Indoor heating device for green building

By using a solar-assisted heating device with energy-absorbing panels and clamping devices, the problem of high energy consumption of existing heating devices is solved, achieving environmentally friendly and energy-saving indoor heating, adapting to different lighting conditions, and meeting the requirements of green buildings.

CN224680965UActive Publication Date: 2026-08-25SHANGHAI BAOYE GRP CORP
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Patent Information

Application Number
CN202522016611.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-19
Publication Date
2026-08-25
Estimated Expiration
2035-09-19

AI Technical Summary

Technical Problem

Existing building heating systems rely on large amounts of hot water, steam, or electricity, failing to meet the low energy consumption and environmental protection requirements of green buildings.

Method used

The solar-assisted heating device utilizes the greenhouse effect to absorb ambient heat through energy-absorbing panels, which are then fixed in place by clamping devices. Combined with an electric push rod and a limiting groove design, this achieves efficient utilization of natural energy.

Benefits of technology

It reduces reliance on traditional energy sources, achieves environmentally friendly and energy-saving indoor heating, adapts to different lighting conditions, flexibly switches heating modes, and meets the requirements of green buildings.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to in the field of building construction especially, relate to a kind of indoor heating device of green building. It mainly aims at the problem of saving resources, protecting environment and reducing pollution, and proposes the following technical scheme: heating device, air outlet, infrared receiver and auxiliary device;The auxiliary device is composed of clamping device and energy-absorbing plate, the clamping device is used to fix the energy-absorbing plate, and the energy-absorbing plate is used to absorb environmental thermal energy and transfer to the heating device.The utility model is a kind of device using solar energy and other natural energy auxiliary heating, realizes the indoor temperature rise of environmental protection and energy saving by greenhouse effect, reduces energy consumption, and meets the core demand of green building.
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Description

Technical Field

[0001] This utility model relates to the field of building construction, and in particular to an indoor heating device for green buildings. Background Technology

[0002] Existing building heating systems improve indoor dryness by mixing atomized water with heating air and by using filters and activated carbon to absorb odors.

[0003] Existing technology has shortcomings: it still relies on energy (such as electric-driven vibrators and atomizing nozzles), and has not solved the problem of consuming large amounts of hot water, steam or electricity during the heating process, which does not meet the higher requirements of green buildings for "low energy consumption and environmental protection".

[0004] This invention addresses the problem that conventional heating devices in existing technologies rely on large amounts of hot water, steam, or electricity, which does not meet the goals of green building "resource conservation and environmental protection." It provides a device that uses natural energy sources such as solar energy to assist in heating, achieving environmentally friendly and energy-saving indoor heating through the greenhouse effect, reducing energy consumption, and meeting the core requirements of green building. Utility Model Content

[0005] The purpose of this invention is to provide a device that uses natural energy sources such as solar energy to assist in heating, thereby achieving environmentally friendly and energy-saving indoor heating through the greenhouse effect, reducing energy consumption, and meeting the core requirements of green building.

[0006] This utility model provides an indoor heating device for green buildings, including: a heating device, an air outlet, an infrared receiver, and an auxiliary device; the auxiliary device consists of a clamping device and an energy-absorbing plate, the clamping device is used to fix the energy-absorbing plate, and the energy-absorbing plate is used to absorb ambient heat energy and transfer it to the heating device.

[0007] Optionally, the clamping device includes a housing, and an electric push rod is fixedly disposed on the inner side wall of the housing. The end of the electric push rod is connected to the clamping plate, and the electric push rod can drive the clamping plate to move in a direction closer to or away from the energy-absorbing plate.

[0008] Optionally, the outer casing is provided with a limiting groove, which is used to limit the movement trajectory of the clamping plate.

[0009] Optionally, at least two clamping plates are provided inside the housing, and the electric push rods are correspondingly disposed outside the limiting grooves. The end of each electric push rod is connected to a clamping plate so as to fix the energy-absorbing plate in cooperation through multiple clamping plates.

[0010] Optionally, the limiting groove is located in the middle of the outer shell, and a glass plate is inserted into the limiting groove. One end of the clamp is connected to the electric push rod, and the other end can abut against the side wall of the glass plate to fix the glass plate.

[0011] Optionally, the energy-absorbing plate is composed of a glass plate and carbon nanotube black paint, wherein the carbon nanotube black paint is disposed on the glass plate, and the outer surface of the glass plate is coated with carbon nanotube black paint, and the carbon nanotube black paint is used to enhance the absorption capacity of environmental heat energy.

[0012] Optionally, both ends of the glass plate are coated with carbon nanotube black paint, which is an outer layer applied to both ends of the glass plate to achieve double-sided absorption of ambient heat energy.

