Massage instrument control method and device, massage instrument and storage medium
Patent Information
- Application Number
- CN202110528210.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-05-14
- Publication Date
- 2026-09-25
- Estimated Expiration
- 2041-05-14
AI Technical Summary
[0004]然而,相关技术中的按摩仪的按摩效果与电极之间的阻抗大小相关性很大,当用户皮肤与电极贴合程度较差或用户皮肤干燥时,两个电极间的阻抗比较大,导致流经人体皮肤和肌肉的电流很小,用户甚至感受不到,降低了按摩效果,从而影响了用户按摩体验
[0066]本申请提供的方法,可以确定所述微孔电极与人体贴合部位的湿度,在所述湿度小于第一预定阈值时,将所述储液装置中储存的所述导电液体导入至所述电极组件,以便通过电极组件中的微孔电极的微孔将导电液体渗出。通过上述处理,在湿度小于第一预定阈值时,通过将导电液体导入电极组件,经由微孔电极上的微孔渗出到用户皮肤上,从而能够提高皮肤的湿度,增大用户皮肤与电极组件之间的接触面积,降低电极组件的阻抗值,使得流经用户皮肤的电流增大,提高按摩效果,提升用户按摩体验。
Smart Images

Figure CN115337539B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of massage equipment technology, and in particular to a control method, device, massager, and storage medium for a massager. Background Technology
[0002] A massager is a health care device used to massage the whole body or specific areas of the body. With the continuous development of electronic technology and the continuous improvement of living standards, various types of massagers for massaging the body have emerged, such as massage chairs, neck massagers, eye massagers, and waist massagers.
[0003] In related technologies, the electrode assembly of a massager can generally include at least two electrodes. During a single electrical pulse output, the two electrodes serve as the positive and negative electrodes, respectively, and are in contact with the human skin. Since the human body is conductive, a circuit is formed, and the current flows through the neck skin and muscles to achieve electrical pulse massage.
[0004] However, the massage effect of massagers in related technologies is highly correlated with the impedance between the electrodes. When the user's skin does not fit well with the electrodes or when the user's skin is dry, the impedance between the two electrodes is relatively high, resulting in a very small current flowing through the skin and muscles. The user may not even feel it, which reduces the massage effect and thus affects the user's massage experience. Summary of the Invention
[0005] To address or partially address the problems existing in the related technologies, this application provides a control method, device, massager, and storage medium for a massager, which can increase humidity, increase the contact area between the user's skin and the electrode components, reduce the impedance value of the electrode components, improve the massage effect, and enhance the user's massage experience.
[0006] The first aspect of this application provides a control method for a massager, the massager including an electrode assembly for outputting electrical pulse signals and a liquid storage device for storing conductive liquid, the electrode assembly including at least one set of microporous electrodes, the microporous electrodes being provided with micropores, the method including:
[0007] Determine the humidity of the area where the microporous electrode contacts the human body;
[0008] When the humidity is less than a first predetermined threshold, the conductive liquid stored in the liquid storage device is introduced into the electrode assembly, and the conductive liquid seeps out through the micropores of the microporous electrode in the electrode assembly.
[0009] In one embodiment, determining the humidity of the area where the microporous electrode contacts the human body includes:
[0010] The humidity of the area where the microporous electrode is in contact with the human body is detected by a humidity sensor.
[0011] In one embodiment, the humidity sensor is disposed on the microporous electrode.
[0012] In one embodiment, the humidity includes air humidity and / or human skin humidity.
[0013] In one embodiment, determining the humidity of the area where the microporous electrode contacts the human body includes:
[0014] The humidity of the area where the microporous electrode is in contact with the human body is periodically monitored.
[0015] In one embodiment, the conductive liquid includes water, an aqueous solution, or a massage liquid with drug-aiding functions.
[0016] In one embodiment, before determining the humidity of the area where the microporous electrode contacts the human body, the method further includes:
[0017] Detect the wearing status of the massager;
[0018] When the massager is being worn, the step of determining the humidity of the area where the microporous electrode is in contact with the human body is performed.
[0019] In one embodiment, the massager further includes a wear detection component, wherein detecting the wear status of the massager includes:
[0020] The wearing parameters of the massager are obtained, and the wearing parameters include at least one of the capacitance value, pressure value and distance value of the wearing detection component;
[0021] The wearing status of the massager is determined based on the wearing parameters.
[0022] In one embodiment, after determining the humidity of the area where the microporous electrode is in contact with the human body, the method further includes: determining the amount of leakage of the conductive liquid based on the humidity, wherein the humidity and the amount of leakage of the conductive liquid are negatively correlated.
[0023] The step of introducing the conductive liquid stored in the liquid storage device into the electrode assembly includes:
[0024] The conductive liquid stored in the liquid storage device is introduced into the electrode assembly according to the determined permeation amount.
[0025] In one embodiment, the massager further includes a temperature regulating device, and before introducing the conductive liquid stored in the reservoir into the electrode assembly, the method further includes:
[0026] Obtain the ambient temperature of the environment in which the massager is located;
[0027] Based on the ambient temperature, the temperature regulating device is controlled to regulate the temperature of the conductive liquid stored in the liquid storage device.
[0028] The step of introducing the conductive liquid stored in the liquid storage device into the electrode assembly includes:
[0029] The temperature-adjusted conductive liquid is introduced into the electrode assembly.
[0030] In one embodiment, controlling the temperature regulating device to regulate the temperature of the conductive liquid stored in the liquid storage device according to the ambient temperature includes:
[0031] When the ambient temperature is lower than the first preset ambient temperature, the temperature regulating device is controlled to heat the conductive liquid stored in the liquid storage device.
[0032] In one embodiment, controlling the temperature regulating device to heat the conductive liquid stored in the liquid storage device includes:
[0033] The temperature regulating device is controlled to heat the conductive liquid stored in the liquid storage device until the liquid temperature of the conductive liquid is raised to a first preset liquid temperature.
[0034] In one embodiment, controlling the temperature regulating device to regulate the temperature of the conductive liquid stored in the liquid storage device according to the ambient temperature includes:
[0035] When the ambient temperature is higher than the second preset ambient temperature, the temperature regulating device is controlled to cool the conductive liquid stored in the liquid storage device.
[0036] In one embodiment, controlling the temperature regulating device to cool the conductive liquid stored in the liquid storage device includes:
[0037] The temperature regulating device is controlled to cool the conductive liquid stored in the liquid storage device until the liquid temperature of the conductive liquid is reduced to a second preset liquid temperature.
[0038] In one embodiment, the method further includes:
[0039] Obtain the liquid temperature of the conductive liquid stored in the liquid storage device;
[0040] Wherein, the step of controlling the temperature regulating device to heat the conductive liquid stored in the liquid storage device when the ambient temperature is lower than the first preset ambient temperature includes:
[0041] When the ambient temperature is lower than the first preset ambient temperature and the liquid temperature is lower than the third preset liquid temperature, the temperature regulating device is controlled to heat the conductive liquid stored in the liquid storage device.
[0042] In one embodiment, the method further includes:
[0043] Obtain the liquid temperature of the conductive liquid stored in the liquid storage device;
[0044] Wherein, the step of controlling the temperature regulating device to cool the conductive liquid stored in the liquid storage device when the ambient temperature is higher than the second preset ambient temperature includes:
[0045] When the ambient temperature is higher than the second preset ambient temperature and the liquid temperature is higher than the fourth preset liquid temperature, the temperature regulating device is controlled to cool the conductive liquid stored in the liquid storage device.
