Temperature-controlled in-floor radiant panel

CN224743668UActive Publication Date: 2026-09-11CHINA ENERGY GRP NINGXIA COAL IND CO LTD
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Patent Information

Application Number
CN202521924028.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-08
Publication Date
2026-09-11
Estimated Expiration
2035-09-08

AI Technical Summary

Technical Problem

[0003]而目前的辐射板铺设时,需要提前安装好龙骨架,然后将辐射板通过自攻螺钉贯穿辐射板固定在龙骨架上,虽然辐射板一侧都有提前绘制好管道的走向路径,但是管道靠近龙骨架,自攻螺丝一旦刺破管道,其不易被发现,会造成泄露,长时间使用会出现介质泄漏的现象,发现后也不易进行维修

Benefits of technology

[0015]通过上述技术方案,该埋管式辐射板的温控机构设有支架,而温控机构的一侧与所述辐射板连接,且该侧还设有所述保温层,以经由所述保温层包覆所述温控机构,通过吊装机构与被附着物连接,无须对辐射板进行钻孔作业,能够避免安装过程中对温控机构产生损坏。

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Abstract

The utility model relates to building environment and equipment engineering discloses a temperature control buried pipe type radiant panel, including radiant panel, temperature control mechanism, hoist mechanism, insulating layer and support, temperature control mechanism with one side of radiant panel is connected, and this side still is equipped with insulating layer, to via insulating layer cladding temperature control mechanism, support with temperature control mechanism connects, one end of hoist mechanism can be connected with support, and the other end is used for connecting the adherend, and this temperature control buried pipe type radiant panel is equipped with support, and it is convenient to connect with hoist mechanism, and is connected with adherend through hoist mechanism, need not to carry out drilling operation to radiant panel, can avoid the damage to temperature control mechanism in the installation process.
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Description

Technical Field

[0001] This utility model relates to building environment and equipment engineering, specifically to a temperature-controlled buried pipe radiant panel. Background Technology

[0002] Radiant temperature control is a technology that controls indoor temperature by reducing the surface temperature inside a building. It mainly relies on radiation and convection. Its working principle is to adjust the indoor radiation by using the temperature of the medium inside the temperature control pipe, thereby lowering or raising the room temperature.

[0003] Currently, when laying radiant panels, a keel frame needs to be installed in advance, and then the radiant panels are fixed to the keel frame with self-tapping screws. Although the pipe routing path is pre-drawn on one side of the radiant panels, the pipes are close to the keel frame. Once the self-tapping screws puncture the pipes, it is not easy to be detected, which will cause leakage. After long-term use, medium leakage will occur, and it is not easy to repair after it is discovered. Utility Model Content

[0004] In order to solve the problems existing in the prior art, this utility model provides a temperature-controlled embedded tube radiant panel that eliminates the need for drilling into the radiant panel and avoids damage to the temperature control mechanism during installation.

[0005] To address the aforementioned technical issues, this utility model provides a temperature-controlled embedded pipe radiant panel, comprising a radiant panel, a temperature control mechanism, a hoisting mechanism, an insulation layer, and a support. The temperature control mechanism is connected to one side of the radiant panel, and the insulation layer is also provided on that side to cover the temperature control mechanism. The support is connected to the radiant panel, and one end of the hoisting mechanism can be connected to the support, while the other end is used to connect to the object to be attached.

[0006] Preferably, the bracket includes a mounting plate, a connecting rod, and a fixing plate. The mounting plate is connected to the radiating plate, one end of the connecting rod is connected to the mounting plate, and the other end is connected to the fixing plate. The fixing plate is connected to the hoisting mechanism.

[0007] In a further preferred embodiment, the bracket further includes a connecting sleeve, the connecting sleeve is provided on the side of the mounting plate facing away from the radiating plate, the connecting rod is a threaded rod, and the connecting sleeve is provided with a thread structure that matches the threaded rod.

[0008] In a further preferred embodiment, the insulation layer is disposed between the mounting plate and the fixing plate.

[0009] In a further preferred embodiment, the hoisting mechanism includes a docking plate, a lifting rod, and a hanging plate, one end of the lifting rod being connected to the docking plate and the other end being connected to the hanging plate, and the hanging plate being connected to the object to be attached.

[0010] Preferably, the temperature control mechanism includes a mounting bracket, a positioning sleeve, a temperature control tube, and a flexible hose. Multiple sets of mounting brackets are distributed on the radiant plate, and multiple positioning sleeves are arranged on each mounting bracket. The positioning sleeves are used to fix the temperature control tube. The end of the temperature control tube is connected to the flexible hose. Each flexible hose is equipped with a connector. The mounting plate is connected to the mounting bracket.

