Gypsum surface radiant heat exchange plate with cold and warm supply

CN224649913UActive Publication Date: 2026-08-18SHANGHAI GUYOU AIR CONDITIONING EQUIPMENT ENGINEERING CO LTD
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Patent Information

Application Number
CN202522089123.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-28
Publication Date
2026-08-18
Estimated Expiration
2035-09-28

AI Technical Summary

Technical Problem

[0004]现有的石膏表面辐射换热板在安装时通常是安装到龙骨上,但在安装时发现需要使用特制固定装置才能进行固定,导致在对石膏表面辐射换热板进行安装时较为繁琐

Benefits of technology

1.本实用新型所述的一种具有冷暖供给的石膏表面辐射换热板,通过使用固定架和螺栓对石膏表面辐射换热板本体进行固定可在石膏表面辐射换热板本体固定时更加快速使其通过固定架的支撑和螺栓的挤压即可快速对石膏表面辐射换热板本体进行固定,同时在固定时可通过石膏表面辐射换热板本体的尺寸进行调整螺栓和固定板的位置,随后通过采用石膏板配合铝型材镶嵌铜管的结构设计,使得石膏表面辐射换热板本体板面温度更加均匀,辐射换热效果好,寿命长,板表面温度均匀而不易结露。

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Abstract

The utility model belongs to the technical field of radiant heat exchange plate, specifically is a kind of gypsum surface radiant heat exchange plate with cold and warm supply, including keel, the keel middle part is provided with gypsum surface radiant heat exchange plate body;The top of keel is provided with a plurality of fixing frame;The bottom of fixed frame is screw-threaded with bolt;Through the fixed frame and bolt to the gypsum surface radiant heat exchange plate body fixed can be more quickly when gypsum surface radiant heat exchange plate body fixed make it through the support of fixed frame and the extrusion of bolt, gypsum surface radiant heat exchange plate body can be quickly fixed, while in fixed, the position of bolt and fixed plate can be adjusted by the size of gypsum surface radiant heat exchange plate body, subsequently by adopting the structure design of gypsum board cooperation aluminium section bar inlay copper pipe, the plate surface temperature of gypsum surface radiant heat exchange plate body is more uniform, and the effect of radiant heat exchange is good, and service life is long, and plate surface temperature is uniform and not easy to dew.
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Description

Technical Field

[0001] This utility model relates to the field of radiant heat exchange plate technology, specifically a gypsum surface radiant heat exchange plate with heating and cooling supply. Background Technology

[0002] Radiant cooling and heating technology is gaining increasing attention due to its comfort, energy efficiency, quiet operation, and hygiene. As a result, there are more and more types of radiant heat exchange air conditioners. Common radiant heat exchange equipment includes capillary networks, plastic radiant heat exchange plates, concrete radiant heat exchange plates, metal radiant heat exchange plates, and gypsum board radiant heat exchange plates.

[0003] The gypsum surface radiant heat exchange plate can efficiently provide heating and cooling. Through advanced radiant heat exchange technology, it can precisely control the indoor temperature and bring a comfortable heating and cooling experience. The heat exchange plate is composed of gypsum, aluminum profile heat-conducting plate, heating and cooling components, etc. It has good thermal stability and heat storage capacity, ensuring the continuity and stability of heating and cooling supply, and is energy-saving and environmentally friendly.

[0004] Existing gypsum surface radiant heat exchange panels are usually installed on a keel, but it has been found that special fixing devices are required for fixing, making the installation of gypsum surface radiant heat exchange panels quite cumbersome.

[0005] Therefore, a gypsum surface radiant heat exchange plate with both heating and cooling supply is proposed to address the above problems. Utility Model Content

[0006] In order to overcome the shortcomings of the prior art, at least one technical problem raised in the background art is solved.

