Radiator shell with temperature sensor
By incorporating a temperature sensor and wireless transmission module in the radiator case and combining the fin-shaped heat sink design, the problem that traditional radiator case cannot be monitored in real time and controlled remotely is solved, efficient heat dissipation and temperature management are achieved, and the service life of the equipment is extended.
Patent Information
- Application Number
- CN202421843270.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-01
- Publication Date
- 2025-07-18
- Estimated Expiration
- 2034-08-01
AI Technical Summary
The traditional radiator housing lacks temperature sensors and cannot monitor the temperature status in real time, resulting in the inability to dynamically adjust the heat dissipation strategy, and the heat dissipation efficiency is low, making remote monitoring and control impossible.
The radiator housing is built in temperature sensor and wireless transmission module, combined with the fin-shaped heat sink design, realizes intelligent monitoring and remote control, and sends temperature data to the central control system or user equipment through the wireless transmission module. The fin-shaped heat sink increases the heat dissipation area and the air contact surface area to improve heat exchange efficiency.
It realizes intelligent monitoring and remote control, improves heat dissipation efficiency and temperature control accuracy, extends the service life of the equipment, reduces energy consumption and improves response speed.
Smart Images

Figure CN223125180U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of electromechanical equipment, and specifically relates to a radiator housing with a temperature sensor. Background Art
[0002] In traditional designs, temperature sensors are usually lacking, which means that the system cannot monitor the temperature status of the radiator in real time. Therefore, it is impossible to dynamically adjust the heat dissipation strategy according to the actual temperature, such as adjusting the fan speed or changing the heat dissipation mode. Traditional radiator housings usually cannot achieve remote monitoring and control. This limits the user's ability to manage and optimize the equipment when not on site. Traditional radiator housings often use simple flat plates or a small number of heat dissipation fins, which limits the heat dissipation area and results in low heat dissipation efficiency. The lack of sufficient fin structures reduces the effective heat dissipation area and affects the rapid dissipation of heat energy. A current radiator (Publication No.: CN202434500U) has the following problems when in use:
[0003] 1. In traditional designs, temperature sensors are usually lacking, which means that the system cannot monitor the temperature status of the radiator in real time. Therefore, it is impossible to dynamically adjust the heat dissipation strategy according to the actual temperature, such as adjusting the fan speed or changing the heat dissipation mode. Traditional radiator housings usually cannot achieve remote monitoring and control. This limits the user's ability to manage and optimize the equipment when not on site.
[0004] 2. Traditional radiator housings usually cannot achieve remote monitoring and control. This limits the user's ability to manage and optimize the equipment when not on site. Traditional radiator housings often use simple flat plates or a small number of heat dissipation fins, which limits the heat dissipation area and results in low heat dissipation efficiency. The lack of sufficient fin structures reduces the effective heat dissipation area and affects the rapid dissipation of heat energy. Summary of the Invention
[0005] The main purpose of the utility model is to provide a radiator housing with a temperature sensor, which can effectively solve the problems in the background art.
[0006] To achieve the above purpose, the technical solution adopted by the utility model is as follows:
[0007] A radiator housing with a temperature sensor, including a radiator housing, a radiator bracket is installed below the radiator housing, the radiator bracket is provided with bolt holes, a radiator protection net is arranged at the middle position of the radiator housing, fin-shaped heat dissipation fins are arranged on the outer layer of the radiator housing, a temperature sensor is arranged inside the radiator housing, and a wireless transmission module is arranged inside the radiator housing. The temperature sensor is electrically connected to the wireless transmission module. There are two radiator brackets. The fin-shaped heat dissipation fins are arranged in a linear array. The wireless transmission module is connected to the control system.
[0008] Preferably, the temperature sensor is electrically connected to the wireless transmission module.
[0009] Preferably, two radiator brackets are provided.
[0010] Preferably, the finned heat sinks are arranged in a linear array.
[0011] Preferably, the wireless transmission module is connected to the control system.
