A new type of radiator with indoor temperature regulation function

By incorporating honeycomb structures, temperature-sensitive control fans, and reflectors into the radiators, the problems of low heating efficiency and uneven heat distribution in radiators have been solved, achieving rapid heating and efficient energy-saving indoor temperature regulation.

CN224580342UActive Publication Date: 2026-07-31SHANDONG JIANZHU UNIV
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHANDONG JIANZHU UNIV
Filing Date
2025-09-05
Publication Date
2026-07-31

AI Technical Summary

Technical Problem

Existing radiators have lower heating efficiency than air conditioners and suffer from high energy consumption, high installation costs, and uneven heat distribution.

Method used

A novel type of radiator with indoor temperature regulation is designed, comprising a honeycomb three-dimensional structure shell, a temperature-sensitive control fan, a reflector, and an exhaust assembly. It automatically adjusts the heat distribution by sensing changes in indoor temperature and uses the fan to force the exchange of cold air with the heat medium to form a rapid circulation, thereby increasing the efficiency of heat radiation and convection.

Benefits of technology

It enables rapid heating of indoor temperature, reduces uneven temperature, and improves the heat exchange efficiency and energy-saving effect of radiators.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

This utility model belongs to the field of building environment, specifically a new type of radiator with indoor temperature regulation, including a rib shell; a first heating pipe is installed in the middle of the inner wall of the rib shell; a water inlet is opened at the water inlet end of the first heating pipe; a second heating pipe is installed in the middle of the inner wall of the rib shell; by setting an air outlet pipe, an air outlet of the pipe, a temperature-sensitive fan shell, a motor, a movable shaft, a fan blade and a filter plate, the surface temperature of the radiator or the surrounding air can be monitored in real time, and the radiator can be automatically started and stopped according to a set threshold to maintain the indoor temperature. At the same time, this setting actively draws cold air into the radiator and forces it to exchange heat with the high-temperature heat medium, forming a rapid cycle of "inhalation-heating-blowing", which accelerates heat exchange and quickly raises the temperature. In addition, natural convection in the room can easily lead to lower temperatures in the area below or far from the radiator, while the fan can cover a wider range by blowing hot air in a directional manner, reducing the problem of uneven temperature.
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Description

Technical Field

[0001] This utility model belongs to the field of building environment, specifically a new type of radiator with indoor temperature regulation function. Background Technology

[0002] The fact that some radiators are not working efficiently highlights the urgent need to upgrade and innovate new types of radiators.

[0003] While older radiators are effective at heating the room, their heating efficiency is far behind that of newer air conditioning devices such as air conditioners. However, from an energy-saving perspective, radiators consume far less energy than newer air conditioning devices.

[0004] In addition, the cost of installing underfloor heating and air conditioning is too high, and most heating systems use a combination of small coal-fired boilers and radiators, which still results in discomfort such as a hot head and cold feet.

[0005] Therefore, this utility model provides a novel radiator with indoor temperature regulation. Utility Model Content

[0006] In order to overcome the shortcomings of the existing technology and solve at least one of the problems mentioned in the background technology, a new type of radiator with indoor temperature regulation is proposed.

[0007] The technical solution adopted by this utility model to solve its technical problem is as follows: A novel radiator with indoor temperature regulation, comprising a rib shell; a first heating pipe installed in the middle of the inner wall of the rib shell; a water inlet at the inlet end of the first heating pipe; a second heating pipe installed in the middle of the inner wall of the rib shell; a return water outlet at the outlet end of the second heating pipe; a connecting pipe connecting the first heating pipe and the second heating pipe; the connecting pipe installed inside the rib shell; a temperature regulating component provided in the middle of the inner wall of the rib shell, which can regulate the temperature by sensing changes in indoor temperature; a ventilation component provided in the middle of the side wall of the rib shell, which can naturally exhaust airflow inside the rib shell; a heat-reflecting component provided in the middle of the side wall of the rib shell, which can radiate heat into the room; an exhaust component provided in the middle of the side wall of the rib shell, which can promptly exhaust gas accumulated inside the rib shell; the temperature regulating component includes multiple air outlet pipes; the multiple air outlet pipes are arranged in a linear array inside the rib shell. The air outlet duct is embedded in the inner wall of the first heating duct and the second heating duct; the air outlet end of the air outlet duct has an air outlet; the air inlet end of the air outlet duct is equipped with a temperature-sensitive controlled fan housing; a motor is assembled in the middle of the inner side wall of the temperature-sensitive controlled fan housing; a movable shaft is fixedly connected to the output end of the motor; multiple fan blades are fixed in the middle of the side wall of the movable shaft; a filter plate is installed between the temperature-sensitive controlled fan housing and the rib shell; this step involves setting up the air outlet duct, the air outlet duct, and the temperature-sensitive controlled fan housing. The motor, moving shaft, fan blades, and filter plate can monitor the surface temperature of the radiator or the surrounding air in real time, and automatically start and stop according to the set threshold to maintain the indoor temperature. At the same time, this setting actively draws cold air into the radiator and forces it to exchange heat with the high-temperature heat medium, forming a rapid cycle of "inhalation-heating-blowing", which accelerates heat exchange and quickly raises the temperature. In addition, natural convection in the room can easily lead to lower temperatures in the area below or far from the radiator, while the fan can cover a wider area by directional blowing of hot air, reducing the problem of uneven temperature.