[0007] The technical solution adopted by this utility model to solve its technical problem is as follows: A gypsum surface radiant heat exchange plate with heating and cooling supply, comprising a keel, a gypsum surface radiant heat exchange plate body disposed in the middle of the keel; multiple fixing brackets disposed at the top of the keel; bolts threadedly connected to the bottom of the fixing brackets; fixing plates rotatably connected to the ends of the bolts; the gypsum surface radiant heat exchange plate body is located between the keel and the fixing plates. By using the fixing brackets and bolts to fix the gypsum surface radiant heat exchange plate body, it is possible to quickly fix the gypsum surface radiant heat exchange plate body through the support of the fixing brackets and the compression of the bolts. Simultaneously, the position of the bolts and fixing plates can be adjusted by the size of the gypsum surface radiant heat exchange plate body during fixing. Furthermore, by adopting a structural design of gypsum board combined with aluminum profiles inlaid with copper tubes, the surface temperature of the gypsum surface radiant heat exchange plate body is more uniform, resulting in better radiant heat exchange effect, longer lifespan, and a more uniform surface temperature that is less prone to condensation.

[0008] Preferably, a plurality of spring telescopic rods are fixedly connected to the top of the fixing plate; a push plate is fixedly connected to the top of each spring telescopic rod; by adding spring telescopic rods, the compression deformation of the spring telescopic rods can adjust the squeezing force of the push plate on the gypsum surface radiant heat exchange plate body when the fixing plate squeezes and fixes the gypsum surface radiant heat exchange plate body, thereby increasing the flexibility when squeezing and fixing the gypsum surface radiant heat exchange plate body, making it more flexible during fixing, thereby reducing surface damage when the gypsum surface radiant heat exchange plate body is fixed for a long time.

[0009] Preferably, a limiting plate is fixedly connected to the end of the fixing frame; by adding the limiting plate, the adjustment time of the fixing frame is reduced when placing the fixing frame, thereby making the installation of the fixing frame faster and accelerating the installation of the gypsum surface radiant heat exchange plate body, thus quickly fixing it.

[0010] Preferably, a rubber pad is fixed to the top of the push plate; the rubber pad is wavy; by adding the rubber pad, the radiant heat exchange plate body on the gypsum surface can be squeezed and deformed through contact with the surface of the rubber pad, thereby continuously increasing the contact area and thus increasing the stability after fixing, while reducing damage from long-term fixing.

[0011] Preferably, a dustproof cloth is fixedly attached to the top of the fixing plate; the top of the dustproof cloth and the push plate are fixedly connected; by adding a dustproof cloth, the contact of particles in the surrounding environment can be reduced when the spring telescopic rod is working, thereby reducing the damage caused by particles adhering for a long time, thus protecting the spring telescopic rod and increasing its service life.

[0012] Preferably, a pair of connecting rods are fixed to the side wall of the fixing frame; a pair of slots are provided on the other side of the fixing frame; the connecting rods and slots are correspondingly arranged and slidably engaged; by adding connecting rods and slots, the contact area when the fixing frames approach each other can be increased when multiple fixing frames are connected by inserting the connecting rods and slots, thereby increasing the stability of the connection during use.

[0013] The advantages of this utility model are: 1. The gypsum surface radiant heat exchange plate with heating and cooling supply described in this utility model uses a fixing frame and bolts to fix the gypsum surface radiant heat exchange plate body. This allows for faster fixing of the gypsum surface radiant heat exchange plate body through the support of the fixing frame and the compression of the bolts. At the same time, the position of the bolts and fixing plate can be adjusted by the size of the gypsum surface radiant heat exchange plate body. Subsequently, by adopting a structural design of gypsum board combined with aluminum profile and inlaid copper tubes, the surface temperature of the gypsum surface radiant heat exchange plate body is more uniform, the radiant heat exchange effect is good, the service life is long, and the plate surface temperature is uniform and not prone to condensation.

[0014] 2. The gypsum surface radiant heat exchange plate with heating and cooling supply described in this utility model, by adding a spring telescopic rod, can adjust the squeezing force of the push plate on the gypsum surface radiant heat exchange plate body by the compression deformation of the spring telescopic rod when the fixed plate squeezes and fixes the gypsum surface radiant heat exchange plate body. This increases the flexibility when squeezing and fixing the gypsum surface radiant heat exchange plate body, making it more flexible during fixing, thereby reducing surface damage when the gypsum surface radiant heat exchange plate body body is fixed for a long time. Attached Figure Description

[0015] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0016] Figure 1 This is a schematic diagram of the main body of this utility model; Figure 2 This is a schematic diagram of the structure of the fixing frame in this utility model; Figure 3 This is a schematic diagram of the structure of the dustproof cloth in this utility model; Figure 4 This is a schematic diagram of the limiting plate in this utility model; Figure 5 This is a schematic diagram of the bolt structure in this utility model.

