A method and device for controlling a bathroom heater, an electronic device, and a storage medium

By monitoring the temperature and humidity changes of the bathroom heater's operating environment in real time and dynamically adjusting the fan speed and heating power, the shortcomings of bathroom heaters in humidity control are solved, achieving a highly efficient dehumidification effect and preventing mold growth.

CN120740122BActive Publication Date: 2026-01-23GREE ELECTRIC APPLIANCE INC OF ZHUHAI
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Patent Information

Application Number
CN202511195244.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-08-26
Publication Date
2026-01-23
Estimated Expiration
2045-08-26

AI Technical Summary

Technical Problem

Existing bathroom heaters have shortcomings in humidity control, which makes them prone to mold growth in high humidity environments, affecting hygiene and health, and their dehumidification function is not ideal.

Method used

By acquiring real-time temperature and humidity data during the operation of the bathroom heater, calculating the relative temperature and humidity changes, and dynamically adjusting the fan speed and heating power, precise control of bathroom humidity can be achieved.

Benefits of technology

It effectively keeps the bathroom dry, prevents mold growth, improves dehumidification, and ensures a hygienic and safe living environment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the present application provides a kind of bath heater control method and device, electronic equipment, storage medium, the method comprises: obtaining the real-time temperature data and real-time humidity data in room when bath heater runs;Relative humidity change data is determined based on the real-time temperature data obtained in the preset time period, and relative humidity change data is determined based on the real-time humidity data obtained in the preset time period;According to the relative temperature change data and / or the relative humidity change data, the wind speed and / or heating power of the bath heater are controlled.By the embodiment of the present application, the wind speed and heating power of the bath heater are controlled by calculating relative temperature change and relative humidity change to maintain bathroom dry, realize dehumidification, avoid bathroom because humidity is too high to produce mould based on the real-time temperature data obtained in the preset time period determines relative temperature change data.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of device control, in particular to a bathroom heater control method and device, electronic device and storage medium. BACKGROUND

[0002] The existing bathroom heater usually only focuses on temperature adjustment, ignoring the importance of humidity control. High humidity environment is easy to cause mold breeding, affecting the bathroom hygiene and the health of the occupants.

[0003] Although some bathroom heaters have dehumidification function, they are usually manually turned on as a separate additional function, and the dehumidification effect is often not ideal, which cannot effectively inhibit the problem of high humidity in the bathroom causing mold. SUMMARY

[0004] In view of the above problems, a bathroom heater control method and device, electronic device and storage medium are provided to overcome the above problems or at least partially solve the above problems, comprising:

[0005] A bathroom heater control method, the method comprising:

[0006] obtaining real-time temperature data and real-time humidity data in a room when the bathroom heater is running;

[0007] determining relative temperature change amount data based on the real-time temperature data obtained within a preset time period, and determining relative humidity change amount data based on the real-time humidity data obtained within the preset time period;

[0008] controlling the wind speed and / or heating power of the bathroom heater according to the relative temperature change amount data and / or the relative humidity change amount data.

[0009] Optionally, the controlling the wind speed and / or heating power of the bathroom heater according to the relative temperature change amount data and / or the relative humidity change amount data comprises:

[0010] determining whether the relative humidity change amount data is lower than a first relative humidity change threshold;

[0011] when it is determined that the relative humidity change amount data is lower than the first relative humidity change threshold, controlling the fan speed of the bathroom heater to increase from a first wind speed to a second wind speed, and adjusting the heating power of the bathroom heater to a high gear power, wherein the wind speed difference between the first wind speed and the second wind speed is a first wind speed difference.

[0012] Optionally, further comprising:

[0013] when it is determined that the relative humidity change amount data is not lower than the first relative humidity change threshold, determining whether the relative humidity change amount data is higher than a second relative humidity change threshold;

[0014] determining that the relative humidity change amount data is not higher than the second relative humidity change threshold value, determining whether the relative temperature change amount data is greater than a first temperature change threshold value;

[0015] Optionally, the method further comprises:

[0016] determining that the relative humidity change amount data is not higher than the second relative humidity change threshold value, determining whether the relative temperature change amount data is greater than a first temperature change threshold value;

[0017] determining that the relative temperature change amount data is greater than the first temperature change threshold value, controlling the fan speed of the bathroom heater to decrease from the first wind speed to a fourth wind speed, wherein a wind speed difference between the first wind speed and the fourth wind speed is a second wind speed difference.

[0018] Optionally, the method further comprises:

[0019] determining that the relative temperature change amount data is not greater than the first temperature change threshold value, controlling the fan speed of the bathroom heater to increase from the first wind speed to a fifth wind speed, wherein a wind speed difference between the first wind speed and the fifth wind speed is the second wind speed difference.

[0020] Optionally, the method further comprises:

[0021] determining whether the real-time temperature data is greater than a preset temperature threshold value;

[0022] determining that the real-time temperature data is greater than the preset temperature threshold value, controlling the bathroom heater to turn off heating.

[0023] Optionally, the determining the relative temperature change amount data based on the real-time temperature data obtained within a preset time period comprises:

[0024] determining, from the real-time temperature data, a highest temperature data and a lowest temperature data within the preset time period;

[0025] determining a temperature difference value of the highest temperature data and the lowest temperature data;

[0026] determining the relative temperature change amount data based on the temperature difference value and the preset time period.

[0027] Optionally, the determining the relative temperature change amount data based on the temperature difference value and the preset time period comprises:

[0028] dividing the temperature difference value by the preset time period to obtain the relative temperature change amount data.

[0029] Optionally, the relative humidity change amount data is determined based on the humidity difference value and the preset time period, including:

[0030] The highest humidity data and the lowest humidity data in the preset time period are determined from the real-time humidity data;

[0031] A humidity difference value of the highest humidity data and the lowest humidity data is determined;

[0032] The relative humidity change amount data is determined based on the humidity difference value and the preset time period.