[0011] Preferably, the mounting plate is provided with a mounting groove that conforms to the contour of the positioning sleeve.

[0012] Preferably, the mounting plate has a plurality of protrusions arranged along the length of the mounting frame on the side near the temperature control mechanism. The protrusions abut against the mounting frame to form a space between the mounting frame and the mounting plate suitable for accommodating the positioning sleeve.

[0013] Preferably, the temperature control tubes are arranged in an S-shape on the radiant plate.

[0014] Preferably, on the side edge used for connection between adjacent radiating plates, one side has a groove and the other side has a protrusion that matches the groove.

[0015] With the above technical solution, the temperature control mechanism of the buried tube radiant panel is equipped with a bracket, and one side of the temperature control mechanism is connected to the radiant panel. The side is also equipped with the insulation layer, so that the temperature control mechanism is covered by the insulation layer. It is connected to the object to be attached by the hoisting mechanism, without the need to drill holes in the radiant panel, which can avoid damage to the temperature control mechanism during the installation process. Attached Figure Description

[0016] 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.

[0017] Figure 1 This is a structural schematic diagram of the temperature-controlled embedded tube radiant panel of this utility model. Figure 2 yes Figure 1 A magnified view of point A; Figure 3 This is a schematic diagram of the support and hoisting mechanism of the temperature-controlled buried tube radiant panel of this utility model; Figure 4 This is a schematic diagram of the boss of the temperature-controlled embedded tube radiant panel of this utility model. Figure 5 yes Figure 4 A structural diagram from another perspective; Figure 6 This is a schematic diagram of the mounting groove for the temperature-controlled embedded tube radiant panel of this utility model.

[0018] Explanation of reference numerals in the attached figures 1. Radiant panel; 2. Temperature control mechanism; 201. Mounting bracket; 202. Positioning sleeve; 203. Temperature control tube; 204. Flexible hose; 205. Connector; 3. Lifting mechanism; 301. Connecting plate; 302. Hanging rod; 303. Hanging plate; 4. Insulation layer; 5. Bracket; 501. Mounting plate; 502. Connecting sleeve; 503. Connecting rod; 504. Fixing plate; 505. Boss; 506. Mounting groove. Detailed Implementation

[0019] The embodiments of this utility model will be further described in detail below with reference to the accompanying drawings and examples. The detailed descriptions and accompanying drawings of the following embodiments are used to exemplarily illustrate the principles of this utility model, but should not be used to limit the scope of this utility model. This utility model can be implemented in many different forms and is not limited to the specific embodiments disclosed herein, but includes all technical solutions falling within the scope of the claims. The orientations or positional relationships indicated by terms such as "upper," "lower," "inner," and "outer" are only for the convenience of describing this utility model and simplifying the description, and do not 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 utility model. When the absolute position of the described object changes, the relative positional relationship may also change accordingly.

[0020] Furthermore, the terms "first," "second," and similar words used in this invention do not indicate any order, quantity, or importance, but are merely used to distinguish different parts. "Parallel" is not strictly parallel, but within the permissible range of error. Words such as "including" or "comprising" mean that the element preceding the word encompasses the element listed after it, and do not exclude the possibility of encompassing other elements as well.

[0021] It should also be noted that, in the description of this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in this utility model depending on the specific circumstances. When a specific device is described as being located between a first device and a second device, an intermediary device may or may not be present between the specific device and the first or second device.

[0022] All terms used in this invention have the same meaning as understood by one of ordinary skill in the art to which this invention pertains, unless otherwise specifically defined. It should also be understood that terms defined in general dictionaries should be interpreted as having meanings consistent with their meanings in the context of the relevant art, and not as idealized or highly formalized, unless expressly defined herein.

[0023] Techniques, methods, and equipment known to those skilled in the art may not be discussed in detail, but where appropriate, they should be considered part of the specification.

