Heating-heat conduction-heat release integrated module and garment steamer applying same
By using an integrated heating-conducting-releasing module with insulation and heat exchange structure design, the problem of heat loss during the heat conduction process of the garment steamer is solved, improving electrothermal conversion efficiency and manufacturing efficiency, and reducing equipment weight and cost.
Patent Information
- Application Number
- CN202520176618.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-27
- Publication Date
- 2025-12-26
- Estimated Expiration
- 2035-01-27
AI Technical Summary
In existing garment steamers, heat is lost during conduction, resulting in low electrothermal conversion efficiency.
It adopts an integrated module for heating, conducting and releasing heat, including a heat-releasing substrate component and a heating module. Through the design of insulation structure and heat exchange structure, it reduces intermediate heat conduction links and improves heat conduction efficiency.
This improved the electrothermal conversion efficiency of the garment steamer, reduced heat loss, lightened the equipment weight, and lowered manufacturing costs and assembly efficiency.
Smart Images

Figure CN223723448U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to life electric appliance technical field, concretely is a kind of heating-heat conduction-heat release integrated module and application its hang ironing machine. BACKGROUND
[0002] Hang ironing machine, also known as "hanging iron", "vertical iron", is a commonly used life electric appliance, which can generate steam, contact clothing or cloth products through steam, and cooperate with the pulling and pressurizing action of hang ironing machine, so that the fiber of clothing or cloth product is softened, and then the clothing or cloth product becomes flat.
[0003] The hang ironing machine in the prior art usually includes a water tank, a water pump and a steam generator. The water pump can deliver the stored water in the water tank to the steam generator. After the stored water is heated by the steam generator, it evaporates to form steam.
[0004] The ironing panel is also one of the essential components of the hang ironing machine. First, the ironing panel is provided with a plurality of steam injection holes for releasing steam. In addition, the ironing panel can also absorb heat from the steam, steam generator or independent heater and form a high-temperature state. On the one hand, it can soften the fiber of clothing or cloth product, and on the other hand, it can kill microorganisms, small insects and insect eggs on the clothing or cloth product.
[0005] However, whether it is a steam generator or an independent heater, the heat generated needs to be conducted through several intermediate heat-conducting media to reach the ironing panel. During the heat conduction process, there will be a certain degree of loss, which reduces the electric heating conversion efficiency of the hang ironing machine.
[0006] In summary, how to reduce the loss of the ironing panel of the hang ironing machine during heat conduction has become a problem to be solved. INVENTION CONTENTS
[0007] The utility model aims at providing a heating-heat conduction-heat release integrated module and a hang ironing machine using the same, which effectively improves the heat conduction efficiency of the ironing panel of the hang ironing machine.
[0008] To achieve the above-mentioned purpose, the utility model provides the following technical scheme: a heating-heat conduction-heat release integrated module, which comprises a heat release substrate member and a heating module. The heating module is arranged on the surface of the heat release substrate member in the form of a printed circuit. The heating module and the heat release substrate member are configured as an insulating structure, and the heating module and the heat release substrate member are configured as a heat exchange structure.
[0009] In the above technical scheme, the heat release substrate member is specifically an aluminum plate or an aluminum alloy plate.
[0010] In the technical scheme, the heat-dissipating substrate component is processed to form a substrate insulating layer on the surface thereof; and the heat-generating module is arranged on the surface of the substrate insulating layer of the heat-dissipating substrate component in the form of a printed circuit.
[0011] In the technical scheme, the substrate insulating layer of the heat-dissipating substrate component is specifically an anodized film insulating layer.
[0012] In the technical scheme, the heat-generating module comprises:
[0013] a base insulating layer coated on the surface of the heat-dissipating substrate component;
[0014] and a heat-generating printed circuit layer printed on the surface of the base insulating layer.
[0015] In the technical scheme, the base insulating layer is specifically a glass substrate.
