Capillary network structure for a radiant air conditioner

Through innovative design of components such as the supporting body and adjusting blocks, flexible fixing and stable installation of capillary networks are achieved, solving the problems of time-consuming and labor-intensive installation and environmental impact in existing technologies, and improving the stability and efficiency of the system.

CN224302298UActive Publication Date: 2026-05-29TIANJIN RUIDE TONGCHUANG ENERGY SAVING TECHCO

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
TIANJIN RUIDE TONGCHUANG ENERGY SAVING TECHCO
Filing Date
2025-07-21
Publication Date
2026-05-29

AI Technical Summary

Technical Problem

Existing capillary network fixing technologies are time-consuming and labor-intensive to install and maintain, and are prone to loosening or aging in environments with temperature changes, affecting system stability and efficiency.

Method used

It adopts components such as a support body, plug-in block, support arm, and adjustment block. The capillary network can be flexibly fixed through plug-in and adjustment structure. The support arm can be adjusted in position, the adjustment block can be adjusted in height, and the snap-fit ​​is matched with the pipeline to form a stable fixed structure.

Benefits of technology

It improves the installation efficiency and stability of capillary networks, reduces installation workload and maintenance difficulty, avoids loosening and aging problems caused by environmental changes, and ensures stable system operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a capillary network structure for radiation air conditioner, including main pipeline, and the capillary pipeline is equipped on main pipeline, its characterized in that still includes: support main part, support main part is vacuum, and the plug -in block is located in support main part, and the main pipeline is inserted and locked, and the support arm is located in the outside of support main part, and the adjusting block is located in the support arm, and it is used for the capillary pipeline to hold up fixed. Capillary network structure for radiation air conditioner, support main part is vacuum, and the plug -in block is inserted and locked to the main pipeline, and the lock catch plate and the clamping block are combined and clamped, and the stable main pipeline fixed structure is formed, compared with bolt, and the ribbon connection reduces the installation step, and improves the installation efficiency, and the first adjusting groove is seted up in the outside of support main part, and the support arm is slid in the groove through connecting shaft and sliding roller, can adjust support arm position according to capillary network actual arrangement demand, realizes the random setting of fixed device, avoids the problem of traditional mode space restriction.
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Description

Technical Field

[0001] This utility model relates to the field of capillary network technology, specifically a capillary network structure for radiant air conditioning. Background Technology

[0002] Capillary networks play a crucial role in numerous fields, such as independent heat and humidity control air conditioning systems. Due to their large heat exchange area, thin walls with good thermal conductivity, uniform heat exchange, and low hydraulic loss, they are highly efficient heat exchangers. Furthermore, the materials used in their manufacture are mostly thermoplastic plastics such as PP-RT, which are not only environmentally friendly but also possess advantages such as high temperature resistance, high pressure resistance, and corrosion resistance, making capillary networks extremely versatile in their applications.

[0003] However, existing capillary network fixing technologies have significant drawbacks in actual installation. Currently, capillary networks lack fixing devices that can be arbitrarily set according to their own arrangement, and bolts or cable ties are commonly used for connection. This connection method requires a significant amount of time and effort during operation. Taking the assembly of multiple individual capillaries into a complete capillary network as an example, when using bolt connections, each bolt hole must be aligned and tightened individually, a tedious process that requires ample operating space; while cable ties are relatively simple, they still require binding each capillary individually, resulting in a huge workload when there are many capillaries. In addition, these connection methods are greatly affected by environmental factors. In environments with frequent temperature changes, bolt connections are prone to loosening due to thermal expansion and contraction, while cable ties may age and break, thus affecting the capillary transport performance, reducing the overall working efficiency of the capillary network system, and even causing energy waste. Furthermore, when maintenance, adjustment, or rearrangement of the capillary network is required, removing these connecting components is also time-consuming and labor-intensive, increasing maintenance costs and difficulty. Utility Model Content

[0004] The purpose of this invention is to provide a capillary network structure for radiant air conditioning to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a capillary network structure for radiant air conditioning, comprising a main pipe, wherein capillary channels are provided on the main pipe, characterized in that it further comprises:

[0006] A supporting body, wherein the supporting body is in a vacuum state;

[0007] A plug-in block, which is located in the support body, is used to plug in and lock the main pipe;

[0008] A support arm is located on the outside of the support body;

[0009] An adjusting block is installed in the support arm and is used to lift and fix the capillary tube.