[0033] Optionally, the relative humidity change amount data is determined based on the humidity difference value and the preset time period, including:

[0034] The humidity difference value is divided by the preset time period to obtain the relative humidity change amount data.

[0035] A device for controlling a bath heater, the device comprising:

[0036] A real-time data acquisition module configured to acquire real-time temperature data and real-time humidity data in a room when the bath heater is running;

[0037] A relative data determination module configured to determine relative temperature change amount data based on real-time temperature data acquired in a preset time period, and determine relative humidity change amount data based on real-time humidity data acquired in the preset time period;

[0038] A bath heater control module configured to control a wind speed and / or a heating power of the bath heater according to the relative temperature change amount data and / or the relative humidity change amount data.

[0039] An electronic device comprising a processor, a memory, and a computer program stored on the memory and capable of running on the processor, the computer program being executed by the processor to implement a method for controlling a bath heater as described above.

[0040] A computer readable storage medium having a computer program stored thereon, the computer program being executed by a processor to implement a method for controlling a bath heater as described above.

[0041] Embodiments of the present application have the following advantages:

[0042] In the embodiment of the present application, real-time temperature data and real-time humidity data in a room during operation of the bath heater can be acquired; relative temperature change amount data is determined based on the real-time temperature data acquired within a preset time period, and relative humidity change amount data is determined based on the real-time humidity data acquired within the preset time period; the wind speed and / or heating power of the bath heater are controlled according to the relative temperature change amount data and / or the relative humidity change amount data, so that the wind speed and heating power of the bath heater can be controlled by calculating the relative temperature change and the relative humidity change to maintain the dryness of the bathroom, to realize dehumidification, and to avoid mold due to high humidity in the bathroom. BRIEF DESCRIPTION OF DRAWINGS

[0043] In order to more clearly illustrate the technical solutions of the present application, the drawings needed to be used in the description of the present application will be briefly introduced as follows. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can be obtained by those skilled in the art without creative labor on the basis of these drawings.

[0044] Figure 1 is a step flow chart of a bath heater control method provided by an embodiment of the present application;

[0045] Figure 2 is a step flow chart of another bath heater control method provided by an embodiment of the present application;

[0046] Figure 3 is a step flow chart of another bath heater control method provided by an embodiment of the present application;

[0047] Figure 4 is a step flow chart of another bath heater control method provided by an embodiment of the present application;

[0048] Figure 5a is a bath heater structure schematic diagram in an embodiment of the present application;

[0049] Figure 5b is another bath heater structure schematic diagram in an embodiment of the present application;

[0050] Figure 5c is a bath heater control flow schematic diagram in an embodiment of the present application;

[0051] Figure 6 is a bath heater control device structure schematic diagram provided by an embodiment of the present application. DETAILED DESCRIPTION

[0052] In order to make the above objectives, characteristics and advantages of the present application more obvious and easy to understand, the present application will be further described in detail below with reference to the drawings and specific embodiments. Obviously, the described embodiments are part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative labor fall within the scope of protection of the present application.

[0053] With reference to Figure 1 , a step flow chart of a method for controlling a bath heater is shown, which can specifically include the following steps:

[0054] In step S101, real-time temperature data and real-time humidity data in a room during operation of the bath heater are acquired.

[0055] In actual application, a temperature sensor and a humidity sensor can be arranged on the bath heater, wherein the temperature sensor can be used to detect the real-time temperature data in the room during operation of the bath heater, and the humidity sensor can be used to detect the real-time humidity data in the room during operation of the bath heater.

[0056] In an embodiment of the present application, the real-time humidity data is compared with a preset humidity range to determine whether the humidity of the bathroom environment where the bath heater is located is appropriate. When the humidity is not within the preset range, step S102 is triggered at this time, and a dehumidification process can be started.

[0057] In step S102, relative temperature change amount data is determined based on the real-time temperature data acquired within a preset time period, and relative humidity change amount data is determined based on the real-time humidity data acquired within the preset time period.

[0058] In actual application, a collection period of temperature and humidity can be set. In an embodiment of the present application, the collection period of data is the preset time period. Within the collection period, the real-time temperature data and the real-time humidity data are continuously collected, and then the relative humidity change amount data and the relative temperature change amount data can be calculated according to the data collected within the collection period.

[0059] The relative humidity change amount refers to the change value of the relative humidity within a unit time (such as 1 second, 1 minute or 1 hour). The relative temperature change amount refers to the change value of the temperature within a unit time (such as 1 second, 1 minute or 1 hour).

[0060] In an embodiment of the present application, the determination of the relative temperature change amount data based on the real-time temperature data acquired within the preset time period can include the following sub-steps:

[0061] In sub-step S11, the highest temperature data and the lowest temperature data within the preset time period are determined from the real-time temperature data.

[0062] Sub-step S12, determining a temperature difference value of the highest temperature data and the lowest temperature data.

[0063] Sub-step S13, determining a relative temperature change amount data based on the temperature difference value and the preset time period.

[0064] Specifically, the temperature difference value can be divided by the preset time period to obtain the relative temperature change amount data.

[0065] That is, the relative temperature change amount data = (the highest temperature data - the lowest temperature data) / the preset time period.

[0066] In an embodiment of the present application, the relative humidity change amount data is determined based on the real-time humidity data obtained in the preset time period, and the method comprises the following steps:

[0067] Sub-step S21, determining the highest humidity data and the lowest humidity data in the preset time period from the real-time humidity data;

[0068] Sub-step S22, determining a humidity difference value of the highest humidity data and the lowest humidity data;

[0069] Sub-step S23, determining a relative humidity change amount data based on the humidity difference value and the preset time period.

[0070] Specifically, the humidity difference value can be divided by the preset time period to obtain the relative humidity change amount data.

[0071] That is, the relative humidity change amount data = (the highest humidity data - the lowest humidity data) / the preset time period.

[0072] In the embodiment of the present application, the actual change of the temperature and humidity in the environment where the bath heater is located can be reflected by calculating the relative temperature change amount data and the relative humidity change amount data.

