Sealing structure for radiation refrigeration material installation

The design of the sealing and protection components enables double sealing and convenient glue injection for the radiant cooling plate, solving the problems of insufficient sealing performance and cumbersome operation of the basic sealing structure, and improving the stability and sealing of the installation.

CN223536693UActive Publication Date: 2025-11-11ZHEJIANG SECOND CONSTR GRP CO LTD
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Patent Information

Application Number
CN202422943555.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-29
Publication Date
2025-11-11
Estimated Expiration
2034-11-29

AI Technical Summary

Technical Problem

The basic sealing structure does not have a double sealing protection function, and the overall sealing performance is generally poor. External dust, impurities and moisture can easily seep in. At the same time, the glue injection sealing operation is cumbersome and requires manual control of uniformity.

Method used

The system employs a sealing and protection component, including a positioning base plate, a movable plate, a sealing strip, and a locking block. Through primary and secondary sealing protection, combined with injection holes and transfer holes, it achieves uniform injection and bonding of sealant, thereby improving sealing performance and stability.

Benefits of technology

This design achieves double sealing protection for the radiant cooling plate, enhancing sealing performance, preventing dust and moisture infiltration, simplifying the adhesive application process, and improving the stability and uniformity of installation.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223536693U_ABST
Patent Text Reader

Abstract

The utility model discloses a radiation refrigeration material installation sealing structure which comprises a sealing protection assembly, the sealing protection assembly comprises a positioning base plate, a liquid injection hole is formed in the top of the positioning base plate, transmission holes are formed in the left side and the right side of the positioning base plate respectively, positioning rods are fixedly installed on the left side and the right side of the positioning base plate respectively, and the sealing protection assembly is arranged on the positioning base plate. The surface of the positioning rod is movably sleeved with a movable plate, a first sealing strip is fixedly installed on one side of the movable plate, second sealing strips are fixedly embedded in the left side and the right side of the positioning base plate correspondingly, and second clamping blocks are movably installed at the four corners of the surface of the positioning base plate correspondingly. The sealing structure has the advantages of dual sealing and convenient glue injection, and solves the problems that a basic sealing structure does not have a dual-sealing protection function, the overall sealing performance is general, external dust, impurities and water vapor are easy to permeate, the glue injection uniformity needs to be manually controlled during glue injection sealing operation, and the operation is relatively tedious.
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Description

Technical Field

[0001] This utility model relates to the field of energy and environmental protection technology, specifically a sealing structure for installing radiative cooling materials. Background Technology

[0002] Radiative cooling materials are a technology that reduces the temperature of objects through thermal radiation. They do not require external energy input, thus possessing low-carbon and environmentally friendly characteristics. In practical applications, to install radiative cooling materials on the exterior walls or roofs of various buildings and for temperature control of electronic equipment, the materials are typically pre-coated onto panels in the factory. Multiple panels are then assembled. To prevent condensation and ensure the system's internal environment is isolated from the outside world, preventing external moisture from entering and thus protecting the system's normal operation and extending its lifespan, a sealing structure is used to position and install the panels.

[0003] The basic sealing structure does not have the function of double sealing protection, and the overall sealing performance is generally poor. External dust, impurities and moisture can easily seep in. At the same time, the glue injection sealing operation requires manual control of the glue injection uniformity, which is relatively cumbersome and has certain limitations. Utility Model Content

[0004] The purpose of this utility model is to provide a sealing structure for the installation of radiative cooling materials, which has the advantages of double sealing and convenient glue injection. It solves the problems that the basic sealing structure does not have the function of double sealing protection, the overall sealing performance is generally poor, external dust, impurities and moisture can easily penetrate in, and the glue injection sealing operation requires manual control of the glue injection uniformity, which is relatively cumbersome.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a sealing structure for installing radiative cooling materials, comprising:

[0006] A sealing and protection assembly includes a positioning base plate, a liquid injection hole at the top of the positioning base plate, transmission holes on both the left and right sides of the positioning base plate, positioning rods fixedly installed on both the left and right sides of the positioning base plate, a movable plate movably sleeved on the surface of the positioning rods, a first sealing strip fixedly installed on one side of the movable plate, a second sealing strip fixedly embedded on both the left and right sides of the positioning base plate, second locking blocks movably installed at the four corners of the surface of the positioning base plate, and a first locking block movably installed at the center of the top and bottom of the positioning base plate.

[0007] Two radiant cooling plates are installed between two movable plates, one above the other.

[0008] As a preferred sealing structure for installing radiative cooling materials according to this utility model, the positioning substrate is hollow, and the injection hole and transmission hole are both connected to the inner cavity of the positioning substrate.

[0009] As a preferred sealing structure for installing radiative cooling materials according to this utility model, a flow guide block is fixedly connected to the bottom of the inner cavity of the positioning substrate, and the number of transmission holes is several and evenly distributed on the positioning substrate.

