Heating device, control method of heating device and computer readable storage medium

By combining a charcoal fire display window, sound simulation, and temperature detection module into the heating device, the problems of low simulation and energy waste in traditional heating devices are solved. It achieves a realistic visual and sound effect, improving user experience and energy efficiency.

CN121782623APending Publication Date: 2026-04-03GREE ELECTRIC APPLIANCE INC OF ZHUHAI
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-23
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

Traditional heating devices use a single light structure to simulate charcoal fires, resulting in static light and shadow effects. This simulation is not very realistic, lacks coordinated management of heating and simulation modules, makes it difficult to meet users' needs for an immersive experience, and easily leads to energy waste.

Method used

The charcoal display window, which uses a shell assembly, is combined with a charcoal simulation module. A sound generation module simulates the sound of charcoal burning. The heating module, charcoal simulation module, and sound generation module are controlled by a temperature detection module to start and stop, achieving a realistic visual and sound effect. Energy consumption is reduced through modular layout and intelligent control.

Benefits of technology

It enhances the user's immersive heating experience, improves the comfort and intelligence of heating, and reduces energy consumption and operating costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of heating devices, and discloses a heating device, a control method of the heating device and a computer readable storage medium, the heating device comprises a shell assembly, a heating module, a charcoal fire simulation module, a sound generation module, a temperature detection module and a control module; the shell assembly is provided with a charcoal fire display window; the heating module is arranged in the shell assembly; the charcoal fire simulation module is arranged in the shell assembly and corresponds to the position of the charcoal fire display window; the sound generating module is arranged in the shell assembly; the temperature detection module is arranged in the shell assembly; the control module is in communication connection with the heating module, the charcoal fire simulation module, the sound generation module and the temperature detection module; through the visual effect and the combustion sound effect, the immersive heating experience of a user is improved, the starting and stopping states of the heating module, the charcoal fire simulation module and the sound generation module are automatically adjusted and controlled in a linkage mode, temperature control according to needs is achieved, the heating comfort and the intelligent level are improved, energy consumption is avoided, and the use cost is effectively reduced.
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Description

Technical Field

[0001] This invention relates to the field of heating device technology, specifically to a heating device, a control method for a heating device, and a computer-readable storage medium. Background Technology

[0002] As living standards improve, users' demands for heating devices are no longer limited to basic heating functions, but have begun to pursue a comfortable and atmospheric user experience. As a result, various heating devices with added charcoal fire simulation structures have appeared on the market to enhance the atmosphere.

[0003] However, the charcoal fire simulation function of traditional heating devices mostly achieves static light and shadow effects through a single light structure, resulting in low simulation accuracy. Furthermore, they lack coordinated management of heating and simulation modules, making it difficult to meet users' needs for an immersive experience and easily leading to energy waste. Summary of the Invention

[0004] In view of this, the present invention provides a heating device, a control method for the heating device, and a computer-readable storage medium to solve the problems that the charcoal fire simulation function of traditional heating devices mostly achieves static light and shadow effects only through a single light structure, resulting in low simulation accuracy and a lack of coordinated management of heating and simulation modules, making it difficult to meet users' needs for an immersive experience and easily leading to energy waste.

[0005] In a first aspect, the present invention provides a heating device, comprising: The housing assembly includes a charcoal fire display window; The heating module is disposed within the housing assembly; A charcoal fire simulation module is located inside the housing assembly, corresponding to the position of the charcoal fire display window; A sound generating module, disposed within the housing assembly, is used to generate sounds simulating the burning of charcoal; A temperature detection module, located within the housing assembly, is used to detect the ambient temperature. The control module is communicatively connected to the heating module, the charcoal fire simulation module, the sound generation module, and the temperature detection module; based on the ambient temperature data detected by the temperature detection module, it controls the start and stop of the heating module, the charcoal fire simulation module, and the sound generation module.

[0006] Beneficial effects: By matching the charcoal display window on the housing component with the corresponding settings of the charcoal simulation module, and combining the sound generation module to simulate the sound of charcoal burning, a realistic visual effect and combustion sound effect are created simultaneously, enhancing the user's immersive heating experience. At the same time, the control module automatically links and adjusts the start and stop status of the heating module, charcoal simulation module, and sound generation module based on the ambient temperature data collected by the temperature detection module. This achieves on-demand temperature control, improving the comfort and intelligence of heating, while avoiding unnecessary energy consumption and effectively reducing operating costs.

