Air treatment device, control method, control device and readable storage medium
By collecting bedding thermal resistance and environmental parameters, calculating the target air flow rate and humidification amount, controlling the air treatment equipment to adjust the indoor environmental parameters, solving the problem that existing equipment cannot meet sleep comfort, and achieving accurate environmental regulation and improving sleep quality.
Patent Information
- Application Number
- CN202111305649.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-11-05
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2041-11-05
AI Technical Summary
Existing indoor air treatment equipment cannot meet the user's comfort requirements in sleep mode, and cannot accurately adjust the indoor air flow rate, temperature and humidity according to the user's bedding thermal resistance and environmental parameters to improve sleep quality.
By collecting thermal resistance parameters and real-time environmental parameters of the bedding, the target air flow rate and humidification amount are calculated using the relationship, and the fan and humidification device operation are controlled to adjust indoor environmental parameters, including air flow rate, temperature and humidity.
It realizes precise adjustment of the indoor air environment according to user needs, improves the user's sleep comfort and quality, and ensures that the environmental parameters meet sleep needs without secondary adjustments.
Smart Images

Figure CN116085925B_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of air treatment equipment, and specifically relates to an air treatment equipment, a control method thereof, a control device thereof, and a readable storage medium. Background Art
[0002] In the prior art, indoor air treatment equipment can only adjust the indoor environment according to preset operating parameters in the sleep mode, and cannot meet the comfort requirements of users during sleep. Summary of the Invention
[0003] The present invention aims to solve one of the technical problems existing in the prior art or related technologies.
[0004] To this end, a first aspect of the present invention proposes a control method for an air treatment equipment.
[0005] A second aspect of the present invention proposes a control device for an air treatment equipment.
[0006] A third aspect of the present invention proposes a control device for an air treatment equipment.
[0007] A fourth aspect of the present invention proposes an air treatment equipment.
[0008] A fifth aspect of the present invention proposes a readable storage medium.
[0009] In view of this, according to a first aspect of the present invention, a control method for an air treatment equipment is proposed. The air treatment equipment includes a blower, and the control method includes: collecting first environmental parameters; obtaining a thermal resistance parameter, where the thermal resistance parameter is the heat transfer thermal resistance of the bedding; determining a set air velocity of the blower according to the first environmental parameters and the thermal resistance parameter; and controlling the blower to start operating at the set air velocity.
[0010] The control method for the air treatment equipment provided by the present invention is used to control the air treatment equipment. The air treatment equipment includes a blower, and the blower can change the air velocity of the indoor environment. The air treatment equipment is specifically selected as an indoor air treatment equipment. The indoor air treatment equipment can not only adjust the air velocity of the indoor environment, but also adjust other parameters of the indoor air. Specifically, it can change air parameters such as the temperature, humidity, and gas velocity of the indoor air. During the user's sleep, the indoor air treatment equipment can adjust the indoor air environment to make the indoor air environment suitable for the user to sleep. Among them, the indoor air treatment equipment includes an air conditioning device, an environmental parameter collection device, and a thermal resistance parameter acquisition device. The operation of the air conditioning device can adjust the indoor environmental parameters. The thermal resistance parameter acquisition device can acquire the thermal resistance parameter of the bedding, and the environmental parameter collection device can collect the indoor environmental parameters of the environment where the air conditioning device is located.
[0011] In the initial stage of operation, the air treatment device collects the current indoor environmental parameters, i.e., the first environmental parameters, and obtains the thermal resistance parameters that can reflect the thermal resistance of the bedding used by the user. During the user's sleep, the thermal resistance of the bedding has a great impact on the sleep microenvironment, that is, the thermal resistance parameters and the indoor environmental parameters will have a greater impact on the user's sleep quality. The first environmental parameters include, but are not limited to, the current indoor humidity, temperature, and air velocity. By analyzing and processing the thermal resistance parameters and the first environmental parameters, it is determined how to adjust the indoor environmental parameters to improve the user's sleep quality, that is, the set air velocity for the operation of the fan in the air treatment device is determined. Before the indoor air treatment device leaves the factory, the calculation relationship or corresponding relationship between the thermal resistance parameters and the indoor environmental parameters is stored in the local storage area of the indoor air treatment device, so that after the indoor air treatment device obtains the thermal resistance parameters and the first environmental parameters, it can obtain the target environmental parameters required during the user's sleep with the bedding corresponding to the thermal resistance parameters. The target environmental parameters include the target air velocity, so as to determine during the operation of the air treatment device. Controlling the fan to operate at the set air velocity can make the air velocity in the indoor environment more suitable for the user's sleep.
[0012] Among them, the air treatment device can be selected from one or more of an air conditioner fan, an air conditioner, a humidifier, and a fan.
[0013] In some embodiments, the air treatment device is an air conditioner fan. The user sends a control instruction to start the sleep mode to the air conditioner fan, and the air conditioner fan starts to operate after receiving the sleep mode control instruction. The air conditioner fan obtains the bedding required by the user and the thermal resistance parameters of the bedding, and collects the current indoor environmental parameters to obtain the first environmental parameters. Through calculation and processing based on the thermal resistance parameters and the first environmental parameters, the target air velocity of the user's indoor environment is obtained. According to the target air velocity and the current air velocity in the first environmental parameters, the set air velocity for the operation of the fan can be obtained. Control the fan in the air conditioner fan to blow air at the set air velocity, so that the air velocity in the environment where the user is located meets the user's sleep requirements.
[0014] In these embodiments, the sensors include a humidity sensor, a temperature sensor, and a wind speed sensor. The sensors are arranged on the air conditioner fan, and the air conditioner fan collects the actual environmental parameters through the sensors. Or the sensors are arranged on the terminal used by the user. The terminal can be selected from a watch, a mobile phone, a smart speaker, etc. Since the terminal is relatively close to the user, it can accurately collect the actual environmental parameters around the user. The terminal is communicatively connected to the air conditioner fan, and the terminal can send the collected actual environmental parameters to the air conditioner fan, so that the air conditioner fan can adjust and process the operation parameters according to the actual environmental parameters around the user, improving the accuracy of the air conditioner fan's regulation of environmental parameters. <tmp> <tmp>
[0015] According to the first environmental parameters collected in real time and the thermal resistance parameters of the bedding used by the user obtained, the present invention can determine the target air velocity in the indoor environmental parameters, thereby obtaining the set wind speed for the operation of the fan in the air handling device, and controlling the fan to blow air at the set wind speed, making the environment where the user is located more suitable for sleeping and improving the user's sleep comfort. Moreover, at the beginning stage of the operation of the air handling device, it can ensure that the air outlet speed meets the requirements of the user's sleep environment and no secondary adjustment is required.
[0016] In addition, according to the control method of the air handling device in the above technical solution provided by the present invention, the following additional technical features may also be included:
[0017] In a possible design, the first environmental parameters include the first temperature and the first humidity. Determining the set wind speed of the fan according to the first environmental parameters and the thermal resistance parameters includes: determining the set wind speed according to the first temperature, the first humidity and the thermal resistance parameters.
[0018] In this design, the first environmental parameters include the temperature parameter and the humidity parameter in the current indoor environment, that is, the first temperature and the first humidity. The relationship between the environmental parameters and the thermal resistance parameters is stored in the air handling device. The relationship includes environmental temperature, environmental humidity, thermal resistance parameter and air velocity. Therefore, the target air velocity suitable for the user to sleep can be calculated through the collected first environmental parameters and the thermal resistance parameters, and the set wind speed for the operation of the air handling device can be determined according to the target air velocity.
[0019] It can be understood that the relationship between the environmental parameters and the thermal resistance parameters is stored in the local storage area of the air handling device, and the target air velocity is calculated through the relationship. The specific relationship is as follows:
[0020] T = a - bRH + cv - dRt;
[0021] Wherein, RH is the air humidity, v is the air velocity, Rt is the thermal resistance parameter, T is the air temperature, and a, b, c, and d are all compensation coefficients.
[0022] Specifically, taking the first temperature and the first humidity in the first environmental parameters as the air temperature and the air humidity, and substituting the thermal resistance parameter into the relationship, the target air velocity can be obtained.
[0023] In some embodiments, sensors for collecting environmental parameters are provided in the air handling device. The sensors include a temperature sensor, a humidity sensor, and an air velocity sensor. After the air handling device is powered on, the temperature parameter, humidity parameter, and air velocity in the indoor environmental parameters are continuously collected through the temperature sensor, humidity sensor, and air velocity sensor. After the air handling device receives a control instruction for the sleep mode, the currently collected air humidity and air temperature are used as the first humidity and first temperature in the first environmental parameters, and the thermal resistance parameter is brought into the relational expression to obtain the target air velocity. According to the currently collected actual air velocity and the target air velocity, a compensation calculation is performed to determine the set air velocity at which the fan in the air handling device operates. Controlling the fan to blow air at the set air velocity can make the air velocity in the environment where the user is located suitable for sleep.
[0024] In some embodiments, the air handling device has a sleep mode. After the sleep mode is activated, the user can select three different environmental adjustment modes: "warm", "cool", and "suitable", and each mode in the three modes corresponds to a different compensation coefficient.
[0025] It can be understood that the value range of the constant a is from 31 to 36, the value range of the constant b is from -2 to 0.05, the value range of the constant c is from 0 to 0.75, and the value range of the constant d is from -2 to 3.
[0026] In some embodiments, when the air handling device operates under winter conditions, the value range of the constant a is from 31 to 34, the value range of the constant b is from 0.04 to 0.05, the constant c is 0, and the value range of the constant d is from -2 to -4.
[0027] In some embodiments, when the air handling device operates under summer conditions, the value range of the constant a is from 34 to 36, the value range of the constant b is from 0.04 to 0.05, the value range of the constant c is from 0.5 to 0.75, and the value range of the constant d is from 2 to 3.
[0028] In these embodiments, by setting different compensation coefficients for different modes, the user can set the environmental parameters during sleep according to their own needs.