[0017] In the diagram: 1. Keel; 11. Plaster surface radiant heat exchange plate body; 12. Fixing frame; 13. Bolt; 14. Fixing plate; 2. Spring telescopic rod; 21. Push plate; 3. Limiting plate; 4. Rubber pad; 5. Dustproof cloth; 6. Connecting rod; 61. Slot. Detailed Implementation

[0018] 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 scope of protection of the present utility model.

[0019] Specific implementation examples are given below.

[0020] like Figures 1 to 5As shown in the embodiment of this utility model, a gypsum surface radiant heat exchange plate with heating and cooling supply includes a keel 1, a gypsum surface radiant heat exchange plate body 11 disposed in the middle of the keel 1, a plurality of fixing brackets 12 disposed on the top of the keel 1, bolts 13 threadedly connected to the bottom of the fixing brackets 12, and fixing plates 14 rotatably connected to the ends of the bolts 13; the gypsum surface radiant heat exchange plate body 11 is located between the keel 1 and the fixing plates 14; in operation, the fixing brackets 12 are first placed on the top of the keel 1, and then the gypsum surface radiant heat exchange plate body 11 is inserted. Insert the bolt 13 into the gap between the fixing plate 14 and the keel 1. At this point, the inner wall and side wall of the fixing bracket 12 can be pressed tightly together, and then the bolt 13 can be rotated to push the fixing plate 14 closer to the gypsum surface radiant heat exchange plate body 11. After it gets close, the bolt 13 can be rotated appropriately to make the fixing plate 14 and the gypsum surface radiant heat exchange plate body 11 press and fix the gypsum surface radiant heat exchange plate body 11. Then, repeat the operation with the remaining bolts 13 to fix the four corners of the gypsum surface radiant heat exchange plate body 11. Then, water can be injected into the inside of the gypsum surface radiant heat exchange plate body 11. After the heat source flows into the copper pipe, the temperature is transferred to the aluminum profile heat-conducting plate that is in close contact with it, thereby lowering or raising the temperature of the gypsum board under the heating and cooling components, and exchanging heat with the surrounding objects through radiation. If the back of the heating and cooling component plate is covered with insulation material, more heat can be transferred to the surface of the gypsum board. If the back of the heating and cooling component plate is not covered with insulation, the heat and cold on the back of the heating and cooling component plate can be utilized through the large-space air circulation in the ceiling in the form of convection heat exchange, thereby adjusting and stabilizing the room. The radiant heat exchange plate on the gypsum board surface is secured by using the fixing bracket 12 and bolts 13. The main body 11 can be fixed more quickly when fixing the radiant heat exchange plate body 11 on the gypsum surface. It can be quickly fixed by the support of the fixing frame 12 and the compression of the bolts 13. At the same time, the position of the bolts 13 and the fixing plate 14 can be adjusted by the size of the radiant heat exchange plate body 11. Then, by adopting the structural design of gypsum board combined with aluminum profile and copper tube inlay, the surface temperature of the radiant heat exchange plate body 11 is more uniform, the radiant heat exchange effect is good, the service life is long, and the surface temperature of the plate is uniform and not easy to condense.

[0021] like Figure 4As shown, multiple spring telescopic rods 2 are fixedly connected to the top of the fixing plate 14; a push plate 21 is fixedly connected to the top of the spring telescopic rods 2. During operation, when the fixing plate 14 is used to fix the gypsum surface radiant heat exchange plate body 11, the push plate 21 will first contact the gypsum surface radiant heat exchange plate body 11. Subsequently, the spring telescopic rods 2 will be compressed under the continuous pressure of the fixing plate 14. When the spring telescopic rods 2 are compressed, they will continuously apply a pushing force to the push plate 21, making the force when pressing the push plate 21 greater. At this time, the position of the fixing plate 14 can be adjusted appropriately to adjust the pushing force applied by the spring telescopic rods 2 to the push plate 21. By adding spring telescopic rods 2, the compression deformation of the spring telescopic rods 2 can adjust the pressing force of the push plate 21 on the gypsum surface radiant heat exchange plate body 11 when the fixing plate 14 is pressing and fixing it. This increases the flexibility when pressing and fixing the gypsum surface radiant heat exchange plate body 11, making it more flexible during fixing. This reduces surface damage when the gypsum surface radiant heat exchange plate body 11 is fixed for a long time.