[0024] See Figures 1 to 6 This utility model provides a temperature-controlled embedded pipe radiant panel, including a radiant panel 1, a temperature control mechanism 2, a hoisting mechanism 3, an insulation layer 4, and a support 5. The temperature control mechanism 2 is connected to one side of the radiant panel 1, and the same side is also provided with an insulation layer 4 to cover the temperature control mechanism 2. The temperature control mechanism 2 is located in the insulation layer 4 on the side close to the radiant panel 1 to ensure normal heat exchange between the temperature control mechanism 2 and the radiant panel 1, and to reduce heat transfer between the temperature control mechanism 2 and areas outside the radiant panel 1, thereby ensuring the cooling or heating effect and saving energy. The support 5 is connected to the radiant panel 1, and one end of the hoisting mechanism 3 can be connected to the support 5. The bracket 5 is connected to the other end, and the other end is used to connect to the object to be attached. During installation, it is connected to the object (such as ceiling joists) through the hoisting mechanism 3. When the temperature-controlled embedded tube radiant panel is laid on the ground, the hoisting mechanism 3 is not required. The hoisting mechanism 3 is mainly used in the case of suspended ceilings. By connecting to the object to be attached through the hoisting mechanism 3, when the temperature-controlled embedded tube radiant panel of this application is applied to the suspended ceiling, the hole is opened on the bracket 5 to connect with the hoisting mechanism 3, which can avoid drilling the radiant panel 1 to achieve the connection with the object to be attached. This allows the drilling position during the installation process to be far away from the temperature control mechanism 2, and it is not easy to damage the temperature control mechanism 2.

[0025] In some embodiments, the bracket 5 includes a mounting plate 501, a connecting rod 503, and a fixing plate 504. The mounting plate 501 is connected to the radiating plate 1. One end of the connecting rod 503 is connected to the mounting plate 501, and the other end is connected to the fixing plate 504. The fixing plate 504 is connected to the hoisting mechanism 3. The mounting plate 501 and the radiating plate 1 are bonded together, or mounting holes are pre-drilled in the radiating plate 1 during production, and the mounting plate 501 is connected to the radiating plate 1 by a connector, or other common connection techniques in the art are used to connect the mounting plate 501 and the radiating plate 1. One end of the hoisting mechanism 3 can be connected to the fixing plate 504, and the other end is used to connect to the object to be attached. During installation, the hoisting mechanism 3 is used to connect to the object to be attached.

[0026] In some embodiments, the bracket 5 further includes a connecting sleeve 502. The mounting plate 501 is provided with the connecting sleeve 502 on the side facing away from the radiant plate 1. The connecting rod 503 is a threaded rod. The connecting sleeve 502 is provided with a threaded structure that matches the threaded rod. By rotating the connecting sleeve 502 and the threaded rod, fine adjustments are made to change the distance between the fixing plate 504 and the mounting plate 501. When splicing multiple temperature-controlled embedded tube radiant plates, the fit and flatness of the radiant plane are ensured, gaps are reduced, and temperature loss is reduced, which is conducive to improving the temperature control effect.

[0027] In some embodiments, the insulation layer 4 is disposed between the mounting plate 501 and the fixing plate 504 to prevent the insulation layer 4 from obscuring the fixing plate 504, and to facilitate the connection between the fixing plate 504 and the hoisting mechanism 3. After the connecting rod 503 is connected to the fixing plate 504, it is convenient to fine-tune the interval between the mounting plate 501 and the fixing plate 504. When the insulation layer 4 covers the temperature control mechanism 2, the installation position of the connecting rod 503 is reserved.

[0028] In some embodiments, the hoisting mechanism 3 includes a docking plate 301, a lifting rod 302, and a lifting plate 303. One end of the lifting rod 302 is connected to the docking plate 301, and the other end is connected to the lifting plate 303. The lifting plate 303 is connected to the object to be attached. The connection method in the hoisting mechanism 3 adopts existing connection technology, and the length of the lifting rod 302 is selected according to the construction needs.

[0029] In some embodiments, the temperature control mechanism 2 includes a mounting bracket 201, a positioning sleeve 202, a temperature control tube 203, and a flexible hose 204. Multiple mounting brackets 201 are distributed on the radiant plate 1. Each mounting bracket 201 has multiple positioning sleeves 202 for fixing the temperature control tube 203. The end of the temperature control tube 203 is connected to the flexible hose 204. Each flexible hose 204 is equipped with a connector 205. The mounting plate 501 is connected to the mounting bracket 201. The connector 205 is connected to a cooling or heating device or a connector 204 on an adjacent temperature control buried pipe radiant plate. 5. Connect the temperature control tube 203 and fill it with a medium. The temperature control tube 203 transfers the temperature of the medium inside the tube to the radiant plate 1 through conduction. The radiant plate 1 then conducts the temperature of the medium to the indoor space through radiation. At the junction of the temperature control tube 203, the end of the temperature control tube 203 is connected to the flexible hose 204 to facilitate the connection between temperature control tubes 203 or the connection between the temperature control tube 203 and other components and equipment. When the temperature control tube 203 comes into contact with the medium, it will expand or contract. The flexible hose 204 can effectively compensate for this deformation, which helps to ensure the operation of the temperature control mechanism 2.