[0007] In one optional implementation, the charcoal fire simulation module includes: Mounting bracket, fixed inside the housing assembly; A light-transmitting housing, the bottom of which is fixed to the mounting bracket, and at least the top of the light-transmitting housing includes a carbon-like area; The light source assembly is fixed to the mounting bracket and is communicatively connected to the control module, with the light emission direction of the light source assembly facing the top of the light-transmitting housing.

[0008] Beneficial effects: The mounting bracket enables a stable assembly of the charcoal fire simulation module and the shell components; at least the top of the light-transmitting shell includes a charcoal-simulating area, which can intuitively reproduce the natural shape of traditional charcoal fire. Combined with the light source components that emit light towards the top of the light-transmitting shell, the light is refracted and scattered by the light-transmitting shell to form a light and shadow effect consistent with the burning of real charcoal fire, thus improving the visual simulation.

[0009] In one optional embodiment, the mounting bracket and the light-transmitting housing are limited and engaged by a limiting structure; the limiting structure includes a stop groove and a stop rib that cooperate with each other, one of the stop groove and the stop rib being disposed on the mounting bracket and the other being disposed on the light-transmitting housing.

[0010] Beneficial effects: By setting a limiting structure consisting of a stop groove and a stop rib between the mounting bracket and the light-transmitting housing, rapid alignment during assembly can be achieved, effectively preventing the light-transmitting housing from shifting, rotating, or loosening during installation or use. This simplifies the assembly process, improves production efficiency, and ensures that the light emitted by the light source component always illuminates the simulated charcoal area at the top of the light-transmitting housing at a preset angle, thus maintaining the consistency and realism of the charcoal fire visual effect. At the same time, the stop fit enhances the stability of the overall structure, avoiding optical misalignment caused by equipment movement or long-term use.

[0011] In one optional embodiment, the mounting bracket and the light-transmitting housing are fixedly connected by a fixing structure, the fixing structure comprising: The first lug protrudes from the outer side wall of the mounting bracket; The second lug protrudes from the outer side wall of the light-transmitting housing; Fasteners pass through the first lug and connect to the second lug.

[0012] Beneficial effects: By setting the first lug and the second lug on the outer side wall of the mounting bracket and the light-transmitting housing respectively, and using fasteners to connect them, a firm and reliable mechanical fixation between the two is achieved.

[0013] In one optional embodiment, the mounting bracket has a mounting groove, and the light source assembly is disposed in the mounting groove.

[0014] Beneficial effects: By setting a mounting slot in the mounting bracket and embedding the light source component in the mounting slot, not only is the installation and positioning of the light source component achieved and it is firmly fixed, effectively preventing it from shifting or loosening due to vibration or handling during the operation of the device; at the same time, the mounting slot plays a certain role in shielding and guiding the light source component, preventing stray light from leaking out, and ensuring that the light is concentrated and projected onto the charcoal-like area at the top of the light-transmitting shell, thereby improving the focus and realism of the charcoal fire simulation light effect.

[0015] In one alternative implementation, the light source assembly includes: The substrate is fixed in the mounting slot and is communicatively connected to the control module. Multiple light-emitting units are fixed to the substrate, and the brightness of the light-emitting units fluctuates periodically.

[0016] Beneficial effects: The light source assembly achieves the installation and positioning of the light-emitting units through the fixed cooperation between the substrate and the mounting groove, ensuring that the light emission direction of multiple light-emitting units is always facing the top of the light-transmitting shell; the communication connection between the substrate and the control module enables the working state of the light-emitting units to be intelligently controlled. Combined with the design of the periodic fluctuation of the brightness of multiple light-emitting units, it can highly reproduce the visual effect of the alternating brightness and darkness of the flames when charcoal is burning, enhancing the vividness of the charcoal fire visual.

[0017] In one alternative implementation, a voice receiving module is further included, which is installed in the housing and is communicatively connected to the control module.

[0018] Beneficial effects: By setting up a voice receiving module, users can conveniently control the heating device through voice commands, eliminating the hassle of manually operating buttons or remote controls and enhancing the product's intelligence level.

[0019] In one alternative implementation, the housing assembly includes: The main housing, wherein the heating module is disposed within the main housing; The first housing is installed at one end of the main housing, and the control module, the sound generation module and the voice receiving module are all located inside the first housing; The second housing is installed at the other end of the main housing. The second housing is equipped with a charcoal fire screen, and the charcoal fire display window is located on the charcoal fire screen. The charcoal fire simulation module is located inside the second housing.