[0073] Step S103, controlling the air speed and / or heating power of the bath heater according to the relative temperature change amount data and / or the relative humidity change amount data.

[0074] After any one of the relative temperature change amount data and the relative humidity change amount data is calculated, a corresponding dehumidification strategy can be formulated according to the relative temperature change amount data and the relative humidity change amount data, and then the air fan assembly of the bath heater can be controlled to adjust the air speed and / or the heating assembly can be controlled to adjust the heating power.

[0075] In the embodiment of the present application, real-time temperature data and real-time humidity data in the room when the bath heater is running can be acquired; relative temperature change amount data is determined based on the real-time temperature data acquired within a preset time period, and relative humidity change amount data is determined based on the real-time humidity data acquired within the preset time period; the wind speed and / or heating power of the bath heater is controlled according to the relative temperature change amount data and / or the relative humidity change amount data, so that the wind speed and heating power of the bath heater can be controlled by calculating the relative temperature change and the relative humidity change to maintain the dryness of the bathroom, to realize dehumidification and to avoid mold due to high humidity in the bathroom.

[0076] Referring to Figure 2 , a step flow chart of another method for controlling a bath heater provided by an embodiment of the present application is shown, which can specifically include the following steps:

[0077] In step S201, real-time temperature data and real-time humidity data in the room when the bath heater is running are acquired.

[0078] In actual application, a temperature sensor and a humidity sensor can be arranged on the bath heater, wherein the temperature sensor can be used to detect the real-time temperature data in the room when the bath heater is running, and the humidity sensor can be used to detect the real-time humidity data in the room when the bath heater is running.

[0079] In an embodiment of the present application, the real-time humidity data is compared with a preset humidity range to determine whether the humidity of the bathroom environment where the bath heater is located is appropriate. When the humidity is not within the preset range, the dehumidification process is triggered to start.

[0080] In step S202, relative temperature change amount data is determined based on the real-time temperature data acquired within a preset time period, and relative humidity change amount data is determined based on the real-time humidity data acquired within the preset time period.

[0081] In actual application, a collection period of temperature and humidity can be set, and in the embodiment of the present application, the collection period of data is a preset time period. In the collection period, the real-time temperature data and the real-time humidity data are continuously collected, and then the relative humidity change amount data and the relative temperature change amount data can be calculated according to the data collected in the collection period.

[0082] The relative humidity change amount refers to the change value of the relative humidity in a unit of time (such as 1 second, 1 minute or 1 hour). The relative temperature change amount refers to the change value of the temperature in a unit of time (such as 1 second, 1 minute or 1 hour).

[0083] In step S203, it is judged whether the relative humidity change amount data is lower than a first relative humidity change threshold.

[0084] In actual application, a relative humidity change threshold value can be set, which can be used to divide different relative humidity change data, and then the relative humidity change data in different regions can be set with dehumidification strategies to improve the control accuracy.

[0085] In step S204, when it is determined that the relative humidity change data is lower than the first relative humidity change threshold value, the fan speed of the bath fan is increased from the first wind speed to the second wind speed, and the heating power of the bath fan is adjusted to the high gear power, wherein the wind speed difference between the first wind speed and the second wind speed is the first wind speed difference.

[0086] When the relative humidity change data is lower than the first relative humidity change threshold value, the humidity change rate is small at this time, so it is necessary to increase the wind speed and adjust the heating power to realize rapid dehumidification.

[0087] In the embodiment of the application, the first wind speed is the current wind speed, the second wind speed is higher than the first wind speed, and the wind speed difference between the first wind speed and the second wind speed (i.e. the first wind speed difference) can be preset, so that in this kind of scene, the wind speed can be increased according to the preset wind speed difference.

[0088] In the embodiment of the application, real-time temperature data and real-time humidity data in the room during the operation of the bath fan can be obtained; the relative temperature change data is determined based on the real-time temperature data obtained in a preset time period, and the relative humidity change data is determined based on the real-time humidity data obtained in the preset time period; it is determined whether the relative humidity change data is lower than the first relative humidity change threshold value; when it is determined that the relative humidity change data is lower than the first relative humidity change threshold value, the fan speed of the bath fan is increased from the first wind speed to the second wind speed, and the heating power of the bath fan is adjusted to the high gear power, so that the wind speed and the heating power of the bath fan can be controlled by calculating the relative temperature change and the relative humidity change to maintain the dryness of the bathroom, realize dehumidification, and avoid mold due to high humidity in the bathroom.

[0089] Referring to Figure 3 , a step flow chart of another bath fan control method provided by an embodiment of the application is shown, which can specifically include the following steps:

[0090] In step S301, real-time temperature data and real-time humidity data in the room during the operation of the bath fan are obtained.

[0091] In actual application, a temperature sensor and a humidity sensor can be arranged on the bath fan, wherein the temperature sensor can be used to detect the real-time temperature data in the room during the operation of the bath fan, and the humidity sensor can be used to detect the real-time humidity data in the room during the operation of the bath fan.

[0092] In an embodiment of the present application, the real-time humidity data is compared with a preset humidity range to determine whether the humidity of the bathroom environment where the bathroom heater is located is appropriate. When the humidity is not within the preset range, the dehumidification process is triggered.

[0093] In step S302, relative temperature change amount data is determined based on the real-time temperature data obtained within a preset time period, and relative humidity change amount data is determined based on the real-time humidity data obtained within the preset time period.

[0094] In actual application, the collection period of temperature and humidity can be set. In an embodiment of the present application, the data collection period is the preset time period. Within the collection period, real-time temperature data and real-time humidity data are continuously collected, and then the relative humidity change amount data and the relative temperature change amount data can be calculated based on the data collected within the collection period.

[0095] The relative humidity change amount refers to the change value of the relative humidity within a unit time (such as 1 second, 1 minute, or 1 hour). The relative temperature change amount refers to the change value of the temperature within a unit time (such as 1 second, 1 minute, or 1 hour).

[0096] In step S303, it is determined whether the relative humidity change amount data is lower than a first relative humidity change threshold.

