Device control method, device, storage medium, control device and humidifying device
By adding drying components to the humidification equipment and controlling their work, the problem that humidification components are prone to odor when they are not working is solved, extending the service life and avoiding odor.
Patent Information
- Application Number
- CN202211599168.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-12-12
- Publication Date
- 2025-06-20
- Estimated Expiration
- 2042-12-12
AI Technical Summary
In existing humidification equipment, humidification components such as wet curtains are prone to odor when they are not working, resulting in a short service life.
Add drying components to the humidification equipment, and determine the working parameters of the drying components by monitoring the drying trigger command, and control the working of the drying components to dry the humidifying components.
Ensure that the humidification component is in a dry state when the humidification equipment is not working, extends the service life of the humidification component and avoids the humidification component from odor.
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Figure CN116221896B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of humidification, and particularly relates to a device control method, device, storage medium, control device and humidification device for a humidification device. Background Art
[0002] Currently, when an electrical appliance related to humidification (i.e., the humidification device in this application) is working, a humidification component such as a wet curtain is used to humidify the air outlet. After the work is completed, no additional treatment is performed on the humidification component, which will cause the humidification component such as the wet curtain to emit an odor and affect the service life of the humidification component such as the wet curtain.
[0003] Therefore, the current technology has the technical problem that the service life of the humidification component such as the wet curtain is short. Summary of the Invention
[0004] To alleviate the technical problem that the service life of the humidification component such as the wet curtain in the current technology is short, embodiments of the present invention provide a device control method, device, storage medium, control device and humidification device for a humidification device.
[0005] In a first aspect, embodiments of the present invention provide a device control method for a humidification device, where the humidification device includes a humidification component and a drying component; the method includes:
[0006] Monitoring a drying trigger instruction;
[0007] After detecting the drying trigger instruction, determining the working parameters of the drying component;
[0008] Based on the working parameters, controlling the drying component to work to dry the humidification component.
[0009] In some embodiments, the step of monitoring the drying trigger instruction includes:
[0010] Monitoring whether the humidification device is in an automatic drying mode;
[0011] When it is monitored that the humidification device is in the automatic drying mode, it is determined that the drying trigger instruction is detected.
[0012] In some embodiments, the step of monitoring the drying trigger instruction includes:
[0013] When it is monitored that the working state of the humidification device changes, determining whether the humidification component switches from a used state to a non-used state;
[0014] If the humidification component switches from a used state to a non-used state, obtaining the actual usage scenario of the humidification device;
[0015] When the actual usage scenario meets the preset scenario, it is determined that the drying trigger instruction is detected.
[0016] In some embodiments, the step of determining the operating parameters of the drying member includes:
[0017] Obtain the noise tolerance parameter corresponding to the actual usage scenario;
[0018] According to the noise tolerance parameter, determine the drying power and drying time in the operating parameters.
[0019] In some embodiments, the step of determining the operating parameters of the drying member includes:
[0020] Obtain the real-time humidity parameter of the wet curtain in the humidifying member;
[0021] Compare the size relationship between the real-time humidity parameter and the wetting threshold;
[0022] When the humidity parameter is greater than the wetting threshold, determine that the stop condition in the operating parameters is that the real-time humidity parameter is less than the drying threshold or the working duration is greater than the duration threshold.
[0023] In some embodiments, the operating parameters include the temperature of the heating device and / or the wind speed of the blowing device in the drying member.
[0024] In some embodiments, before the step of obtaining the real-time humidity parameter of the wet curtain in the humidifying member, it further includes:
[0025] Obtain the first humidity parameter of the wet curtain after the humidifying device stops using the wet curtain;
[0026] According to the first humidity parameter, determine the wetting threshold.
[0027] In some embodiments, after the step of controlling the drying member to work to dry the humidifying member, it further includes:
[0028] If the actual stop condition of the drying member is that the working duration is greater than the duration threshold, then obtain the second humidity parameter of the wet curtain when the drying member stops working;
[0029] According to the second humidity parameter, determine the drying threshold.
[0030] In some embodiments, before the step of obtaining the real-time humidity parameter of the wet curtain in the humidifying member, it further includes:
[0031] Obtain the third humidity parameter of the wet curtain after the manual drying of the humidifying device ends;
[0032] Determine the drying threshold according to the third humidity parameter.
[0033] In some embodiments, the step of obtaining the real-time humidity parameter of the wet curtain in the humidifying member includes:
[0034] Obtain a first humidity value of the air before passing through the wet curtain and a second humidity value after passing through the wet curtain;
[0035] Determine the real-time humidity parameter of the wet curtain according to the first humidity value and the second humidity value.
[0036] In some embodiments, the step of obtaining the real-time humidity parameter of the wet curtain in the humidifying member includes:
[0037] Obtain the weight value of the wet curtain;
[0038] Determine the real-time humidity parameter of the wet curtain according to the weight value.
[0039] In a second aspect, an embodiment of the present invention provides a device control device for a humidifying device, where the humidifying device includes a humidifying member and a drying member; the device includes:
[0040] A monitoring module for monitoring a drying trigger instruction;
[0041] A determination module for determining the working parameters of the drying member after detecting the drying trigger instruction;
[0042] A control module for controlling the drying member to work to dry the humidifying member based on the working parameters.
[0043] In a third aspect, an embodiment of the present invention provides a storage medium, on which a computer program is stored. When the computer program is executed by one or more processors, the method described in the first aspect is implemented.
[0044] In a fourth aspect, an embodiment of the present invention provides a control device, including a memory and a processor. When a computer program stored on the memory is executed by the processor, the method described in the first aspect is implemented.
