Novel building fire-fighting equipment electronic detection device

By integrating electronic sensors and a waterproof hammer structure, the fire hydrant detection device solves the problems of complex manual operation, inaccurate measurement, and easy equipment damage in existing technologies. It realizes real-time, accurate, and automated fire hydrant detection, improving detection efficiency and equipment stability.

CN224039889UActive Publication Date: 2026-03-27CHONGQING XINGYUAN REAL ESTATE MANAGEMENT CO
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-18
Publication Date
2026-03-27

AI Technical Summary

Technical Problem

Existing fire hydrant testing methods rely on manual operation, resulting in insufficient measurement accuracy, lagging data processing, and equipment susceptibility to water hammer damage. These methods fail to meet the high efficiency, accuracy, and safety requirements of modern building fire protection systems.

Method used

It employs electronic pressure sensors and electronic flow valves, combined with a water hammer prevention structure and intelligent liquid flow valve, to achieve real-time monitoring of water pressure and flow rate, automated water flow control, and an integrated design. It also uses flexible connecting pipes to adapt to different environments.

Benefits of technology

It enables real-time and accurate monitoring of fire hydrant detection, reduces human error, improves the automation level of detection, enhances equipment protection and installation flexibility, and ensures accurate data transmission and analysis.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a novel electronic detection device for building fire-fighting equipment, which comprises a carrier mounting base, a middle distribution pipe, a fire-fighting equipment connecting pipe, an interface, a waterproof hammer structure, a pressure measuring end valve, an electronic pressure sensor and a flow velocity measuring structure, the fire-fighting equipment connecting pipe is fixedly mounted at the front end of the middle distribution pipe, and the interface is fixedly mounted at one end of the fire-fighting equipment connecting pipe; the waterproof hammer structure is fixedly mounted at the rear end of the middle distribution pipe, the pressure measuring end valve is fixedly mounted on one side of the middle distribution pipe, and the electronic pressure sensor is fixedly mounted at one end of the pressure measuring end valve; the flow velocity measuring structure is fixedly mounted on the other side of the middle distribution pipe; due to the arrangement of the fire-fighting equipment connecting pipe and the flow velocity measuring structure, a large number of workers do not need to participate in detection, the detection accuracy is high, detection results can be rapidly collected, and the equipment cannot be impacted and damaged by water flow.
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Description

TECHNICAL FIELD

[0001] The utility model relates to fire fighting equipment detection technical field especially relates to a novel building fire fighting equipment electron detection device. BACKGROUND

[0002] In modern building fire fighting system, fire hydrant as one of important fire fighting facilities, plays a key role, its main function is to provide stable water source for extinguishing, ensures that fire fighting personnel can obtain enough water flow to extinguish fire when fire occurs, however, with the continuous expansion of building scale and the increase of fire fighting system complexity, the traditional fire hydrant detection method and technology have gradually been unable to meet the growing safety and accuracy demand, therefore, it is necessary to develop a new, efficient and reliable fire fighting equipment detection device.

[0003] At present, the detection of fire hydrant mostly relies on manual operation and regular inspection. Common detection methods include using mechanical flow meters and pressure gauges to measure water flow rate and water pressure. These methods usually have the following problems:

[0004] Manual intervention is too much: the inspection of existing equipment usually needs manual operation, including opening the fire hydrant, checking the flow, reading the pressure, etc. This not only increases the complexity and workload of operation, but also increases the probability of human error.

[0005] Measurement accuracy is insufficient: traditional flow and pressure measurement tools are mostly mechanical devices, which cannot provide real-time data and are difficult to ensure measurement accuracy, especially in complex environments. The measurement results of these traditional devices may be affected by external factors, resulting in inaccurate data.

[0006] Data processing is lagging: traditional detection methods rely on manual data recording and subsequent analysis. This method is not only inefficient, but also easy to miss important information and cannot provide real-time feedback on system status.

[0007] Insufficient protection of equipment: water hammer effect may occur during the operation of fire hydrant, which is a shock wave generated when water flow changes suddenly. Most existing devices do not have protection design for water hammer effect, which leads to easy damage of equipment and even affects the accuracy of detection.