[0029] In a possible design, the air handling device includes a humidifying device for humidifying the air flow output by the fan. After controlling the fan to start operating at the set air velocity, it further includes: collecting second environmental parameters; determining a first set humidifying amount of the humidifying device for the air flow output by the fan according to the second environmental parameters, the set air velocity, and the thermal resistance parameter; and controlling the humidifying device to operate according to the first set humidifying amount.
[0030] In this design, the air handling device further includes a humidifying device which is arranged at a position corresponding to the fan. After the humidifying device is powered on and operates, it can humidify the air flow generated by the operation of the fan. It can be understood that during the process of humidifying the air, not only the humidity of the indoor environment will change, but the temperature of the indoor environment will also change accordingly. By arranging the humidifying device and the fan in the air handling device, the air handling device can not only adjust the air flow rate in the indoor environment, but also adjust the air humidity and temperature in the indoor environment.
[0031] During the operation of the air handling device, the fan blows air at a set wind speed. At this time, the operation of the humidifying device in the air handling device is controlled. Specifically, the current environmental parameters collected by the air handling device, that is, the second environmental parameters, are obtained. Among them, the second environmental parameters include, but are not limited to, the indoor air temperature, air humidity, and air flow rate. By using the second environmental parameters, the thermal resistance parameters, and the set wind speed of the fan operation, according to the corresponding relationship or relational formula pre-stored in the local storage area, the target air humidity of the indoor environment can be determined, and the first set humidification amount of the humidifying device can be determined according to the target air humidity. When the fan continues to operate, the humidifying device is controlled according to the first set humidification amount, so that the air handling device can operate at the set wind speed and the first set humidification amount, thereby adjusting the indoor environmental air and making the indoor environmental parameters meet the user's sleep requirements.
[0032] By controlling the operation of the humidifying device during the operation of the fan, the adjustment of the air humidity and air flow rate in the indoor environment is realized, so as to ensure that the indoor environment can meet the user's sleep requirements and further improve the user's sleep quality.
[0033] In a possible design, the second environmental parameters include the second temperature and the second humidity. Determining the first set humidification amount of the humidifying device for the air flow output by the fan according to the second environmental parameters, the set wind speed, and the thermal resistance parameters includes: determining the first set humidification amount according to the second temperature, the second humidity, the set wind speed, and the thermal resistance parameters.
[0034] In this design, the second environmental parameters include the current indoor temperature parameters and humidity parameters. The second environmental parameters are the current parameter values of the indoor environment collected after the air handling device has been operating for a period of time. The relational formula between the environmental parameters and the thermal resistance parameters is stored in the air handling device. The relational formula includes environmental temperature, environmental humidity, thermal resistance parameters, and air flow rate. Therefore, through the collected second environmental parameters, the thermal resistance parameters, and the set wind speed of the current fan operation, the first set humidification amount of the air handling device operation can be calculated, and the humidifying device can be controlled to humidify the air according to the first set humidification amount.
[0035] Specifically, by substituting the second temperature, the set air velocity, and the thermal resistance parameter in the second environmental parameter into the above relationship, the target air humidity can be obtained. Based on the target air humidity and the second humidity in the second environmental parameter, the humidification amount that the air handling device still needs to humidify the air can be calculated.
[0036] In some embodiments, sensors for collecting environmental parameters are provided in the air handling device. The sensors include a temperature sensor, a humidity sensor, and an air velocity sensor. After the air handling device is powered on, the temperature parameter, the humidity parameter, and the air velocity in the indoor environmental parameters are continuously collected through the temperature sensor, the humidity sensor, and the air velocity sensor. After the air handling device receives a control instruction for the sleep mode, the currently collected air temperature is used as the second temperature in the second environmental parameter, and the set air velocity is used as the air velocity, and the thermal resistance parameter is substituted into the relationship to obtain the target air humidity. Based on the currently collected second humidity and the target air humidity, a compensation calculation is performed to determine the first set humidification amount for the operation of the humidifying device in the air handling device. Controlling the fan to blow air at the set air velocity can make the air velocity in the environment where the user is located more suitable for sleep. In a possible design, after the fan starts running at the set air velocity, it includes: collecting the third environmental parameter every set time interval; based on the third environmental parameter reaching a set condition, adjusting the set air velocity and the second set humidification amount of the air handling device according to the third environmental parameter.
[0037] In this design, during the process that the fan in the air handling device blows air at the set air velocity and the humidifying device in the air handling device humidifies the air according to the first set humidification amount, the third environmental parameter is continuously collected. Specifically, the third environmental parameter is collected once every set time interval. When the third environmental parameter reaches the set condition, the set air velocity of the fan operation in the air handling device and the second set humidification amount of the humidifying device in the air handling device are adjusted according to the third environmental parameter. It can be understood that when it is detected that the third environmental parameter meets the set condition, the operation of the air handling device is further controlled, so that the indoor environment meets the needs of the user being in a sleep state. During the process that the air handling device has been operating according to the parameters suitable for sleep, the operation parameters of the air handling device are adjusted through the continuously detected third environmental parameter, realizing the function of continuously monitoring the indoor environmental parameters during the user's sleep process and achieving the effect of improving the user's sleep quality.
[0038] In a possible design, based on the third environmental parameter reaching the set condition, adjusting the set air velocity and the second set humidification amount according to the third environmental parameter includes: obtaining the change value of the third environmental parameter; based on the change value being greater than the change threshold, adjusting the set air velocity and the second set humidification amount according to the third environmental parameter.
[0039] In this design, the third environmental parameter is collected multiple times, and the third environmental parameter collected this time is compared with the third environmental parameter collected initially to obtain the change in the third environmental parameter, and the corresponding change value is calculated accordingly. Each time a change value is calculated, the change value is numerically compared with the change threshold. When it is detected that the change value is less than the change threshold, it is determined that the current environmental parameter is still within the range of environmental parameters suitable for the user to sleep. At this time, the current operating parameters of the air handling device are maintained. When it is detected that the change value is greater than the change threshold, it is determined that the current environmental parameter is no longer suitable for the user to sleep. At this time, the operation of the air handling device is controlled according to the currently collected third environmental parameter. Specifically, one or a combination of the set wind speed of the fan operation and the second set humidification amount of the humidification device operation can be adjusted.
[0040] In some embodiments, the third environmental parameter includes the third temperature, the third humidity, and the air flow rate.
[0041] In these embodiments, when it is detected that the change value of the third humidity exceeds the humidity change threshold, it is determined that the current humidity is not suitable for the user to sleep. The target humidity is calculated based on the third temperature, the air flow rate, and the thermal resistance parameter, and the second set humidification amount of the humidification device operation is adjusted. When it is detected that the air flow rate exceeds the flow rate change threshold, it is determined that the current air flow rate is not suitable for the user to sleep. The target air flow rate is calculated based on the third temperature, the third humidity, and the thermal resistance parameter, and the set wind speed of the fan is adjusted.
[0042] The present invention continuously detects the third environmental parameter in the room and timely adjusts the operating parameters of the air handling device when the third environmental parameter changes greatly, so as to ensure that the indoor environment does not change greatly during the user's sleep process, thereby improving the user's sleep quality.
[0043] In a possible design, based on the third environmental parameter reaching the set condition, adjusting the set wind speed and the second set humidification amount according to the third environmental parameter includes: counting the number of times of collecting the third environmental parameter; based on the number of collection times being greater than the set number of times, adjusting the set wind speed and the second set humidification amount according to the third environmental parameter.
[0044] In this design, during the process of starting to collect the third environmental parameter, the number of times the third environmental parameter is collected is counted to obtain the collection times. After the collection times reach the set number, it is determined that the user is in the sleep state, and then the set air speed of the fan operation and the second set humidification amount of the humidification device operation in the air handling equipment are readjusted according to the third environmental parameter. During the collection process of the third environmental parameter, the sleep stage of the user is detected according to the collection times. When it is determined that the user is in the sleep state, the operation parameters of the air handling equipment are readjusted again according to the third environmental parameter to adjust the indoor environmental parameters and make the indoor environment more suitable for the user's sleep state.
[0045] It can be understood that the relational formula between the environmental parameter and the thermal resistance parameter is stored in the local storage area of the air handling equipment, and the target air flow rate is calculated through the relational formula. The specific relational formula is as follows:
[0046] T = a - bRH + cv - dRt;
[0047] Wherein, RH is the air humidity, v is the air flow rate, Rt is the thermal resistance parameter, T is the air temperature, and a, b, c, and d are all compensation coefficients.
[0048] In some embodiments, different sleep stages of the user can be determined according to different collection times, and different sleep stages correspond to different compensation coefficients.
[0049] In these embodiments, different relational formulas are set for different sleep stages of the user, and the compensation coefficients in different relationships are different. The sleep stage of the user is determined according to the collection times, and the relational formula corresponding to the sleep stage. The corresponding set air speed and the second set humidification amount are calculated through the relationship corresponding to the sleep stage, the third environmental parameter, and the thermal resistance parameter. When the user is in different sleep stages, the parameters output by the air handling equipment are also different, so that the indoor environment meets the sleep requirements of the user and improves the sleep quality of the user.
[0050] In a possible design, obtaining the thermal resistance parameter includes: collecting image data, where the image data includes the image of the target bedding; identifying the thermal resistance characteristics of the target bedding in the image data; and determining the thermal resistance parameter according to the thermal resistance characteristics.
[0051] In this design, the thermal resistance parameter is the thermal resistance parameter of the bedding required during the user's sleep. The air handling equipment can obtain the image data with the target bedding and identify the target bedding in the image data through the image recognition model to obtain the thermal resistance characteristics such as the body coverage rate, type, thickness, and material of the target bedding. The thermal resistance parameter can be obtained through the analysis of the thermal resistance characteristics.
[0052] It can be understood that bedding not only includes the quilt used by the user, but also includes bedding that covers the user's body such as mattresses and pajamas. Different combinations of bedding have different corresponding thermal resistance parameters. Before the air handling device leaves the factory, the corresponding relationship between the thermal resistance parameters and different bedding combinations is stored in the local storage area. After analyzing and obtaining the thermal resistance characteristics, the corresponding thermal resistance parameters can be found according to the corresponding relationship.
