A computer network device debugging apparatus
By introducing a fixing and protection structure into the debugger, the problems of unstable and easily damaged fiber optic connections are solved, achieving stable connection and protection between the fiber optic cable and the connector, and ensuring the normal operation of network equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- GUANGZHOU YUYUN INFORMATION TECHNOLOGY CO LTD
- Filing Date
- 2026-06-15
- Publication Date
- 2026-07-31
AI Technical Summary
Existing debuggers have weak connections when connecting to fiber optic cables, making them prone to detachment. Furthermore, the fiber optic cables are easily damaged and lack protection, affecting the stability and security of network equipment.
It adopts a fixed structure and a protective structure, including a connecting clamp, a clamping plate, a winding roller and a transmission structure. The optical fiber is fixed by a torsion spring and an elastic element, and the winding roller is used to buffer external forces to ensure a stable connection between the optical fiber and the connector.
It effectively prevents the fiber optic cable from detaching from the connector, protects the fiber optic cable from damage, and ensures the stable operation and secure connection of network equipment.
Smart Images

Figure CN122496306A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of computer network technology, and in particular to a computer network equipment debugging device. Background Technology
[0002] With the development of networks and computers, a lot of important data and information are stored on computers or networks. In order to prevent this important information from being stolen or lost, it is necessary to use a debugger to monitor the network stably before connecting the computer to the network, so as to prevent network viruses from invading the computer.
[0003] When using existing debuggers, the connection between the connector and the optical fiber is not secure enough, and the connector is prone to separation from the optical fiber. At the same time, the optical fiber may be damaged or even destroyed when subjected to external force. Existing devices lack the ability to protect the optical fiber, which is not conducive to the normal use of the device. Summary of the Invention
[0004] The purpose of this invention is to address the shortcomings of existing technologies by proposing a computer network equipment debugging device.
[0005] To achieve the above objectives, the present invention adopts the following technical solution: A computer network equipment debugging device, comprising: A debugger, wherein a connection port is provided on the side wall of the debugger, the connection port is fixedly connected to the motherboard inside the debugger via a cable, and a fixed outer shell corresponding to the connection port is fixedly installed on the side wall of the debugger; A fixed structure includes a connecting shaft rotatably connected between the inner walls of a fixed housing. A connecting clamp is fixedly sleeved on the connecting shaft. A torsion spring is fixedly connected between the side wall of the connecting clamp and the inner wall of the fixed housing, and the torsion spring is sleeved on the outside of the connecting shaft. A fixed clamp corresponding to the connecting clamp is fixedly installed between the inner walls of the fixed housing. Both the connecting clamp and the fixed clamp have a through hole, which is semi-circular. A connecting groove is formed on the inner wall of each connecting groove. A clamping plate is slidably connected between the inner walls of each connecting groove. An elastic element is fixedly connected between each clamping plate and the inner wall of the corresponding connecting groove.
[0006] Preferably, a protective structure is installed on the inner side of the fixed housing. The protective structure includes a fixed shaft rotatably connected between the inner walls of the fixed housing, a winding roller fixedly sleeved on the fixed shaft, a connecting block fixedly connected to the winding roller, a connecting pressure block slidably connected between the connecting blocks, a sliding block fixedly connected to the side wall of the connecting pressure block, a sliding groove corresponding to each sliding block on the connecting block, a connecting spring fixedly connected between the inner wall of each sliding block and the sliding groove, rounded corners on the side wall of the connecting pressure block, a flexible protective layer fixedly wrapped around the top of the connecting pressure block, and a transmission structure installed on the inner side of the fixed housing.
[0007] Preferably, the transmission structure includes a mounting shaft rotatably connected to the inner wall of the fixed housing. A mounting gear is rotatably mounted on the side wall of the mounting shaft via a one-way shaft. A connecting gear that meshes with the mounting gear is fixedly sleeved on the fixed shaft. The mounting shaft and the connecting shaft are connected by a belt drive assembly. A protective shell is fixedly connected to the side wall of the fixed housing. The protective shell covers and installs the mounting gear and the connecting gear, and the protective shell has an opening corresponding to the belt drive assembly.
[0008] Preferably, one end of the connecting shaft passes through the fixed housing and extends to the outside of the fixed housing. A rotating block is fixedly connected to the end of the connecting shaft located on the outside of the fixed housing. A limiting ring is fixedly sleeved on the side wall of the portion of the connecting shaft located on the outside of the fixed housing. A limiting block corresponding to the limiting ring is fixedly installed on the side wall of the fixed housing.
[0009] Preferably, the sidewall of the rotating block is engraved with anti-slip texture.
[0010] Preferably, the outer sides of the fixing clamp, the connecting clamp, and the clamping plate are all fixedly wrapped with a sealing layer.
