Environment-friendly energy-saving heater structure

By incorporating a comb-shaped conductive plate and a dust removal structure into the heater, the problems of low thermal conductivity and high energy consumption in traditional heaters are solved. This allows the heater technology to be applied to address the technical challenges of traditional conductive plates, thereby improving thermal conductivity and equipment stability.

CN223869306UActive Publication Date: 2026-02-03AIKSEN (JIANGSU) ELECTRIC TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202520268905.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-20
Publication Date
2026-02-03
Estimated Expiration
2035-02-20

AI Technical Summary

Technical Problem

Traditional heaters suffer from significant energy loss and low thermal conductivity during the heat conduction process, resulting in high energy consumption.

Method used

An environmentally friendly and energy-saving heater structure was designed. By setting comb grooves inside the conductive plate to form a comb-like structure to increase the heat conduction area, and wrapping the outside of the conductive plate with an insulating layer to prevent leakage, a dust removal structure is set to remove dust from the surface of the conductive plate and keep the heat dissipation channel unobstructed.

Benefits of technology

This improves the safety of the conductive plate and prevents leakage. The application of the conductive plate to the outside of the conductive plate enhances its safety, demonstrating its thermal conductivity and equipment stability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of heaters, and provides an environment-friendly energy-saving heater structure, which comprises a heater main body and a heat conduction structure, an opening is arranged on one side of the heater main body, a grating is arranged in the opening, spring grooves are arranged at the edge positions of the outer side of the opening in the heater main body, and the heat conduction structure is arranged in the spring grooves. Spring grooves are formed in the heater body, telescopic springs are fixed in the spring grooves, a circuit board is fixed in the heater body, a heat conduction structure is fixedly installed on one side of the circuit board, and heat dissipation grooves are evenly formed in the other side of the heater body. According to the utility model, the heat conduction structure is arranged, and a plurality of groups of comb flow grooves are arranged in the current-conducting plate to form a comb-shaped structure, so that the heat conduction area of the current-conducting plate is increased through the unique comb-shaped structure of the current-conducting plate, and heat can be transferred to each part of the heater more quickly and more uniformly. Meanwhile, the use of the insulating layer ensures the safety of the current-conducting plate and prevents the occurrence of electric leakage.
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Description

Technical Field

[0001] This utility model relates to the field of heater technology, and in particular to an environmentally friendly and energy-saving heater structure. Background Technology

[0002] With the global energy crisis becoming increasingly severe, energy conservation and environmental protection have become major trends in various industries. As a commonly used appliance in daily life, the energy consumption of heaters has attracted much attention.

[0003] Traditional heaters suffer from significant energy loss and low thermal conductivity during heat conduction, resulting in high energy consumption. To address this issue, this technology proposes an environmentally friendly and energy-saving heater structure. This design aims to optimize the heat conduction path and reduce energy loss to achieve energy savings, thereby improving thermal conductivity and minimizing energy loss. Utility Model Content

[0004] The purpose of this invention is to provide an environmentally friendly and energy-saving heater structure to solve the problem that existing heater structures are not conducive to energy saving.

[0005] To solve the above-mentioned technical problems, this utility model provides the following technical solution: an environmentally friendly and energy-saving heater structure, including a heater body and a heat-conducting structure;

[0006] An opening is provided on one side of the heater body, and a grid is installed inside the opening. Spring grooves are provided at the outer edge of the opening inside the heater body, and telescopic springs are fixed inside the spring grooves. A circuit board is fixed inside the heater body, and a heat-conducting structure is fixed on one side of the circuit board. The heat-conducting structure includes a conductive plate fixed to one side of the circuit board. A combing groove is provided inside the conductive plate, and a welding point is provided on the top of the conductive plate. An insulating layer is wrapped around the outside of the conductive plate.

[0007] Preferably, the grille and the spring groove form a telescopic structure through a telescopic spring, one end of the grille abuts against one end of the telescopic spring, and heat dissipation grooves are evenly arranged on the other side of the heater body.

[0008] Preferably, the conductive plates are symmetrically distributed on one side of the circuit board, and the combing grooves are evenly distributed at the bottom of the conductive plates, forming a comb-like structure through the combing grooves.

[0009] Preferably, the conductive plate and the circuit board are fixedly connected by solder points, the conductive plate is made of copper, and the insulating layer is made of ceramic.

[0010] Preferably, a dust removal structure is fixed inside the heater body. The dust removal structure includes a bidirectional lead screw installed inside the heater body. A guide rod is fixed on one side of the bidirectional lead screw. A first combing plate and a second combing plate are installed on the outside of the bidirectional lead screw and the guide rod. A rotating block is fixed at one end of the bidirectional lead screw at the top of the heater body.

