Emergency firewall and building method thereof

By combining a foldable frame structure, multi-layer fireproof materials, and an integrated cooling system, the problem of low installation efficiency of firewall structures is solved, enabling rapid deployment, comprehensive fire protection, and efficient cooling, adapting to various complex environments, and improving emergency response capabilities.

CN121875398APending Publication Date: 2026-04-17CHANGZHOU TENGAN FIRE EQUIP CO LTD
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Patent Information

Application Number
CN202511938097.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-22
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

Existing firewall architectures are inefficient to install, have limited applicability, and are unable to respond quickly to complex emergencies.

Method used

It adopts a foldable frame structure, multi-layer fireproof materials and an integrated cooling system, combined with an intelligent control unit. It achieves rapid deployment and stable installation through a locking mechanism of magnets and magnetic strips, provides comprehensive fire protection through multi-layer fireproof combination, and is automatically controlled by monitoring through an integrated cooling system and sensors.

Benefits of technology

It achieves high portability, rapid deployment and strong adaptability, easy installation and disassembly, provides comprehensive fire protection and efficient cooling, and improves response speed and ease of operation in emergency situations.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a firewall, belongs to the technical field of firewall equipment, and particularly relates to an emergency firewall and a building method thereof.The emergency firewall comprises a firewall body, the firewall body comprises a foldable frame structure arranged outside the firewall body in a sleeving mode, and the foldable frame structure is connected with a multi-layer fireproof combination above the foldable frame structure through a mounting base; an integrated cooling system arranged in the firewall body is arranged between the multiple layers of fireproof combinations, the firewall body is provided with an intelligent control unit electrically connected with the firewall body and the integrated cooling system, and the problems that an existing firewall structure is not high in installation efficiency and low in applicability are solved.
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Description

Technical Field

[0001] This invention provides a firewall, belonging to the field of firewall device technology, and specifically relates to an emergency firewall and its construction method. Background Technology

[0002] An emergency firewall is a portable, rapidly deployable temporary fire barrier system composed of a foldable frame structure, multi-layered fire-resistant materials, an integrated cooling system, and an intelligent control unit. Its main applications include fire isolation, providing emergency rescue access, protecting critical buildings, protecting emergency evacuation routes, isolating hazardous materials, forest fire prevention, industrial safety emergency protection, safety facilities for large events, protection of temporary construction sites, facility protection in military applications, temporary protection in post-disaster reconstruction, and training and simulation exercises for firefighters and emergency responders. The design takes into account portability, adaptability, fire resistance, and intelligent control, effectively improving the efficiency and safety of firefighting and emergency response, and is suitable for various complex emergency situations.

[0003] Existing firewalls are mostly installed and built in advance, but the situation of a fire is varied and difficult to control. In order to delay or even prevent the spread of a fire, the existing firewall structures take too long to build, the installation efficiency is not high enough, and they may not be suitable for the internal environment of the building. Summary of the Invention

[0004] In order to overcome the shortcomings of the prior art, this application provides an emergency firewall and its construction method, which solves the problems of low installation efficiency and low applicability of existing firewall structures.

[0005] To solve the above-mentioned technical problems, the present invention provides the following technical solution: an emergency firewall, including a firewall body, wherein the firewall body includes a foldable frame structure sleeved on the outside of the firewall body, the foldable frame structure is connected to a multi-layer fireproof assembly above itself via a mounting base, an integrated cooling system is provided between the multi-layer fireproof assemblies and placed inside the firewall body, and an intelligent control unit electrically connected to itself and the integrated cooling system is provided on the firewall body.

[0006] Preferably, the foldable frame structure is made of aluminum alloy. The mounting base has a sliding sleeve that runs through both sides of the mounting base and corresponds to the mounting base. Inside the sliding sleeve, there is a pair of adjusting rods that run through the mounting base. One end of the adjusting rod inside the sliding sleeve is connected to a pair of repulsive magnets. The two ends inside the sliding sleeve are provided with magnetic strips that attract the magnets. Inside the adjusting rod, there is a secondary adjusting rod that corresponds to the mounting base and is movably connected to the adjusting rod through a connecting shaft.

[0007] Preferably, the multi-layer fireproof assembly includes a ceramic fiber layer placed above the mounting base, a flame-retardant foam layer located on one side of the ceramic fiber layer, and a reflective heat insulation layer located on the side of the ceramic fiber layer and the flame-retardant foam layer that are far apart from each other.