[0011] Preferably, a support leg is fixedly installed at the bottom of the debugger, and a shock-absorbing pad is fixedly installed at the bottom of the support leg.
[0012] Preferably, the debugger has ventilation holes on its side wall, and indicator lights are fixedly installed on the debugger.
[0013] Compared with the prior art, the beneficial effects of the present invention are: when the optical fiber is subjected to external force, the optical fiber wound on the winding roller will be ejected to buffer the external force, thereby protecting the optical fiber and the connection between the optical fiber and the connector, and preventing the normal operation of the optical fiber from being affected. At the same time, the fixed clamp, connecting clamp and holding plate are used to fix and hold the optical fiber, and fix the part of the optical fiber connected to the connector to prevent the two from falling off and separating, which is beneficial to the use of the device. Attached Figure Description
[0014] Figure 1This is a three-dimensional structural diagram of a computer network equipment debugging device proposed in this invention; Figure 2 This is a side-view three-dimensional structural diagram of a computer network equipment debugging device proposed in this invention; Figure 3 This is a three-dimensional structural diagram of the transmission structure of a computer network equipment debugging device proposed in this invention; Figure 4 This is a three-dimensional schematic diagram of the mounting gear of a computer network equipment debugging device proposed in this invention; Figure 5 for Figure 3 Enlarged view of point A in the middle.
[0015] In the diagram: 1. Debugger, 2. Fixed housing, 3. Fixed shaft, 4. Winding roller, 5. Transmission structure, 51. Protective housing, 52. Mounting shaft, 53. Mounting gear, 54. Belt drive assembly, 55. Connecting gear, 6. Connecting shaft, 7. Connecting clamp, 8. Fixed clamp, 9. Connecting through hole, 10. Connecting groove, 11. Clamping plate, 12. Elastic element, 13. Connecting block, 14. Connecting pressure block, 15. Rotating block, 16. Torsion spring, 17. Sliding block, 18. Sliding groove, 19. Connecting spring, 20. Limiting ring. Detailed Implementation
[0016] Reference Figures 1-5 A computer network equipment debugging device, comprising: Debugger 1 has a connection port on its side wall. The connection port is fixedly connected to the motherboard inside the debugger 1 via a cable. A fixed outer shell 2 corresponding to the connection port is fixedly installed on the side wall of the debugger 1. The computer is connected to the connection port of the debugger 1 via an optical fiber. The debugger 1 is used to debug and control network devices to ensure the stability and security of the network when the computer is running. The fixed structure includes a connecting shaft 6 rotatably connected between the inner walls of the fixed housing 2. A connecting clamp 7 is fixedly sleeved on the connecting shaft 6. A torsion spring 16 is fixedly connected between the side wall of the connecting clamp 7 and the inner wall of the fixed housing 2, and the torsion spring 16 is sleeved on the outside of the connecting shaft 6. A fixed clamp 8 corresponding to the connecting clamp 7 is fixedly installed between the inner walls of the fixed housing 2. Both the connecting clamp 7 and the fixed clamp 8 have a connecting through hole 9 that passes through them. The connecting through hole 9 is semi-circular, and the connecting through holes 9 on the upper and lower sides are circular as a whole. A connecting groove 10 is opened on the inner wall of each connecting through hole 9. A clamping plate 11 is slidably connected between the inner walls of each connecting groove 10. An elastic element 12 is fixedly connected between each clamping plate 11 and the inner wall of the corresponding connecting groove 10. Rotating the connecting shaft 6 opens the connecting clamp 7. At this time, the torsion spring 16 deforms, connecting the optical fiber to the connector. Then, the elastic force of the torsion spring 16 causes the connecting shaft 6 to return to its original position, which in turn drives the connecting clamp 7 to return to its original position. The optical fiber is located at the connecting through hole 9. The optical fiber will squeeze the clamping plate 11 at the connecting through hole 9, thereby moving the clamping plate 11 and deforming the elastic element 12. The elastic force of the elastic element 12 causes the clamping plate 11 to fix and hold the optical fiber, ensuring the stability of the connection between the optical fiber and the debugger 1 and preventing them from separating. A protective structure is installed on the inner side of the fixed housing 2. The protective structure includes a fixed shaft 3 rotatably connected between the inner walls of the fixed housing 2, a winding roller 4 fixedly sleeved on the fixed shaft 3, a connecting block 13 fixedly connected on the winding roller 4, a connecting pressure block 14 slidably connected between the connecting blocks 13, a sliding block 17 fixedly connected to the side wall of the connecting pressure block 14, a sliding groove 18 corresponding to each sliding block 17 on the connecting block 13, a connecting spring 19 fixedly connected between the inner walls of each sliding block 17 and the sliding groove 18, a rounded corner on the side wall of the connecting pressure block 14, a flexible protective layer fixedly wrapped around the top of the connecting pressure block 14, and a transmission structure 5 installed on the inner side of the fixed housing 2. Lifting the connecting pressure block 14 causes the sliding block 17 to move, deforming the connecting spring 19 and allowing the optical fiber to pass between the connecting pressure block 14 and the winding roller 4. Releasing the connecting pressure block 14 allows the connecting pressure