[0046] In one embodiment, the massager further includes a liquid pumping device, wherein when the humidity is less than a first predetermined threshold, the conductive liquid stored in the liquid storage device is introduced into the electrode assembly, comprising:
[0047] When the humidity is less than a first predetermined threshold, the conductive liquid stored in the liquid storage device is pumped out to the electrode assembly through the liquid pumping device.
[0048] In one embodiment, when the electrode assembly includes at least two sets of microporous electrodes, the step of introducing the conductive liquid stored in the liquid storage device into the electrode assembly, and allowing the conductive liquid to seep out through the micropores of the microporous electrodes in the electrode assembly, includes:
[0049] The conductive liquid stored in the liquid storage device is introduced into a designated microporous electrode in at least two sets of microporous electrodes, and the conductive liquid seeps out through the micropores of the designated microporous electrode.
[0050] In one embodiment, the microporous electrode is a microporous electrode in working mode.
[0051] In one embodiment, the method further includes:
[0052] Obtain user information of the user wearing the massager;
[0053] The first predetermined threshold is matched according to the user information, wherein the first predetermined threshold is pre-configured for different users.
[0054] A second aspect of this application provides a control device for a massager, the massager including an electrode assembly for outputting electrical pulse signals and a liquid storage device for storing conductive liquid, the electrode assembly including at least one set of microporous electrodes, the microporous electrodes being provided with micropores, the device comprising:
[0055] A humidity detection module is used to determine the humidity of the area where the microporous electrode is in contact with the human body;
[0056] The liquid seepage control module is used to introduce the conductive liquid stored in the liquid storage device into the electrode assembly when the humidity detection module determines that the humidity is less than a first predetermined threshold, and to allow the conductive liquid to seep out through the micropores of the microporous electrode in the electrode assembly.
[0057] A third aspect of this application provides a massager, including an electrode assembly, a liquid storage device, and a controller, wherein the electrode assembly includes at least one set of microporous electrodes;
[0058] The electrode assembly is used to output electrical pulse signals;
[0059] The liquid storage device is used to store conductive liquid;
[0060] The controller is used to determine the humidity of the part of the microporous electrode that is in contact with the human body; when the humidity is less than a first predetermined threshold, the conductive liquid stored in the liquid storage device is introduced into the electrode assembly, and the conductive liquid seeps out through the micropores of the microporous electrode in the electrode assembly.
[0061] The fourth aspect of this application provides a massage device, comprising:
[0062] Processor; and
[0063] A memory that stores executable code, which, when executed by the processor, causes the processor to perform the method described above.
[0064] The fifth aspect of this application provides a non-transitory machine-readable storage medium having executable code stored thereon, which, when executed by a processor, causes the processor to perform the method described above.
[0065] The technical solution provided in this application may include the following beneficial effects:
[0066] The method provided in this application can determine the humidity of the area where the microporous electrode contacts the human body. When the humidity is less than a first predetermined threshold, the conductive liquid stored in the liquid storage device is introduced into the electrode assembly so that the conductive liquid can seep out through the micropores of the microporous electrode in the electrode assembly. Through the above process, when the humidity is less than the first predetermined threshold, by introducing the conductive liquid into the electrode assembly and allowing it to seep out onto the user's skin through the micropores on the microporous electrode, the skin's humidity can be increased, the contact area between the user's skin and the electrode assembly can be increased, the impedance value of the electrode assembly can be reduced, the current flowing through the user's skin can be increased, the massage effect can be improved, and the user's massage experience can be enhanced.
[0067] It should be understood that the above general description and the following detailed description are exemplary and explanatory only, and do not limit this application. Attached Figure Description
[0068] The above and other objects, features and advantages of this application will become more apparent from the more detailed description of exemplary embodiments thereof in conjunction with the accompanying drawings, wherein the same reference numerals generally represent the same components in the exemplary embodiments thereof.
[0069] Figure 1 This is a three-dimensional structural diagram of a massager shown in an embodiment of this application;
[0070] Figure 2 This is a flowchart illustrating a control method for a massager according to an embodiment of this application;
[0071] Figure 3 This is a flowchart illustrating a control method for a massager according to another embodiment of this application;
[0072] Figure 4 This is a flowchart illustrating a control method for a massager according to another embodiment of this application;
[0073] Figure 5 This is a flowchart illustrating a control method for a massager according to another embodiment of this application;
[0074] Figure 6 This is a flowchart illustrating a control method for a massager according to another embodiment of this application;
[0075] Figure 7 This is a schematic diagram of the structure of a control device for a massager, as shown in an embodiment of this application;
[0076] Figure 8 This is a structural block diagram of a massager shown in an embodiment of this application;
[0077] Figure 9This is a structural block diagram of a massager shown in another embodiment of this application. Detailed Implementation
[0078] Embodiments of this application will now be described in more detail with reference to the accompanying drawings. While embodiments of this application are shown in the drawings, it should be understood that this application may be implemented in various forms and should not be limited to the embodiments set forth herein. Rather, these embodiments are provided to make this application more thorough and complete, and to fully convey the scope of this application to those skilled in the art.
[0079] The terminology used in this application is for the purpose of describing particular embodiments only and is not intended to be limiting of the application. The singular forms “a,” “the,” and “the” used in this application and the appended claims are also intended to include the plural forms unless the context clearly indicates otherwise. It should also be understood that the term “and / or” as used herein refers to and includes any or all possible combinations of one or more of the associated listed items.
[0080] It should be understood that although the terms "first," "second," "third," etc., may be used in this application to describe various information, this information should not be limited to these terms. These terms are only used to distinguish information of the same type from one another. For example, without departing from the scope of this application, first information may also be referred to as second information, and similarly, second information may also be referred to as first information. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this application, "multiple" means two or more, unless otherwise explicitly specified.
[0081] Currently, in related massage devices, when the user's skin does not adhere well to the electrode components or the user's skin is dry, the contact area between the user's skin and the electrode components is small, and the impedance between the electrodes is high. This results in a very small current flowing through the skin, leading to a weak massage sensation and affecting the user's massage experience. To address the above problems, this application provides a control method, device, massage device, and storage medium for a massage device. This method can increase skin humidity through fluid permeation, increase the contact area between the user's skin and the electrode components, reduce the impedance value of the electrode components, and improve the user's massage experience.
[0082] In this embodiment of the application, the massager can be a wearable massager, which may include, but is not limited to, a neck massager, an eye massager, a waist massager, etc. Figure 1 This explanation will be based on a neck massager. Figure 1As shown, the massager 100 may include at least an electrode assembly 10, a liquid storage device 20, and a massager body 30. The electrode assembly 10 may include at least one set of microporous electrodes with micropores. The electrode assembly 10 is disposed on the massager body 30 and can be used to output current pulse signals to electrically stimulate the user's skin and joints, achieving a massage effect. The liquid storage device 20 is disposed on the massager body 30 and is used to store conductive liquid. The liquid storage device 20 may be fixedly connected to the massager body 30 or detachably connected to it. The electrode assembly 10 can be connected via a liquid guide tube (…). Figure 1 (Not shown) is connected to the liquid storage device 20. When the impedance value of the electrode assembly 10 exceeds a first preset impedance value, the conductive liquid stored in the liquid storage device 20 is introduced into the electrode assembly 10 so that the conductive liquid can seep out onto the user's skin through the micropores of the microporous electrode in the electrode assembly 10. This seepage improves the contact between the user's skin and the electrode assembly, provides moisture to the skin, increases the contact area between the user's skin and the electrode assembly, thereby reducing the impedance value of the electrode assembly.
[0083] Understandable, Figure 1 The diagram shown represents only one structural form of the neck massager; the massager in this embodiment is not limited to any particular type. Figure 1 The structural form shown may also be other structural forms, and the embodiments of this application are not limited thereto.
