Installation structure of capillary tube network heat radiation system

By combining a base plate, T-shaped slider, leveling components, and fastening components, the problem of uneven heat dissipation and uneven installation of capillary network thermal radiation systems within the ceiling is solved, achieving uniform heat radiation and a flat ceiling, thus improving the functionality and aesthetics of the installation structure.

CN115751421BActive Publication Date: 2026-04-24SUZHOU JINSHISHENG ARCHITECTURAL DECORATION ENG CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
SUZHOU JINSHISHENG ARCHITECTURAL DECORATION ENG CO LTD
Filing Date
2022-12-01
Publication Date
2026-04-24

AI Technical Summary

Technical Problem

When existing capillary network thermal radiation systems are installed inside ceilings, heat is not distributed evenly, and the installation structure does not have a leveling function, which affects the ceiling design.

Method used

It adopts a combination structure of base plate, T-shaped slider, leveling component, pressing component and fastening component. By adjusting the threaded wire and slider, it can achieve uniform fixation of capillary network and heat reflection, level the ceiling surface, ensure uniform heat dissipation, and prevent the hanging wire from tilting by reflecting heat through tin foil.

Benefits of technology

It achieves uniform heat radiation from the capillary network, avoids heat accumulation, ensures a flat ceiling surface, and maintains the aesthetics and functionality of the ceiling design.

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Abstract

The application discloses a mounting structure of a capillary network heat radiation system and relates to the field of mounting structures, which comprises a bottom plate, and T-shaped sliding blocks one are fixedly connected to the left and right sides of the upper surface of the bottom plate. The cooperation between the lengthened threaded wire, the adjusting plate and the side plate on the leveling component, the T-shaped sliding block three, the connecting rod, the sliding sleeve and the moving plate on the moving component can make the screw holes on the moving plate be adjusted to the positions corresponding to the original hanging points, so that the inclination of the hanging wire is avoided, the original hanging points are replaced, the hanging wire is fixed in the screw holes on the moving plate, the main bones are installed on the hanging wire, the main bones are leveled with other points, the design of the suspended ceiling is not affected, and the mounting structure without the leveling function is solved, which causes the inclination of the hanging wire when the mounting structure is used on the uneven top surface, and the design of the suspended ceiling is affected.
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Description

Technical Field

[0001] This invention relates to an installation structure, and more particularly to an installation structure for a capillary network thermal radiation system. Background Technology

[0002] A capillary network thermal radiation system is an invisible heating regulation system that can generally be installed in the ground, walls, or ceiling. It forms a thermal radiation surface by controlling one or more surfaces of the building envelope at a certain temperature. Heating and cooling are achieved by relying on the radiant heat exchange between the radiant surface and the human body, furniture, and other building envelope surfaces. This invention is aimed at an installation structure for ceilings and walls.

[0003] The current installation structure still has some defects and shortcomings in use. The specific areas that need improvement are as follows:

[0004] Existing installation structures for capillary networks on the ceiling surface often involve directly gathering the capillary networks on both sides to form a large gap for ceiling suspension. This is not conducive to the dissipation of heat radiation from the ceiling surface, causing some areas of heat to be concentrated while others have less heat, thus affecting the overall heat radiation effect of the capillary network.

[0005] The existing installation structure does not have a leveling function, which causes the suspension wires to tilt when the ceiling surface is uneven, thus affecting the design of the ceiling. Summary of the Invention

[0006] The purpose of this invention is to provide an installation structure for a capillary network thermal radiation system, addressing the problems mentioned in the background art. Existing installation structures, when installing capillary networks on the ceiling surface, often involve directly converging the capillary network on both sides to form a large gap for ceiling suspension wire installation. This hinders the dissipation of heat radiation from the ceiling, causing some areas to concentrate heat while others have less heat, thus affecting the overall heat radiation effect of the capillary network. Furthermore, existing installation structures lack leveling capabilities, leading to tilting of the suspension wires on uneven ceiling surfaces, which in turn affects the design of the ceiling structure.