[0008] Preferably, the ventilation component includes multiple natural air inlets; the multiple natural air inlets are symmetrically opened on both sides of the rib shell; multiple natural air outlets are opened on the top of the rib shell; the diameter of the natural air outlets is smaller than that of the natural air inlets and the duct outlets; this step, by setting the diameter of the natural air outlets to be smaller than that of the natural air inlets and the duct outlets, can maintain a sufficiently high gas temperature inside the rib shell and a certain flow velocity while retaining the basic function of the radiator, thereby improving the convective heat transfer efficiency of hot air to the air outlet duct.

[0009] Preferably, the heat-reflecting assembly includes a reflector plate; the reflector plate is fixed to the side wall of the rib shell; the reflector plate is installed between the rib shell and the wall; this step, by placing a reflector plate made of aluminum foil material between the radiator and the wall, can not only insulate heat, but also radiate the heat emitted by the radiator into the room, thereby improving the working efficiency of the heating and ventilation system.

[0010] Preferably, the exhaust assembly includes an exhaust port; the exhaust port is located on the side wall of the rib shell; the exhaust port is threadedly connected to an exhaust valve; the exhaust valve is located outside the rib shell; this step, by setting the exhaust port and the exhaust valve, can release the gas accumulated inside the radiator in a timely manner, further improving the heat exchange efficiency, while also reducing heat loss and allowing more heat to be transferred into the room.

[0011] Preferably, a dustproof plate is installed in the middle of the side wall of the temperature-sensitive fan housing; the dustproof plate covers the outside of the motor; this step, by setting the dustproof plate, can block dust particles with a diameter larger than its pores, reduce the situation where dust covers the surface of the motor, hinders its heat dissipation, causes the temperature to rise, accelerates the aging of the insulation material, protects the core components of the fan, and extends the service life of the equipment.

[0012] Preferably, the rib shell is configured with a honeycomb three-dimensional structure; this step replaces the traditional ribs in the radiator with a honeycomb three-dimensional shell, whose surface concave-convex design can increase the contact area with air and improve the efficiency of heat radiation and convection.

[0013] The beneficial effects of this utility model are as follows:

[0014] 1. The present invention discloses a novel radiator with indoor temperature regulation. By setting up an air outlet duct, an air outlet duct, a temperature-sensitive fan housing, a motor, a movable shaft, fan blades, and a filter plate, it can monitor the surface temperature of the radiator or the surrounding air in real time, and automatically start and stop according to a set threshold to maintain the indoor temperature. At the same time, this setting actively draws cold air into the radiator and forces it to exchange heat with the high-temperature heat medium, forming a rapid cycle of "inhalation-heating-blowing", which accelerates heat exchange and quickly raises the temperature. Furthermore, natural convection in the room can easily lead to lower temperatures in the area below or far from the radiator, while the fan can cover a wider area by directional blowing of hot air, reducing the problem of uneven temperature.

[0015] 2. The present invention provides a novel radiator with indoor temperature regulation, which replaces the traditional fins in the radiator with a honeycomb three-dimensional shell. The concave-convex design of the shell increases the contact area with air and improves the efficiency of heat radiation and convection. Attached Figure Description

[0016] The present invention will be further described below with reference to the accompanying drawings.

