Building temperature regulation top surface heat preservation radiation system
By using a split-type radiant capillary tube and an aluminum alloy radiant tube cover that can be detachably connected to a heat spreader, the problem of unreasonable radiant structure and easy blockage in existing building temperature-regulating roof insulation radiant systems is solved, achieving a more efficient and stable radiant effect.
Patent Information
- Application Number
- CN202423055269.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-11
- Publication Date
- 2025-11-04
- Estimated Expiration
- 2034-12-11
AI Technical Summary
The existing building temperature-regulating roof insulation radiation system has an unreasonable radiation structure design, the radiation effect needs to be improved, and the capillary radiation tubes are prone to loss of overall function due to local blockage.
The system employs a split-type radiant capillary tube design, combined with a top keel, adjusting plate, heat spreader, radiant tube cover, and return water pipe. The spiral coil section enhances the radiant effect, and the radiant tube cover, made of aluminum alloy, is detachably connected to the heat spreader to prevent local blockages from affecting the overall function.
It improves the radiation effect, avoids the loss of overall radiation function caused by local blockage, and enhances the stability and efficiency of the system.
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Figure CN223512220U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to building temperature adjustment technical field especially relates to a building temperature adjustment top surface heat preservation radiation system. BACKGROUND
[0002] The building temperature adjustment top surface heat preservation radiation system is a kind of efficient indoor environment regulation system, it is mainly through the way of heat radiation to realize the heating or cooling of indoor space, specific function has: 1) efficient heating and cooling: the system passes through the radiation pipe on the ceiling or wall, utilizes hot water or electric heating element to transfer heat to the radiation plate, to realize the heating to indoor space.In summer, system can be cooled to the entire floor through the circulating flow of cold water, and uniformly radiates cooling to the indoor, so that the indoor reaches comfortable temperature.2) temperature distribution is uniform: radiation plate is usually made of aluminum alloy, stainless steel and other materials, has the characteristics of uniform radiation heat, high transmission efficiency.Radiation system laying area is large, and the heat dissipation area is wide, can ensure that indoor temperature distribution is uniform, reduces the heat loss caused by air flow.3) improve comfort: human body is more sensitive to heat radiation than air convection, so creating a comfortable radiation environment is a more effective heat transfer mode.4) energy saving and environmental protection: traditional radiator needs higher water supply temperature, and radiation system can greatly reduce water supply temperature due to very large heat exchange surface, to reduce operating cost. Low-grade heat source can be used to improve the energy efficiency ratio of heating unit, and energy consumption is greatly saved.5) does not occupy indoor space: radiation system is usually installed in the ceiling or wall inside, does not occupy indoor space, and does not damage building appearance.
[0003] The existing building temperature adjustment top surface heat preservation radiation system has the following problems when in use: first, the radiation structure design is not reasonable enough, and the radiation effect still needs to be further improved;Second, the capillary radiation pipe is of integrated structure, and the overall radiation function is lost due to local blockage. Therefore, it needs to be optimized and improved. UTILITY MODEL CONTENT
[0004] The utility model aims at overcoming the above problems existing in traditional technology, and provides a building temperature adjustment top surface heat preservation radiation system.
[0005] To realize the above technical purpose, reach the above technical effect, the utility model is through following technical scheme realization:
[0006] The utility model relates to a kind of building temperature adjustment top surface heat preservation radiation systems, including top surface keel, leveling plate, even heat plate, radiation pipe cover, radiation capillary, radiation water distributor and return water pipeline, the top surface keel is connected with top surface matrix by hanging rod, the lower end of the top surface keel is fixed with leveling plate, the lower end of the leveling plate is installed with even heat plate, the lower end of the even heat plate is evenly distributed with several rows of radiation pipe cover, radiation capillary is jointly installed in the radiation pipe cover in same row, the radiation capillary includes water inlet branch and the return water branch communicated with it, the water inlet branch is equipped with several spiral coil parts that enter the inner chamber of radiation pipe cover and are close to the inner chamber wall of radiation pipe cover setting, each output end of the radiation water distributor is communicated with the water inlet branch of corresponding radiation capillary respectively, the return water pipeline is communicated with the return water branch of corresponding radiation capillary respectively.
[0007] Further, in the above-mentioned building temperature adjustment top surface heat preservation radiation system, the leveling plate is a European pine board or a woodworking board.
[0008] Further, in the above-mentioned building temperature adjustment top surface heat preservation radiation system, the even heat plate is fixedly connected with the leveling plate by fastening screws.
[0009] Further, in the above-mentioned building temperature adjustment top surface heat preservation radiation system, the lower side of the even heat plate is provided with a plurality of rows of clamping grooves for conveniently installing the water inlet branch of the radiation capillary.
[0010] Further, in the above-mentioned building temperature adjustment top surface heat preservation radiation system, the radiation pipe cover is fixedly connected with the even heat plate by welding.
