Household equipment control method, household equipment and computer readable storage medium

By monitoring the performance and implementing hierarchical control of the functional modules of home appliances, the problems of power consumption and response latency in standby mode have been solved, and low-power and fast wake-up functional module management has been achieved, thereby improving the energy efficiency and intelligence level of home appliances.

CN121785154APending 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

Home appliances, when in standby mode, lack differentiation of power consumption characteristics for different loads, resulting in unnecessary power consumption and response delays, which affect energy efficiency ratings and user experience.

Method used

By monitoring the performance of the functional modules of home appliances and obtaining their load characteristics, a shutdown command is sent to the functional control unit based on the load characteristics. The shutdown and wake-up of each functional module are controlled hierarchically, with different types of modules being shut down or delayed in order to achieve hierarchical control.

Benefits of technology

Without affecting user experience, it effectively reduces standby power consumption, improves energy utilization and system energy efficiency, and enhances system intelligence.

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Abstract

The invention relates to the technical field of household equipment, and discloses a household equipment control method, household equipment and a computer readable storage medium, and the household equipment control method comprises the steps: controlling the household equipment to carry out the performance monitoring of each function module; obtaining load characteristics of each functional module according to a performance monitoring result; and obtaining a standby state of the household equipment, if the household equipment enters the standby state, issuing a closing command to a function central control unit of each function module according to the load characteristics, and controlling each function module to be closed in a hierarchical manner according to the closing command. According to the control method of the home equipment, it is guaranteed that all the function modules can be awakened in time, and the power consumption of all the function modules can be effectively reduced.
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Description

Technical Field

[0001] This invention relates to the field of home appliance technology, and more specifically to control methods for home appliances, home appliances, and computer-readable storage media. Background Technology

[0002] Home appliances, such as range hoods, are complex composite systems. These systems typically integrate multiple functional modules, including a central display and control panel, smoke sensors, wireless communication modules, fan drivers, and compressor drivers. Even in standby mode, these modules consume static power, and the cumulative energy consumption of the entire system is significant, especially during prolonged standby periods, impacting the device's energy efficiency rating and user experience.

[0003] Common standby control strategies for home appliances typically employ a fixed timed shutdown mechanism, which shuts down all non-critical loads uniformly after a preset standby time. This strategy lacks differentiation based on the power consumption characteristics of different loads, easily leading to unnecessary power consumption or response delays. Summary of the Invention

[0004] This invention provides a control method for home appliances, home appliances, and a computer-readable storage medium to solve the problem that the timed shutdown mechanism of home appliances lacks differentiation of power consumption characteristics under different loads, which can easily lead to unnecessary power consumption or corresponding delays.

[0005] In a first aspect, the present invention provides a method for controlling home appliances, comprising: Control home appliances and monitor the performance of each functional module; The load characteristics of each functional module are obtained based on the performance monitoring results; The standby state of the home device is obtained. If the home device enters the standby state, a shutdown command is sent to the functional control unit of each functional module according to the load characteristics, and the shutdown command is used to control each functional module to shut down in a hierarchical manner.

[0006] Beneficial Effects: After home appliances enter standby mode, shutdown commands are sent to the central control units of each functional module based on load characteristics. These commands then control the shutdown of individual modules in a tiered manner, differentiating them according to their load characteristics. For example, modules with higher power consumption but lower wake-up latency and lower usage frequency are prioritized for shutdown, while modules with high wake-up latency are delayed or only enter a shallow standby state. This ensures timely wake-up of all functional modules while effectively reducing their power consumption. This effectively solves the problem of significantly reducing standby power consumption of home appliances without affecting user experience, improving energy efficiency, overall energy efficiency, and system intelligence.

[0007] In one alternative implementation, the method for controlling home appliances further includes: Obtain the closing execution result of the closing command by the central control unit of each of the aforementioned functional modules; The power supply to each of the functional control units is cut off according to the shutdown execution result, or each of the functional control units is controlled to enter a deep low-power mode according to the shutdown execution result.

[0008] Beneficial effects: After obtaining the shutdown execution results of the shutdown commands of each functional control unit to each functional module, the execution status of the load shutdown action of each functional module can be specifically known. After each functional control unit controls the load shutdown of the corresponding functional module, the power supply of each functional control unit is cut off or each functional control unit is controlled to enter a deep low power mode according to the shutdown execution results, so as to realize the shutdown control of functional modules and corresponding functional control units in a hierarchical manner.