[0010] As a preferred sealing structure for installing radiative cooling materials according to this utility model, sealing plates are fixedly installed on both the front and rear sides of the positioning base plate, and the number of positioning rods and movable plates is four.

[0011] As a preferred sealing structure for installing radiative cooling materials according to this utility model, the side of the first sealing strip away from the movable plate is in close contact with the surface of the radiative cooling plate, and the side of the second sealing strip away from the positioning substrate is in close contact with the surface of the radiative cooling plate.

[0012] As a preferred sealing structure for installing radiative cooling materials according to this utility model, a second storage groove is provided on the side of the positioning substrate, and the second storage groove is adapted to the second locking block.

[0013] As a preferred sealing structure for installing radiative cooling materials according to this utility model, the top and bottom of the positioning substrate are provided with first storage grooves, and the first storage grooves are adapted to the first locking block.

[0014] Compared with the prior art, the beneficial effects of this utility model are as follows:

[0015] This invention, by setting a sealing protection component, can attach the radiative cooling plate to the positioning substrate. The second sealing strip completes the first sealing protection. Then, by rotating the movable plate, the first sealing strip is tightly attached to the radiative cooling plate to complete the second sealing protection. After that, the sealant is injected through the injection hole and overflows through the transmission hole to bond the positioning substrate and the radiative cooling plate well. While ensuring the sealing performance of the radiative cooling plate installation, it further improves the installation stability of the radiative cooling plate. Attached Figure Description

[0016] Figure 1 This is a three-dimensional structural schematic diagram of the present utility model;

[0017] Figure 2 This is a three-dimensional schematic diagram of the sealing and protection component of this utility model;

[0018] Figure 3 This utility model Figure 2 Enlarged diagram of A in the middle;

[0019] Figure 4This is a three-dimensional cross-sectional view of the positioning substrate of this utility model.

[0020] In the figure: 1. Sealing and protection component; 101. Positioning base plate; 102. First storage groove; 103. Liquid injection hole; 104. Movable plate; 105. First sealing strip; 106. Second sealing strip; 107. Second locking block; 108. Second storage groove; 109. Sealing plate; 110. Transmission hole; 111. Drainage block; 112. First locking block; 113. Positioning rod; 2. Radiant cooling plate. Detailed Implementation

[0021] Please see Figures 1-4 A sealing structure for installing a radiative cooling material includes a sealing protection component 1. The sealing protection component 1 includes a positioning base plate 101. The top of the positioning base plate 101 has a liquid injection hole 103. The left and right sides of the positioning base plate 101 have transmission holes 110. The left and right sides of the positioning base plate 101 are fixedly installed with positioning rods 113. The surface of the positioning rods 113 is movably fitted with a movable plate 104. A first sealing strip 105 is fixedly installed on one side of the movable plate 104. The left and right sides of the positioning base plate 101 are fixedly embedded with second sealing strips 106. The four corners of the surface of the positioning base plate 101 are movably installed with second locking blocks 107. The center of the top and bottom of the positioning base plate 101 is movably installed with first locking blocks 112.

[0022] Furthermore, the positioning substrate 101 is hollow, and both the injection hole 103 and the transmission hole 110 are connected to the inner cavity of the positioning substrate 101.

[0023] Furthermore, a flow guide block 111 is fixedly connected to the bottom of the inner cavity of the positioning substrate 101, and the number of transmission holes 110 is several and evenly distributed on the positioning substrate 101.

[0024] Furthermore, sealing plates 109 are fixedly installed on both the front and rear sides of the positioning base plate 101, and there are four positioning rods 113 and four movable plates 104.

[0025] Furthermore, a second storage groove 108 is provided on the side of the positioning substrate 101, and the second storage groove 108 is adapted to the second card block 107.

[0026] Furthermore, the top and bottom of the positioning substrate 101 are provided with first storage slots 102, which are adapted to the first card block 112.

[0027] Furthermore, it also includes a radiant cooling plate 2, of which there are two, and they are installed between the upper and lower movable plates 104.

