Radiation panel reducing multi-pass connecting assembly

CN224786663UActive Publication Date: 2026-09-22WUXI RUIKE HEATING & VENTILATION TECH CO LTD
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Patent Information

Application Number
CN202522522054.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-11-27
Publication Date
2026-09-22
Estimated Expiration
2035-11-27

AI Technical Summary

Benefits of technology

[0014]与现有技术相比,本实用新型的有益效果是:该异径多通连接组件不仅实现了异径多通连接组件便捷的控制流体的流动路线,提高了异径多通连接组件控制流体的流动路线的便利性,而且实现了异径多通连接组件便捷进行连接,减少了人工的劳动强度,提高了异径多通连接组件进行连接的便利性;

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Abstract

The utility model discloses a kind of radiation plate different-diameter multi-pass connection assemblies, including connecting plate and support column, the bottom end of the connecting plate is installed with support column, the outside of the support column is provided with connecting block, the bottom end of the connecting block is installed with shunt cover, the side of the shunt cover is installed with first connection disc, the side of the shunt cover away from first connection disc is installed with left connection disc, the side of the shunt cover away from left connection disc is installed with right connection disc, the outside of left connection disc, right connection disc is provided with T-shaped pipeline. The utility model not only realizes that different-diameter multi-pass connection assembly is convenient to control the flow route of fluid, improve the convenience of different-diameter multi-pass connection assembly control fluid's flow route, and realize that different-diameter multi-pass connection assembly is conveniently connected, reduce the labor intensity of artificial, improve the convenience of different-diameter multi-pass connection assembly to connect.
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Description

Technical Field

[0001] This utility model relates to the technical field of differential diameter multi-channel connection components, specifically a radiating plate differential diameter multi-channel connection component. Background Technology

[0002] A radiant panel is a plate-shaped HVAC device that is either a heater that emits infrared heat radiation or a refrigerator that absorbs infrared radiation. The process of heat transfer from a high-temperature object to a low-temperature object by emitting infrared rays is called thermal radiation. The absorption of infrared rays from a high-temperature object by a low-temperature object is called cold radiation. A radiant panel heats or cools its working elements to achieve the purpose of providing thermal radiation heating or cold radiation cooling to the surrounding environment.

[0003] Thermal radiation plates are also called infrared radiation plates, and cold radiation plates are also called negative radiation plates. The heating mediums mainly include hot water, steam, gas, fuel oil, electricity, etc., while the cooling mediums mainly include cold water, evaporating agents (Freon, liquid ammonia, etc.).

[0004] Existing reducing multi-port connectors generally do not facilitate the convenient control of fluid flow paths, thus affecting the ease of control and connection. This also increases the workload and convenience of connecting the components. Utility Model Content

[0005] The purpose of this utility model is to provide a radiant plate reducing multi-channel connection assembly to solve the problems mentioned in the background art, such as the inconvenience of controlling the flow path of fluids, the difficulty of connecting the reducing multi-channel connection assembly, the impact on the labor intensity of manual labor, and the inconvenience of connecting the reducing multi-channel connection assembly.

[0006] To achieve the above objectives, this utility model provides the following technical solution: a multi-channel connection assembly for a radiating plate, comprising a connecting plate and a support column. The support column is mounted at the bottom of the connecting plate. A connecting block is disposed on the outside of the support column. A flow divider is mounted at the bottom of the connecting block. A first connecting disc is mounted on one side of the flow divider. A left connecting disc is mounted on the side of the flow divider away from the first connecting disc. A right connecting disc is mounted on the side of the flow divider away from the left connecting disc. T-shaped pipes are disposed on the outside of both the left and right connecting discs. A right connecting pipe is mounted on one side of each T-shaped pipe. A left connecting pipe is mounted on the side of each T-shaped pipe away from the right connecting pipe. Multiple sets of equal-spaced channels are disposed on the surface of the support column. The support column has a support sleeve fitted on its surface. A pin is provided on the outside of the support sleeve, penetrating the support sleeve and extending to its exterior through a corresponding through hole. An arc-shaped ring is installed at the bottom end of the diverter. A rotating column is movably installed inside the diverter, penetrating the diverter and extending to its exterior. Multiple equally spaced grooves are provided at the bottom end of the arc-shaped ring. A support block is installed at the bottom end of the rotating column. A support frame is installed at the bottom end of the support block. A limit post is movably installed inside the support frame. The limit post penetrates the support frame, contacts the support block and the grooves, and a handle is installed at the bottom end of the limit post. A connecting ring is fixedly installed on the surface of the limit post inside the support frame. A spring is fitted on the surface of the limit post below the connecting ring.