[0011] Preferably, the bidirectional lead screw and guide rod are symmetrically distributed inside the heater body. The two ends of the bidirectional lead screw pass through the interior of the heater body and are rotatably connected to the interior of the heater body. The two ends of the guide rod are fixedly connected to the two ends inside the heater body.

[0012] Preferably, the first and second combing plates are symmetrically distributed on the outside of the bidirectional lead screw and the guide rod. The first and second combing plates are threadedly connected to the bidirectional lead screw. Soft brushes are fixed on the side of the first and second combing plates near the conductive plate. One side of the first and second combing plates abuts against one side of the conductive plate.

[0013] The present invention provides an environmentally friendly and energy-saving heater structure, the advantages of which are:

[0014] By incorporating a heat-conducting structure, and by setting multiple sets of comb grooves inside the conductive plate to form a comb-like structure, the conductive plate increases the heat-conducting area through its unique comb-like structure, allowing heat to be transferred to all parts of the heater more quickly and evenly. At the same time, the use of an insulating layer ensures the safety of the conductive plate and prevents leakage.

[0015] By incorporating a dust removal structure, soft bristles are fixed to one side of both the first and second combing plates. The movement of the first and second combing plates cleans the dust on the surface of the conductive plate, preventing dust from obstructing the heat dissipation channel and causing the temperature of the conductive plate 701 and its electronic components to rise. By cleaning the dust, the heat dissipation channel can be kept unobstructed, ensuring that heat can be dissipated in a timely manner, thereby improving the stability and reliability of the equipment. Attached Figure Description

[0016] Figure 1 This is a frontal cross-sectional view of the present invention.

[0017] Figure 2 For the present utility model Figure 1 Enlarged structural diagram at point A in the middle;

[0018] Figure 3 This is a frontal cross-sectional view of the present invention.

[0019] Figure 4This is a side view sectional structural diagram of the present invention;

[0020] Figure 5 This is a front view cross-sectional schematic diagram of the heat-conducting structure of this utility model.

[0021] The following are the annotations in the figure: 1. Heater body; 2. Opening; 3. Grille; 4. Spring groove; 5. Telescopic spring; 6. Circuit board; 7. Heat-conducting structure; 701. Conductive plate; 702. Combing groove; 703. Welding point; 704. Insulation layer; 8. Dust removal structure; 801. Bidirectional lead screw; 802. Guide rod; 803. First combing plate; 804. Second combing plate; 805. Rotating block; 9. Heat dissipation groove. Detailed Implementation

[0022] 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 protection scope of the present utility model.

[0023] Please see Figure 1-5 The present invention provides an environmentally friendly and energy-saving heater structure, including a heater body 1 and a heat-conducting structure 7.

[0024] Reference Figures 1-5 As shown, an opening 2 is provided on one side of the heater body 1, and a grille 3 is installed inside the opening 2. Spring grooves 4 are provided at the outer edge of the opening 2 inside the heater body 1, and telescopic springs 5 ​​are fixed inside each spring groove 4. The grille 3 and the spring grooves 4 form a telescopic structure through the telescopic springs 5. One end of the grille 3 abuts against one end of each telescopic spring 5. A circuit board 6 is fixed inside the heater body 1, and a heat-conducting structure 7 is fixed on one side of the circuit board 6. The heat-conducting structure 7 includes a conductive plate 7 fixed to one side of the circuit board 6. 01. The conductive plate 701 has a combing groove 702 inside, a welding point 703 on the top of the conductive plate 701, and an insulating layer 704 wrapped around the outside of the conductive plate 701. The conductive plate 701 is symmetrically distributed on one side of the circuit board 6, and the combing groove 702 is evenly distributed at the bottom of the conductive plate 701. The conductive plate 701 forms a comb-like structure through the combing groove 702. The conductive plate 701 is fixedly connected to the circuit board 6 through the welding point 703. The conductive plate 701 is made of copper material, and the insulating layer 704 is made of ceramic material.

[0025] By using copper as the conductive plate 701, a highly conductive metal material, and by incorporating multiple sets of comb grooves 702 inside the conductive plate 701 to form a comb-like structure, the heat conduction area of ​​the conductive plate 701 is increased. Furthermore, by using a ceramic material with high insulation properties as the insulating layer 704 to wrap around the outside of the conductive plate 701, leakage of current is prevented. By soldering the conductive plate 701 to the circuit board 6 inside the heater body 1 for circuit connection, smooth current flow is ensured.