[0009] In one alternative implementation, the method for controlling home appliances further includes: The wake-up status of the home device is obtained. If the home device enters the wake-up state, the functional control units are woken up after a delay according to the wake-up order. Wake-up commands are sent to the functional control units according to the wake-up order, and the functional modules are woken up according to the wake-up commands.

[0010] Beneficial effects: When home appliances enter the wake-up state, each functional control unit is first woken up with a delay according to the wake-up order, and the corresponding wake-up command is sent to the corresponding functional control unit to wake up each functional module according to the wake-up command, so that each functional module can react quickly and orderly and ensure that the wake-up command is executed in place.

[0011] In one optional implementation, the home control device monitors the performance of each functional module, including: Real-time monitoring of the operating status and usage frequency of each functional module, and acquisition of the performance parameters and self-calibration mode of each functional module; The standby conditions for each functional module to enter standby state are obtained based on the operating status, usage frequency, performance parameters, and self-calibration mode.

[0012] Beneficial Effects: The operating status, usage frequency, performance parameters, and self-calibration mode of each functional module all affect its standby conditions. Therefore, by obtaining the standby conditions for each functional module to enter standby mode based on the operating status, usage frequency, performance parameters, and self-calibration mode, home appliances can be intelligently controlled in an orderly manner. This not only ensures timely wake-up of each functional module but also effectively reduces its power consumption. This effectively solves the problem of significantly reducing standby power consumption of home appliances without affecting user experience, thereby improving energy efficiency, overall energy efficiency, and system intelligence.

[0013] In one optional implementation, obtaining the load characteristics of each functional module based on performance monitoring results includes: Monitor the power consumption characteristics of the functional control unit of each of the functional modules, and obtain the real-time data fed back by each of the functional control units; The functional modules are classified according to the power consumption characteristics and the real-time data, and the standby time threshold of each functional module is obtained.

[0014] Beneficial effects: First, the functional modules are classified according to the power consumption characteristics and the real-time data. After intelligently identifying that each functional module has entered the standby state, the standby time threshold of each functional module is obtained, and then the optimal disconnection time of each functional module is obtained. By setting the standby time threshold of different functional modules in a targeted manner, each functional module will operate in the best state and with the lowest power consumption.

[0015] In one optional implementation, acquiring the real-time data fed back by each of the functional control units includes: Obtain at least one of the following from the control units of each function: static power consumption, usage frequency, wake-up delay, and feedback status.

[0016] Beneficial effects: Static power consumption, usage frequency, wake-up delay, and feedback status can all affect the standby time of functional modules. Therefore, obtaining at least one of the static power consumption, usage frequency, wake-up delay, and feedback status from each of the functional control units can make the obtained real-time data more accurate and detailed. When classifying each functional module according to power consumption characteristics and real-time data, the obtained standby time threshold of each functional module is more accurate.

[0017] In one alternative implementation, the shutdown command includes the identifier of each functional module, the shutdown level, and the execution time.

[0018] Beneficial effects: The shutdown command includes information such as the identifier of each functional module, the shutdown level, and the execution time, ensuring the accurate and reliable distribution of data.

[0019] In one optional implementation, the step of controlling the shutdown of each functional module in a hierarchical manner according to the shutdown command includes: each functional control unit receiving the shutdown command and sequentially shutting off the power supply of each functional module according to the priority and power consumption level of each functional module.

[0020] Beneficial effects: By sequentially shutting down the power supply to each functional module according to its priority and power consumption level, the system ensures that each module can be woken up in a timely manner while effectively reducing its power consumption. This effectively solves the problem of significantly reducing the standby power consumption of home devices without affecting the user experience, thereby improving energy efficiency, overall energy efficiency, and the level of system intelligence.

[0021] In one optional implementation, after waking up each of the functional modules according to the wake-up command, the method further includes: The system obtains the wake-up execution results of each of the functional modules in response to the wake-up command, feeds back the wake-up execution results, and updates the system status information to adjust the next round of control strategy for the home devices.

[0022] Beneficial effects: It provides feedback on the wake-up execution results, ensures that the wake-up command is executed properly, and updates system status information to adjust the control strategy for the next round of home devices, thus guaranteeing wake-up services for each functional module in the future.