[0097] In actual application, the relative humidity change threshold can be set. The relative humidity change threshold can be used to divide different relative humidity change amount data, so that the dehumidification strategies can be set for the relative humidity change amount data in different regions, thereby improving the control accuracy.

[0098] In step S304, when it is determined that the relative humidity change amount data is lower than the first relative humidity change threshold, the fan speed of the bathroom heater is increased from a first fan speed to a second fan speed, and the heating power of the bathroom heater is adjusted to a high gear power, wherein the fan speed difference between the first fan speed and the second fan speed is a first fan speed difference.

[0099] When the relative humidity change amount data is lower than the first relative humidity change threshold, the humidity change rate is small, so it is necessary to increase the fan speed and adjust the heating power at the same time to achieve rapid dehumidification.

[0100] In an embodiment of the present application, the first fan speed is the current fan speed, the second fan speed is higher than the first fan speed, and the fan speed difference (i.e. the first fan speed difference) between the first fan speed and the second fan speed can be preset, so that in this type of scenario, the fan speed can be increased according to the preset fan speed difference.

[0101] In step S305, when it is determined that the relative humidity change amount data is not lower than the first relative humidity change threshold, it is determined whether the relative humidity change amount data is higher than a second relative humidity change threshold.

[0102] When the relative humidity change amount data is not lower than the first relative humidity change threshold value, the relative humidity change amount data can be compared with a second relative humidity change threshold value, wherein the second relative humidity change threshold value is greater than the first relative humidity change threshold value. In an example, the first relative humidity change threshold value can be 3%~5%, and the second relative humidity change threshold value can be 25%~40%.

[0103] In step S306, when it is determined that the relative humidity change amount data is higher than the second relative humidity change threshold value, the fan speed of the bath fan is controlled to be reduced from the first wind speed to a third wind speed, and the heating power of the bath fan is adjusted to a low gear power, wherein the wind speed difference between the first wind speed and the third wind speed is a first wind speed difference.

[0104] When the relative humidity change amount data is higher than the second relative humidity change threshold value, it indicates that although the humidity of the current environment exceeds the expected humidity range, the humidity change rate is fast, and in such a scenario, the dehumidification task is not so urgent, so the fan speed of the bath fan can be controlled to be reduced from the first wind speed to a third wind speed, and the heating power of the bath fan is adjusted to a low gear power, realizing relatively mild dehumidification.

[0105] In an embodiment of the present application, when it is determined that the relative humidity change amount data is not higher than the second relative humidity change threshold value, it can be determined whether the relative temperature change amount data is greater than a first temperature change threshold value; and then when it is determined that the relative temperature change amount data is greater than the first temperature change threshold value, the fan speed of the bath fan can be controlled to be reduced from the first wind speed to a fourth wind speed, wherein the wind speed difference between the first wind speed and the fourth wind speed is a second wind speed difference.

[0106] That is, when the relative humidity change amount data is between the first relative humidity change threshold value and the second relative humidity change threshold value, it can be further determined whether the relative temperature change amount data is greater than the first temperature change threshold value, so as to formulate a dehumidification mode.

[0107] At this time, the relative temperature change amount data is greater than the first temperature change threshold value, so the fan speed of the bath fan can be reduced from the first wind speed to a fourth wind speed, wherein the difference between the first wind speed and the fourth wind speed is a second wind speed difference. The second wind speed difference is less than the first wind speed difference, and in an example, the first wind speed difference can be 10~50 rpm, and the second wind speed difference can be 5~20 rpm.

[0108] In addition, in the above scenario, the heating power is unchanged (such as 1200W or 800W, which can be determined according to the current working mode).

[0109] In an embodiment of the present application, when the relative humidity change amount data is between the first relative humidity change threshold and the second relative humidity change threshold, and when it is determined that the relative humidity change amount data is not greater than the first temperature change threshold, then the fan speed of the bath fan can be controlled to increase from the first wind speed to the fifth wind speed, wherein the wind speed difference between the first wind speed and the fifth wind speed is the second wind speed difference. In addition, in the above scenario, the heating power remains unchanged (e.g., 1200W or 800W, which can be determined according to the current working mode).

[0110] In an embodiment of the present application, the relative temperature change and the relative humidity change are calculated to control the wind speed and the heating power of the bath fan to maintain the dryness of the bathroom, to achieve dehumidification, and to avoid mold due to excessive humidity in the bathroom.

[0111] Referring to Figure 4 , a step flowchart of a method for controlling a bath fan according to an embodiment of the present application is shown, which can include the following steps:

[0112] In step S401, real-time temperature data and real-time humidity data in a room during operation of the bath fan are obtained.

[0113] In actual applications, a temperature sensor and a humidity sensor can be arranged on the bath fan, wherein the temperature sensor can be used to detect the real-time temperature data in the room during operation of the bath fan, and the humidity sensor can be used to detect the real-time humidity data in the room during operation of the bath fan.

[0114] In step S402, relative temperature change amount data is determined based on the real-time temperature data obtained within a preset time period, and relative humidity change amount data is determined based on the real-time humidity data obtained within the preset time period.

[0115] In actual applications, a temperature and humidity collection period can be set, and in an embodiment of the present application, the data collection period is the preset time period. During the collection period, the real-time temperature data and the real-time humidity data are continuously collected, and then the relative humidity change amount data and the relative humidity change amount data can be calculated based on the data collected within the collection period.

[0116] The relative humidity change amount refers to the change value of the relative humidity within a unit time (e.g., 1 second, 1 minute, or 1 hour). The relative temperature change amount refers to the change value of the temperature within a unit time (e.g., 1 second, 1 minute, or 1 hour).

[0117] In step S403, the wind speed and / or the heating power of the bath fan are controlled according to the relative temperature change amount data and / or the relative humidity change amount data.

[0118] After any one of the relative temperature change data and the relative humidity change data is calculated, a corresponding dehumidification strategy can be formulated according to the relative temperature change data and the relative humidity change data, and then the fan assembly of the bath heater can be controlled to adjust the air speed and / or the heating assembly to adjust the heating power.