[0020] Beneficial effects: The main housing integrates the heating module, providing it with an independent and stable installation space to ensure reliable operation of the heating function; the first housing centrally houses the control module, sound generation module, and voice receiving module, preventing them from being affected by the temperature of the heating module, while also facilitating wiring and signal transmission, improving the operational stability and lifespan of electronic components; the second housing features a charcoal fire display screen with a charcoal fire indicator window, forming an independent visual display area. The modular layout enhances the flexibility of overall assembly, and allows for individual disassembly of the housing containing a faulty module without the need for a complete disassembly device, reducing maintenance costs and operational complexity; simultaneously, the corresponding housing space can be optimized according to the needs of each module, avoiding wasted space in a single integrated housing.

[0021] In one alternative implementation, the heating device includes an electric heater.

[0022] Secondly, the present invention also provides a control method for a heating device, for the aforementioned heating device, comprising: The control heating module, charcoal fire simulation module, sound generation module, and temperature detection module are activated. Receive ambient temperature data sent by the temperature detection module; When the ambient temperature data reaches the first temperature threshold, the heating module and the sound generation module are controlled to stop working, while the charcoal fire simulation module is controlled to continue working. When the ambient temperature reaches the second temperature threshold, the heating module, charcoal fire simulation module, sound generation module, and temperature detection module are activated; wherein the second temperature threshold is lower than the first temperature threshold.

[0023] Beneficial effects: When the ambient temperature reaches the first temperature threshold, the heating module and sound generation module stop working, leaving only the charcoal fire simulation module running. This avoids excessively high ambient temperatures while satisfying the user's need for the visual atmosphere of charcoal fire. When the ambient temperature drops to the second temperature threshold, all modules automatically activate, quickly restoring the heating effect and ensuring both heating comfort and ambiance. Simultaneously, real-time data feedback from the temperature detection module forms a closed-loop control system, automatically adjusting the operating status of each module without manual intervention, thus enhancing the device's intelligence. By setting the first and second temperature thresholds and matching the start-stop strategies of different modules, the system achieves flexible switching between coordinated operation and independent operation of the heating and charcoal fire simulation functions. By starting and stopping unnecessary modules as needed, it effectively reduces ineffective energy consumption and lowers operating costs.

[0024] Thirdly, the present invention also provides a computer-readable storage medium storing computer instructions that, when executed, implement the above-described control method for the heating device.

[0025] Beneficial effects: The computer-readable storage medium provided by the present invention, through the control method of the heating device using the above-described implementation method, has all the technical effects of the control method of the heating device described above. Attached Figure Description

[0026] To more clearly illustrate the technical solutions in the specific embodiments or related technologies of the present invention, the drawings used in the description of the specific embodiments or related technologies will be briefly introduced below. Obviously, the drawings described below are some embodiments of the present invention. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.

[0027] Figure 1 This is an exploded view of a heating device according to an embodiment of the present invention; Figure 2 This is a schematic diagram of the charcoal fire simulation module according to an embodiment of the present invention; Figure 3 This is an exploded structural diagram of the second housing and internal components according to an embodiment of the present invention; Figure 4 This is a schematic diagram of the structure of the light-transmitting shell according to an embodiment of the present invention; Figure 5 This is a schematic diagram of the mounting bracket according to an embodiment of the present invention; Figure 6 This is an exploded structural diagram of the first housing and internal components according to an embodiment of the present invention; Figure 7 This is a schematic diagram of the circuit structure of the heating device according to an embodiment of the present invention; Figure 8 This is a schematic diagram of the first process of the control method of the heating device according to an embodiment of the present invention; Figure 9 This is a schematic diagram of a second process for controlling a heating device according to an embodiment of the present invention.

[0028] Explanation of reference numerals in the attached figures: 1. Housing assembly; 11. Charcoal fire display window; 12. Main housing; 13. First housing; 14. Second housing; 15. Charcoal fire screen; 16. First end cap; 17. Second end cap; 2. Heating module; 3. Charcoal fire simulation module; 31. Mounting bracket; 311. Mounting slot; 312. Mounting port; 32. Light-transmitting shell; 321. Charcoal simulation area; 33. Light source assembly; 331. Substrate; 332. Light-emitting unit; 34. Resisting rib; 35. First lug; 36. Second lug; 37. Fastener; 4. Sound generation module; 5. Temperature detection module; 6. Control module; 7. Voice receiving module; 81. Live wire; 82. Neutral wire; 83. Tilting switch; 84. Non-self-resetting temperature limiter; 85. Self-resetting temperature limiter; 86. Control panel. Detailed Implementation

[0029] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0030] In the description of this invention, it should be noted that the terms "upper," "lower," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing the invention and for 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. Therefore, they should not be construed as limitations on the invention. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0031] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "connected" and "linked" 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 invention based on the specific circumstances.

