Intelligent fire-fighting signal transmission assembly based on internet of things
By introducing auxiliary and protective devices into the IoT-based smart fire signal transmission components, the problems of inconvenient disassembly and maintenance and vibration damage have been solved, achieving rapid disassembly, buffer protection, and protective effects, thereby improving the stability and lifespan of the system.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- WUHAN XINZHENG FIRE ENG CO LTD
- Filing Date
- 2025-08-25
- Publication Date
- 2026-07-24
AI Technical Summary
In existing IoT-based smart fire signal transmission components, the communication server is installed with screws, which makes disassembly and maintenance inconvenient and easily damaged by vibration, affecting system stability.
The device employs auxiliary and protective devices. The auxiliary device enables quick disassembly through a combination of mounting blocks, rubber pillars, and locking blocks. The protective device shields the transmission interface through the cooperation of a cover plate and an iron frame, while the rubber pillars and buffer springs provide cushioning protection.
It enables rapid disassembly and maintenance of the communication server, reduces vibration damage to the server, improves system stability and lifespan, and prevents dust and impurities from affecting the connection.
Smart Images

Figure CN224556031U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of IoT-based smart fire protection technology, and in particular to an IoT-based smart fire protection signal transmission component. Background Technology
[0002] IoT-based smart fire protection is a new type of fire protection system that deeply integrates fire-fighting equipment, environmental sensing, and intelligent systems through IoT technology. It collects fire data (such as smoke concentration and pipeline pressure) in real time by deploying front-end devices such as smoke detectors, temperature sensors, and water pressure sensors. It then uses communication technologies such as 5G / NB-IoT / LoRa to transmit the data to a cloud platform. The platform uses big data analysis and AI algorithms to achieve early fire warning (reducing the false alarm rate by 80%), equipment failure prediction (7-day advance warning), and emergency response (such as automatic activation of fire pumps and evacuation instructions). IoT-based smart fire protection often uses communication servers to transmit signals.
[0003] In our daily work, we have found that in the existing IoT smart fire signal transmission components, the communication server is usually installed directly in the box with screws. On the one hand, subsequent disassembly and maintenance require removing each screw one by one, which is inconvenient. On the other hand, once it is subjected to vibration, the vibration will be directly transmitted to the communication server, causing damage to the communication server and seriously affecting the stability of the system. Utility Model Content
[0004] The purpose of this invention is to solve the problems in the existing technology where screws are usually used to directly install the components inside the housing. On the one hand, this makes subsequent disassembly and maintenance inconvenient, and on the other hand, once subjected to vibration, the vibration will be directly transmitted to the communication server, causing damage to the communication server. Therefore, this invention proposes an IoT-based smart fire signal transmission component.
[0005] To achieve the above objectives, this utility model adopts the following technical solution: an IoT-based smart fire signal transmission component, comprising a communication server, the surface of which is provided with multiple transmission interfaces, and an auxiliary device on the surface of which is provided with an auxiliary device, the auxiliary device including a mounting plate located on one side of the communication server, multiple mounting blocks fixedly connected to the surface of the mounting plate, a positioning plate fixedly connected to the outer surface of the mounting blocks, multiple holes formed on the surface of the communication server, mounting sleeves provided inside the holes, and multiple rubber pillars fixedly connected to the outer surface of the mounting sleeves, the other end of the rubber pillars being connected to the holes. The inner wall of the body is fixedly connected, and the mounting block is inserted into the inner wall of the mounting sleeve. The surface of the mounting block is provided with a sliding groove, and a locking block is slidably connected to the inner wall of the sliding groove. The surface of the mounting sleeve is provided with a positioning groove for the locking block to be inserted. The mounting plate is provided with a control part that can control the movement of the locking block. With the above components, during installation, the mounting block is first installed on the box body with screws, and then the mounting block is inserted into the mounting sleeve. The positioning plate contacts the mounting sleeve to achieve positioning, and then the locking block is inserted into the positioning groove to complete the installation. This facilitates quick disassembly and maintenance. At the same time, the multiple sets of rubber pillars between the mounting sleeve and the hole body can play a role in buffering and protection.
[0006] Preferably, the control unit includes two slide grooves two of the slide grooves formed on the surface of the mounting plate. The slide grooves two of the slide grooves are connected to the slide groove one. A push rod is slidably connected to the inner wall of the slide groove two of the slide grooves. The locking block is fixed on the surface of the push rod. Through the above components, the push rod can be pushed, and the push rod can drive the locking block to move in the slide groove one on the surface of the mounting block, thereby improving the overall ease of use.
[0007] Preferably, a return spring is fixedly connected to one side of the push rod corresponding to the inner wall of the slide groove. There are two return springs. Through the above-mentioned components, the return springs can drive the push rod and the locking block to return to their original positions, ensuring that the locking block can be stably inserted into the positioning groove and improving the stability of the installation.
[0008] Preferably, a buffer spring is fitted on the surface of the rubber column, and the two ends of the buffer spring are fixedly connected to the inner wall of the mounting sleeve and the hole, respectively. Through the above components, the buffer spring can work with the rubber column to further provide buffer protection.