[0008] Preferably, the integrated cooling system includes a water tank placed inside the firewall, a multi-stage water supply pipe located on one side of the water tank and connected to the water tank, a water pump connected to itself between the multi-stage water supply pipe and the water tank, and an atomizing nozzle in the opening at the other end of the multi-stage water supply pipe.

[0009] Preferably, the intelligent control unit includes a temperature sensor, a smoke sensor, and a microprocessor, all of which are interconnected internally via integrated circuits.

[0010] Preferably, the construction method includes the following steps:

[0011] a. Select a suitable installation location, ensure the ground is flat and stable, and clear any obstacles that may affect the installation.

[0012] b. Unfold the foldable frame structure, adjust the adjusting rod and secondary adjusting rod inside the sliding sleeve to adapt to the terrain, and use the interaction of magnets and magnetic strips to lock the frame position;

[0013] c. Assemble and install the multi-layer fireproof materials onto the frame structure, and lay the ceramic fiber layer, flame-retardant foam layer and reflective heat insulation layer in sequence to ensure that each layer is tightly bonded together.

[0014] d. Connect adjacent firewall units to form a continuous fire barrier through the connection points of the mounting base and frame structure, ensuring a seamless connection;

[0015] e. Install an integrated cooling system, fixing the water tank inside the firewall, connecting multi-stage water pipes and a water pump, and installing atomizing nozzles in appropriate locations. Ensure the system is properly connected to an external water source;

[0016] f. Connect the intelligent control unit, including temperature sensors, smoke sensors, and microprocessors, and electrically connect it to the firewall and integrated cooling system, and connect a portable power supply to ensure continuous system operation;

[0017] g. Start the system to perform a comprehensive self-test, including the stability of the frame structure, the integrity of the multi-layer fireproof materials, the function of the cooling system, the sensitivity of the sensors, and the response of the control unit, to ensure that all components are working properly and can work together to respond to emergencies.

[0018] One or more technical solutions provided in the embodiments of this application have at least the following technical effects or advantages:

[0019] 1. High portability and rapid deployment capability:

[0020] The foldable frame structure is made of lightweight aluminum alloy, making it easy to transport.

[0021] The foldable design allows the firewall to be quickly expanded and folded away, making it suitable for rapid response in emergency situations.

[0022] 2. Highly adaptable:

[0023] The combined design of the sliding sleeve, adjusting rod, and secondary adjusting rod allows the frame to adapt to different terrains and passage widths.

[0024] The multi-level adjustment mechanism enables the firewall to be installed stably in various complex environments.

[0025] 3. Easy installation and disassembly:

[0026] The locking mechanism of magnets and magnetic strips provides quick and secure fastening, and can be operated without tools.

[0027] This design greatly improves the speed of response and ease of operation in emergency situations.

[0028] 4. Comprehensive fire protection:

[0029] The multi-layer fireproof combination (ceramic fiber layer, flame-retardant foam layer, and reflective insulation layer) provides highly efficient heat insulation and fire protection performance.

[0030] The layered protective structure ensures comprehensive fire protection capabilities.

[0031] 5. High-efficiency cooling system:

[0032] The integrated cooling system is equipped with a water tank, multi-stage water pipes, and atomizing nozzles, providing continuous and efficient cooling capabilities.

[0033] The water pump ensures a stable water flow, and the atomizing nozzles improve water utilization efficiency.

[0034] 6. Intelligent control:

[0035] Integrated temperature and smoke sensors enable real-time environmental monitoring.

[0036] The microprocessor automatically controls the cooling system based on sensor data, improving the system's intelligence and automation.

[0037] 7. Environmental adaptability:

[0038] With its foldable frame structure, it can be quickly deployed and used in various complex environments, making it suitable for a variety of emergency scenarios.

[0039] Other advantages, objectives and features of the invention will be set forth in part in the description which follows, and in part will be apparent to those skilled in the art from an examination of the following, or may be learned from the practice of the invention. Attached Figure Description

[0040] Figure 1 This is a three-dimensional schematic diagram of an emergency firewall according to the present invention;

[0041] Figure 2 This is a three-dimensional schematic diagram of another state of an emergency firewall according to the present invention;

[0042] Figure 3 This is a cross-sectional view of the firewall ladder of an emergency firewall according to the present invention;

[0043] Figure 4 This is a partially enlarged view of the adjusting rod portion of an emergency firewall according to the present invention;

[0044] Figure 5 This is a flowchart of an emergency firewall according to the present invention.

