process of unlocking, plugging, and locking to be completed with one hand. Compared with the traditional bolt fixing method, the efficiency is improved. Through the three-level positioning system of plug block 14 and plug hole 15, plug plate 16 and slot 17, and locking rod 8 and locking hole 11, the tensile strength and torsional strength of the interface are improved, effectively solving the defect of easy loosening of traditional interfaces. At the same time, the locking mechanism is integrated into the connector body to avoid the easy damage defect of external buckle. The pressure spring 7 can still maintain a high elastic coefficient, ensuring functional stability throughout the product life cycle. In summary, this computer conductive connection device, through mechanical structural innovation, simplifies the complexity of interface operation from three levels—unlocking, plugging, and locking—to a single level—pinch-to-plug—while ensuring electrical performance. This reduces the complexity of interface operation and makes it particularly suitable for scenarios requiring frequent plugging and unplugging, such as data centers and mobile workstations, significantly improving equipment maintenance efficiency and user experience.
[0022] Through the above steps, when the computer conductive connection device is in use, during connection, the operator holds the computer connection connector 1 with one hand, and simultaneously pinches the inner ends of the two sets of adjustment plates 9 with the thumb and forefinger. The adjustment plates 9 on both sides drive the locking rods 8 on both sides to retract into the slide groove 4, thus unlocking the locking mechanism. Then, while keeping the adjustment plates 9 pinched, the computer connection connector 1 is aligned and inserted into the computer connection interface 2. When the computer connection connector 1 is fully inserted, the locking rods 8 on both sides just enter the locking groove 10 space on the side wall of the interface. The adjustment plates 9 are then released, and under the action of elastic potential energy, the slider 6 is pushed to return to its original position along the slide rod 5, causing the locking rods 8 to insert into the locking holes 11 on the inner wall of the locking groove 10, forming... The device employs a mechanical locking mechanism, which locks the computer connector 1 to the computer interface 2. During unlocking, the adjustment plate 9, which operates in the same manner as during the connection phase, engages, causing the locking rods 8 on both sides to disengage from the locking holes 11. At this point, the connector is unlocked, and it can be quickly separated from the interface by sliding it outwards. In summary, this computer conductive connection device, through mechanical structural innovation, simplifies the interface operation from three levels (unlocking, plugging, and locking) to a single level (kneading and plugging) while maintaining electrical performance. This reduces the complexity of interface operation and is particularly suitable for scenarios requiring frequent plugging and unplugging, such as data centers and mobile workstations, significantly improving equipment maintenance efficiency and user experience.
[0023] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present invention.
Claims
1. A computer conductive interface assembly, comprising a computer connector (1), wherein a matching computer connector (2) is provided on one side of the computer connector (1), characterized in that: The computer connector (1) has a sliding groove (4) through the top of the inner wall on both sides. A locking rod (8) is fixedly installed on both sides of the inner wall of the sliding groove (4). A locking groove (10) is opened on the top of the side wall of the computer connector (2). A locking hole (11) is opened on both sides of the inner wall of the locking groove (10). One end of the locking rod (8) is engaged with the inner wall of the locking hole (11). Two sets of horizontally movable adjustment plates (9) are provided on the top of the computer connector (1).
2. The computer conductive interface assembly according to claim 1, characterized in that: A slide rod (5) is fixedly installed inside the slide groove (4), and a slider (6) is slidably installed on the side wall of the slide rod (5). A pressure spring (7) is installed inside the slide groove (4). A cavity (3) is opened on the side wall of the computer connection connector (1). The slide groove (4) and the cavity (3) are connected in a through manner. One end of the inner wall of the adjustment plate (9) is fixedly connected to the outer end of the slider (6).
3. The computer conductive interface assembly according to claim 2, characterized in that: The other end of the locking rod (8) is fixedly connected to the outer wall of the slider (6), one end of the pressure spring (7) is fixedly connected to the inner wall of the slider (6), and the other end of the pressure spring (7) is fixedly connected to the inner wall of the slider (6).
4. The computer conductive interface assembly according to claim 2, characterized in that: The inner wall of the cavity (3) is provided with a connector data serial port (12), and the side wall of the computer connection interface (2) is provided with an interface data serial port (13). The connector data serial port (12) and the interface data serial port (13) form a snap-fit engagement.
5. The computer conductive interface assembly according to claim 2, characterized in that: Insert blocks (14) are fixedly installed on both sides of the bottom of the inner wall of the cavity (3), and insertion holes (15) are opened on both sides of the bottom of the side wall of the computer connection interface (2).
6. The computer conductive interface assembly according to claim 5, characterized in that: Insert plates (16) are fixedly installed on both sides of the inner wall of the cavity (3), and slots (17) are opened on both sides of the side wall of the computer connection interface (2).
7. The computer conductive interface assembly according to claim 6, characterized in that: The insert (14) and the socket (15) are engaged, and the insert plate (16) and the slot (17) are engaged.