Layered structure of energy gathering cabin of floor heating machine
By adopting a multi-layer component structure and intelligent control in the underfloor heating system, the problems of long heating time and safety hazards in existing underfloor heating systems have been solved, achieving efficient, safe, and durable heating effects and improving the overall performance and long-term benefits of the system.
Patent Information
- Application Number
- CN202423109085.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-17
- Publication Date
- 2026-01-02
- Estimated Expiration
- 2034-12-17
AI Technical Summary
Existing underfloor heating systems lack layered design, resulting in long heating times, high energy consumption, and safety hazards such as pipe pressure accumulation and deformation.
It adopts a multi-layer component structure, including a base layer, waterproof layer, protective layer, insulation layer, aluminum foil layer, wire mesh, underfloor heating pipe, and pipe protection layer. Through the cooperation of these layers, an efficient, safe, and durable heating environment is constructed. The aluminum foil layer is fixed by wire mesh to improve heat conduction performance, and the underfloor heating blocks and concrete layer enhance structural stability and durability. Intelligent control is achieved by combining temperature probes and thermostats.
It achieves stable operation and efficient heating of the underfloor heating system, reduces heat loss, prevents pipe displacement and deformation, improves system safety and service life, and enhances building energy efficiency and comfort.
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Figure CN223755488U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to building material technical field more specifically, the utility model relates to a floor heating machine energy -gathering cabin layered structure. BACKGROUND
[0002] As a popular heating mode, floor heating is more and more popular in modern life due to its high comfort and health, and at the same time, the requirement of heat pump floor heating system is also growing, not only expects it to have the characteristics of energy saving, environmental protection and safety and reliability, but also hopes that the system can be small in size, easy to install and convenient to operate.
[0003] The existing floor heating system lacks layered design, resulting in a long heating time and high energy consumption, in addition, the floor heating pipe will generate pressure during the heating process, and without layering, the internal pressure of the pipe will accumulate, which may cause pipe deformation and increase the risk of safety hazards.
[0004] Therefore, a floor heating machine energy-gathering cabin layered structure is proposed to solve the above problems. SUMMARY
[0005] In order to overcome the above-mentioned defects of the prior art, the utility model provides a floor heating machine energy-gathering cabin layered structure to solve the problems raised in the background art.
[0006] To achieve the above purpose, the utility model provides the following technical scheme: a floor heating machine energy-gathering cabin layered structure, comprising a base layer, an installation slot is formed in the inside of the base layer, the inside of the installation slot is filled with concrete, a waterproof layer is fixedly installed at the bottom of the installation slot, a protective layer is fixedly installed at the top of the waterproof layer, a thermal insulation layer is laid above the protective layer, an aluminum foil layer is laid on the upper surface of the thermal insulation layer, a steel mesh is uniformly laid above the aluminum foil layer, a floor heating pipe is uniformly arranged above the steel mesh, and a pipe protection layer is sleeved on the outside of the floor heating pipe.
[0007] Preferably, the aluminum foil layer is in close contact with the thermal insulation layer.
[0008] Preferably, a floor heating block is uniformly installed on the outside of the pipe protection layer, and the floor heating block is installed on the upper surface of the steel mesh.
[0009] Preferably, a concrete layer is laid above the steel mesh, the inside of the concrete layer is uniformly filled with a filler layer, and a floor decorative plate is fixedly installed above the concrete layer.
[0010] Preferably, corner heat insulation layers are installed at the edges of the base layer, and the number of the corner heat insulation layers is four.
[0011] Preferably, the base layer is detachably mounted with a temperature sensing probe, one side of the temperature sensing probe is fixedly connected with a cold lead, and the top of the cold lead is fixedly installed with a temperature controller.
[0012] The technical effects and advantages of the present application are as follows:
[0013] Compared with the prior art, the layered structure of the energy concentrating cabin of the floor heating machine is matched with each other in the floor heating system by using the multi-layer assembly, and a high-efficiency, safe and durable heating environment is constructed, so that the stable operation and high-efficiency heating of the floor heating system are ensured, and the overall performance and long-term benefits of the floor heating system are ensured by considering the functions and cooperation of these levels.
[0014] Compared with the prior art, the layered structure of the energy concentrating cabin of the floor heating machine has many advantages in the floor heating project by using the steel wire mesh, can effectively fix the aluminum foil layer, improve the heat conduction performance, prevent cracks on the ground due to thermal expansion and contraction, strengthen the tensile force of the cement and improve the bearing capacity and durability of the ground, so that in the project requiring steel wire mesh assistance, the use of steel wire mesh is an important measure to ensure the engineering quality and improve the heating efficiency. BRIEF DESCRIPTION OF DRAWINGS
[0015] Fig. 1 It is a whole three-dimensional structure schematic view of the present application.
[0016] Fig. 2 It is another side three-dimensional structure schematic view of the whole of the present application.