[0022] like Figures 3 to 5 As shown, the end of the fixing frame 12 is fixedly connected to a limiting plate 3. During operation, when the fixing frame 12 is placed on top of the keel 1, the limiting plate 3 can directly contact the inner wall of the keel 1 to become a hook. After placement, the fixing frame 12 can be supported by the limiting plate 3. Then, the gypsum surface radiant heat exchange plate body 11 is fixed by bolts 13 and fixing plate 14, thereby speeding up the placement of the fixing frame 12. By adding the limiting plate 3, the adjustment time of the fixing frame 12 is reduced when placing the fixing frame 12, thereby making the installation of the fixing frame 12 faster and speeding up the installation of the gypsum surface radiant heat exchange plate body 11, thus quickly fixing it.

[0023] like Figures 3 to 5 As shown, a rubber pad 4 is fixed to the top of the push plate 21; the rubber pad 4 is wavy; during operation, when the push plate 21 presses and fixes the gypsum surface radiant heat exchange plate body 11, the rubber pad 4 will first contact the gypsum surface radiant heat exchange plate body 11, and then the rubber pad 4 will deform due to the pressure of the push plate 21, so that it continuously increases the contact area when in contact with the gypsum surface radiant heat exchange plate body 11, thereby reducing the rigid contact of long-term fixation when using the push plate 21 for fixation; by adding the rubber pad 4, the gypsum surface radiant heat exchange plate body 11 can be pressed and deformed through the contact of the rubber pad 4 surface, and the contact area can be continuously increased, thereby increasing the stability after fixation, and at the same time reducing the damage of long-term fixation.

[0024] like Figure 3As shown, a dustproof cloth 5 is fixedly attached to the top of the fixing plate 14; the top of the dustproof cloth 5 and the push plate 21 are fixedly connected; during operation, since dust particles usually appear in the installation environment of the keel 1, when the push plate 21 squeezes and fixes the gypsum surface radiant heat exchange plate body 11, the dustproof cloth 5 will be located outside the spring telescopic rod 2 so that the dust particles are blocked and intercepted on the surface of the dustproof cloth 5, thereby reducing the contact between the particles and the spring telescopic rod 2; by adding the dustproof cloth 5, the contact of particles in the surrounding environment can be reduced when the spring telescopic rod 2 is working, thereby reducing the damage caused by the long-term adhesion of particles, thus protecting the spring telescopic rod 2 and increasing its service life.

[0025] like Figures 3 to 5 As shown, a pair of connecting rods 6 are fixedly connected to the side wall of the fixing frame 12; a pair of slots 61 are provided on the other side of the fixing frame 12; the connecting rods 6 and slots 61 are correspondingly arranged and slidably engaged; during operation, when fixing the connection of the gypsum surface radiant heat exchange plate body 11, multiple fixing frames 12 can be connected. At this time, the connecting rods 6 are first inserted into the slots 61 to connect them, and then they are fixed. This increases the contact area between the fixing plate 14 and the gypsum surface radiant heat exchange plate body 11; by adding connecting rods 6 and slots 61, the contact area of ​​the fixing frames 12 when they approach each other can be increased when multiple fixing frames 12 are connected, thereby increasing the stability of the connection during use.