[0012] Compared with the prior art, the utility model has the following beneficial effects:
[0013] 1. By combining the temperature sensor with the wireless transmission module, the radiator housing can achieve intelligent monitoring and remote control. The temperature sensor continuously measures the real-time temperature of the radiator housing and its internal components. This monitoring is continuous to ensure that any temperature anomaly can be immediately detected. The detected temperature data is sent to the central control system or the user's mobile device in real time through the wireless transmission module. This wireless transmission can be Wi-Fi, Bluetooth or other wireless communication standards. The central control system or the user can adjust the heat dissipation strategy according to the received temperature information, such as adjusting the rotation speed of the additional fan, changing the heat dissipation mode or starting the cooling program. This feedback loop ensures the optimized operation of the heat dissipation system, prevents the device from overheating and extends the service life.
[0014] 2. The design of the finned heat sinks greatly improves the heat dissipation efficiency. By increasing the surface area in contact with the air, the finned heat sinks improve the heat exchange efficiency. More surface area means that more heat can be transferred from the radiator to the surrounding environment. The specific arrangement and shape design of the fins help to guide the air flow through the heat sinks. This design can generate more turbulence, which helps to break the thermal boundary layer and accelerate the heat exchange process. The fins quickly conduct the heat from the source to the fin surface through the high thermal conductivity of their metal material, and then the heat is dissipated from the fin surface into the air. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 is a schematic diagram of the overall structure of the utility model;
[0016] Figure 2 is a schematic diagram of the interior of the utility model;
[0017] In the figure: 1. Radiator housing; 2. Radiator bracket; 3. Bolt hole; 4. Radiator protection net; 5. Finned heat sink; 6. Temperature sensor; 7. Wireless transmission module. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0018] In order to make the technical means, creative features, achieved purposes and effects realized by the present utility model easy to understand, the present utility model will be further described below in conjunction with specific embodiments.
[0019] In the description of the present utility model, it should be noted that the orientation or positional relationship indicated by the terms "upper", "lower", "inner", "outer", "front end", "rear end", "both ends", "one end", "the other end", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the present utility model. In addition, the terms "first" and "second" are only used for descriptive purposes and cannot be construed as indicating or implying relative importance.
[0020] In the description of the present utility model, it should be noted that unless otherwise clearly specified and limited, the terms "installed", "provided with", "connected", etc. should be understood in a broad sense. For example, "connected" can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present utility model can be understood according to specific situations. Embodiment
[0021] Please refer to Figure 1-2 , the present utility model provides a technical solution:
[0022] A radiator housing with a temperature sensor, comprising a radiator housing 1, a radiator bracket 2 is installed below the radiator housing 1, the radiator bracket 2 is provided with bolt holes 3, a radiator protection net 4 is arranged at the middle position of the radiator housing 1, fin-shaped heat dissipation fins 5 are arranged on the outer layer of the radiator housing 1, a temperature sensor 6 is arranged inside the radiator housing 1, and a wireless transmission module 7 is arranged inside the radiator housing 1. The temperature sensor 6 is electrically connected to the wireless transmission module 7. There are two radiator brackets 2. The fin-shaped heat dissipation fins 5 are arranged in a linear array. The wireless transmission module 7 is connected to the control system.
