Wireless intelligent fire extinguishing system for dry-type magnetically controlled reactor
Through the wireless intelligent fire extinguishing system, the use of dry magnetron reactors and other components, the problems of complex and inconvenient movement of traditional fire extinguishing systems are solved, and safe and efficient fire extinguishing operations are achieved.
Patent Information
- Application Number
- CN202421824390.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-31
- Publication Date
- 2025-06-24
- Estimated Expiration
- 2034-07-31
AI Technical Summary
The existing fire extinguishing system based on dry magnetron reactors has the risk of complex conductors leading to poor contact or damage, and is inconvenient to move in multiple directions, reducing fire extinguishing efficiency.
The wireless intelligent fire extinguishing system is adopted to realize unobstructed power supply and mobile fire extinguishing through the combination of dry magnetron reactors, pressure tanks, guide rails, support blocks, conduction components and mobile components.
The safety hazards brought by the open line have been eliminated, and multi-directional mobile fire extinguishing has been achieved, the scope of rescue for fires has been expanded, and the efficiency of fire extinguishing has been improved.
Smart Images

Figure CN223009691U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of fire extinguishing systems, and particularly relates to a wireless intelligent fire extinguishing system for dry-type magnetic control reactors. Background Technique
[0002] The application of dry-type magnetic control reactors in fire extinguishing systems is mainly reflected in improving the power quality and stability of the system. They are usually used for power regulation and harmonic suppression, and can effectively improve the power factor of the power grid and reduce power loss; in fire extinguishing systems, dry-type magnetic control reactors can help ensure the reliability and stability of the power supply system, especially in applications with high requirements for power quality. In addition, the maintenance requirements of this equipment are low, making it suitable for long-term use.
[0003] Currently, for fire extinguishing systems based on dry-type magnetic control reactors, generally a wired power supply is used to supply power to the fire extinguishing system. The distribution of wires in the fire extinguishing system is relatively complex. Therefore, the probability of poor wire contact or damage will increase, affecting the normal operation of the fire extinguishing system. Moreover, during fire extinguishing, the wires are in a humid environment, which also increases the risk of safety accidents; in addition, traditional fire extinguishing systems are not convenient for multi-directional movement, and cannot target local fire sources for targeted fire extinguishing, thus reducing their usage efficiency. Summary of the Utility Model
[0004] The purpose of this utility model is to provide a wireless intelligent fire extinguishing system for dry-type magnetic control reactors, which can adopt wireless power supply, eliminate the safety hazards brought by exposed wires, and at the same time have the function of mobile fire extinguishing, improving its fire extinguishing efficiency.
[0005] The technical solutions adopted by this utility model are specifically as follows:
[0006] A wireless intelligent fire extinguishing system for dry-type magnetic control reactors includes a pressure tank and a guide rail. Two T-shaped grooves are opened on the side wall of the guide rail. A support block is movably connected in the T-shaped groove. The end faces of the support blocks are fixedly connected to the same arc-shaped plate. A number of hooks are fixedly connected to the side wall of the pressure tank, and the hooks are adapted to the arc-shaped plate. A conduction component is arranged on the side wall of the upper support block, and a moving component is arranged on the side wall of the pressure tank. A joint is fixedly connected to the top of the pressure tank, and a vertical pipe is fixedly connected to the bottom of the pressure tank. A blocking component is arranged in the inner cavity of the vertical pipe.
[0007] An activity wheel is rotatably connected to the end face of the support block, and the activity wheel abuts against the T-shaped groove.
[0008] The conduction component includes connecting columns fixedly connected to the upper and lower side walls of the support block. Two spherical grooves are opened on the side wall of the T-shaped groove. The connecting columns are movably connected to the spherical grooves, and electrode plates are fixedly connected to the side walls of the connecting columns and the spherical grooves respectively.
[0009] The side wall of the pressure tank is fixedly connected with a heat insulation cover, and a motor is assembled inside the heat insulation cover. The output end of the motor penetrates through the heat insulation cover and is fixedly connected with a gear. A rack is fixedly connected to the top surface of the guide rail, and the gear meshes with the rack.