[0017] Figure 1 This is a perspective view of the present invention;

[0018] Figure 2 This is a cross-sectional view of the rib shell in this utility model;

[0019] Figure 3 This is a schematic diagram of the mating structure of the outer shell and ribs of the temperature-sensitive control fan of this utility model;

[0020] Figure 4 This is a schematic diagram of the cooperative structure of the dustproof plate and the fan blade in this utility model;

[0021] Figure 5 yes Figure 3 Enlarged view of a portion of point A in the middle.

[0022] Legend:

[0023] 1. Rib shell; 11. First heating pipe; 12. Water inlet; 13. Connecting pipe; 14. Second heating pipe; 15. Water return outlet; 2. Air outlet pipe; 21. Pipe air outlet; 22. Temperature-sensitive fan housing; 23. Motor; 24. Movable shaft; 25. Fan blade; 26. Filter plate; 3. Natural air inlet; 31. Natural air outlet; 4. Reflector plate; 5. Exhaust port; 51. Exhaust valve; 6. Dustproof plate. Detailed Implementation

[0024] 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 skilled in the art without creative effort are within the protection scope of the present utility model.

[0025] Specific implementation examples are given below.

[0026] like Figures 1 to 3As shown, a novel radiator with indoor temperature regulation according to an embodiment of this utility model includes a rib shell 1; a first heating pipe 11 is installed in the middle of the inner wall of the rib shell 1; a water inlet 12 is provided at the water inlet end of the first heating pipe 11; a second heating pipe 14 is installed in the middle of the inner wall of the rib shell 1; a water return outlet 15 is provided at the water outlet end of the second heating pipe 14; a connecting pipe 13 connects the first heating pipe 11 and the second heating pipe 14; the connecting pipe 13 is installed inside the rib shell 1; a temperature regulating component is provided in the middle of the inner wall of the rib shell 1, which can regulate the temperature by sensing changes in indoor temperature; a ventilation component is provided in the middle of the side wall of the rib shell 1, which can naturally exhaust the airflow inside the rib shell 1; a heat-reflecting component is provided in the middle of the side wall of the rib shell 1, which can radiate heat into the room; an exhaust component is provided in the middle of the side wall of the rib shell 1, which can promptly exhaust the gas accumulated inside the rib shell 1; installation Personnel install the fin 1 in a designated indoor location. Then, hot water heated by the heating system is injected into the first heating pipe 11 through the inlet 12. Because the first heating pipe 11, inlet 12, connecting pipe 13, second heating pipe 14, and return outlet 15 are connected, the hot water flows within the inlet 12, connecting pipe 13, and second heating pipe 14, and then returns to the heating system through the return outlet 15. This cycle heats the first heating pipe 11, connecting pipe 13, and second heating pipe 14, raising the surface temperature of the fin 1 and thus heating the indoor air, increasing the overall room temperature. During the heating process, the temperature control component automatically monitors changes in indoor temperature. When the temperature is too low, it increases the flow of hot air to accelerate the rise in room temperature. The ventilation and exhaust components maintain the internal temperature flow of the fin 1, while the heat-reflecting components on the sidewall of the fin 1 promptly release the gas accumulated inside the fin 1, improving heat exchange efficiency.

[0027] like Figures 1 to 5As shown, the temperature control component includes multiple air outlet ducts 2; the multiple air outlet ducts 2 are arranged in a linear array inside the rib shell 1; the air outlet ducts 2 are embedded in the inner walls of the first heating pipe 11 and the second heating pipe 14; the air outlet end of the air outlet duct 2 has an air outlet 21; a temperature-sensitive controlled fan housing 22 is installed at the air inlet end of the air outlet duct 2; a motor 23 is assembled in the middle of the inner wall of the temperature-sensitive controlled fan housing 22; a movable shaft 24 is fixedly connected to the output end of the motor 23; multiple fan blades 25 are fixed in the middle of the side wall of the movable shaft 24; a filter plate 26 is installed between the temperature-sensitive controlled fan housing 22 and the rib shell 1; when the indoor temperature is lower than the human comfort temperature range, the temperature sensor built into the temperature-sensitive controlled fan housing 22 will transmit an electrical signal to the motor 23, at which time the motor 23 starts, the motor 23 will drive the movable shaft 24 to rotate, and the rotation of the movable shaft 24 will drive the multiple fan blades 25 to rotate. When the fan blade 25 rotates, a pressure difference is generated around it. Under the action of the pressure difference, cold air enters the air outlet duct 2. The cold air undergoes heat exchange through convection of hot air and hot water inside the rib shell 1, and its temperature gradually increases before being discharged through the air outlet 21. This process, through the setting of the air outlet duct 2, the air outlet 21, the temperature-sensitive fan housing 22, the motor 23, the movable shaft 24, the fan blade 25, and the filter plate 26, can monitor the surface temperature of the radiator or the surrounding air in real time, and automatically start and stop according to the set threshold to maintain the indoor temperature. At the same time, this setting actively draws cold air into the radiator, forcing it to exchange heat with the high-temperature heat medium, forming a rapid cycle of "inhalation-heating-expulsion", accelerating heat exchange and quickly raising the temperature. In addition, natural convection in the room can easily lead to lower temperatures in the area below or far from the radiator, while the fan can cover a wider range by directional blowing of hot air, reducing the problem of uneven temperature.