[0007] To achieve the above objectives, the present invention provides the following technical solution: an installation structure for a capillary network thermal radiation system, comprising a base plate, wherein T-shaped sliders are fixedly connected to the left and right sides of the upper surface of the base plate, two leveling components are respectively connected to the two T-shaped sliders, and a moving component is connected between the two leveling components, the front and rear sides of the base plate are respectively connected to two mutually symmetrical pressing components, four circular holes are provided on the base plate, three fixing plates are fixedly connected to the base plate, multiple buckles are fixedly connected to each of the three fixing plates, and fastening components are connected to the two opposite sides between the three fixing plates.

[0008] As a preferred embodiment of the present invention, the leveling component includes a sliding plate, on which a T-shaped groove is provided, the T-shaped groove being slidably connected to a T-shaped slider, the sliding plate being fixedly connected to a connecting plate, and the connecting plate being threadedly connected to two extended threaded wires through two spiral holes, the upper sides of the two extended threaded wires being rotatably connected to the adjusting plate through bearings, and the top surfaces of the two extended threaded wires being provided with hexagonal holes.

[0009] As a preferred embodiment of the present invention, the bottom surface of the adjusting plate is provided with a rectangular hole, which is perpendicular to the connecting plate. The upper ends of the left and right sides of the adjusting plate are fixedly connected with side plates. T-shaped sliding grooves are provided on the opposite sides of the two side plates. One side of the T-shaped sliding groove is slidably connected to a T-shaped slider, and the T-shaped slider is fixedly connected to a T-shaped card plate.

[0010] As a preferred embodiment of the present invention, the moving component includes four T-shaped sliders, which are grouped in pairs and each pair is slidably connected to a T-shaped groove on the other side of the same groove. A connecting rod is fixedly connected between each pair of the four T-shaped sliders, and two sliding sleeves are slidably connected to each of the two connecting rods. The four sliding sleeves are grouped in pairs and each pair is fixedly connected to both ends of the side of the moving plate. A spiral hole is provided on the moving plate.

[0011] As a preferred embodiment of the present invention, the pressing component includes five support rods, all of which are fixedly connected to the side of the same base plate. A fixing block is fixedly connected to the upper surface of each of the five support rods. Insertion pins are fixedly connected to the sides of each of the five fixing blocks. The five insertion pins are respectively fitted into circular holes on the five connecting rods. The five connecting rods are fixedly connected to the side of the same clamping plate. The bottom surface of the clamping plate has multiple semi-circular holes, each semi-circular hole corresponding linearly to a multiple buckle.

[0012] As a preferred embodiment of the present invention, the fastening component includes four snap-fit ​​sleeves, the bottom surfaces of the four snap-fit ​​sleeves are all fixedly connected to the base plate, the four snap-fit ​​sleeves are fixedly connected in pairs to the opposite sides of the two fixing plates, the four snap-fit ​​sleeves are fixedly connected in pairs to the opposite sides of each pair of sleeves, and the four fixing plates are fixedly connected in pairs to the opposite sides of each pair of fixing plates.

[0013] As a preferred embodiment of the present invention, each of the four snap-fit ​​sleeves is connected to a snap-fit ​​plate through an open rectangular hole. The four snap-fit ​​plates are fixedly connected to the four corners of the bottom surface of the insulation board, and tin foil is adhered to the top surface of each of the two insulation boards.

[0014] As a preferred embodiment of the present invention, each of the four fixed posts is fitted with a spring. The four springs are paired up, and the opposite sides of each pair are fixedly connected to two support plates. The opposite sides of each pair are fixedly connected to two L-shaped locking blocks. The four L-shaped locking blocks are fitted with the four fixed posts through open round holes. The opposite sides of each pair are fitted with insertion holes opened on the opposite sides of the two locking sleeves.

[0015] Compared with the prior art, the beneficial effects of the present invention are:

[0016] This invention, through the coordinated use of a base plate, a T-shaped slider, a fixing plate, a buckle, and a pressing component, allows the capillary network laid on the ceiling to be pre-fixed to the ceiling at the suspension wire fixing point. This allows the capillary network near the suspension point to be snapped onto the buckle, and the capillary tubes on both sides to be pressed down, preventing the capillary network from warping due to the thickness of the installation structure, thus affecting the fixation of capillary tubes in other areas. Secondly, the snap-fit ​​component on the fixing plate allows the insulation plate with tin foil material to be snapped onto the top of the capillary tubes. This allows the heat dissipated by the capillary tubes to be reflected downwards by the tin foil, ensuring that the heat radiation in the suspension point area remains completely dispersed. This facilitates the dissipation of heat in the ceiling suspension point area, making the heat dissipation relatively even and preventing heat accumulation, thus ensuring the overall heat radiation effect of the capillary network.

