Condensation control radiation heat exchange plate
By using a condensation control membrane on a condensation control radiant heat exchange plate on a metal roof, the problem of water droplets dripping is solved, achieving equipment protection and improved energy efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-12
- Publication Date
- 2026-04-10
AI Technical Summary
Existing heat exchange plates are prone to producing water droplets when there are temperature differences, which can cause the water droplets to accumulate and drip, damaging the equipment.
A condensation-controlled radiant heat exchange plate is used. By attaching a condensation control membrane to the metal roof, condensate is captured and evaporated when environmental conditions return to below the dew point, thus preventing dripping.
It effectively prevents water droplets from falling, protects equipment, improves the accuracy of indoor temperature regulation, and reduces energy consumption and carbon emissions.
Smart Images

Figure CN224106765U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to heat exchange plate technical field, concretely is a kind of condensation control radiation heat exchange plate. BACKGROUND
[0002] A controllable temperature energy storage heat radiation device is installed in the ceiling of a building to form a low-temperature uniform panel, change the thermal radiation balance in the space, concentrate the heat stored in other structures to the device, achieve the effect of radiation cooling, and create a comfortable environment at the required temperature while reducing energy consumption by half.
[0003] The existing heat exchange plate has the problem that when the sun sets in the evening, the temperature in the house is higher than the outdoor temperature, and the moisture in the air in the house is liquefied into water droplets. The water droplets gathered on the roof will cause water droplets to drop, and the water droplets gathered will fall due to gravity, which can easily cause damage to the equipment below.
[0004] Based on this, a condensation control radiation heat exchange plate is provided to eliminate the drawbacks of existing devices. UTILITY MODEL CONTENTS
[0005] The utility model aims to provide a condensation control radiation heat exchange plate to solve the problem of water droplets easily produced by internal temperature difference in the background art, which can easily cause damage to the equipment.
[0006] To achieve the above-mentioned purpose, the utility model provides the following technical scheme:
[0007] A condensation control radiation heat exchange plate includes a heat exchange plate main body, which includes an aluminum plate protection shell, a heat preservation plate is provided at the bottom of the aluminum plate protection shell, a flat elliptical copper pipe is provided at the bottom of the heat preservation plate, a metal heat conduction sheet is provided outside the flat elliptical copper pipe and at the bottom of the heat preservation plate, a graphite assembly is provided at the bottom of the metal heat conduction sheet, a metal aluminum plate is provided at the bottom of the graphite assembly, a condensation control film is provided at the bottom of the metal aluminum plate, and an insulating fixed adhesive tape is provided outside the heat preservation plate.
[0008] On the basis of the above technical scheme, the utility model also provides the following optional technical scheme:
[0009] In an optional scheme, the graphite assembly includes a graphite heat sink, first and second non-woven fabric layers are respectively attached to the outer sides of the graphite heat sink, the first non-woven fabric layer is attached to the metal heat conduction sheet, and the second non-woven fabric layer is attached to the metal aluminum plate.
[0010] In an optional scheme, the material of the heat preservation plate is PEX heat preservation cotton.
[0011] In an alternative, the thickness of the graphite heat dissipation sheet is 0.5mm.
[0012] In an alternative, the thickness of the first non-woven fabric layer and the second non-woven fabric layer is 1mm.
[0013] In an alternative, the thickness of the insulating fixed adhesive strip is 1.5mm.
[0014] In an alternative, the thickness of the aluminum plate protective shell is 0.5mm, and the thickness of the metal aluminum plate is 1.5mm.
[0015] In an alternative, the size of the heat exchange plate main body is 600mm*1200mm.
[0016] Compared with the prior art, the utility model has the beneficial effects as follows:
[0017] The condensation control film is an effective method for solving the condensation problem of the non-thermal insulation metal roof, and it is a self-adhesive film pasted on the metal plate in the forming process, which is a more direct and more economical method for preventing the non-thermal insulation metal roof from condensation water drop. BRIEF DESCRIPTION OF DRAWINGS
[0018] Figure 1 It is the overall structure schematic view of the utility model.
[0019] Figure 2 It is the heat exchange plate main body structure schematic view of the utility model.
[0020] Figure 3 It is the graphite assembly structure schematic view of the utility model.
[0021] Legend: 1, heat exchange plate main body; 101, aluminum plate protective shell; 102, insulating fixed adhesive strip; 103, heat preservation plate; 104, flat elliptical copper pipe; 105, metal heat conduction sheet; 106, graphite assembly; 1061, first non-woven fabric layer; 1062, graphite heat dissipation sheet; 1063, second non-woven fabric layer; 107, metal aluminum plate; 108, condensation control film. DETAILED DESCRIPTION
[0022] In order to make the purpose, technical scheme and advantages of the utility model more clear and obvious, the following will be further described in detail by combining with the drawings and examples.
[0023] In one embodiment, as Figures 1-3As shown, a condensation control radiant heat exchange plate comprises a heat exchange plate body 1, the heat exchange plate body 1 comprises an aluminum plate protective shell 101, the bottom of the aluminum plate protective shell 101 is provided with a heat preservation plate 103, the bottom of the heat preservation plate 103 is provided with an oblate copper pipe 104, the outside of the oblate copper pipe 104 and the bottom of the heat preservation plate 103 are provided with a metal heat conduction sheet 105, the bottom of the metal heat conduction sheet 105 is provided with a graphite assembly 106, the bottom of the graphite assembly 106 is provided with a metal aluminum plate 107, the bottom of the metal aluminum plate 107 is provided with a condensation control film 108, and the outside of the heat preservation plate 103 is provided with an insulating fixed adhesive tape 102.
