Heat dissipation integrated multi-access switching equipment
The design of the integrated heat dissipation multi-access switching equipment allows for quick removal and re-fixing, solving the problems of cumbersome installation and loosening caused by bolt connections, and improving the equipment replacement efficiency and heat dissipation performance.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-17
- Publication Date
- 2026-03-17
AI Technical Summary
Existing multi-access switching equipment is fixed by bolt connection, which makes installation and maintenance cumbersome. Bolts are prone to loosening due to thermal expansion and contraction or corrosion, affecting equipment stability and increasing safety hazards.
The device employs an integrated heat dissipation multi-access switching equipment. By pulling the pull plate, the connecting block is slidable. The connecting block drives the slider and the gear plate to mesh with a gear system, which enables quick release and re-fixing. Combined with the drive motor and fan blades of the heat dissipation components, the heat dissipation efficiency is improved.
It enables rapid replacement and installation, reduces equipment replacement and installation time costs, improves work efficiency, and enhances the heat dissipation performance of the equipment through heat dissipation components.
Smart Images

Figure CN224006728U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of switching equipment technology, and in particular to a multi-access switching device with integrated heat dissipation. Background Technology
[0002] Switching devices are key components in computer networks, primarily used to forward data packets between different network devices to enable communication between them. They forward data packets from the source device to the destination device based on the destination address of the data packet (such as MAC address or IP address).
[0003] Most existing multi-access switching equipment uses bolt connections to fix the switching equipment. The bolt fixing process is cumbersome, requires a long time and various tools, resulting in high manpower and time costs for installation and maintenance. In harsh environments such as high temperature or humidity, the bolts are prone to loosening due to thermal expansion and contraction or corrosion, which not only affects the stability of the equipment but also increases safety hazards. Utility Model Content
[0004] To address the technical problems of existing multi-access switching equipment, which mostly uses bolt connections for fixing, the bolt fixing process is cumbersome, and the bolts are prone to loosening due to thermal expansion and contraction or corrosion, this utility model provides a multi-access switching equipment with integrated heat dissipation.
[0005] The technical solution of this utility model is as follows: an integrated heat dissipation multi-access switching device, including a mounting base, a fixing block, and a heat dissipation assembly; the mounting base is provided with the multi-access switching device body at its upper end, the heat dissipation assembly is provided inside the multi-access switching device body, the fixing block is provided on one side of the multi-access switching device body, a first spring is provided inside the multi-access switching device body, a first slider is provided on one side of the first spring, a first locking block is provided on one side of the first slider to limit the fixing block, a connecting block is provided on one side of the first slider to drive the first slider to slide, a pull plate is provided on one side of the connecting block, a first toothed plate is provided on one side of the first slider, a gear is provided on one side of the first toothed plate, and the gear meshes with the first toothed plate; a first rotating shaft is provided inside the gear, a second toothed plate is provided outside the gear, and the second toothed plate meshes with the gear; a second slider is provided on one side of the second toothed plate, a second locking block is provided on one side of the second slider to limit the fixing block, and a second spring is provided on one side of the second slider.
[0006] Preferably, a groove is provided at the corresponding position of the mounting base and the fixing block, and the fixing block is engaged and connected inside the groove of the mounting base.
[0007] Preferably, the mounting base and the corresponding positions of the first and second sliders are provided with grooves, and the first and second sliders are slidably connected inside the grooves of the mounting base.
[0008] Preferably, a groove is provided at the corresponding position of the mounting base and the first rotating shaft, and the first rotating shaft is rotatably connected inside the groove of the mounting base.
[0009] Preferably, slots are provided at corresponding positions of the fixing block, the first locking block, and the second locking block, and the first locking block and the second locking block are engaged and connected inside the slots of the fixing block.
[0010] Preferably, the heat dissipation assembly includes a heat sink, a heat sink for exhaust is provided inside the multi-access switching device body, a mounting plate is provided inside the multi-access switching device body, a drive motor is provided on one side of the mounting plate, a first fan blade for heat dissipation is provided at the output end of the drive motor, a first pulley is provided at the output end of the drive motor, a transmission belt is provided outside the first pulley, a second pulley is provided inside the transmission belt, a second rotating shaft is provided inside the second pulley, and a second fan blade for heat dissipation is provided on one side of the second rotating shaft.
[0011] Preferably, a groove is provided at the corresponding position of the mounting plate and the second rotating shaft, and the second rotating shaft is rotatably connected inside the groove of the mounting plate.