[0016] In the technical scheme, the heat-generating module further comprises a surface insulating layer coated on the surfaces of the base insulating layer and the heat-generating printed circuit layer.
[0017] In the technical scheme, the surface insulating layer is specifically a glass substrate.
[0018] A garment steamer comprises the heat-generating, heat-conducting and heat-dissipating integrated module.
[0019] Compared with the prior art, the heat-generating, heat-conducting and heat-dissipating integrated module and the garment steamer using the same have the following beneficial effects: the heat-generating module and the heat-dissipating substrate component are configured as an insulating structure, and the heat-generating module and the heat-dissipating substrate component are configured as a heat exchange structure, thereby saving the intermediate heat conduction link between the heat-generating module and the heat-dissipating substrate component, reducing the heat loss, effectively improving the heat conduction efficiency between the heat-generating module and the heat-dissipating substrate component, and further improving the electric heating conversion efficiency of the garment steamer, and helping to reduce the weight of the garment steamer, reduce the manufacturing cost of the garment steamer, and improve the assembly and manufacturing efficiency of the garment steamer. BRIEF DESCRIPTION OF DRAWINGS
[0020] Figure 1 FIG. 4 is a structural view of the heat-generating, heat-conducting and heat-dissipating integrated module in the utility model.
[0021] Figure 2 FIG. 5 is a hierarchical structure view of the heat-generating, heat-conducting and heat-dissipating integrated module in the utility model.
[0022] The reference signs are: 1, heat-dissipating substrate component; 11, substrate insulating layer; 2, heat-generating module; 21, base insulating layer; 22, heat-generating printed circuit layer; 23, surface insulating layer. DETAILED DESCRIPTION
[0023] 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, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work fall within the scope of the present application.
[0024] The heating-heat conduction-heat release integrated module can generate heat after being powered on, and release heat to the outside, thereby saving the intermediate heat conduction link and reducing heat loss.
[0025] Referring to Figure 1 and Figure 2 The heating-heat conduction-heat release integrated module comprises a heat release substrate member 1 and a heating module 2.
[0026] The heat release substrate member 1 is a component that needs to release heat to the outside. In this embodiment, the ironing panel of a garment steamer is taken as a typical case of the heat release substrate member 1, and the technical solutions of this embodiment are described in detail.
[0027] The heating module 2 is arranged on the surface of the heat release substrate member 1 in the form of a printed circuit.
[0028] The heating module 2 and the heat release substrate member 1 are configured as an insulation structure, and the heating module 2 and the heat release substrate member 1 are configured as a heat exchange structure.
[0029] Specifically, the heat release substrate member 1, specifically an aluminum plate or an aluminum alloy plate, has the characteristics of light weight and rust resistance.
[0030] Further, the heat release substrate member 1 is treated to form a substrate insulation layer 11 on the surface thereof; and the heating module 2 is arranged on the surface of the substrate insulation layer 11 of the heat release substrate member 1 in the form of a printed circuit.
[0031] Further specifically, the substrate insulation layer 11 of the heat release substrate member 1 is specifically an anodized film insulation layer, which has the characteristics of economy and ease of implementation; in this way, the insulation structure between the heating module 2 and the heat release substrate member 1 is achieved, and the heat exchange efficiency between the heating module 2 and the heat release substrate member 1 is not affected.
[0032] Specifically, the heating module 2 comprises:
[0033] a basic insulation layer 21 coated on the surface of the heat release substrate member 1;
[0034] and a heat-generating printed circuit layer 22 printed on the surface of the base insulation layer 21.
[0035] It should be noted that the heat-generating printed circuit layer 22 is a resistance heating circuit that can generate heat after being powered on. In this embodiment, the heat-generating printed circuit layer 22 has two poles to introduce electrical energy.
[0036] Specifically, the base insulation layer 21 is a glass substrate. In this embodiment, a molten glass substrate is coated on the surface of the base insulation layer 11 of the heat-dissipating substrate member 1. After the glass substrate is cooled and solidified and is subjected to a planarization process, the base insulation layer 21 is obtained.
