Intelligent water pump based on Internet of Things
By integrating IoT components into forest fire pumps, the problem of difficulty in real-time monitoring of pump data has been solved, enabling real-time monitoring of pump operation status and water pressure, thereby improving equipment reliability and fire extinguishing efficiency.
Patent Information
- Application Number
- CN202520102171.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-16
- Publication Date
- 2025-11-14
- Estimated Expiration
- 2035-01-16
AI Technical Summary
The lack of intelligent IoT structure in existing forest fire pumps makes it difficult to obtain and monitor key data such as operating status, pump pressure and flow rate in real time, which affects fire fighting efficiency and equipment reliability.
Design an IoT-based smart water pump that integrates a water pump monitoring module, inlet and outlet pressure sensors, a battery, and a wireless communication module to achieve real-time monitoring and data transmission of the water pump's operating status and water pressure.
It enables real-time monitoring of the water pump's operating status and water pressure, allowing for timely detection and resolution of potential problems, preventing equipment failures in emergencies, and improving firefighting efficiency and equipment reliability.
Smart Images

Figure CN223549435U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of water pump technology, and specifically relates to an intelligent water pump based on the Internet of Things. Background Technology
[0002] Existing forest fire pumps generally lack intelligent IoT structures, making it difficult to acquire and monitor key data such as operating status, pump pressure, flow rate, and oil temperature in real time. This causes numerous inconveniences and hidden dangers in the urgent and complex environment of forest fire fighting. First, the lack of real-time data monitoring affects firefighting efficiency. Firefighters cannot promptly understand the operating status of the pumps, such as malfunctions or insufficient pressure, and can only rely on manual inspections, delaying the discovery and handling of faults, directly impacting firefighting efficiency. Many pumps still use traditional mechanical structures, lacking necessary sensors and data transmission modules, making real-time data acquisition and transmission impossible.
[0003] Conventional solutions include installing various sensors on the water pump, such as pressure sensors, flow sensors, and temperature sensors, to collect operating data; using wireless communication technology to transmit the collected data to a monitoring center in real time; and establishing a monitoring platform to monitor and analyze the pump's operating status in real time. However, these methods also have drawbacks: the cost of sensors and communication modules is high, increasing the purchase cost of the water pump; wireless communication technology is susceptible to environmental interference, resulting in unstable signal transmission; the construction and maintenance of the monitoring platform requires significant investment of manpower and resources; and data security and reliability also need to be considered. Therefore, we aim to design a water pump with a novel structure to address these issues. Utility Model Content
[0004] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide an intelligent water pump based on the Internet of Things to solve the problems mentioned in the background technology.
[0005] This utility model is achieved through the following technical solution: an intelligent water pump based on the Internet of Things, comprising: a water pump assembly and an IoT component, wherein the water pump assembly is internally equipped with an IoT component for multi-data monitoring of the water pump assembly, and the IoT component includes a water pump monitoring module, a battery, an inlet pressure sensor and an outlet pressure sensor.
[0006] The water pump monitoring module is connected to a battery for power supply via wires, and is electrically connected to an inlet pressure sensor for monitoring the water pump inlet pressure via wires, and is electrically connected to an outlet pressure sensor for monitoring the water pump outlet pressure via wires.
[0007] In a preferred embodiment, the water pump assembly includes a frame, a fuel generator, a water pump body, and a magneto box. The fuel generator is installed on the upper left side of the frame, and the magneto box for storing electricity for backup and driving the water pump body is installed on the lower left side of the frame.
[0008] In a preferred embodiment, a water pump body is installed inside the right side of the frame, and the left end of the water pump body is connected to the magneto box via a coupling and a drive shaft. The magneto box is placed at the lower end of the fuel generator, and a housing for protecting the internal components is fixed to the outer wall of the left end of the frame.
[0009] In a preferred embodiment, a heat dissipation window 1 for rapid heat dissipation is provided on the front and left sides of the outer casing, a heat dissipation window 2 for rapid heat dissipation is provided on the upper side of the outer casing, and a heat dissipation window 3 for rapid heat dissipation is provided on the left side of the outer casing.
[0010] In a preferred embodiment, the IoT component further includes an antenna, a motor body, an oil level sensor, and a protective shell. An antenna for wireless data transmission is installed on the front side of the protective shell. The water pump monitoring module is connected to the antenna via a wire. In actual use, the water pump monitoring module transmits data wirelessly to an external monitoring backend or device terminal, such as a mobile phone, through the antenna.
[0011] In a preferred embodiment, the motor body is installed inside the magneto box. The motor body is a permanent magnet motor used to drive the water pump body. The motor body is electrically connected to the fuel generator via wires, and the battery is electrically connected to the motor body via wires.
[0012] In a preferred embodiment, the fuel level sensor is placed inside the fuel tank of the fuel generator to monitor fuel consumption, and the fuel level sensor is electrically connected to the water pump monitoring module via a wire.