[0119] In step S404, it is determined whether the real-time temperature data is greater than the preset temperature threshold.

[0120] In actual application, during the adjustment of the bath heater, real-time temperature data in the current environment can be obtained in real time, and then the temperature can be monitored. Specifically, the obtained real-time temperature data can be compared with the preset temperature threshold.

[0121] In step S405, when it is determined that the real-time temperature data is greater than the preset temperature threshold, the bath heater is controlled to be closed for heating.

[0122] When the real-time temperature data is greater than the preset temperature threshold, the bath heater can be controlled to be closed for heating, so as to avoid that the temperature of the environment where the bath heater is located is too high. At the same time, the air speed can continue to remain unchanged.

[0123] In the embodiment of the present application, real-time temperature data and real-time humidity data in a room during operation of the bath heater can be obtained; relative temperature change data is determined based on the real-time temperature data obtained in a preset time period, and relative humidity change data is determined based on the real-time humidity data obtained in the preset time period; the air speed and / or the heating power of the bath heater can be controlled according to the relative temperature change data and / or the relative humidity change data, so as to control the air speed and the heating power of the bath heater by calculating the relative temperature change and the relative humidity change to maintain the dryness of the bathroom, to realize dehumidification, to avoid that mold is generated in the bathroom due to too high humidity, and to determine whether the real-time temperature data is greater than the preset temperature threshold during control of the bath heater. When it is determined that the real-time temperature data is greater than the preset temperature threshold, the bath heater is controlled to be closed for heating, so as to avoid that the temperature of the environment where the bath heater is located is too high, and to ensure the safety of the equipment.

[0124] Reference Figure 5a Fig. 1 is a schematic view of a bath heater structure according to an embodiment of the present application. The bath heater structure can include a control unit, a temperature sensor, a humidity sensor, a heating assembly, and a fan assembly.

[0125] The temperature sensor can be used to detect real-time temperature data of the area where the bathroom heater is located, the humidity sensor can be used to detect real-time humidity data of the area where the bathroom heater is located, and the control unit can be used to control the heating assembly and / or the fan assembly to adjust the heating power and / or the wind speed according to the temperature data and humidity data obtained by the temperature sensor and the humidity sensor. The heating assembly can be used to adjust the heating power of the bathroom heater. In the embodiment of the present application, the heating power of the bathroom heater can be divided into high power, medium power and low power. The high power can be suitable for most household bathroom heater products, and can ensure rapid heating and effective dehumidification. For example, the high power can be set to 1500W. The low power can be suitable for low power consumption mode, so as to avoid excessive heating and high energy consumption. For example, the low power can be set to 600W. The medium power is between the high power and the low power, that is, the medium power is lower than the high power and higher than the low power. For example, the medium power can be 800-1200W, and the humidity is moderate and the temperature fluctuation is small, and the operation is balanced. The fan assembly can be used to control the wind speed. Specifically, the wind speed can be adjusted according to the fan control instruction sent by the control unit.

[0126] In the embodiment of the present application, the control unit can control the heating assembly and the fan assembly to work cooperatively, so that rapid dehumidification can be realized, and the bathroom environment can be kept in a dry state to avoid mold due to high humidity in the bathroom.

[0127] Referring to Figure 5b , another bathroom heater structure schematic diagram in the embodiment of the present application is shown; Figure 5b The three-dimensional structure schematic diagram of the bathroom heater structure is shown. The humidity sensor and the temperature sensor can be arranged on the side of the bathroom heater, and the heating assembly and the fan assembly can be arranged on the side of the bathroom heater facing the ground. When the heating assembly and the fan assembly are running, they can directly act on the ground to realize rapid dehumidification. The fan assembly can be arranged on the side of the bathroom heater shell.

[0128] Referring to Figure 5c , a flowchart of the bathroom heater control in the embodiment of the present application is shown. The process of the bathroom heater control is as follows:

[0129] In the working process of the bathroom heater, when the relative humidity of the bathroom ( ) is not in the target preset relative humidity range ( ), the fan wind speed ( ) and the heating power ( ) are adjusted according to the real-time bathroom temperature and humidity change.

[0130] Specifically, the following steps are taken:

[0131] According to the relative humidity change per unit time ( ) and the relative temperature change amount per unit time ( ) combined with the real-time temperature ( ) running wind speed and heating power adjustment:

[0132] Wherein, the relative humidity change amount refers to the change value of relative humidity per unit time (such as 1 second, 1 minute, 1 hour). 1: initial relative humidity (%), 2: final relative humidity (%), t1: initial time (s, min, h), t2: end time (s, min, h).

[0133] The relative temperature change amount refers to the change value of temperature per unit time (such as 1 second, 1 minute, 1 hour). T1: initial temperature (℃), T2: final temperature (℃), t1: initial time (s, min, h), t2: end time (s, min, h).

[0134] A, if The relative humidity is lower than the low change threshold ( ), the fan speed needs to be increased to quickly dehumidify and supplemented by high-power rapid heating, Increase the wind speed 1 ( ), run at high power ( ) (1500W (suitable for most household bath heater products, to ensure rapid heating and effective dehumidification)) ;

[0135] B, if The relative humidity is higher than the high change threshold ( ), the fan speed needs to be reduced to slowly dehumidify and supplemented by low-power slow heating, Reduce the wind speed 1 ( ), run at low power ( ) (600W (suitable for low-power mode, to avoid excessive heating and high energy consumption)) ;

[0136] C, if High But lower than , and The temperature change threshold is higher than ( ), the fan speed needs to be reduced to dehumidify, Reduce the wind speed 2 ( ), Invariable (such as 1200W or 800W, depending on the current working mode) ;

[0137] D, if High But lower than , and The temperature change threshold is lower than ), the fan speed needs to be increased to dehumidify, increase the wind speed 2 ( ), unchanged (such as 1200W or 800W, depending on the current working mode).