[0053] By identifying and analyzing the collected image data, the present invention can accurately obtain the thermal resistance parameters during the user's sleep process, further improving the accuracy of the air handling device to adjust the operating parameters according to the thermal resistance parameters.
[0054] In some embodiments, the air handling device includes an image acquisition device. When the user activates the sleep mode, the air handling device acquires image data at regular intervals through the image acquisition device to update the thermal resistance parameters, so that the air handling device can adjust the operating parameters of the air device according to the updated thermal resistance parameters.
[0055] In a possible design, obtaining the thermal resistance parameters includes: receiving bedding type information; determining the thermal resistance parameters according to the bedding type information.
[0056] In this design, the air handling device includes a communication device. The air handling device can be communicatively connected to the user terminal, and the user sends the bedding type information to the air handling device through the user terminal. After receiving the bedding type information, the air handling device can obtain the thermal resistance parameters according to the bedding type information. By providing a communication device in the air handling device, the present invention can receive the bedding setting requirements sent by the user, realizing that the user can set the sleep mode of the air handling device before going to sleep.
[0057] According to a second aspect of the present invention, a control device for an air handling device is provided. The air handling device includes a fan. The control device includes: an acquisition module for acquiring a first environmental parameter; an acquisition module for acquiring a thermal resistance parameter, where the thermal resistance parameter is the heat transfer thermal resistance of the bedding; a determination module for determining a set wind speed of the fan according to the first environmental parameter and the thermal resistance parameter; and a control module for controlling the fan to start running at the set wind speed.
[0058] The control device of the air treatment equipment provided by the present invention is used to control the air treatment equipment. The air treatment equipment includes a fan, which can change the air flow rate in the indoor environment. The air treatment equipment is specifically selected as an indoor air treatment equipment. The indoor air treatment equipment can not only adjust the air flow rate in the indoor environment, but also adjust other parameters of the indoor air. Specifically, it can change air parameters such as the temperature, humidity, and gas flow rate of the indoor air. During the user's sleep, the indoor air treatment equipment can adjust the indoor air environment to make the indoor air environment suitable for the user to sleep. Among them, the indoor air treatment equipment includes an air conditioning device, an environmental parameter collection device, and a thermal resistance parameter acquisition device. The operation of the air conditioning device can adjust the indoor environmental parameters. The thermal resistance parameter acquisition device can acquire the thermal resistance parameters of the bedding, and the environmental parameter collection device can collect the indoor environmental parameters of the environment where the air conditioning device is located.
[0059] In the initial stage of operation of the air treatment equipment, it collects the current indoor environmental parameters, that is, the first environmental parameters, and acquires the thermal resistance parameters that can reflect the thermal resistance of the bedding used by the user. During the user's sleep, the thermal resistance of the bedding has a great impact on the sleep microenvironment, that is, the thermal resistance parameters and the indoor environmental parameters will have a greater impact on the user's sleep quality. The first environmental parameters include, but are not limited to, the current indoor humidity, temperature, and air flow rate. By analyzing and processing the thermal resistance parameters and the first environmental parameters, determining how to adjust the indoor environmental parameters can improve the user's sleep quality, that is, determining the set air speed for the operation of the fan in the air treatment equipment. Before the indoor air treatment equipment leaves the factory, the calculation relationship or corresponding relationship between the thermal resistance parameters and the indoor environmental parameters is stored in the local storage area of the indoor air treatment equipment, so that after the indoor air treatment equipment acquires the thermal resistance parameters and the first environmental parameters, it can obtain the target environmental parameters required during the user's sleep using the bedding corresponding to the thermal resistance parameters. The target environmental parameters include the target air flow rate, so as to determine the operation process of the air treatment equipment. Controlling the operation of the fan according to the set air speed can make the air flow rate in the indoor environment more suitable for the user to sleep.
[0060] Among them, the air treatment equipment can be selected as one or more of an air conditioner fan, an air conditioner, a humidifier, and a fan.
[0061] In some embodiments, the air handling device is an air conditioner fan. The user sends a control instruction to start the sleep mode to the air conditioner fan, and the air conditioner fan starts to operate after receiving the sleep mode control instruction. The air conditioner fan obtains the bedding required by the user and the thermal resistance parameter of the bedding, and collects the current indoor environmental parameters to obtain the first environmental parameters. Through calculation and processing based on the thermal resistance parameter and the first environmental parameters, the target air flow rate of the user's indoor environment is obtained. Based on the target air flow rate and the current air flow rate in the first environmental parameters, the set air speed for the operation of the fan can be obtained. Control the fan in the air conditioner fan to blow air at the set air speed, so that the air flow rate in the environment where the user is located meets the user's sleep requirements.
[0062] In these embodiments, the sensors include a humidity sensor, a temperature sensor, and a wind speed sensor. The sensors are provided on the air conditioner fan, and the air conditioner fan collects the actual environmental parameters through the sensors. Or the sensors are provided on the terminal used by the user. The terminal can be a watch, a mobile phone, a smart speaker, etc. Since the terminal is relatively close to the user, it can accurately collect the actual environmental parameters around the user. The terminal is communicatively connected to the air conditioner fan, and the terminal can send the collected actual environmental parameters to the air conditioner fan, enabling the air conditioner fan to adjust and process the operating parameters according to the actual environmental parameters around the user, improving the accuracy of the air conditioner fan in regulating environmental parameters.
[0063] According to the present invention, by based on the first environmental parameters collected in real time and the thermal resistance parameter of the bedding used by the user, the target air flow rate in the indoor environmental parameters can be determined, thereby obtaining the set air speed for the operation of the fan in the air handling device, and controlling the fan to blow air at the set air speed, making the environment where the user is located more suitable for sleeping and improving the user's sleep comfort. And at the beginning stage of the operation of the air handling device, it can ensure that the air outlet speed meets the requirements of the user's sleep environment, without the need for secondary adjustment.
[0064] According to a third aspect of the present invention, a control device for an air handling device is provided, including: a memory in which a program or instruction is stored; a processor that executes the program or instruction stored in the memory to implement the steps of the control method of the air handling device in any possible design in the first aspect, and thus has all the beneficial technical effects of the control method of the air handling device in any possible design in the first aspect, and will not be elaborated here too much.
[0065] According to a fourth aspect of the present invention, an air handling device is provided, including: the control device of the air handling device defined in the above second aspect or third aspect, and thus has all the beneficial technical effects of the control device of the air handling device in the above second aspect or third aspect, and will not be elaborated here too much.
[0066] In addition, the air treatment device according to the above technical solution provided by the present invention may further have the following additional technical features:
[0067] In a possible design, the air treatment device further includes: a housing; a temperature sensor disposed in the housing for collecting the ambient temperature; and / or a humidity sensor disposed in the housing for collecting the ambient humidity.
[0068] In this design, the air treatment device further includes one or more of a temperature sensor and a humidity sensor. The ambient temperature and ambient humidity are collected by the temperature sensor and the humidity sensor, so as to ensure that the air treatment device can collect the actual environmental parameters during operation.
[0069] In a possible design, the air treatment device further includes: an image acquisition device disposed in the housing for acquiring image data, the image data including an image of a target bedding; and / or a communication device disposed in the housing for receiving bedding type information.
[0070] In this design, the air treatment device includes an image acquisition device. When the user activates the sleep mode, the air treatment device acquires image data at regular intervals through the image acquisition device to update the thermal resistance parameter, so that the air treatment device can adjust the operating parameters of the air device according to the updated thermal resistance parameter.
[0071] The air treatment device includes a communication device. The air treatment device can be communicatively connected to a user terminal, and the user sends the bedding type information to the air treatment device through the user terminal. After receiving the bedding type information, the air treatment device can obtain the thermal resistance parameter according to the bedding type information. By providing a communication device in the air treatment device, the present invention can receive the bedding setting requirements sent by the user, and realizes the setting of the sleep mode of the air treatment device by the user before going to sleep.
[0072] According to a fifth aspect of the present invention, a readable storage medium is provided. A program or instruction is stored on the readable storage medium, and when the program or instruction is executed by a processor, the steps of the control method of the air treatment device in any possible design in the first aspect above are implemented. Therefore, it has all the beneficial technical effects of the control method of the air treatment device in any possible design in the first aspect above, and will not be elaborated here too much.
[0073] The additional aspects and advantages of the present invention will become apparent in the following description section, or be learned through the practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS
[0074] The above and / or additional aspects and advantages of the present invention will become apparent and be readily understood from the description of the embodiments in conjunction with the following drawings, wherein:
[0075] Figure 1 Shows one of the schematic flowcharts of the control method of the air handling device in the first embodiment of the present invention;
[0076] Figure 2 Shows another schematic flowchart of the control method of the air handling device in the first embodiment of the present invention;
[0077] Figure 3 Shows the third schematic flowchart of the control method of the air handling device in the first embodiment of the present invention;
[0078] Figure 4 Shows the fourth schematic flowchart of the control method of the air handling device in the first embodiment of the present invention;
[0079] Figure 5 Shows the fifth schematic flowchart of the control method of the air handling device in the first embodiment of the present invention;
[0080] Figure 6 Shows the sixth schematic flowchart of the control method of the air handling device in the first embodiment of the present invention;
[0081] Figure 7 Shows the seventh schematic flowchart of the control method of the air handling device in the first embodiment of the present invention;
[0082] Figure 8 Shows the structural block diagram of the control device of the air handling device in the second embodiment of the present invention;
[0083] Figure 9 Shows the structural block diagram of the control device of the air handling device in the third embodiment of the present invention;
[0084] Figure 10 Shows the schematic diagram of the air handling device in the fourth embodiment of the present invention. Detailed implementation manners
[0085] In order to be able to more clearly understand the above objects, features and advantages of the present invention, the present invention will be further described in detail below in conjunction with the accompanying drawings and specific implementation manners. It should be noted that, without conflict, the embodiments of the present invention and the features in the embodiments can be combined with each other.