[0032] Furthermore, the technical features involved in the different embodiments of the present invention described below can be combined with each other as long as they do not conflict with each other.

[0033] The following is combined with Figures 1 to 9 The following describes embodiments of the present invention.

[0034] According to an embodiment of the present invention, a heating device is provided, comprising a housing assembly 1, a heating module 2, a charcoal fire simulation module 3, a sound generating module 4, a temperature detection module 5, and a control module 6; the housing assembly 1 is provided with a charcoal fire display window 11; the heating module 2 is disposed within the housing assembly 1; the charcoal fire simulation module 3 is disposed within the housing assembly 1, corresponding to the position of the charcoal fire display window 11; the sound generating module 4 is disposed within the housing assembly 1, for generating a sound simulating charcoal combustion; the temperature detection module 5 is disposed within the housing assembly 1, for detecting the ambient temperature; the control module 6 is communicatively connected to the heating module 2, the charcoal fire simulation module 3, the sound generating module 4, and the temperature detection module 5; and controls the start and stop of the heating module 2, the charcoal fire simulation module 3, and the sound generating module 4 based on the ambient temperature data detected by the temperature detection module 5.

[0035] In the above embodiments, by matching the charcoal display window 11 of the housing component 1 with the charcoal simulation module 3, and combining the sound generation module 4 to simulate the sound of charcoal burning, a realistic visual effect and combustion sound effect are created simultaneously, enhancing the user's immersive heating experience. At the same time, the control module 6 automatically controls the start and stop states of the heating module 2, the charcoal simulation module 3, and the sound generation module 4 based on the ambient temperature data collected by the temperature detection module 5. This achieves on-demand temperature control, improves the comfort and intelligence of heating, avoids unnecessary energy consumption, and effectively reduces operating costs.

[0036] Specifically, the sound generating module 4 is preferably a loudspeaker, which can output a slight "crackling" or "dinging" sound produced by the burning of charcoal.

[0037] Specifically, temperature detection module 5 is a temperature sensing element.

[0038] In one embodiment, the charcoal fire simulation module 3 includes a mounting bracket 31, a light-transmitting housing 32, and a light source assembly 33; the mounting bracket 31 is fixed inside the housing assembly 1; the bottom of the light-transmitting housing 32 is fixed to the mounting bracket 31, and at least the top of the light-transmitting housing 32 includes a charcoal-simulating area 321; the light source assembly 33 is fixed to the mounting bracket 31, is communicatively connected to the control module 6, and the light emission direction of the light source assembly 33 faces the top of the light-transmitting housing 32.

[0039] In the above embodiment, the charcoal fire simulation module 3 and the housing component 1 are stably assembled by the mounting bracket 31; at least the top of the light-transmitting housing 32 includes a charcoal-simulating area 321, which can intuitively restore the natural shape of traditional charcoal fire. Combined with the light source component 33 whose light emission direction is towards the top of the light-transmitting housing 32, the light is refracted and scattered by the light-transmitting housing 32 to form a light and shadow effect consistent with the burning of real charcoal fire, thereby improving the visual simulation degree.

[0040] Specifically, the charcoal-imitation area 321 resembles a pile of charcoal.

[0041] In a specific implementation, the light-transmitting shell 32 is made of a dark gray or black transparent material that mimics charcoal. By changing the transparency of the material, the local thickness distribution, and the depth of the surface color, the light transmittance can be differentiated and controlled. When the internal light source component 33 is lit, the light passes through different areas of the light-transmitting shell 32 and presents a light and shadow effect with alternating brightness and rich layers due to the differences in thickness and color. This highly restores the visual characteristics of real charcoal burning, where the center is hot and shiny and the edges are covered with ash, thus enhancing the realism of charcoal fire simulation.

[0042] Specifically, the light-transmitting housing 32 is a hollow cavity structure with an opening at the bottom; the mounting bracket 31 is connected to the light-transmitting housing 32 through the bottom opening of the cavity structure, which not only provides stable support for the light-transmitting housing 32, but also ensures that the light source assembly 33 is located inside the cavity, so that the light from the light source assembly 33 can enter the cavity from the bottom opening.