[0045] In a fifth aspect, an embodiment of the present invention provides a humidifying device, including a humidifying member, a drying member, and the control device described in the fourth aspect.
[0046] Compared with the prior art, one or more embodiments of the present invention can at least bring the following beneficial effects:
[0047] The device control method, device, storage medium, control device and humidifying device for a humidifying device provided by an embodiment of the present invention additionally add a drying component in the humidifying device. Based on this, after detecting a drying trigger instruction, the working parameters of the drying component are determined, and based on the working parameters, the drying component is controlled to work to dry the humidifying component; that is, in this application, after the humidifying device stops humidifying, the humidifying component is dried, ensuring that the humidifying component such as a wet curtain is in a dry state when the humidifying device is not working, extending the service life of the humidifying component, and also avoiding the odor of the humidifying component and the like. BRIEF DESCRIPTION OF THE DRAWINGS
[0048] To more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required to be used in the embodiments. It should be understood that the following drawings only show some embodiments of the present invention, and therefore should not be regarded as limiting the scope. For those of ordinary skill in the art, without creative efforts, other related drawings can also be obtained based on these drawings.
[0049] Figure 1 It is the first flowchart of the device control method for the humidifying device provided by the embodiment of the present invention;
[0050] Figure 2 It is the second flowchart of the device control method for the humidifying device provided by the embodiment of the present invention;
[0051] Figure 3 It is the third flowchart of the device control method for the humidifying device provided by the embodiment of the present invention;
[0052] Figure 4 It is the fourth flowchart of the device control method for the humidifying device provided by the embodiment of the present invention;
[0053] Figure 5 It is the fifth flowchart of the device control method for the humidifying device provided by the embodiment of the present invention;
[0054] Figure 6 It is the sixth flowchart of the device control method for the humidifying device provided by the embodiment of the present invention;
[0055] Figure 7 It is a schematic structural diagram of the device control device for the humidifying device provided by the embodiment of the present invention;
[0056] Figure 8 It is a schematic structural diagram of a humidifying device provided by the embodiment of the present invention. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0057] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. The components of the embodiments of the present invention usually described and illustrated in the accompanying drawings here can be arranged and designed in various different configurations. Therefore, the following detailed description of the embodiments of the present invention provided in the accompanying drawings is not intended to limit the scope of the claimed present invention, but only represents the selected embodiments of the present invention. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative efforts belong to the scope of protection of the present invention.
[0058] This method can be applied to Figure 8 the humidifying device shown in the figure. A control device 830 (i.e., the device control device, main control, etc. in the following text), a drying member 820, a humidifying member 810 (mainly a wet curtain), etc. are provided in the cavity of the humidifying device. The arrows in the figure show the air flow direction.
[0059] Example 1
[0060] Figure 1 The first flowchart showing the device control method for a humidifying device is as Figure 1 shown. In this embodiment, the device control method for a humidifying device provided by the present application includes:
[0061] Step S110: Monitor the drying trigger instruction.
[0062] In some embodiments, the drying trigger instruction refers to an instruction for triggering the operation of the drying member.
[0063] In some embodiments, the drying modes of the humidifying device include three types: an automatic drying mode triggered manually by the user, an adaptive drying mode with a fixed duration of the humidifying device, and a dynamic drying mode with an adaptive duration of the humidifying device. For different drying modes, the drying trigger instructions are also different.
[0064] In some embodiments, for the automatic drying mode triggered manually by the user, this step includes: monitoring whether the humidifying device is in the automatic drying mode; when it is monitored that the humidifying device is in the automatic drying mode, it is determined that the drying trigger instruction is monitored. That is, when the humidifying device is in the automatic drying mode, the main control of the humidifying device always judges that the drying trigger instruction is monitored and needs to execute step S120.
[0065] In some embodiments, for the adaptive drying mode and the dynamic drying mode, this step includes: when detecting a change in the working state of the humidifying device, determining whether the humidifying component has switched from a used state to a non-used state; if the humidifying component has switched from a used state to a non-used state, obtaining the actual usage scenario of the humidifying device; when the actual usage scenario meets the preset scenario, it is determined that the drying trigger instruction has been detected. That is, for these two modes, when the working state of the humidifying device changes, it is judged whether the humidifying component has switched from a used state to a non-used state (i.e., whether the humidifying device has exited the humidifying state). When the humidifying component has switched from a used state to a non-used state, the actual usage scenario of the humidifying device is obtained. When the actual usage scenario meets the preset scenario (a scenario of not humidifying for a long time, and this long time can be 30 minutes or more, etc.), it is determined that the drying trigger instruction has been detected and the humidifying component needs to be dried.
[0066] In some other embodiments, for the adaptive drying mode and the dynamic drying mode, this step may further include: when detecting a change in the working state of the humidifying device, determining whether the humidifying component has switched from a used state to a non-used state; if the humidifying component has switched from a used state to a non-used state, it is determined that the drying trigger instruction has been detected. That is, in this embodiment, for these two modes, when the working state of the humidifying device changes, it is judged whether the humidifying component has switched from a used state to a non-used state (i.e., whether the humidifying device has exited the humidifying state). When the humidifying component has switched from a used state to a non-used state, it is determined that the drying trigger instruction has been detected and the humidifying component needs to be dried.
[0067] Step S120: After detecting the drying trigger instruction, determine the working parameters of the drying component.
[0068] In some embodiments, the drying component may include heating devices such as a heating chamber and / or blowing devices such as a hair dryer. The drying component can dry the wet curtain, and the working parameters may include drying power (determining the temperature of the heating chamber and / or the wind speed of the blowing device, etc.), a fixed drying duration, or stop conditions, etc.