[0028] Furthermore, the side of the first sealing strip 105 away from the movable plate 104 is in close contact with the surface of the radiative cooling plate 2, and the side of the second sealing strip 106 away from the positioning substrate 101 is in close contact with the surface of the radiative cooling plate 2. The second locking block 107 is placed into the second storage groove 108, and the first locking block 112 is placed into the first storage groove 102. First, the radiative cooling plate 2 is moved to contact the surface of the positioning substrate 101, and the second sealing strip 106 is compressed, providing a primary sealing protection. The radiative cooling plate 2 is positioned between the upper and lower movable plates 104. Then, the movable plate 104 is driven to rotate around the positioning rod 113 until the first sealing strip 105 is compressed and contacts the radiative cooling plate 2. Then, the first locking block 112 is unscrewed from the first storage groove 102 to contact the surface of the movable plate 104, and the second locking block 107 is unscrewed to contact the surface of the movable plate 104, ensuring the stability of the position of the movable plate 104. When the first sealing strip 105 is in close contact with the radiant cooling plate 2, it can achieve the function of secondary sealing protection. In this state, the radiant cooling plate 2 and the sealing protection component 1 can be laid and installed. Then, with the help of the glue applicator, the sealant is injected into the positioning substrate 101 through the injection holes 103 at different positions. With the assistance of the drainage block 111, the glue can be drained so that the glue overflows evenly through the transmission hole 110, so that the glue can make good and even contact with the positioning substrate 101 and the radiant cooling plate 2, and complete the bonding protection. At the same time, the glue fills the positioning substrate 101. When the glue solidifies, it can help improve the overall strength of the positioning substrate 101, which is more in line with the actual use requirements.

[0029] Specifically, by setting the first storage slot 102 and the second storage slot 108, the storage space requirements for the first card block 112 and the second card block 107 can be met respectively. Thus, in the stored state, the movable plate 104 can be flexibly driven to rotate. By setting the injection hole 103, the sealant can be diverted and injected into the positioning substrate 101, improving the uniformity of the sealant injection. By setting the movable plate 104 and the positioning rod 113, the movable plate 104 can be flexibly driven to rotate, so that the first sealing strip 105 is tightly fitted with the radiant cooling plate 2. By setting the first sealing strip 105 and the second sealing strip 106, the overall sealing performance can be guaranteed when in close contact with the radiant cooling plate 2. The second locking block 107 and the first locking block 112 can contact the inclined movable plate 104 in the rotating state, thereby preventing the movable plate 104 from arbitrarily resetting and rotating. By setting the sealing plate 109, the front and rear ends of the positioning substrate 101 can be covered in the installation state to prevent the sealant from overflowing. In the disassembly state, it is convenient for the staff to clean the inside of the positioning substrate 101. By setting the transmission hole 110, the injected adhesive can be guided and discharged, thereby ensuring the uniformity of the adhesive bonding between the adhesive and the positioning substrate 101 and the radiant cooling plate 2. By setting the drainage block 111, the adhesive injected through the injection hole 103 can be guided and transmitted.

[0030] The above are merely preferred embodiments of the present utility model and are not intended to limit the present utility model. Any modifications, equivalent substitutions, and improvements 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. A sealing structure for installing radiative cooling materials, characterized in that, include: A sealing protection component (1) includes a positioning base plate (101). The top of the positioning base plate (101) is provided with an injection hole (103). The left and right sides of the positioning base plate (101) are provided with transmission holes (110). Positioning rods (113) are fixedly installed on the left and right sides of the positioning base plate (101). A movable plate (104) is movably sleeved on the surface of the positioning rods (113). A first sealing strip (105) is fixedly installed on one side of the movable plate (104). A second sealing strip (106) is fixedly embedded on the left and right sides of the positioning base plate (101). A second locking block (107) is movably installed at the four corners of the surface of the positioning base plate (101). A first locking block (112) is movably installed at the center of the top and bottom of the positioning base plate (101). The number of radiation cooling plates (2) is two, and they are installed between the upper and lower movable plates (104).

2. The sealing structure for installing radiative cooling materials according to claim 1, characterized in that: The positioning substrate (101) is hollow, and the injection hole (103) and the transmission hole (110) are both connected to the inner cavity of the positioning substrate (101).

3. The sealing structure for installing radiative cooling materials according to claim 1, characterized in that: A flow guide block (111) is fixedly connected to the bottom of the inner cavity of the positioning substrate (101), and the number of transmission holes (110) is several and evenly distributed on the positioning substrate (101).

4. The sealing structure for installing radiative cooling materials according to claim 1, characterized in that: The positioning base plate (101) is fixedly installed with sealing plates (109) on both the front and rear sides, and there are four positioning rods (113) and four movable plates (104).

5. A sealing structure for installing radiative cooling materials according to claim 1, characterized in that: The side of the first sealing strip (105) away from the movable plate (104) is in close contact with the surface of the radiative cooling plate (2), and the side of the second sealing strip (106) away from the positioning substrate (101) is in close contact with the surface of the radiative cooling plate (2).

6. A sealing structure for installing radiative cooling materials according to claim 1, characterized in that: The positioning base plate (101) has a second storage groove (108) on its side, and the second storage groove (108) is adapted to the second card block (107).

7. A sealing structure for installing radiative cooling materials according to claim 1, characterized in that: The positioning base plate (101) has a first storage groove (102) at both the top and bottom, and the first storage groove (102) is adapted to the first card block (112).