Massage instrument control method and device, massage instrument and storage medium

By incorporating a liquid reservoir and microporous electrode pairs into the massager, conductive liquid is introduced to detect the wearing status, thus solving the problem of high impedance caused by poor adhesion between the electrodes and the skin, and improving the user experience and current flow.

CN115337547BActive Publication Date: 2026-02-06GUANGDONG SKG INTELLIGENT TECH CO LTD
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Patent Information

Application Number
CN202110528223.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2021-05-14
Publication Date
2026-02-06
Estimated Expiration
2041-05-14

AI Technical Summary

Technical Problem

In existing massagers, poor adhesion between the electrodes and the user's skin, or dry skin, leads to high impedance between the electrodes and low current flowing through the skin and muscles, affecting the user experience.

Method used

By incorporating a liquid storage device and microporous electrode pairs into the massager, conductive liquid is introduced into the electrode assembly when the wear status is detected. The liquid then seeps into the skin through the micropores, increasing the contact area between the skin and the electrode assembly and reducing the impedance value.

Benefits of technology

It increases the current flowing through the skin, enhances the user's massage experience, prevents liquid waste, and adjusts the liquid temperature to adapt to different ambient temperatures.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to a control method and device of a massage instrument, the massage instrument and a storage medium. The massage instrument comprises an electrode assembly for outputting an electric pulse signal and a liquid storage device for storing conductive liquid, and the electrode assembly comprises at least one group of micro-porous electrode pairs; the method comprises the following steps: detecting a wearing state of the massage instrument; when the massage instrument is in the wearing state, the conductive liquid stored in the liquid storage device is introduced into the electrode assembly, and the conductive liquid is exuded through the micro-pores on the micro-porous electrode pairs in the electrode assembly. The scheme provided in the application can increase the contact area between the skin of a user and the electrode assembly, reduce the impedance value of the electrode assembly, and improve the use experience of the user.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of massage devices, and particularly relates to a control method and device of a massage instrument, the massage instrument and a storage medium. BACKGROUND

[0002] With the continuous development of electronic technology, different types of massage instruments with different functions gradually enter people's daily life and work. Common massage instruments include neck massage instruments, eye massage instruments, waist massage instruments and the like. These massage instruments can output electric pulse signals through configured electrode assemblies to act on human muscles to massage muscles and relieve fatigue.

[0003] In the related art, the electrode assembly of the massage instrument generally includes at least two electrodes. In one electric pulse output, the two electrodes are respectively used as an anode and a cathode and are attached to the human skin. Due to the conductivity of the human body, a loop is formed, and the electric current flows through the neck skin and muscles to achieve electric pulse massage.

[0004] However, the massage effect of the massage instrument in the related art is seriously dependent on the attachment degree of the electrodes to the user's skin. When the attachment degree of the user's skin to the electrodes is poor or the user's skin is dry, the impedance between the two electrodes is relatively large, resulting in a very small current flowing through the human skin and muscles, and the user may even not feel it, thereby greatly affecting the user experience. SUMMARY

[0005] To solve or partially solve the problems in the related art, the present application provides a control method and device of a massage instrument, the massage instrument and a storage medium, which can increase the contact area between the user's skin and the electrode assembly, reduce the impedance value of the electrode assembly, and improve the user experience.

[0006] The first aspect of the present application provides a control method of a massage instrument, the massage instrument including an electrode assembly for outputting an electric pulse signal and a liquid storage device for storing a conductive liquid, the electrode assembly including at least one set of micro-porous electrode pairs, and the method including:

[0007] detecting a wearing state of the massage instrument;

[0008] when the massage instrument is in the wearing state, guiding the conductive liquid stored in the liquid storage device to the electrode assembly, and causing the conductive liquid to seep out through the micro-pores on the micro-porous electrode pairs in the electrode assembly.

[0009] Preferably, the massage instrument further includes a wearing detection assembly, and the detection of the wearing state of the massage instrument includes:

[0010] acquire a wearing parameter of the massage instrument, the wearing parameter comprising at least one of an impedance value, a capacitance value, a pressure value and a distance value of the wearing detection component;

[0011] determine a wearing state of the massage instrument according to the wearing parameter.

[0012] Preferably, when the electrode component comprises at least two groups of micro-pore electrode pairs, the step of introducing the conductive liquid stored in the liquid storage device into the electrode component when the massage instrument is in the wearing state and seeping the conductive liquid through the micro-pores on the micro-pore electrode pairs in the electrode component comprises:

[0013] introducing the conductive liquid stored in the liquid storage device into all the micro-pore electrode pairs and seeping the conductive liquid through the micro-pores on all the micro-pore electrode pairs when the massage instrument is in the wearing state.