[0013] Optionally, a protective layer is provided on the outside of the carbon nanotube black paint coating. The protective layer is a transparent resin layer, which is used to protect the carbon nanotube black paint and does not hinder the incidence of ambient heat energy.

[0014] Optionally, the glass plate has a channel inside along its length or width direction for airflow, so as to transfer the light and heat energy absorbed by the energy-absorbing plate to the air and deliver it to the heating device.

[0015] Optionally, a metal tube is fixedly installed inside the channel of the glass plate. The metal tube is attached to the inner wall of the channel to enhance the thermal conductivity of the air inside the channel and accelerate the transfer of heat energy.

[0016] Beneficial technical effects: 1. Environmental protection and energy saving: Utilizing solar energy (greenhouse effect) to assist heating reduces dependence on traditional energy sources (hot water, steam, electricity), which is in line with the concept of green building.

[0017] 2. Stable structure: The electric push rod and clamping plate work together to provide reliable clamping for the energy-absorbing plate. The limiting groove design supports the combined use of multiple energy-absorbing plates to improve energy absorption efficiency.

[0018] 3. Flexible switching: The energy-absorbing panels can be freely installed or removed according to the lighting conditions, taking into account both natural heating and traditional heating modes, making it highly adaptable.

[0019] Other features and advantages of the invention will become clear from the following detailed description of exemplary embodiments of the invention with reference to the accompanying drawings. Attached Figure Description

[0020] Figure 1 A schematic diagram of the structure of a visually controlled balloon device of this invention; Figure 2 A front view schematic diagram of the structure of an auxiliary device for a visually controlled balloon device of the present invention; Figure 3 A top view schematic diagram of the structure of a visually controlled balloon clamping device of this novel invention; Figure 4 A schematic diagram of the structure of the energy-absorbing plate of the visually controllable balloon device of this novel invention; Figure 5 A schematic diagram of the structure of the energy-absorbing plate of the visually controllable balloon device of this novel invention; Figure 6 A schematic diagram of the structure of the energy-absorbing plate of the visually controllable balloon device of this novel invention; Figure 7 A partial structural schematic diagram of the energy-absorbing plate of a visually controllable balloon device of this novel invention; Figure label: 1. Heating device; 2. Air outlet; 3. Infrared receiver; 4. Auxiliary device; 41. Clamping device; 42. Energy-absorbing plate; 411. Outer shell; 412. Electric push rod; 413. Clamping plate; 414. Limiting groove; 421. Glass plate; 422. Carbon nanotube black paint; 423. Channel; 424. Copper pipe; 425. Stainless steel pipe; 426. Protective layer. Detailed Implementation

[0021] The technical solution of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are some embodiments of this utility model, but not all embodiments.

[0022] The components of the present invention embodiments described and shown in the accompanying drawings can typically be arranged and designed in a variety of different configurations. Therefore, the following detailed description of the embodiments of the present invention provided in the drawings is not intended to limit the scope of the claimed invention, but merely to illustrate selected embodiments of the invention.

[0023] Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.

[0024] In the description of this utility model, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicating the orientation or positional relationship, are based on the orientation or positional relationship shown in the accompanying drawings and 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. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0025] In the description of this utility model, it should be noted that, 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 mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0026] like Figures 1 to 7 As shown, this embodiment provides an indoor heating device for a green building, which includes a heating device 1, an air outlet 2, an infrared receiver 3, and an auxiliary device 4; the auxiliary device 4 consists of a clamping device 41 and an energy-absorbing plate 42, the clamping device 41 is used to fix the energy-absorbing plate 42, and the energy-absorbing plate 42 is used to absorb ambient heat energy and transfer it to the heating device 1.

[0027] The heating device 1 consists of a heating unit 1, an air outlet 2, an infrared receiver 3, and an auxiliary device 4. The auxiliary device 4 includes a clamping device 41 and an energy-absorbing plate 42, and all parts work together. An electric push rod 412 is fixed to the inner wall of the outer shell 411 of the clamping device 41, and the top of the electric push rod 412 is connected to a clamping plate 413. A limiting groove 414 is opened in the middle of the outer shell 411. The energy-absorbing plate 42 is composed of a glass plate 421 and carbon nanotube black paint 422, and the outer side of the glass plate 421 is sprayed with carbon nanotube black paint 422.