[0008] Therefore, it is necessary to invent a new building fire fighting equipment electronic detection device. CONTENT OF THE UTILITY MODEL

[0009] In order to solve the above technical problems, the utility model provides a novel building fire control equipment electronic detection device to solve the problems of the existing fire control equipment detection still needing a large amount of manual participation in detection, poor detection accuracy, the detection result cannot be quickly collected, and the equipment is easily damaged by water flow. A novel building fire control equipment electronic detection device, including carrier installation base, intermediate distribution pipe, fire control equipment connection pipe, interface, waterproof hammer structure, pressure measuring end valve, electronic pressure sensor and flow speed measuring structure, wherein: the intermediate distribution pipe is fixedly installed above the carrier installation base, and the fire control equipment connection pipe is fixedly installed at the front end of the intermediate distribution pipe, and the interface is fixedly installed at one end of the fire control equipment connection pipe; the waterproof hammer structure is fixedly installed at the rear end of the intermediate distribution pipe, and the pressure measuring end valve is fixedly installed on one side of the intermediate distribution pipe, and the electronic pressure sensor is fixedly installed at one end of the pressure measuring end valve; the flow speed measuring structure is fixedly installed on the other side of the intermediate distribution pipe.

[0010] The fire control equipment connection pipe includes a connecting hard pipe, an on-off master valve, a supporting hard pipe, a anti-loose handle and a connecting soft pipe, the connecting hard pipe is fixedly installed at the front end of the intermediate distribution pipe, and the on-off master valve is fixedly installed at one end of the connecting hard pipe; the supporting hard pipe is fixedly installed at one end of the on-off master valve, and the anti-loose handle is fixedly installed on the outside of the on-off master valve, and the connecting soft pipe is fixedly installed at one end of the supporting hard pipe.

[0011] The flow speed measuring structure includes a connecting flange, a flow measuring end valve, a lead-through pipe, an electronic flow speed valve and a water outlet pipe, the flow measuring end valve is fixedly installed on one side of the intermediate distribution pipe through the connecting flange, the electronic flow speed valve is connected with the flow measuring end valve through the lead-through pipe, and the water outlet pipe is fixedly installed at one end of the electronic flow speed valve.

[0012] The connecting hard pipe and the supporting hard pipe inside the fire control equipment connection pipe adopt two sections of hard metal pipes, and the connecting hard pipe and the supporting hard pipe support the on-off master valve inside them, and the connecting soft pipe adopts a canvas soft pipe; the connecting soft pipe can be bent, and one end of the connecting soft pipe is connected with the building fire hydrant through the interface, and has the following effects: ① connecting the fire control equipment with the detection device: the fire control equipment connection pipe is connected with the fire hydrant or other fire control equipment through the connecting hard pipe, allowing water flow to flow from the fire control equipment into the intermediate distribution pipe for subsequent water pressure and flow speed detection; ② controlling the opening and closing of water flow: through the double control of the on-off master valve and the fire hydrant valve, the fire control equipment connection pipe can open or close the water flow. This allows the detection personnel to control the inflow and stop of the water flow as needed, ensuring the stability of the water flow state during the test; ③ providing a stable water flow path: the supporting hard pipe and the connecting soft pipe work together to ensure that the water flow can smoothly pass through the fire control equipment connection pipe, so that the detection accuracy is not affected by the pipe problem. The flexibility of the connecting soft pipe facilitates on-site adjustment and installation.

[0013] The flow measuring end valve and the pressure measuring end valve inside the flow measuring structure both use stop valves, and the electronic flow rate valve uses a set of intelligent liquid flow valves, and the water outlet pipeline uses several flexible pipe sections; the water outlet pipelines are connected end to end to form a long pipeline, and the other end of the water outlet pipeline extends into a container or a sewer, and has the following effects: ① measuring water flow rate: the flow measuring structure is the core part of detecting water flow rate, and includes multiple components, such as a flow measuring end valve, an electronic flow rate valve, a through pipe and a water outlet pipeline. The structure controls the speed of water flowing through the electronic flow rate valve and detects the flow rate, thereby providing specific flow rate data of water flow; ② controlling water flow passage: the flow measuring end valve and the electronic flow rate valve can adjust and control the water flow entering the flow measuring structure, thereby ensuring the accuracy of measurement data. By adjusting the valve, the water flow can be ensured to be stable and measurement errors caused by too fast or too slow flow rate can be prevented; ③ outputting flow rate data: the electronic flow rate valve can monitor the speed of water flow in real time through a built-in sensor and a control system and convert the speed into an electronic signal. The data can be transmitted to a monitoring system for analysis and judgment, thereby ensuring that the water flow rate meets the standard; ④ guiding water flow during measurement: the through pipe connects the flow measuring end valve and the electronic flow rate valve, thereby ensuring that water flow passes through the detection point smoothly and ensuring the accuracy of measurement results, and the water outlet pipeline is used for guiding water flow after measurement, and usually guides water to a container or a sewer, thereby preventing equipment pollution.