[0043] In one embodiment, the mounting bracket 31 and the light-transmitting housing 32 are limited and engaged by a limiting structure; the limiting structure includes a stop groove and a stop rib 34 that cooperate with each other, one of the stop groove and the stop rib 34 being disposed on the mounting bracket 31 and the other being disposed on the light-transmitting housing 32.

[0044] In the above embodiments, by providing a limiting structure consisting of a stop groove and a stop rib 34 between the mounting bracket 31 and the light-transmitting housing 32, rapid alignment of the two during assembly can be achieved, effectively preventing the light-transmitting housing 32 from shifting, rotating, or loosening during installation or use. This simplifies the assembly process, improves production efficiency, and ensures that the light emitted by the light source component 33 always illuminates the simulated charcoal area 321 at the top of the light-transmitting housing 32 at a preset angle, thereby maintaining the consistency and realism of the charcoal fire visual effect. At the same time, the stop fit enhances the stability of the overall structure, avoiding optical misalignment caused by equipment movement or long-term use.

[0045] In one embodiment of this invention, a stop groove is disposed on the mounting bracket 31, and a stop rib 34 is disposed on the light-transmitting housing 32. In another embodiment of this invention, the stop rib 34 is disposed on the mounting bracket 31, and the stop groove is disposed on the light-transmitting housing 32. In this application, it is preferred that the stop groove is disposed on the mounting bracket 31, and the stop rib 34 is disposed on the light-transmitting housing 32.

[0046] In a specific implementation, the bottom opening of the light-transmitting housing 32 is provided with a ring-shaped stop groove, and the top periphery of the mounting bracket 31 is provided with a ring of protruding stop ribs 34. When the mounting bracket 31 and the light-transmitting housing 32 are connected at the end face, the stop ribs 34 are embedded in the stop groove to form a ring-shaped insertion and limiting structure.

[0047] In one embodiment, the mounting bracket 31 and the light-transmitting housing 32 are fixedly connected by a fixing structure, which includes a first lug 35, a second lug 36 and a fastener 37; the first lug 35 protrudes from the outer side wall of the mounting bracket 31; the second lug 36 protrudes from the outer side wall of the light-transmitting housing 32; and the fastener 37 passes through the first lug 35 and is connected to the second lug 36.

[0048] In the above embodiments, by providing a first lug 35 and a second lug 36 on the outer side walls of the mounting bracket 31 and the light-transmitting housing 32 respectively, and connecting them through with fasteners 37, a firm and reliable mechanical fixation between the two is achieved.

[0049] In specific implementations, fasteners 37 include, but are not limited to, screws, bolts, etc.

[0050] In a specific implementation, at least two sets of fixing structures are provided and symmetrically arranged on opposite sides of the mounting bracket 31, so that the light-transmitting housing 32 can be evenly fastened through multi-point force when connected to the mounting bracket 31, thereby improving the stability of the connection.

[0051] In one embodiment, the mounting bracket 31 has a mounting groove 311, and the light source assembly 33 is disposed in the mounting groove 311.

[0052] In the above embodiments, by setting a mounting groove 311 in the mounting bracket 31 and embedding the light source component 33 in the mounting groove 311, not only is the installation, positioning and stable fixation of the light source component 33 achieved, effectively preventing it from shifting or loosening due to vibration or handling during device operation; at the same time, the mounting groove 311 plays a certain role in shielding and guiding light for the light source component 33, preventing stray light leakage and ensuring that the light is concentrated and projected onto the charcoal-like area 321 at the top of the light-transmitting housing 32, thereby improving the focusing and realism of the charcoal fire simulation light effect.

[0053] In a specific implementation, the bottom of the mounting bracket 31 is provided with a recessed platform, and an mounting groove 311 is formed inside the recessed platform.

[0054] In one embodiment, the light source assembly 33 includes a substrate 331 and a plurality of light-emitting units 332; the substrate 331 is fixed in the mounting groove 311 and is communicatively connected to the control module 6; the plurality of light-emitting units 332 are all fixed to the substrate 331, and the brightness of the light-emitting units 332 fluctuates periodically.