[0045] As shown in the figure:

[0046] 1. Firewall body;

[0047] 11. Multi-layer fireproof combination; 12. Integrated cooling system; 13. Ceramic fiber layer; 14. Flame-retardant foam layer; 15. Reflective heat insulation layer; 16. Water tank; 17. Multi-stage water supply pipe; 18. Water pump; 19. Atomizing nozzle;

[0048] 2. Foldable frame structure;

[0049] 21. Mounting base; 22. Sliding sleeve; 23. Adjusting rod; 24. Magnet; 25. Magnetic strip; 26. Secondary adjusting rod;

[0050] 3. Intelligent control unit. Detailed Implementation

[0051] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0052] It should be noted that the terms "vertical," "horizontal," "up," "down," "left," "right," and similar expressions used in this article are for illustrative purposes only and do not represent the only possible implementation.

[0053] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains; the terminology used herein in the description of the invention is for the purpose of describing particular embodiments only and is not intended to limit the invention; the term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.

[0054] like Figure 1 , 2 As shown in Figures 3 and 4, an emergency firewall includes a firewall body 1, a foldable frame structure 2 located outside the firewall body 1, and a mounting base 21. Both the foldable frame structure 2 and the mounting base 21 are made of aluminum alloy. A sliding sleeve 22, penetrating both sides of the mounting base 21 and corresponding to the mounting base 21, is provided below the mounting base 21. Inside the sliding sleeve 22, there is a pair of adjusting rods 23 penetrating the mounting base 22. At one end of each adjusting rod 23 inside the sliding sleeve 22, a pair of repulsive magnets 24 are connected. At both ends inside the sliding sleeve 22, there are magnetic strips 25 that attract the magnets 24. Inside the adjusting rods 23, there are secondary adjusting rods 26 corresponding to the mounting rods and movably connected via a connecting shaft. The foldable frame structure 2 is connected to a multi-layer fireproof assembly 11 above the mounting base 21. An integrated cooling system 12 is provided between the multi-layer fireproof combination 11 and inside the fire wall body 1. The fire wall body 1 is provided with an intelligent control unit 3 electrically connected to itself and the integrated cooling system 12. The multi-layer fireproof combination 11 includes a ceramic fiber layer 13 placed above the mounting base 21, a flame-retardant foam layer 14 located on one side of the ceramic fiber layer 13, and a reflective heat insulation layer 15 located on the side of the ceramic fiber layer 13 and the flame-retardant foam layer 14 that are far away from each other. The integrated cooling system 12 includes a water tank 16 placed inside the fire wall body 1, a multi-stage water supply pipe 17 located on one side of the water tank 16 and connected to the water tank 16, and a water pump 18 connected to itself between the multi-stage water supply pipe 17 and the water tank 16. An atomizing nozzle 19 is provided in the opening at the other end of the multi-stage water supply pipe 17.

[0055] In this implementation scheme, the foldable frame structure 2 is made of aluminum alloy, which is lightweight, high-strength, and corrosion-resistant. The foldable design facilitates the transportation and rapid deployment of the firewall. The combination of the sliding sleeve 22, adjusting rod 23, and secondary adjusting rod 26 allows the frame to adapt to different terrains, increasing its flexibility. The locking mechanism of magnet 24 and magnetic strip 25 provides quick and secure locking, facilitating installation and disassembly without tools, improving response speed in emergency situations. Removing the secondary adjusting rod 23 from the adjusting rod 24 and folding it parallel allows it to brace against the walls on both sides of the passage. The multi-stage adjusting rod design allows for... To effectively adapt to different channel widths, the excessively long secondary adjustment rod 23 can be tightly fitted against the channel wall; the ceramic fiber layer 13 provides high-temperature insulation, the flame-retardant foam layer 14 enhances fire resistance, and the reflective insulation layer 15 further improves the insulation effect. The multi-layer structure provides comprehensive fire protection; the water tank 16 and multi-stage water pipes 17 provide continuous cooling capacity, the water pump 18 ensures the stability of water flow, and the atomizing nozzles 19 improve water utilization efficiency and cooling effect; integrated temperature and smoke sensors enable real-time environmental monitoring, and the microprocessor can automatically control the cooling system based on sensor data, improving the system's intelligence and automation.