[0028] like Figures 1 to 3 As shown, the ventilation assembly includes multiple natural air inlets 3; the multiple natural air inlets 3 are symmetrically opened on both sides of the rib shell 1; multiple natural air outlets 31 are opened on the top of the rib shell 1; the diameter of the natural air outlets 31 is smaller than that of the natural air inlets 3 and the duct outlets 21; by setting the diameter of the natural air outlets 31 to be smaller than that of the natural air inlets 3 and the duct outlets 21, this step can maintain a sufficiently high gas temperature inside the rib shell 1 and a certain flow rate while retaining the basic function of the radiator, thereby improving the convective heat transfer efficiency of the hot air to the air outlet duct 2.

[0029] like Figure 1 , Figure 2 , Figure 3 and Figure 5As shown, the heat-reflecting assembly includes a reflector plate 4; the reflector plate 4 is fixed to the side wall of the rib shell 1; the reflector plate 4 is installed between the rib shell 1 and the wall; the installer places the reflector plate 4 on the wall near the rib shell 1, at which point the reflector plate 4 is placed between the rib shell 1 and the wall. This step, by placing the reflector plate 4 made of aluminum foil material between the radiator and the wall, can not only insulate the heat, but also radiate the heat emitted by the radiator into the room, thereby improving the working efficiency of the heating and ventilation system.

[0030] like Figures 1 to 3 As shown, the exhaust assembly includes an exhaust port 5; the exhaust port 5 is located on the side wall of the rib shell 1; the exhaust port 5 is threadedly connected to an exhaust valve 51; the exhaust valve 51 is located on the outside of the rib shell 1; when too much gas accumulates inside the rib shell 1, the user opens the exhaust valve 51, at which time the gas inside the rib shell 1 will pass through the exhaust port 5 and the exhaust valve 51 and be discharged outward. This step, by setting the exhaust port 5 and the exhaust valve 51, can release the gas accumulated inside the radiator in time, further improve the heat exchange efficiency, and at the same time reduce heat loss, allowing more heat to be transferred into the room.

[0031] like Figure 4 As shown, a dustproof plate 6 is installed in the middle of the side wall of the temperature-controlled fan housing 22; the dustproof plate 6 covers the outside of the motor 23; this step, by setting the dustproof plate 6, can block dust particles with a diameter larger than its pores, reduce the dust covering the surface of the motor 23, which hinders its heat dissipation, causes the temperature to rise, accelerates the aging of the insulation material, protects the core components of the fan, and extends the service life of the equipment.

[0032] like Figures 1 to 3 As shown, the rib shell 1 is designed with a honeycomb three-dimensional structure. This step replaces the traditional ribs in the radiator with a honeycomb three-dimensional shell, whose surface concave-convex design can increase the contact area with air and improve the efficiency of heat radiation and convection.

