Switch

By incorporating clips and threaded post structures on the switch, combined with rectangular and cylindrical sections to distribute tension, the problem of network cable plugs and sockets being damaged by pulling is solved, achieving stable network cable connections, reducing wear, and extending equipment lifespan.

CN121888129APending Publication Date: 2026-04-17王闯
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2023-10-17
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

The network cable plugs and ports of a switch are easily damaged by pulling.

Method used

A switch was designed that uses clips and threaded post structures on the body to hold the network cable to prevent the pulling force from being directly transmitted to the plug and socket. The pull force is distributed by rectangular blocks and cylindrical parts, and the friction is reduced by compression springs and rollers, thus achieving a stable connection of the network cable.

Benefits of technology

It effectively prevents damage to network cable plugs and sockets due to pulling, ensures stable network cable connections, reduces wear and tear, and extends the lifespan of equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the field of networks, in particular to a switch. Comprising a machine body, a plurality of inserting openings are formed in the front side of the machine body, a second clamping piece is arranged on the upper side of the machine body, threaded columns are fixed to the left end and the right end of a first clamping piece, the two threaded columns are inserted into the two ends of the second clamping piece in a clearance fit mode respectively, and each threaded column is in threaded connection with a nut. The rear sides of the second clamping piece and the first clamping piece are inclined downwards. A rectangular block is arranged on the upper side of the machine body, and a cylindrical part is arranged on the rear portion of the rectangular block. And a plurality of wire slots are formed in the rectangular block and the cylindrical part from left to right. Damage to the plug and the jack when the network cable is pulled can be prevented.
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Description

Technical Field

[0001] This invention relates to the field of networking, and more specifically to a switch. Background Technology

[0002] A switch is a network device used to connect multiple computers or other network devices to enable data transmission and exchange. It forwards data packets from one port to another based on the destination address, thus facilitating communication between different devices. Switches can provide high-speed data transmission and low latency, enabling devices in the network to communicate quickly and reliably. However, switches require multiple network cables to be connected; if these cables are pulled, significant force can be applied to the connectors and sockets, potentially causing damage. Summary of the Invention

[0003] To overcome the shortcomings of the prior art, the present invention provides a switch that has the advantage of preventing damage to the plug and socket when pulling the network cable.

[0004] A switch includes a body with multiple ports on the front side and a clamping plate on the upper side. Threaded posts are fixed to both ends of the clamping plate, and the two threaded posts are respectively inserted into the two ends of the clamping plate with clearance fit. A nut is threaded onto each threaded post.

[0005] The second clip and the first clip are inclined downwards on their rear sides.

[0006] A rectangular block is provided on the upper side of the body, and a cylindrical part is provided at the rear of the rectangular block.

[0007] Multiple grooves are provided on the rectangular block and cylindrical part from left to right. Attached Figure Description

[0008] The present invention will now be described in further detail with reference to the accompanying drawings and specific implementation methods.

[0009] Figure 1 A schematic diagram of the switch structure Figure 1 ;

[0010] Figure 2 A schematic diagram of the switch structure Figure 2 ;

[0011] Figure 3 A structural diagram of a rectangular block, a support, a round rod, and a network cable. Figure 1 ;

[0012] Figure 4 A structural diagram of a rectangular block, a support, a round rod, and a network cable. Figure 2 ;

[0013] Figure 5Schematic diagram of the flat plate structure Figure 1 ;

[0014] Figure 6 Schematic diagram of the flat plate structure Figure 2 ;

[0015] Figure 7 This is a schematic diagram of the organism's structure.

[0016] In the diagram: Rectangular block 101; Cylindrical part 102; Protrusion 103; Screw 104; Side groove 105; Stop block 106; Wire groove 107;

[0017] Support 201; Guide rod 202; Boss 203;

[0018] 301 round rod; 302 insert post; 303 round plate;

[0019] Network cable 401; plug 402;

[0020] Flat plate 501; sliding plate 502; limiting plate 503; vertical column 504; arc plate 505; roller 506;

[0021] Body 601; Clamping plate one 602; Threaded post 603; Clamping plate two 604; Socket 605. Detailed Implementation

[0022] like Figure 7 As shown, this example can prevent damage to the plug 402 and the socket 605 caused by direct force when the network cable 401 is pulled.