[0056] like Figure 5 As shown, an emergency firewall setup method includes the following steps:

[0057] a. Select a suitable installation location, ensure the ground is flat and stable, and clear any obstacles that may affect the installation.

[0058] b. Unfold the foldable frame structure 2, adjust the adjusting rod 23 and the secondary adjusting rod 26 inside the sliding sleeve 22 to adapt to the terrain, and lock the frame position by the interaction of the magnet 24 and the magnetic strip 25.

[0059] c. Install the multi-layer fireproof material assembly onto the frame structure, and lay the ceramic fiber layer 13, the flame-retardant foam layer 14 and the reflective heat insulation layer 15 in sequence to ensure that each layer is tightly bonded together.

[0060] d. Connect adjacent firewall units to form a continuous fire barrier through the connection point between the mounting base 21 and the frame structure 2, ensuring a seamless connection;

[0061] e. Install the integrated cooling system 12, fix the water tank 16 inside the firewall 1, connect the multi-stage water supply pipe 17 and the water pump 18, and install the atomizing nozzles 19 in appropriate positions. Ensure the system is properly connected to the external water source;

[0062] f. Connect the intelligent control unit 3, including a temperature sensor, a smoke sensor and a microprocessor, and electrically connect it to the firewall body 1 and the integrated cooling system 12, and connect it to a portable power supply to ensure continuous operation of the system.

[0063] g. Start the system to perform a comprehensive self-test, including the stability of the frame structure, the integrity of the multi-layer fireproof materials, the function of the cooling system, the sensitivity of the sensors, and the response of the control unit, to ensure that all components are working properly and can work together to respond to emergencies.

[0064] When using:

[0065] 1. Venue preparation:

[0066] Choose a suitable installation location, ensuring the ground is level and stable. Clear any obstacles from the surrounding area that may affect the installation, creating favorable conditions for firewall deployment.

[0067] 2. Framework Expansion and Adjustment:

[0068] Unfold the foldable frame structure 2. Adjust the adjusting rod 23 and secondary adjusting rod 23a inside the sliding sleeve 22 according to the actual terrain and needs. Utilize the magnetic force of the magnet 24 and magnetic strip 25 to quickly lock the frame position and ensure structural stability.

[0069] 3. Installation of fireproof materials:

[0070] The multi-layer fire-resistant materials are assembled and installed onto the frame structure in sequence. First, the ceramic fiber layer 13 is laid, followed by the flame-retardant foam layer 14, and finally the reflective heat insulation layer 15. Ensure that each layer is tightly bonded together.

[0071] 4. Firewall unit connection:

[0072] If a larger fire barrier is required, multiple firewall units can be connected together. This is done through the connection points between the mounting base 21 and the frame structure 2, ensuring a continuous, seamless fire barrier.

[0073] 5. Cooling system installation:

[0074] Install the integrated cooling system 12. Secure the water tank 16 inside the firewall 1, and connect the multi-stage water supply pipes 17 and the water pump 18. Install the atomizing nozzles 19 in appropriate locations, and ensure that the system is properly connected to the external water source to guarantee continuous cooling capacity.

[0075] 6. Intelligent control system connection:

[0076] Connect the intelligent control unit 3, which includes a temperature sensor, a smoke sensor, and a microprocessor. Electrically connect the control unit to the firewall body 1 and the integrated cooling system 12. Simultaneously, connect a portable power source to ensure continuous system operation.

[0077] 7. System self-check:

[0078] Conduct a comprehensive self-check, including the following aspects:

[0079] Stability of frame structure

[0080] Integrity of multi-layer fireproof materials

[0081] Function of cooling system

[0082] Sensor sensitivity

[0083] Response capability of the control unit

[0084] Self-testing ensures all components are functioning correctly and can work together to respond to emergencies.

[0085] 8. Practical application:

[0086] In emergency situations, the system automatically reacts to changes in the environment. Temperature and smoke sensors monitor the environment in real time, and the microprocessor automatically controls the cooling system based on the data. If high temperature or dense smoke is detected, the system automatically starts the water pump 18, spraying water mist through atomizing nozzles 19 to provide cooling and isolation.