[0009] Preferably, the surface of the mounting plate is provided with a protective device, which includes multiple iron frames fixed to the surface of the mounting plate, a cover plate is provided between the iron frames, and protrusions are fixedly connected to both sides of the cover plate. The protrusions are slidably connected to the inner wall of the iron frame. Through the above components, the cover plate can be pushed on the iron frame, and the cover plate moves in the iron frame through the protrusions. When the cover plate blocks the transmission interface, the protective effect can be achieved.
[0010] Preferably, the protrusion is made of magnetic material and can attract the iron frame.
[0011] Preferably, a push plate is fixedly connected to the lower surface of the cover plate.
[0012] Compared with the prior art, the advantages and positive effects of this utility model are as follows: 1. In this utility model, by setting an auxiliary device, the mounting block can be inserted into the mounting sleeve, the positioning plate is positioned, and then the control unit drives the locking block to be inserted into the positioning groove in the mounting sleeve, thus realizing the installation. This facilitates quick maintenance and disassembly. At the same time, when subjected to vibration, the multiple rubber pillars between the mounting sleeve and the hole can play a role in shock absorption and protection, improving the service life of the communication server and ensuring the stability of signal transmission.
[0013] 2. In this utility model, by setting up a protective device, the transmission interface can be shielded through the cooperation between the protrusion, iron frame, cover plate and push plate, which can reduce the entry of impurities and dust into the transmission interface and the problem of affecting the overall connection stability and service life. Attached Figure Description
[0014] Figure 1 A three-dimensional structural diagram of an IoT-based smart fire signal transmission component is provided for this utility model; Figure 2 This utility model provides a partial exploded structural diagram of an IoT-based smart fire signal transmission component; Figure 3 This utility model presents a schematic diagram of another perspective on the structure of an IoT-based smart fire signal transmission component; Figure 4 This utility model provides a schematic diagram of the mounting plate structure of an IoT-based smart fire signal transmission component; Figure 5 This utility model provides a schematic diagram of the installation sleeve structure for an IoT-based smart fire signal transmission component; Figure 6 This invention presents a partial structural diagram of an auxiliary device based on an IoT-based smart fire signal transmission component.
[0015] Legend: 1. Communication server; 2. Transmission interface; 3. Auxiliary device; 31. Mounting plate; 32. Hole; 33. Mounting block; 34. Mounting sleeve; 35. Rubber column; 36. Buffer spring; 37. Positioning groove; 38. Push rod; 39. Return spring; 310. Locking block; 311. Slide groove one; 312. Slide groove two; 313. Positioning plate; 4. Protective device; 41. Iron frame; 42. Cover plate; 43. Protrusion; 44. Push plate. Detailed Implementation
[0016] Please see Figures 1-6 This utility model provides a technical solution: an IoT-based smart fire signal transmission component, including a communication server 1, a plurality of transmission interfaces 2 on the surface of the communication server 1, and auxiliary devices 3 on the surface of the communication server 1.
[0017] Specifically, the auxiliary device 3 includes a mounting plate 31 located on one side of the communication server 1. Multiple mounting blocks 33 are fixedly connected to the surface of the mounting plate 31. A positioning plate 313 is fixedly connected to the outer surface of the mounting blocks 33. Multiple holes 32 are opened on the surface of the communication server 1. A mounting sleeve 34 is provided inside the hole 32. Multiple rubber pillars 35 are fixedly connected to the outer surface of the mounting sleeve 34. The other end of the rubber pillar 35 is fixedly connected to the inner wall of the hole 32. A buffer spring 36 is sleeved on the surface of the rubber pillar 35. The two ends of the buffer spring 36 are fixedly connected to the mounting sleeve 34 and the inner wall of the hole 32, respectively. The mounting blocks 33 are inserted into the inner wall of the mounting sleeve 34. A sliding groove 311 is opened on the surface of the mounting block 33. A locking block 310 is slidably connected to the inner wall of the sliding groove 311. A positioning groove 37 for the locking block 310 to be inserted is opened on the surface of the mounting sleeve 34. A control part for controlling the movement of the locking block 310 is provided on the mounting plate 31.
[0018] In this embodiment: During installation, the mounting block 33 is first installed on the housing with screws, and then the mounting block 33 is inserted into the mounting sleeve 34. The positioning plate 313 contacts the mounting sleeve 34 to achieve positioning. Then, the control block 310 is inserted into the positioning groove 37 to complete the installation, which facilitates quick disassembly and maintenance. At the same time, the multiple sets of rubber pillars 35 between the mounting sleeve 34 and the hole 32 can play a buffering and protective role. The buffer spring 36 can work with the rubber pillars 35 to further buffer and protect.
[0019] Specifically, the control unit includes two slide grooves 312 formed on the surface of the mounting plate 31. The slide grooves 312 are connected to the slide groove 311. A push rod 38 is slidably connected to the inner wall of the slide groove 312. A locking block 310 is fixed to the surface of the push rod 38. A return spring 39 is fixedly connected to the side of the push rod 38 corresponding to the inner wall of the slide groove 311. There are two return springs 39.