[0069] In some embodiments, for the automatic drying mode and the adaptive drying mode, the usage scenarios can be divided into sleeping scenarios, unoccupied scenarios, etc. Different usage scenarios have different tolerances for noise, that is, different usage scenarios correspond to different noise tolerance parameters. At this time, this step includes: obtaining the noise tolerance parameter corresponding to the actual usage scenario; determining the drying power and drying time in the working parameters according to the noise tolerance parameter. For example, in an unoccupied scenario, the noise tolerance parameter is relatively large. At this time, a relatively large drying power and a relatively long drying time can be set to fully dry the wet curtain. In such scenarios, the humidifying device will also remain in an unhumidified state for a long time. After sufficient drying, it can have a longer service life. Another example is in a sleeping scenario, the noise tolerance parameter is relatively small. At this time, a relatively small drying power and a relatively short drying time can be set to dry the wet curtain to a certain extent. In such scenarios, the humidifying device will not remain in an unhumidified state for a long time and will humidify more frequently. In the present application, after a certain degree of drying, it can avoid the generation of peculiar smells and can also make the next humidification faster, enabling the device to have a longer service life.
[0070] In some embodiments, for the automatic drying mode triggered manually by the user and the dynamic drying mode with the adaptive duration of the humidifying device, when to stop the drying component needs to be based on whether the wet curtain is dry. At this time, this step includes: obtaining the real-time humidity parameter of the wet curtain in the humidifying component; comparing the size relationship between the real-time humidity parameter and the wet threshold; when the humidity parameter is greater than the wet threshold, determining that the stop condition in the working parameters is that the real-time humidity parameter is less than the dry threshold or the working duration is greater than the duration threshold. This embodiment controls the operation of the drying component based on the real-time humidity parameter of the wet curtain, which can save more electricity; at the same time, introducing the duration threshold can avoid damage to the humidifying device caused by the long-term operation of the drying component due to equipment aging / improper setting of the dry threshold. The duration threshold can be any value such as 1 minute, 5 minutes, etc.
[0071] In some embodiments, the real-time humidity parameter can be represented by the humidity change of the air before and after passing through the wet curtain, or can be represented by the weight of the wet curtain, etc.
[0072] In some embodiments, when the real-time humidity parameter is represented by the humidity change of the air before and after passing through the wet curtain, the step of obtaining the real-time humidity parameter of the wet curtain in the humidifying component in the previous embodiment includes: obtaining the first humidity value of the air before passing through the wet curtain and the second humidity value of the air after passing through the wet curtain; determining the real-time humidity parameter of the wet curtain according to the first humidity value and the second humidity value. For example, a humidity sensor is respectively arranged in front of and behind the wet curtain, and based on these two sensors, the first humidity value of the air before passing through the wet curtain and the second humidity value of the air after passing through the wet curtain are respectively obtained, and the real-time humidity parameter is determined according to the difference between the first humidity value and the second humidity value, etc.
[0073] In some embodiments, when the real-time humidity parameter uses the weight of the wet curtain to represent, the step of obtaining the real-time humidity parameter of the wet curtain in the humidifying member in the previous embodiment includes: obtaining the weight value of the wet curtain; and determining the real-time humidity parameter of the wet curtain according to the weight value. For example, the present application can use a device such as a piezoresistor and place it under the wet curtain (the wet curtain is not completely fixed and can move up and down). The wetter the wet curtain, the greater the pressure on the piezoresistor. By using the main control to monitor the resistance of the piezoresistor in real time, the weight of the wet curtain can be known, and then this weight can be directly used as the humidity parameter. Another example is that the present application can install a spring under the wet curtain. When the wet curtain is wetter, the position of the wet curtain is lower. At this time, the position of the wet curtain can be combined with the resistance value (rheostat) or capacitance value (the position of the wet curtain affects the capacitance medium), and the main control is used to monitor the change of this resistance value or capacitance value, so as to know the weight of the wet curtain, and then this weight can be directly used as the humidity parameter.
[0074] In some embodiments, the types of the dry threshold and the wet threshold are the same as the type of the wet curtain humidity parameter, which can be a weight unit, a humidity difference unit, etc., and can be automatically updated during the use of the humidifying device.
[0075] In some embodiments, in order to use the automatic update of the wet threshold, before the step of obtaining the real-time humidity parameter of the wet curtain in the humidifying member, the present application further includes: obtaining the first humidity parameter of the wet curtain after the humidifying device stops using the wet curtain; and determining the wet threshold according to the first humidity parameter.
[0076] In some embodiments, in order to use the automatic update of the dry threshold, after the step of controlling the drying member to work to dry the humidifying member, the present application further includes: if the actual stop condition of the drying member is that the working duration is greater than the duration threshold, obtaining the second humidity parameter of the wet curtain when the drying member stops working; and determining the dry threshold according to the second humidity parameter.
[0077] In some embodiments, in order to use the automatic update of the dry threshold, before the step of obtaining the real-time humidity parameter of the wet curtain in the humidifying member, the present application further includes: obtaining the third humidity parameter of the wet curtain after the manual drying of the humidifying device; and determining the dry threshold according to the third humidity parameter.
[0078] Step S130: Based on the working parameters, control the drying member to work to dry the humidifying member.
[0079] In some embodiments, based on the operating parameters of the aforementioned step S120, the humidifying device can control the drying member to operate to dry the humidifying member. For example, it can control the heating chamber to heat for 30 seconds to dry the wet curtain, or make the humidity parameter of the wet curtain lower than the drying threshold, etc.