[0014] Preferably, the step of introducing the conductive liquid stored in the liquid storage device into all the micro-pore electrode pairs and seeping the conductive liquid through the micro-pores on all the micro-pore electrode pairs when the massage instrument is in the wearing state comprises:

[0015] introducing the conductive liquid stored in the liquid storage device into the micro-pore electrode pairs in the working mode and seeping the conductive liquid through the micro-pores on the micro-pore electrode pairs in the working mode when the massage instrument is in the wearing state.

[0016] Preferably, the massage instrument further comprises a liquid pumping device, and the step of introducing the conductive liquid stored in the liquid storage device into the electrode component when the massage instrument is in the wearing state comprises:

[0017] controlling the liquid pumping device to pump the conductive liquid stored in the liquid storage device to the electrode component when the massage instrument is in the wearing state.

[0018] Preferably, the massage instrument further comprises a temperature adjusting device, and before the step of introducing the conductive liquid stored in the liquid storage device into the electrode component, the method further comprises:

[0019] acquiring an ambient temperature of an environment in which the massage instrument is located;

[0020] controlling the temperature adjusting device to adjust the temperature of the conductive liquid stored in the liquid storage device according to the ambient temperature;

[0021] Preferably, the step of introducing the conductive liquid stored in the liquid storage device into the electrode component comprises:

[0022] The temperature-adjusted conductive liquid is introduced into the electrode assembly.

[0023] Preferably, the temperature adjustment of the conductive liquid stored in the liquid storage device according to the ambient temperature comprises:

[0024] When the ambient temperature is lower than a first preset ambient temperature, the temperature adjustment device is controlled to heat the conductive liquid stored in the liquid storage device.

[0025] The temperature-adjusted conductive liquid is introduced into the electrode assembly.

[0026] The heated conductive liquid is introduced into the electrode assembly.

[0027] Preferably, the temperature adjustment of the conductive liquid stored in the liquid storage device according to the ambient temperature comprises:

[0028] When the ambient temperature is higher than a second preset ambient temperature, the temperature adjustment device is controlled to cool the conductive liquid stored in the liquid storage device.

[0029] The temperature-adjusted conductive liquid is introduced into the electrode assembly.

[0030] The cooled conductive liquid is introduced into the electrode assembly.

[0031] Preferably, the method further comprises:

[0032] The liquid temperature of the conductive liquid stored in the liquid storage device is obtained.

[0033] When the ambient temperature is lower than a first preset ambient temperature, the temperature adjustment device is controlled to heat the conductive liquid stored in the liquid storage device.

[0034] When the ambient temperature is lower than a first preset ambient temperature and the liquid temperature is lower than a third preset liquid temperature, the temperature adjustment device is controlled to heat the conductive liquid stored in the liquid storage device.

[0035] Preferably, the method further comprises:

[0036] The liquid temperature of the conductive liquid stored in the liquid storage device is obtained.

[0037] When the ambient temperature is higher than a second preset ambient temperature, the temperature adjustment device is controlled to cool the conductive liquid stored in the liquid storage device.

[0038] controlling the temperature adjusting device to refrigerate the conductive liquid stored in the liquid storage device when the ambient temperature is higher than a second preset ambient temperature and the liquid temperature is higher than a fourth preset liquid temperature.

[0039] Preferably, the method further comprises:

[0040] when the time length of the distance from the conductive liquid exceeds a preset time length, introducing the conductive liquid stored in the liquid storage device into the electrode assembly again.

[0041] Preferably, the method further comprises:

[0042] detecting an ambient parameter of an environment in which the massage instrument is located, the ambient parameter including an ambient temperature and / or an ambient humidity;

[0043] adjusting the preset time length according to the ambient parameter.

[0044] The second aspect of the present application provides a control device of a massage instrument, the massage instrument comprising an electrode assembly for outputting an electric pulse signal and a liquid storage device for storing a conductive liquid, the electrode assembly comprising at least one set of micro-porous electrode pairs, and the device comprising:

[0045] a wearing detection module for detecting a wearing state of the massage instrument;

[0046] a liquid seepage control module for introducing the conductive liquid stored in the liquid storage device into the electrode assembly when the wearing detection module detects that the massage instrument is in a worn state, and seeping the conductive liquid out through micro-pores on the micro-porous electrode pairs in the electrode assembly.