[0084] Please see Figure 2 , Figure 2 This is a schematic flowchart illustrating a control method for a massager according to an embodiment of this application. This method can be applied to the massager 100 described above. Figure 2 As shown, the method may include:
[0085] Step S210: Determine the humidity of the area where the microporous electrode is in contact with the human body.
[0086] In this embodiment, after the massager is powered on, the humidity of the area where the microporous electrode contacts the human body can be detected. It should be noted that the humidity of the area can also be detected periodically, that is, every preset time interval, such as 5 minutes, 10 minutes, 20 minutes, 30 minutes, or other values. The preset time interval can be adaptively adjusted according to user needs and / or actual application scenarios.
[0087] The humidity sensor can detect the humidity at the point where the microporous electrode contacts the human body. The humidity sensor can be located on the microporous electrode. The humidity can include air humidity and / or human skin humidity. The humidity sensor in this application can be a single-function humidity sensor or a temperature and humidity sensor with both humidity and temperature detection functions.
[0088] The electrode assembly may include at least one set of microporous electrodes, and each set of microporous electrodes may include two microporous electrodes. One or more micropores may be provided on a microporous electrode. For example, the pore size of a micropore may be, but is not limited to, 5 μm (micrometers) to 50 μm, and the spacing between two adjacent micropores on a microporous electrode may be, but is not limited to, 200 μm to 500 μm.
[0089] Step S220: When the humidity is less than a first predetermined threshold, the conductive liquid stored in the liquid storage device is introduced into the electrode assembly, and the conductive liquid seeps out through the micropores of the microporous electrode in the electrode assembly.
[0090] When the humidity is below a first predetermined threshold, it indicates a high impedance between the electrode assembly and the user's skin. This results in a small current flowing through the skin, leading to a poor massage experience. In this case, conductive liquid stored in the reservoir can be introduced into the electrode assembly. The conductive liquid seeps into the user's skin through micropores on the microporous electrodes. The liquid wets the skin, increasing its humidity and expanding the contact area between the skin and the electrode assembly. This alters the dielectric constant between them, reducing the impedance of the electrode assembly and improving the massage effect. The conductive liquid can include water, aqueous solutions, or massage liquids with medicated properties.
[0091] In this embodiment, the first predetermined threshold for humidity can be set empirically, and its value can be set with reference to the dielectric constant of the air interface layer between the microporous electrode and the human body. For example, the first predetermined threshold can be the humidity that minimizes the dielectric constant; if the humidity exceeds the first predetermined threshold, the need for liquid seepage is less. For example, the first predetermined threshold can be a value between 0.8 and 0.9. It is easy to understand that within a certain range, the higher the humidity, the better the air conductivity, and the higher its dielectric constant. When the humidity is less than the first predetermined threshold, it can be considered that the dryness is relatively high, and a conductive liquid is needed for humidification.
[0092] When the electrode assembly includes multiple sets of microporous electrodes, only the microporous electrodes in the working mode can be permeated with liquid, while the microporous electrodes in the non-working mode can remain unpermeated. Alternatively, all microporous electrodes can be permeated with liquid.
[0093] Before the liquid seeps out, the temperature of the conductive liquid can be appropriately adjusted, and the temperature-adjusted conductive liquid can then seep out, thereby avoiding discomfort to the user caused by excessively low or high temperatures.
[0094] In addition, after the fluid seepage, the humidity at the point where the microporous electrode contacts the body can be continuously monitored to determine if the humidity has decreased. If the humidity is detected to be below a first predetermined threshold again, fluid seepage can be repeated. The amount of fluid seeped each time can be fixed, such as 0.1ml / time, 0.2ml / time, 0.5ml / time, or other values. Due to the high operating frequency of the massager, the entire process can be completed within 2 seconds, without causing excessive waiting time for the user.
[0095] Alternatively, the amount of conductive liquid seepage can be determined based on the detected humidity level, where there is a negative correlation between humidity and the amount of conductive liquid seepage. In other words, the lower the humidity, the greater the amount of seepage, and vice versa. This is easily understood because lower humidity indicates a higher degree of dryness, resulting in a higher dielectric constant of the air interface between the microporous electrode and the contact area with the human body. Therefore, more liquid needs to seep out to this area to reduce dryness and lower the dielectric constant.
[0096] The negative correlation between humidity and seepage volume can be expressed using an inverse proportional function or a correspondence table. For example, if the relationship is presented as an inverse proportional function, the corresponding seepage volume can be calculated by substituting the humidity value into the function after humidity is detected. Conversely, if the relationship is presented as a correspondence table, the corresponding seepage volume can be determined by looking up the corresponding humidity value in the table after humidity is detected.
[0097] Before performing the liquid infusion operation, it can be checked whether the massager is being worn. Liquid infusion will only be performed when the massager is being worn; otherwise, liquid infusion will not be performed.
[0098] The method provided in this application embodiment can determine the humidity of the area where the microporous electrode contacts the human body. When the humidity is less than a first predetermined threshold, conductive liquid stored in a liquid storage device is introduced into the electrode assembly so that the conductive liquid can seep out through the micropores of the microporous electrode in the electrode assembly. Through the above process, when the humidity is less than the first predetermined threshold, by introducing conductive liquid into the electrode assembly and allowing it to seep out onto the user's skin through the micropores on the microporous electrode, the skin's humidity can be increased, the contact area between the user's skin and the electrode assembly can be increased, the impedance value of the electrode assembly can be reduced, the current flowing through the user's skin can be increased, the massage effect can be improved, and the user's massage experience can be enhanced.
[0099] Please see Figure 3 , Figure 3 This is a flowchart illustrating a control method for a massager according to another embodiment of this application. Figure 3 One embodiment can periodically detect the humidity at the point where the microporous electrode contacts the human body, enabling multiple leakage events. For example... Figure 3As shown, the method may include:
[0100] Step S310: Periodically detect the humidity of the area where the microporous electrode is in contact with the human body.
[0101] In this embodiment, the humidity of the area where the microporous electrode contacts the human body can be periodically detected. Specifically, the humidity of the area where the microporous electrode contacts the human body can be detected every preset time interval, which can be 5 minutes, 10 minutes, 20 minutes, 30 minutes, or other values. The preset time interval can be adaptively adjusted according to user needs and / or actual application scenarios.
[0102] The humidity sensor can detect the humidity at the point where the microporous electrode contacts the human body. The humidity sensor can be located on the microporous electrode. The humidity can include air humidity and / or human skin humidity. The humidity sensor in this application can be a single-function humidity sensor or a temperature and humidity sensor with both humidity and temperature detection functions.
[0103] Step S320: When the humidity is less than the first predetermined threshold, the conductive liquid stored in the liquid storage device is introduced into the electrode assembly, and the conductive liquid seeps out through the micropores of the microporous electrode in the electrode assembly.
[0104] When the humidity is below a first predetermined threshold, it indicates that the impedance between the electrode assembly and the user's skin is high, resulting in a small current flowing through the user's skin and a poor massage experience. In this case, conductive liquid stored in the reservoir can be introduced into the electrode assembly, and the conductive liquid will seep out onto the user's skin through the micropores on the microporous electrodes in the electrode assembly.
[0105] After seepage, if the user uses the product for a long time, the liquid will slowly evaporate. Therefore, after the first seepage, the humidity of the part of the microporous electrode that is in contact with the human body can be continuously monitored to determine whether the humidity has decreased. If the humidity is detected to be less than the first predetermined threshold again, seepage can be performed again, that is, the conductive liquid will seep out again through the micropores of the microporous electrode in the electrode assembly.
[0106] A more detailed description of step S320 can be found in the description of step S220, and will not be repeated here.