[0017] 2. This invention utilizes the extended threaded wire, adjusting plate, side plate, T-shaped slider, connecting rod, sliding sleeve, and moving plate on the leveling component to achieve a level surface when the installation structure replaces the original suspension point. The adjusting component leveles the uneven ceiling surface, and the moving component adjusts the spiral hole on the moving plate to the position corresponding to the original suspension point, preventing the suspension wire from tilting and effectively replacing the original suspension point. The suspension wire can then be fixed in the spiral hole on the moving plate, and the main frame can be installed on it. The main frame is then leveled with other points, thus not affecting the ceiling design. Attached Figure Description

[0018] Figure 1 This is a front view structural diagram of the present invention;

[0019] Figure 2 This is a bottom view of the leveling component of the present invention;

[0020] Figure 3This is a top view of the leveling component of the present invention;

[0021] Figure 4 This is a schematic diagram of the moving component structure of the present invention;

[0022] Figure 5 This is a schematic diagram of the pressing component structure of the present invention;

[0023] Figure 6 This is a schematic diagram of the fastening component structure of the present invention.

[0024] In the diagram: 1. Base plate, 2. T-shaped slider I, 3. Leveling component, 31. Sliding plate, 32. T-shaped slide groove I, 33. Connecting plate, 34. Extended thread, 35. Adjusting plate, 36. Rectangular hole, 37. Side plate, 38. T-shaped slide groove II, 39. T-shaped slider II, 310. T-shaped clamping plate, 4. Moving component, 41. T-shaped slider III, 42. Connecting rod, 43. Sliding sleeve, 44. Moving plate, 5. Pressing component, 51. Support rod, 52. Fixing block, 53. Insertion post, 54. Connecting rod, 55. Clamping plate, 6. Fixing plate, 7. Buckle, 8. Snap-fit ​​component, 81. Snap-fit ​​sleeve, 82. Snap-fit ​​plate, 83. Insulation board, 84. Fixing post, 85. Spring, 86. L-shaped clamping block. Detailed Implementation

[0025] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0026] Please see Figure 1-6 This invention provides a technical solution for the installation structure of a capillary network thermal radiation system: it includes a base plate 1, with T-shaped sliders 2 fixedly connected to the left and right sides of the upper surface of the base plate 1, two leveling components 3 connected to the two T-shaped sliders 2 respectively, and a moving component 4 connected between the two leveling components 3, and two symmetrical pressing components 5 connected to the front and rear sides of the base plate 1 respectively, four circular holes opened on the base plate 1, three fixing plates 6 fixedly connected to the base plate 1, multiple buckles 7 fixedly connected to each of the three fixing plates 6, and fastening components 8 connected to the two opposite sides between the three fixing plates 6.

[0027] The leveling component 3 includes a sliding plate 31 with a T-shaped groove 32 slidably connected to a T-shaped slider 2. The sliding plate 31 is fixedly connected to a connecting plate 33. The connecting plate 33 is threadedly connected to two extended threaded wires 34 through two spiral holes. The upper sides of the two extended threaded wires 34 are rotatably connected to an adjusting plate 35 through bearings. The top surfaces of the two extended threaded wires 34 are provided with hexagonal holes. Through the hexagonal holes on the top surfaces of the two extended threaded wires 34, the adjusting plate 35 can be driven to achieve horizontal alignment when the extended threaded wires 34 are adjusted by hexagonal bolts.

[0028] The bottom surface of the adjusting plate 35 has a rectangular hole 36, which is perpendicular to the connecting plate 33. The upper ends of the left and right sides of the adjusting plate 35 are fixedly connected to side plates 37. T-shaped slide grooves 38 are provided on the opposite sides of the two side plates 37. One side of the T-shaped slide groove 38 is slidably connected to the T-shaped slider 39. By slidably connecting the T-shaped slide groove 38 to the T-shaped slider 39, the moving part 4 can be moved back and forth for positioning. The T-shaped slider 39 is fixedly connected to the T-shaped card plate 310.