[0012] The beneficial effects of this utility model are as follows: Compared with traditional multi-access switching equipment, most of which use bolt connections to fix the switching equipment, the bolt fixing process is cumbersome and the bolts are prone to loosening due to thermal expansion and contraction or corrosion. This device, by pulling a pull plate, causes the connecting block to slide, which in turn causes the first slider to slide, which in turn causes the first toothed plate to slide, which in turn causes the gear to rotate, which in turn causes the second toothed plate to slide, which in turn causes the second slider to slide. Through the first and second sliders, the first and second locking blocks are moved to slide, causing them to disengage from the inner side of the fixing block and releasing the limiting effect on the fixing block. This enables rapid replacement, which can significantly reduce the time for equipment replacement and installation, thereby improving overall work efficiency. Attached Figure Description
[0013] Figure 1 The diagram shown is a three-dimensional structural schematic of this utility model;
[0014] Figure 2 The diagram shown is a disassembled structural diagram of the mounting base and the multi-access switching device body of this utility model.
[0015] Figure 3 The diagram shown is a cross-sectional view of the first spring, first slider, first locking block, connecting block and pull plate assembly of this utility model.
[0016] Figure 4 The diagram shown is a cross-sectional view of the mounting base of this utility model.
[0017] Figure 5 The diagram shown is a cross-sectional view of the heat dissipation component of this utility model.
[0018] Explanation of reference numerals in the attached drawings: 1. Mounting base; 2. Multi-access switching equipment body; 301. Fixing block; 302. First spring; 303. First slider; 304. First locking block; 305. Connecting block; 306. Pull plate; 307. First toothed plate; 308. Gear; 309. First rotating shaft; 310. Second toothed plate; 311. Second slider; 312. Second locking block; 313. Second spring; 401. Heat sink; 402. Mounting plate; 403. Drive motor; 404. First fan blade; 405. First pulley; 406. Transmission belt; 407. Second pulley; 408. Second rotating shaft; 409. Second fan blade. Detailed Implementation
[0019] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0020] Please see Figure 1 - Figure 5This utility model provides an embodiment of an integrated heat dissipation multi-access switching device, including a mounting base 1, a fixing block 301, and a heat dissipation component; the mounting base 1 is provided with a multi-access switching device body 2 at its upper end, the multi-access switching device body 2 is provided with a heat dissipation component inside, the multi-access switching device body 2 is provided with a fixing block 301 on one side, the multi-access switching device body 2 is provided with a first spring 302 inside, the first spring 302 is provided with a first slider 303 on one side, the first slider 303 is provided with a first locking block 304 on one side to limit the fixing block 301, the first slider 303 is provided with a connecting block 305 to drive the first slider 303 to slide on one side, the connecting block 305 is provided with a pull plate 306 on one side, the first slider 303 is provided with a first toothed plate 307 on one side, the first toothed plate 307 is provided with a gear 308 on one side, the gear 308 meshes with the first toothed plate 307; the gear 308 is provided with a first rotating shaft 309 inside, the gear 308 is provided with a second toothed plate 310 outside, the second toothed plate 310 meshes with the gear 308.A second slider 311 is provided on one side of the second toothed plate 310. A second locking block 312 is provided on one side of the second slider 311 to limit the movement of the fixing block 301. A second spring 313 is provided on one side of the second slider 311. A groove is provided at the corresponding position of the mounting base 1 and the fixing block 301. The fixing block 301 is engaged and connected inside the groove of the mounting base 1. The grooves at the corresponding positions of the mounting base 1 and the fixing block 301 provide a limiting effect when the fixing block 301 is engaged inside the groove. A groove is provided at the corresponding position of the mounting base 1 and the first slider 303 and the second slider 311. The first slider 303 and the second slider 311 are slidably connected inside the groove of the mounting base 1. Slots are provided at corresponding positions on each of the mounting base 1 and the first rotating shaft 309, respectively. The first rotating shaft 309 is rotatably connected to the inside of the slot on the mounting base 1. The slots on the mounting base 1 and the first rotating shaft 309 provide a limiting effect when the first rotating shaft 309 rotates within the slot. Slots are also provided at corresponding positions on the fixing block 301, the first locking block 304, and the second locking block 312, respectively. The first locking block 304 and the second locking block 312 are engaged and connected to the inside of the slot on the fixing block 301. The slots on the fixing block 301 and the first locking block 304 and the second locking block 312 provide a limiting effect when the first rotating shaft 309 rotates within the slot. When the first locking block 304 and the second locking block 312 engage inside the groove, they act as a limiting mechanism. By pulling the pull plate 306, the pull plate 306 causes the connecting block 305 to slide, which in turn causes the first slider 303 to slide. The first slider 303 compresses the first spring 302, causing the first locking block 304 to slide and disengage from the inner side of the fixing block 301. The first slider 303 then causes the first toothed plate 307 to slide, which in turn causes the gear 308 to rotate. The gear 308 then causes the second toothed plate 310 to slide, which in turn causes the second slider 311 to slide. The second slider 311 compresses the second spring 313, causing the second locking block 312 to slide. The second locking block 312 is disengaged from the inner side of the fixing block 301, thereby releasing the limiting fixation of the fixing block 301. Then, the multi-access switching device body 2 is pulled, and the multi-access switching device body 2 drives the fixing block 301 to slide out for replacement. The fixing block 301 on one side of the replaced multi-access switching device body 2 is inserted into the mounting base 1. When the multi-access switching device body 2 is installed in place, the pull plate 306 is released. The first spring 302 and the second spring 313 drive the second slider 311 and the first slider 303 to slide. The first slider 303 and the second slider 311 drive the first locking block 304 and the second locking block 312 to slide, so that the first locking block 304 and the second locking block 312 engage with the fixing block 301 to fix the multi-access switching device body 2.