[0055] In the above embodiments, the light source assembly 33 achieves the installation and positioning of the light-emitting unit 332 through the fixed cooperation between the substrate 331 and the mounting groove 311, ensuring that the light emission direction of the multiple light-emitting units 332 is always facing the top of the light-transmitting shell 32; the communication connection between the substrate 331 and the control module 6 enables the working state of the light-emitting unit 332 to be intelligently controlled. Combined with the design of the periodic fluctuation of the brightness of the multiple light-emitting units 332, it can highly restore the visual effect of the alternating light and dark of the flame when the real charcoal is burning, and enhance the vividness of the charcoal fire visual.

[0056] In a specific implementation, the light-emitting unit 332 uses a colored light-emitting diode (LED) lamp. The brightness of the LED is dynamically adjusted by the control module 6, causing it to gradually brighten and then dim in a periodic pattern, creating a breathing light effect. The rhythm of the brightness changes matches the actual charcoal burning process, visually highly replicating the dynamic light and shadow layers of burning charcoal and enhancing the realism of the simulation. Specifically, the LED lamp has the advantages of fast response speed, low energy consumption, long lifespan, and adjustable brightness, enabling it to achieve dynamic light effects that simulate the fluctuations in brightness during charcoal burning. It is also easy to integrate onto the substrate 331 and coordinate with the control module 6 for periodic brightness adjustment.

[0057] In a specific embodiment, the bottom of the mounting groove 311 is provided with a mounting opening 312, and the substrate 331 is fixed at the mounting opening 312. The mounting opening 312 enables the substrate 331 to be mounted and positioned, ensuring that the light-emitting unit 332 on it is accurately facing the light-transmitting shell 32, thus ensuring the stability of the light projection path and the uniformity of the charcoal fire simulation effect.

[0058] In one embodiment, a voice receiving module 7 is also included, which is mounted in the housing and is communicatively connected to the control module 6.

[0059] In the above embodiments, by setting up a voice receiving module 7, users can conveniently control the heating device through voice commands, eliminating the hassle of manually operating buttons or remote controls and enhancing the product's intelligence level.

[0060] In a specific implementation, the voice receiving module 7 is preferably a microphone.

[0061] In one embodiment, the housing assembly 1 includes a main housing 12, a first housing 13, and a second housing 14; a heating module 2 is disposed inside the main housing 12; the first housing 13 is installed at one end of the main housing 12, and the control module 6, the sound generating module 4, and the voice receiving module 7 are all disposed inside the first housing 13; the second housing 14 is installed at the other end of the main housing 12, and the second housing 14 is provided with a charcoal fire screen 15, and a charcoal fire display window 11 is disposed inside the charcoal fire screen 15; the charcoal fire simulation module 3 is disposed inside the second housing 14.

[0062] In the above embodiment, the heating module 2 is integrated within the main housing 12, providing it with an independent and stable installation space to ensure reliable operation of the heating function. The first housing 13 centrally houses the control module 6, the sound generation module 4, and the voice receiving module 7, preventing them from being affected by the temperature of the heating module 2. This also facilitates wiring and signal transmission, improving the operational stability and lifespan of the electronic components. The second housing 14 features a charcoal fire screen 15 with a charcoal fire display window 11, forming an independent visual display area. The modular layout enhances the flexibility of the overall assembly, and allows for individual disassembly of the housing containing the faulty module without requiring a complete disassembly device, reducing maintenance costs and operational complexity. Furthermore, the housing space can be optimized according to the needs of each module, avoiding wasted space in a single integrated housing.

[0063] In specific implementation methods, such as Figure 1 As shown, the first housing 13, the main housing 12, and the second housing 14 are connected in sequence along the horizontal direction. The charcoal fire screen 15 is set on the top of the second housing 14, and the charcoal fire display window 11 is set on the charcoal fire screen 15, so that the user can clearly see the visual effect of the charcoal fire simulation module 3 from the front or diagonally above, ensuring the rationality of the human-computer interaction perspective.

[0064] In a specific implementation, the charcoal fire screen 15 is made of transparent material and has a charcoal fire display window 11 for transmitting simulated light effects of the internal charcoal fire. To enhance visual focus and overall aesthetics, the remaining areas of the charcoal fire screen 15, except for the charcoal fire display window 11, are designed to be opaque. For example, a light-shielding layer is formed by spraying, screen printing, or film coating, thereby effectively shielding the internal structure, preventing stray light from leaking out, and allowing the user's gaze to naturally focus on the charcoal fire display area, enhancing the immersive and realistic feeling of the charcoal fire burning effect.