[0037] Coating the base insulation layer 21 on the surface of the heat-dissipating substrate member 1 can further improve the insulation performance between the heat-generating printed circuit layer 22 and the heat-dissipating substrate member 1, and is conducive to the adhesion and formation of the heat-generating printed circuit layer 22.
[0038] Further, the heat-generating module 2 further comprises a surface insulation layer 23 coated on the surface of the base insulation layer 21 and the heat-generating printed circuit layer 22.
[0039] Specifically, the surface insulation layer 23 is a glass substrate. In this embodiment, a molten glass substrate is coated on the surface of the base insulation layer 21 and the heat-generating printed circuit layer 22. After the glass substrate is cooled and solidified and is subjected to a planarization process, the surface insulation layer 23 is obtained.
[0040] Coating the surface insulation layer 23 on the surface of the base insulation layer 21 and the heat-generating printed circuit layer 22 can insulate the surface of the heat-generating printed circuit layer 22.
[0041] The embodiment also provides a garment steamer comprising the heat-generating, heat-conducting and heat-dissipating integrated module described above.
[0042] The heat-generating, heat-conducting and heat-dissipating integrated module and the garment steamer using the same according to the embodiment are configured in an insulation structure between the heat-generating module 2 and the heat-dissipating substrate member 1, and are configured in a heat exchange structure between the heat-generating module 2 and the heat-dissipating substrate member 1. The heat-generating module 2 and the heat-dissipating substrate member 1 save the intermediate heat conduction link, thereby reducing the heat loss, effectively improving the heat conduction efficiency between the heat-generating module 2 and the heat-dissipating substrate member 1, and further improving the electric heating conversion efficiency of the garment steamer, and helping to reduce the weight of the garment steamer, reduce the manufacturing cost of the garment steamer, and improve the assembly and manufacturing efficiency of the garment steamer.
[0043] Although the embodiments of the present application have been shown and described, it is to be understood that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present application, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A heat-generating-heat-conducting-heat-releasing integrated module, characterized in that, Includes heat-dissipating substrate components and heating modules; The heating module is disposed on the surface of the heat-dissipating substrate component in the form of a printed circuit. The heating module and the heat-dissipating substrate are configured with an insulating structure, and the heating module and the heat-dissipating substrate are configured with a heat exchange structure.
2. The integrated heating-conducting-heat-releasing module according to claim 1, characterized in that, The heat-dissipating substrate component is specifically an aluminum plate or an aluminum alloy plate.
3. The integrated heating-conducting-heat-releasing module according to claim 2, characterized in that, After processing, a substrate insulating layer is formed on the surface of the heat-generating substrate component; The heating module is disposed on the surface of the substrate insulating layer of the heat-dissipating substrate component in the form of a printed circuit.
4. The integrated heating-conducting-heat-releasing module according to claim 3, characterized in that, The substrate insulating layer of the heat-dissipating substrate component is specifically an anodic oxide film insulating layer.
5. The integrated heating-conducting-heat-releasing module according to any one of claims 1-4, characterized in that, The heating module includes: A basic insulating layer is coated on the surface of the heat-dissipating substrate component; In addition, a heat-generating printed circuit layer is printed on the surface of the base insulating layer.
6. The integrated heating-conducting-heat-releasing module according to claim 5, characterized in that, The basic insulating layer is specifically a glass substrate.
7. The integrated heating-conducting-heat-releasing module according to claim 5, characterized in that, The heating module also includes: A surface insulating layer is coated on the surface of the base insulating layer and the heating printed circuit layer.
8. The integrated heating-conducting-heat-releasing module according to claim 7, characterized in that, The surface insulating layer is specifically a glass substrate.
9. A garment steamer, characterized in that, Includes the integrated heating-conducting-heat-releasing module as described in any one of claims 1-8.