[0021] Please see Figure 5 In this embodiment, the heat dissipation assembly includes a heat dissipation plate 401. A heat dissipation plate 401 for exhaust is provided inside the multi-access switching device body 2. A mounting plate 402 is provided inside the multi-access switching device body 2. A drive motor 403 is provided on one side of the mounting plate 402. A first fan blade 404 for heat dissipation is provided at the output end of the drive motor 403. A first pulley 405 is provided at the output end of the drive motor 403. A transmission belt 406 is provided on the outer side of the first pulley 405. A second pulley 407 is provided inside the transmission belt 406. A second rotating shaft 408 is provided inside the second pulley 407. A second fan blade 409 for heat dissipation is provided on one side of the second rotating shaft 408. A groove is provided at the corresponding position of the mounting plate 402 and the second rotating shaft 408. The second rotating shaft 408 is rotatably connected inside the groove of the mounting plate 402. The groove at the corresponding position of the mounting plate 402 and the second rotating shaft 408 provides a limiting effect when the second rotating shaft 408 rotates inside the groove.
[0022] When replacing the multi-access switching device body 2, by pulling the pull plate 306, the pull plate 306 drives the connecting block 305 to slide, the connecting block 305 drives the first slider 303 to slide, the first slider 303 compresses the first spring 302, the first slider 303 drives the first locking block 304 to slide, causing the first locking block 304 to disengage from the inside of the fixing block 301, the first slider 303 drives the first toothed plate 307 to slide, the first toothed plate 307 drives the gear 308 to rotate, the gear 308 drives the second toothed plate 310 to slide, the second toothed plate 310 drives the second slider 311 to slide, the second slider 311 compresses the second spring 313, the second slider 311 drives the second locking block 312 to slide, causing the second locking block 312 to slide. 2. Disengage from the inner side of the fixing block 301, thereby releasing the limiting fixation of the fixing block 301. Then pull the multi-access switching device body 2. The multi-access switching device body 2 drives the fixing block 301 to slide out for replacement. Insert the fixing block 301 on one side of the replaced multi-access switching device body 2 into the mounting base 1. When the multi-access switching device body 2 is installed in place, release the pull plate 306. The first spring 302 and the second spring 313 drive the second slider 311 and the first slider 303 to slide. The first slider 303 and the second slider 311 drive the first locking block 304 and the second locking block 312 to slide, so that the first locking block 304 and the second locking block 312 engage with the fixing block 301 to fix the multi-access switching device body 2.
[0023] During heat dissipation, the drive motor 403 is started, which drives the first fan blade 404 and the first pulley 405 to rotate. The first pulley 405 drives the transmission belt 406 to rotate, the transmission belt 406 drives the second pulley 407 to rotate, the second pulley 407 drives the second rotating shaft 408 to rotate, and the second rotating shaft 408 drives the second fan blade 409 to rotate. The rotation of the first fan blade 404 and the second fan blade 409 accelerates the airflow inside the multi-access switching equipment body 2 and improves the heat dissipation efficiency.