[0030] In some embodiments, the mounting plate 501 is provided with a mounting groove 506 that is adapted to the contour of the positioning sleeve 202. The inner contour of the mounting groove 506 corresponds to the outer diameter contour of the positioning sleeve 202, so as to avoid the mounting plate 501 from squeezing the positioning sleeve 202.

[0031] In some embodiments, the mounting plate 501 is provided with a plurality of protrusions 505 arranged along the length direction of the mounting bracket 201 on the side near the temperature control mechanism 2. The protrusions 505 abut against the mounting bracket 201 to form a suitable space between the mounting bracket 201 and the mounting plate 501 to accommodate the positioning sleeve 202, so as to prevent the mounting plate 501 from squeezing and deforming the positioning sleeve 202 during the installation process, which would reduce the flow area of ​​the temperature control tube 203 and affect the heat transfer efficiency, or cause damage to the temperature control tube 203.

[0032] In some embodiments, the temperature control tubes 203 are arranged in an S-shape on the radiant panel 1. The temperature control tubes 203 are evenly laid on the radiant panel 1 in an S-shape, making the distribution of the temperature control tubes 203 on the radiant panel 1 more uniform and covering a larger area. This effectively expands the conduction area between the temperature control tubes 203 and the radiant panel 1. At the same time, it avoids the local temperature difference problems such as heat accumulation or insufficient cooling caused by traditional straight or sparse arrangements, significantly reducing the occurrence of "overheated areas" or "undercooled areas". This makes the surface temperature field of the radiant panel 1 more uniform, which is conducive to achieving a stable distribution of indoor ambient temperature, reducing temperature gradients, and improving user comfort.

[0033] In some embodiments, on the side edge used for connection between adjacent radiating plates 1, one side is provided with a groove and the other side is provided with a protrusion that matches the groove. This concave-convex interlocking structure not only facilitates splicing but also enhances the structural stability and integrity of the radiating plane. The protrusion and the groove have a fitting gap, which can effectively compensate for deformation caused by temperature changes, avoid warping or misalignment at the plate seam, and thus maintain the flatness of the radiating plane.

[0034] To better understand the technical content provided by this utility model, the following description is based on a preferred embodiment.

[0035] This utility model provides a temperature-controlled embedded pipe radiant panel, including a radiant panel 1, a temperature control mechanism 2, a hoisting mechanism 3, an insulation layer 4, and a support 5. The support 5 includes a mounting plate 501, a connecting rod 503, a connecting sleeve 502, and a fixing plate 504. The mounting plate 501 is connected to the radiant panel 1. One end of the connecting rod 503 is connected to the connecting sleeve 502, and the other end is connected to the fixing plate 504. The fixing plate 504 is connected to the hoisting mechanism 3. The mounting plate 501 has a connecting sleeve 502 on the side facing away from the radiant panel 1. The connecting rod 503 is a threaded rod, and the connecting sleeve 502 has a threaded structure that matches the threaded rod. The insulation layer 4 is disposed between the mounting plate 501 and the fixing plate 504. The hoisting mechanism 3 includes a docking plate 301, a hanging rod 302, and a hanging plate 303. One end of the hanging rod 302 is connected to the docking plate 301, and the other end is connected to the hanging plate 303. The hanging plate 303 is connected to the object to be attached. The temperature control mechanism 2 includes a mounting frame 2. 01. Positioning sleeve 202, temperature control tube 203, and hose 204. Multiple sets of mounting brackets 201 are distributed on the radiant plate 1. Each mounting bracket 201 is provided with multiple positioning sleeves 202. The positioning sleeves 202 are used to fix the temperature control tube 203. The end of the temperature control tube 203 is connected to the hose 204. Each hose 204 is equipped with a connector 205. The mounting plate 501 is connected to the mounting bracket 201. The mounting plate 501 is provided with mounting grooves that conform to the contour of the positioning sleeves 202. On the side of the mounting plate 501 near the temperature control mechanism 2, there are multiple bosses 505 arranged along the length direction of the mounting bracket 201. The bosses 505 abut against the mounting bracket 201 to form a suitable space between the mounting bracket 201 and the mounting plate 501 to accommodate the positioning sleeves 202. The temperature control tubes 203 are arranged in an S-shape on the radiant plate 1. On the side of the adjacent radiant plates 1 used for connection, one side is provided with a groove and the other side is provided with a protrusion that matches the groove.