[0080] In this embodiment, a drying member is additionally added to the humidifying device. Based on this, after detecting a drying trigger instruction, the operating parameters of the drying member are determined, and based on the operating parameters, the drying member is controlled to operate to dry the humidifying member. That is, after the humidifying device stops humidifying, the humidifying member is dried, ensuring that the humidifying member such as the wet curtain is in a dry state when the humidifying device is not working, extending the service life of the humidifying member, and also avoiding the odor of the humidifying member, etc.
[0081] The present application will be further described in combination with specific scenarios.
[0082] Scenario 1: Taking the example of a user manually forcing the humidifying device to dry, Figure 2 is the second process schematic diagram of the device control method provided by the present application. As Figure 2 shown, in this scenario, the device control method provided by the present application includes:
[0083] Step S210: The humidifying device enters the forced drying mode.
[0084] In this embodiment, the user performs key control on the humidifying device to force the device to dry the wet curtain and enter the forced drying mode.
[0085] At this time, since it is the user who forces the drying, indicating that the user believes that the wet curtain is in a wet state and needs to be dried, the humidifying device will update the wet threshold according to the humidity parameter of the wet curtain at this time.
[0086] Step S220: The humidifying device dries the wet curtain.
[0087] In this embodiment, the humidifying device heats and dries the wet curtain through the drying member based on the maximum drying power, etc.
[0088] Step S230: The humidifying device exits the forced drying mode.
[0089] In this embodiment, the user performs key control on the humidifying device to force the device to end the wet curtain drying and exit the forced drying mode.
[0090] At this time, since it is the user who forces the end of the drying, indicating that the user believes that the wet curtain is already in a dry state and does not need to be dried, the humidifying device will update the drying threshold according to the humidity parameter of the wet curtain at this time.
[0091] That is, the user can manually force the drying process and update the wet curtain's wetting parameters and drying parameters after the drying process ends.
[0092] Scenario 2: Taking the humidifying device determining the drying power and fixed drying time according to the usage scenario as an example for illustration, Figure 3 is the third process schematic diagram of the device control method provided by this application, as Figure 3 shown. In this scenario, the device control method provided by this application includes:
[0093] Step S310: The humidifying device enters the automatic drying mode or the adaptive drying mode.
[0094] In this embodiment, the user sets the humidifying device to enter the automatic drying mode, or the humidifying device defaults to enter the adaptive drying mode.
[0095] Step S320: The humidifying device dries the wet curtain according to the usage scenario.
[0096] In this embodiment, when the humidifying device enters the automatic drying mode, the drying power and drying time are determined by obtaining and using the current tolerance of the usage scenario to noise, and the drying component is controlled to dry the wet curtain.
[0097] In this embodiment, in the case where the humidifying device enters the adaptive drying mode, it can automatically determine whether to dry the wet curtain according to the switching of the working state; for example, when the working state of the electrical appliance changes, it is judged whether the wet curtain is switched from the usage state to the non-usage state, and whether to dry the wet curtain, as well as the power and time for drying the wet curtain, are determined according to the application scenario; for example: when the humidifier with a wet curtain ends humidifying, the possible idle time of the wet curtain is judged according to the usage scenario. If this idle time is too long, the wet curtain is dried, and the power and time for drying the wet curtain are determined according to the noise level acceptable in this usage scenario, and the drying component is controlled to dry the wet curtain.
[0098] Scenario 3: Taking the humidifying device determining the end of drying or forced ending due to timeout according to the real-time humidity parameter of the wet curtain as an example for illustration, Figure 4 is the fourth process schematic diagram of the device control method provided by this application, as Figure 4 shown. In this scenario, the device control method provided by this application includes:
[0099] Step S410: The humidifying device enters the automatic drying mode or the dynamic drying mode.
[0100] In this embodiment, the user sets the humidifying device to enter the automatic drying mode, or the humidifying device defaults to enter the dynamic drying mode.
[0101] Step S420: The humidifying device determines whether to start drying according to the state of the wet curtain.
[0102] In some embodiments of this scenario, when the humidifying device enters the automatic drying mode, it can obtain the humidity parameter of the wet curtain to determine whether the wet curtain is wet; when the wet curtain is wet, it means that drying needs to start, and step S430 is executed; when the wet curtain is not wet, it means that drying is not required, and the process ends.
[0103] In some other embodiments of this scenario, after the humidifying device enters the dynamic drying mode, it automatically determines whether to dry the wet curtain according to the switching of the working state and the humidity of the wet curtain. When the wet curtain of the appliance switches from the used state to the unused state, it is determined whether to dry the wet curtain according to the appliance application scenario. When it is necessary to dry the wet curtain, this step is executed to measure the humidity of the wet curtain; when the humidity of the wet curtain exceeds the standard, that is, when the wet curtain is wet, it means that drying needs to start, and step S430 is executed; when the humidity of the wet curtain does not exceed the standard, that is, when the wet curtain is not wet, it means that drying is not required, and the process ends.
[0104] Step S430: The humidifying device dries the wet curtain.
[0105] In this embodiment, the humidifying device can dry the wet curtain according to the noise tolerance parameter of the use scenario to determine the drying power, or directly dry the wet curtain with the default drying power.
[0106] Step S440: The humidifying device determines whether to end drying according to the state of the wet curtain.
[0107] In this embodiment, the humidifying device periodically obtains the real-time humidity parameter of the wet curtain and compares it with the drying threshold to determine whether to end drying. When the real-time humidity parameter is less than the drying threshold, it means that the wet curtain has been dried, and the drying process ends. When the real-time humidity parameter is greater than the drying threshold, it means that the wet curtain is still not dried, and step S450 needs to be executed. The period in this step can be 10 seconds, etc.