[0087] 9. Maintenance and storage:

[0088] After use, check that all components are intact. Clean and dry the fire-retardant materials and cooling system. Fold the frame structure and store all parts properly for quick deployment next time.

[0089] The steps for using this emergency firewall are designed logically, with detailed considerations from preparation and deployment to actual use and maintenance, fully demonstrating its rapid response capability and practicality in emergency situations.

[0090] Although the present invention has been disclosed above with reference to preferred embodiments, it is not intended to limit the present invention. Any person skilled in the art can make various modifications and alterations without departing from the spirit and scope of the present invention. Therefore, the scope of protection of the present invention should be determined by the claims.

Claims

1. An emergency firewall, comprising a firewall body (1), characterized in that: The firewall body (1) includes a foldable frame structure (2) fitted outside the firewall body (1). The foldable frame structure (2) is connected to a multi-layer fireproof assembly (11) above itself via a mounting base (21). An integrated cooling system (12) is provided between the multi-layer fireproof assemblies (11) and placed inside the firewall body (1). An intelligent control unit (3) is provided on the firewall body (1) and electrically connected to itself and the integrated cooling system (12).

2. An emergency firewall according to claim 1, characterized in that: The foldable frame structure (2) is made of aluminum alloy. The mounting base (21) has a sliding sleeve (22) that runs through both sides of the plate and corresponds to itself. Inside the sliding sleeve (22) is a pair of adjusting rods (23) that run through itself. One end of the adjusting rod (23) inside the sliding sleeve (22) is connected to a pair of repulsive magnets (24). The two ends inside the sliding sleeve (22) are provided with magnetic strips (25) that attract the magnets (24). Inside the adjusting rod (23) is a secondary adjusting rod (26) that corresponds to itself and is movably connected through a connecting shaft.

3. An emergency firewall according to claim 2, characterized in that: The multi-layer fireproof assembly (11) includes a ceramic fiber layer (13) placed above the mounting base (21), a flame-retardant foam layer (14) located on one side of the ceramic fiber layer (13), and a reflective heat insulation layer (15) located on the side of the ceramic fiber layer (13) and the flame-retardant foam layer (14) that are far apart from each other.

4. An emergency firewall according to claim 1, characterized in that: The integrated cooling system (12) includes a water tank (16) placed inside the firewall body (1), a multi-stage water supply pipe (17) located on one side of the water tank (16) and connected to the water tank (16), a water pump (18) connected to itself between the multi-stage water supply pipe (17) and the water tank (16), and an atomizing nozzle (19) in the opening at the other end of the multi-stage water supply pipe (17).

5. An emergency firewall according to claim 1, characterized in that: The intelligent control unit (3) includes a temperature sensor, a smoke sensor and a microprocessor, all of which are interconnected through integrated circuits.

6. A method for constructing an emergency firewall, characterized in that: The construction method includes the following steps: a. Select a suitable installation location, ensure the ground is flat and stable, and clear any obstacles that may affect the installation. b. Unfold the foldable frame structure (2), adjust the adjusting rod (23) and secondary adjusting rod (26) in the sliding sleeve (22) to adapt to the terrain, and lock the frame position by the interaction of magnet (24) and magnetic strip (25); c. Install the multi-layer fireproof material onto the frame structure, and lay the ceramic fiber layer (13), flame-retardant foam layer (14) and reflective heat insulation layer (15) in sequence to ensure that each layer is tightly bonded. d. Connect adjacent firewall units to form a continuous fire barrier through the connection point of the mounting base (21) and the frame structure (2) to ensure a seamless connection; e. Install the integrated cooling system (12), fix the water tank (16) inside the firewall (1), connect the multi-stage water supply pipe (17) and the water pump (18), and install the atomizing nozzle (19) in the appropriate position. Ensure that the system is properly connected to the external water source; f. Connect the intelligent control unit (3), including a temperature sensor, a smoke sensor and a microprocessor, and electrically connect it to the firewall body (1) and the integrated cooling system (12), and connect a portable power supply to ensure continuous operation of the system; g. Start the system to perform a comprehensive self-test, including the stability of the frame structure, the integrity of the multi-layer fireproof materials, the function of the cooling system, the sensitivity of the sensors, and the response of the control unit, to ensure that all components are working properly and can work together to respond to emergencies.