[0007] Preferably, one end of the spring is connected to the connecting ring, and the other end of the spring is connected to the support frame.

[0008] Preferably, a baffle is installed on the surface of the rotating column inside the diversion shroud, and a sealing ring is installed on the side wall of the baffle.

[0009] Preferably, both the left and right connecting discs are provided with upper retaining rings on their surfaces, and each upper retaining ring is provided with a lower retaining ring on its outer side.

[0010] Preferably, a rotating shaft is movably mounted on the side wall of each lower retaining ring, and each lower retaining ring is movably connected to the upper retaining ring through the rotating shaft.

[0011] Preferably, a rotating shaft is movably mounted on the side wall of the upper retaining ring, and bolts are fitted onto the surface of the rotating shaft.

[0012] Preferably, each bolt has a washer on its exterior and a nut fitted onto its surface.

[0013] Preferably, all bolts are threadedly connected to nuts, and mechanical valves are installed on the surfaces of both the right and left connecting pipes.

[0014] Compared with the prior art, the beneficial effects of this utility model are: the reducing multi-port connection component not only realizes the convenient control of the fluid flow path and improves the convenience of controlling the fluid flow path, but also realizes the convenient connection of the reducing multi-port connection component, reduces the labor intensity of manual labor, and improves the convenience of connecting the reducing multi-port connection component.

[0015] (1) When using the radiant plate reducing multi-port connection assembly, connect the radiant plate to the two sets of right connecting pipes and left connecting pipes respectively. When it is necessary to adjust the height of the diversion hood, pull out the pin so that the pin is disengaged from the through hole and the support sleeve. The support sleeve slides on the surface of the support column. Move the support sleeve, connecting block, diversion hood, first connecting disc, left connecting disc, right connecting disc, T-shaped pipe, right connecting pipe, and left connecting pipe to the specified height. Insert the pin into the support sleeve and the corresponding through hole to fix the support sleeve. When it is necessary to clean the left connecting disc, manually close the corresponding mechanical valve and pull down the handle. Under the support of the support frame... The handle moves the limiting post, connecting ring, and spring downwards, causing the limiting post to disengage from the groove. Rotating the handle, support block, and rotating post causes the rotating post to rotate the baffle and sealing ring to one side of the left connecting disc, where the baffle blocks one side of the left connecting disc and the sealing ring provides a seal. When the desired angle is reached, the handle is released. Under the elastic support of the spring, the spring moves the connecting ring and limiting post upwards, causing the limiting post to contact the groove and limit the flow. This allows for convenient control of the fluid flow path in the reducing multi-port connection assembly, facilitating cleaning and improving the convenience of controlling the fluid flow path.

[0016] (2) When it is necessary to connect the T-shaped pipe to the left connecting disc and the right connecting disc respectively, the T-shaped pipe is brought into contact with the left connecting disc and the right connecting disc respectively. The upper retaining ring is clamped on the upper surface of the left connecting disc and the T-shaped pipe. Under the movable support of the rotating shaft, the lower retaining ring is clamped on the lower surface of the left connecting disc and the T-shaped pipe, thus fixing the left connecting disc and the T-shaped pipe. Under the movable support of the rotating shaft, the bolt is rotated to the groove of the lower retaining ring. The washer is placed under the bolt, thus tightening and limiting the upper and lower retaining rings. This realizes the convenient connection of the reducing multi-port connection assembly, reduces the labor intensity of manual labor, and improves the convenience of connecting the reducing multi-port connection assembly. Attached Figure Description

[0017] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0018] Figure 2 This is a front view structural diagram of the present utility model;

[0019] Figure 3 This is a three-dimensional structural diagram of the connecting plate of this utility model;

[0020] Figure 4 This is a schematic diagram of the three-dimensional structure of the arc-shaped ring of this utility model;

[0021] Figure 5 This is a three-dimensional structural diagram of the baffle of this utility model;

[0022] Figure 6 This is a three-dimensional structural diagram of the upper retaining ring of this utility model;

[0023] Figure 7 This is a three-dimensional structural diagram of the T-shaped pipe of this utility model.