[0086] Many specific details are set forth in the following description in order to fully understand the present invention. However, the present invention may be implemented in other ways different from those described herein. Therefore, the protection scope of the present invention is not limited by the specific embodiments disclosed below.
[0087] The following refers toFigures 1 to 10 Describe an air handling device, a control method for an air handling device, a control device for an air handling device, and a readable storage medium according to some embodiments of the present invention.
[0088] Embodiment 1:
[0089] As Figure 1 shown, in the first embodiment of the present invention, a control method for an air handling device is provided. The air handling device includes a blower, and the blower is used to deliver air flow into the room. The control method includes:
[0090] Step 102, collect the first environmental parameter;
[0091] Step 104, obtain the thermal resistance parameter of the bedding;
[0092] Step 106, perform calculation processing on the thermal resistance parameter and the first environmental parameter to obtain the set air speed of the blower;
[0093] Step 108, control the blower to blow air at the set air speed.
[0094] The control method for the air handling device provided in this embodiment is used to control the air handling device. The air handling device includes a blower, and the blower can change the air flow rate in the indoor environment. The air handling device is specifically selected as an indoor air handling device. The indoor air handling device can not only adjust the air flow rate in the indoor environment, but also adjust other parameters of the indoor air. Specifically, it can change air parameters such as the temperature, humidity, and gas flow rate of the indoor air. During the user's sleep, the indoor air handling device can adjust the indoor air environment to make the indoor air environment suitable for the user to sleep. Among them, the indoor air handling device includes an air conditioning device, an environmental parameter collection device, and a thermal resistance parameter acquisition device. The operation of the air conditioning device can adjust the indoor environmental parameters, the thermal resistance parameter acquisition device can obtain the thermal resistance parameter of the bedding, and the environmental parameter collection device can collect the indoor environmental parameters of the environment where the air conditioning device is located.
[0095] In the initial stage of operation, the air treatment device collects the current indoor environmental parameters, i.e., the first environmental parameters, and obtains the thermal resistance parameters that can reflect the thermal resistance of the bedding used by the user. During the user's sleep, the thermal resistance of the bedding has a great impact on the sleep microenvironment, that is, the thermal resistance parameters and the indoor environmental parameters will have a greater impact on the user's sleep quality. The first environmental parameters include, but are not limited to, the current indoor humidity, temperature, and air velocity. By analyzing and processing the thermal resistance parameters and the first environmental parameters, it is determined how to adjust the indoor environmental parameters to improve the user's sleep quality, that is, the set air velocity of the fan operation in the air treatment device is determined. Before the indoor air treatment device leaves the factory, the calculation relationship or corresponding relationship between the thermal resistance parameters and the indoor environmental parameters is stored in the local storage area of the indoor air treatment device, so that after the indoor air treatment device obtains the thermal resistance parameters and the first environmental parameters, the target environmental parameters required during the user's sleep using the bedding corresponding to the thermal resistance parameters can be obtained. The target environmental parameters include the target air velocity, so as to determine the operation of the air treatment device. Controlling the fan to operate at the set air velocity can make the air velocity in the indoor environment more suitable for the user's sleep.
[0096] Among them, the air treatment device can be selected from one or more of an air conditioner fan, an air conditioner, a humidifier, and a fan.
[0097] In some embodiments, the air treatment device is an air conditioner fan. The user sends a control instruction to start the sleep mode to the air conditioner fan. After receiving the sleep mode control instruction, the air conditioner fan starts to operate. The air conditioner fan obtains the bedding required by the user and the thermal resistance parameters of the bedding, and collects the current indoor environmental parameters to obtain the first environmental parameters. Through calculation and processing based on the thermal resistance parameters and the first environmental parameters, the target air velocity of the user's indoor environment is obtained. According to the target air velocity and the current air velocity in the first environmental parameters, the set air velocity of the fan operation can be obtained. Control the fan in the air conditioner fan to blow air at the set air velocity, so that the air velocity in the environment where the user is located meets the user's sleep requirements.
[0098] In these embodiments, the sensors include a humidity sensor, a temperature sensor, and a wind speed sensor. The sensors are arranged on the air conditioner fan, and the air conditioner fan collects the actual environmental parameters through the sensors. Or the sensors are arranged on the terminal used by the user. The terminal can be selected from a watch, a mobile phone, a smart speaker, etc. Since the terminal is relatively close to the user, the actual environmental parameters around the user can be accurately collected. The terminal is communicatively connected to the air conditioner fan, and the terminal can send the collected actual environmental parameters to the air conditioner fan, so that the air conditioner fan can adjust and process the operation parameters according to the actual environmental parameters around the user, improving the accuracy of the air conditioner fan's regulation of environmental parameters.
[0099] In this embodiment, based on the first environmental parameters collected in real time and the thermal resistance parameters of the bedding used by the user, the target air velocity in the indoor environmental parameters can be determined, so as to obtain the set air velocity for the operation of the fan in the air handling device, and control the fan to blow air at the set air velocity, making the environment where the user is located more suitable for sleeping and improving the user's sleep comfort. Moreover, at the beginning stage of the operation of the air handling device, it can ensure that the air outlet velocity meets the requirements of the user's sleep environment, without the need for secondary adjustment.
[0100] In any of the above embodiments, the first environmental parameters include the first temperature and the first humidity. Calculating and processing the thermal resistance parameters and the first environmental parameters to obtain the set air velocity of the fan specifically includes: processing and calculating the thermal resistance parameters, the first temperature and the first humidity to obtain the set air velocity.
[0101] In this embodiment, the first environmental parameters include the temperature parameter and the humidity parameter in the current indoor environment, that is, the first temperature and the first humidity. The relationship between the environmental parameters and the thermal resistance parameters is stored in the air handling device. The relationship formula includes environmental temperature, environmental humidity, thermal resistance parameter and air velocity. Therefore, the target air velocity suitable for the user's sleep can be calculated through the collected first environmental parameters and the thermal resistance parameters, and the set air velocity for the operation of the air handling device can be determined according to the target air velocity.
[0102] It can be understood that the relationship formula between the environmental parameters and the thermal resistance parameters is stored in the local storage area of the air handling device, and the target air velocity is calculated through the relationship formula. The specific relationship formula is as follows:
[0103] T=a - bRH + cv - dRt;
[0104] Wherein, RH is the air humidity, v is the air velocity, Rt is the thermal resistance parameter, T is the air temperature, and a, b, c, and d are all compensation coefficients.
[0105] Specifically, taking the first temperature and the first humidity in the first environmental parameters as the air temperature and the air humidity, and substituting the thermal resistance parameter into the relationship formula, the target air velocity can be obtained.
[0106] In some embodiments, sensors for collecting environmental parameters are provided in the air handling device. The sensors include a temperature sensor, a humidity sensor, and an air velocity sensor. After the air handling device is powered on, the temperature parameter, humidity parameter, and air velocity in the indoor environmental parameters are continuously collected through the temperature sensor, humidity sensor, and air velocity sensor. After the air handling device receives a control instruction for the sleep mode, the currently collected air humidity and air temperature are used as the first humidity and first temperature in the first environmental parameters, and the thermal resistance parameter is brought into the relational expression to obtain the target air velocity. According to the currently collected actual air velocity and the target air velocity, a compensation calculation is performed to determine the set air velocity at which the fan in the air handling device operates. Controlling the fan to blow air at the set air velocity can make the air velocity in the environment where the user is located suitable for sleeping.
[0107] In some embodiments, the air handling device has a sleep mode. After the sleep mode is activated, the user can select three different environmental adjustment modes: "warm", "cool", and "suitable", and each mode among the three modes corresponds to a different compensation coefficient.
[0108] It can be understood that the value range of the constant a is from 31 to 36, the value range of the constant b is from -2 to 0.05, the value range of the constant c is from 0 to 0.75, and the value range of the constant d is from -2 to 3.
[0109] In some embodiments, when the air handling device operates under winter conditions, the value range of the constant a is from 31 to 34, the value range of the constant b is from 0.04 to 0.05, the constant c is 0, and the value range of the constant d is from -2 to -4.
[0110] In some embodiments, when the air handling device operates under summer conditions, the value range of the constant a is from 34 to 36, the value range of the constant b is from 0.04 to 0.05, the value range of the constant c is from 0.5 to 0.75, and the value range of the constant d is from 2 to 3.
[0111] In these embodiments, by setting different compensation coefficients for different modes, the user can set the environmental parameters during sleep according to their own needs.
[0112] As Figure 2 shown, in any of the above embodiments, the air handling device includes a humidifying device, and the humidifying device can humidify the output air flow. After controlling the fan to blow air at the set air velocity, it further includes:
[0113] Step 202, collecting the second environmental parameters;
[0114] Step 204, performing calculation processing on the thermal resistance parameter, the second environmental parameter, and the set air velocity to obtain the first set humidification amount;
[0115] Step 206, control the humidifying device to humidify the air according to the first set humidifying amount.
[0116] In this embodiment, the air treatment device further includes a humidifying device. The humidifying device is arranged at a position corresponding to the fan. After the humidifying device is powered on and operates, it can humidify the air flow generated by the operation of the fan. It can be understood that during the process of humidifying the air, not only the humidity of the indoor environment will change, but the temperature of the indoor environment will also change accordingly. By arranging a humidifying device and a fan in the air treatment device, the air treatment device can not only adjust the air flow rate in the indoor environment, but also adjust the air humidity and temperature in the indoor environment.
[0117] During the operation of the air treatment device, the fan blows air at a set wind speed. At this time, the operation of the humidifying device in the air treatment device is controlled. Specifically, obtain the current environmental parameters collected by the air treatment device, that is, the second environmental parameters. Among them, the second environmental parameters include, but are not limited to, the air temperature, air humidity, and air flow rate in the room. By using the second environmental parameters, the thermal resistance parameter, and the set wind speed of the fan operation, according to the corresponding relationship pre-stored in the local storage area, or the relational formula, the target air humidity of the indoor environment can be determined, and the first set humidifying amount of the humidifying device can be determined according to the target air humidity. When the fan continues to operate, control the humidifying device according to the first set humidifying amount, so that the air treatment device can operate at the set wind speed and the first set humidifying amount, thereby adjusting the indoor environmental air and making the indoor environmental parameters meet the user's sleep requirements.