block 14 to fix the optical fiber onto the winding roller 4 under the elastic force of the connecting spring 19. Under the action of the transmission structure 5, the fixed shaft 3 rotates, causing the winding roller 4 to rotate as well, making the connecting pressure block 14 and the optical fiber rotate together. This causes the optical fiber to wind around the outside of the connecting pressure block 14 and the winding roller 4. Therefore, when the optical fiber is pulled, the winding roller 4 will rotate, expelling the optical fiber from the winding roller 4 and protecting the optical fiber itself and its connection. The transmission structure 5 includes a mounting shaft 52 rotatably connected to the inner wall of the fixed housing 2. A mounting gear 53 is rotatably mounted on the side wall of the mounting shaft 52 via a one-way shaft, so that the mounting shaft 52 can only rotate in one direction. That is, when the connecting gear 55 rotates back, the rotation of the mounting gear 53 will not drive the mounting shaft 52 to rotate. A connecting gear 55 that meshes with the mounting gear 53 is fixedly sleeved on the fixed shaft 3. The diameter of the connecting gear 55 is smaller than the diameter of the mounting gear 53. Therefore, one rotation of the mounting gear 53 will cause the connecting gear 55 to rotate multiple times. The mounting shaft 52 and the connecting shaft 6 are connected by a belt drive assembly 54. A protective shell 51 is fixedly connected to the side wall of the fixed housing 2. The protective shell 51 covers and installs the mounting gear 53 and the connecting gear 55, and the protective shell 51 has an opening corresponding to the belt drive assembly 54. When the connecting shaft 6 rotates, the mounting shaft 52 rotates along with the belt drive assembly 54, which drives the mounting gear 53 to rotate together, causing the connecting gear 55 meshing with the mounting gear 53 to rotate together, and causing the fixed shaft 3 fixedly connected to the connecting gear 55 to rotate along with it. One end of the connecting shaft 6 passes through the fixed housing 2 and extends to the outside of the fixed housing 2. A rotating block 15 is fixedly connected to the end of the connecting shaft 6 located on the outside of the fixed housing 2. A limit ring 20 is fixedly sleeved on the side wall of the part of the connecting shaft 6 located on the outside of the fixed housing 2. A limit block corresponding to the limit ring 20 is fixedly installed on the side wall of the fixed housing 2. The side wall of the rotating block 15 is engraved with anti-slip texture. Rotating the rotating block 15 can make the connecting shaft 6 rotate. At the same time, the limit ring 20 and the limit block cooperate to limit the rotation angle of the rotating block 15, so that the connecting clamp 7 can only rotate ninety degrees. The outer sides of the fixed clamping plate 8, the connecting clamping plate 7, and the clamping plate 11 are all fixedly wrapped with a sealing layer to seal the inner sides of the fixed clamping plate 8 and the connecting clamping plate 7, preventing dust from entering and affecting the connection. A support leg is fixedly installed at the bottom of the debugger 1, and a shock-absorbing pad is fixedly installed at the bottom of the support leg. The support leg and the shock-absorbing pad support the debugger 1, enabling the debugger 1 to operate better. Ventilation holes are opened on the side wall of the debugger 1, and an indicator light is fixedly installed on the debugger 1 to display the operating status of the debugger 1.
[0017] In this invention, when the device is in use, first rotate the rotating block 15, causing the connecting shaft 6 to rotate, which in turn drives the connecting clamp 7 to rotate, opening the connecting clamp 7. At this time, the torsion spring 16 deforms. Then, lift the connecting pressure block 14, causing the sliding block 17 to move, allowing the connecting spring 19 to deform, and pass the optical fiber between the connecting pressure block 14 and the winding roller 4. Release the connecting pressure block 14, and under the action of the elastic force of the connecting spring 19, the connecting pressure block 14 fixes the optical fiber on the winding roller 4. Then, release the elastic force of the rotating block 15 and the torsion spring 16 to return the connecting shaft 6 to its original position, driving the connecting clamp 7 to return to its original position. The optical fiber is located at the connecting through hole 9, and the optical fiber will squeeze the clamping plate 11 at the connecting through hole 9, thereby causing the clamping plate 11 to move, causing the elastic element 12 to deform. The elastic force of the elastic element 12 causes the clamping plate 11 to fix and clamp the optical fiber. This ensures a stable connection between the optical fiber and the debugger 1, preventing separation. Simultaneously, when the connecting shaft 6 returns to its original position, it rotates. Under the action of the belt drive assembly 54, the mounting shaft 52 rotates accordingly, driving the mounting gear 53 to rotate as well. This causes the connecting gear 55, meshing with the mounting gear 53, to rotate, and the fixed shaft 3, fixedly connected to the connecting gear 55, to rotate as well. The rotation of the fixed shaft 3 drives the winding roller 4 to rotate, causing the connecting pressure block 14 and the optical fiber to rotate together, winding the optical fiber to the outside of the connecting pressure block 14 and the winding roller 4. Therefore, when the optical fiber is pulled, the winding roller 4 rotates, expelling the optical fiber from the winding roller 4, protecting the optical fiber itself and its connection. At this time, the debugger 1 is used to debug and control the network equipment, ensuring the stability and security of the network during computer operation.