[0033] Working principle: The installer places the fin 1 in the designated indoor location. Hot water, heated by the heating system, is then injected into the first heating pipe 11 through the inlet 12. Because the first heating pipe 11, inlet 12, connecting pipe 13, second heating pipe 14, and return outlet 15 are connected, the hot water flows within the inlet 12, connecting pipe 13, and second heating pipe 14, then returns to the heating system through the return outlet 15. This cycle heats the first heating pipe 11, connecting pipe 13, and second heating pipe 14, raising the surface temperature of the fin 1 and thus heating the indoor air, increasing the overall room temperature. During the heating process, the temperature control component automatically monitors indoor temperature changes. When the temperature is too low, it increases the flow of hot air to accelerate the rise in room temperature. The ventilation and exhaust components maintain the internal temperature flow of the fin 1, while the heat-reflecting components on the side wall of the fin 1 release heat in a timely manner. The gas accumulated inside the finned housing 1 is expelled, improving heat exchange efficiency. When the indoor temperature is lower than the human comfort temperature range, the temperature sensor built into the temperature-controlled fan housing 22 transmits an electrical signal to the motor 23. At this time, the motor 23 starts and drives the movable shaft 24 to rotate. When the movable shaft 24 rotates, it drives multiple fan blades 25 to rotate. When the fan blades 25 rotate, a pressure difference is generated around them. Under the action of the pressure difference, cold air enters the air outlet duct 2. The cold air undergoes heat exchange through the convection of hot air and hot water inside the finned housing 1, and the temperature gradually rises before being discharged through the air outlet 21. The installer places a reflector 4 on the wall near the finned housing 1. At this time, the reflector 4 is placed between the finned housing 1 and the wall. When too much gas accumulates inside the finned housing 1, the user opens the exhaust valve 51. At this time, the gas inside the finned housing 1 will be discharged outward through the exhaust port 5 and the exhaust valve 51.

[0034] The foregoing has shown and described 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 to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.

Claims

1. A new type of radiator with indoor temperature regulation, comprising a ribbed shell (1); characterized in that: A first heating pipe (11) is installed in the middle of the inner wall of the rib shell (1); the water inlet (12) of the first heating pipe (11) is provided with a water inlet; a second heating pipe (14) is installed in the middle of the inner wall of the rib shell (1); a return water inlet (15) is provided at the water outlet of the second heating pipe (14); a connecting pipe (13) connects the first heating pipe (11) and the second heating pipe (14); the connecting pipe (13) is installed inside the rib shell (1); a temperature regulating component is provided in the middle of the inner wall of the rib shell (1), which can regulate the temperature by sensing changes in the indoor temperature; a ventilation component is provided in the middle of the side wall of the rib shell (1), which can naturally exhaust the airflow inside the rib shell (1); a heat-reflecting component is provided in the middle of the side wall of the rib shell (1), which can radiate heat into the room; an exhaust component is provided in the middle of the side wall of the rib shell (1), which can promptly exhaust the gas accumulated inside the rib shell (1); The temperature control component includes multiple air outlet pipes (2); the multiple air outlet pipes (2) are arranged in a linear array inside the rib shell (1); the air outlet pipes (2) are embedded in the inner walls of the first heating pipe (11) and the second heating pipe (14); the air outlet end of the air outlet pipe (2) is provided with a pipe outlet (21); the air inlet end of the air outlet pipe (2) is equipped with a temperature-sensitive fan housing (22); a motor (23) is assembled in the middle of the inner side wall of the temperature-sensitive fan housing (22); a movable shaft (24) is fixed to the output end of the motor (23); multiple fan blades (25) are fixed in the middle of the side wall of the movable shaft (24); a filter plate (26) is installed between the temperature-sensitive fan housing (22) and the rib shell (1). The heat-reflecting assembly includes a reflector plate (4); the reflector plate (4) is fixed to the side wall of the rib shell (1); the reflector plate (4) is installed between the rib shell (1) and the wall.

2. A novel radiator with indoor temperature adjustment type according to claim 1, characterized in that: The ventilation assembly includes multiple natural air inlets (3); the multiple natural air inlets (3) are symmetrically opened on both sides of the rib shell (1); the top of the rib shell (1) is provided with multiple natural air outlets (31); the diameter of the natural air outlets (31) is smaller than that of the natural air inlets (3) and the duct outlets (21).

3. A novel radiator with indoor temperature adjustment type according to claim 1, characterized in that: The exhaust assembly includes an exhaust port (5); the exhaust port (5) is located on the side wall of the rib shell (1); the exhaust port (5) is threadedly connected to an exhaust valve (51); the exhaust valve (51) is located outside the rib shell (1).

4. A novel radiator with indoor temperature adjustment type according to claim 1, characterized in that: A dustproof plate (6) is installed in the middle of the side wall of the temperature-controlled fan housing (22); the dustproof plate (6) covers the outside of the motor (23).

5. A novel radiator with indoor temperature adjustment type according to claim 4, characterized in that: The rib shell (1) is configured with a honeycomb three-dimensional structure.