[0107] The method provided in this application embodiment can periodically detect the humidity of the part of the microporous electrode that is in contact with the human body. Whether it is the first time or the second time the humidity is detected to be less than a first predetermined threshold, conductive liquid can be introduced into the electrode assembly and seeped into the user's skin through the micropores on the electrode. This can increase the contact area between the user's skin and the electrode assembly, reduce the impedance value of the electrode assembly, increase the current flowing through the user's skin, and improve the user's massage experience.
[0108] Please see Figure 4 , Figure 4 This is a flowchart illustrating a control method for a massager according to another embodiment of this application. Figure 4 In this embodiment, the wearing status of the massager is detected first. For example... Figure 4 As shown, the method may include:
[0109] Step S410: Check the wearing status of the massager.
[0110] The massager may include a wear detection component for detecting wear parameters, which may include, but are not limited to, at least one of the following: capacitance value, pressure value, and distance value of the wear detection component. The wear status of the massager can then be determined based on these wear parameters.
[0111] Detecting the wearing status of a massager may include: acquiring wearing parameters of the massager and determining the wearing status of the massager based on these parameters. In an optional embodiment, the wearing detection component may include one or more capacitive sensors. By acquiring the capacitance value of the capacitive sensors and comparing it with a preset capacitance value, it can be determined that the massager is being worn when the capacitance value is greater than the preset capacitance value; and that the massager is not being worn when the capacitance value is less than or equal to the preset capacitance value. The capacitive sensors may be capacitive proximity sensors; the capacitance value increases when a person approaches the sensor and decreases when the person moves away from the sensor.
[0112] In an optional implementation, the wear detection component may include one or more pressure sensors. By acquiring the pressure values measured by the pressure sensors and comparing them with a preset pressure value, it can be determined that the massager is being worn when the pressure value measured by the pressure sensors is greater than the preset pressure value; and it can be determined that the massager is not being worn when the pressure value measured by the pressure sensors is less than or equal to the preset pressure value. The pressure sensors can be used to measure the pressure between a specific location on the massager and the human body. Pressure is generated when the human body is in contact with the massager. When the human body is not in contact with the massager, the pressure value tends to be 0.
[0113] In an optional implementation, the wear detection component may include one or more distance sensors. By acquiring distance values measured by the distance sensors and comparing them with a preset distance value, it can be determined that the massager is being worn when the distance value measured by the distance sensors is less than the preset distance value; and it can be determined that the massager is not being worn when the distance value measured by the distance sensors is greater than or equal to the preset distance value. The distance sensors can be used to measure the distance between a specific location on the massager and the human body. The distance sensors can be at least one of infrared distance sensors, laser distance sensors, ultrasonic distance sensors, etc. The distance value decreases when the human body approaches the massager and increases when the human body moves away from the massager.
[0114] Understandably, when using two or more methods to detect the wearing status of a massager, each of the aforementioned conditions must be met simultaneously to determine if the massager is being worn; otherwise, the massager is not being worn. Combining multiple methods for detection can improve the accuracy of wear detection.
[0115] For example, when both capacitance and pressure values are detected, if the capacitance value is greater than a preset capacitance value and the pressure value is greater than a preset pressure value, the massager is determined to be in a worn state. If one of them is not satisfied, the massager is determined to be in an unworn state.
[0116] For example, when both pressure and distance values are detected, if the pressure value is greater than a preset pressure value and the distance value is less than a preset distance value, the massager is determined to be in a worn state. If one condition is not met, the massager is determined to be in an unworn state.
[0117] For example, when both capacitance and distance values are detected, if the capacitance value is greater than a preset capacitance value and the distance value is less than a preset distance value, the massager is determined to be in a worn state. If one condition is not met, the massager is determined to be in an unworn state.
[0118] For example, when capacitance, pressure, and distance are detected together, if the capacitance is greater than a preset capacitance value, the pressure is greater than a preset pressure value, and the distance is less than a preset distance value, the massager is determined to be in a worn state. If one of these conditions is not met, the massager is determined to be in an unworn state.
[0119] Step S420: When the massager is in the wearing state, determine the humidity of the part of the body where the microporous electrode is in contact with the human body.
[0120] When the massager is being worn, a humidity sensor can detect the humidity at the point where the microporous electrode contacts the body. The humidity sensor can be located on the microporous electrode. The humidity can include air humidity and / or human skin humidity. The humidity sensor in this application can be a single-function humidity sensor or a temperature and humidity sensor with both humidity and temperature detection functions.
[0121] When the massager is not being worn, step S420 can be skipped, and the wearing status detection can continue.
[0122] Step S430: When the humidity is less than the first predetermined threshold, the conductive liquid stored in the liquid storage device is introduced into the electrode assembly, and the conductive liquid seeps out through the micropores of the microporous electrode in the electrode assembly.
[0123] In this embodiment, when the massager is worn and the humidity is less than a first predetermined threshold, liquid seepage can be performed. When the massager is not worn, or when it is worn but the humidity is greater than or equal to the first predetermined threshold, liquid seepage can be prevented to avoid liquid waste. To avoid excessive liquid seepage at one time, which would not only waste liquid but also cause discomfort to the user, the amount of conductive liquid seeped each time can be controlled to a preset amount, such as 0.1 ml / time, 0.2 ml / time, 0.5 ml / time, or other values.
[0124] Additionally, when the massager contains multiple sets of microporous electrodes, only the microporous electrodes in working mode can be liquid-extracted. The microporous electrodes in working mode can include those with impedance values greater than a first preset impedance value, or those with impedance values less than the first preset impedance value. When the massager contains multiple sets of microporous electrodes, some microporous electrodes may have better contact with the user's skin and lower impedance values, while others may have poorer contact and higher impedance values. If all microporous electrodes are liquid-extracted, it may result in liquid waste. Therefore, only the microporous electrodes in working mode are liquid-extracted.
[0125] Alternatively, the impedance values between each group of microporous electrodes can be detected separately and compared with the first preset impedance value. Only microporous electrodes with impedance values exceeding the first preset impedance value are allowed to leak liquid, while other microporous electrodes with impedance values not exceeding the first preset impedance value are not allowed to leak liquid.
[0126] In an optional embodiment, the massager may further include a liquid pumping device. When the humidity is less than a first predetermined threshold, the liquid pumping device pumps the conductive liquid stored in the reservoir to the electrode assembly. The liquid pumping device can be a liquid pump or an air pump. One end of the liquid pumping device is connected to the reservoir via a liquid guide tube, and the other end is connected to the electrode assembly via a liquid guide tube. In use, the liquid pumping device delivers the conductive liquid from the reservoir to the electrode assembly, forming microdroplets through the micropores on the microporous electrode. The reservoir can be detachable, for example, it can be detachably connected to the massager body via magnetic attraction or a snap-fit mechanism.
[0127] It is understood that the above-mentioned method of pumping out conductive liquid using a liquid pumping device is only one implementation method. The massager in this application embodiment is not limited to this one implementation method and can also be implemented in other ways. For example, a switching valve can be set up. When liquid seepage is needed, the switching valve is controlled to open, allowing the conductive liquid in the liquid storage device to flow to the electrode assembly. The amount of conductive liquid seepage can be controlled by controlling the opening duration of the switching valve. When the seepage ends, the switching valve is controlled to close.
[0128] The method provided in this application embodiment allows for the introduction of conductive liquid into the electrode assembly when the massager is worn by a user and the humidity is less than a first predetermined threshold. The liquid then seeps through micropores on the electrodes onto the user's skin, increasing the contact area between the user's skin and the electrode assembly, reducing the impedance of the electrode assembly, and increasing the current flowing through the user's skin, thus enhancing the user's massage experience. Furthermore, the liquid seepage only occurs when the massager is worn, preventing waste of the conductive liquid.