[0023] The switch includes a chassis 601. The front of chassis 601 has multiple ports 605. The upper side of chassis 601 has a clip 604. Both ends of clip 602 are welded with threaded posts 603. The two threaded posts 603 are respectively fitted into the ends of clip 604 with a clearance fit. Each threaded post 603 has a nut threaded onto it. The connector 402 of the network cable 401 is plugged into a port 605. Therefore, the switch chassis 601... 1. Connect multiple network cables 401; the multiple network cables 401 pass between clip 2 604 and clip 1 602. Rotate the nuts on the two threaded posts 603 to clamp clip 2 604 and clip 1 602 on both sides of the network cable 401, thereby clamping the network cable 401 between clip 2 604 and clip 1 602, preventing the plug 402 and socket 605 from being directly subjected to force when the network cable 401 is pulled, which would cause damage to the plug 402 and socket 605.

[0024] like Figure 7 As shown, this example can conveniently transfer the tension received by the network cable 401 to clip 604 and clip 602.

[0025] Because clip 2 604 and clip 1 602 are tilted downwards at the rear, it is convenient to transfer the tension received by the network cable 401 to clip 2 604 and clip 1 602.

[0026] like Figure 3-4 As shown, this example can prevent the tension received by the network cable 401 from being directly transmitted to the socket 605.

[0027] Since a rectangular block 101 is provided on the upper side of the body 601, and a cylindrical part 102 is provided at the rear of the rectangular block 101, and the network cable 401 also passes from the lower side of the rectangular block 101 around the cylindrical part 102 to reach the upper side of the rectangular block 101, when the network cable is pulled, the rectangular block 101 and the cylindrical part 102 bear the pulling force first, preventing the pulling force received by the network cable 401 from being directly transmitted to the socket 605.

[0028] like Figure 3-4 As shown, this example can prevent the network cable 401 from moving left and right relative to the rectangular block 101 and the cylindrical part 102.

[0029] Since multiple wire grooves 107 are provided on the rectangular block 101 and the cylindrical part 102 from left to right, the network cable 401 passes through the positions of the multiple wire grooves 107 to prevent the network cable 401 from moving left and right relative to the rectangular block 101 and the cylindrical part 102.

[0030] like Figure 3-7 As shown, this example can achieve the effect of giving the cylindrical part 102 and the rectangular block 101 a forward force when the network cable 401 is pulled.

[0031] Since the rectangular block 101 has side slots 105 on both sides, the upper left and right ends of the body 601 are connected to the support 201 by screws. The upper parts of the two supports 201 are slidably connected to the two side slots 105 respectively. Each side slot 105 has a stop block 106 welded to the front. The stop block 106 prevents the support 201 from detaching from the side slot 105 from the front. When the network cable 401 is pulled, it gives the cylindrical part 102 and the rectangular block 101 a forward force. At this time, the rectangular block 101 slides forward on the two supports 201, passing the network cable 401 around the rectangular block 101 and the cylindrical part 102 as a spare for the network cable 401, preventing the pulling force received by the network cable 401 from being directly applied to the socket 605.

[0032] like Figure 3-4 As shown, this example demonstrates how a compression spring can return the rectangular block 101 and the cylindrical part 102 to their original positions.

[0033] Since both sides of the cylindrical part 102 are welded with bosses 203, and both bosses 203 are welded with guide rods 202, the front parts of the two guide rods 202 are slidably connected to the two supports 201 respectively. Each guide rod 202 is fitted with a compression spring, which is located between the support 201 and the bosses 203. When the rectangular block 101 and the cylindrical part 102 slide forward, the two guide rods 202 slide forward. At this time, the compression springs on the two guide rods 202 are compressed, and the compression springs return the rectangular block 101 and the cylindrical part 102 to their original positions.

[0034] like Figure 3-7 As shown, this example can achieve the effect of keeping network cable 401 always inside the cable slot 107.

[0035] Two vertical columns 504 are welded to the upper rear part of the body 601. Each vertical column 504 has a limit plate 503 at both ends. Two flat plates 501 are arranged vertically and vertically, pressing on both sides of the rectangular block 101. Each flat plate 501 has an arc plate 505 welded to its rear. The two arc plates 505 press on both sides of the cylindrical part 102. Each arc plate 505 has a slider 502 welded to both ends. The slider 502 is slidably connected to the corresponding vertical column 504. Each vertical column 504 has a compression spring sleeved at both ends. The four compression springs are located on the outside of the four sliders 502. The four compression springs exert a force on the two flat plates 501 and the two arc plates 505 to bring them closer together, so that the two arc plates 505 press on both sides of the cylindrical part 102 and the two flat plates 501 press on both sides of the rectangular block 101, thereby pressing the network cable 401 so that the network cable 401 is always inside the cable tray 107.