[0024] Through the above steps, by pulling the pull plate 306, the pull plate 306 drives the connecting block 305 to slide, the connecting block 305 drives the first slider 303 to slide, the first slider 303 compresses the first spring 302, the first slider 303 drives the first locking block 304 to slide, causing the first locking block 304 to disengage from the inner side of the fixing block 301, the first slider 303 drives the first toothed plate 307 to slide, the first toothed plate 307 drives the gear 308 to rotate, the gear 308 drives the second toothed plate 310 to slide, the second toothed plate 310 drives the second slider 311 to slide, the second slider 311 compresses the second spring 313, the second slider 311 drives the second locking block 312 to slide, causing the second locking block 312 to disengage from the fixing block 301. The inner side of the fixed block 301 is moved to release the limiting fixation of the fixed block 301. Then, the multi-access switching device body 2 is pulled, and the multi-access switching device body 2 drives the fixed block 301 to slide out for replacement. The fixed block 301 on one side of the replaced multi-access switching device body 2 is inserted into the mounting base 1. When the multi-access switching device body 2 is installed in place, the pull plate 306 is released. The first spring 302 and the second spring 313 drive the second slider 311 and the first slider 303 to slide. The first slider 303 and the second slider 311 drive the first locking block 304 and the second locking block 312 to slide, so that the first locking block 304 and the second locking block 312 engage with the fixed block 301 to fix the multi-access switching device body 2.
Claims
1. A heat dissipating integrated multi-access switching device comprising a mounting base (1); characterized in that: Also include fixed block (301) and heat dissipation assembly; The upper end of the mounting seat (1) is provided with a multi-access exchange device body (2), the inner side of the multi-access exchange device body (2) is provided with a heat dissipation assembly, one side of the multi-access exchange device body (2) is provided with a fixed block (301), the inner side of the multi-access exchange device body (2) is provided with a first spring (302), one side of the first spring (302) is provided with a first sliding block (303), one side of the first sliding block (303) is provided with a first clamping block (304) for limiting the fixed block (301), one side of the first sliding block (303) is provided with a connecting block (305) for driving the first sliding block (303) to slide, one side of the connecting block (305) is provided with a pull plate (306), one side of the first sliding block (303) is provided with a first toothed plate (307), one side of the first toothed plate (307) is provided with a gear (308), and the gear (308) is engaged with the first toothed plate (307); The inner side of the gear (308) is provided with a first rotating shaft (309), the outer side of the gear (308) is provided with a second toothed plate (310), the second toothed plate (310) is engaged with the gear (308), one side of the second toothed plate (310) is provided with a second sliding block (311), one side of the second sliding block (311) is provided with a second clamping block (312) for limiting the fixed block (301), and one side of the second sliding block (311) is provided with a second spring (313).
2. The integrated heat-sink multi-access switching device of claim 1, wherein: Corresponding positions of the mounting seat (1) and the fixed block (301) are provided with grooves, and the fixed block (301) is clamped and connected in the grooves of the mounting seat (1).
3. The integrated heat-sinking multiple access switching device of claim 1, wherein: Corresponding positions of the mounting seat (1) and the first sliding block (303) and the second sliding block (311) are provided with grooves, and the first sliding block (303) and the second sliding block (311) are slidingly connected in the grooves of the mounting seat (1).
4. The integrated heat-sinking multiple-access switching device of claim 1, wherein: Corresponding positions of the mounting seat (1) and the first rotating shaft (309) are provided with grooves, and the first rotating shaft (309) is rotatably connected in the grooves of the mounting seat (1).
5. The integrated heat-sinking multiple-access switching device of claim 1, wherein: Corresponding positions of the fixed block (301) and the first clamping block (304) and the second clamping block (312) are provided with grooves, and the first clamping block (304) and the second clamping block (312) are clamped and connected in the grooves of the fixed block (301).
6. The integrated heat-sinking multiple-access switching device of claim 1, wherein: The heat dissipation assembly comprises a heat dissipation plate (401), the inner side of the multi-access exchange device body (2) is provided with the heat dissipation plate (401) for exhaust, the inner side of the multi-access exchange device body (2) is provided with a mounting plate (402), one side of the mounting plate (402) is provided with a driving motor (403), the output end of the driving motor (403) is provided with a first fan blade (404) for heat dissipation, the output end of the driving motor (403) is provided with a first pulley (405), the outer side of the first pulley (405) is provided with a transmission belt (406), the inner side of the transmission belt (406) is provided with a second pulley (407), the inner side of the second pulley (407) is provided with a second rotating shaft (408), one side of the second rotating shaft (408) is provided with a second fan blade (409) for heat dissipation.
7. The integrated heat-sinking multiple access switching device of claim 6, wherein: The mounting plate (402) is provided with a groove at a corresponding position of the second rotating shaft (408), and the second rotating shaft (408) is rotationally connected in the groove of the mounting plate (402).