[0017] Fig. 3 It is a base layer internal structure schematic view of the present application.
[0018] The reference signs are: 1, base layer; 2, mounting groove; 3, waterproof layer; 4, protective layer; 5, heat preservation layer; 6, aluminum foil layer; 7, steel wire mesh; 8, floor heating pipe; 9, pipe protection layer; 10, floor heating block; 11, concrete layer; 12, filling layer; 13, floor decorative plate; 14, corner heat insulation layer; 15, temperature sensing probe; 16, cold lead; 17, temperature controller. DETAILED DESCRIPTION
[0019] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, not all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor are within the scope of protection of the present application. Embodiment one
[0020] As shown in the accompanying drawings Figs. 1-3The floor heating machine energy -collecting cabin layered structure shown comprises a base layer 1, the inside of the base layer 1 is provided with a mounting groove 2, the inside of the mounting groove 2 is filled with concrete, the bottom of the mounting groove 2 is fixedly provided with a waterproof layer 3, the top of the waterproof layer 3 is fixedly provided with a protective layer 4, the top of the protective layer 4 is paved with a heat preservation layer 5, the upper surface of the heat preservation layer 5 is paved with an aluminum foil layer 6, the top of the aluminum foil layer 6 is uniformly paved with a steel wire mesh 7, the top of the steel wire mesh 7 is uniformly provided with a floor heating pipe 8, and the outer side of the floor heating pipe 8 is sleeved with a pipe protection layer 9.
[0021] Among them: the waterproof layer 3, the protective layer 4 and the heat preservation layer 5 cooperate with each other in the floor heating system to jointly build an efficient, safe and durable heating environment, ensuring the stable operation and efficient heating of the floor heating system. Considering the role and cooperation of these levels to ensure the overall performance and long-term benefits of the floor heating system, in the project that needs to be assisted by the steel wire mesh 7, the steel wire mesh 7 can effectively fix the aluminum foil layer 6 and fix the aluminum foil layer 6 on the ground to prevent displacement or falling during construction or long-term use, thereby ensuring that the heat radiation can be accurately reflected back to the room and reducing heat loss. Secondly, the steel wire mesh 7 has a very high heat conduction performance, which can quickly transfer heat and also ensure the uniform distribution of heat on the ground, which is particularly important for floor heating projects, which can ensure that the heat emitted by the floor heating pipe 8 can be quickly and evenly transferred to the entire ground, improving the comfort and efficiency of heating. In addition, the steel wire mesh 7 can also strengthen the tensile force of the cement, improve the tensile force and strength of the ground, and ensure that the ground will not deform or be damaged when bearing heavy objects or being used for a long time. At the same time, the steel wire mesh 7 can also enhance the durability of the ground and prolong its service life. Example two
[0022] Based on the embodiment one, the scheme in embodiment one is further refined and introduced in detail in the following specific working mode, such as Figs. 1-3 As shown, see the following description in detail:
[0023] As a preferred embodiment, the aluminum foil layer 6 is closely attached to the heat preservation layer 5; further, the design of the aluminum foil layer 6 reflects heat radiation back to the room, avoiding the unnecessary loss of heat, especially during the floor heating installation process, the aluminum foil tape is not only used for joint treatment, but also maximizes the reduction of heat loss of the floor heating pipe 8 through its reflection characteristics.
[0024] As a preferred embodiment, the outer side of the pipeline protection layer 9 is uniformly provided with a floor heating block 10, and the bottom of the floor heating block 10 is installed on the upper surface of the steel wire mesh 7; further, by providing the floor heating block 10, the floor heating pipe 8 inside the pipeline protection layer 9 can be accurately and stably positioned. These floor heating blocks 10 firmly fix the floor heating pipe 8 in the predetermined position, effectively preventing displacement, loosening or mutual entanglement of the cable during use, and ensuring that the floor heating pipe 8 can maintain its original layout and arrangement, thereby ensuring uniform distribution and efficient transmission of heat. In addition, the floor heating block 10 enhances the safety and reliability of the floor heating pipe 8. Even if various external forces and environmental factors such as temperature changes and ground subsidence are encountered during long-term use, the floor heating block 10 can ensure the stability of the floor heating pipe 8 and prevent it from being damaged due to vibration or pressure. This not only prolongs the service life of the floor heating pipe 8, but also reduces the maintenance and replacement costs caused by cable failure.
[0025] As a preferred embodiment, the upper side of the steel wire mesh 7 is paved with a concrete layer 11, the inside of the concrete layer 11 is uniformly filled with a filling layer 12, and the upper side of the concrete layer 11 is fixedly installed with a floor decorative plate 13; further, the concrete layer 11 plays a key role in protecting the foundation structure. The main function of pouring plain concrete is to provide a solid barrier to prevent the foundation structure from being eroded and damaged by the external environment. The plain concrete layer 11 not only has excellent compression resistance and can effectively disperse and withstand the load from above, but also can effectively isolate the erosion of groundwater, moisture and chemicals, thereby prolonging the service life of the structure. The filling layer 12 above the concrete layer 11 is usually composed of lightweight loose materials, block materials or integral materials, which can achieve good heat and sound insulation effects, reduce the weight of the entire floor, improve the energy efficiency and comfort of the building, and achieve the best filling effect and performance.