[0108] Step S450: Whether the drying time is greater than the duration threshold.
[0109] In this embodiment, this step is mainly used to judge drying timeout; when the drying time is greater than the duration threshold, it means that drying is timed out. At this time, the drying is forced to end and the drying threshold is updated; when the drying time is less than the duration threshold, it means that drying is not timed out. At this time, return to step S430.
[0110] In some other embodiments, step S450 is not necessary. At this time, for step S440, if the real-time humidity parameter is greater than the drying threshold, it means that the wet curtain is still not dried, and it can directly return to step S430.
[0111] That is, in this scenario, the user can manually set the automatic drying mode of the wet curtain. At this time, the electrical appliance monitors the humidity of the wet curtain in real time. When the humidity exceeds the standard, the wet curtain is dried until the humidity of the wet curtain reaches the standard.
[0112] Scenario 4: Taking the determination of the humidity parameter of the wet curtain based on the humidity difference before and after the air passes through the wet curtain as an example for illustration, Figure 5 is the fifth process schematic diagram of the device control method provided by this application, as Figure 5 shown. In this scenario, the device control method provided by this application includes:
[0113] Step S510: The humidification device detects the humidity change before and after the air passes through the wet curtain to determine the humidity parameter RH difference of the wet curtain.
[0114] In this embodiment, the humidification device is provided with a humidity sensor before and after the wet curtain. Based on these two sensors, the first humidity value RH1 of the air before passing through the wet curtain and the second humidity value RH2 after passing through the wet curtain are respectively obtained, and the real-time humidity parameter RH difference = RH2 - RH1 is determined according to the difference between the first humidity value and the second humidity value.
[0115] Step S520: The humidification device determines whether it is necessary to trigger the drying process according to the wet curtain state.
[0116] In this embodiment, this step corresponds to steps S420 and S440 in Scenario 4. Both steps S420 and S440 need to obtain and judge the next operation according to the wet curtain state. For the convenience of description, this embodiment combines them into one step. If step S420 is being executed at this time, the judgment result of step S520 is that it is necessary to trigger the drying process according to the wet curtain state, and step S530 is executed; if step S440 is being executed at this time, the judgment result of step S520 is that the drying process has already been entered and there is no need to trigger the drying process according to the wet curtain state, and step S540 is executed.
[0117] Step S530: The humidification device determines whether the RH difference is greater than RH moist.
[0118] In this embodiment, RH moist is a specific manifestation of the moist threshold value in the above text, and this step is to judge whether the wet curtain is moist.
[0119] When RH is greater than RH moist, it is determined that the wet curtain is moist. At this time, regardless of whether the humidification device is in the automatic drying mode or the dynamic drying mode, Figure 4 the method shown will enter step S430.
[0120] When RH is not greater than RH_wet, it is determined that the wet curtain is not wet; at this time, if the humidification device is in the automatic drying mode, it will return to step S530 for periodic judgment, and if the humidification device is in the dynamic drying mode, this judgment will end directly. At this time Figure 4 The method shown will end the process.
[0121] Step S540: The humidification device determines whether the RH difference is less than RH_dry.
[0122] In this embodiment, RH_dry is a specific manifestation of the drying threshold in the above text, and this step is to judge whether the wet curtain is dry.
[0123] When RH is less than RH_dry, it is determined that the wet curtain is dry. At this time, regardless of whether the humidification device is in the automatic drying mode or the dynamic drying mode, the judgment result of step S440 in the above text is to end the drying process.
[0124] When RH is not less than RH_dry, it is determined that the wet curtain is not dry. At this time, regardless of whether the humidification device is in the automatic drying mode or the dynamic drying mode, the judgment result of step S440 in the above text is that the wet curtain is still not dry, and step S450 needs to be executed or directly return to step S430.
[0125] Scenario 5: Taking the determination of the humidity parameter of the wet curtain according to the wet curtain weight as an example for illustration, Figure 6 is the sixth process schematic diagram of the device control method provided by the present application, as Figure 6 shown. In this scenario, the device control method provided by the present application includes:
[0126] Step S610: The humidification device determines the humidity parameter G1 of the wet curtain through the wet curtain weight.
[0127] In this embodiment, in this step, a device such as a piezoresistor can be used and placed under the wet curtain (the wet curtain is not completely fixed and can move up and down). The wetter the wet curtain, the greater the pressure on the piezoresistor. By using the main control to monitor the resistance of the piezoresistor in real time, the wet curtain weight G1 can be known, and then this weight can be directly used as the humidity parameter.
[0128] Step S620: The humidification device determines whether it is necessary to trigger the drying process according to the wet curtain state.
[0129] In this embodiment, this step corresponds to steps S420 and S440 in Scenario 4. Both steps S420 and S440 need to obtain and determine the next operation based on the state of the wet curtain. For the sake of convenience in description, this embodiment combines them into one step. If step S420 is being executed at this time, the judgment result of step S620 is that the drying process needs to be triggered based on the state of the wet curtain, and step S630 is executed; if step S440 is being executed at this time, the judgment result of step S620 is that the drying process has already been entered and there is no need to trigger the drying process based on the state of the wet curtain, and step S640 is executed.
[0130] Step S630: The humidifying device determines whether G1 is greater than G_wet.
[0131] In this embodiment, G_wet is a specific manifestation of the wet threshold mentioned above. This step is to determine whether the wet curtain is wet.
