Air conditioning radiant panel connection structure

By designing a reinforced frame and a snap-fit ​​structure for fixing components on the air conditioner radiant panel, combined with a shock-absorbing device, the problems of inconvenient installation and disassembly and poor seismic performance of traditional connection methods are solved, achieving rapid installation and stable operation.

CN224680893UActive Publication Date: 2026-08-25SICHUAN INSITITUTE OF BUILDING RES
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Patent Information

Application Number
CN202521834651.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-27
Publication Date
2026-08-25
Estimated Expiration
2035-08-27

AI Technical Summary

Technical Problem

Traditional air conditioner radiant panel connection methods have problems such as inconvenient installation and disassembly, reliance on specific tools, poor seismic performance, and extended construction period.

Method used

The design incorporates a reinforced frame and fixed components, enabling quick installation and disassembly through the snap-fit ​​of the locking blocks and fixing sleeves. Combined with a shock absorption device, it absorbs and buffers vibration energy, thereby improving stability and lifespan.

Benefits of technology

This technology enables rapid installation and disassembly of air conditioning radiant panels, improving installation efficiency, enhancing structural stability and seismic performance, and reducing the impact of vibration on the radiant panels.

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Abstract

The utility model discloses a kind of air conditioner radiation plate connecting structures, comprising: radiation plate body, the reinforcing frame is fixedly connected in the radiation plate body side wall, the reinforcing assembly is arranged in the reinforcing frame, the fixed frame is fixedly connected in the radiation plate body one side, the fixed assembly is arranged in the fixed frame, the fixed sleeve is fixedly connected in the radiation plate body other side;Two clamping blocks of relative sliding, the clamping block side wall is fixedly connected with stopper, the stopper side wall is fixedly connected with a pair of fixed blocks, the fixed block side wall is set with the one end of first spring, the first spring is arranged between two clamping blocks, the window is opened in the two end surfaces of the fixed frame and the clamping block contact, for the fixed sleeve on the adjacent air conditioner radiation plate with the fixed frame of the clamping block is stretched out and realizes locking. The problems of traditional connection mode, such as inconvenient installation and disassembly, poor anti-seismic performance and low construction efficiency, are solved.
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Description

Technical Field

[0001] This utility model belongs to the field of air conditioner radiant panel installation technology, specifically relating to an air conditioner radiant panel connection structure. Background Technology

[0002] The statements in this section are merely background information related to this utility model and do not necessarily constitute prior art.

[0003] In modern buildings, radiant air conditioning panels offer advantages such as high comfort and energy efficiency. These panels directly regulate indoor temperature through heat radiation and typically require multiple panels to form a complete system to meet the heating or cooling needs of different areas. Therefore, the design of the connection structure between the panels directly affects the system's installation efficiency, operational stability, and ease of maintenance.

[0004] Currently, air conditioner radiant panels are primarily connected using bolts. Bolted connections require tools such as wrenches, and the precise alignment of the bolts and nuts during installation is crucial. However, limited installation space makes tool use inconvenient, leading to low installation efficiency. Furthermore, bolts can loosen due to long-term vibration, affecting system stability. While welding provides higher structural strength, the welded joints cannot be disassembled. Therefore, traditional connection methods suffer from inconvenient installation and disassembly, reliance on specific tools, and poor seismic performance, resulting in prolonged construction periods and low construction efficiency. Utility Model Content

[0005] To address the aforementioned problems, this utility model provides an air conditioning radiant panel connection structure that solves the issues of inconvenient installation and disassembly, reliance on specific tools for poor seismic performance, extended construction period, and low efficiency associated with traditional connection methods.