[0014] Compared with the prior art, the utility model has the following beneficial effects:

[0015] 1. The fire-fighting equipment connecting pipe has the following effects: ① connecting the fire-fighting equipment and the detection device: the fire-fighting equipment connecting pipe is connected with a fire hydrant or other fire-fighting equipment through a connecting hard pipe, and allows water flow to flow from the fire-fighting equipment into the intermediate distribution pipe for subsequent water pressure and flow rate detection; ② controlling the opening and closing of water flow: through the double control of the opening and closing valve and the fire hydrant valve, the fire-fighting equipment connecting pipe can open or close water flow. This allows the detection personnel to control the inflow and stop of water flow as needed, thereby ensuring that the water flow state is stable during the test; ③ providing a stable water flow path: the support hard pipe and the connecting soft pipe jointly ensure that water flow can smoothly pass through the fire-fighting equipment connecting pipe, thereby preventing pipe problems from affecting detection accuracy. The flexibility of the connecting soft pipe facilitates on-site adjustment and installation.

[0016] 2.The utility model discloses a flow velocity measurement structure, which has the following functions: ① measuring water flow velocity: the flow velocity measurement structure is the core part of detecting water flow velocity, which includes multiple components such as a flow end valve, an electronic flow rate valve, a guide pipe, and a water outlet pipeline. The structure controls the speed of water flowing through the electronic flow rate valve and detects the flow rate to provide specific flow rate data of the water flow; ② controlling the water flow channel: the flow end valve and the electronic flow rate valve can adjust and control the water flow rate flowing into the flow velocity measurement structure to ensure the accuracy of the measurement data. By adjusting the valve, the water flow can be stabilized and measurement errors caused by excessive or insufficient flow rate can be prevented; ③ outputting flow rate data: the electronic flow rate valve uses an internal sensor and control system to monitor the water flow rate in real time and convert it into an electronic signal. These data can be transmitted to a monitoring system for analysis and judgment to ensure that the water flow rate meets the standard; ④ guiding the water flow during the measurement process:

[0017] The guide pipe connects the flow end valve and the electronic flow rate valve to ensure that the water flow passes through the detection point smoothly, ensuring the accuracy of the measurement results. The water outlet pipeline is used to guide the measured water flow, which is usually directed to a container or a sewer to prevent equipment contamination. BRIEF DESCRIPTION OF DRAWINGS

[0018] Figure 1 is a structural schematic diagram of the utility model.

[0019] Figure 2 is an enlarged view of A in the utility model.

[0020] Figure 3 is an enlarged view of B in the utility model.

[0021] In the figure:

[0022] Carrier mounting base 1, intermediate distribution pipe 2, fire-fighting equipment connection pipe 3, connection hard pipe 31, opening and closing master valve 32, support hard pipe 33, anti-loose handle 34, connection soft pipe 35, interface 4, water hammer prevention structure 5, pressure measurement end valve 6, electronic pressure sensor 7, flow velocity measurement structure 8, connection flange 81, flow end valve 82, guide pipe 83, electronic flow rate valve 84, water outlet pipeline 85. DETAILED DESCRIPTION

[0023] To enable personnel in the art to better understand the utility model scheme, the technical scheme in the utility model embodiment will be described clearly and completely below. Obviously, the described embodiments are only a part of the embodiments of the utility model, not all. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor should belong to the scope of protection of the utility model.