[0026] As a preferred embodiment, the edge of the foundation layer 1 is provided with an edge corner heat insulation layer 14, and the number of the edge corner heat insulation layer 14 is four; further, the installation of the edge corner heat insulation layer 14 is crucial to ensure the stability, durability and energy efficiency of the system. It can effectively isolate the heat conduction between the ground and the wall surface, reduce heat loss, provide necessary buffer space for the expansion of the cement heat storage layer, prevent the occurrence of problems such as surface cracking, and at the same time, the combination with plastic film and reflective film provides a strong guarantee for the stability and energy efficiency of the system.
[0027] As a preferred implementation, the base layer 1 can be detachably mounted with a temperature sensing probe 15, one side of the temperature sensing probe 15 is fixedly connected with a cold lead 16, and the top of the cold lead 16 is fixedly installed with a temperature controller 17; further, by setting the temperature sensing probe 15, the temperature can be monitored in real time and accurately, the temperature sensing probe 15 as a temperature sensor can capture the change of the ambient temperature and convert it into an electrical signal for transmission, the electrical signal is then transmitted to the cold lead 16, which plays a role of a bridge, it is responsible for safely and stably transmitting the temperature data collected by the temperature sensing probe 15 to the temperature controller 17, the temperature controller 17 has an alarm function, when the temperature abnormally rises or falls to a dangerous level, it will timely send an alarm to remind the operator to take emergency measures to prevent potential safety accidents or equipment damage.
[0028] The working process of the utility model is as follows: in use, the materials needed to be laid inside the floor heating are arranged, when the materials need to be laid, they are laid in sequence, and the multiple layers cooperate with each other in the floor heating to jointly build an efficient, safe and durable heating environment, ensuring stable operation and efficient heating of the floor heating system, considering the functions and cooperation of these layers to ensure the overall performance and long-term benefits of the floor heating system, the floor heating block 10 is used to position the floor heating pipe 8 inside the pipe protection layer 9, which can ensure the stability and safety of the cable and provide strong guarantee for the long-term stable operation of the geothermal heating system, the combination of the concrete layer 11 and the filling layer 12 realizes the comprehensive improvement of building energy efficiency, comfort and safety through optimized material selection and structure design, finally, the close cooperation of the temperature sensing probe 15, the cold lead 16 and the temperature controller 17 can realize accurate monitoring and intelligent control of the temperature of a specific area.
Claims
1. A layered structure of a radiant floor heating energy focusing cabin, comprising a base layer (1), characterized in that: The inside of the base layer (1) is provided with a mounting groove (2), the inside of the mounting groove (2) is filled with concrete, the bottom of the mounting groove (2) is fixedly provided with a waterproof layer (3), the top of the waterproof layer (3) is fixedly provided with a protection layer (4), the top of the protection layer (4) is paved with a heat preservation layer (5), the top surface of the heat preservation layer (5) is paved with an aluminum foil layer (6), the top of the aluminum foil layer (6) is uniformly paved with a steel wire mesh (7), the top of the steel wire mesh (7) is uniformly provided with a floor heating pipe (8), the outer side of the floor heating pipe (8) is sleeved with a pipeline protection layer (9).
2. The layered structure of the energy concentrating cabin of the floor heating machine according to claim 1, characterized in that: The aluminum foil layer (6) is tightly attached to the heat preservation layer (5).
3. The layered structure of the energy focusing cabin of the floor heating machine according to claim 2, characterized in that: The outer side of the pipeline protection layer (9) is uniformly provided with a floor heating block (10), and the bottom of the floor heating block (10) is installed on the top surface of the steel wire mesh (7).
4. The layered structure of the heat concentrator of the floor heating machine according to claim 3, characterized in that: The top of the steel wire mesh (7) is paved with a concrete layer (11), the inside of the concrete layer (11) is uniformly filled with a filling layer (12), and the top of the concrete layer (11) is fixedly provided with a floor decorative plate (13).
5. The layered structure of the heat concentrator cabin of the floor heating machine according to claim 3, characterized in that: The edges of the base layer (1) are all provided with corner heat insulation layers (14), and the number of the corner heat insulation layers (14) is four.
6. The layered structure of the heat concentrator of the floor heating machine according to claim 3, characterized in that: The top of the base layer (1) is detachably provided with a temperature sensing probe (15), one side of the temperature sensing probe (15) is fixedly connected with a cold lead (16), and the top of the cold lead (16) is fixedly provided with a temperature controller (17).