[0023] Secondly, the present invention also provides a home appliance, comprising: Multiple functional modules; The control module includes a central control unit and multiple functional central control units. The central control unit is communicatively connected to the multiple functional central control units, and the multiple functional central control units are communicatively connected to the multiple functional modules respectively. The central control unit is used to execute the above-described control method for home appliances.

[0024] In one optional implementation, the plurality of functional modules include: a wireless communication module, a smoke sensing module, a smoke hood drive module, a compressor module, a display module, a temperature sensing module, and a touch module.

[0025] In one alternative implementation, the home appliance is a smart range hood.

[0026] Thirdly, the present invention also provides a computer-readable storage medium storing computer instructions that, when executed, implement the above-described control method for home appliances.

[0027] Beneficial effects: The computer-readable storage medium provided by the present invention, through the control method of the home appliance using the above-described embodiments, has all the technical effects of the control method of the home appliance described above. Attached Figure Description

[0028] To more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the drawings used in the description of the specific embodiments or the prior art 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.

[0029] Figure 1 This is a first flowchart illustrating the control method for home appliances according to an embodiment of the present invention; Figure 2 This is a second flowchart illustrating the control method for home appliances according to an embodiment of the present invention; Figure 3 This is a schematic diagram of the third process of the control method for home appliances according to an embodiment of the present invention; Figure 4 This is a schematic diagram of the fourth process of the control method for home appliances according to an embodiment of the present invention; Figure 5 This is a schematic diagram of the fifth process of the control method for home appliances according to an embodiment of the present invention; Figure 6 This is a schematic diagram of the sixth process of the control method for home appliances according to an embodiment of the present invention; Figure 7 This is a schematic diagram of the seventh process of the control method for home appliances according to an embodiment of the present invention; Figure 8 This is a schematic diagram of the eighth process of the control method for home appliances according to an embodiment of the present invention. Detailed Implementation

[0030] 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.

[0031] The following is combined Figures 1 to 8 The following describes embodiments of the present invention.

[0032] According to an embodiment of the present invention, in one aspect, a method for controlling a home appliance is provided, comprising: S1. Control home appliances to monitor the performance of each functional module.

[0033] Home appliances typically have multiple functional modules, such as drive modules, detection modules, and control modules, and the performance and power consumption of these modules vary.

[0034] In one specific embodiment, when the home appliance is a smart range hood, the smart range hood may include a wireless communication module, a smoke sensing module, a range hood drive module, a compressor module, a display module, a temperature sensing module, and a touch module.

[0035] The wireless communication module (WIFI module) can be used to enable communication between the smart range hood and mobile devices or other smart devices, or to enable communication between various functional modules.

[0036] The smoke sensing module is a smoke sensor module used to sense and monitor smoke.

[0037] The range hood drive module is used to drive the range hood, thereby enabling the range hood to extract cooking fumes.

[0038] The compressor module is used for refrigeration.

[0039] The display module is used to display information about the range hood.

[0040] The touch module is used for touch control of the range hood.

[0041] S2. Obtain the load characteristics of each functional module based on the performance monitoring results.

[0042] S3. Obtain the standby state of the home device. If the home device enters the standby state, issue a shutdown command to the functional control unit of each functional module according to the load characteristics, and control each functional module to shut down in a hierarchical manner according to the shutdown command.

[0043] After home appliances enter standby mode, shutdown commands are sent to the central control units of each functional module based on load characteristics. These commands then trigger tiered control over the shutdown of individual modules, differentiating them according to their load characteristics. For example, modules with higher power consumption but lower wake-up latency and lower usage frequency are prioritized for shutdown, while modules with higher wake-up latency are delayed or only enter a shallow standby state. This ensures timely wake-up of all functional modules while effectively reducing their power consumption. This effectively solves the problem of significantly reducing standby power consumption of home appliances without impacting user experience, thereby improving energy efficiency, overall performance, and system intelligence.

[0044] In one embodiment, the method for controlling home appliances further includes: S4. Obtain the closing execution result of the closing command by the central control unit of each functional module.

[0045] The "close execution result" usually refers to the situation where each functional module executes the close command under the control of its respective functional control unit.

[0046] S5. Cut off the power supply to each of the functional control units according to the shutdown execution result, or control each of the functional control units to enter a deep low-power mode according to the shutdown execution result.