Claims
1. A computer network equipment debugging device, characterized in that, include: The debugger (1) has a connection port on its side wall. The connection port is fixedly connected to the motherboard inside the debugger (1) via a cable. The side wall of the debugger (1) is fixedly fitted with a fixed outer shell (2) corresponding to the connection port. The fixed structure includes a connecting shaft (6) rotatably connected between the inner walls of the fixed housing (2), a connecting clamp (7) fixedly sleeved on the connecting shaft (6), a torsion spring (16) fixedly connected between the side wall of the connecting clamp (7) and the inner wall of the fixed housing (2), and the torsion spring (16) sleeved on the outside of the connecting shaft (6), a fixed clamp (8) corresponding to the connecting clamp (7) fixedly installed between the inner walls of the fixed housing (2), a connecting through hole (9) through which the connecting clamp (7) and the fixed clamp (8) are opened, and the connecting through hole (9) is semi-circular, a connecting groove (10) is opened on the inner wall of each connecting through hole (9), a clamping plate (11) is slidably connected between the inner walls of each connecting groove (10), and an elastic element (12) is fixedly connected between each clamping plate (11) and the inner wall of the corresponding connecting groove (10).
2. The computer network device commissioning apparatus of claim 1, wherein, The inner side of the fixed housing (2) is equipped with a protective structure, which includes a fixed shaft (3) rotatably connected between the inner walls of the fixed housing (2), a winding roller (4) fixedly sleeved on the fixed shaft (3), a connecting block (13) fixedly connected on the winding roller (4), a connecting pressure block (14) slidably connected between the connecting blocks (13), a sliding block (17) fixedly connected to the side wall of the connecting pressure block (14), a sliding groove (18) corresponding to each sliding block (17) opened on the connecting block (13), a connecting spring (19) fixedly connected between the inner walls of each sliding block (17) and the sliding groove (18), a rounded corner opened on the side wall of the connecting pressure block (14), a flexible protective layer fixedly wrapped on the top of the connecting pressure block (14), and a transmission structure (5) installed on the inner side of the fixed housing (2).
3. The computer network device commissioning apparatus of claim 2, wherein, The transmission structure (5) includes a mounting shaft (52) rotatably connected to the inner wall of the fixed housing (2). The side wall of the mounting shaft (52) is rotatably mounted with a mounting gear (53) via a one-way shaft. A connecting gear (55) meshing with the mounting gear (53) is fixedly sleeved on the fixed shaft (3). The mounting shaft (52) and the connecting shaft (6) are connected by a belt drive assembly (54). A protective shell (51) is fixedly connected to the side wall of the fixed housing (2). The protective shell (51) covers and installs the mounting gear (53) and the connecting gear (55), and the protective shell (51) has an opening corresponding to the belt drive assembly (54).
4. The computer network device commissioning apparatus of claim 1, wherein, One end of the connecting shaft (6) passes through the fixed housing (2) and extends to the outside of the fixed housing (2). A rotating block (15) is fixedly connected to the end of the connecting shaft (6) located outside the fixed housing (2). A limiting ring (20) is fixedly sleeved on the side wall of the part of the connecting shaft (6) located outside the fixed housing (2). A limiting block corresponding to the limiting ring (20) is fixedly installed on the side wall of the fixed housing (2).
5. The computer network device commissioning apparatus of claim 4, wherein, The sidewall of the rotating block (15) is engraved with anti-slip texture.
6. The computer network device commissioning apparatus of claim 1, wherein, The outer sides of the fixed clamp (8), the connecting clamp (7), and the clamping plate (11) are all fixedly wrapped with a sealing layer.
7. The computer network device commissioning apparatus of claim 1, wherein, The bottom end of the debugger (1) is fixedly equipped with a support leg, and the bottom end of the support leg is fixedly equipped with a shock-absorbing pad.
8. The computer network device commissioning apparatus of claim 1, wherein, The side wall of the debugger (1) has ventilation holes, and an indicator light is fixedly installed on the debugger (1).