[0006] To achieve the above objectives, this utility model is implemented through the following technical solution: This utility model provides a connection structure for an air conditioner radiant panel, comprising: a radiant panel body, a reinforcing frame fixedly connected to the side wall of the radiant panel body, a reinforcing component disposed inside the reinforcing frame, a fixing frame fixedly connected to one side of the radiant panel body, a fixing component disposed inside the fixing frame, and a fixing sleeve fixedly connected to the other side of the radiant panel body. The fixing component includes two locking blocks that slide relative to each other along the fixing frame. A limiting block is fixedly connected to the side wall of each locking block. A pair of fixing blocks are fixedly connected to the side wall of each limiting block. One end of a first spring is sleeved on the side wall of each fixing block. The first spring is disposed between the two locking blocks. Windows are opened on the two end faces of the fixing frame that contact the locking blocks, for extending the locking blocks out of the fixing frame and locking them with the fixing sleeve on the adjacent air conditioner radiant panel.

[0007] As a further implementation, the reinforcement component includes a fixing plate, there are multiple fixing plates and the spacing between two adjacent fixing plates is the same, the two ends of the fixing plate are fixedly connected to the inside of the reinforcement frame, and the side wall of the fixing plate is provided with a mounting plate.

[0008] As a further implementation, a shock-absorbing device is provided between the fixing plate and the mounting plate, and the shock-absorbing device is fixedly connected to the opposite side walls of the fixing plate and the mounting plate respectively.

[0009] As a further implementation, the shock absorption device includes two shock absorption pads, two compression rods, and a sleeve. The sidewalls of the shock absorption pads are fixedly connected to the compression rods, the compression rods are slidably disposed inside the sleeve, and the two shock absorption pads are respectively disposed outside the two ends of the sleeve.

[0010] As a further implementation, a second spring is provided inside the sleeve, and the end of the second spring is fixedly connected between the extrusion rods.

[0011] As a further implementation, the number of the fixing plates and the mounting plates are the same, and they are arranged in a one-to-one correspondence. Multiple shock-absorbing devices are provided between each fixing plate and the mounting plate.

[0012] As a further implementation, the compression rod consists of a sliding disc and a push rod. The sliding disc is disposed inside the sleeve and has the same cross-section as the inner cavity of the sleeve. One end of the push rod is connected to one side of the sliding disc, and the other end is connected to the shock-absorbing pad. The other side of the sliding disc abuts against the second spring.

[0013] As a further implementation, the sleeve has through holes at both ends, and the push rod is slidably disposed in the through holes.

[0014] As a further implementation, the number of fixing frames and fixing sleeves is the same, and the positions of the fixing frames and fixing sleeves on both sides of the radiating plate body correspond one-to-one, so that the fixing components in the fixing frames are engaged in the fixing sleeves of the adjacent radiating plate bodies.

[0015] As a further implementation, the fixing sleeve is an open cavity structure, and two limiting grooves are provided inside the cavity structure, which are arranged opposite to each other; the structure of the limiting grooves is the same as that of the locking block structure.

[0016] Compared with the prior art, the advantages and positive effects of this utility model are: This utility model features a reinforcing frame fixedly connected to the side wall of the radiant panel body to prevent edge deformation or damage during use, thereby improving the overall stability and service life of the radiant panel body. Reinforcing components are installed inside the reinforcing frame to protect the radiant panel body from collision damage. Through the locking mechanism between two relatively sliding locking blocks and the fixing sleeve, the locking blocks utilize the elastic deformation of a first spring to provide a restoring force and elastic force, thus controlling the extension and retraction of the locking blocks. This enables rapid installation, disassembly, and fixing between adjacent radiant panel bodies, improving the efficiency of radiant panel installation and disassembly and solving the problems of inconvenient installation and disassembly of traditional radiant panels that require tools.

[0017] This invention absorbs primary vibration energy through a shock-absorbing pad, which, combined with the elastic deformation of the second spring through the sliding compression of the compression rod, forms a dual buffer mechanism of "soft shock-absorbing pad + rigid spring." This effectively disperses and consumes vibration energy, reducing vibration transmission efficiency. The design of the sliding disc matching the cross-section of the sleeve cavity ensures that the compression rod maintains linear movement during sliding, avoiding jamming caused by off-center loading. At the same time, the centrally positioned second spring can automatically reset, maintaining the stability of the device in a continuous vibration environment. The shock-absorbing pad directly absorbs high-frequency micro-amplitude vibrations, while the spring assembly alleviates low-frequency large-amplitude impacts. The synergistic effect of the two can cover a wide frequency vibration range, effectively preventing loosening, deformation, or breakage of the connection structure due to resonance or fatigue. Attached Figure Description

[0018] The accompanying drawings, which form part of this specification, are used to provide a further understanding of this utility model. The illustrative embodiments of this utility model and their descriptions are used to explain this utility model and do not constitute an improper limitation of this utility model.