[0132] When G1 is greater than G_wet, it is determined that the wet curtain is wet. At this time, regardless of whether the humidifying device is in the automatic drying mode or the dynamic drying mode, Figure 4 the method shown will enter step S430.
[0133] When G1 is not greater than G_wet, it is determined that the wet curtain is not wet; at this time, if the humidifying device is in the automatic drying mode, it will return to step S630 for periodic judgment, and if the humidifying device is in the dynamic drying mode, the current judgment will be directly ended, and at this time Figure 4 the method shown will end the process.
[0134] Step S640: The humidifying device determines whether G1 is less than G_dry.
[0135] In this embodiment, G_dry is a specific manifestation of the dry threshold mentioned above. This step is to determine whether the wet curtain is dry.
[0136] When G1 is less than G_dry, it is determined that the wet curtain is dry. At this time, regardless of whether the humidifying device is in the automatic drying mode or the dynamic drying mode, the judgment result of step S440 above is to end the drying process.
[0137] When G1 is not less than G_dry, it is determined that the wet curtain is not dry. At this time, regardless of whether the humidifying device is in the automatic drying mode or the dynamic drying mode, the judgment result of step S440 above is that the wet curtain is still not dry, and step S450 needs to be executed or directly return to step S430.
[0138] According to the above scenario, it can be known that:
[0139] In this application, after the wet curtain is used, the current wetness degree of the wet curtain can be inferred according to the working process of the electrical appliance, or the humidity difference before and after passing through the wet curtain can be measured using a temperature and humidity sensor to calculate the humidity of the wet curtain, or the humidity of the wet curtain can be calculated by weighing the wet curtain, so as to automatically determine whether the wet curtain needs to be dried, and determine the wet curtain drying method according to the application environment of the electrical appliance.
[0140] Specifically, it can be automatically determined whether to dry the wet curtain according to the switching of the working state. At this time, when the working state of the electrical appliance changes, it is judged whether the wet curtain is switched from the used state to the unused state, and it is determined whether to dry the wet curtain according to the application scenario, as well as the method and time for drying the wet curtain. For example, when the humidifier with a wet curtain finishes humidifying, the possible idle time of the wet curtain is judged according to the usage scenario. If this idle time is too long, the wet curtain is dried, and the power and time for drying the wet curtain are determined according to the noise level acceptable in this usage scenario.
[0141] Specifically, it can also be automatically determined whether to dry the wet curtain according to the switching of the working state and the humidity of the wet curtain. At this time, when the wet curtain of the electrical appliance is switched from the used state to the unused state, it is determined whether to dry the wet curtain according to the application scenario of the electrical appliance. When the wet curtain needs to be dried, the humidity of the wet curtain is measured. When the humidity of the wet curtain exceeds the standard, the wet curtain is dried until the humidity of the wet curtain reaches the standard.
[0142] Specifically, it can also be in the automatic drying mode of the wet curtain set manually by the user. The electrical appliance monitors the humidity of the wet curtain in real time. When the humidity exceeds the standard, the wet curtain is dried until the humidity of the wet curtain reaches the standard.
[0143] Specifically, the parameters of the wet curtain humidity exceeding the standard and the wet curtain drying can be automatically updated during the use of the electrical appliance. For example, after the wet curtain is just used, the humidity difference before and after the wet curtain or the weight of the wet curtain is immediately measured and a certain calculation is performed to update the parameter of the wet curtain humidity exceeding the standard. During the drying process of the wet curtain, if the humidity of the wet curtain has not been able to reach the drying mark, then when the drying time exceeds the upper limit, a certain calculation is performed according to the humidity difference before and after the wet curtain or the weight of the wet curtain at this time to update the wet curtain drying parameter. At the same time, the user can manually force the drying process and update the wet curtain drying parameter after the drying process ends.
[0144] Example 2
[0145] Figure 7 Shows a structural schematic of a device control device for a humidifying device, as Figure 7 As shown, the device control device provided in this embodiment includes:
[0146] A monitoring module 710 for monitoring a drying trigger instruction;
[0147] A determination module 720, configured to determine operating parameters of the drying member after detecting the drying trigger instruction;
[0148] A control module 730, configured to control the drying member to operate to dry the humidifying member based on the operating parameters.
[0149] In some embodiments, when the monitoring module 710 monitors the drying trigger instruction, it is mainly used for:
[0150] Monitoring whether the humidifying device is in the automatic drying mode;
[0151] When it is monitored that the humidifying device is in the automatic drying mode, it is determined that the drying trigger instruction is detected.
[0152] In some embodiments, when the monitoring module 710 monitors the drying trigger instruction, it is mainly used for:
[0153] When the working state change of the humidifying device is monitored, determining whether the humidifying member is switched from the used state to the unused state;
[0154] If the humidifying member is switched from the used state to the unused state, obtain the actual use scenario of the humidifying device;
[0155] When the actual use scenario meets the preset scenario, it is determined that the drying trigger instruction is detected.
[0156] In some embodiments, when the determination module 720 determines the operating parameters of the drying member, it is mainly used for:
[0157] Obtain the noise tolerance parameter corresponding to the actual use scenario;
[0158] According to the noise tolerance parameter, determine the drying power and drying time in the operating parameters.
[0159] In some embodiments, when the determination module 720 determines the operating parameters of the drying member, it is mainly used for:
[0160] Obtain the real-time humidity parameter of the wet curtain in the humidifying member;
[0161] Compare the magnitude relationship between the real-time humidity parameter and the wetting threshold;
[0162] When the humidity parameter is greater than the wetting threshold, determine that the stop condition in the operating parameters is that the real-time humidity parameter is less than the drying threshold or the working duration is greater than the duration threshold.