[0129] Please see Figure 5 , Figure 5 This is a flowchart illustrating a control method for a massager according to another embodiment of this application. Figure 5 In this embodiment, the temperature of the conductive liquid stored in the liquid storage device can be adjusted. For example... Figure 5 As shown, the method may include:
[0130] Step S510: Determine the humidity of the area where the microporous electrode is in contact with the human body.
[0131] Before determining the humidity of the area where the microporous electrode contacts the human body, a wear test can be performed on the massager. If the massager is in a worn state, further operations can be performed; otherwise, the operation ends. This step S510 is described in step S210 and will not be repeated here.
[0132] Step S520: When the humidity is less than the first predetermined threshold, obtain the ambient temperature of the environment where the massager is located.
[0133] This application embodiment can include a first temperature sensor on the massager for measuring the ambient temperature. The ambient temperature of the environment in which the massager is located is obtained when the humidity is less than a first predetermined threshold. Optionally, the ambient temperature can also be provided by a mobile device (such as a mobile phone, computer, etc.) connected to the massager.
[0134] Step S530: Adjust the temperature of the conductive liquid stored in the liquid storage device according to the obtained ambient temperature.
[0135] The massager may also include a temperature regulating device for adjusting the temperature of the conductive liquid. This temperature regulating device can regulate the temperature of all the conductive liquid in the reservoir, thus reducing the frequency of subsequent temperature adjustments. In this case, the temperature regulating device can be located within the reservoir.
[0136] The temperature control device can also regulate the temperature of only the portion of the conductive liquid about to be introduced into the electrode assembly, thus reducing energy consumption. In this case, the temperature control device can be located at the liquid guide tube, for example, by winding it into the liquid guide tube as a coil.
[0137] Step S540: The temperature-adjusted conductive liquid is introduced into the electrode assembly, and the conductive liquid seeps out through the micropores of the microporous electrode in the electrode assembly.
[0138] In an optional embodiment, adjusting the temperature of the conductive liquid stored in the liquid storage device according to the obtained ambient temperature may include: when the ambient temperature is lower than a first preset ambient temperature, controlling the temperature adjustment device to heat the conductive liquid stored in the liquid storage device.
[0139] Accordingly, introducing the temperature-adjusted conductive liquid into the electrode assembly may include: introducing the heated conductive liquid into the electrode assembly.
[0140] The first preset ambient temperature can be the system's default temperature, or it can be set and modified by the user; this application does not impose any limitations on this. For example, the first preset ambient temperature can be 20 degrees, 18 degrees, 15 degrees, 10 degrees, or other values.
[0141] When the ambient temperature is lower than the first preset ambient temperature, it indicates that the current air temperature is low (such as when the air temperature is low in winter). The conductive liquid can be heated to raise the liquid temperature, thereby avoiding the liquid being too cold and causing stimulation to the user, which would affect the user's massage experience.
[0142] The heating of the conductive liquid stored in the liquid storage device by the temperature regulating device can include: heating the conductive liquid stored in the liquid storage device until the liquid temperature reaches a first preset liquid temperature. The first preset liquid temperature can be a default temperature or a user-defined temperature. For example, the first preset liquid temperature can be 30 degrees Celsius, 35 degrees Celsius, 36 degrees Celsius, 38 degrees Celsius, or other values. For instance, in winter when the air temperature is below 10 degrees Celsius, the liquid temperature can be heated to near human body temperature, such as 36 degrees Celsius, before seepage. This avoids the liquid being too cold and causing irritation to the user, or too hot and causing burns.
[0143] In an optional embodiment, controlling the temperature regulating device to regulate the temperature of the conductive liquid stored in the liquid storage device according to the ambient temperature may include: when the ambient temperature is higher than a second preset ambient temperature, controlling the temperature regulating device to cool the conductive liquid stored in the liquid storage device; wherein, introducing the temperature-regulated conductive liquid into the electrode assembly may include: introducing the cooled conductive liquid into the electrode assembly.
[0144] The second preset ambient temperature can be a default temperature or can be set and modified by the user; this application does not limit this. For example, the second preset ambient temperature can be 28 degrees Celsius, 30 degrees Celsius, 32 degrees Celsius, 35 degrees Celsius, or other values. When the ambient temperature is higher than the second preset ambient temperature, it indicates that the current temperature is high (such as in hot summer). The conductive liquid can then be cooled to lower its temperature, thereby relieving the user's heat, cooling the user, and improving the user's massage experience.
[0145] The cooling of the conductive liquid stored in the liquid storage device by the temperature regulating device can include: controlling the temperature regulating device to cool the conductive liquid stored in the liquid storage device until the liquid temperature of the conductive liquid is reduced to a second preset liquid temperature. The second preset liquid temperature can be a default temperature or a user-defined temperature according to their needs. The second preset liquid temperature can be 25 degrees Celsius, 20 degrees Celsius, 18 degrees Celsius, 15 degrees Celsius, or other values. For example, when the summer temperature is higher than 30 degrees Celsius, the liquid temperature can be reduced to below 25 degrees Celsius before seepage, which can prevent the liquid from being too cold and causing irritation to the user.
[0146] In an optional embodiment, the temperature of the conductive liquid stored in the liquid storage device can also be obtained, and the temperature of the conductive liquid can be adjusted by combining the ambient temperature and the liquid temperature. A second temperature sensor can be installed within the massager to measure the liquid temperature. The second temperature sensor can be located within the liquid storage device.
[0147] Specifically, when the ambient temperature is lower than a first preset ambient temperature, controlling the temperature regulating device to heat the conductive liquid stored in the liquid storage device can include: when the ambient temperature is lower than the first preset ambient temperature and the liquid temperature is lower than a third preset liquid temperature, controlling the temperature regulating device to heat the conductive liquid stored in the liquid storage device. The third preset liquid temperature can be a system-set default temperature or can be set and modified by the user; this application does not limit this. The third preset liquid temperature is lower than the first preset liquid temperature. For example, when the winter air temperature is below 10 degrees Celsius, the liquid temperature can be detected. When the liquid temperature is lower than the third preset liquid temperature, such as below 25 degrees Celsius, the conductive liquid can be heated to raise its temperature. Using the liquid temperature makes the heating operation more precise and avoids repeated heating when the liquid temperature is not already low.
[0148] In an optional embodiment, controlling the temperature regulating device to cool the conductive liquid stored in the liquid storage device when the ambient temperature is higher than the second preset ambient temperature may include: when the ambient temperature is higher than the second preset ambient temperature and the liquid temperature is higher than the fourth preset liquid temperature, controlling the temperature regulating device to cool the conductive liquid stored in the liquid storage device. The fourth preset liquid temperature can be a system-set default temperature, or it can be set and modified by the user; this application does not limit this. The fourth preset liquid temperature is higher than the second preset liquid temperature. For example, when the summer air temperature is higher than 30 degrees Celsius, the liquid temperature can be detected. When the liquid temperature is higher than the fourth preset liquid temperature, such as higher than 28 degrees Celsius, the conductive liquid can be cooled to lower the liquid temperature. Combining the liquid temperature makes the cooling operation more precise and avoids repeated cooling when the liquid temperature itself is not high.
[0149] The method provided in this application adjusts the temperature of the conductive liquid based on the ambient temperature, making the liquid temperature more suitable for the user and further enhancing the user's massage experience. Furthermore, by combining the ambient temperature and the liquid temperature to jointly adjust the temperature of the conductive liquid, the temperature regulation becomes more precise, avoiding multiple repetitive adjustments.