[0019] Figure 1 This is a three-dimensional schematic diagram of the air conditioner radiant panel connection structure of this utility model; Figure 2 This is a schematic diagram of the internal structure of the fixing frame of the air conditioner radiant panel connection structure of this utility model. Figure 3 This is a three-dimensional structural diagram of the back of the air conditioner radiant panel connection structure of this utility model; Figure 4 This is a schematic diagram of the reinforced frame structure of the air conditioner radiant panel connection structure of this utility model; Figure 5 This is a schematic diagram of the internal structure of the sleeve in the air conditioner radiant panel connection structure of this utility model.

[0020] The components are: 1. Radiation plate body; 2. Reinforcing frame; 3. Fixing frame; 4. Fixing sleeve; 5. Clamping block; 6. Limiting block; 7. Fixing block; 8. First spring; 9. Fixing plate; 10. Mounting plate; 11. Shock-absorbing pad; 12. Sleeve; 13. Compression rod; 14. Second spring. Detailed Implementation

[0021] It should be noted that the following detailed description is illustrative and intended to provide further explanation of the present invention. Unless otherwise specified, all technical and scientific terms used in this invention have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains.

[0022] It should be noted that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the exemplary embodiments according to the present invention. As used herein, unless otherwise expressly indicated by the present invention, the singular form is also intended to include the plural form. Furthermore, it should be understood that when the terms "comprising" and / or "including" are used in this specification, they indicate the presence of features, steps, operations, devices, components, and / or combinations thereof. This embodiment discloses an air conditioner radiant panel connection structure, such as... Figures 1-3 As shown, it includes: a radiant panel body 1, which is composed of a metal plate, heat exchange pipes, insulation layer, etc. Radiant cooling or heating is achieved through the circulation of hot and cold water within the heat exchange pipes, thus regulating indoor temperature. A reinforcing frame 2 is fixedly connected to the side wall of the radiant panel body 1. The reinforcing frame 2 is used to enhance the edge structural strength of the radiant panel body 1, preventing edge deformation or damage during use, and improving the overall stability and service life of the radiant panel body 1. Reinforcing components are installed inside the reinforcing frame 2 to protect the radiant panel body 1 from collision damage. A fixing frame 3 is fixedly connected to one side of the radiant panel body 1, and fixing components are installed inside the fixing frame 3. A fixing sleeve 4 is fixedly connected to the other side of the radiant panel body 1. The number of fixing frames 3 and fixing sleeves 4 is the same, and the positions of the fixing frames 3 and fixing sleeves 4 on both sides of the radiant panel body 1 correspond one-to-one, so that the fixing components in the fixing frames 3 are engaged within the fixing sleeves 4 of the adjacent radiant panel body 1. The fixing sleeve 4 is an open hollow... The cavity structure has two limiting grooves arranged opposite to each other. The structure of the limiting grooves is the same as that of the locking block 5. The quick installation and disassembly of adjacent radiant panel bodies 1 can be achieved through the locking between the fixing component and the fixing sleeve 4, thus achieving the purpose of convenient installation and disassembly of the radiant panel bodies 1. The fixing component includes two locking blocks 5 that slide relative to each other along the fixing frame 3. The side wall of the locking block 5 is fixedly connected to the limiting block 6. The side wall of the limiting block 6 is fixedly connected to a pair of fixing blocks 7. One end of the first spring 8 is sleeved on the side wall of the fixing block 7. The first spring 8 is located between the two locking blocks 5. The two end faces of the fixing frame 3 that contact the locking blocks 5 have windows for extending the locking blocks 5 out of the fixing frame 3 and locking them with the fixing sleeve 4 on the adjacent air conditioning radiant panel. The limiting block 6, together with the fixing block 7 and the first spring 8, restricts the sliding range of the locking blocks 5 in the fixing frame 3 to prevent the locking blocks 5 from sliding out. At the same time, the first spring 8 provides a restoring force through elastic deformation to ensure the tightness and stability of the locking blocks 5 and the fixing sleeve 4.