[0118] By controlling the operation of the humidifying device during the operation of the fan, the adjustment of the air humidity and air flow rate in the indoor environmental air is realized, so as to ensure that the indoor environment can meet the user's sleep requirements and further improve the user's sleep quality.
[0119] In any of the above embodiments, the second environmental parameters include the second humidity and the second temperature. Calculating and processing the thermal resistance parameter, the second environmental parameters, and the set wind speed to obtain the first set humidifying amount specifically includes: calculating and processing the thermal resistance parameter, the second temperature, the set humidity, and the second humidity to obtain the first set humidifying amount.
[0120] In this embodiment, the second environmental parameter includes the temperature parameter and the humidity parameter of the current indoor environment. The second environmental parameter is the current parameter value of the indoor environment collected after the air handling device has been operating for a period of time. The air handling device stores the relational formula between the environmental parameter and the thermal resistance parameter. The relational formula includes the environmental temperature, the environmental humidity, the thermal resistance parameter, and the air flow rate. Therefore, through the collected second environmental parameter, the thermal resistance parameter, and the set air flow rate of the current fan operation, the first set humidification amount of the air handling device operation can be calculated, and the humidification device can be controlled to humidify the air according to the first set humidification amount.
[0121] Specifically, by substituting the second temperature, the set air flow rate, and the thermal resistance parameter in the second environmental parameter into the above relational formula, the target air humidity can be obtained. According to the target air humidity and the second humidity in the second environmental parameter, the humidification amount that the air handling device still needs to humidify the air can be calculated.
[0122] In some embodiments, sensors for collecting environmental parameters are provided in the air handling device. The sensors include a temperature sensor, a humidity sensor, and an air flow rate sensor. After the air handling device is powered on, the temperature parameter, the humidity parameter, and the air flow rate in the indoor environmental parameter are continuously collected through the temperature sensor, the humidity sensor, and the air flow rate sensor. After the air handling device receives the control instruction for the sleep mode, the currently collected air temperature is used as the second temperature in the second environmental parameter, the set air flow rate is used as the air flow rate, and the thermal resistance parameter is brought into the relational formula to obtain the target air humidity. According to the currently collected second humidity and the target air humidity for compensation calculation, the first set humidification amount of the humidification device operation in the air handling device can be determined. Controlling the fan to blow air at the set air flow rate can make the air flow rate in the environment where the user is located more suitable for sleep.
[0123] As Figure 3 shown, in any of the above embodiments, after controlling the fan to blow air at the set air flow rate, it further includes:
[0124] Step 302, collecting the third environmental parameter at intervals of a set duration;
[0125] Step 304, when the third environmental parameter reaches the set condition, adjusting the second set humidification amount and the set air flow rate according to the third environmental parameter.
[0126] In this embodiment, while the fan in the air handling device blows air at a set wind speed and the humidifying device in the air handling device humidifies the air at a first set humidification amount, the third environmental parameter is continuously collected. Specifically, the third environmental parameter is collected once every set time period. When the third environmental parameter reaches the set condition, the set wind speed at which the fan in the air handling device operates and the second set humidification amount of the humidifying device in the air handling device are adjusted according to the third environmental parameter. It can be understood that when it is detected that the third environmental parameter meets the set condition, the operation of the air handling device is further controlled so that the indoor environment meets the needs of the user being in a sleeping state. During the process that the air handling device has been operating according to the parameters suitable for sleeping, the operation parameters of the air handling device are adjusted through the continuously detected third environmental parameter, achieving the effect of continuously monitoring the indoor environmental parameter during the user's sleep process and improving the user's sleep quality.
[0127] As Figure 4 shown, in any of the above embodiments, when the third environmental parameter reaches the set condition, the second set humidification amount and the set wind speed are adjusted according to the third environmental parameter, specifically including:
[0128] Step 402, determining a parameter change value according to the third environmental parameter collected multiple times;
[0129] Step 404, when the change value is greater than the change threshold, adjusting the second set humidification amount and the set wind speed according to the third environmental parameter.
[0130] In this embodiment, the third environmental parameter is collected multiple times, and the third environmental parameter collected this time is compared with the third environmental parameter collected initially to obtain the change of the third environmental parameter, and the corresponding change value is calculated accordingly. Each time a change value is calculated, the change value is numerically compared with the change threshold. When it is detected that the change value is less than the change threshold, it is determined that the current environmental parameter is still within the range of the environmental parameter suitable for the user to sleep, and at this time, the current operation parameters of the air handling device are maintained. When it is detected that the change value is greater than the change threshold, it is determined that the current environmental parameter is no longer suitable for the user to sleep, and at this time, the operation of the air handling device is controlled according to the currently collected third environmental parameter. Specifically, one or a combination of the set wind speed at which the fan operates and the second set humidification amount at which the humidifying device operates can be adjusted.
[0131] In some embodiments, the third environmental parameter includes the third temperature, the third humidity, and the air flow rate.
[0132] In these embodiments, when it is detected that the change value of the third humidity exceeds the humidity change threshold, it is determined that the current humidity is not suitable for the user to sleep. The target humidity is calculated based on the third temperature, air velocity, and thermal resistance parameters, and the second set humidification amount of the humidifying device is adjusted. When it is detected that the air velocity exceeds the velocity change threshold, it is determined that the current air velocity is not suitable for the user to sleep. The target air velocity is calculated based on the third temperature, third humidity, and thermal resistance parameters, and the set wind speed of the fan is adjusted.
[0133] In this embodiment, by continuously detecting the third environmental parameter in the room and timely adjusting the operating parameters of the air treatment device when the third environmental parameter changes greatly, it is ensured that the indoor environment will not change greatly during the user's sleep process, thereby improving the user's sleep quality.
[0134] As Figure 5 shown, in any of the above embodiments, when the third environmental parameter reaches the set condition, the second set humidification amount and the set wind speed are adjusted according to the third environmental parameter, specifically including:
[0135] Step 502, count the number of times the third environmental parameter is collected to obtain the collection times;
[0136] Step 504, when it is detected that the collection times are greater than the set times, adjust the second set humidification amount and the set wind speed according to the third environmental parameter.
[0137] In this embodiment, during the process of starting to collect the third environmental parameter, the number of times the third environmental parameter is collected is counted to obtain the collection times. After the collection times reach the set times, it is determined that the user is in the sleep state, and then the set wind speed of the fan operation and the second set humidification amount of the humidifying device operation in the air treatment device are readjusted according to the third environmental parameter. During the collection process of the third environmental parameter, the user's sleep stage is detected according to the collection times. When it is determined that the user is in the sleep state, the operating parameters of the air treatment device are readjusted according to the third environmental parameter to adjust the indoor environmental parameter to make the indoor environment more suitable for the user's sleep state.
[0138] It can be understood that the relational expression between the environmental parameter and the thermal resistance parameter is stored in the local storage area of the air treatment device, and the target air velocity is calculated through the relational expression. The specific relational expression is as follows:
[0139] T=a - bRH + cv - dRt;
[0140] wherein, RH is the air humidity, v is the air velocity, Rt is the thermal resistance parameter, T is the air temperature, and a, b, c, and d are all compensation coefficients.
[0141] In some embodiments, different sleep stages of a user can be determined according to different collection times, and different compensation coefficients correspond to different sleep stages.
[0142] In these embodiments, different relational expressions are set for different sleep stages of the user, and the compensation coefficients in different relations are different. The sleep stage of the user is determined according to the collection times, and the relational expression corresponding to the sleep stage. The corresponding set air velocity and second set humidification amount are calculated through the relation corresponding to the sleep stage, the third environmental parameter, and the thermal resistance parameter. When the user is in different sleep stages, the parameters output by the air handling device are also different, so that the indoor environment meets the sleep requirements of the user and improves the sleep quality of the user.
[0143] Such as Figure 6 shown, in any of the above embodiments, obtaining the thermal resistance parameter of the bedding includes:
[0144] Step 602, collecting image data including the target bedding;
[0145] Step 604, identifying the thermal resistance characteristics of the target bedding in the image data;
[0146] Step 606, determining the thermal resistance parameter according to the thermal resistance characteristics.
[0147] In this embodiment, the thermal resistance parameter is the thermal resistance parameter of the bedding required by the user during sleep. The air handling device can obtain the image data with the target bedding and identify the target bedding in the image data through an image recognition model to obtain thermal resistance characteristics such as the body coverage rate, type, thickness, and material of the target bedding. The thermal resistance parameter can be obtained through the analysis of the thermal resistance characteristics.
[0148] It can be understood that the bedding not only includes the quilt used by the user, but also includes bedding covering the user's body such as a mattress and pajamas. Different combinations of bedding correspond to different thermal resistance parameters. Before the air handling device leaves the factory, the corresponding relationship between the thermal resistance parameters and different bedding combinations is stored in the local storage area. After the thermal resistance characteristics are analyzed, the corresponding thermal resistance parameter can be found according to the corresponding relationship.
[0149] This embodiment can accurately obtain the thermal resistance parameter during the user's sleep by identifying and analyzing the collected image data, and further improves the accuracy of the air handling device to adjust the operating parameters through the thermal resistance parameter.
[0150] In some embodiments, the air handling device includes an image acquisition device. When the user activates the sleep mode, the air handling device collects image data at regular intervals through the image acquisition device to update the thermal resistance parameter, so that the air handling device can adjust the operating parameters of the air device according to the updated thermal resistance parameter.
[0151] As Figure 7 shown, in any of the above embodiments, obtaining the thermal resistance parameter of the bedding includes:
[0152] Step 702, receiving the bedding type information sent by the user terminal;
[0153] Step 704, determining the thermal resistance parameter according to the bedding type information.