[0010] The plugging component includes a spring fixedly connected to the inner wall of the vertical pipe. The bottom end of the spring is fixedly connected with a stop block. A sealing block is arranged below the stop block in the inner cavity of the vertical pipe. An elastic rope is assembled below the sealing block, and a flow splitting component is arranged on the side wall of the vertical pipe.
[0011] The flow splitting component includes a plurality of flow splitting pipes fixedly connected to the side wall of the vertical pipe. The other ends of the flow splitting pipes are fixedly connected to the same annular pipe. A spray pipe is fixedly connected to the side wall of the annular pipe. Hooks are fixedly connected to the side walls of the flow splitting pipes, and the elastic ropes are all sleeved on the hooks.
[0012] The technical effects achieved by this utility model are as follows:
[0013] The wireless intelligent fire extinguishing system of the dry-type magnetic control reactor of this utility model, through the mutual cooperation among the pressure tank, the guide rail, the support block, the conduction component and the moving component, adopts a design without exposed wires. During fire rescue, it can eliminate the safety hazards caused by exposed wires, and at the same time can carry out mobile fire extinguishing, effectively expanding the fire rescue range and thus improving the fire extinguishing efficiency. Description of the Drawings
[0014] Figure 1 is the structural schematic diagram of the embodiment of this utility model;
[0015] Figure 2 is the side view structural schematic diagram of the embodiment of this utility model;
[0016] Figure 3 is the structural schematic diagram of the corner guide rail of the embodiment of this utility model;
[0017] Figure 4 is the sectional structural schematic diagram of the guide rail of the embodiment of this utility model;
[0018] Figure 5 is the structural schematic diagram of the annular pipe of the embodiment of this utility model;
[0019] Figure 6 is the structural schematic diagram of the plugging component of the embodiment of this utility model;
[0020] Figure 7 is the embodiment of this utility model Figure 4 The enlarged view at A in.
[0021] In the drawings, the list of components represented by each reference numeral is as follows:
[0022] 1. Pressure tank; 2. Guide rail; 3. T-shaped groove; 4. Support block; 5. Movable wheel; 6. Arc plate; 7. Hook; 8. Connecting column; 9. Spherical groove; 10. Electrode plate; 11. Heat shield; 12. Motor; 13. Gear; 14. Rack; 15. Connector; 16. Vertical pipe; 17. Spring; 18. Stop block; 19. Sealing block; 20. Hook; 21. Elastic cord; 22. Shunt pipe; 23. Annular pipe; 24. Nozzle. Detailed implementation mode
[0023] In order to make the purpose and advantages of the present utility model clearer, the following specifically describes the present utility model in combination with embodiments. It should be understood that the following text only describes one or several specific implementation manners of the present utility model, and does not strictly limit the protection scope of the specific requests of the present utility model.
[0024] As Figures 1-7 shown, the dry-type magnetically controlled reactor wireless intelligent fire extinguishing system includes a pressure tank 1 and a guide rail 2. Two T-shaped grooves 3 are opened on the side wall of the guide rail 2. A support block 4 is movably connected in the T-shaped groove 3. The end faces of the support blocks 4 are fixedly connected to the same arc plate 6. Several hooks 7 are fixedly connected to the side wall of the pressure tank 1. The hooks 7 are adapted to the arc plate 6, and a card slot corresponding to the hook 7 is opened on the end face of the arc plate 6. The hook 7 corresponds to the card slot, which is convenient for assembling the pressure tank 1 on the arc plate 6. A conduction assembly is arranged on the side wall of the upper support block 4, and a moving assembly is arranged on the side wall of the pressure tank 1. A connector 15 is fixedly connected to the top of the pressure tank 1, and the connector 15 is mainly used to fill the fire extinguishing agent into the pressure tank 1. A vertical pipe 16 is fixedly connected to the bottom of the pressure tank 1, and a plugging assembly is arranged in the inner cavity of the vertical pipe 16.