[0024] As shown in the accompanying Figure 1 to the accompanyingFigure 3

[0025] The utility model provides a novel building fire control equipment electronic detection device, including carrier installation base 1, intermediate distribution pipe 2, fire control equipment connection pipe 3, interface 4, waterproof hammer structure 5, pressure end valve 6, electronic pressure sensor 7 and flow speed measuring structure 8, wherein: intermediate distribution pipe 2 is fixedly installed above carrier installation base 1, and fire control equipment connection pipe 3 is fixedly installed at the front end of intermediate distribution pipe 2, and this interface 4 is fixedly installed at one end of fire control equipment connection pipe 3;Waterproof hammer structure 5 is fixedly installed at the rear end of intermediate distribution pipe 2, and pressure end valve 6 is fixedly installed at one side of intermediate distribution pipe 2, and electronic pressure sensor 7 is fixedly installed at one end of pressure end valve 6;Flow speed measuring structure 8 is fixedly installed at the other side of intermediate distribution pipe 2.

[0026] Fire control equipment connection pipe 3 includes connecting hard pipe 31, opening and closing total valve 32, support hard pipe 33, anti-loose handle 34 and connecting hose 35, and connecting hard pipe 31 is fixedly installed at the front end of intermediate distribution pipe 2, and opening and closing total valve 32 is fixedly installed at one end of connecting hard pipe 31;The support hard pipe 33 is installed at one end of opening and closing total valve 32, and anti-loose handle 34 is fixedly installed on the outside of opening and closing total valve 32, and connecting hose 35 is fixedly installed at one end of support hard pipe 33.

[0027] Flow speed measuring structure 8 includes connecting flange 81, flow end valve 82, lead-through pipe 83, electronic flow speed valve 84 and water outlet pipeline 85, and flow end valve 82 is fixedly installed at one side of intermediate distribution pipe 2 through connecting flange 81, and electronic flow speed valve 84 is connected with flow end valve 82 through lead-through pipe 83, and water outlet pipeline 85 is fixedly installed at one end of electronic flow speed valve 84.

[0028] Connecting hard pipe 31 and support hard pipe 33 in fire control equipment connection pipe 3 adopt two sections of hard metal pipelines, and connecting hard pipe 31 and support hard pipe 33 support opening and closing total valve 32 in its inside, and connecting hose 35 adopts a canvas hose;Connecting hose 35 can be bent, and one end of connecting hose 35 is connected with building fire hydrant through interface 4.

[0029] Flow end valve 82 and pressure end valve 6 in flow speed measuring structure 8 all adopt stop valves, and electronic flow speed valve 84 adopts a group of intelligent liquid flow valves, and water outlet pipeline 85 adopts several sections of flexible pipelines;Water outlet pipeline 85 is connected head to tail and forms a long pipeline, and the other end of water outlet pipeline 85 extends into a container or sewer.

[0030] Compared with prior art, the novel building fire control equipment electronic detection device has the following advantages:

[0031] 1, real-time monitoring water pressure and flow speed​

[0032] In the prior art, the detection of water pressure and flow rate often relies on manual testing or traditional mechanical equipment, which cannot achieve efficient and real-time monitoring. However, the device can realize real-time and accurate measurement and monitoring of water pressure and flow rate through the integration of electronic pressure sensor 7 and electronic flow rate valve 84, ensuring efficient and accurate transmission of detection data.

[0033] 2. Automatic control and data feedback

[0034] The device automatically adjusts water flow speed and flow rate through intelligent sensors and electronic flow rate valve 84, reducing the error of manual operation and enabling real-time data feedback to the monitoring system. Existing devices often rely on manual judgment and data recording, making it difficult to achieve automation and remote monitoring.

[0035] 3. Water hammer design enhances system protection

[0036] The device integrates a water hammer structure 5, effectively avoiding the water hammer effect caused by sudden interruption or drastic changes in water flow, reducing the risk of damage to the device. In the prior art, most systems do not have a dedicated water hammer structure, which can easily cause damage to pipes and equipment when water flow changes.

[0037] 4. Flexible connection and installation

[0038] The device uses a combination of connecting hoses 35 and supporting hard pipes 33, providing greater flexibility, especially the canvas hose of the connecting hose 35, which can bend and adapt to different environments, facilitating quick deployment and installation. In the prior art, hard pipes are usually used for connection, which has poor flexibility and a more complicated installation process.

[0039] 5. Enhanced water flow control and data accuracy

[0040] The device uses an intelligent liquid flow valve 84 in the flow rate measurement structure 8, which can accurately adjust the speed of water flow and obtain flow rate data through electronic sensors, greatly improving the detection accuracy of water flow rate. Existing technology may rely on mechanical flow meters, which have limited accuracy and flexibility.

