Microcrystal heating plate
By designing a microcrystalline heating plate and utilizing graphene composite conductive film and insulating heat insulation board, the problems of high energy consumption, poor comfort, and heating delay in bathroom and sauna heating devices are solved, achieving low-energy rapid heating and far-infrared physiotherapy effects.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ZHONGSHAN NEPTUM SANITARY WARE
- Filing Date
- 2025-03-28
- Publication Date
- 2026-04-17
AI Technical Summary
Existing heating devices for bathrooms and saunas, such as lamp-heated bathroom heaters and fan-heated bathroom heaters, suffer from problems such as high brightness, high energy consumption, long heating delay time, and poor comfort.
It adopts a microcrystalline heating plate, including a glass microcrystalline plate, a graphene composite conductive film, electrodes, an insulating heat insulation plate and a back plate. It utilizes the graphene composite conductive film for heating, combined with high-temperature resistant sealant and insulating heat insulation materials, to achieve rapid heating and emit far-infrared rays.
It achieves rapid heating with low energy consumption, emits 4-16μm far-infrared rays with light wave therapy effects, and is lightweight and easy to install.
Smart Images

Figure CN224139165U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a heating system for shower rooms, saunas, bathrooms, or bedrooms, and in particular to a microcrystalline heating plate. Background Technology
[0002] Ordinary bathrooms, shower rooms, or saunas often use lamp-heated or fan-heated bathroom heaters. Lamp-heated bathroom heaters are too bright and can easily damage people's eyes, while fan-heated bathroom heaters have disadvantages such as high energy consumption, long heating delay time, and poor comfort when the air blows on the body. Therefore, the applicant designed a microcrystalline heating plate using graphene composite conductive film available on the market to solve the above problems. Utility Model Content
[0003] In order to overcome the shortcomings of the prior art, this utility model provides a microcrystalline heating plate.
[0004] The technical solution adopted by this utility model to solve its technical problem is:
[0005] A microcrystalline heating plate, characterized in that it comprises a glass microcrystalline plate, a graphene composite conductive film, electrodes, an insulating heat insulation plate, a front frame, and a back plate. The graphene composite conductive film is fixed on the glass microcrystalline plate, and the electrodes are electrically connected to the graphene composite conductive film and an external power source. The back plate is fixed to the front frame, the glass microcrystalline plate is disposed within the front frame and fixed by the back plate, and the insulating heat insulation plate is disposed between the glass microcrystalline plate and the back plate.
[0006] The electrode is a metal wire.
[0007] The faceplate has a frame hole, and a protruding plate is provided on the wall of the frame hole, on which the glass microcrystalline plate is placed.
[0008] The face frame is provided with a retaining edge, and the face frame and the retaining edge form a mounting groove, with the edge of the back plate located in the mounting groove.
[0009] A high-temperature resistant sealant is provided between the convex plate and the glass microcrystalline plate.
[0010] The convex plate is provided with several glue grooves, and the sealant fills the glue grooves.
[0011] The beneficial effects of this utility model are: This utility model uses a graphene composite conductive film to make a heating plate. The heating element can heat up instantly when it is powered on, and the temperature can reach up to about 400 degrees. It has low energy consumption, and the 4-16μm far-infrared rays emitted during operation have a phototherapy effect. Moreover, this heating plate is thin and light, making it easier to install. Attached Figure Description
[0012] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0013] Figure 1 This is a structural view of the present invention;
[0014] Figure 2 This is a structural view of the present invention from another direction;
[0015] Figure 3 This is an exploded structural view of the present invention. Detailed Implementation
[0016] The advantages and features of this disclosure, as well as its implementation methods, will be illustrated by the following embodiments described with reference to the accompanying drawings. However, this disclosure may be embodied in different forms and should not be construed as limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will be comprehensive and complete, and will fully convey the scope of this disclosure to those skilled in the art. Furthermore, this disclosure is limited only by the scope of the claims.
[0017] The shapes, dimensions, scales, angles, and numbers disclosed in the accompanying drawings used to describe embodiments of this disclosure are merely examples, and therefore this disclosure is not limited to the details shown. Throughout this specification, the same reference numerals refer to the same elements. In the following description, detailed descriptions of relevant known functions or configurations will be omitted where it is determined that such detailed descriptions would unnecessarily obscure the focus of this disclosure. Where the terms “comprising,” “having,” and “including” are used in this specification, additional components may be added unless “only” is used. Unless otherwise indicated, singular terms may include plural forms.
[0018] When interpreting components, even if not explicitly described, the components are understood to include a range of tolerances.
[0019] When describing positional relationships, such as when the positional relationship is described as "on," "above," "below," and "adjacent to," one or more parts may be arranged between two other parts unless "immediately following" or "directly" is used.
[0020] When describing temporal relationships, such as when time sequence is described as “after,” “following,” “next,” and “before,” discontinuous cases may be included unless “exactly” or “directly” is used.