[0011] Further, in the above-mentioned building temperature adjustment top surface heat preservation radiation system, the radiation pipe cover is detachably connected with the even heat plate by clamping, the radiation pipe cover is provided with a lock hole near the upper end, and the lower side of the even heat plate is provided with a clamping piece with a lock head, when the radiation pipe cover is sleeved on the outer side of the clamping piece, the lock head of the clamping piece can be clamped into the corresponding lock hole.
[0012] Further, in the above-mentioned building temperature adjustment top surface heat preservation radiation system, the inner diameter of the radiation capillary is 3-5 mm.
[0013] Further, in the above-mentioned building temperature adjustment top surface heat preservation radiation system, the even heat plate, the radiation pipe cover and the radiation capillary are all made of aluminum alloy material.
[0014] The utility model has the advantages that:
[0015] The utility model discloses reasonable structure design, and its main by top keel, leveling plate, even heat plate, radiation pipe cover, radiation capillary, radiation water separator and return water pipeline constitute, utilize top keel and relevant hanger pole to provide hanger support, utilize leveling plate to increase top surface width structural strength, utilize even heat plate, radiation pipe cover, radiation capillary, radiation water separator and the radiation unit of return water pipeline constitution to realize heat preservation radiation, wherein the spiral coil portion of radiation pipe cover and radiation capillary cooperates with each other, can improve radiation effect greatly, and radiation capillary adopts split type setting simultaneously, when partiality appears the block, will not lead to whole radiation function loss.
[0016] Of course, any product implementing the utility model does not necessarily need to achieve all the advantages above simultaneously. BRIEF DESCRIPTION OF DRAWINGS
[0017] In order to more clearly illustrate the technical scheme of the embodiments of the utility model, the following will briefly introduce the drawing needed to be used in the embodiment description, and obviously, the drawing in the following description is only some embodiments of the utility model, and for those skilled in the art, other drawings can also be obtained according to these drawings without creating labor.
[0018] Figure 1 It is the whole structure schematic diagram of the utility model;
[0019] Figure 2 It is the bottom structure schematic diagram of the whole of the utility model;
[0020] Figure 3 It is the assembly schematic diagram of radiation pipe cover and radiation capillary in the utility model;
[0021] Figure 4 It is the structure schematic diagram of radiation capillary in the utility model;
[0022] Figure 5 It is the half cut schematic diagram of water inlet branch pipe in radiation capillary in the utility model;
[0023] Figure 6 It is the structure schematic diagram of radiation pipe cover in the embodiment one of the utility model;
[0024] Figure 7 It is the structure schematic diagram of radiation pipe cover in the embodiment two of the utility model;
[0025] In the drawings, the components represented by each reference sign are as follows:
[0026] 1-Top keel, 2-Adjustable plate, 3-Heat spreader, 4-Radiant tube cover, 5-Radiant capillary tube, 501-Inlet branch pipe, 502-Return branch pipe, 503-Spiral coil section, 6-Radiant water distributor, 7-Return pipe, 8-Key hole, 9-Snap-fit fitting, 10-Lock head. 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 skilled in the art without creative effort are within the protection scope of the present utility model.
[0028] Example 1
[0029] like Figures 1-6 As shown, this embodiment is a building temperature-regulating roof insulation radiant system, including a roof keel 1, an adjusting plate 2, a heat spreader 3, radiant tube covers 4, radiant capillary tubes 5, a radiant water distributor 6, and a return water pipe 7. The roof keel 1 is connected to the roof base via hanging rods. The adjusting plate 2 is fixed to the lower end of the roof keel 1, and the heat spreader 3 is installed at the lower end of the adjusting plate 2. Several rows of radiant tube covers 4 are evenly distributed at the lower end of the heat spreader 3, and radiant capillary tubes 5 are installed in the same row of radiant tube covers 4. The radiant capillary tube 5 includes an inlet branch pipe 501 and a return water branch pipe 502 connected to it. The inlet branch pipe 501 is provided with several spiral coil sections 503 extending into the inner cavity of the radiant tube cover 4 and close to the inner wall of the radiant tube cover 4. Each output end of the radiant water distributor 6 is connected to the inlet branch pipe 501 of the corresponding radiant capillary tube 5, and the return water pipe 7 is connected to the return water branch pipe 502 of the corresponding radiant capillary tube 5. The radiant water distributor 6 and the return water pipe 7 are conventional components in this field, and their specific structures will not be described in detail.
[0030] In this embodiment, the adjusting plate 2 is OSB or plywood.
[0031] In this embodiment, the heat spreader 3 is fixedly connected to the adjusting plate by fastening screws.
[0032] In this embodiment, the lower side of the heat spreader 3 is provided with several rows of snap-fit grooves to facilitate the installation of the water inlet branch pipe 501 in the radiant capillary tube 5.