[0010] Preferably, the main pipe is further provided with a locking plate, which is inserted into the support body.

[0011] Preferably, the plug-in block is further provided with a snap-fit ​​block, which snaps into the locking plate;

[0012] The supporting body is also provided with a lifting plate, which, together with the snap-fit ​​block, fixes the main pipe.

[0013] Preferably, a first adjustment groove is provided on the outer side of the support body, and the first adjustment groove is used to connect the support arm.

[0014] Preferably, one end of the support arm is provided with a connecting shaft, and one end of the connecting shaft is connected to a sliding roller. The sliding roller slides in the first adjusting groove to adjust the position of the support arm.

[0015] Preferably, the support arm has a second adjustment groove, and the second adjustment groove has a placement compartment.

[0016] Preferably, the adjusting block is located in the placement compartment, and a movable rod is connected to the adjusting block, the movable rod being adjustable in height within the adjusting block.

[0017] Preferably, one end of the movable rod is connected to a mounting rod, and one end of the mounting rod is connected to a locking gripper.

[0018] Preferably, the inner dimensions of the snap-fit ​​gripper match the outer dimensions of the capillary tube.

[0019] Preferably, the number of support arms is the same as the number of capillary tubes, and each support arm is provided with at least one adjusting block.

[0020] Compared with the prior art, the beneficial effects of this utility model are as follows: The capillary network structure for radiant air conditioning has a vacuum-like supporting body. The plug-in block is plugged into and locked to the main pipe. Combined with the locking plate and the snap-fit ​​block, a stable main pipe fixing structure is formed. Compared with bolt and cable tie connections, it reduces installation steps and improves installation efficiency. A first adjustment groove is opened on the outside of the supporting body. The supporting arm slides in the groove through the connecting shaft and the sliding roller. The position of the supporting arm can be flexibly adjusted according to the actual layout requirements of the capillary network, realizing arbitrary setting of the fixing device and avoiding the problem of space limitation of traditional methods. The second adjustment groove and the placement chamber design on the supporting arm, together with the adjustment block, moving rod, placement rod and snap-fit ​​grab, can lift and fix the capillary tube. By adjusting the moving rod... The height is adaptable to capillary tubes of different diameters, enhancing the versatility of the device. The combination of components such as adjusting blocks and moving rods allows for on-demand adjustment of the capillary tube fixation. When maintenance, adjustment, or rearrangement of the capillary network is required, the fixation state can be quickly changed, reducing maintenance difficulty and time costs. The number of support arms is consistent with the number of capillary tubes, and each support arm is equipped with at least one adjusting block, allowing for independent and precise fixation of each capillary tube. Compared to the method of binding them one by one with cable ties, this significantly reduces the amount of installation work. The inner dimensions of the clamp match the outer dimensions of the capillary tube, and combined with the adjustable structure, it can maintain a stable fixation effect under the influence of environmental factors such as temperature changes, avoiding loosening or breakage, and ensuring the stable operation of the capillary network system. Attached Figure Description

[0021] Figure 1 This is a schematic diagram of the connection structure of this utility model;

[0022] Figure 2 This utility model Figure 1 Enlarged structural diagram at point A in the diagram;

[0023] Figure 3 This is a schematic diagram of the overall separable structure of this utility model;

[0024] Figure 4 This is a schematic diagram of the support arm separation structure of this utility model;

[0025] Figure 5 This utility model Figure 4 A magnified structural diagram at point B in the middle.