[0021] It should be understood that although the terms “first,” “second,” etc., may be used herein to describe various elements, these elements should not be limited by these terms. These terms are used only to distinguish one element from other elements. For example, a first element may be referred to as a second element, and similarly, a second element may be referred to as a first element, without departing from the scope of this disclosure.
[0022] As will be fully understood by those skilled in the art, the features of the different embodiments of this disclosure may be coupled or combined with each other in part or in whole, and may cooperate with each other and be technically driven in various ways. The embodiments of this disclosure may be implemented independently of each other, or may be implemented together in an interdependent relationship.
[0023] Reference Figures 1 to 3 This utility model discloses a microcrystalline heating plate, including a glass microcrystalline plate 1, a graphene composite conductive film 2, an electrode 3, an insulating heat insulation plate 4, a face frame 5, and a back plate 6. The graphene composite conductive film 2 is fixed on the glass microcrystalline plate 1, and the electrode 3 is electrically connected to the graphene composite conductive film 2 and an external power source. The electrode 3 is a metal wire with two electrodes, one positive and one negative, usually copper wire. Since the graphene composite conductive film 2 is a purchased product, its specific structure and circuit connection are not detailed. The graphene composite conductive film 2 can be fixed to the glass with high-temperature resistant adhesive. Moreover, the graphene composite conductive film 2 of this application can emit infrared rays by exciting carbon atom vibrations with electrical energy. The electrode 3 can be fixed to the graphene composite conductive film 2 with conductive silver paste.
[0024] As shown in the figure, the glass microcrystalline plate 1 is square. The back plate 6 is fixed to the face frame 5. The glass microcrystalline plate 1 is set in the face frame 5 and fixed by the back plate 6. The insulating and heat-insulating plate 4 is set between the glass microcrystalline plate 1 and the back plate 6. The insulating and heat-insulating plate 4 is generally made of aluminum silicate ceramic fiber board, which can both insulate heat and insulate. The specific structure is as follows: the face frame 5 has a square frame hole 7. The wall of the frame hole 7 is provided with a protruding plate 8. The glass microcrystalline plate 1 is placed on the protruding plate 8, and the edge of the glass microcrystalline plate 1 is restricted by the hole wall. The frame hole 7 is also a heat and infrared transmission hole. As a further preferred structure, a sealant is provided between the protruding plate 8 and the glass microcrystalline plate 1. Because this product may be used in humid environments, such as shower rooms, bathrooms, light wave rooms, etc., a high-temperature resistant sealant is provided to prevent water vapor from entering. As a further further structure, the protruding plate 8 is provided with several glue grooves. The sealant fills the glue grooves, which facilitates operation and provides space for the glue after application, allowing more glue to be applied.
[0025] As shown in the figure, the face frame 5 is provided with a retaining edge 9, and the face frame 5 and the retaining edge 9 form a mounting groove 10. The edge of the back plate 6 is located in the mounting groove 10. After the back plate 6 is inserted into the mounting groove 10, screws are tightened to lock the insulating heat insulation board 4, the graphene composite conductive film 2, and the glass microcrystalline plate 1 into the face frame 5.
[0026] The above provides a detailed description of a microcrystalline heating plate provided by the embodiments of this utility model. Specific examples have been used to illustrate the principle and implementation of this utility model. The description of the above embodiments is only for the purpose of helping to understand the method and core idea of this utility model. At the same time, for those skilled in the art, there will be changes in the specific implementation and application scope based on the idea of this utility model. Therefore, the content of this specification should not be construed as a limitation of this utility model.
Claims
1. A microcrystalline heat-generating plate, characterized by: The device includes a glass microcrystalline plate, a graphene composite conductive film, electrodes, an insulating heat insulation plate, a front frame, and a back plate. The graphene composite conductive film is fixed on the glass microcrystalline plate, and the electrodes are electrically connected to the graphene composite conductive film and an external power source. The back plate is fixed to the front frame, the glass microcrystalline plate is disposed within the front frame and fixed by the back plate, and the insulating heat insulation plate is disposed between the glass microcrystalline plate and the back plate.
2. A microcrystalline heating panel according to claim 1, characterised in that: The electrode is a metal wire.
3. The microcrystalline heating panel according to claim 1, characterized in that: The faceplate has a frame hole, and a protruding plate is provided on the wall of the frame hole, on which the glass microcrystalline plate is placed.
4. The microcrystalline heating panel according to claim 1, characterized in that: The face frame is provided with a retaining edge, and the face frame and the retaining edge form a mounting groove, with the edge of the back plate located in the mounting groove.
5. A microcrystalline heating panel according to claim 3, wherein: A high-temperature resistant sealant is provided between the convex plate and the glass microcrystalline plate.
6. A microcrystalline heating plate according to claim 5, characterized in that: The convex plate is provided with several glue grooves, and the sealant fills the glue grooves.