[0041] 6. Integrated design and convenient maintenance

[0042] All measurement and control components of the device, such as pressure measuring end valve 6, flow measuring end valve 82, and electronic pressure sensor 7, are integrated into one system, reducing connection problems between multiple devices and facilitating maintenance and operation. Compared with existing technology, this integrated design can greatly reduce the complexity of device maintenance.

[0043] 7. Data and intelligent management

[0044] The device can obtain data in real time through sensors, process and store through electronic devices, and provide data analysis functions. Most existing devices rely on manual inspection and recording, making it difficult to achieve intelligent management and long-term tracking of data.

[0045] Summary

[0046] By introducing real-time electronic monitoring systems, automated water flow control, and intelligent sensors, the new building fire protection equipment electronic detection device has significant advantages in monitoring accuracy, automation, equipment protection, installation flexibility, and data management. These innovations make the device more powerful, easier to operate, and better protect the long-term stability of the system.

[0047] Any similar technical solution that achieves the above technical effects by using the technical solution of the present utility model or inspired by the technical solution of the present utility model falls within the scope of protection of the present utility model.

Claims

1. A novel electronic detection device for building fire protection equipment, characterized in that: The system includes a carrier mounting base (1), an intermediate distribution pipe (2), a fire equipment connector (3), an interface (4), a waterproof hammer structure (5), a pressure measuring valve (6), an electronic pressure sensor (7), and a flow velocity measuring structure (8). The intermediate distribution pipe (2) is fixedly installed above the carrier mounting base (1), and the fire equipment connector (3) is fixedly installed at the front end of the intermediate distribution pipe (2). The interface (4) is fixedly installed at one end of the fire equipment connector (3). The waterproof hammer structure (5) is fixedly installed at the rear end of the intermediate distribution pipe (2), and the pressure measuring valve (6) is fixedly installed on one side of the intermediate distribution pipe (2). The electronic pressure sensor (7) is fixedly installed at one end of the pressure measuring valve (6). The flow velocity measuring structure (8) is fixedly installed on the other side of the intermediate distribution pipe (2).

2. The novel electronic detection device for building fire protection equipment as described in claim 1, characterized in that: The fire equipment connection pipe (3) includes a connecting rigid pipe (31), a main valve (32), a supporting rigid pipe (33), a locking handle (34), and a connecting hose (35). The connecting rigid pipe (31) is fixedly installed at the front end of the intermediate distribution pipe (2), and the main valve (32) is fixedly installed at one end of the connecting rigid pipe (31). The supporting rigid pipe (33) is installed at one end of the main valve (32), and the locking handle (34) is fixedly installed on the outside of the main valve (32). The connecting hose (35) is fixedly installed at one end of the supporting rigid pipe (33).

3. The novel electronic detection device for building fire protection equipment as described in claim 1, characterized in that: The flow velocity measuring structure (8) includes a connecting flange (81), a flow measuring end valve (82), a guide pipe (83), an electronic flow velocity valve (84), and a water outlet pipe (85). The flow measuring end valve (82) is fixedly installed on one side of the intermediate distribution pipe (2) through the connecting flange (81), and the electronic flow velocity valve (84) is connected to the flow measuring end valve (82) through the guide pipe (83). The water outlet pipe (85) is fixedly installed at one end of the electronic flow velocity valve (84).

4. The novel electronic detection device for building fire protection equipment as described in claim 2, characterized in that: The connecting rigid pipe (31) and supporting rigid pipe (33) inside the fire equipment pipe (3) are two sections of rigid metal pipes, and the connecting rigid pipe (31) and supporting rigid pipe (33) support the main valve (32) inside. The connecting hose (35) is a canvas hose. The connecting hose (35) can be bent, and one end of the connecting hose (35) is connected to the building fire hydrant through the interface (4).

5. The novel electronic detection device for building fire protection equipment as described in claim 3, characterized in that: The flow velocity measuring structure (8) contains a flow measuring end valve (82) and a pressure measuring end valve (6), both of which are shut-off valves. The electronic flow velocity valve (84) is a set of intelligent liquid flow valves. The water outlet pipe (85) consists of several sections of flexible pipe. The water outlet pipes (85) are connected end to end to form a long pipe, and the other end of the water outlet pipe (85) extends into a container or sewer.