[0026] In the diagram: 1. Main pipe; 11. Capillary pipe; 12. Locking plate; 2. Support body; 21. Lifting plate; 22. First adjustment groove; 3. Insertion block; 31. Snap-fit ​​block; 4. Support arm; 41. Connecting shaft; 42. Sliding roller; 43. Second adjustment groove; 44. Placement chamber; 5. Adjustment block; 51. Moving rod; 52. Placement rod; 53. Snap-fit ​​grab. Detailed Implementation

[0027] 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 of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0028] Please see Figure 1-5 This utility model provides a technical solution: a capillary network structure for radiant air conditioning, including a main pipe 1, on which capillary pipes 11 are provided, the main pipe 1 and the capillary pipes 11 are interconnected, the capillary pipes 11 are used to expand the radiation range of the main pipe 1, and the main pipe 1 is also provided with a locking plate 12, which is inserted into the support body 2, and cooperates with the insertion of the insertion block 3 to lock the main pipe 1, ensuring that the main pipe 1 will not detach. It also includes:

[0029] The support body 2 is vacuum-shaped, allowing the locking plate 12 and the insertion block 3 to be inserted into it. The support body 2 also includes a lifting plate 21, which lifts the locking plate 12 and locks its bottom. The lifting plate 21, in conjunction with the insertion of the snap-fit ​​block 31, secures the main pipe 1. The snap-fit ​​block 31 locks the top of the locking plate 12, thus limiting its vertical movement. Combined with the friction between the lifting plate 21 and the snap-fit ​​block 31, this locks the locking plate 12 in the front-to-back direction. The size of the lifting plate 21 and the snap-fit ​​block 31 is matched with the size of the locking plate 12, thereby limiting the lateral movement direction of the locking plate 12 and effectively locking the main pipe 1. The top of the support body 2 is rounded. In order to fit the outer side of the main pipe 1 more closely and facilitate the limiting and support of the main pipe 1, a first adjustment groove 22 is provided on the outer side of the support body 2. The first adjustment groove 22 is used to connect the support arm 4 and to adjust the movement of the support arm 4 in the support body 2, and is also used to adapt to capillary networks with different installation spacing.

[0030] The plug-in block 3 is located in the support body 2. The size of the plug-in block 3 matches the size of the hollow space in the support body 2. It is plugged into and locked to the main pipe 1. The plug-in block 3 is also provided with a snap-fit ​​block 31. By plugging the snap-fit ​​block 31 into the support plate 21, the locking plate 12 is effectively limited in various directions such as up, down, front, back, left and right. The snap-fit ​​block 31 snaps into the locking plate 12.

[0031] A support arm 4 is located on the outside of the support body 2. One end of the support arm 4 is provided with a connecting shaft 41, which allows the sliding roller 42 to rotate. The sliding roller 42 is connected to one end of the connecting shaft 41. The rotation of the sliding roller 42 can reduce the friction between the connecting shaft 41 and the first adjustment groove 22. The sliding roller 42 slides in the first adjustment groove 22 to adjust the position of the support arm 4, thereby adapting to the position of the support arm 4 and the capillary tube 11. A second adjustment groove 43 is provided on the support arm 4. The size of the second adjustment groove 43 matches the size of the moving rod 51. The second adjustment groove 43 allows the moving rod 51 to extend out of the support arm 4. A placement chamber 44 is provided in the second adjustment groove 43 for placing the adjustment block 5. The adjustment block 5 can slide in the placement chamber 44. The number of support arms 4 is the same as the number of capillary tubes 11, and each support arm 4 is provided with at least one adjustment block 5. In this way, the support arm 4 can be adjusted according to the position of the connecting shaft 41, and the adjustment block 5 can support the capillary tube 11 at the required position.

[0032] Adjusting block 5, located in support arm 4, is used to lift and fix capillary tube 11. Adjusting block 5 is located in placement chamber 44 and can adjust its position within placement chamber 44. Moving rod 51 is connected to adjusting block 5. Moving rod 51 is threaded and can be rotated to adjust its position within adjusting block 5. Threaded hole is provided in adjusting block 5, allowing moving rod 51 to adjust its height within adjusting block 5. One end of moving rod 51 is connected to placement rod 52, which supports snap-fit ​​gripper 53. Snap-fit ​​gripper 53 snaps onto capillary tube 11 to support it. The inner dimensions of snap-fit ​​gripper 53 match the outer dimensions of capillary tube 11.

[0033] When used in a capillary network structure for radiant air conditioning, the locking plate 12 of the main pipe 1 is inserted into the support body 2, the plug block 3 is inserted into the support body 2 and plugged into the main pipe 1, the snap block 31 snaps into the locking plate 12, and the lifting plate 21 lifts the bottom of the locking plate 12. The snap block 31 and the lifting plate 21 use their own friction and their shape adapted to the size of the locking plate 12 to restrict the locking plate 12 from moving up and down, forward and backward, and laterally, thereby fixing the main pipe 1. The top of the support body 2 is designed with rounded corners to fit the outside of the main pipe 1 for limiting and supporting.