[0020] In this embodiment: the push rod 38 can be pushed, and the push rod 38 can drive the locking block 310 to move in the sliding groove 311 on the surface of the mounting block 33. The reset spring 39 can drive the push rod 38 and the locking block 310 to reset, ensuring that the locking block 310 can be stably inserted into the positioning groove 37, improving the stability of the installation, thereby improving the overall ease of use.
[0021] Specifically, a protective device 4 is provided on the surface of the mounting plate 31. The protective device 4 includes multiple iron frames 41 fixed on the surface of the mounting plate 31. A cover plate 42 is provided between the iron frames 41. A protrusion 43 is fixedly connected to both sides of the cover plate 42. The protrusion 43 is slidably connected to the inner wall of the iron frame 41. The protrusion 43 is made of magnetic material and can attract the iron frame 41. A push plate 44 is fixedly connected to the lower surface of the cover plate 42.
[0022] In this embodiment: the cover plate 42 can be pushed on the iron frame 41. The cover plate 42 moves in the iron frame 41 through the protrusion 43. The magnetic protrusion 43 can attract the iron frame 41 and position the cover plate 42. When the cover plate 42 blocks the transmission interface 2, the protective effect can be achieved.
[0023] Working principle: During installation, the device is first installed on the housing with screws. Pushing the two push rods 38 moves the locking block 310, applying force to the return spring 39. Then, the mounting block 33 is inserted into the mounting sleeve 34, and the positioning plate 313 contacts the mounting sleeve 34 for positioning. Afterward, the push rods 38 are released, and the return spring 39 controls the push rods 38 and locking block 310 to return to their original positions. The locking block 310 can then be inserted into the positioning slot 37, completing the installation. For subsequent quick disassembly and maintenance, simply push the two push rods 38, which move the locking block 310. After being removed from the positioning slot 37, it can be disassembled and removed. At the same time, the multiple sets of rubber pillars 35 between the mounting sleeve 34 and the hole body 32 can play a buffering and protective role. The buffer spring 36 can work with the rubber pillars 35 to further buffer and protect. When protecting the transmission interface 2, the cover plate 42 can be moved by the push plate 44. The cover plate 42 moves in the iron frame 41 through the protrusion 43. The magnetic protrusion 43 can attract the iron frame 41 to position the cover plate 42. When the cover plate 42 blocks the transmission interface 2, the protective effect is achieved.
Claims
1. A smart fire signal transmission component based on the Internet of Things, comprising a communication server (1), wherein the surface of the communication server (1) is provided with multiple transmission interfaces (2), characterized in that: The surface of the communication server (1) is provided with an auxiliary device (3). The auxiliary device (3) includes a mounting plate (31) located on one side of the communication server (1). Multiple mounting blocks (33) are fixedly connected to the surface of the mounting plate (31). A positioning plate (313) is fixedly connected to the outer surface of the mounting blocks (33). Multiple holes (32) are opened on the surface of the communication server (1). A mounting sleeve (34) is provided inside the hole (32). The outer surface of the mounting sleeve (34) is fixedly connected to... There are multiple rubber pillars (35), the other end of which is fixedly connected to the inner wall of the hole (32). The mounting block (33) is inserted into the inner wall of the mounting sleeve (34). The surface of the mounting block (33) is provided with a sliding groove (311). The inner wall of the sliding groove (311) is slidably connected with a locking block (310). The surface of the mounting sleeve (34) is provided with a positioning groove (37) for the locking block (310) to be inserted. The mounting plate (31) is provided with a control part that can control the movement of the locking block (310).
2. The IoT-based smart fire signal transmission component according to claim 1, characterized in that: The control unit includes two slide grooves (312) formed on the surface of the mounting plate (31). The slide grooves (312) are connected to the slide groove (311). A push rod (38) is slidably connected to the inner wall of the slide grooves (312). The locking block (310) is fixed on the surface of the push rod (38).
3. The IoT-based smart fire signal transmission component according to claim 2, characterized in that: The push rod (38) is fixedly connected to a return spring (39) on the side corresponding to the inner wall of the slide groove (311), and there are two return springs (39).
4. The IoT-based smart fire signal transmission component according to claim 1, characterized in that: A buffer spring (36) is fitted on the surface of the rubber column (35), and the two ends of the buffer spring (36) are fixedly connected to the inner wall of the mounting sleeve (34) and the hole (32), respectively.
5. The IoT-based smart fire signal transmission component according to claim 1, characterized in that: The surface of the mounting plate (31) is provided with a protective device (4). The protective device (4) includes multiple iron frames (41) fixed on the surface of the mounting plate (31). A cover plate (42) is provided between the iron frames (41). A protrusion (43) is fixedly connected to both sides of the cover plate (42). The protrusion (43) is slidably connected to the inner wall of the iron frame (41).
6. The IoT-based smart fire signal transmission component according to claim 5, characterized in that: The protrusion (43) is made of magnetic material and can be attracted to the iron frame (41).
7. The IoT-based smart fire signal transmission component according to claim 5, characterized in that: A push plate (44) is fixedly connected to the lower surface of the cover plate (42).