[0028] Its working principle is as follows: When there is sunlight, the heating device 1 is installed near the window, the glass plate 421 is inserted into the limiting groove 414, and the electric push rod 412 is activated to fix the glass plate 421 in place. The carbon nanotube black paint 422 absorbs and stores solar energy, using the greenhouse effect to raise the indoor temperature. At night or when there is insufficient sunlight, a signal is sent through an external controller, which is received by the infrared receiver 3 and activates the heating device. Warm air is discharged from the air outlet 2 to regulate the indoor temperature.

[0029] As shown in 1 and 7, in one example, an electric push rod 412 is fixedly installed on the inner wall of the housing 411. The end of the electric push rod 412 is connected to the clamping plate 413, and the electric push rod 412 can drive the clamping plate 413 to move towards or away from the energy-absorbing plate. When the energy-absorbing plate 42 needs to be placed into the limiting groove 414, the electric push rod 412 is retracted to its minimum stroke position. Then, the energy-absorbing plate 42 is placed into the limiting groove 414, and the electric push rod 412 is activated to lock the energy-absorbing plate 42 in place. The energy-absorbing plate 42 is movably installed inside the limiting groove 414, and this device can be replaced according to actual conditions. The limiting groove 414 is used to limit the movement trajectory of the clamping plate 413. The clamping plate 413 is fixedly installed on the side wall of the limiting groove 414, and the other end of the clamping plate is connected to the end of the electric push rod 412. The clamping plate 413 is positioned outside the limiting groove 414, and will not interfere with the energy-absorbing plate 42 when it is placed.

[0030] Electric push rods 412 are correspondingly disposed outside the limiting groove 414, and the end of each electric push rod 412 is connected to a clamping plate 413 to fix the energy-absorbing plate 42 through the cooperation of multiple clamping plates 413. Since the length of the energy-absorbing plate 42 needs to be designed according to the actual scenario, multiple clamping plates 413 and electric push rods 412 need to be connected together for use and need to be started or stopped synchronously. The clamping of multiple electric push rods 412 provides more stable protection and clamping for the energy-absorbing plate 42. The energy-absorbing plate 42 can also be arranged in multiple units according to the actual situation. A glass plate is inserted into the limiting groove 414. One end of the clamping plate 413 is connected to the electric push rod 412, and the other end can abut against the side wall of the glass plate 421 to fix the glass plate 421.

[0031] As shown in Figures 2 and 5, in one example, the energy-absorbing plate 42 is composed of a glass plate and carbon nanotube black paint 422. The carbon nanotube black paint 422 is disposed on the glass plate 421, and the outer surface of the glass plate 422 is coated with carbon nanotube black paint 422. The carbon nanotube black paint 422 is used to enhance the absorption capacity of ambient heat energy. Carbon nanotube black paint 422 is a novel high-performance heat-absorbing material. By coating the glass plate 421 with carbon nanotube black paint 422, under sufficient sunlight, the carbon nanotube black paint 422 generates heat energy and stores it in the energy storage device of the heating device. The glass plate has a particularly high light transmittance. Light refracted onto the inner surface of the carbon nanotube black paint 422 in contact with the glass plate 421 can also generate heat energy, greatly improving energy efficiency. Both ends of the glass plate 421 are coated with carbon nanotube black paint 422, which is the outer layer coated on both ends of the glass plate 421 to achieve double-sided absorption of ambient heat energy. To achieve higher production efficiency, carbon nanotube black paint 422 is applied to both sides of the glass plate 421, effectively doubling the energy absorption efficiency. Since the sides of the glass plate 421 are coated with carbon nanotube black paint 422, and the remaining outer frame lacks light-blocking materials or other materials, light still penetrates the interior, thus increasing the production area.

[0032] As shown in 2 and 7, in one example, a protective layer 426 is provided on the outside of the carbon nanotube black paint 422. The protective layer 426 is a transparent resin layer, which protects the carbon nanotube black paint 422 and does not obstruct the incident light and heat energy from the environment. Since the carbon nanotube black paint 422 is provided on the outside of the glass plate 421, to prevent the carbon nanotube black paint 422 from peeling off, a highly transparent material, preferably a transparent resin material, is provided on the outside of the carbon nanotube black paint 422. It has excellent light transmittance, high temperature resistance, low temperature resistance, acid and alkali resistance, and good solvent resistance. It can be used both indoors and outdoors and is also not afraid of being washed.