[0154] In this embodiment, the air handling device includes a communication device. The air handling device can be communicatively connected to the user terminal. The user sends the bedding type information to the air handling device through the user terminal. After receiving the bedding type information, the air handling device can obtain the thermal resistance parameter according to the bedding type information. By providing a communication device in the air handling device, the present invention can receive the bedding setting requirements sent by the user, realizing that the user can set the sleep mode of the air handling device before going to sleep.
[0155] Embodiment Two:
[0156] As Figure 8 shown, in the second embodiment of the present invention, a control device 800 of an air handling device is provided. The air handling device includes a blower. The control device includes:
[0157] An acquisition module 802 for acquiring the first environmental parameter;
[0158] An obtaining module 804 for obtaining the thermal resistance parameter of the bedding;
[0159] A determination module 806 for performing calculation processing on the thermal resistance parameter and the first environmental parameter to obtain the set air speed of the blower;
[0160] A control module 808 for controlling the blower to blow air at the set air speed.
[0161] The control device 800 of the air treatment equipment provided in this embodiment is used to control the air treatment equipment. The air treatment equipment includes a fan, which can change the air flow rate in the indoor environment. The air treatment equipment is specifically selected as an indoor air treatment equipment. The indoor air treatment equipment can not only adjust the air flow rate in the indoor environment, but also adjust other parameters of the indoor air. Specifically, it can change air parameters such as the temperature, humidity, and gas flow rate of the indoor air. During the user's sleep, the indoor air treatment equipment can adjust the indoor air environment to make it suitable for the user to sleep. Among them, the indoor air treatment equipment includes an air conditioning device, an environmental parameter acquisition device, and a thermal resistance parameter acquisition device. The operation of the air conditioning device can adjust the indoor environmental parameters. The thermal resistance parameter acquisition device can acquire the thermal resistance parameters of the bedding, and the environmental parameter acquisition device can acquire the indoor environmental parameters of the environment where the air conditioning device is located.
[0162] In the initial stage of operation of the air treatment equipment, it collects the current indoor environmental parameters, that is, the first environmental parameters, and acquires the thermal resistance parameters that can reflect the thermal resistance of the bedding used by the user. During the user's sleep, the thermal resistance of the bedding has a great impact on the sleep microenvironment, that is, the thermal resistance parameters and the indoor environmental parameters will have a greater impact on the user's sleep quality. The first environmental parameters include, but are not limited to, the current indoor humidity, temperature, and air flow rate. By analyzing and processing the thermal resistance parameters and the first environmental parameters, determining how to adjust the indoor environmental parameters can improve the user's sleep quality, that is, determining the set air speed for the operation of the fan in the air treatment equipment. Before the indoor air treatment equipment leaves the factory, the calculation relationship or corresponding relationship between the thermal resistance parameters and the indoor environmental parameters is stored in the local storage area of the indoor air treatment equipment. After the indoor air treatment equipment acquires the thermal resistance parameters and the first environmental parameters, it can obtain the target environmental parameters required during the user's sleep using the bedding corresponding to the thermal resistance parameters. The target environmental parameters include the target air flow rate, so as to determine the operation process of the air treatment equipment. Controlling the operation of the fan according to the set air speed can make the air flow rate in the indoor environment more suitable for the user to sleep.
[0163] Among them, the air treatment equipment can be selected as one or more of an air conditioner fan, an air conditioner, a humidifier, and a fan.
[0164] In some embodiments, the air handling device is an air conditioner fan. The user sends a control instruction to start the sleep mode to the air conditioner fan, and the air conditioner fan starts to operate after receiving the sleep mode control instruction. The air conditioner fan obtains the bedding required by the user and the thermal resistance parameter of the bedding, and collects the current indoor environmental parameters to obtain the first environmental parameters. Through calculation and processing based on the thermal resistance parameter and the first environmental parameters, the target air velocity of the user's indoor environment is obtained. Based on the target air velocity and the current air velocity in the first environmental parameters, the set air velocity for the operation of the fan can be obtained. Control the fan in the air conditioner fan to blow air at the set air velocity, so that the air velocity in the environment where the user is located meets the user's sleep requirements.
[0165] In these embodiments, the sensors include a humidity sensor, a temperature sensor, and a wind speed sensor. The sensors are set on the air conditioner fan, and the air conditioner fan collects the actual environmental parameters through the sensors. Or the sensors are set on the terminal used by the user. The terminal can be selected as a watch, a mobile phone, a smart speaker, etc. Since the terminal is close to the user, the actual environmental parameters around the user can be accurately collected. The terminal is communicatively connected to the air conditioner fan, and the terminal can send the collected actual environmental parameters to the air conditioner fan, enabling the air conditioner fan to adjust and process the operating parameters according to the actual environmental parameters around the user, improving the accuracy of the air conditioner fan in regulating environmental parameters.
[0166] In this embodiment, based on the first environmental parameters collected in real time and the thermal resistance parameter of the bedding used by the user, the target air velocity in the indoor environmental parameters can be determined, thereby obtaining the set air velocity for the operation of the fan in the air handling device, and controlling the fan to blow air at the set air velocity, making the environment where the user is located more suitable for sleeping and improving the user's sleep comfort. And at the beginning stage of the operation of the air handling device, it can ensure that the air outlet speed meets the requirements of the user's sleep environment without secondary adjustment.
[0167] In any of the above embodiments, the first environmental parameters include the first humidity and the first temperature. The determination module 806 is further configured to perform processing and calculation on the thermal resistance parameter, the first temperature, and the first humidity to obtain the set air velocity.
[0168] In this embodiment, the first environmental parameters include the temperature parameter and the humidity parameter of the current indoor environment, that is, the first temperature and the first humidity. The relationship between the environmental parameters and the thermal resistance parameter is stored in the air handling device. The relationship includes environmental temperature, environmental humidity, thermal resistance parameter, and air velocity. Therefore, through the collected first environmental parameters and the thermal resistance parameter, the target air velocity suitable for the user to sleep can be calculated, and the set air velocity for the operation of the air handling device can be determined according to the target air velocity.
[0169] It can be understood that the relational formula between the environmental parameters and the thermal resistance parameters is stored in the local storage area of the air handling device, and the target air velocity is calculated through the relational formula. The specific relational formula is as follows:
[0170] T = a - bRH + cv - dRt;
[0171] Wherein, RH is the air humidity, v is the air velocity, Rt is the thermal resistance parameter, T is the air temperature, and a, b, c, and d are all compensation coefficients.
[0172] Specifically, substituting the first temperature and the first humidity in the first environmental parameters as the air temperature and the air humidity, and the thermal resistance parameter into the relational formula, the target air velocity can be obtained.
[0173] In some embodiments, sensors for collecting environmental parameters are provided in the air handling device. The sensors include a temperature sensor, a humidity sensor, and an air velocity sensor. After the air handling device is powered on, the temperature parameter, the humidity parameter, and the air velocity in the indoor environmental parameters are continuously collected through the temperature sensor, the humidity sensor, and the air velocity sensor. After the air handling device receives the control instruction for the sleep mode, the currently collected air humidity and air temperature are used as the first humidity and the first temperature in the first environmental parameters, and the thermal resistance parameter is substituted into the relational formula to obtain the target air velocity. According to the currently collected actual air velocity and the target air velocity for compensation calculation, the set air velocity of the fan operation in the air handling device can be determined. Controlling the fan to blow air at the set air velocity can make the air velocity in the environment where the user is located suitable for sleeping.
[0174] In some embodiments, the air handling device has a sleep mode. After the sleep mode is activated, the user can select three different environmental adjustment modes: "warm", "cool", and "suitable", and each mode among the three modes corresponds to different compensation coefficients.
[0175] In these embodiments, by setting different compensation coefficients for different modes, the user can set the environmental parameters during sleep according to their own needs.
[0176] In any of the above embodiments, the acquisition module 802 is further configured to acquire the second environmental parameters;
[0177] The control device 800 of the air handling device further includes:
[0178] A calculation module, configured to perform calculation processing on the thermal resistance parameter, the second environmental parameter, and the set air velocity to obtain the first set humidification amount;
[0179] The control module 808 is further configured to control the humidifying device to humidify the air according to the first set humidification amount.
[0180] In this embodiment, the air handling device further includes a humidifying device, which is arranged at a position corresponding to the fan. After the humidifying device is powered on and operates, it can humidify the airflow generated by the operation of the fan. It can be understood that during the process of humidifying the air, not only the humidity of the indoor environment will change, but the temperature of the indoor environment will also change accordingly. By arranging a humidifying device and a fan in the air handling device, the air handling device can not only adjust the air velocity in the indoor environment, but also adjust the air humidity and temperature in the indoor environment.
[0181] During the operation of the air handling device, the fan blows air at a set wind speed. At this time, the operation of the humidifying device in the air handling device is controlled. Specifically, the current environmental parameters collected by the air handling device, that is, the second environmental parameters, are obtained. Among them, the second environmental parameters include, but are not limited to, the air temperature, air humidity, and air velocity in the room. By using the second environmental parameters, the thermal resistance parameters, and the set wind speed of the fan operation, according to the corresponding relationship or relational formula pre-stored in the local storage area, the target air humidity of the indoor environment can be determined, and the first set humidification amount of the humidifying device can be determined according to the target air humidity. When the fan continues to operate, the humidifying device is controlled according to the first set humidification amount, so that the air handling device can operate at the set wind speed and the first set humidification amount, thereby adjusting the indoor environmental air and making the indoor environmental parameters meet the user's sleep requirements.
[0182] By controlling the operation of the humidifying device during the operation of the fan, the humidity and air velocity of the indoor environmental air are adjusted, so as to ensure that the indoor environment can meet the user's sleep requirements and further improve the user's sleep quality.
[0183] In any of the above embodiments, the second environmental parameters include the second humidity and the second temperature.
[0184] The calculation module is further configured to perform calculation processing on the thermal resistance parameters, the second temperature, the set humidity, and the second humidity to obtain the first set humidification amount.