[0047] After obtaining the shutdown execution results of the shutdown commands of each functional control unit to each functional module, the execution status of the load shutdown action of each functional module can be specifically known. After each functional control unit controls the load shutdown of the corresponding functional module, the power supply of each functional control unit is cut off or each functional control unit is controlled to enter a deep low power mode according to the shutdown execution results, so as to realize the shutdown control of functional modules and corresponding functional control units in a hierarchical manner.

[0048] In one specific embodiment, when the home appliance is a smart range hood, the deep low power mode means that the power supply to the functional control unit of the compressor module and the functional control unit of the range hood drive module is completely cut off, and only the power supply to the display module is retained, and it remains in standby display state.

[0049] In one embodiment, the method for controlling home appliances further includes: S6. Obtain the wake-up status of the home device. If the home device enters the wake-up state, wake up each of the functional control units after a delay according to the wake-up order, send wake-up commands to each of the functional control units according to the wake-up order, and wake up each of the functional modules according to the wake-up commands.

[0050] When home appliances enter the wake-up state, each functional control unit is first woken up with a delay according to the wake-up order, and the corresponding wake-up command is sent to the corresponding functional control unit to wake up each functional module according to the wake-up command, so that each functional module can react quickly and orderly and ensure that the wake-up command is executed in place.

[0051] In one embodiment, the home control device monitors the performance of various functional modules, including: S11. Monitor the operating status and usage frequency of each functional module in real time, and obtain the performance parameters and self-calibration mode of each functional module.

[0052] The operating status, usage frequency, performance parameters, and self-calibration mode of each functional module will affect the standby conditions of the functional module. Therefore, real-time monitoring of the operating status and usage frequency can provide more accurate information on the standby conditions.

[0053] S12. Obtain the standby conditions for each of the functional modules to enter the standby state based on the operating status, the usage frequency, the performance parameters, and the self-calibration mode.

[0054] The operating status, usage frequency, performance parameters, and self-calibration mode of each functional module all affect its standby conditions. Therefore, by obtaining the standby conditions for each functional module to enter standby mode based on the operating status, usage frequency, performance parameters, and self-calibration mode, home appliances can be intelligently controlled in an orderly manner. This not only ensures timely wake-up of each functional module but also effectively reduces its power consumption. This effectively solves the problem of significantly reducing standby power consumption of home appliances without affecting user experience, thereby improving energy efficiency, overall energy efficiency, and system intelligence.

[0055] In one specific embodiment, if the home appliance is a smart range hood, assuming the smoke sensor in the smoke sensing module operates continuously for T hours, the relationship between the self-calibration time t of the internal self-calibration mode of the smoke sensing module and the continuous operating time T is: t = aT + b; (where a and b are parameters of the proportional formula, which need to be combined with actual operating data and manufacturer settings, or the relationship needs to be adjusted accordingly). After calculating the required self-calibration time for the smoke sensor, it is set to operate continuously for t minutes in a non-working state before shutting off the power supply to the smoke sensor, cutting off the power consumption of this functional module, and reducing the system's standby power consumption.

[0056] In one embodiment, obtaining the load characteristics of each functional module based on performance monitoring results includes: S21. Monitor the power consumption characteristics of the functional control units of each functional module, and obtain the real-time data fed back by each functional control unit.

[0057] The power consumption characteristics and real-time feedback data of the central control unit of each functional module can affect the standby time threshold of each functional module.

[0058] S22. Classify each of the functional modules according to the power consumption characteristics and the real-time data, and obtain the standby time threshold of each of the functional modules.

[0059] First, the functional modules are classified according to the power consumption characteristics and the real-time data. After intelligently identifying that each functional module has entered the standby state, the standby time threshold of each functional module is obtained, and then the optimal disconnection time of each functional module is obtained. The standby time threshold of different functional modules is set in a targeted manner, so that each functional module operates in the best state and with the lowest power consumption.

[0060] In one specific embodiment, based on the load characteristics of each functional module, the load functional modules that need to be disconnected in the same stage can be prioritized. For example, functional modules with high power consumption, low wake-up latency, and low usage frequency have a high priority for disconnection; specifically, the higher the priority, the more likely the power will be cut off.

[0061] In one embodiment, acquiring the real-time data fed back by each of the functional control units includes: S211. Obtain at least one of the following from each of the functional control units: static power consumption, usage frequency, wake-up delay, and feedback status.

[0062] Static power consumption, usage frequency, wake-up delay, and feedback status can all affect the standby time of functional modules. Therefore, obtaining at least one of the static power consumption, usage frequency, wake-up delay, and feedback status from each functional control unit can make the obtained real-time data more accurate and detailed. When classifying each functional module according to power consumption characteristics and real-time data, the obtained standby time threshold of each functional module is more accurate.