[0026] Reference Figure 3 and Figure 4 As shown, a dust removal structure 8 is fixed inside the heater body 1. The dust removal structure 8 includes a bidirectional lead screw 801 installed inside the heater body 1. A guide rod 802 is fixed to one side of the bidirectional lead screw 801. A first combing plate 803 and a second combing plate 804 are installed on the outer sides of the bidirectional lead screw 801 and the guide rod 802. A rotating block 805 is fixed to one end of the bidirectional lead screw 801 at the top of the heater body 1. The bidirectional lead screw 801 and the guide rod 802 are symmetrically distributed inside the heater body 1. The two ends of the bidirectional lead screw 801 pass through the interior of the heater body 1 and are connected to the interior of the heater body 1. A rotating connection is formed, with both ends of the guide rod 802 fixedly connected to both ends inside the heater body 1. The first combing plate 803 and the second combing plate 804 are symmetrically distributed on the outside of the bidirectional lead screw 801 and the guide rod 802. The first combing plate 803 and the second combing plate 804 are threadedly connected to the bidirectional lead screw 801. Soft brushes are fixed on the side of the first combing plate 803 and the second combing plate 804 near the conductive plate 701. One side of the first combing plate 803 and the second combing plate 804 abuts against one side of the conductive plate 701. Heat dissipation grooves 9 are evenly arranged on the other side of the heater body 1.

[0027] Rotating the rotating block 805 drives the bidirectional lead screw 801 to rotate, thereby causing the first combing plate 803 and the second combing plate 804 to move bidirectionally under the guidance of the guide rod 802 through the threaded connection. Soft bristles are fixed on one side of the first combing plate 803 and the second combing plate 804, so that the dust on the surface of the conductive plate 701 can be cleaned by the movement of the first combing plate 803 and the second combing plate 804. This prevents the dust from obstructing the heat dissipation channel and causing the temperature of the conductive plate 701 and its electronic components to rise. By cleaning the dust, the heat dissipation channel can be kept unobstructed, ensuring that the heat can be dissipated in time, thereby improving the stability and reliability of the equipment.

[0028] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. An environmentally friendly and energy-saving heater structure, comprising a heater body (1) and a heat-conducting structure (7); Its features are: An opening (2) is provided on one side of the heater body (1). A grid (3) is installed inside the opening (2). A spring groove (4) is provided at the outer edge of the opening (2) inside the heater body (1). A telescopic spring (5) is fixed inside the spring groove (4). A circuit board (6) is fixed inside the heater body (1). A heat-conducting structure (7) is fixed on one side of the circuit board (6). The heat-conducting structure (7) includes a conductive plate (701) fixed to one side of the circuit board (6). A combing groove (702) is provided inside the conductive plate (701). A welding point (703) is provided on the top of the conductive plate (701). An insulating layer (704) is wrapped around the outside of the conductive plate (701).

2. The environmentally friendly and energy-saving heater structure according to claim 1, characterized in that: The grille (3) and the spring groove (4) form a telescopic structure through the telescopic spring (5). One end of the grille (3) abuts against one end of the telescopic spring (5). Heat dissipation grooves (9) are evenly arranged on the other side of the heater body (1).

3. The environmentally friendly and energy-saving heater structure according to claim 1, characterized in that: The conductive plates (701) are symmetrically distributed on one side of the circuit board (6), and the combing grooves (702) are evenly distributed at the bottom of the conductive plates (701). The conductive plates (701) form a comb-like structure through the combing grooves (702).

4. The environmentally friendly and energy-saving heater structure according to claim 1, characterized in that: The conductive plate (701) and the circuit board (6) are fixedly connected by solder points (703). The conductive plate (701) is made of copper material, and the insulating layer (704) is made of ceramic material.

5. The environmentally friendly and energy-saving heater structure according to claim 1, characterized in that: The heater body (1) is equipped with a cleaning structure (8) inside. The cleaning structure (8) includes a bidirectional lead screw (801) installed inside the heater body (1). A guide rod (802) is fixed on one side of the bidirectional lead screw (801). A first combing plate (803) and a second combing plate (804) are installed on the outside of the bidirectional lead screw (801) and the guide rod (802). A rotating block (805) is fixed at one end of the bidirectional lead screw (801) at the top of the heater body (1).

6. The environmentally friendly and energy-saving heater structure according to claim 5, characterized in that: The bidirectional lead screw (801) and guide rod (802) are symmetrically distributed inside the heater body (1). The two ends of the bidirectional lead screw (801) pass through the interior of the heater body (1) and are rotatably connected to the interior of the heater body (1). The two ends of the guide rod (802) are fixedly connected to the two ends inside the heater body (1).

7. The environmentally friendly and energy-saving heater structure according to claim 5, characterized in that: The first combing plate (803) and the second combing plate (804) are symmetrically distributed on the outside of the bidirectional lead screw (801) and the guide rod (802). The first combing plate (803) and the second combing plate (804) are threadedly connected to the bidirectional lead screw (801). Soft brushes are fixed on the side of the first combing plate (803) and the second combing plate (804) near the conductive plate (701). One side of the first combing plate (803) and the second combing plate (804) abuts against one side of the conductive plate (701).