[0024] In the diagram: 1. Connecting plate; 2. Support column; 3. Connecting block; 4. Diverter shroud; 5. First connecting disc; 6. Left connecting disc; 7. Right connecting disc; 8. T-shaped pipe; 9. Right connecting pipe; 10. Left connecting pipe; 11. Through hole; 12. Support sleeve; 13. Pin; 14. Groove; 15. Rotating column; 16. Support block; 17. Support frame; 18. Limiting column; 19. Connecting ring; 20. Spring; 21. Handle; 22. Arc-shaped ring; 23. Baffle; 24. Upper retaining ring; 25. Rotating shaft; 26. Lower retaining ring; 27. Rotating shaft; 28. Bolt; 29. ​​Washer; 30. Nut; 31. Mechanical valve; 32. Sealing ring. Detailed Implementation

[0025] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the scope of protection of the present utility model.

[0026] Please see Figure 1-7This utility model provides an embodiment of a multi-channel radiating plate connector, comprising a connecting plate 1 and a support column 2. The support column 2 is mounted on the bottom end of the connecting plate 1. A connecting block 3 is provided on the outside of the support column 2. A flow divider 4 is mounted on the bottom end of the connecting block 3. A first connecting disc 5 is mounted on one side of the flow divider 4. A left connecting disc 6 is mounted on the side of the flow divider 4 away from the first connecting disc 5. A right connecting disc 7 is mounted on the side of the flow divider 4 away from the left connecting disc 6. T-shaped pipes 8 are provided on the outside of both the left and right connecting discs 6 and 7. A right connecting pipe 9 is mounted on one side of each T-shaped pipe 8. A left connecting pipe 10 is mounted on the side of each T-shaped pipe 8 away from the right connecting pipe 9. Multiple sets of through holes 11 with equal spacing are provided on the surface of the support column 2. A support sleeve 12 is fitted onto the surface of the support column 2. A pin 13 is provided on the outside of the support sleeve 12. The pin 13 passes through the support sleeve 12 and extends to the outside through the corresponding through hole 11. An arc-shaped ring 22 is installed at the bottom of the diverter 4. A rotating column 15 is movably installed inside the diverter 4. The rotating column 15 passes through the diverter 4 and extends to the outside. A set of equally spaced grooves 14 are provided at the bottom of the arc-shaped ring 22. A support block 16 is installed at the bottom of the rotating column 15. A support frame 17 is installed at the bottom of the support block 16. A limit post 18 is movably installed inside the support frame 17. The limit post 18 passes through the support frame 17, the support block 16 and contacts the groove 14. A handle 21 is installed at the bottom of the limit post 18. A connecting ring 19 is fixedly installed on the surface of the limit post 18 inside the support frame 17. A spring 20 is fitted on the surface of the limit post 18 below the connecting ring 19.

[0027] One end of the spring 20 is connected to the connecting ring 19, and the other end of the spring 20 is connected to the support frame 17;

[0028] A baffle 23 is installed on the surface of the rotating column 15 inside the flow divider 4, and a sealing ring 32 is installed on the side wall of the baffle 23.

[0029] When using the radiant plate reducing multi-port connection assembly, connect the radiant plate to the two sets of right connecting pipes 9 and left connecting pipes 10 respectively. When it is necessary to adjust the height of the diversion hood 4, pull out the pin 13 so that the pin 13 is disengaged from the through hole 11 and the support sleeve 12. The support sleeve 12 slides on the surface of the support column 2. Move the support sleeve 12, connecting block 3, diversion hood 4, first connecting disc 5, left connecting disc 6, right connecting disc 7, T-shaped pipe 8, right connecting pipe 9, and left connecting pipe 10 to the specified height. Insert the pin 13 into the support sleeve 12 and the corresponding through hole 11 to fix the support sleeve 12. When it is necessary to clean the left connecting disc 6, manually close the corresponding mechanical valve 31 and pull down the handle 21. With the support of the support frame 17, the handle... Handle 21 drives the limiting post 18, connecting ring 19, and spring 20 to move downwards, causing the limiting post 18 to disengage from the groove 14. Rotating handle 21, support block 16, and rotating post 15 causes the rotating post 15 to drive the baffle 23 and sealing ring 32 to rotate to one side of the left connecting disc 6, so that the baffle 23 blocks one side of the left connecting disc 6 and the sealing ring 32 performs a sealing function. When the desired angle is reached, handle 21 is released. Under the elastic support of spring 20, spring 20 drives the connecting ring 19 and limiting post 18 to move upwards, so that the limiting post 18 contacts the groove 14 and performs a limiting action. This realizes the convenient control of the fluid flow path of the reducing multi-port connection component, which facilitates cleaning and improves the convenience of controlling the fluid flow path of the reducing multi-port connection component.