[0034] The support arm 4 slides in the first adjustment groove 22 of the support body 2 via the sliding roller 42 connected by the connecting shaft 41. The position of the support arm 4 on the outside of the support body 2 is adjusted according to the installation spacing of the capillary network and the position requirements of the capillary tube 11. The rotation of the sliding roller 42 reduces friction with the first adjustment groove 22, ensuring smooth adjustment.

[0035] The adjusting block 5 is placed inside the mounting chamber 44 of the support arm 4 and can slide to adjust its position within the mounting chamber 44. The moving rod 51 is threaded and mates with the threaded hole of the adjusting block 5. The height of the moving rod 51 within the adjusting block 5 is adjusted by rotating the moving rod 51. One end of the moving rod 51 is connected to the mounting rod 52, which is connected to the locking grab 53. The locking grab 53 is aligned with the capillary tube 11, and the position of the locking grab 53 is adjusted by the adjusting block 5 and the moving rod 51, so that the inner side of the locking grab 53 fits tightly against the outer side of the capillary tube 11, thereby lifting and fixing the capillary tube 11. Since the number of support arms 4 is the same as the number of capillary tubes 11, and each support arm 4 is equipped with an adjusting block 5, the position of each capillary tube 11 can be independently adapted and fixed, completing the installation and fixing of the entire capillary network structure and meeting the usage requirements of radiant air conditioning for the capillary network.

[0036] Although embodiments of the present 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 present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A capillary network structure for radiant air conditioning, comprising a main pipe (1), wherein capillary pipes (11) are provided on the main pipe (1), characterized in that, Also includes: Support body (2), the support body (2) is in a vacuum state; The plug-in block (3) is located in the support body (2) and is plugged into and locked to the main pipe (1); Support arm (4), which is located on the outside of the support body (2); An adjusting block (5) is installed in the support arm (4) and is used to lift and fix the capillary tube (11).

2. The capillary network structure for radiant air conditioning according to claim 1, characterized in that: The main pipe (1) is also provided with a locking plate (12), which is inserted into the supporting body (2).

3. A capillary network structure for radiant air conditioning according to claim 2, characterized in that: The plug-in block (3) is also provided with a snap-fit ​​block (31), which snaps into the latch plate (12); The supporting body (2) is also provided with a lifting plate (21), which is used in conjunction with the insertion of the snap-fit ​​block (31) to fix the main pipe (1).

4. A capillary network structure for radiant air conditioning according to claim 1 or 3, characterized in that: The outer side of the support body (2) is provided with a first adjustment groove (22), which is used to connect the support arm (4).

5. A capillary network structure for radiant air conditioning according to claim 4, characterized in that: One end of the support arm (4) is provided with a connecting shaft (41), and one end of the connecting shaft (41) is connected to a sliding roller (42). The sliding roller (42) slides in the first adjusting groove (22) to adjust the position of the support arm (4).

6. A capillary network structure for radiant air conditioning according to claim 1 or 5, characterized in that: The support arm (4) is provided with a second adjustment groove (43), and a placement compartment (44) is provided in the second adjustment groove (43).

7. A capillary network structure for radiant air conditioning according to claim 6, characterized in that: The adjusting block (5) is located in the placement compartment (44), and a moving rod (51) is connected to the adjusting block (5). The moving rod (51) can adjust the height in the adjusting block (5).

8. A capillary network structure for radiant air conditioning according to claim 7, characterized in that: One end of the movable rod (51) is connected to a mounting rod (52), and one end of the mounting rod (52) is connected to a snap-fit ​​gripper (53).

9. A capillary network structure for radiant air conditioning according to claim 8, characterized in that: The inner dimensions of the snap-fit ​​(53) match the outer dimensions of the capillary (11).

10. A capillary network structure for radiant air conditioning according to claim 1 or 5, characterized in that: The number of the support arms (4) is the same as the number of the capillary tubes (11), and each support arm (4) is provided with at least one adjusting block (5).