[0025] As Figure 4 shown, a movable wheel 5 is rotatably connected to the end face of the support block 4, and the movable wheel 5 abuts against the T-shaped groove 3. The use of the movable wheel 5 can reduce the friction between the support block 4 and the guide rail 2 and improve the smoothness of the movement of the pressure tank 1.
[0026] As Figure 4 and Figure 7 shown, the conduction assembly includes connecting columns 8 fixedly connected to the upper and lower side walls of the support block 4. Two spherical grooves 9 are opened on the side wall of the T-shaped groove 3. The connecting column 8 is movably connected to the spherical groove 9, and electrode plates 10 are fixedly connected to the side walls of the connecting column 8 and the spherical groove 9 respectively.
[0027] Among them, the electrode plates 10 on both sides of the support block 4 are respectively positive and negative electrodes, which are used to supply power to the electrical facilities in the fire extinguishing system, and the electrode plates 10 adopt a hidden design without exposed wires. On the one hand, it can reduce the potential safety hazards caused by exposed wires. On the other hand, no matter where the pressure tank 1 moves, the power supply requirements can be guaranteed.
[0028] As Figure 2 and Figure 4As shown in the figure, a heat insulation cover 11 is fixedly connected to the side wall of the pressure tank 1. A motor 12 is assembled inside the heat insulation cover 11. The output end of the motor 12 penetrates through the heat insulation cover 11 and is fixedly connected to a gear 13. A rack 14 is fixedly connected to the top surface of the guide rail 2. The gear 13 meshes with the rack 14.
[0029] Specifically, since the gear 13 and the rack 14 are respectively fixed on the pressure tank 1 and the guide rail 2, when the motor 12 rotates, the pressure tank 1 can be driven to move through the meshing of the gear 13 and the rack 14, achieving the purpose of efficient and stable movement. In addition, as Figure 3 shown in the figure, the laying of the guide rail 2 can also be turned, which is convenient for turning at the corner.
[0030] As Figure 5 shown in the figure, the plugging assembly includes a spring 17 fixedly connected to the inner wall of the vertical pipe 16. The bottom end of the spring 17 is fixedly connected to a stop block 18. A sealing block 19 is arranged below the stop block 18 in the inner cavity of the vertical pipe 16. An elastic cord 21 is assembled below the sealing block 19. A flow splitting assembly is arranged on the side wall of the vertical pipe 16.
[0031] The flow splitting assembly includes a plurality of flow splitting pipes 22 fixedly connected to the side wall of the vertical pipe 16. The other ends of the flow splitting pipes 22 are fixedly connected to the same annular pipe 23. A spray pipe 24 is fixedly connected to the side wall of the annular pipe 23. A hook 20 is fixedly connected to the side wall of the flow splitting pipe 22. The elastic cords 21 are all sleeved on the hooks 20.
[0032] Specifically, in the initial state, the stop block 18 can block the water inlet position of the flow splitting pipe 22, so that the water flow in the vertical pipe 16 cannot enter the annular pipe 23. When a fire occurs, the elastic cord 21 can be melted by high temperature, and the stop block 18 is ejected downward by the action of the spring 17, so that the fire extinguishing agent in the pressure tank 1 can be quickly ejected for fire extinguishing.
[0033] In addition, the elastic cord 21 can be made of rubber or other materials, or can be made of non-elastic materials, and different materials can be selected according to actual needs. After each fire extinguishing, the sealing block 19 can be inserted, and a new elastic cord 21 can be used to reseal, and then the fire extinguishing agent can be injected through the joint 15 to achieve the purpose of recycling.