[0023] Performance indicators Traditional radiator housing New type radiator housing Percentage increase Heat dissipation efficiency 70% 90% +28.6% Energy consumption 100 units 80 units -20% Temperature control accuracy ±5°C ±1°C +80% Response time 5 minutes 1 minute +80% Maintenance frequency Twice a year Once a year +50% Remote monitoring capability None Yes N / A Service life 3 years 5 years +66.7%
[0024] From the comparison in the above table, it can be seen that compared with the traditional radiator housing, in this utility model, the temperature sensor is combined with the wireless transmission module, enabling the radiator housing to achieve intelligent monitoring and remote control. The temperature sensor continuously measures the real-time temperature of the radiator housing and its internal components. This continuous monitoring ensures that any temperature anomaly can be detected immediately. Compared with the traditional system, the real-time monitoring improves the efficiency of the response time by +80%. The detected temperature data is sent to the central control system or the user's mobile device in real time through the wireless transmission module. The wireless transmission can be Wi-Fi, Bluetooth, or other wireless communication standards. The central control system or the user can adjust the heat dissipation strategy according to the received temperature information, such as adjusting the rotation speed of the additional fan, changing the heat dissipation mode, or starting the cooling program. This feedback loop ensures the optimized operation of the heat dissipation system, prevents the device from overheating, extends the service life, and the temperature control accuracy is improved by +80%. The finned heat sink improves the heat exchange efficiency by increasing the surface area in contact with the air. More surface area means more heat can be transferred from the radiator to the surrounding environment. Compared with the traditional design, the heat dissipation efficiency is increased by +28.6%. The specific arrangement and shape design of the fins help to guide the air flow through the heat sink. This design can generate more turbulence, which helps to break the thermal boundary layer and accelerate the heat exchange process. The fins quickly conduct the heat from the source (such as the processor or other heat-generating components) to the fin surface through the high thermal conductivity of their metal material, and then the heat is dissipated from the fin surface into the air.
[0025] The temperature sensor described in this utility model selects the LM35 type temperature sensor produced by Texas Instruments (TI) company. The LM35 provides a high precision of 0.5°C per degree, which is crucial for applications that require precise temperature monitoring to prevent device overheating. Its output is an analog signal that is directly linearly proportional to the Celsius temperature. Such an output allows the temperature reading to be directly obtained through a simple analog-to-digital converter without complex algorithms or calibration. The power consumption of this sensor is extremely low (less than 60 µA), making it suitable for applications with continuous operation, especially in power-constrained portable devices. This low-power consumption characteristic helps to maintain the overall energy efficiency of the device and extend the battery life. The LM35 can work in a wide temperature range from -55°C to 150°C, suitable for various environmental conditions, ensuring accurate temperature data can be provided even in extreme temperatures.
[0026] The wireless transmission module described in this utility model selects the ESP8266 wireless transmission module produced by Espressif Systems. The ESP8266 integrates a complete TCP / IP network protocol stack, can be directly connected to the Wi-Fi network, simplifies the development process, and speeds up the product launch. Its built-in microcontroller supports multiple programming environments, facilitating the development and deployment of complex network applications. As one of the highly cost-effective Wi-Fi modules on the market, the ESP8266 is suitable for cost-sensitive projects, enabling the large-scale deployment of intelligent cooling systems without sacrificing functionality.
[0027] The above shows and describes the basic principles, main features and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited by the above embodiments. What is described in the above embodiments and the specification only illustrates the principle of this utility model. Without departing from the spirit and scope of this utility model, this utility model will have various changes and improvements, and these changes and improvements all fall within the scope of this utility model claimed. The scope of protection claimed by this utility model is defined by the appended claims and their equivalents.
Claims
1. A radiator housing with a temperature sensor, comprising a radiator housing (1), characterized in that: A radiator bracket (2) is installed below the radiator housing (1). The radiator bracket (2) is provided with bolt holes (3). A radiator protection net (4) is arranged at the middle position of the radiator housing (1). Fin-shaped heat sinks (5) are arranged on the outer layer of the radiator housing (1). A temperature sensor (6) is arranged inside the radiator housing (1). A wireless transmission module (7) is arranged inside the radiator housing (1).
2. The radiator housing with a temperature sensor according to claim 1, characterized in that: The temperature sensor (6) is electrically connected to the wireless transmission module (7).
3. A radiator housing with a temperature sensor according to claim 1, characterized in that: There are two radiator brackets (2).
4. The radiator housing with a temperature sensor according to claim 1, characterized in that: The fin-shaped heat sinks (5) are arranged in a linear array.
5. The radiator housing with a temperature sensor according to claim 1, characterized in that: The wireless transmission module (7) is connected to the control system.
Citation Information
Patent Citations
Radiator
CN202434500U