[0036] like Figure 5-6 As shown, this example demonstrates how to make it easy for the rectangular block 101 to slide forward between two flat plates 501.

[0037] Each plate 501 has a roller 506 rotatably connected to its front. The roller 506 reduces the friction between the rectangular block 101 and the plate 501, making it easier for the rectangular block 101 to slide forward between the two plates 501.

[0038] like Figure 3-4 As shown, this example can achieve the effect of making the rectangle 101 bypass the longer part of the network cable 401.

[0039] Since two posts 302 are inserted into the rear side of the cylindrical part 102, and a round rod 301 is welded between the rear parts of the two posts 302, a round plate 303 is welded to both ends of each round rod 301, and a protrusion 103 is welded to both ends of the cylindrical part 102. A screw 104 is threaded onto each protrusion 103. The two screws 104 press on the two posts 302 respectively. When the rectangular block 101 needs to pass around the longer part of the network cable 401, the two posts 302 are inserted into the cylindrical part 102, and then the round rod 301 is installed on the rear side of the cylindrical part 102, so that the network cable 401 that should pass around the cylindrical part 102 passes around the round rod 301, thereby allowing the rectangular block 101 to pass around the longer part of the network cable 401.

[0040] like Figure 3-7 As shown, the switch also includes a network cable 401, which has a plug 402. The plug 402 is inserted into the socket 605. The network cable 401 passes between two clips 602 and 604, and then passes under the cable tray 107, through the cylindrical part 102, and around to the upper side of the cable tray 107.

Claims

1. A switch, comprising a body (601), characterized in that: The front side of the body (601) is provided with multiple insertion ports (605), and the upper side of the body (601) is provided with a clamping plate two (604). The left and right ends of the clamping plate one (602) are fixed with threaded posts (603). The two threaded posts (603) are respectively inserted into the two ends of the clamping plate two (604) with clearance fit. Each threaded post (603) is threaded with a nut.

2. A switch according to claim 1, characterized in that: The rear sides of clip two (604) and clip one (602) are inclined downward.

3. A switch according to claim 1, characterized in that: A rectangular block (101) is provided on the upper side of the body (601), and a cylindrical part (102) is provided at the rear of the rectangular block (101).

4. A switch according to claim 3, characterized in that: Multiple grooves (107) are provided on the rectangular block (101) and the cylindrical part (102) from left to right.

5. A switch according to claim 4, characterized in that: The rectangular block (101) has side grooves (105) on both sides, and supports (201) are fixed at both ends of the upper side of the body (601). The upper parts of the two supports (201) are slidably connected to the two side grooves (105), and a stop block (106) is fixed at the front of each side groove (105).

6. A switch according to claim 5, characterized in that: Both sides of the cylindrical part (102) are fixed with a boss (203), and a guide rod (202) is fixed on each of the two bosses (203). The front parts of the two guide rods (202) are slidably connected to the two supports (201). A compression spring is sleeved on each guide rod (202), and the compression spring is located between the support (201) and the boss (203).

7. A switch according to claim 6, characterized in that: Two vertical columns (504) are fixed to the upper rear part of the body (601). Each vertical column (504) has a limit plate (503) at both ends. Two flat plates (501) are set up one above the other and press on both sides of the rectangular block (101). Each flat plate (501) has an arc plate (505) fixed to its rear. The two arc plates (505) press on both sides of the cylindrical part (102). Each arc plate (505) has a slider (502) fixed at both ends. The slider (502) is slidably connected to the corresponding vertical column (504). Each vertical column (504) has a compression spring at both ends. The four compression springs are located on the outside of the four sliders (502).

8. A switch according to claim 7, characterized in that: Each of the flat plates (501) is rotatably connected to a roller (506) at its front.

9. A switch according to claim 8, characterized in that: Two inserts (302) are inserted into the rear side of the cylindrical part (102). A round rod (301) is fixed between the rear parts of the two inserts (302). A round piece (303) is fixed at both ends of each round rod (301). A protrusion (103) is fixed at both ends of the cylindrical part (102). A screw (104) is threaded onto each protrusion (103). The two screws (104) are pressed onto the two inserts (302) respectively.

10. A switch according to claim 9, characterized in that: It also includes a network cable (401), which has a plug (402) inserted into a socket (605). The network cable (401) passes between two clips (602) and clip (604), and then passes under the cable tray (107) through the cylindrical part (102) to the upper side of the cable tray (107).