[0029] The moving part 4 includes four T-shaped sliders 3 41. The four T-shaped sliders 3 41 are arranged in pairs, and each pair is slidably connected to the same T-shaped groove 2 38 on the other side. The four T-shaped sliders 3 41 are arranged in pairs, and each pair is fixedly connected to a connecting rod 42. Two sliding sleeves 43 are slidably connected to each of the two connecting rods 42. The four sliding sleeves 43 are arranged in pairs, and each pair is fixedly connected to the two ends of the side of the moving plate 44. The moving plate 44 has a spiral hole. By opening a spiral hole in the moving plate 44, the hanging wire can be threadedly connected to the spiral hole for fixation, thus facilitating the installation of the hanging wire.

[0030] The pressing component 5 includes five support rods 51, all of which are fixedly connected to the side of the same base plate 1. Each of the five support rods 51 has a fixed block 52 fixedly connected to its upper surface. Each of the five fixed blocks 52 has a fixed insertion post 53 fixedly connected to its side. The five insertion posts 53 are respectively fitted into the round holes on the five connecting rods 54. By fitting the five insertion posts 53 into the round holes on the five connecting rods 54, the capillary network on the buckle 7 can be clamped and fixed, and then the capillary networks on both sides can be pressed. This allows the clamping plate 55 to easily perform the function of insertion and fixing. The five connecting rods 54 are all fixedly connected to the side of the same clamping plate 55. The bottom surface of the clamping plate 55 has multiple semi-circular holes, and these semi-circular holes correspond linearly to multiple buckles 7.

[0031] The fastening component 8 includes four snap-fit ​​sleeves 81. The bottom surfaces of the four snap-fit ​​sleeves 81 are fixedly connected to the base plate 1. The four snap-fit ​​sleeves 81 are fixedly connected in pairs to the opposite sides of the two fixing plates 6. The four snap-fit ​​sleeves 81 are fixedly connected in pairs to the opposite sides of each pair of opposite plates. The four fixing posts 84 are fixedly connected in pairs to the opposite sides of each pair of opposite posts 84. By fixing the four fixing posts 84 in pairs to the opposite sides of each pair of opposite posts 84, the support plate can provide support force for the compressed spring, thereby facilitating the spring to push the L-shaped snap-fit ​​block 86 to snap and fix the snap-fit ​​plate 82.

[0032] Each of the four snap-fit ​​sleeves 81 has a rectangular opening that allows it to be fitted onto one of the four snap-fit ​​plates 82. By fitting the four snap-fit ​​sleeves 81 with the four snap-fit ​​plates 82 through the rectangular openings, the insulation plate 83 connected to the four snap-fit ​​plates 82 can be easily snapped and fixed onto the snap-fit ​​sleeves 81. The insulation plate 83 also shields the bolts fixed in the four bolt holes, preventing heat radiation from aggravating the damage of rust and oxidation on the bolts. The four snap-fit ​​plates 82 are fixedly connected to the four corners of the bottom surface of the insulation plate 83. The top surfaces of the two insulation plates 83 are covered with tin foil. By covering the top surfaces of the two insulation plates 83 with tin foil, when the capillary network on the insulation plate 83 radiates heat, the heat is reflected by the tin foil and can be concentrated in the room.

[0033] Springs 85 are fitted onto each of the four fixed posts 84. The four springs 85 are paired up, with the opposite sides of each pair fixedly connected to the two support plates. The opposite sides of each pair of springs 85 are fixedly connected to two L-shaped locking blocks 86. The four L-shaped locking blocks 86 are fitted onto the four fixed posts 84 through the round holes. The opposite sides of each pair of L-shaped locking blocks 86 are fitted onto the insertion holes on the opposite sides of the two locking sleeves 81. By fitting the opposite sides of each pair of L-shaped locking blocks 86 onto the insertion holes on the opposite sides of the two locking sleeves 81, the L-shaped locking blocks 86 can be pressed and squeezed by the locking plate 82, thereby squeezing the L-shaped locking blocks 86 and inserting the locking plate 82 into the locking sleeve 81 for locking and fixing.