[0023] like Figures 4-5 As shown, the reinforcement component includes a fixing plate 9. There are multiple fixing plates 9, and the spacing between two adjacent fixing plates 9 is the same. The two ends of the fixing plate 9 are fixedly connected to the inside of the reinforcement frame 2. The side wall of the fixing plate 9 is provided with a mounting plate 10. The mounting plate 10 provides support for the middle part of the radiant plate body 1, shares the force on the middle part of the radiant plate body 1, enhances the overall structural strength, and prevents the radiant plate body 1 from sagging and deforming in the middle due to its own weight or external force, thereby improving the load-bearing capacity and stability of the radiant plate body 1.

[0024] A shock-absorbing device is provided between the fixed plate 9 and the mounting plate 10. The shock-absorbing device is fixedly connected to the opposite side walls of the fixed plate 9 and the mounting plate 10, respectively. The shock-absorbing device includes two shock-absorbing pads 11, two compression rods 13, and a sleeve 12. The side walls of the shock-absorbing pads 11 are fixedly connected to the compression rods 13. The compression rods 13 are slidably disposed inside the sleeve 12. The two shock-absorbing pads 11 are respectively disposed outside the two ends of the sleeve 12. The compression rods 13 are composed of a sliding plate and a push rod. The sliding plate is disposed inside the sleeve 12 and has the same cross-section as the inner cavity of the sleeve 12. One end of the push rod is connected to one side of the sliding plate, and the other end is connected to the shock-absorbing pad 11. The sleeve 12 has through holes at both ends, and the top rod is slidably disposed in the through holes; the other side of the sliding plate abuts against the second spring 14; the sleeve 12 is provided with the second spring 14, and the end of the second spring 14 is fixedly connected between the compression rods. When the radiant plate body 1 is subjected to external vibration or vibrates during operation, the shock-absorbing pad 11 absorbs part of the vibration energy, and the compression rod 13 slides in the sleeve 12 and compresses the second spring 14. The second spring 14 further absorbs and buffers the vibration through elastic deformation, thereby effectively reducing the impact of vibration on the radiant plate body 1 and preventing the connection from becoming loose or the structure from being damaged due to vibration.

[0025] The number of fixed plates 9 and mounting plates 10 are the same and they are arranged in a one-to-one correspondence. Multiple shock-absorbing devices are provided between each fixed plate 9 and mounting plate 10, which can improve the shock absorption effect and the vibration stability between the fixed plate 9 and mounting plate 10.

[0026] Working principle: When installing the radiant panel body 1, align the end with the fixing frame 3 with the fixing sleeve 4 on the other radiant panel body 1. During the pushing process, the locking block 5 is pressed into the fixing frame 3 by the inner wall of the fixing sleeve 4, which drives the limiting block 6 and the fixing block 7 to compress the first spring 8. When the locking block 5 reaches the limiting groove position in the fixing sleeve 4, the first spring 8 restores its deformation, pushes the fixing block 7 and the limiting block 6, and makes the locking block 5 lock into the limiting groove, thus completing the quick fixation between the radiant panel bodies 1. When disassembling, the external force pulls the locking block 5 to overcome the elastic force of the first spring 8 and retract into the fixing frame 3, so that the radiant panel body 1 can be separated. When the radiant plate body 1 vibrates during operation or is affected by external vibration, the vibration is transmitted to the damping pad 11 between the fixed plate 9 and the mounting plate 10. The damping pad 11 first absorbs part of the vibration energy. At the same time, the vibration causes the compression rod 13 to slide in the sleeve 12, squeezing the second spring 14. The second spring 14 further buffers the vibration through elastic deformation. As the vibration weakens, the second spring 14 returns to its original position and pushes the compression rod 13, which, together with the damping pad 11, makes the radiant plate body 1 return to stability and continuously provides stable support for the middle part of the radiant plate body 1, reducing the impact of vibration on the radiant plate body 1.