[0150] Please see Figure 6 , Figure 6 This is a flowchart illustrating a control method for a massager according to another embodiment of this application. Figure 6 In this embodiment, different first predetermined thresholds can be pre-configured for different users. For example... Figure 6 As shown, the method may include:
[0151] Step S610: Determine the humidity of the area where the microporous electrode is in contact with the human body.
[0152] This step S610 can be found in the description of step S210, and will not be repeated here.
[0153] Step S620: Obtain user information of the user wearing the massager, and match the corresponding first predetermined threshold according to the user information, wherein the first predetermined threshold is pre-configured according to different users.
[0154] In this embodiment of the application, different first predetermined thresholds can be pre-configured for different users, and the correspondence between user information and the first predetermined thresholds can be stored in a memory. In this step, user information of users wearing the massage device can be obtained; after obtaining the user information, the corresponding first predetermined threshold is matched for the current user based on the user information and the correspondence.
[0155] Step S630: When the humidity is less than the first predetermined threshold, the conductive liquid stored in the liquid storage device is introduced into the electrode assembly, and the conductive liquid seeps out through the micropores of the microporous electrode in the electrode assembly.
[0156] When the humidity is below a first predetermined threshold, it indicates a high impedance between the electrode assembly and the user's skin. This results in a small current flowing through the skin, leading to a poor massage experience. In this case, conductive liquid stored in the reservoir can be introduced into the electrode assembly. The conductive liquid seeps into the user's skin through micropores on the microporous electrodes. The liquid wets the skin, increasing its humidity and expanding the contact area between the skin and the electrode assembly. This alters the dielectric constant between them, reducing the impedance of the electrode assembly and improving the massage effect. The conductive liquid can include water, aqueous solutions, or massage liquids with medicated properties.
[0157] For details of step S630, please refer to the description in step S220, which will not be repeated here.
[0158] It should also be noted that the embodiments of this application can support users to set and modify the first predetermined threshold themselves. After modification, the correspondence between user information and the first predetermined threshold is updated in the memory.
[0159] Since different users perceive current differently, the user can set and modify the first predetermined threshold value. Specifically, the massager can be connected to the user's mobile phone, which has an application installed to control the massager. The user can then initiate an operation command to modify the first predetermined threshold value through the application.
[0160] Furthermore, since different users perceive current differently, the user can also control the leakage process themselves. Even if the humidity is not lower than a first predetermined threshold, the user can control the massager to leak fluid. The user can directly operate the buttons on the massager to initiate the leakage process, or they can issue an instruction to leak fluid through a mobile application.
[0161] The above details the control method of the massager of this application. Correspondingly, this application also provides a control device for a massager and a massager.
[0162] Please see Figure 7 , Figure 7 This is a schematic diagram of the structure of a control device for a massager according to an embodiment of this application. The control device 70 of this massager can be used to execute any of the control methods for a massager described in the foregoing embodiments. The massager may include an electrode assembly for outputting electrical pulse signals and a liquid storage device for storing conductive liquid. The electrode assembly may include at least one set of microporous electrodes, which are provided with micropores. Figure 7 As shown, the control device 70 of the massager may include: a humidity detection module 710 and a seepage control module 720.
[0163] The humidity detection module 710 is used to determine the humidity of the area where the microporous electrode is in contact with the human body. The humidity may include air humidity and / or human skin humidity. The humidity detection module 710 can periodically detect the humidity of the area where the microporous electrode is in contact with the human body, that is, it can detect the humidity of the area where the microporous electrode is in contact with the human body every preset time interval. This preset time interval can be 5 minutes, 10 minutes, 20 minutes, 30 minutes, or other values. The preset time interval can be adaptively adjusted according to user needs and / or actual application scenarios.
[0164] The liquid permeation control module 720 is used to introduce conductive liquid stored in the liquid storage device into the electrode assembly when the humidity detection module 710 determines that the humidity is less than a first predetermined threshold. The conductive liquid then permeates through the micropores of the microporous electrode in the electrode assembly. When the humidity is less than the first predetermined threshold, it indicates that the impedance between the electrode assembly and the user's skin is high, resulting in a small current flowing through the user's skin and a poor massage experience. In this case, the liquid permeation control module 720 can introduce the conductive liquid stored in the liquid storage device into the electrode assembly, allowing the liquid to permeate onto the user's skin through the micropores of the microporous electrode. After the liquid soaks into the skin, it increases the skin's humidity, thereby increasing the contact area between the skin and the electrode assembly, changing the dielectric constant between them, and thus reducing the impedance of the electrode assembly and improving the massage effect. The conductive liquid can include water, an aqueous solution, or a massage liquid with medicated properties.
[0165] Optional, Figure 7 The device shown may also include a wear detection module (not shown). The wear detection module is used to detect the wearing status of the massager before the humidity detection module 710 detects the humidity of the part of the microporous electrode that is in contact with the human body. When the massager is in the wearing state, the humidity detection module 710 is triggered to detect the humidity of the part of the microporous electrode that is in contact with the human body.
[0166] Optionally, the massager may also include a wear detection component, and the wear detection module may include: a parameter acquisition submodule and a status determination submodule; wherein:
[0167] The parameter acquisition submodule is used to acquire the wearing parameters of the massager. These wearing parameters may include, but are not limited to, at least one of the capacitance value, pressure value, and distance value of the wearing detection component.
[0168] The status determination submodule is used to determine the wearing status of the massager based on the wearing parameters.
[0169] Optionally, the wear detection component may include at least one capacitive sensor. The parameter acquisition submodule may acquire the wear parameters of the massager by acquiring the capacitance value of the capacitive sensor. Correspondingly, the state determination submodule may determine the wear state of the massager based on the wear parameters by determining that the massager is in a worn state when the capacitance value of the capacitive sensor is greater than a preset capacitance value.
[0170] Optionally, the wear detection component may include at least one pressure sensor. The parameter acquisition submodule may acquire the wear parameters of the massager by acquiring the pressure value measured by the pressure sensor. Correspondingly, the state determination submodule may determine the wear state of the massager based on the wear parameters by determining that the massager is in a worn state when the pressure value measured by the pressure sensor is greater than a preset pressure value.
[0171] Optionally, the wear detection component may include at least one distance sensor. The parameter acquisition submodule may acquire the wear parameters of the massager by acquiring the distance value measured by the distance sensor. Correspondingly, the state determination submodule may determine the wear state of the massager based on the wear parameters by determining that the massager is in a worn state when the distance value measured by the distance sensor is less than a preset distance value.
[0172] Optionally, the massager may also include a temperature control device. Figure 7 The device shown may also include a temperature acquisition module and a temperature regulation module (not shown in the figure).
[0173] The temperature acquisition module is used to acquire the ambient temperature of the environment in which the massager is located;
[0174] The temperature control module is used to control the temperature control device to regulate the temperature of the conductive liquid stored in the liquid storage device based on the ambient temperature obtained by the temperature acquisition module.
[0175] The leakage control module 720 introduces the temperature-regulated conductive liquid into the electrode assembly.
[0176] Optionally, the temperature control module may control the temperature control device to regulate the temperature of the conductive liquid stored in the liquid storage device according to the ambient temperature in the following ways:
[0177] When the ambient temperature is lower than the first preset ambient temperature, the temperature regulation module controls the temperature regulation device to heat the conductive liquid stored in the liquid storage device; wherein, the leakage control module 720 introduces the heated conductive liquid into the electrode assembly.
[0178] The temperature control module controls the temperature control device to heat the conductive liquid stored in the liquid storage device until the liquid temperature of the conductive liquid is raised to the first preset liquid temperature.