[0033] In this embodiment, the radiant tube cover 4 is fixedly connected to the heat spreader 3 by welding.
[0034] In this embodiment, the inner diameter of the radiative capillary 5 is 3-5 mm.
[0035] In this embodiment, the heat spreader 3, the radiant tube cover 4, and the radiant capillary tube 5 are all made of aluminum alloy.
[0036] A specific application of this embodiment is as follows: This system mainly consists of a top keel 1, an adjusting plate 2, a heat spreader 3, a radiant tube cover 4, a radiant capillary tube 5, a radiant water distributor 6, and a return water pipe 7. The top keel 1 and related hanging rods provide hanging support, the adjusting plate 2 increases the structural strength of the top surface width, and the radiant unit composed of the heat spreader 3, the radiant tube cover 4, the radiant capillary tube 5, the radiant water distributor 6, and the return water pipe 7 achieves heat preservation and radiation. The radiant tube cover 4 and the spiral coil section 503 of the radiant capillary tube 5 cooperate with each other to greatly improve the radiation effect. At the same time, the radiant capillary tube 5 is set in a split manner, so when a blockage occurs in a certain area, the overall radiation function will not be lost.
[0037] Example 2
[0038] The difference between this embodiment and Embodiment 1 is as follows: Figure 7 As shown, the radiant tube cover 4 is detachably connected to the heat spreader plate 3 via a snap-fit connection. The radiant tube cover 4 has two symmetrical locking holes 8 near its upper end. The heat spreader plate 3 has a snap-fit component 9 with a locking head 10 on its lower side. When the radiant tube cover 4 is fitted onto the outside of the snap-fit component 9, the locking head 10 of the snap-fit component 9 will shift due to compression. When the locking head 10 of the snap-fit component 9 slides close to the corresponding locking hole 8, the locking head 10 can engage with the corresponding locking hole 8 under the deformation recovery action of the snap-fit component 9. The length direction of the line connecting the two locking holes 8 is perpendicular to the length direction of the water inlet branch pipe 501 in the radiant capillary tube 5.
[0039] In this embodiment, since the radiation tube cover 4 and the heat spreader 3 are detachable, it is convenient to replace the radiation capillary tube 5 later.
[0040] The preferred embodiments of this utility model disclosed above are merely illustrative of the present utility model. These preferred embodiments do not exhaustively describe all details, nor do they limit the utility model to specific implementation methods. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of this utility model, thereby enabling those skilled in the art to better understand and utilize it. This utility model is limited only by the claims and their full scope and equivalents.
Claims
1. A building temperature-regulating roof insulation and radiant heating system, characterized in that, The system includes a top keel, an adjusting plate, a heat spreader, radiant tube covers, radiant capillaries, a radiant water distributor, and return water pipes. The top keel is connected to the top base via hanging rods. An adjusting plate is fixed to the lower end of the top keel, and a heat spreader is installed at the lower end of the adjusting plate. Several rows of radiant tube covers are evenly distributed at the lower end of the heat spreader. Radiant capillaries are installed in the same row of radiant tube covers. Each radiant capillary includes an inlet branch pipe and a return branch pipe connected to it. The inlet branch pipe has several spiral coil sections extending into the inner cavity of the radiant tube cover and close to the inner wall of the radiant tube cover. Each output end of the radiant water distributor is connected to the inlet branch pipe of the corresponding radiant capillary. The return water pipe is connected to the return branch pipe of the corresponding radiant capillary.
2. The building temperature-regulating roof insulation and radiant system according to claim 1, characterized in that, The adjusting plate is OSB or plywood.
3. The building temperature-regulating roof insulation and radiant system according to claim 1, characterized in that, The heat spreader is fixedly connected to the adjusting plate by fastening screws.
4. The building temperature-regulating roof insulation and radiant system according to claim 1, characterized in that, The lower side of the heat spreader is provided with several rows of snap-fit grooves to facilitate the installation of the water inlet branch pipes in the radiant capillary tubes.
5. The building temperature-regulating roof insulation and radiant system according to claim 1, characterized in that, The radiant tube cover is fixedly connected to the heat spreader plate by welding.
6. The building temperature-regulating roof insulation and radiant system according to claim 1, characterized in that, The radiant tube cover is detachably connected to the heat spreader plate by a snap-fit mechanism. The radiant tube cover has a locking hole near the upper port. The heat spreader plate has a snap-fit component with a locking head on its lower side. When the radiant tube cover is fitted onto the outside of the snap-fit component, the locking head of the snap-fit component can be engaged into the corresponding locking hole.
7. The building temperature-regulating roof insulation and radiant system according to claim 1, characterized in that, The inner diameter of the radiative capillary is 3-5 mm.
8. The building temperature-regulating roof insulation and radiant system according to claim 1, characterized in that, The heat spreader, radiant tube cover, and radiant capillary are all made of aluminum alloy.