[0036] The temperature-controlled embedded tube radiant panel is equipped with a bracket for easy connection to a hoisting mechanism, which then connects it to the object to be attached. This eliminates the need for drilling into the radiant panel, preventing damage to the temperature control mechanism during installation. Furthermore, the connecting sleeve 502 and the threaded rod can be rotated for fine-tuning, changing the distance between the fixing plate 504 and the mounting plate 501. When splicing multiple temperature-controlled embedded tube radiant panels, this ensures the fit and flatness of the radiant plane, which is beneficial for improving the temperature control effect.

[0037] The various embodiments of this utility model have now been described in detail. To avoid obscuring the concept of this utility model, some details known in the art have not been described. Those skilled in the art can fully understand how to implement the technical solutions disclosed herein based on the above description.

[0038] Although specific embodiments of the present invention have been described in detail by way of examples, those skilled in the art should understand that the above examples are for illustrative purposes only and are not intended to limit the scope of the present invention. Those skilled in the art should understand that modifications can be made to the above embodiments or equivalent substitutions can be made to some technical features without departing from the scope and spirit of the present invention. In particular, as long as there is no structural conflict, the various technical features mentioned in the embodiments can be combined in any manner.

Claims

1. A temperature-controlled embedded tube radiant panel, characterized in that, It includes a radiant panel (1), a temperature control mechanism (2), a hoisting mechanism (3), an insulation layer (4), and a bracket (5). The temperature control mechanism (2) is connected to one side of the radiant panel (1), and the insulation layer (4) is also provided on that side to cover the temperature control mechanism (2) via the insulation layer (4). The bracket (5) is connected to the radiant panel (1). One end of the hoisting mechanism (3) can be connected to the bracket (5), and the other end is used to connect to the object to be attached.

2. The temperature-controlled buried tube radiant panel according to claim 1, characterized in that, The bracket (5) includes a mounting plate (501), a connecting rod (503) and a fixing plate (504). The mounting plate (501) is connected to the radiating plate (1). One end of the connecting rod (503) is connected to the mounting plate (501) and the other end is connected to the fixing plate (504). The fixing plate (504) is connected to the hoisting mechanism (3).

3. The temperature-controlled embedded tube radiant panel according to claim 2, characterized in that, The bracket (5) also includes a connecting sleeve (502). The mounting plate (501) is provided with the connecting sleeve (502) on the side facing away from the radiation plate (1). The connecting rod (503) is a threaded rod. The connecting sleeve (502) is provided with a threaded structure that matches the threaded rod.

4. The temperature-controlled embedded tube radiant panel according to claim 2 or 3, characterized in that, The insulation layer (4) is disposed between the mounting plate (501) and the fixing plate (504).

5. A temperature controlled buried tube radiant panel according to claim 4, characterised in that, The hoisting mechanism (3) includes a docking plate (301), a hoisting rod (302) and a hoisting plate (303). One end of the hoisting rod (302) is connected to the docking plate (301), and the other end is connected to the hoisting plate (303). The hoisting plate (303) is connected to the object to be attached.

6. The temperature-controlled embedded tube radiant panel according to claim 4, characterized in that, The temperature control mechanism (2) includes a mounting bracket (201), a positioning sleeve (202), a temperature control tube (203), and a flexible tube (204). Multiple sets of mounting brackets (201) are distributed on the radiant plate (1). Multiple positioning sleeves (202) are arranged on each mounting bracket (201). The positioning sleeves (202) are used to fix the temperature control tube (203). The end of the temperature control tube (203) is connected to the flexible tube (204). Each flexible tube (204) is equipped with a connector (205). The mounting plate (501) is connected to the mounting bracket (201).

7. The temperature-controlled embedded tube radiant panel according to claim 6, characterized in that, The mounting plate (501) is provided with a mounting groove (506) that conforms to the contour of the positioning sleeve (202).

8. The temperature-controlled embedded tube radiant panel according to claim 6, characterized in that, The mounting plate (501) has a plurality of protrusions (505) arranged along the length of the mounting bracket (201) on the side near the temperature control mechanism (2). The protrusions (505) abut against the mounting bracket (201) to form a suitable space between the mounting bracket (201) and the mounting plate (501) for accommodating the positioning sleeve (202).

9. The temperature-controlled embedded tube radiant panel according to claim 6, characterized in that, The temperature control tube (203) is arranged in an S-shape on the radiant plate (1).

10. The temperature-controlled embedded tube radiant panel according to claim 1, characterized in that, On the side edge used for connection between adjacent radiating plates (1), one side is provided with a groove and the other side is provided with a protrusion that matches the groove.