[0063] In a further implementation, a table shows the impact of the power consumption characteristics and real-time data of each functional module on the priority of power cutoff for each functional module. The static power consumption and wake-up latency are relative comparisons between functional modules, primarily depending on the actual static power consumption parameters and hardware circuit design. For example, the compressor module has higher static power consumption during operation and standby. Similarly, a more complex power switching circuit hierarchy design results in a higher wake-up latency upon power restoration after a power outage.

[0064] Table 1 - Priority of Power Cut-off for Functional Modules

[0065] In one embodiment, the shutdown command includes the identifier of each functional module, the shutdown level, and the execution time.

[0066] The shutdown command includes information such as the identifier of each functional module, the shutdown level, and the execution time, ensuring the accurate and reliable delivery of data.

[0067] In one embodiment, the step of controlling the shutdown of each functional module in a hierarchical manner according to the shutdown command includes: S31, each functional control unit receives the shutdown command and sequentially shuts off the power supply of each functional module according to the priority and power consumption level of each functional module.

[0068] Power is sequentially shut off to each functional module according to its priority and power consumption level, ensuring timely wake-up of each module while effectively reducing its power consumption. This effectively reduces standby power consumption of home devices without affecting user experience, thereby improving energy efficiency, overall energy efficiency, and system intelligence.

[0069] In one embodiment, after waking up each of the functional modules according to the wake-up command, the method further includes: S7. Obtain the wake-up execution results of each of the functional modules for the wake-up command, provide feedback on the wake-up execution results, and update the system status information to adjust the next round of control strategy for the home device.

[0070] Feedback on the wake-up execution result ensures that the wake-up command is executed properly, and updates system status information to adjust the control strategy for the next round of home devices, ensuring wake-up services for each functional module in the future.

[0071] In one specific embodiment, the static power consumption of the wireless communication module (WIFI module) is 200mA, the usage frequency is high (average 8 hours of use per day), the wake-up delay time is 300ms, the feedback status is stable, it is classified as medium priority disconnection, the standby time threshold is 10 minutes, and the power-off priority is medium (power-off can be delayed when the system load is low).

[0072] In another specific embodiment, the static power consumption of the smoke sensing module is 17mA, the usage frequency is medium (average 2 hours per day), the wake-up delay is 100ms, the feedback is relatively stable, it is classified as low-priority disconnection, the standby time threshold is 4 minutes and 45 minutes (after continuous operation for a period of time, sufficient time needs to be given for the smoke sensor to be calibrated. For example, after continuous high oil smoke operation for 2 hours, the standby time threshold is changed to 45 minutes, and after low power consumption, it is changed back to the default 4 minutes), and the power-off priority is low (power off after the wireless communication module is powered off).

[0073] In one specific embodiment, when the home appliance is a smart range hood, the real-time data table fed back by the functional control unit of each functional module includes static power consumption (when working) and average power consumption (when in standby).

[0074] Table 2 - Real-time data feedback from each functional control unit

[0075] According to an embodiment of the present invention, in another aspect, a home appliance is also provided, including multiple functional modules and a control module; the control module includes a central control unit and multiple functional central control units, the central control unit being communicatively connected to the multiple functional central control units, and the multiple functional central control units being communicatively connected to the multiple functional modules respectively; the central control unit is used to execute the above-described control method for the home appliance, including: S1, controlling the home appliance to monitor the performance of each functional module; S2, obtaining the load characteristics of each functional module based on the performance monitoring results; S3, obtaining the standby state of the home appliance; if the home appliance enters the standby state, issuing a shutdown command to the functional central control units of each functional module according to the load characteristics, and controlling the shutdown of each functional module in a hierarchical manner according to the shutdown command.

[0076] After home appliances enter standby mode, shutdown commands are sent to the central control units of each functional module based on load characteristics. These commands then trigger tiered control over the shutdown of individual modules, differentiating them according to their load characteristics. For example, modules with higher power consumption but lower wake-up latency and lower usage frequency are prioritized for shutdown, while modules with higher wake-up latency are delayed or only enter a shallow standby state. This ensures timely wake-up of all functional modules while effectively reducing their power consumption. This effectively solves the problem of significantly reducing standby power consumption of home appliances without impacting user experience, thereby improving energy efficiency, overall performance, and system intelligence.