[0013] In a preferred embodiment, the inlet pressure sensor is placed at the inlet of the water pump body, and the outlet pressure sensor is placed at the outlet of the water pump body. The water pump monitoring module, oil level sensor, inlet pressure sensor, and outlet pressure sensor are all electrically connected to the battery via wires. In actual use, the output terminals of the oil level sensor, inlet pressure sensor, and outlet pressure sensor are all connected to the input terminal of the water pump monitoring module. The oil level sensor, inlet pressure sensor, and outlet pressure sensor can all be existing product models on the market, and can be selected according to actual usage requirements.
[0014] After adopting the above technical solution, the beneficial effects of this utility model are: by setting up IoT components, monitoring personnel can timely understand the remaining fuel level of the fuel generator, avoiding the problem of insufficient fuel affecting the normal operation of the equipment during fire fighting and rescue.
[0015] The installation of inlet and outlet pressure sensors, along with the water pump monitoring module, enables rescue personnel to monitor the inlet and outlet water pressure of the water pump in real time. This allows for timely detection and maintenance of problems during routine water pump maintenance, preventing malfunctions or abnormal water pressure in emergency situations and significantly reducing the serious impact of equipment failures during rescue operations. Attached Figure Description
[0016] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0017] Figure 1 This is a schematic diagram of the overall structure of an IoT-based smart water pump according to this utility model.
[0018] Figure 2 This is a schematic diagram showing the connection between the pump component and the IoT component of a smart water pump based on the Internet of Things (IoT).
[0019] Figure 3 This is a schematic diagram of the fuel generator structure of an IoT-based smart water pump according to this utility model.
[0020] Figure 4 This is a schematic diagram of the IoT component framework structure of an IoT-based smart water pump according to this utility model.
[0021] Figure 5 This is a schematic diagram of the IoT component circuit structure of an IoT-based smart water pump according to this utility model.
[0022] In the diagram, 100-water pump assembly, 110-frame, 120-water pump body, 130-shell, 131-heat dissipation window one, 132-heat dissipation window two, 140-magnetic motor box, 150-fuel generator, 200-IoT component, 210-water pump monitoring module, 220-antenna, 230-battery, 240-magnetic motor body, 250-oil level sensor, 260-inlet pressure sensor, 270-outlet pressure sensor. Detailed Implementation
[0023] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0024] Please see Figures 1 to 5 This utility model provides a technical solution: an Internet of Things-based smart water pump, including: a water pump assembly 100 and an Internet of Things component 200. The water pump assembly 100 is internally equipped with an Internet of Things component 200 for multi-data monitoring of the water pump assembly 100. The Internet of Things component 200 includes a water pump monitoring module 210, a battery 230, an inlet pressure sensor 260, and an outlet pressure sensor 270.
[0025] The water pump monitoring module 210 is electrically connected to the battery 230 for power supply via wires, the water pump monitoring module 210 is electrically connected to the inlet pressure sensor 260 for monitoring the water pump inlet pressure via wires, and the water pump monitoring module 210 is electrically connected to the outlet pressure sensor 270 for monitoring the water pump outlet pressure via wires.
[0026] Please see Figures 1 to 5 The water pump assembly 100 includes a frame 110, a fuel generator 150, a water pump body 120, and a magneto box 140. The fuel generator 150 is installed on the upper left side of the frame 110, and the magneto box 140 for storing electricity for backup and driving the water pump body 120 is installed on the lower left side of the frame 110.
[0027] The water pump body 120 is installed inside the right side of the frame 110. The left end of the water pump body 120 is connected to the magneto box 140 through a coupling and a drive shaft. The magneto box 140 is placed at the lower end of the fuel generator 150. The outer wall of the left end of the frame 110 is fixed with a housing 130 for protecting the internal components.
[0028] The outer casing 130 has a heat dissipation window 131 on the front and left sides for rapid heat dissipation, a heat dissipation window 132 on the upper side for rapid heat dissipation, and a heat dissipation window 3 on the left side for rapid heat dissipation.
[0029] The IoT component 200 also includes an antenna 220, a motor body, an oil level sensor 250, and a protective shell. The front of the protective shell is equipped with an antenna 220 for wireless data transmission. The water pump monitoring module 210 is connected to the antenna 220 via a wire. In actual use, the water pump monitoring module 210 transmits data wirelessly to an external monitoring backend or device terminal, such as a mobile phone, through the antenna 220.
[0030] The motor body is installed inside the magneto box 140. The motor body is a permanent magnet motor used to drive the water pump body 120. The motor body is electrically connected to the fuel generator 150 through wires, and the battery 230 is electrically connected to the motor body through wires.
[0031] The fuel level sensor 250 is placed inside the fuel tank of the fuel generator 150 to monitor fuel consumption. The fuel level sensor 250 is electrically connected to the water pump monitoring module 210 via a wire.