[0138] During the adjustment, if the temperature is detected exceeds the upper limit of the temperature value ( ), the heating is turned off, unchanged.

[0139] After a period of time (t), the above adjustment steps are repeated.

[0140] Among them, a set of recommended values for the above parameters are as follows (the values are for reference only, and the actual values can be set according to the specific scene):

[0141] The target preset relative humidity range ( ) can be {40%, 60%}, and can be determined according to the demand;

[0142] The low relative humidity change threshold value ( ) can be 3%~5%, and can be determined according to the demand;

[0143] The high relative humidity change threshold value ( ) can be 25%~40%, and can be determined according to the demand;

[0144] The temperature change threshold value ( ) can be 10~20℃, and can be determined according to the demand;

[0145] The wind speed 1 ( ) can be 10~50rpm, and can be determined according to the demand;

[0146] The wind speed 2 ( ) can be 5~20rpm, and can be determined according to the demand;

[0147] The upper limit of the temperature value ( ) can be 60~90℃, and can be determined according to the demand.

[0148] Compared with the prior art, in the embodiment of the present application, the humidity sensor and the temperature sensor are used to monitor the real-time bathroom temperature and humidity change situation, and the fan speed and heating power are adjusted dynamically, the fan auxiliary heating is controlled in sections, and the dehumidification function is linked with the heating function, which has better dehumidification efficiency, further solves the problem that the bath heater only focuses on temperature regulation, the dehumidification function is not linked with the heating function, and the dehumidification effect is not ideal, and has the beneficial effects of improving the dehumidification effect and effectively inhibiting the high humidity in the bathroom.

[0149] It should be noted that, for the method embodiments, the series of acts combined is described for simplicity, but those skilled in the art should know that the embodiments of the present application are not limited to the order of the acts described, because according to the embodiments of the present application, certain steps can be performed in other orders or at the same time. Secondly, those skilled in the art should know that the embodiments described in the specification are all preferred embodiments, and the acts involved are not necessarily the necessary acts of the embodiments of the present application.

[0150] Referring to Figure 6 , a structure schematic diagram of a device for controlling a bathroom heater is shown, which can specifically include the following modules:

[0151] The real-time data acquisition module 601 is configured to acquire real-time temperature data and real-time humidity data in a room during operation of the bathroom heater.

[0152] The relative data determination module 602 is configured to determine relative temperature change amount data based on the real-time temperature data acquired within a preset time period, and determine relative humidity change amount data based on the real-time humidity data acquired within the preset time period.

[0153] The bathroom heater control module 603 is configured to control a wind speed and / or a heating power of the bathroom heater according to the relative temperature change amount data and / or the relative humidity change amount data.

[0154] In an embodiment of the present application, the relative data determination module 602 can include:

[0155] The first relative humidity change threshold judgment sub-module is configured to determine whether the relative humidity change amount data is lower than a first relative humidity change threshold.

[0156] The first bathroom heater control sub-module is configured to, when it is determined that the relative humidity change amount data is lower than the first relative humidity change threshold, control a fan speed of the bathroom heater to increase from a first wind speed to a second wind speed, and adjust a heating power of the bathroom heater to a high gear power, wherein a wind speed difference between the first wind speed and the second wind speed is a first wind speed difference.

[0157] In an embodiment of the present application, the relative data determination module 602 further includes:

[0158] The second relative humidity change threshold judgment sub-module is configured to, when it is determined that the relative humidity change amount data is not lower than the first relative humidity change threshold, determine whether the relative humidity change amount data is higher than a second relative humidity change threshold.

[0159] The second bath heater control submodule is configured to, when determining that the relative humidity change amount data is higher than a second relative humidity change threshold, control the fan speed of the bath heater to decrease from the first wind speed to a third wind speed, and adjust the heating power of the bath heater to a low gear power, wherein a wind speed difference between the first wind speed and the third wind speed is a first wind speed difference.

[0160] In an embodiment of the present application, the relative data determination module 602 can further include:

[0161] The temperature change threshold determination submodule is configured to, when determining that the relative humidity change amount data is not higher than the second relative humidity change threshold, determine whether the relative temperature change amount data is greater than a first temperature change threshold.

[0162] The third bath heater control submodule is configured to, when determining that the relative temperature change amount data is greater than the first temperature change threshold, control the fan speed of the bath heater to decrease from the first wind speed to a fourth wind speed, wherein a wind speed difference between the first wind speed and the fourth wind speed is a second wind speed difference.

[0163] In an embodiment of the present application, the relative data determination module 602 can further include:

[0164] The fourth bath heater control submodule is configured to, when determining that the relative temperature change amount data is not greater than the first temperature change threshold, control the fan speed of the bath heater to increase from the first wind speed to a fifth wind speed, wherein a wind speed difference between the first wind speed and the fifth wind speed is the second wind speed difference.

[0165] In an embodiment of the present application, the device can further include:

[0166] The real-time temperature detection module is configured to determine whether the real-time temperature data is greater than a preset temperature threshold.

[0167] The fifth bath heater control submodule is configured to, when determining that the real-time temperature data is greater than the preset temperature threshold, control the bath heater to turn off the heating.

[0168] In an embodiment of the present application, the relative data determination module 602 can include:

[0169] The temperature maximum and minimum value determination submodule is configured to determine the highest temperature data and the lowest temperature data in a preset time period from the real-time temperature data.

[0170] The temperature difference determination submodule is configured to determine a temperature difference value of the highest temperature data and the lowest temperature data.

[0171] The relative temperature change amount determination submodule is configured to determine relative temperature change amount data based on the temperature difference value and the preset time period.

[0172] In an embodiment of the present application, the relative temperature change amount determining sub-module, when used for determining the relative humidity change amount data based on the temperature difference value and the preset time period, is specifically configured to divide the temperature difference value by the preset time period to obtain the relative temperature change amount data.