[0034] The operation steps of this invention are as follows:

[0035] When using the top surface, first, four bolt holes corresponding to the round holes on the base plate 1 can be made on the top surface. Then, the base plate 1 can be fixed with expansion bolts. Then, the four snap-fit ​​plates 82 on the insulation plate 83 of the snap-fit ​​component 8 are inserted into the four snap-fit ​​sleeves 81 respectively. As the snap-fit ​​plates 82 are inserted, they trigger the L-shaped snap-fit ​​blocks 86 to move to the other side, allowing the snap-fit ​​plates to be smoothly inserted into the snap-fit ​​sleeves 81. As the L-shaped snap-fit ​​blocks 86 move to the other side, they push the spring 85 on the fixing post 84 to compress and generate elastic force. Then, under the action of the spring 85, the L-shaped snap-fit ​​blocks 86 always press against the side of the snap-fit ​​plates 82 to restrict movement. Then, the four snap-fit ​​plates 82 on the other insulation plate 83 are also snapped and fixed to the other four snap-fit ​​sleeves 81 respectively. Then, the capillary network is snapped in sequence. The clips are fixed on the buckle 7. Then, the five connecting rods 54 connected to the clips 55 on the two pressing parts 5 are respectively inserted into the five plug-in posts 53, so that the two clips 55 press the two sides of the capillary network. Then, the T-shaped slides 32 on the two leveling parts 3 are respectively connected to the T-shaped sliders 2. Then, the extended thread 34 is adjusted by the hex bolts so that the two adjusting plates 35 are on the same horizontal plane. Then, the four T-shaped sliders 41 on the moving part 4 are respectively connected to the two T-shaped slides 38 on the other side. Then, the spiral hole is aligned with the original suspension point by moving the moving plate 44. Then, the suspension thread is fixed in the spiral hole on the moving plate 44. Then, the main frame can be installed for subsequent ceiling operations.

[0036] When installation on a wall is required, the mounting structure can be installed at the support points of the wall panel or decorative panel on the wall to accommodate the support points. Then, four bolt holes corresponding to the round holes on the base plate 1 can be made on the wall surface, and the base plate 1 can be fixed with expansion bolts. Then, the four snap-fit ​​plates 82 on the insulation plate 83 of the snap-fit ​​component 8 are inserted into the four snap-fit ​​sleeves 81 respectively. As the snap-fit ​​plates 82 are inserted, they trigger the L-shaped snap-fit ​​blocks 86 to move to the other side, allowing the snap-fit ​​plates to be smoothly inserted into the snap-fit ​​sleeves 81. As the L-shaped snap-fit ​​blocks 86 move to the other side, they push the spring 85 on the fixing column 84 to compress and generate elastic force. Then, under the action of the spring 85, the L-shaped snap-fit ​​blocks 86 always press against the side of the snap-fit ​​plates 82 to restrict movement. Then, the four snap-fit ​​plates 82 on the other insulation plate 83 are also snapped and fixed to the other four snap-fit ​​sleeves 81 respectively. Then, the capillary network is snapped in sequence. The components are fixed to the buckle 7. Then, the five connecting rods 54 connected to the clamp plates 55 on the two pressing components 5 are respectively inserted into the five insertion posts 53, so that the two clamp plates 55 press the two sides of the capillary network. Then, the two leveling components 3 are respectively connected to the T-shaped sliders 2 through the T-shaped slide grooves 32. Then, the extended thread 34 is adjusted by the hex bolts so that the two adjusting plates 35 are on the same vertical plane. Then, the four T-shaped sliders 41 on the moving component 4 are respectively connected to the two T-shaped slide grooves 38 on the other side. Then, the spiral holes are aligned with the support points by moving the moving plate 44. Then, the T-shaped clamp plate 310 is connected to the T-shaped slide groove 38 through the T-shaped slider 39. Then, the bottom or top surface of the wall panel or the decorative panel can be supported and fixed on the T-shaped clamp plate. In this way, the capillary network will not be affected and can be used normally.

[0037] In the description of this invention, it should be understood that the indicated orientation or positional relationship is based on the orientation or positional relationship shown in the accompanying drawings, and is only for the convenience of describing this invention and simplifying the description, and is not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this invention.

[0038] In this invention, unless otherwise explicitly specified and limited, for example, it can be a fixed connection, a detachable connection, or an integral part; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium; it can be a connection within two elements or an interaction between two elements. Unless otherwise explicitly limited, those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.