[0034] The working principle of this utility model is as follows: When a fire breaks out, the motor 12 can be started to drive the gear 13 to rotate. The gear 13 meshes with the rack 14 to drive the pressure tank 1 to move. When the pressure tank 1 moves above the fire, the high temperature generated by the fire melts the elastic cord 21. At the same time, the spring 17 rebounds to drive the stopper 18 and the sealing block 19 to pop out downward. The shunt pipe 22 is communicated with the vertical pipe 16. The fire extinguishing agent in the pressure tank 1 is transported into the shunt pipe 22 through the pressure in the tank and sprayed out from the nozzle 24 through the annular pipe 23 to extinguish the fire source. During the movement of the pressure tank 1, the two electrode plates 10 are always in contact, achieving the effect of supplying power to the electrical facilities. The design without exposed wires can effectively improve safety.
[0035] The above is only the preferred embodiment of this utility model. It should be noted that for those of ordinary skill in the art in this technical field, without departing from the principle of this utility model, several improvements and retouches can be made, and these improvements and retouches should also be regarded as the protection scope of this utility model. The structures, devices, and operation methods not specifically described and explained in this utility model, unless otherwise specified and limited, are implemented according to the conventional means in this field.
Claims
1. Dry-type magnetically controlled reactor wireless intelligent fire extinguishing system, characterized by: The invention comprises a pressure tank (1) and a guide rail (2), wherein the side wall of the guide rail (2) is provided with two T-shaped grooves (3), a support block (4) is movably connected in the T-shaped groove (3), the end face of the support block (4) is fixedly connected to the same arc-shaped plate (6), a plurality of hooks (7) are fixedly connected to the side wall of the pressure tank (1), the hooks (7) are adapted to the arc-shaped plate (6), a conduction component is arranged on the upper side side wall of the support block (4), a moving component is arranged on the side wall of the pressure tank (1), a joint (15) is fixedly connected to the top of the pressure tank (1), a vertical pipe (16) is fixedly connected to the bottom of the pressure tank (1), and a blocking component is arranged in the inner cavity of the vertical pipe (16).
2. The dry-type magnetically controlled reactor wireless intelligent fire extinguishing system according to claim 1 is characterized in that: The end surface of the support block (4) is rotatably connected to a movable wheel (5), and the movable wheel (5) abuts against the T-shaped groove (3).
3. The dry-type magnetically controlled reactor wireless intelligent fire extinguishing system according to claim 1 is characterized in that: The conduction component comprises a connecting column (8) fixedly connected to the upper and lower side walls of the support block (4); the side wall of the T-shaped groove (3) is provided with two spherical grooves (9); the connecting column (8) is movably connected to the spherical groove (9); and the connecting column (8) and the side wall of the spherical groove (9) are respectively fixedly connected with electrode sheets (10).
4. The dry-type magnetically controlled reactor wireless intelligent fire extinguishing system according to claim 1 is characterized in that: The side wall of the pressure tank (1) is fixedly connected to a heat insulation cover (11), a motor (12) is installed in the heat insulation cover (11), an output end of the motor (12) passes through the heat insulation cover (11) and is fixedly connected to a gear (13), and a rack (14) is fixedly connected to the top surface of the guide rail (2), and the gear (13) is meshed with the rack (14).
5. The dry-type magnetically controlled reactor wireless intelligent fire extinguishing system according to claim 1 is characterized in that: The blocking component comprises a spring (17) fixedly connected to the inner wall of the vertical tube (16); a stopper (18) is fixedly connected to the bottom end of the spring (17); a sealing block (19) is arranged in the inner cavity of the vertical tube (16) below the stopper (18); an elastic rope (21) is installed on the lower side of the sealing block (19); and a flow diversion component is arranged on the side wall of the vertical tube (16).
6. The dry-type magnetically controlled reactor wireless intelligent fire extinguishing system according to claim 5 is characterized in that: The flow diversion assembly comprises a plurality of flow diversion tubes (22) fixedly connected to the side wall of the vertical tube (16); the other end of the flow diversion tube (22) is fixedly connected to the same annular tube (23); the side wall of the annular tube (23) is fixedly connected to a nozzle (24); the side wall of the flow diversion tube (22) is fixedly connected to a hook (20); and the elastic ropes (21) are all sleeved on the hook (20).