[0173] In an embodiment of the present application, the relative data determining module 602 can include:

[0174] a humidity maximum and minimum value determining sub-module, configured to determine the maximum humidity data and the minimum humidity data in a preset time period from the real-time humidity data;

[0175] a humidity difference value determining sub-module, configured to determine a humidity difference value of the maximum humidity data and the minimum humidity data;

[0176] a relative humidity change amount determining sub-module, configured to determine relative humidity change amount data based on the humidity difference value and the preset time period.

[0177] In an embodiment of the present application, the relative humidity change amount determining sub-module, when used for determining the relative humidity change amount data based on the humidity difference value and the preset time period, is specifically configured to divide the humidity difference value by the preset time period to obtain the relative humidity change amount data.

[0178] In an embodiment of the present application, the real-time temperature data and the real-time humidity data in a room during operation of a shower can be obtained; relative temperature change amount data is determined based on the real-time temperature data obtained in a preset time period, and relative humidity change amount data is determined based on the real-time humidity data obtained in the preset time period; the wind speed and / or the heating power of the shower are controlled according to the relative temperature change amount data and / or the relative humidity change amount data, so that the wind speed and the heating power of the shower can be controlled by calculating the relative temperature change and the relative humidity change to maintain the dryness of the bathroom, to realize dehumidification and to avoid mold due to too high humidity in the bathroom.

[0179] An embodiment of the present application further provides an electronic device, which can include a processor, a memory, and a computer program stored on the memory and capable of running on the processor, and the computer program is executed by the processor to implement the method for controlling the shower as above:

[0180] obtaining real-time temperature data and real-time humidity data in a room during operation of a shower;

[0181] determining relative temperature change amount data based on the real-time temperature data obtained in a preset time period, and determining relative humidity change amount data based on the real-time humidity data obtained in the preset time period;

[0182] According to the relative temperature change data and / or the relative humidity change data, the wind speed and / or the heating power of the bath heater is controlled.

[0183] The application also provides a computer readable storage medium, which stores a computer program, and the computer program is executed by a processor to realize the method of controlling the bath heater as above:

[0184] Real-time temperature data and real-time humidity data in the room when the bath heater is running are acquired;

[0185] Relative temperature change data is determined based on the real-time temperature data acquired in a preset time period, and relative humidity change data is determined based on the real-time humidity data acquired in the preset time period;

[0186] According to the relative temperature change data and / or the relative humidity change data, the wind speed and / or the heating power of the bath heater is controlled.

[0187] For the device embodiment, since it is basically similar to the method embodiment, the description is relatively simple, and the relevant parts are referred to the part of the method embodiment.

[0188] Each embodiment in the specification is described in a progressive manner, and each embodiment focuses on the difference from other embodiments. The same and similar parts between the embodiments are referred to each other.

[0189] Those skilled in the art should understand that the embodiments of the application can be provided as a method, a device, or a computer program product. Therefore, the embodiments of the application can be in the form of a complete hardware embodiment, a complete software embodiment, or an embodiment combining software and hardware aspects. Moreover, the embodiments of the application can be in the form of a computer program product implemented on one or more computer usable storage media (including but not limited to disk storage, CD-ROM, optical storage, etc.) containing computer usable program code.

[0190] The embodiments of the application are described with reference to flowcharts and / or block diagrams according to the method, terminal device (system), and computer program product of the embodiments of the application. It should be understood that each flow and / or block in the flowcharts and / or block diagrams, and the combination of the flows and / or blocks in the flowcharts and / or block diagrams can be implemented by computer program instructions. These computer program instructions can be provided to a general-purpose computer, a special-purpose computer, an embedded processor, or other programmable data processing terminal device to produce a machine, so that the instructions executed by the computer or other programmable data processing terminal device produce a device for implementing the functions specified in the flowcharts and / or block diagrams. Figure One one flow or multiple flows and / or blocks Figure Onemeans for performing the function specified by the block or blocks.

[0191] These computer program instructions can also be stored in a computer readable memory that can direct a computer or other programmable data processing apparatus to function in a particular manner, such that the instructions stored in the computer readable memory produce an article of manufacture including instructions which implement the flow Figure One one or more flow diagrams and / or blocks Figure One means for performing the function specified by the block or blocks.

[0192] These computer program instructions can also be loaded onto a computer or other programmable data processing apparatus to cause a series of operational steps to be performed on the computer or other programmable apparatus to produce a computer implemented process such that the instructions which execute on the computer or other programmable apparatus provide steps for implementing the flow Figure One one or more flow diagrams and / or blocks Figure One means for performing the function specified by the block or blocks.

[0193] While preferred embodiments of the application have been described, modifications and variations can be effected without departing from the scope of the application as set forth in the claims. Accordingly, the claims are intended to encompass all modifications and variations of the preferred embodiments of the application.

[0194] Finally, it is to be understood that the phraseology or terminology employed herein, such as "first" and "second", etc., are for descriptive purposes and should not be construed as limiting. Also, the use of "including" and "comprising" as well as other like terms is used herein to mean and convey the phrase "including but not limited to" or "comprising but not limited to" and is not used herein in the exclusive sense, that is, the items listed are not an exhaustive listing of such possible elements, and should not be construed as such. In addition, it is to be understood that the use of certain terms, such as "means for" or "step for", are used herein to convey the intended meaning of "means for performing the function" or "step for performing the function", and should not be construed as limiting.

[0195] The method and device for controlling a shower, the electronic device, and the storage medium are described in detail above. The principles and implementation manners of the present application are described by using specific examples in the present application. The above description of the embodiments is only used to help understand the method of the present application and its core idea. Meanwhile, for those skilled in the art, the specific implementation manners and application ranges can be changed according to the idea of the present application. In conclusion, the content of the present application should not be understood as a limitation.