[0039] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. An installation structure for a capillary network thermal radiation system, comprising a base plate (1), characterized in that: The upper surface of the base plate (1) is fixedly connected to the left and right sides of the T-shaped sliders (2). The two T-shaped sliders (2) are respectively connected to two leveling components (3). The two leveling components (3) are connected to the moving component (4). The front and rear sides of the base plate (1) are respectively connected to two mutually symmetrical pressing components (5). The pressing component (5) is used to press the two sides of the capillary network. The base plate (1) has four round holes. The base plate (1) is fixedly connected to three fixing plates (6). The three fixing plates (6) are fixedly connected to multiple buckles (7). The two opposite sides between the three fixing plates (6) are connected to fastening components (8). The leveling component (3) includes a sliding plate (31), on which a T-shaped groove (32) is provided. The T-shaped groove (32) is slidably connected to a T-shaped slider (2). The sliding plate (31) is fixedly connected to a connecting plate (33). The connecting plate (33) is threadedly connected to two extended threaded wires (34) through two spiral holes. The upper sides of the two extended threaded wires (34) are rotatably connected to the adjusting plate (35) through bearings. The top surfaces of the two extended threaded wires (34) are provided with hexagonal holes. The bottom surface of the adjustment plate (35) is provided with a rectangular hole (36), which is perpendicular to the connecting plate (33). The upper ends of the left and right sides of the adjustment plate (35) are fixedly connected with side plates (37). T-shaped sliding grooves (38) are provided on the opposite sides of the two side plates (37). One side of the T-shaped sliding groove (38) is slidably connected to a T-shaped slider (39). The T-shaped slider (39) is fixedly connected to a T-shaped card plate (310). The moving component (4) includes four T-shaped sliders (41). The four T-shaped sliders (41) are grouped in pairs, and each pair is slidably connected to the same T-shaped groove (38) on the other side. The four T-shaped sliders (41) are grouped in pairs, and each pair is fixedly connected to a connecting rod (42). Two sliding sleeves (43) are slidably connected to each of the two connecting rods (42). The four sliding sleeves (43) are grouped in pairs, and each pair is fixedly connected to the two ends of the side of the moving plate (44). The moving plate (44) has a spiral hole.

2. The installation structure of a capillary network thermal radiation system according to claim 1, characterized in that: The pressing component (5) includes five support rods (51), all of which are fixedly connected to the side of the same base plate (1). Each of the five support rods (51) has a fixed block (52) fixedly connected to its upper surface. Each of the five fixed blocks (52) has a fixed plug (53) fixedly connected to its side. Each of the five plugs (53) is connected to a round hole opened on each of the five connecting rods (54). Each of the five connecting rods (54) is fixedly connected to the side of the same card plate (55). The bottom surface of the card plate (55) has multiple semi-circular holes with openings, and each of the semi-circular holes corresponds linearly to a multiple buckle (7).

3. The installation structure of a capillary network thermal radiation system according to claim 1, characterized in that: The fastening component (8) includes four snap-fit ​​sleeves (81). The bottom surfaces of the four snap-fit ​​sleeves (81) are fixedly connected to the base plate (1). The four snap-fit ​​sleeves (81) are paired up and fixedly connected to the opposite sides of the two fixing plates (6). The four snap-fit ​​sleeves (81) are paired up and fixedly connected to the opposite sides of the two pairs of each pair. The four fixing posts (84) are paired up and fixedly connected to the opposite sides of the two pairs of each pair.

4. The installation structure of a capillary network thermal radiation system according to claim 3, characterized in that: Each of the four snap-fit ​​sleeves (81) is connected to the four snap-fit ​​plates (82) through the rectangular holes. The four snap-fit ​​plates (82) are fixedly connected to the four corners of the bottom surface of the insulation board (83). Tin foil is adhered to the top surface of the two insulation boards (83).

5. The installation structure of a capillary network thermal radiation system according to claim 3, characterized in that: Springs (85) are fitted onto each of the four fixed posts (84). The four springs (85) are paired up, and the opposite sides of each pair are fixedly connected to the two support plates. The opposite sides of each pair of the four springs (85) are fixedly connected to the two L-shaped clips (86). The four L-shaped clips (86) are fitted onto the four fixed posts (84) through the round holes. The opposite sides of each pair of the four L-shaped clips (86) are fitted onto the insertion holes on the opposite sides of the two clip sleeves (81).

Citation Information

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