[0065] Specifically, one end of the first housing 13 is detachably connected to one end of the main housing 12, and the other end is detachably connected to a first end cap 16.

[0066] Specifically, one end of the second housing 14 is detachably connected to the other end of the main housing 12, and the other end is detachably connected to a second end cap 17.

[0067] In a specific implementation, the electrical system of the heating device is powered by AC power. After the live wire 81 and neutral wire 82 are connected, they are first grounded through the grounding terminal of the housing assembly 1 and then connected to the tilt switch 83. When the heating device tilts, the power is automatically cut off to prevent safety hazards. The main circuit enters the control module 6 after the tilt switch 83. The control module 6, as the control core of the system, communicates with the temperature detection module 5 to obtain ambient temperature data in real time and controls the working state of the heating module 2 according to preset logic. The heating module 2 consists of multiple heating units, with a non-self-resetting temperature limiter 84 and a self-resetting temperature limiter 85 connected in series at its two ends to form a dual overheat protection mechanism. The non-self-resetting temperature limiter 84 is permanently disconnected under abnormal high temperature and needs to be manually reset, while the self-resetting temperature limiter 85 can automatically restore power after the temperature returns to normal, ensuring safe operation. The control module 6 is also connected to the light source assembly 33, the sound generation module 4, the voice receiving module 7, as well as the display panel and the operation panel 86 to realize the visual effect of simulating charcoal fire, voice interaction, and user operation feedback functions.

[0068] Specifically, the AC power supply is a standard single-phase AC power supply with power parameters of 220V / 50Hz.

[0069] In one embodiment, the heating device includes an electric heater.

[0070] According to an embodiment of the present invention, another aspect provides a control method for a heating device, used in the aforementioned heating device, comprising controlling the start-up of a heating module 2, a charcoal fire simulation module 3, a sound generation module 4, and a temperature detection module 5; receiving ambient temperature data sent by the temperature detection module 5; controlling the heating module 2 and the sound generation module 4 to stop working when the ambient temperature data reaches a first temperature threshold, while controlling the charcoal fire simulation module 3 to continue working; controlling the heating module 2, the charcoal fire simulation module 3, the sound generation module 4, and the temperature detection module 5 to start working when the ambient temperature reaches a second temperature threshold; wherein the second temperature threshold is lower than the first temperature threshold.

[0071] In the above embodiment, when the ambient temperature reaches the first temperature threshold, the heating module 2 and the sound generation module 4 stop working, leaving only the charcoal fire simulation module 3 running. This avoids excessively high ambient temperatures while satisfying the user's need for the visual atmosphere of charcoal fire. When the ambient temperature drops to the second temperature threshold, all modules are automatically activated to quickly restore the heating effect, ensuring both heating comfort and a suitable atmosphere. Simultaneously, real-time data feedback from the temperature detection module 5 forms a closed-loop control system, automatically adjusting the working status of each module without manual intervention, thus improving the device's intelligence level. By setting the first and second temperature thresholds and matching the start-stop strategies of different modules, the system achieves flexible switching between coordinated operation and independent operation of the heating and charcoal fire simulation functions. By starting and stopping unnecessary modules as needed, it effectively reduces ineffective energy consumption and lowers operating costs.

[0072] In a specific implementation, the heating device is activated. A target temperature range is set, including a first temperature threshold and a second temperature threshold; wherein the second temperature threshold is lower than the first temperature threshold. The heating module 2, the light source assembly 33, and the speaker operate. The temperature detection module 5 determines whether the ambient temperature has reached the first temperature threshold; if the ambient temperature has not reached the first temperature threshold, the heating module 2, the light source assembly 33, and the speaker continue to operate; if the ambient temperature has reached the first temperature threshold, the heating module 2 and the speaker stop operating, while the light source assembly 33 remains operational. Subsequently, as the ambient temperature naturally decreases, the temperature detection module 5 continuously monitors and determines whether the ambient temperature has decreased to the second temperature threshold; if the ambient temperature has not decreased to the second temperature threshold, the heating module 2 and the speaker stop operating, while the light source assembly 33 remains operational; if the ambient temperature has decreased to the second temperature threshold, the heating module 2, the light source assembly 33, and the speaker operate simultaneously. This process repeats until the user switches to a different operating mode or turns off the heating device, thereby achieving a balance between energy-saving operation and a comfortable experience.

[0073] According to an embodiment of the present invention, in another aspect, a computer-readable storage medium is also provided, which stores computer instructions that, when executed, implement the control method of the heating device described above.