[0030] The surfaces of the left connecting disc 6 and the right connecting disc 7 are both provided with upper retaining rings 24, and the outer surfaces of the upper retaining rings 24 are both provided with lower retaining rings 26;

[0031] A rotating shaft 25 is movably installed on the side wall of each lower retaining ring 26, and each lower retaining ring 26 is movably connected to the upper retaining ring 24 through the rotating shaft 25.

[0032] Rotating shafts 27 are movably mounted on the side walls of the upper retaining ring 24, and bolts 28 are fitted on the surface of the rotating shafts 27.

[0033] Each bolt 28 is provided with a washer 29 on the outside, and each bolt 28 is fitted with a nut 30 on its surface;

[0034] Bolts 28 are all threaded to nuts 30, and mechanical valves 31 are installed on the surfaces of right connecting pipe 9 and left connecting pipe 10.

[0035] When the T-shaped pipe 8 needs to be connected to the left connecting disc 6 and the right connecting disc 7 respectively, the T-shaped pipe 8 is brought into contact with the left connecting disc 6 and the right connecting disc 7 respectively. The upper retaining ring 24 is locked onto the upper surface of the left connecting disc 6 and the T-shaped pipe 8. Under the movable support of the rotating shaft 25, the lower retaining ring 26 is locked onto the lower surface of the left connecting disc 6 and the T-shaped pipe 8, thus fixing the left connecting disc 6 and the T-shaped pipe 8. Under the movable support of the rotating shaft 27, the bolt 28 is rotated to the groove of the lower retaining ring 26. The washer 29 is placed under the bolt 28. Under the threaded connection of the bolt 28 and the nut 30, the upper retaining ring 24 and the lower retaining ring 26 are tightened and limited. This realizes the convenient connection of the reducing multi-port connection assembly, reduces the labor intensity of manual labor, and improves the convenience of connecting the reducing multi-port connection assembly.

[0036] Working principle: When using the radiant plate reducing multi-port connection assembly, connect the radiant plate to the two sets of right connecting pipes 9 and left connecting pipes 10 respectively. When it is necessary to adjust the height of the diversion shroud 4, pull out the pin 13, so that the pin 13 disengages from the through hole 11 and the support sleeve 12. The support sleeve 12 slides on the surface of the support column 2, moving the support sleeve 12, connecting block 3, diversion shroud 4, first connecting disc 5, left connecting disc 6, right connecting disc 7, T-shaped pipe 8, right connecting pipe 9, and left connecting pipe 10 to the designated position. To fix the support sleeve 12, insert pin 13 into the corresponding through hole 11 of the support sleeve 12. When cleaning the left connecting disc 6 is required, manually close the corresponding mechanical valve 31 and pull down the handle 21. With the support of the support frame 17, the handle 21 drives the limiting post 18, connecting ring 19, and spring 20 to move downward, causing the limiting post 18 to disengage from the groove 14. Rotate the handle 21, support block 16, and rotating post 15, causing the rotating post 15 to drive the baffle 23 and sealing ring 32 into position. The lever is rotated to one side of the left connecting disc 6, causing the baffle 23 to block one side of the left connecting disc 6. The sealing ring 32 provides a seal. When the desired angle is reached, the handle 21 is released. Under the elastic support of the spring 20, the spring 20 drives the connecting ring 19 and the limiting post 18 to move upward, so that the limiting post 18 contacts the groove 14 for limiting. When it is necessary to connect the T-shaped pipe 8 to the left connecting disc 6 and the right connecting disc 7 respectively, the T-shaped pipe 8 is connected to the left connecting disc 6 and the right connecting disc 7 respectively. 7. Make contact, and lock the upper retaining ring 24 onto the upper surface of the left connecting disc 6 and the T-shaped pipe 8. Under the movable support of the rotating shaft 25, lock the lower retaining ring 26 onto the lower surface of the left connecting disc 6 and the T-shaped pipe 8, thereby fixing the left connecting disc 6 and the T-shaped pipe 8. Under the movable support of the rotating shaft 27, rotate the bolt 28 to the groove of the lower retaining ring 26, and place the washer 29 under the bolt 28 to tighten and limit the upper retaining ring 24 and the lower retaining ring 26, thereby completing the use of the reducing multi-port connection assembly.