[0026] Working principle: First, place the top of the fixing frame 12 on top of the keel 1, then insert the gypsum surface radiant heat exchange plate body 11 into the gap between the fixing plate 14 and the keel 1. At this time, the inner wall and side wall of the fixing frame 12 can be pressed tightly together, and then the bolt 13 is rotated to push the fixing plate 14 closer to the gypsum surface radiant heat exchange plate body 11. After it gets close, the bolt 13 can be rotated appropriately to make the fixing plate 14 and the gypsum surface radiant heat exchange plate body 11 press tightly together, thereby pressing and fixing the gypsum surface radiant heat exchange plate body 11. Then, the remaining bolts 13 are repeated to fix the four corners of the gypsum surface radiant heat exchange plate body 11. Then, water can be injected into the gypsum surface radiant heat exchange plate body 11 and let it flow into the copper pipe, and the temperature will be transferred. The heat is transferred to the aluminum profile heat-conducting plate that is in close contact with it, thereby lowering or raising the temperature of the gypsum board under the heating and cooling components, and exchanging heat with the surrounding objects through radiation. If the back of the heating and cooling component plate is covered with insulation material, more heat can be transferred to the surface of the gypsum board. If the back of the heating and cooling component plate is not covered with insulation, the heat and cold on the back of the heating and cooling component plate can be utilized through the large-space air circulation in the ceiling in the form of convection heat exchange, thereby adjusting and stabilizing the room. When the fixing plate 14 is used to fix the gypsum surface radiant heat exchange plate body 11, the push plate 21 will first contact the gypsum surface radiant heat exchange plate body 11. Then, the spring telescopic rod 2 will be compressed by the continuous compression of the fixing plate 14. When the spring telescopic rod 2 is compressed, it will continuously apply pressure to the push plate 21. The force makes it exert greater force when squeezing the push plate 21. At this time, the position of the fixing plate 14 can be adjusted to adjust the pushing force applied to the push plate 21 by the spring telescopic rod 2. When the fixing frame 12 is placed on the top of the keel 1, the limiting plate 3 can be directly contacted with the inner wall of the keel 1 to become a hook. After placement, the fixing frame 12 can be supported by the limiting plate 3. Then, the gypsum surface radiant heat exchange plate body 11 is fixed by the bolts 13 and the fixing plate 14, thereby speeding up the placement of the fixing frame 12. When the push plate 21 squeezes and fixes the gypsum surface radiant heat exchange plate body 11, the rubber pad 4 will first contact the gypsum surface radiant heat exchange plate body 11. Then, the rubber pad 4 will deform due to the squeezing of the push plate 21, so that it is in contact with the gypsum surface radiant heat exchange plate body 11. As the radiant heat exchanger plate body 11 comes into contact, the contact area increases continuously, thereby reducing the rigid contact required for prolonged fixing when using the push plate 21. Since the installation environment of the keel 1 usually contains dust particles, when the push plate 21 presses and fixes the radiant heat exchanger plate body 11 on the gypsum surface, the dustproof cloth 5 will be located outside the spring telescopic rod 2, blocking and intercepting dust particles on the surface of the dustproof cloth 5, thus reducing the contact between particles and the spring telescopic rod 2. When fixing the connection of the radiant heat exchanger plate body 11 on the gypsum surface, multiple fixing brackets 12 can be connected. At this time, the connecting rod 6 is first inserted into the slot 61 to connect them, and then fixed. This increases the contact area between the fixing plate 14 and the radiant heat exchanger plate body 11 on the gypsum surface.

[0027] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model.

Claims

1. A gypsum surface radiant heat exchange plate with heating and cooling supply, characterized in that: The keel (1) includes a keel (1) with a gypsum surface radiant heat exchange plate body (11) in the middle; a plurality of fixing brackets (12) are provided on the top of the keel (1); bolts (13) are threaded to the bottom of the fixing brackets (12); a fixing plate (14) is rotatably connected to the end of the bolts (13); the gypsum surface radiant heat exchange plate body (11) is located between the keel (1) and the fixing plate (14).

2. A gypsum surface radiant heat exchange plate with heating and cooling supply according to claim 1, characterized in that: The top of the fixed plate (14) is fixed with a plurality of spring telescopic rods (2); the top of the spring telescopic rods (2) is fixed with a push plate (21).

3. A gypsum surface radiant heat exchange plate with heating and cooling supply according to claim 2, characterized in that: The end of the fixing frame (12) is fixedly connected to a limiting plate (3).

4. A gypsum surface radiant heat exchange plate with heating and cooling supply according to claim 3, characterized in that: A rubber pad (4) is fixed to the top of the push plate (21); the rubber pad (4) is wavy.

5. A gypsum surface radiant heat exchange plate with heating and cooling supply according to claim 4, characterized in that: The top of the fixing plate (14) is fixedly connected to a dustproof cloth (5); the top of the dustproof cloth (5) and the push plate (21) are fixedly connected.

6. A gypsum surface radiant heat exchange plate with heating and cooling supply according to claim 5, characterized in that: A pair of connecting rods (6) are fixed to the side wall of the fixing frame (12); a pair of slots (61) are provided on the other side of the fixing frame (12); the connecting rods (6) and the slots (61) are correspondingly arranged and slidably engaged.