[0163] In some embodiments, before the determination module 720 obtains the real-time humidity parameter of the wet curtain in the humidifying member, it is further used for:
[0164] Obtain a first humidity parameter of the wet curtain after the humidifying device stops using the wet curtain.
[0165] Determine the wetting threshold according to the first humidity parameter.
[0166] In some embodiments, after the determining module 720 controls the drying member to work to dry the humidifying member, it is further configured to:
[0167] If the actual stop condition of the drying member is that the working duration is greater than the duration threshold, obtain a second humidity parameter of the wet curtain when the drying member stops working.
[0168] Determine the drying threshold according to the second humidity parameter.
[0169] In some embodiments, before the determining module 720 obtains the real-time humidity parameter of the wet curtain in the humidifying member, it is further configured to:
[0170] Obtain a third humidity parameter of the wet curtain after the manual drying of the humidifying device ends.
[0171] Determine the drying threshold according to the third humidity parameter.
[0172] In some embodiments, when the determining module 720 obtains the real-time humidity parameter of the wet curtain in the humidifying member, it is mainly configured to:
[0173] Obtain a first humidity value of the air before passing through the wet curtain and a second humidity value after passing through the wet curtain.
[0174] Determine the real-time humidity parameter of the wet curtain according to the first humidity value and the second humidity value.
[0175] In some embodiments, when the determining module 720 obtains the real-time humidity parameter of the wet curtain in the humidifying member, it is mainly configured to:
[0176] Obtain the weight value of the wet curtain.
[0177] Determine the real-time humidity parameter of the wet curtain according to the weight value.
[0178] For the beneficial effects that can be brought by the device in this embodiment, please refer to Embodiment 1, which will not be elaborated here.
[0179] Those skilled in the art should understand that the above-mentioned modules or steps can be implemented by a general-purpose computing device. They can be concentrated on a single computing device or distributed over a network composed of multiple computing devices. Optionally, they can be implemented by program code executable by the computing device. Thus, they can be stored in a storage device and executed by the computing device, or they can be separately fabricated into individual integrated circuit modules, or multiple modules or steps among them can be fabricated into a single integrated circuit module for implementation. The present invention is not limited to any specific combination of hardware and software.
[0180] Example 3
[0181] This embodiment provides a storage medium, on which a computer program is stored. When the computer program is executed by one or more processors, the method described in Embodiment 1 is implemented.
[0182] In this embodiment, the storage medium can be implemented by any type of volatile or non-volatile storage device or a combination thereof, such as static random access memory (SRAM for short), electrically erasable programmable read-only memory (EEPROM for short), erasable programmable read-only memory (EPROM for short), programmable read-only memory (PROM for short), read-only memory (ROM for short), magnetic memory, flash memory, a magnetic disk or an optical disc. For the content of the method, please refer to Embodiment 1 and will not be elaborated here.
[0183] Example 4
[0184] This embodiment provides a control device, including a memory and a processor. A computer program is stored on the memory. When the computer program is executed by the processor, the method described in Embodiment 1 is implemented.
[0185] In this embodiment, the processor may be implemented by an application specific integrated circuit (ASIC), a digital signal processor (DSP), a digital signal processing device (DSPD), a programmable logic device (PLD), a field programmable gate array (FPGA), a controller, a microcontroller, a microprocessor, or other electronic components, and is used to execute the method in the foregoing embodiment. The method implemented when the computer program running on the processor is executed may refer to the specific embodiments of the method provided in the foregoing embodiments of the present invention, which will not be elaborated herein.
[0186] Example 5
[0187] This embodiment provides a humidifying device, which may be as Figure 8 shown, and includes the control device 830 (i.e., the device control device, the main control, etc. in the following text), the drying member 820, the humidifying member 810 (mainly the wet curtain), etc. described in Embodiment 4.
[0188] In this embodiment, the humidifying device adopts the control device provided in Embodiment 4, so that it can implement the method provided in Embodiment 1 or the device provided in Embodiment 2, meeting the user's intelligent working requirements for the humidifying device.
[0189] In summary, the embodiments of the present invention provide a device control method, device, storage medium, control device, and humidifying device for a humidifying device. By additionally adding a drying member to the humidifying device, based on this, after detecting a drying trigger instruction, the working parameters of the drying member are determined, and based on the working parameters, the drying member is controlled to work to dry the humidifying member; that is, in this application, after the humidifying device stops humidifying, the humidifying member is dried, ensuring that the humidifying member such as the wet curtain is in a dry state when the humidifying device is not working, extending the service life of the humidifying member, and also avoiding the odor of the humidifying member.
[0190] In several embodiments provided by the embodiments of the present invention, it should be understood that the disclosed systems and methods may also be implemented in other ways. The system and method embodiments described above are merely illustrative.
[0191] It should be noted that in this text, the term "including", "comprising" or any other variant thereof is intended to cover non-exclusive inclusion, such that a process, method, article or device comprising a series of elements not only includes those elements but also includes other elements not expressly listed, or further includes elements inherent to such process, method, article or device. Without further limitation, an element defined by the statement "comprising an..." does not exclude the presence of additional identical elements in the process, method, article or device comprising said element.
[0192] Although the embodiments disclosed in the present invention are as above, the above content is only an embodiment adopted for the convenience of understanding the present invention and is not intended to limit the present invention. Any person skilled in the art within the technical field to which the present invention pertains may make any modifications and variations in the form of implementation and details without departing from the spirit and scope disclosed by the present invention. However, the scope of patent protection of the present invention shall still be subject to the scope defined by the appended claims.