Claims

1. A method for controlling a bathroom heater, characterized in that, The method includes: Acquire real-time temperature and humidity data in the room when the bathroom heater is running; The relative temperature change data is determined based on the real-time temperature data obtained within a preset time period, and the relative humidity change data is determined based on the real-time humidity data obtained within the preset time period. The fan speed and / or heating power of the bathroom heater are controlled based on the relative temperature change data and / or the relative humidity change data. The step of determining the relative temperature change data based on real-time temperature data acquired within a preset time period includes: The highest and lowest temperature data within a preset time period are determined from the real-time temperature data. Determine the temperature difference between the highest temperature data and the lowest temperature data; The relative temperature change data is determined based on the temperature difference and the preset time period. The step of controlling the fan speed and / or heating power of the bathroom heater based on the relative temperature change data and / or the relative humidity change data includes: Determine whether the relative humidity change data is lower than the first relative humidity change threshold; When it is determined that the relative humidity change data is lower than the first relative humidity change threshold, the fan speed of the bathroom heater is increased from the first wind speed to the second wind speed, and the heating power of the bathroom heater is adjusted to a high power level, wherein the wind speed difference between the first wind speed and the second wind speed is the first wind speed difference. When it is determined that the relative humidity change data is not lower than the first relative humidity change threshold, it is determined whether the relative humidity change data is higher than the second relative humidity change threshold. When it is determined that the relative humidity change data is higher than the second relative humidity change threshold, the fan speed of the bathroom heater is reduced from the first wind speed to the third wind speed, and the heating power of the bathroom heater is adjusted to a low power level, wherein the wind speed difference between the first wind speed and the third wind speed is the first wind speed difference. When it is determined that the relative humidity change data is not higher than the second relative humidity change threshold, it is determined whether the relative temperature change data is greater than the first temperature change threshold. When the relative temperature change data is determined to be greater than the first temperature change threshold, the fan speed of the bathroom heater is controlled to be reduced from the first wind speed to the fourth wind speed, wherein the wind speed difference between the first wind speed and the fourth wind speed is the second wind speed difference.

2. The method according to claim 1, characterized in that, Also includes: When it is determined that the relative temperature change data is not greater than the first temperature change threshold, the fan speed of the bathroom heater is controlled to be increased from the first wind speed to the fifth wind speed, wherein the wind speed difference between the first wind speed and the fifth wind speed is the second wind speed difference.

3. The method according to any one of claims 1 to 2, characterized in that, Also includes: Determine whether the real-time temperature data is greater than a preset temperature threshold; When the real-time temperature data is determined to be greater than a preset temperature threshold, the bathroom heater is controlled to turn off heating.

4. The method according to claim 1, characterized in that, The determination of relative temperature change data based on the temperature difference and the preset time period includes: The relative temperature change data is obtained by dividing the temperature difference by the preset time period.

5. The method according to claim 1, characterized in that, The determination of relative humidity change data based on real-time humidity data acquired within the preset time period includes: The highest and lowest humidity data within a preset time period are determined from the real-time humidity data; Determine the humidity difference between the highest humidity data and the lowest humidity data; The relative humidity change data is determined based on the humidity difference and the preset time period.

6. The method according to claim 5, characterized in that, The determination of relative humidity change data based on the humidity difference and the preset time period includes: The relative humidity change data is obtained by dividing the humidity difference by the preset time period.

7. A device for controlling a bathroom heater, characterized in that, The device includes: The real-time data acquisition module is used to acquire real-time temperature and humidity data in the room when the bathroom heater is running. The relative data determination module is used to determine the relative temperature change data based on real-time temperature data acquired within a preset time period, and to determine the relative humidity change data based on real-time humidity data acquired within the preset time period. The bathroom heater control module is used to control the fan speed and / or heating power of the bathroom heater based on the relative temperature change data and / or the relative humidity change data. The relative data determination module includes: The temperature maximum / minimum value determination submodule is used to determine the highest and lowest temperature data within a preset time period from the real-time temperature data; The temperature difference determination submodule is used to determine the temperature difference between the highest temperature data and the lowest temperature data. The relative temperature change determination submodule is used to determine the relative temperature change data based on the temperature difference and the preset time period. The relative data determination module includes: The first relative humidity change threshold determination submodule is used to determine whether the relative humidity change data is lower than the first relative humidity change threshold. The first bathroom heater control submodule is used to control the fan speed of the bathroom heater to increase from the first wind speed to the second wind speed when it is determined that the relative humidity change data is lower than the first relative humidity change threshold, and to adjust the heating power of the bathroom heater to a high level. The wind speed difference between the first wind speed and the second wind speed is the first wind speed difference. The relative data determination module further includes: The second relative humidity change threshold determination submodule is used to determine whether the relative humidity change data is higher than the second relative humidity change threshold when it is determined that the relative humidity change data is not lower than the first relative humidity change threshold. The second bathroom heater control submodule is used to control the fan speed of the bathroom heater to decrease from the first wind speed to the third wind speed when it is determined that the relative humidity change data is higher than the second relative humidity change threshold, and to adjust the heating power of the bathroom heater to a low power level. The wind speed difference between the first wind speed and the third wind speed is the first wind speed difference. The relative data determination module includes: The temperature change threshold judgment submodule is used to determine whether the relative temperature change data is greater than the first temperature change threshold when the relative humidity change data is determined to be no higher than the second relative humidity change threshold. The third bathroom heater control submodule is used to control the fan speed of the bathroom heater to decrease from the first wind speed to the fourth wind speed when it is determined that the relative temperature change data is greater than the first temperature change threshold. The wind speed difference between the first wind speed and the fourth wind speed is the second wind speed difference.

8. An electronic device, characterized in that, It includes a processor, a memory, and a computer program stored in the memory and capable of running on the processor, wherein the computer program, when executed by the processor, implements a method for controlling a bathroom heater as described in any one of claims 1 to 6.

9. A computer-readable storage medium, characterized in that, A computer program is stored on the computer-readable storage medium, which, when executed by a processor, implements a method for controlling a bathroom heater as described in any one of claims 1 to 6.

Citation Information

Patent Citations

  • Control method and device for air-conditioner draught fan

    CN105588272A

  • Bathroom heating device, method and equipment for controlling bathroom heating device, electronic equipment and computer readable storage medium

    CN109140578A