[0179] Optionally, the temperature regulation module can control the temperature regulation device to regulate the temperature of the conductive liquid stored in the liquid storage device according to the ambient temperature. This can be achieved by the temperature regulation module controlling the temperature regulation device to cool the conductive liquid stored in the liquid storage device when the ambient temperature is higher than the second preset ambient temperature. The leakage control module 720 then introduces the cooled conductive liquid into the electrode assembly.
[0180] The temperature control module controls the temperature control device to cool the conductive liquid stored in the liquid storage device until the liquid temperature of the conductive liquid is reduced to the second preset liquid temperature.
[0181] Optionally, the temperature acquisition module can also be used to acquire the liquid temperature of the conductive liquid stored in the liquid storage device; when the ambient temperature is lower than the first preset ambient temperature and the liquid temperature is lower than the third preset liquid temperature, the temperature regulation module controls the temperature regulation device to heat the conductive liquid stored in the liquid storage device.
[0182] When the ambient temperature is higher than the second preset ambient temperature and the liquid temperature is higher than the fourth preset liquid temperature, the temperature control module controls the temperature control device to cool the conductive liquid stored in the liquid storage device.
[0183] Optionally, the massager may also include a liquid pumping device, and the seepage control module 720 is used to pump the conductive liquid stored in the reservoir to the electrode assembly through the liquid pumping device when the humidity is less than a first predetermined threshold.
[0184] Optionally, when the electrode assembly includes at least two sets of microporous electrodes, the leakage control module 720 introduces the conductive liquid stored in the liquid storage device into the microporous electrode in the working mode, and the conductive liquid seeps out through the micropores on the microporous electrode in the working mode.
[0185] The device provided in this application, when the humidity is less than a first predetermined threshold, introduces conductive liquid into the electrode assembly, which then seeps through micropores on the electrodes onto the user's skin. This increases skin humidity, thereby increasing the contact area between the user's skin and the electrode assembly, reducing the impedance value of the electrode assembly, and increasing the current flowing through the user's skin, thus enhancing the user's massage experience. The liquid seepage only occurs when the user is wearing the device, preventing waste of the conductive liquid. Furthermore, the temperature of the conductive liquid is adjusted by the ambient temperature to make the liquid temperature more suitable for the user, further enhancing the user's massage experience.
[0186] Regarding the apparatus in the above embodiments, the specific manner in which each module performs its operation has been described in detail in the embodiments related to the method, and will not be elaborated further here.
[0187] Please see Figure 8 , Figure 8 This is a structural block diagram of a massager according to an embodiment of this application. This massager can be used to execute any of the control methods for massagers described in the foregoing embodiments. Figure 8 As shown, the massager 80 may include: an electrode assembly 810, a liquid storage device 820, and a controller 830. The electrode assembly 810 may include at least one set of microporous electrodes, and the electrode assembly 810 is connected to the liquid storage device 820 and the controller 830 respectively.
[0188] Electrode assembly 810 can be used to output electrical pulse signals;
[0189] The liquid storage device 820 can be used to store conductive liquids;
[0190] The controller 830 can be used to determine the humidity of the part of the microporous electrode that is in contact with the human body. When the humidity is less than a first predetermined threshold, the conductive liquid stored in the liquid storage device 820 is introduced into the electrode assembly 810, and the conductive liquid seeps out through the micropores of the microporous electrode in the electrode assembly 810.
[0191] For details on the structure and functions of controller 830, please refer to [link / reference]. Figure 7 The description of the control device of the massager will not be repeated here.
[0192] Please see Figure 9 , Figure 9 This is a structural block diagram of another massager according to an embodiment of this application. This massager can be used to perform any of the control methods for massagers described in the foregoing embodiments. Figure 9 As shown, the massager 900 may include a processor 910 and a memory 920. The processor 910 and the memory 920 are communicatively connected. It is understood that... Figure 9The structure of the massager 900 shown does not constitute a limitation on the embodiments of this application. It may include more components than shown, such as electrode assemblies, communication interfaces (e.g., Bluetooth module, WIFI module, etc.), input / output interfaces (e.g., buttons, touch screen, speaker, microphone, etc.), sensors, etc. Wherein:
[0193] The processor 910 can be a Central Processing Unit (CPU), or other general-purpose processors, digital signal processors (DSPs), application-specific integrated circuits (ASICs), field-programmable gate arrays (FPGAs), or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc. The general-purpose processor can be a microprocessor or any conventional processor.
[0194] Memory 920 may include various types of storage units, such as system memory, read-only memory (ROM), and permanent storage devices. ROM may store static data or instructions required by processor 910 or other modules of the computer. Permanent storage devices may be read-write storage devices. Permanent storage devices may be non-volatile storage devices that retain stored instructions and data even when the computer is powered off. In some embodiments, permanent storage devices use mass storage devices (e.g., magnetic or optical disks, flash memory) as permanent storage devices. In other embodiments, permanent storage devices may be removable storage devices (e.g., floppy disks, optical drives). System memory may be a read-write storage device or a volatile read-write storage device, such as dynamic random access memory. System memory may store some or all of the instructions and data required by the processor during operation. Furthermore, memory 920 may include any combination of computer-readable storage media, including various types of semiconductor memory chips (DRAM, SRAM, SDRAM, flash memory, programmable read-only memory), and disks and / or optical disks may also be used. In some implementations, memory 920 may include a removable storage device that is readable and / or writable, such as a laser disc (CD), a read-only digital versatile optical disc (e.g., DVD-ROM, dual-layer DVD-ROM), a read-only Blu-ray disc, an ultra-high density optical disc, a flash memory card (e.g., SD card, mini SD card, Micro-SD card, etc.), a magnetic floppy disk, etc. Computer-readable storage media do not contain carrier waves or transient electronic signals transmitted wirelessly or via wired connections.
[0195] The memory 920 stores executable code, which, when processed by the processor 910, can cause the processor 910 to execute some or all of the steps in the method described above.
[0196] Furthermore, the method according to this application can also be implemented as a computer program or computer program product, which includes computer program code instructions for performing some or all of the steps in the method described above.
[0197] Alternatively, this application may be implemented as a non-transitory machine-readable storage medium (or computer-readable storage medium, or machine-readable storage medium) storing executable code (or computer program, or computer instruction code) thereon, which, when executed by a processor of an electronic device (or electronic device, server, etc.), causes the processor to perform part or all of the steps of the above-described method according to this application.
[0198] The various embodiments of this application have been described above. These descriptions are exemplary and not exhaustive, nor are they limited to the disclosed embodiments. Many modifications and variations will be apparent to those skilled in the art without departing from the scope and spirit of the described embodiments. The terminology used herein is chosen to best explain the principles, practical application, or improvement of the technology in the market, or to enable others skilled in the art to understand the embodiments disclosed herein.
Claims
1. A control method for a massager, characterized in that, The massager includes an electrode assembly for outputting electrical pulse signals and a liquid storage device for storing conductive liquid. The electrode assembly includes at least one set of microporous electrodes, each microporous electrode having micropores. The method includes: Determine the humidity of the area where the microporous electrode contacts the human body; When the humidity is less than a first predetermined threshold, the conductive liquid stored in the liquid storage device is introduced into the electrode assembly, and the conductive liquid permeates through the micropores of the microporous electrode in the electrode assembly. This includes: determining the permeation amount of the conductive liquid based on the humidity, wherein the humidity and the permeation amount of the conductive liquid are negatively correlated; introducing the conductive liquid stored in the liquid storage device into the electrode assembly according to the determined permeation amount; wherein the massager further includes a temperature regulating device, and before introducing the conductive liquid stored in the liquid storage device into the electrode assembly, the process further includes: acquiring the ambient temperature of the environment in which the massager is located; controlling the temperature regulating device to regulate the temperature of the conductive liquid stored in the liquid storage device based on the ambient temperature; and introducing the temperature-regulated conductive liquid into the electrode assembly.