Claims
1. A device control method for a humidifying device, characterized in that, The humidifying device includes a humidifying component and a drying component; the method includes: Monitoring a drying trigger instruction; After monitoring the drying trigger instruction, determining the operating parameters of the drying component; Based on the operating parameters, controlling the drying component to operate to dry the humidifying component; Wherein, for the automatic drying mode and the adaptive drying mode, the step of determining the operating parameters of the drying component includes: obtaining a noise tolerance parameter corresponding to the actual usage scenario; according to the noise tolerance parameter, determining the drying power and drying time in the operating parameters; For the automatic drying mode triggered manually by the user and the dynamic drying mode with the adaptive duration of the humidifying device, the step of determining the operating parameters of the drying component includes: obtaining the real-time humidity parameter of the wet curtain in the humidifying component; comparing the size relationship between the real-time humidity parameter and the wet threshold; when the real-time humidity parameter is greater than the wet threshold, determining that the stop condition in the operating parameters is that the real-time humidity parameter is less than the drying threshold or the operating duration is greater than the duration threshold; Before the step of obtaining the real-time humidity parameter of the wet curtain in the humidifying component, it further includes: obtaining a first humidity parameter of the wet curtain after the humidifying device stops using the wet curtain; according to the first humidity parameter, determining the wet threshold; Before the step of obtaining the real-time humidity parameter of the wet curtain in the humidifying component, it further includes: obtaining a third humidity parameter of the wet curtain after the manual drying of the humidifying device ends; according to the third humidity parameter, determining the drying threshold; After the step of controlling the drying component to operate to dry the humidifying component, it further includes: if the actual stop condition of the drying component is that the operating duration is greater than the duration threshold, obtaining a second humidity parameter of the wet curtain when the drying component stops working; according to the second humidity parameter, determining the drying threshold.
2. The method according to claim 1, characterized in that, The step of monitoring the drying trigger instruction includes: Monitoring whether the humidifying device is in the automatic drying mode; When it is monitored that the humidifying device is in the automatic drying mode, it is determined that the drying trigger instruction is monitored.
3. The method according to claim 1, characterized in that, The step of monitoring the drying trigger instruction includes: When it is monitored that the working state of the humidifying device changes, determining whether the humidifying component switches from the used state to the unused state; If the humidifying component switches from the used state to the unused state, obtaining the actual duration when the humidifying device is in the non-humidifying state; When the actual duration when the humidifying device is in the non-humidifying state meets the preset duration when the humidifying device is in the non-humidifying state, it is determined that the drying trigger instruction is monitored.
4. The method according to claim 1, characterized in that, The operating parameters include the temperature of the heating device and / or the wind speed of the blowing device in the drying component.
5. The method according to claim 1, characterized in that, The step of obtaining the real-time humidity parameter of the wet curtain in the humidifying component includes: Obtaining a first humidity value of the air before passing through the wet curtain and a second humidity value after passing through the wet curtain; According to the first humidity value and the second humidity value, determining the real-time humidity parameter of the wet curtain.
6. The method according to claim 1, characterized in that, The step of obtaining the real-time humidity parameter of the wet curtain in the humidifying component includes: Obtain the weight value of the wet curtain; Determine the real-time humidity parameter of the wet curtain according to the weight value.
7. A device control device for a humidifying device, characterized in that, The humidifying device includes a humidifying component and a drying component; the device includes: A monitoring module for monitoring a drying trigger instruction; A determining module for determining the working parameters of the drying component after detecting the drying trigger instruction; A control module for controlling the drying component to work to dry the humidifying component based on the working parameters; Wherein, for the automatic drying mode and the adaptive drying mode, when the determining module determines the working parameters of the drying component, it is used to obtain the noise tolerance parameter corresponding to the actual usage scenario; according to the noise tolerance parameter, determine the drying power and drying time in the working parameters; For the automatic drying mode triggered manually by the user and the dynamic drying mode with the adaptive duration of the humidifying device, when the determining module determines the working parameters of the drying component, it is used to obtain the real-time humidity parameter of the wet curtain in the humidifying component; compare the size relationship between the real-time humidity parameter and the wetting threshold; when the real-time humidity parameter is greater than the wetting threshold, determine that the stop condition in the working parameters is that the real-time humidity parameter is less than the drying threshold or the working duration is greater than the duration threshold; Before the determining module obtains the real-time humidity parameter of the wet curtain in the humidifying component, it is also used to obtain the first humidity parameter of the wet curtain after the humidifying device stops using the wet curtain; according to the first humidity parameter, determine the wetting threshold; Before the determining module obtains the real-time humidity parameter of the wet curtain in the humidifying component, it is also used to obtain the third humidity parameter of the wet curtain after the manual drying of the humidifying device; according to the third humidity parameter, determine the drying threshold; After the determining module controls the drying component to work to dry the humidifying component, it is also used to, if the actual stop condition of the drying component is that the working duration is greater than the duration threshold, obtain the second humidity parameter of the wet curtain when the drying component stops working; according to the second humidity parameter, determine the drying threshold.
8. A storage medium, characterized in that, A computer program is stored on the storage medium, and when the computer program is executed by one or more processors, the method described in any one of claims 1 to 6 is implemented.
9. A control device, characterized in that, It includes a memory and a processor, and a computer program is stored on the memory, and when the computer program is executed by the processor, the method described in any one of claims 1 to 6 is implemented.
10. A humidifying device, characterized in that, It includes a humidifying component, a drying component, and the control device described in claim 9.
Citation Information
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