[0077] In one embodiment, the plurality of functional modules include: a wireless communication module, a smoke sensing module, a smoke hood drive module, a compressor module, a display module, a temperature sensing module, and a touch module.

[0078] The wireless communication module (WIFI module) enables communication between the smart range hood and mobile devices or other smart devices, or between various functional modules. The smoke sensing module is used to detect and monitor smoke. The range hood drive module drives the range hood, thus enabling its fume extraction function. The compressor module is used for cooling. The display module displays information about the range hood. The touch module provides touch control for the range hood.

[0079] In one embodiment, the home appliance is a smart range hood.

[0080] According to an embodiment of the present invention, in another aspect, a computer-readable storage medium is also provided, the computer-readable storage medium storing computer instructions, which, when executed, implement the above-described control method for home appliances.

[0081] The computer-readable storage medium provided in this embodiment, through the control method of the home appliance using the above-described implementation method, has all the technical effects of the control method of the home appliance described above.

[0082] 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 this application.

Claims

1. A method for controlling home appliances, characterized in that, include: Control home appliances and monitor the performance of each functional module; The load characteristics of each functional module are obtained based on the performance monitoring results; The standby state of the home device is obtained. If the home device enters the standby state, a shutdown command is sent to the functional control unit of each functional module according to the load characteristics, and the shutdown command is used to control each functional module to shut down in a hierarchical manner.

2. The control method for home appliances according to claim 1, characterized in that, Also includes: Obtain the closing execution result of the closing command by the central control unit of each of the aforementioned functional modules; The power supply to each of the functional control units is cut off according to the shutdown execution result, or each of the functional control units is controlled to enter a deep low-power mode according to the shutdown execution result.

3. The control method for home appliances according to claim 2, characterized in that, Also includes: The wake-up status of the home device is obtained. If the home device enters the wake-up state, the functional control units are woken up after a delay according to the wake-up order. Wake-up commands are sent to the functional control units according to the wake-up order, and the functional modules are woken up according to the wake-up commands.

4. The control method for home appliances according to any one of claims 1 to 3, characterized in that, The home control device monitors the performance of each functional module, including: Real-time monitoring of the operating status and usage frequency of each functional module, and acquisition of the performance parameters and self-calibration mode of each functional module; The standby conditions for each functional module to enter standby state are obtained based on the operating status, usage frequency, performance parameters, and self-calibration mode.

5. The control method for home appliances according to any one of claims 1 to 3, characterized in that, The step of obtaining the load characteristics of each functional module based on performance monitoring results includes: Monitor the power consumption characteristics of the functional control unit of each of the functional modules, and obtain the real-time data fed back by each of the functional control units; The functional modules are classified according to the power consumption characteristics and the real-time data, and the standby time threshold of each functional module is obtained.

6. The control method for home appliances according to claim 5, characterized in that, The acquisition of real-time data fed back by each of the functional control units includes: Obtain at least one of the following from the control units of each function: static power consumption, usage frequency, wake-up delay, and feedback status.

7. The control method for home appliances according to any one of claims 1 to 3, characterized in that, The shutdown command includes the identifier, shutdown level, and execution time of each functional module; And / or, the hierarchical control of shutting down each of the functional modules according to the shutdown command includes: each of the functional control units receiving the shutdown command and sequentially shutting down the power supply of each of the functional modules according to their priority and power consumption level.

8. The control method for home appliances according to claim 3, characterized in that, After waking up each of the functional modules according to the wake-up command, the method further includes: The system obtains the wake-up execution results of each of the functional modules in response to the wake-up command, feeds back the wake-up execution results, and updates the system status information to adjust the next round of control strategy for the home devices.

9. A household appliance, characterized in that, include: Multiple functional modules; The control module includes a central control unit and multiple functional central control units. The central control unit is communicatively connected to the multiple functional central control units, and the multiple functional central control units are communicatively connected to the multiple functional modules respectively. The central control unit is used to execute the control method of the home appliance according to any one of claims 1 to 8.

10. The home appliance according to claim 9, characterized in that, The multiple functional modules include: a wireless communication module, a smoke sensing module, a range hood drive module, a compressor module, a display module, a temperature sensing module, and a touch module; And / or, the home appliance is a smart range hood.

11. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores computer instructions, which, when executed, implement the control method for the home appliance according to any one of claims 1 to 8.