[0074] In the above embodiments, the computer-readable storage medium provided by the present invention, through the control method of the heating device using the above-described implementation method, has all the technical effects of the control method of the heating device described above.

[0075] Although embodiments of the invention have been described in conjunction with the accompanying drawings, those skilled in the art can make various modifications and variations without departing from the spirit and scope of the invention, and such modifications and variations all fall within the scope defined by the appended application.

Claims

1. A heating device, characterized in that, include: The housing assembly (1) is provided with a charcoal display window (11); A heating module (2) is disposed within the housing assembly (1); A charcoal fire simulation module (3) is disposed inside the housing assembly (1) and corresponds to the position of the charcoal fire display window (11); A sound generating module (4) is disposed within the housing assembly (1) for generating a sound that simulates the burning of charcoal; A temperature detection module (5) is disposed inside the housing assembly (1) and is used to detect the ambient temperature; The control module (6) is communicatively connected to the heating module (2), the charcoal fire simulation module (3), the sound generation module (4), and the temperature detection module (5); based on the ambient temperature data detected by the temperature detection module (5), it controls the start and stop of the heating module (2), the charcoal fire simulation module (3), and the sound generation module (4).

2. The heating device according to claim 1, characterized in that, The charcoal fire simulation module (3) includes: Mounting bracket (31) is fixed inside the housing assembly (1); The light-transmitting housing (32) is fixed at the bottom to the mounting bracket (31), and at least the top of the light-transmitting housing (32) includes a carbon-like area (321). The light source assembly (33) is fixed to the mounting bracket (31) and is communicatively connected to the control module (6), and the light emission direction of the light source assembly (33) is towards the top of the light-transmitting housing (32).

3. The heating device according to claim 2, characterized in that, The mounting bracket (31) and the light-transmitting housing (32) are limited and engaged by a limiting structure; the limiting structure includes a stop groove and a stop rib (34) that cooperate with each other, one of the stop groove and the stop rib (34) is disposed on the mounting bracket (31), and the other is disposed on the light-transmitting housing (32).

4. The heating device according to claim 2, characterized in that, The mounting bracket (31) and the light-transmitting housing (32) are fixedly connected by a fixing structure, the fixing structure including: The first lug (35) protrudes from the outer side wall of the mounting bracket (31); The second lug (36) protrudes from the outer side wall of the light-transmitting housing (32); Fastener (37) passes through the first lug (35) and connects to the second lug (36).

5. The heating device according to claim 2, characterized in that, The mounting bracket (31) is provided with a mounting groove (311), and the light source assembly (33) is located in the mounting groove (311).

6. The heating device according to claim 5, characterized in that, The light source assembly (33) includes: The substrate (331) is fixed in the mounting groove (311) and is communicatively connected to the control module (6); Multiple light-emitting units (332) are fixed to the substrate (331), and the brightness of the light-emitting units (332) fluctuates periodically.

7. The heating device according to any one of claims 1 to 6, characterized in that, It also includes a voice receiving module (7), which is installed in the housing and is communicatively connected to the control module (6).

8. The heating device according to claim 7, characterized in that, The housing assembly (1) includes: The main housing (12) is provided with the heating module (2) inside the main housing (12); The first housing (13) is installed at one end of the main housing (12), and the control module (6), the sound generation module (4) and the voice receiving module (7) are all located inside the first housing (13); The second housing (14) is installed at the other end of the main housing (12). The second housing (14) is provided with a charcoal fire screen (15), and the charcoal fire display window (11) is located in the charcoal fire screen (15). The charcoal fire simulation module (3) is located inside the second housing (14).

9. The heating device according to any one of claims 1 to 6, characterized in that, The heating device includes an electric heater.

10. A control method for a heating device, used in any one of claims 1 to 9, characterized in that, include: The control heating module (2), charcoal fire simulation module (3), sound generation module (4) and temperature detection module (5) are started; Receive ambient temperature data sent by the temperature detection module (5); According to the ambient temperature data reaching the first temperature threshold, the heating module (2) and the sound generation module (4) are controlled to stop working, while the charcoal fire simulation module (3) is controlled to continue working. When the ambient temperature reaches the second temperature threshold, the heating module (2), charcoal fire simulation module (3), sound generation module (4) and temperature detection module (5) are activated; wherein the second temperature threshold is lower than the first temperature threshold.

11. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores computer instructions, which, when executed, implement the control method of the heating device according to claim 10.