[0032] As the first embodiment of this utility model, by setting up the Internet of Things component 200, in actual use, when the water pump body 120 is running, it can be driven by either the storage battery 230 or the fuel generator 150. If the fuel generator 150 is driven, the fuel generator 150 can also charge the storage battery 230 while driving the motor body. The oil level sensor 250 placed inside the fuel tank of the fuel generator 150 can monitor the remaining oil level data in real time and transmit the data to the water pump monitoring module 210 in real time. The water pump monitoring module 210 then transmits the data to the external terminal device or monitoring backend through the antenna 220, so that the monitoring personnel can know the remaining oil level of the fuel generator 150 in a timely manner and avoid the problem of insufficient oil affecting the normal operation of the equipment during fire fighting and rescue.
[0033] Please see Figures 1 to 5 The inlet pressure sensor 260 is located at the inlet of the water pump body 120, and the outlet pressure sensor 270 is located at the outlet of the water pump body 120. The water pump monitoring module 210, oil level sensor 250, inlet pressure sensor 260, and outlet pressure sensor 270 are all electrically connected to the battery 230 via wires. In actual use, the output terminals of the oil level sensor 250, inlet pressure sensor 260, and outlet pressure sensor 270 are all connected to the input terminal of the water pump monitoring module 210. The oil level sensor 250, inlet pressure sensor 260, and outlet pressure sensor 270 can all be existing product models on the market, and the specific selection can be made according to the actual usage requirements.
[0034] As a second embodiment of this utility model, based on the first embodiment described above, the setting of the inlet pressure sensor 260 and the outlet pressure sensor 270, together with the water pump monitoring module 210, enables rescue personnel to understand the status of the inlet water pressure and outlet water pressure of the water pump body 120 in real time. This allows the water pump body 120 to promptly detect and maintain problems during routine maintenance, avoiding potential malfunctions or abnormal water pressure in emergency situations, and greatly reducing the serious impact of equipment failure during rescue operations.
[0035] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. An IoT-based smart water pump, comprising: A water pump assembly (100) and an Internet of Things (IoT) component (200) are characterized in that the water pump assembly (100) is internally equipped with an IoT component (200) for multi-data monitoring of the water pump assembly (100), the IoT component (200) including a water pump monitoring module (210), a battery (230), an inlet pressure sensor (260) and an outlet pressure sensor (270). The water pump monitoring module (210) is connected to the battery (230) for power supply via a wire. The water pump monitoring module (210) is electrically connected to the inlet pressure sensor (260) for monitoring the water pump inlet pressure via a wire. The water pump monitoring module (210) is electrically connected to the outlet pressure sensor (270) for monitoring the water pump outlet pressure via a wire.
2. The smart water pump based on the Internet of Things as described in claim 1, characterized in that: The water pump assembly (100) includes a frame (110), a fuel generator (150), a water pump body (120), and a magneto box (140). The fuel generator (150) is installed on the upper left side of the frame (110), and the magneto box (140) for storing electricity for backup and driving the water pump body (120) is installed on the lower left side of the frame (110).
3. The smart water pump based on the Internet of Things as described in claim 2, characterized in that: The water pump body (120) is installed inside the right side of the frame (110). The left end of the water pump body (120) is connected to the magneto box (140) via a coupling and a drive shaft. The magneto box (140) is placed at the lower end of the fuel generator (150). The outer wall of the left end of the frame (110) is fixed with a shell (130) for protecting the internal components.
4. The smart water pump based on the Internet of Things as described in claim 3, characterized in that: The outer casing (130) is provided with a heat dissipation window 1 (131) on the front and left sides for rapid heat dissipation, a heat dissipation window 2 (132) on the upper side of the outer casing (130) for rapid heat dissipation, and a heat dissipation window 3 on the left side of the outer casing (130) for rapid heat dissipation.
5. The smart water pump based on the Internet of Things as described in claim 1, characterized in that: The IoT component (200) also includes an antenna (220), a motor body, an oil level sensor (250), and a protective shell. The front of the protective shell is equipped with an antenna (220) for wireless data transmission. The water pump monitoring module (210) is connected to the antenna (220) via a wire.
6. The smart water pump based on the Internet of Things as described in claim 5, characterized in that: The motor body is installed inside the magneto box (140). The motor body is a permanent magnet motor used to drive the water pump body (120). The motor body is electrically connected to the fuel generator (150) through wires. The battery (230) is electrically connected to the motor body through wires.
7. A smart water pump based on the Internet of Things as described in claim 5, characterized in that: The oil level sensor (250) is placed inside the fuel tank of the fuel generator (150) to monitor fuel consumption. The oil level sensor (250) is electrically connected to the water pump monitoring module (210) via a wire.
8. The smart water pump based on the Internet of Things as described in claim 1, characterized in that: The inlet pressure sensor (260) is located at the inlet of the water pump body (120), and the outlet pressure sensor (270) is located at the outlet of the water pump body (120). The water pump monitoring module (210), oil level sensor (250), inlet pressure sensor (260) and outlet pressure sensor (270) are all electrically connected to the battery (230) via wires.