[0024] In this embodiment, the condensation control film 108 is an effective method to solve the condensation problem under the non-insulated metal roof, which is a self-adhesive film pasted on the metal plate in the forming process. It is a more direct and more economical method to prevent non-insulated metal roof condensation water droplets. The heat exchange plate body 1 captures the condensation water through the special design pocket in the condensation control film 108, and the condensation control film 108 keeps these water in the material until the environmental conditions are restored to below the dew point, and the retained condensation water can be simply evaporated back into the air.
[0025] In one embodiment, as shown in Figure 2 and Figure 3 The graphite assembly 106 comprises a graphite heat dissipation sheet 1062, the outside of the graphite heat dissipation sheet 1062 is respectively attached with a first non-woven fabric layer 1061 and a second non-woven fabric layer 1063, the first non-woven fabric layer 1061 is attached with the metal heat conduction sheet 105, and the second non-woven fabric layer 1063 is attached with the metal aluminum plate 107. The first non-woven fabric layer 1061 and the second non-woven fabric layer 1063 protect the graphite heat dissipation sheet 1062, can buffer external impact force, and ensure the integrity of the graphite heat dissipation sheet 1062.
[0026] In one embodiment, as shown in Figure 1 and Figure 2 The material of the heat preservation plate 103 is PEX heat preservation cotton, the thickness of the graphite heat dissipation sheet 1062 is 0.5 mm, the thickness of the first non-woven fabric layer 1061 and the second non-woven fabric layer 1063 is 1 mm, the thickness of the insulating fixed adhesive tape 102 is 1.5 mm, the thickness of the aluminum plate protective shell 101 is 0.5 mm, the thickness of the metal aluminum plate 107 is 1.5 mm, and the size of the heat exchange plate body 1 is 600 mm*1200 mm. The above is the size of each part, and each part is combined to form a radiant heat exchange plate.
[0027] The above embodiment discloses a condensation control radiation heat exchange plate, wherein the heat exchange plate body 1 is laid on the roof, the temperature in the room decreases after the sunset, the moisture in the air in the room liquefies into water droplets, and the water droplets gathered on the roof will cause water dripping. The condensation control film 108 effectively absorbs the water droplets to avoid the occurrence of water dripping. After the sunrise in the daytime, the heat is introduced into the room through the cooperation of the heat preservation plate 103, the flat-elliptical copper pipe 104, the metal heat conduction sheet 105 and the graphite heat dissipation sheet 106, the temperature in the room rises, the water droplets in the condensation control film 108 absorb heat and vaporize into water vapor to be discharged, and the function of preventing water dripping is achieved. The cold and hot radiation surfaces exchange heat with the surface of the human body, furniture and other objects to realize the regulation of the indoor temperature. In addition, the balance of the indoor radiation field can also be affected by adjusting the solar radiation entering the room. It can realize accurate control of the temperature, thereby improving the comfort of the indoor space and the energy use efficiency. Secondly, it can reduce the dependence on the traditional air conditioning system, thereby reducing energy consumption and carbon emissions.
[0028] The above is only a specific embodiment of the present application, but the protection scope of the present application is not limited thereto. Any person skilled in the art can easily think of changes or replacements within the technical range disclosed in the present application, which should be covered within the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the protection scope of the claims.
Claims
1. A condensation controlled radiation heat exchanging panel comprising a heat exchanging panel body (1), characterized in that, The heat exchange plate body (1) comprises an aluminum plate protection shell (101), the bottom of the aluminum plate protection shell (101) is provided with a heat preservation plate (103), the bottom of the heat preservation plate (103) is provided with an oblate copper pipe (104), the outside of the oblate copper pipe (104) and the bottom of the heat preservation plate (103) are provided with a metal heat conduction sheet (105), the bottom of the metal heat conduction sheet (105) is provided with a graphite assembly (106), the bottom of the graphite assembly (106) is provided with a metal aluminum plate (107), the bottom of the metal aluminum plate (107) is provided with a condensation control film (108), and the outside of the heat preservation plate (103) is provided with an insulating fixed adhesive tape (102).
2. A condensing control radiation panel as claimed in claim 1, wherein, The graphite assembly (106) comprises a graphite heat dissipation sheet (1062), the outside of the graphite heat dissipation sheet (1062) is respectively attached with a first non-woven fabric layer (1061) and a second non-woven fabric layer (1063), the first non-woven fabric layer (1061) is attached with the metal heat conduction sheet (105), and the second non-woven fabric layer (1063) is attached with the metal aluminum plate (107).
3. A condensing control radiation heat plate according to claim 1, wherein The material of the heat preservation plate (103) is PEX heat preservation cotton.
4. A condensing control radiation panel as claimed in claim 2, wherein, The thickness of the graphite heat dissipation sheet (1062) is 0.5 mm.
5. A condensing control radiation panel as claimed in claim 2, wherein, The thickness of the first non-woven fabric layer (1061) and the second non-woven fabric layer (1063) is 1 mm.
6. A condensing control radiation heat plate according to claim 1, wherein The thickness of the insulating fixed adhesive tape (102) is 1.5 mm.
7. A condensing control radiation heat plate according to claim 1, wherein The thickness of the aluminum plate protection shell (101) is 0.5 mm, and the thickness of the metal aluminum plate (107) is 1.5 mm.
8. A condensing control radiation heat plate according to claim 1, wherein The size of the heat exchange plate body (1) is 600 mm*1200 mm.