[0033] The glass plate 421 has channels 423 arranged along its length or width. These channels 423 allow airflow to transfer the light and heat energy absorbed by the energy-absorbing plate 42 to the air and then to the heating device 1. To improve the efficiency of light and heat energy collection, multiple channels 423 are formed in the middle of the glass plate to quickly collect heat energy through gas or liquid into the energy storage device within the heating device. A metal tube is fixedly installed inside the channels 423 of the glass plate 421. The metal tube is fitted to the inner wall of the channel to enhance the thermal conductivity of the air within the channel and accelerate heat transfer. Due to the superior thermal conductivity of metal, the metal tube is placed inside the channels of the glass plate 421. The metal conduit is connected to the heating device. The metal conduit can be made of copper, aluminum, iron, or stainless steel. The optimal solution is to place a thin layer of stainless steel 425 inside a copper conduit. Placing the stainless steel 425 inside the copper tube 424 provides good thermal conductivity and effectively prevents corrosion.

[0034] In this embodiment:

[0035] The core components of the overall structure are: heating device 1, air outlet 2, infrared receiver 3, and auxiliary device 4 (including clamping device 41 and energy-absorbing plate 42). Auxiliary device 4: Clamping device 41, consisting of a housing 411, electric push rod 412, clamping plate, and limiting groove 414. The electric push rod 412 drives the clamping plate to hold the energy-absorbing plate 42. The limiting groove 414 can hold three energy-absorbing plates. A soft padding layer is provided at the front end of the clamping plate for stable fixation. Energy-absorbing plate 42: Includes glass plate 421 and carbon nanotube black paint 422. The front and rear ends of the glass plate 421 are sprayed with carbon nanotube black paint 422 to enhance the absorption and energy storage effect of sunlight.

[0036] The working principle is as follows: Solar energy is utilized by installing the device near the window. The energy-absorbing panel absorbs sunlight through carbon nanotube black paint, and uses the greenhouse effect to raise the indoor temperature, achieving natural heating without additional energy consumption.

[0037] Electric clamping: The electric push rod 412 drives the clamping plate to clamp the energy-absorbing plate, ensuring its stable operation; the energy-absorbing plate can be removed when not in use.

[0038] Backup heating: At night or when there is insufficient light, the heating device 1 is activated by receiving external signals through the infrared receiver 3, and warm air is discharged from the air outlet 2 as a supplementary heating method.

[0039] The above specific embodiments are merely optional embodiments of this utility model. Based on the technical solution of this utility model and the relevant teachings of the above embodiments, those skilled in the art can make various alternative improvements and combinations to the above specific embodiments.

Claims

1. An indoor heating device for green buildings, characterized in that, include: The heating device includes an air outlet, an infrared receiver, and an auxiliary device. The auxiliary device consists of a clamping device and an energy-absorbing plate. The clamping device is used to fix the energy-absorbing plate, and the energy-absorbing plate is used to absorb ambient heat energy and transfer it to the heating device.

2. The indoor heating device for green buildings according to claim 1, characterized in that, The clamping device includes a housing, and an electric push rod is fixedly installed on the inner side wall of the housing. The end of the electric push rod is connected to the clamping plate, and the electric push rod can drive the clamping plate to move in a direction closer to or away from the energy-absorbing plate.

3. The indoor heating device for green buildings according to claim 2, characterized in that, The outer shell is provided with a limiting groove, which is used to limit the movement trajectory of the clamping plate.

4. The indoor heating device for green buildings according to claim 3, characterized in that, At least two clamping plates are provided inside the housing, and the electric push rods are correspondingly arranged outside the limiting grooves. The end of each electric push rod is connected to a clamping plate so that the energy-absorbing plate can be fixed in cooperation through multiple clamping plates.

5. The indoor heating device for green buildings according to claim 4, characterized in that, The limiting groove is located in the middle of the outer shell, and a glass plate is inserted into the limiting groove. One end of the clamp is connected to the electric push rod, and the other end can abut against the side wall of the glass plate to fix the glass plate.

6. The indoor heating device for green buildings according to claim 1 or 5, characterized in that, The energy-absorbing plate is composed of a glass plate and carbon nanotube black paint. The carbon nanotube black paint is disposed on the glass plate, and the outer surface of the glass plate is coated with carbon nanotube black paint.

7. The indoor heating device for green buildings according to claim 6, characterized in that, Both ends of the glass plate are coated with carbon nanotube black paint, which is the outer layer coated on both ends of the glass plate.

8. The indoor heating device for green buildings according to claim 7, characterized in that, The outer side of the carbon nanotube-coated black paint is provided with a protective layer, which is a transparent resin layer.

9. The indoor heating device for green buildings according to claim 8, characterized in that, The glass plate has channels along its length or width for airflow, so as to transfer the heat energy absorbed by the energy-absorbing plate to the air and deliver it to the heating device.

10. The indoor heating device for green buildings according to claim 9, characterized in that, A metal tube is fixedly installed inside the channel of the glass plate, and the metal tube is fitted to the inner wall of the channel.