Claims

1. A multi-channel connector assembly for radiating plates with varying diameters, characterized in that: The system includes a connecting plate (1) and a support column (2). The support column (2) is installed at the bottom of the connecting plate (1). A connecting block (3) is provided on the outside of the support column (2). A flow divider (4) is installed at the bottom of the connecting block (3). A first connecting disc (5) is installed on one side of the flow divider (4). A left connecting disc (6) is installed on the side of the flow divider (4) away from the first connecting disc (5). A right connecting disc is installed on the side of the flow divider (4) away from the left connecting disc (6). (7) Both the left connecting disc (6) and the right connecting disc (7) are provided with T-shaped pipes (8) on their exteriors. A right connecting pipe (9) is installed on one side of each T-shaped pipe (8). A left connecting pipe (10) is installed on the side of each T-shaped pipe (8) away from the right connecting pipe (9). The surface of the support column (2) is provided with multiple sets of through holes (11) at equal intervals. A support sleeve (12) is fitted onto the surface of the support column (2). A pin is provided on the exterior of the support sleeve (12). 13), the pin (13) penetrates the support sleeve (12) and extends to its outside through the corresponding through hole (11). An arc-shaped ring (22) is installed at the bottom end of the diverter (4). A rotating column (15) is movably installed inside the diverter (4). The rotating column (15) penetrates the diverter (4) and extends to its outside. The bottom end of the arc-shaped ring (22) is provided with multiple sets of equally spaced grooves (14). A support block (16) is installed at the bottom end of the rotating column (15). A support frame (17) is installed at the bottom of (16). A limiting post (18) is movably installed inside the support frame (17). The limiting post (18) passes through the support frame (17), the support block (16), and contacts the groove (14). A handle (21) is installed at the bottom of the limiting post (18). A connecting ring (19) is fixedly installed on the surface of the limiting post (18) inside the support frame (17). A spring (20) is fitted on the surface of the limiting post (18) below the connecting ring (19).

2. The radiating plate differential multi-channel connection assembly according to claim 1, characterized in that: One end of the spring (20) is connected to the connecting ring (19), and the other end of the spring (20) is connected to the support frame (17).

3. The radiating plate differential multi-channel connection assembly according to claim 2, characterized in that: A baffle (23) is installed on the surface of the rotating column (15) inside the flow divider (4), and a sealing ring (32) is installed on the side wall of the baffle (23).

4. The radiating plate differential multi-channel connection assembly according to claim 1, characterized in that: The surfaces of the left connecting disc (6) and the right connecting disc (7) are each provided with an upper retaining ring (24), and the outer side of the upper retaining ring (24) is provided with a lower retaining ring (26).

5. The radiating plate differential multi-channel connection assembly according to claim 4, characterized in that: Each of the lower retaining rings (26) has a rotating shaft (25) movably mounted on its side wall, and each of the lower retaining rings (26) is movably connected to the upper retaining ring (24) through the rotating shaft (25).

6. The radiating plate differential multi-channel connection assembly according to claim 5, characterized in that: Rotating shafts (27) are movably mounted on the side walls of the upper retaining ring (24), and bolts (28) are fitted on the surface of the rotating shafts (27).

7. The radiating plate differential multi-channel connection assembly according to claim 6, characterized in that: Each bolt (28) is provided with a washer (29) on its outside, and each bolt (28) is fitted with a nut (30) on its surface.

8. The radiating plate differential multi-channel connection assembly according to claim 7, characterized in that: All bolts (28) are threadedly connected to nuts (30), and mechanical valves (31) are installed on the surfaces of the right connecting pipe (9) and the left connecting pipe (10).