[0185] In this embodiment, the second environmental parameters include the current temperature parameter and humidity parameter in the room. The second environmental parameters are the current parameter values of the indoor environment collected after the air handling device has been operating for a period of time. The relational formula between the environmental parameters and the thermal resistance parameters is stored in the air handling device. The relational formula includes the environmental temperature, environmental humidity, thermal resistance parameters, and air velocity. Therefore, through the collected second environmental parameters, the thermal resistance parameters, and the set wind speed of the current fan operation, the first set humidification amount of the air handling device operation can be calculated, and the humidifying device is controlled according to the first set humidification amount to humidify the air.
[0186] Specifically, substituting the second temperature, the set air velocity, and the thermal resistance parameter in the second environmental parameter into the above relationship can obtain the target air humidity. Based on the target air humidity and the second humidity in the second environmental parameter, the humidification amount that the air handling device still needs to humidify the air can be calculated.
[0187] In some embodiments, sensors for collecting environmental parameters are provided in the air handling device. The sensors include a temperature sensor, a humidity sensor, and an air velocity sensor. After the air handling device is powered on, the temperature parameter, the humidity parameter, and the air velocity in the indoor environmental parameters are continuously collected through the temperature sensor, the humidity sensor, and the air velocity sensor. After the air handling device receives the control instruction for the sleep mode, the currently collected air temperature is used as the second temperature in the second environmental parameter, the set air velocity is used as the air velocity, and the thermal resistance parameter is substituted into the relationship to obtain the target air humidity. Based on the currently collected second humidity and the target air humidity, a compensation calculation is performed to determine the first set humidification amount for the operation of the humidifying device in the air handling device. Controlling the fan to blow air at the set air velocity can make the air velocity in the environment where the user is located more suitable for sleep.
[0188] In any of the above embodiments, the acquisition module 802 is further configured to collect the third environmental parameter at intervals of a set duration;
[0189] The control device 800 of the air handling device further includes:
[0190] An adjustment module, configured to adjust the second set humidification amount and the set air velocity according to the third environmental parameter when the third environmental parameter reaches a set condition.
[0191] In this embodiment, during the process that the fan in the air handling device blows air at the set air velocity and the humidifying device in the air handling device humidifies the air according to the first set humidification amount, the third environmental parameter is continuously collected. Specifically, the third environmental parameter is collected once every set duration. When the third environmental parameter reaches the set condition, the set air velocity of the fan operation in the air handling device and the second set humidification amount of the humidifying device in the air handling device are adjusted according to the third environmental parameter. It can be understood that when it is detected that the third environmental parameter meets the set condition, the operation of the air handling device is further controlled, so that the indoor environment meets the needs of the user being in a sleep state. During the process that the air handling device has been operating according to the parameters suitable for sleep, the operation parameters of the air handling device are adjusted through the continuously detected third environmental parameter, realizing the function of continuously monitoring the indoor environmental parameters during the user's sleep process and achieving the effect of improving the user's sleep quality.
[0192] In any of the above embodiments, the determining module 806 is further configured to determine a parameter change value according to the third environmental parameters collected multiple times;
[0193] The adjustment module is further configured to, when the change value is greater than the change threshold, adjust the second set humidification amount and the set air velocity according to the third environmental parameters.
[0194] In this embodiment, the third environmental parameters are collected multiple times, and the third environmental parameters collected this time are compared with the third environmental parameters collected initially to obtain the change of the third environmental parameters, and the corresponding change value is calculated accordingly. Each time a change value is calculated, the change value is numerically compared with the change threshold. When it is detected that the change value is less than the change threshold, it is determined that the current environmental parameters are still within the range of environmental parameters suitable for the user to sleep. At this time, the current operating parameters of the air treatment device are maintained. When it is detected that the change value is greater than the change threshold, it is determined that the current environmental parameters are no longer suitable for the user to sleep. At this time, the operation of the air treatment device is controlled according to the third environmental parameters collected currently. Specifically, one or a combination of the set air velocity of the fan operation and the second set humidification amount of the humidification device operation can be adjusted.
[0195] In some embodiments, the third environmental parameters include the third temperature, the third humidity, and the air velocity.
[0196] In these embodiments, when it is detected that the change value of the third humidity exceeds the humidity change threshold, it is determined that the current humidity is not suitable for the user to sleep. The target humidity is calculated according to the third temperature, the air velocity, and the thermal resistance parameter, and the second set humidification amount of the humidification device operation is adjusted. When it is detected that the air velocity exceeds the velocity change threshold, it is determined that the current air velocity is not suitable for the user to sleep. The target air velocity is calculated according to the third temperature, the third humidity, and the thermal resistance parameter, and the set air velocity of the fan is adjusted.
[0197] This embodiment continuously detects the third environmental parameters in the room, and when the third environmental parameters change greatly, adjusts the operating parameters of the air treatment device in time, so as to ensure that the indoor environment does not change greatly during the user's sleep process, and further improves the user's sleep quality.
[0198] In any of the above embodiments, the control device 800 of the air treatment device further includes:
[0199] A counting module, configured to count the number of times the third environmental parameters are collected to obtain the collection times;
[0200] The adjustment module is further configured to, when it is detected that the collection times are greater than the set times, adjust the second set humidification amount and the set air velocity according to the third environmental parameters.
[0201] In this embodiment, during the process of starting to collect the third environmental parameter, the number of times the third environmental parameter is collected is counted to obtain the collection times. After the collection times reach the set times, it is determined that the user is in a sleeping state, and then the set air speed of the fan operation and the second set humidification amount of the humidification device operation in the air handling equipment are readjusted according to the third environmental parameter. During the collection process of the third environmental parameter, the sleep stage of the user is detected according to the collection times. When it is determined that the user is in a sleeping state, the operation parameters of the air handling equipment are readjusted again according to the third environmental parameter to adjust the indoor environmental parameters to make the indoor environment more suitable for the user's sleeping state.
[0202] It can be understood that the relational expression between the environmental parameter and the thermal resistance parameter is stored in the local storage area of the air handling equipment, and the target air flow rate is calculated through the relational expression. The specific relational expression is as follows:
[0203] T = a - bRH + cv - dRt;
[0204] Wherein, RH is the air humidity, v is the air flow rate, Rt is the thermal resistance parameter, T is the air temperature, and a, b, c, and d are all compensation coefficients.
[0205] In some embodiments, different sleep stages of the user can be determined according to different collection times, and different sleep stages correspond to different compensation coefficients.
[0206] In these embodiments, different relational expressions are set for different sleep stages of the user, and the compensation coefficients in different relations are different. The sleep stage of the user is determined according to the collection times, and the relational expression corresponding to the sleep stage. The corresponding set air speed and the second set humidification amount are calculated through the relation corresponding to the sleep stage, the third environmental parameter, and the thermal resistance parameter. When the user is in different sleep stages, the parameters output by the air handling equipment are also different, so that the indoor environment meets the sleep requirements of the user and improves the sleep quality of the user.
[0207] In any of the above embodiments, the acquisition module 802 is further configured to acquire image data including the target bedding.
[0208] The control device 800 of the air handling equipment further includes:
[0209] An identification module, configured to identify the thermal resistance characteristics of the target bedding in the image data;
[0210] A determination module 806, configured to determine the thermal resistance parameter according to the thermal resistance characteristics.
[0211] In this embodiment, the thermal resistance parameter is the thermal resistance parameter of the bedding required during the user's sleep. The air handling device can acquire image data of the target bedding, and identify the target bedding in the image data through an image recognition model to obtain thermal resistance characteristics such as the body coverage rate, type, thickness, and material of the target bedding. The thermal resistance parameter can be obtained by analyzing the thermal resistance characteristics.
[0212] It can be understood that the bedding not only includes the quilt used by the user, but also includes bedding that covers the user's body such as mattresses and pajamas. Different combinations of bedding correspond to different thermal resistance parameters. Before the air handling device leaves the factory, the corresponding relationship between the thermal resistance parameters and different bedding combinations is stored in the local storage area. After analyzing and obtaining the thermal resistance characteristics, the corresponding thermal resistance parameter can be found according to the corresponding relationship.
[0213] This embodiment can accurately obtain the thermal resistance parameter during the user's sleep by identifying and analyzing the collected image data, further improving the accuracy of the air handling device to adjust the operating parameters according to the thermal resistance parameter.
[0214] In some embodiments, the air handling device includes an image acquisition device. When the user activates the sleep mode, the air handling device acquires image data at regular intervals through the image acquisition device to update the thermal resistance parameter, so that the air handling device can adjust the operating parameters of the air device according to the updated thermal resistance parameter.
[0215] In any of the above embodiments, the control device 800 of the air handling device further includes:
[0216] A receiving module, configured to receive the bedding type information sent by the user terminal;
[0217] A determining module 806, further configured to determine the thermal resistance parameter according to the bedding type information.
[0218] In this embodiment, the air handling device includes a communication device. The air handling device can be communicatively connected to the user terminal, and the user sends the bedding type information to the air handling device through the user terminal. After receiving the bedding type information, the air handling device can obtain the thermal resistance parameter according to the bedding type information. By providing a communication device in the air handling device, the present invention can receive the bedding setting requirements sent by the user, realizing that the user can set the sleep mode of the air handling device before going to sleep.
[0219] Embodiment Three:
[0220] As Figure 9 shown, in the third embodiment of the present invention, a control device 900 of an air handling device is provided, including: a memory 902 and a processor 904.
[0221] A program or instructions are stored in the memory 902;
[0222] A processor 904, and the processor 904 executes the program or instructions stored in the memory 902 to implement the steps of the control method of the air handling device in the first embodiment, and thus has all the beneficial technical effects of the control method of the air handling device in the first embodiment, and will not be elaborated here too much.
[0223] Embodiment Four:
[0224] In the fourth embodiment of the present invention, an air handling device is provided, including: the control device of the air handling device in the second or third embodiment, and thus has all the beneficial technical effects of the control device of the air handling device in the second or third embodiment, and will not be elaborated here too much.
[0225] In any of the above embodiments, the air handling device further includes: a housing, a temperature sensor, and / or a humidity sensor.