[0027] Although the specific embodiments of the present utility model have been described above in conjunction with the accompanying drawings, this is not intended to limit the scope of protection of the present utility model. Those skilled in the art should understand that various modifications or variations that can be made by those skilled in the art without creative effort based on the technical solution of the present utility model are still within the scope of protection of the present utility model.

Claims

1. A connection structure for an air conditioning radiant panel, characterized in that, include: The radiant panel body has a reinforcing frame fixedly connected to its side wall, and a reinforcing component is provided inside the reinforcing frame. A fixing frame is fixedly connected to one side of the radiant panel body, and a fixing component is provided inside the fixing frame. A fixing sleeve is fixedly connected to the other side of the radiant panel body. The fixing component includes two locking blocks that slide relative to each other along the fixing frame. A limiting block is fixedly connected to the side wall of each locking block. A pair of fixing blocks are fixedly connected to the side wall of each limiting block. One end of a first spring is sleeved on the side wall of each fixing block. The first spring is disposed between the two locking blocks. Windows are opened on the two end faces of the fixing frame that contact the locking blocks, for extending the locking blocks out of the fixing frame and locking them with the fixing sleeve on the adjacent air conditioner radiant panel.

2. The air conditioning radiant panel connection structure as described in claim 1, characterized in that, The reinforcement component includes a fixing plate, there are multiple fixing plates and the spacing between two adjacent fixing plates is the same. The two ends of the fixing plate are fixedly connected to the inside of the reinforcement frame, and the side wall of the fixing plate is provided with a mounting plate.

3. The air conditioning radiant panel connection structure as described in claim 2, characterized in that, A shock-absorbing device is provided between the fixed plate and the mounting plate, and the shock-absorbing device is fixedly connected to the opposite side walls of the fixed plate and the mounting plate respectively.

4. The air conditioning radiant panel connection structure as described in claim 3, characterized in that, The shock absorption device includes two shock absorption pads, two compression rods and a sleeve. The sidewalls of the shock absorption pads are fixedly connected to the compression rods. The compression rods are slidably disposed inside the sleeve. The two shock absorption pads are respectively disposed on the outside of both ends of the sleeve.

5. The air conditioning radiant panel connection structure as described in claim 4, characterized in that, A second spring is provided inside the sleeve, and the end of the second spring is fixedly connected between the extrusion rods.

6. The air conditioning radiant panel connection structure as described in claim 4, characterized in that, The number of fixed plates and mounting plates are the same, and they are arranged in a one-to-one correspondence. Multiple shock-absorbing devices are provided between each fixed plate and mounting plate.

7. The air conditioning radiant panel connection structure as described in claim 5, characterized in that, The compression rod consists of a sliding disc and a push rod. The sliding disc is disposed inside the sleeve and has the same cross-section as the inner cavity of the sleeve. One end of the push rod is connected to one side of the sliding disc, and the other end is connected to the shock-absorbing pad. The other side of the sliding disc abuts against the second spring.

8. The air conditioning radiant panel connection structure as described in claim 7, characterized in that, The sleeve has through holes at both ends, and the push rod is slidably disposed in the through holes.

9. The air conditioning radiant panel connection structure as described in claim 1, characterized in that, The number of fixing frames and fixing sleeves is the same, and the positions of the fixing frames and fixing sleeves on both sides of the radiant plate body correspond one-to-one, so that the fixing components in the fixing frames are engaged in the fixing sleeves of the adjacent radiant plate bodies.

10. The air conditioning radiant panel connection structure as described in claim 1, characterized in that, The fixing sleeve is an open cavity structure, and two limiting grooves are provided inside the cavity structure. The two limiting grooves are arranged opposite to each other. The structure of the limiting grooves is the same as that of the locking block structure.