2. The method according to claim 1, characterized in that, Determining the humidity of the area where the microporous electrode contacts the human body includes: The humidity of the area where the microporous electrode is in contact with the human body is detected by a humidity sensor.
3. The method according to claim 2, characterized in that: The humidity sensor is disposed on the microporous electrode.
4. The method according to claim 1, characterized in that: The humidity includes air humidity and / or human skin humidity.
5. The method according to claim 1, characterized in that, Determining the humidity of the area where the microporous electrode contacts the human body includes: The humidity of the area where the microporous electrode is in contact with the human body is periodically monitored.
6. The method according to claim 1, characterized in that: The conductive liquid includes water, aqueous solution, or massage liquid with drug-aiding function.
7. The method according to claim 1, characterized in that, Before determining the humidity of the area where the microporous electrode contacts the human body, the method further includes: Detect the wearing status of the massager; When the massager is being worn, the step of determining the humidity of the area where the microporous electrode is in contact with the human body is performed.
8. The method according to claim 7, characterized in that, The massager also includes a wear detection component, wherein detecting the wear status of the massager includes: The wearing parameters of the massager are obtained, and the wearing parameters include at least one of the capacitance value, pressure value and distance value of the wearing detection component; The wearing status of the massager is determined based on the wearing parameters.
9. The method according to claim 1, characterized in that, The step of controlling the temperature regulating device to regulate the temperature of the conductive liquid stored in the liquid storage device according to the ambient temperature includes: When the ambient temperature is lower than the first preset ambient temperature, the temperature regulating device is controlled to heat the conductive liquid stored in the liquid storage device.
10. The method according to claim 9, characterized in that, The method of controlling the temperature regulating device to heat the conductive liquid stored in the liquid storage device includes: The temperature regulating device is controlled to heat the conductive liquid stored in the liquid storage device until the liquid temperature of the conductive liquid is raised to a first preset liquid temperature.
11. The method according to claim 1, characterized in that, The step of controlling the temperature regulating device to regulate the temperature of the conductive liquid stored in the liquid storage device according to the ambient temperature includes: When the ambient temperature is higher than the second preset ambient temperature, the temperature regulating device is controlled to cool the conductive liquid stored in the liquid storage device.
12. The method according to claim 11, characterized in that, The method of controlling the temperature regulation device to cool the conductive liquid stored in the liquid storage device includes: The temperature regulating device is controlled to cool the conductive liquid stored in the liquid storage device until the liquid temperature of the conductive liquid is reduced to a second preset liquid temperature.
13. The method according to claim 9, characterized in that, The method further includes: Obtain the liquid temperature of the conductive liquid stored in the liquid storage device; Wherein, the step of controlling the temperature regulating device to heat the conductive liquid stored in the liquid storage device when the ambient temperature is lower than the first preset ambient temperature includes: When the ambient temperature is lower than the first preset ambient temperature and the liquid temperature is lower than the third preset liquid temperature, the temperature regulating device is controlled to heat the conductive liquid stored in the liquid storage device.
14. The method according to claim 11, characterized in that, The method further includes: Obtain the liquid temperature of the conductive liquid stored in the liquid storage device; Wherein, the step of controlling the temperature regulating device to cool the conductive liquid stored in the liquid storage device when the ambient temperature is higher than the second preset ambient temperature includes: When the ambient temperature is higher than the second preset ambient temperature and the liquid temperature is higher than the fourth preset liquid temperature, the temperature regulating device is controlled to cool the conductive liquid stored in the liquid storage device.
15. The method according to any one of claims 1-14, characterized in that, The massager also includes a liquid pumping device, wherein when the humidity is less than a first predetermined threshold, the conductive liquid stored in the liquid storage device is introduced into the electrode assembly, including: When the humidity is less than a first predetermined threshold, the conductive liquid stored in the liquid storage device is pumped out to the electrode assembly through the liquid pumping device.
16. The method according to any one of claims 1-14, characterized in that, When the electrode assembly includes at least two sets of microporous electrodes, the step of introducing the conductive liquid stored in the liquid storage device into the electrode assembly, and allowing the conductive liquid to seep out through the micropores of the microporous electrodes in the electrode assembly, includes: The conductive liquid stored in the liquid storage device is introduced into a designated microporous electrode in at least two sets of microporous electrodes, and the conductive liquid seeps out through the micropores of the designated microporous electrode.
17. The method according to claim 16, characterized in that: The microporous electrode is a microporous electrode in working mode.
18. The method according to any one of claims 1-14, characterized in that, The method further includes: Obtain user information of the user wearing the massager; The first predetermined threshold is matched according to the user information, wherein the first predetermined threshold is pre-configured for different users.
19. A control device for a massager, characterized in that, The massager includes an electrode assembly for outputting electrical pulse signals and a liquid storage device for storing conductive liquid. The electrode assembly includes at least one set of microporous electrodes, each microporous electrode having micropores. The device includes: A humidity detection module is used to determine the humidity of the area where the microporous electrode is in contact with the human body; A liquid seepage control module is used to, when the humidity detection module determines that the humidity is less than a first predetermined threshold, introduce the conductive liquid stored in the liquid storage device into the electrode assembly, and allow the conductive liquid to seep out through the micropores of the microporous electrode in the electrode assembly. This includes: determining the seepage amount of the conductive liquid based on the humidity, wherein the humidity and the seepage amount of the conductive liquid are negatively correlated; and introducing the conductive liquid stored in the liquid storage device into the electrode assembly according to the determined seepage amount. The massager also includes a temperature regulation device. Before introducing the conductive liquid stored in the liquid storage device into the electrode assembly, the module further includes: acquiring the ambient temperature of the environment in which the massager is located; controlling the temperature regulation device to regulate the temperature of the conductive liquid stored in the liquid storage device based on the ambient temperature; and introducing the temperature-regulated conductive liquid into the electrode assembly.
20. A massager, characterized in that, It includes an electrode assembly, a liquid storage device, and a controller, wherein the electrode assembly includes at least one set of microporous electrodes; The electrode assembly is used to output electrical pulse signals; The liquid storage device is used to store conductive liquid; The controller is used to determine the humidity of the area where the microporous electrode contacts the human body; when the humidity is less than a first predetermined threshold, the conductive liquid stored in the liquid storage device is introduced into the electrode assembly, and the conductive liquid seeps out through the micropores of the microporous electrode in the electrode assembly, including: determining the seepage amount of the conductive liquid based on the humidity, wherein the humidity and the seepage amount of the conductive liquid are negatively correlated, and introducing the conductive liquid stored in the liquid storage device into the electrode assembly according to the determined seepage amount; wherein, the massager also includes a temperature regulating device, and before introducing the conductive liquid stored in the liquid storage device into the electrode assembly, the controller further includes: obtaining the ambient temperature of the environment in which the massager is located; controlling the temperature regulating device to regulate the temperature of the conductive liquid stored in the liquid storage device according to the ambient temperature; and introducing the temperature-regulated conductive liquid into the electrode assembly.
21. A massager, characterized in that, include: processor; as well as A memory having executable code stored thereon, which, when executed by the processor, causes the processor to perform the method as described in any one of claims 1-18.
22. A non-transitory machine-readable storage medium having executable code stored thereon, which, when executed by a processor, causes the processor to perform the method as described in any one of claims 1-18.
Citation Information
Patent Citations
Cardiogram conducting solution supply device
CN104473632A
Control method of massage instrument, electronic equipment and storage medium
CN111973873A
Massage equipment control method, related device and computer storage medium
CN112657059A
Neck massager
CN211751812U
Beauty instrument and beauty instrument system
JP2014014520A