[0226] Wherein, the temperature sensor is installed on the housing, and the temperature sensor can collect the ambient temperature;
[0227] The humidity sensor is installed on the housing, and the humidity sensor can collect the ambient humidity.
[0228] In this embodiment, the air handling device further includes one or more of a temperature sensor and a humidity sensor. The ambient temperature and ambient humidity are collected by the temperature sensor and the humidity sensor, so as to ensure that the air handling device can collect the actual environmental parameters during operation.
[0229] In any of the above embodiments, the air handling device further includes: an image acquisition device and / or a communication device.
[0230] The image acquisition device is installed on the housing, and the image acquisition device is used to acquire image data, and the image data includes an image of a target bedding;
[0231] The communication device is installed on the housing, and the communication device can receive the bedding type information.
[0232] In this embodiment, the air handling device includes an image acquisition device. When the user activates the sleep mode, the air handling device acquires image data at regular intervals through the image acquisition device to update the thermal resistance parameters, so that the air handling device can adjust the operating parameters of the air device according to the updated thermal resistance parameters.
[0233] The air treatment device includes a communication device. The air treatment device can be communicatively connected to a user terminal, and the user sends bedding type information to the air treatment device through the user terminal. After receiving the bedding type information, the air treatment device can obtain a thermal resistance parameter according to the bedding type information. By providing a communication device in the air treatment device in the present invention, the bedding setting requirements sent by the user can be received, so that the user can set the sleep mode of the air treatment device before going to sleep.
[0234] As Figure 10 shown, in any of the above embodiments, the air treatment device includes: a sensor, an information processing system, a sleep comfort model, a wind speed adjustment module, and a humidity adjustment module. The air treatment device can be communicatively connected to an intelligent device and receive the thermal resistance parameter sent by the intelligent device.
[0235] In the sleep comfort model, a relational expression between environmental parameters and thermal resistance parameters is stored. The relational expression includes environmental temperature, environmental humidity, thermal resistance parameter, and air velocity. Therefore, the target air velocity suitable for the user to sleep can be calculated through the collected first environmental parameters and the thermal resistance parameter, and the set wind speed for the operation of the air treatment device can be determined according to the target air velocity.
[0236] It can be understood that the relational expression between environmental parameters and thermal resistance parameters is stored in the local storage area of the air treatment device, and the target air velocity is calculated through the relational expression. The specific relational expression is as follows:
[0237] T = a - bRH + cv - dRt;
[0238] wherein, RH is the air humidity, v is the air velocity, Rt is the thermal resistance parameter, T is the air temperature, and a, b, c, and d are all compensation coefficients.
[0239] Specifically, taking the first temperature and the first humidity in the first environmental parameters as the air temperature and the air humidity, and substituting the thermal resistance parameter into the relational expression, the target air velocity can be obtained.
[0240] By configuring the sleep comfort model in the information processing system, the information processing system receives the indoor environmental parameters collected by the sensor and the thermal resistance parameter sent by the intelligent device, and controls the wind speed adjustment module and the humidity adjustment module according to the thermal resistance parameter and the indoor environmental parameters, so as to adjust the set wind speed of the fan operation and the set humidification amount of the humidifying device in the indoor treatment device, so that the indoor environment meets the sleep requirements of the user and improves the sleep quality of the user.
[0241] Embodiment Five:
[0242] In the fifth embodiment of the present invention, a readable storage medium is provided, on which a program is stored. When the program is executed by a processor, it implements the control method of the air handling device in any of the above embodiments, and thus has all the beneficial technical effects of the control method of the air handling device in any of the above embodiments.
[0243] Among them, the readable storage medium includes, for example, a Read-Only Memory (ROM), a Random Access Memory (RAM), a magnetic disk, or an optical disc, etc.
[0244] It should be clear that in the claims, the specification, and the drawings of the present invention, the term "a plurality of" means two or more, unless otherwise explicitly defined. The orientation or positional relationship indicated by terms such as "upper", "lower", etc. is based on the orientation or positional relationship shown in the drawings, and is only for more conveniently describing the present invention and making the description process simpler, rather than indicating or implying that the device or element referred to must have the specific orientation, be constructed and operated in the specific orientation. Therefore, these descriptions should not be construed as limitations on the present invention; terms such as "connection", "installation", "fixation", etc. should all be understood in a broad sense. For example, "connection" can be a fixed connection between multiple objects, a detachable connection between multiple objects, or an integral connection; it can be a direct connection between multiple objects, or an indirect connection between multiple objects through an intermediate medium. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to the specific circumstances of the above data.
[0245] In the claims, the specification, and the drawings of the present invention, the description of terms such as "one embodiment", "some embodiments", "specific embodiments", etc. means that the specific features, structures, materials, or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present invention. In the claims, the specification, and the drawings of the present invention, the schematic representations of the above terms do not necessarily refer to the same embodiment or instance. Moreover, the specific features, structures, materials, or characteristics described can be combined in any one or more embodiments or examples in a suitable manner.
[0246] The above are only the preferred embodiments of the present invention and are not used to limit the present invention. For those skilled in the art, the present invention can have various changes and modifications. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.
Claims
1. A control method for an air handling device, characterized in that, The air treatment device includes a blower, and the control method includes: Collect the first environmental parameter; Obtain a thermal resistance parameter, where the thermal resistance parameter is the heat transfer thermal resistance of the bedding; Determine the set air speed of the blower according to the first environmental parameter and the thermal resistance parameter; Control the blower to start running at the set air speed; The first environmental parameter includes a first temperature and a first humidity. The determining the set air speed of the blower according to the first environmental parameter and the thermal resistance parameter includes: Determine the set air speed according to the first temperature, the first humidity, and the thermal resistance parameter; The air treatment device includes a humidifying device for humidifying the air flow output by the blower. After controlling the blower to start running at the set air speed, it further includes: Collect the second environmental parameter; Determine a first set humidifying amount of the humidifying device for the air flow output by the blower according to the second environmental parameter, the set air speed, and the thermal resistance parameter; Control the operation of the humidifying device according to the first set humidifying amount; Wherein, the second environmental parameter includes a second temperature and a second humidity.
2. The control method of the air handling device according to claim 1, characterized in that, The determining the first set humidifying amount of the humidifying device for the air flow output by the blower according to the second environmental parameter, the set air speed, and the thermal resistance parameter includes: Determine the first set humidifying amount according to the second temperature, the second humidity, the set air speed, and the thermal resistance parameter.
3. The control method of the air handling device according to claim 1, characterized in that, After controlling the blower to start running at the set air speed, it includes: Collect the third environmental parameter at regular intervals; Based on the third environmental parameter reaching a set condition, adjust the set air speed and a second set humidifying amount of the air treatment device according to the third environmental parameter; Wherein, the third environmental parameter includes a third temperature, a third humidity, and an air flow rate.
4. The control method of the air treatment device according to claim 3, characterized in that, The adjusting the set air speed and the second set humidifying amount according to the third environmental parameter based on the third environmental parameter reaching a set condition includes: Obtain the change value of the third environmental parameter; Based on the change value being greater than a change threshold, adjust the set air speed and the second set humidifying amount according to the third environmental parameter.
5. The control method of the air handling device according to claim 3, characterized in that The adjusting the set air speed and the second set humidifying amount according to the third environmental parameter based on the third environmental parameter reaching a set condition includes: Count the number of times the third environmental parameter is collected; Based on the number of collections being greater than a set number, adjust the set air speed and the second set humidifying amount according to the third environmental parameter.
6. The control method of the air treatment device according to any one of claims 1 to 5, characterized in that, The obtaining the thermal resistance parameter includes: Collect image data, where the image data includes an image of the target bedding; Identify the thermal resistance characteristics of the target bedding in the image data; Determine the thermal resistance parameter according to the thermal resistance characteristics.
7. The control method of the air handling equipment according to any one of claims 1 to 5, characterized in that, The obtaining the thermal resistance parameter includes: Receive bedding type information; Determine the thermal resistance parameter according to the bedding type information.
8. A control device for an air handling equipment, characterized in that, The air treatment device includes a blower and a humidifying device, and the control device includes: A collection module for obtaining the first environmental parameter; An obtaining module for obtaining a thermal resistance parameter, where the thermal resistance parameter is the heat transfer thermal resistance of the bedding; A determination module, configured to determine a set air speed of the air blower according to the first environmental parameter and the thermal resistance parameter; A control module, configured to control the air blower to start operating at the set air speed; The first environmental parameter includes a first humidity and a first temperature, and the determination module is further configured to perform processing calculations on the thermal resistance parameter, the first temperature, and the first humidity to obtain the set air speed; The acquisition module is further configured to acquire a second environmental parameter; The control device further includes a calculation module, configured to perform calculation processing on the thermal resistance parameter, the second environmental parameter, and the set air speed to obtain a first set humidification amount; The control module is further configured to control the humidification device to humidify the air according to the first set humidification amount; Wherein, the second environmental parameter includes a second temperature and a second humidity.
9. A control device for an air treatment device, characterized in that, The air treatment device includes an air blower, and the control device includes: A memory, in which programs or instructions are stored; A processor, which executes the programs or instructions stored in the memory to implement the steps of the control method of the air treatment device according to any one of claims 1 to 7.
10. An air treatment device, characterized in that, Including: The control device of the air treatment device according to claim 8 or 9.
11. The air handling device according to claim 10, wherein, Further including: A housing; A temperature sensor, disposed on the housing, for acquiring the ambient temperature; And / or A humidity sensor, disposed on the housing, for acquiring the ambient humidity.
12. The air treatment device according to claim 11, characterized in that, Further including: An image acquisition device, disposed on the housing, for acquiring image data, where the image data includes an image of a target bedding; And / or A communication device, disposed on the housing, for receiving bedding type information.
13. A readable storage medium, characterized in that, Programs or instructions are stored on the readable storage medium, and when the programs or instructions are executed by the processor, the steps of the control method of the air treatment device according to any one of the above claims 1 to 7 are implemented.
Citation Information
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