[0047] The third aspect of the present application provides a massage instrument comprising an electrode assembly, a liquid storage device and a controller, wherein the electrode assembly comprises at least one set of micro-porous electrode pairs.

[0048] the electrode assembly is used for outputting an electric pulse signal;

[0049] the liquid storage device is used for storing a conductive liquid;

[0050] the controller is used for detecting a wearing state of the massage instrument, and introducing the conductive liquid stored in the liquid storage device into the electrode assembly when the massage instrument is in a worn state, and seeping the conductive liquid out through micro-pores on the micro-porous electrode pairs in the electrode assembly.

[0051] The fourth aspect of the present application provides a massage instrument comprising:

[0052] a processor; and

[0053] a memory having stored thereon executable code that, when executed by the processor, is to cause the processor to perform the method as described above.

[0054] The fifth aspect of the present application provides a non-transitory machine readable storage medium having stored thereon executable code that, when executed by a processor, is to cause the processor to perform the method as described above.

[0055] The control method of the massage instrument provided by the present application can detect the wearing state of the massage instrument, and when the massage instrument is in the worn state, the conductive liquid stored in the liquid storage device on the massage instrument can be introduced into the electrode assembly, so as to seep out through the micropores on the microporous electrode pair in the electrode assembly. Through the above processing, when the massage instrument is worn by the user, the conductive liquid is introduced into the electrode assembly and seeps out onto the skin of the user through the micropores on the electrode, so as to increase the contact area between the skin of the user and the electrode assembly, reduce the impedance value of the electrode assembly, increase the current flowing through the skin of the user, and improve the user experience.

[0056] It should be understood that the foregoing general description and the following detailed description are only exemplary and explanatory, and are not limiting to the present application. BRIEF DESCRIPTION OF DRAWINGS

[0057] The above and other objects, features and advantages of the present application will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings in which like reference characters refer to like parts throughout the several views, and in which:

[0058] Figure 1 is a perspective view of a massage instrument according to an embodiment of the present application;

[0059] Figure 2 is a flowchart of a control method of a massage instrument according to an embodiment of the present application;

[0060] Figure 3 is a flowchart of another control method of a massage instrument according to an embodiment of the present application;

[0061] Figure 4 is a flowchart of another control method of a massage instrument according to an embodiment of the present application;

[0062] Figure 5 is a flowchart of another control method of a massage instrument according to an embodiment of the present application;

[0063] Figure 6 is a structural schematic diagram of a control device of a massage instrument according to an embodiment of the present application;

[0064] Figure 7is a structural block diagram of a massage instrument according to an embodiment of the present application;

[0065] Figure 8 is a structural block diagram of another massage instrument according to an embodiment of the present application. DETAILED DESCRIPTION

[0066] Embodiments of the present application will be described in more detail with reference to the drawings. Although embodiments of the present application are shown in the drawings, it should be understood that the present application can be implemented in various forms and should not be limited by the embodiments set forth herein. Rather, these embodiments are provided so that the present application is more thoroughly and completely conveyed to those skilled in the art, and the scope of the present application is fully conveyed to those skilled in the art.

[0067] The terminology used in the present application is merely for the purpose of describing specific embodiments and is not intended to limit the present application. The singular forms "a", "an" and "the" used in the present 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" used herein refers to and includes any or all possible combinations of one or more associated listed items.

[0068] It should be understood that although the terms "first", "second", "third", etc. can be used in the present application to describe various information, these information should not be limited by these terms. These terms are only used to distinguish the same type of information from each other. For example, the first information can also be referred to as the second information, and similarly, the second information can also be referred to as the first information without departing from the scope of the present application. Therefore, the features defined with "first", "second" can explicitly or implicitly include one or more of the features. In the description of the present application, the meaning of "multiple" is two or more, unless otherwise specifically limited.

[0069] At present, the massage instrument in the related art usually has an electrode assembly composed of at least two electrodes arranged on the massage instrument to output an electric pulse signal to massage a user. When the user's skin is poorly attached to the electrode assembly or the user's skin is dry, the contact area between the user's skin and the electrode assembly is small, the impedance between the electrodes is large, and the current flowing through the user's skin is small, so that the user's massage experience is small, which affects the user's use experience. In view of the above problem, the present application provides a control method and device of a massage instrument, a massage instrument and a storage medium, which can increase the contact area between the user's skin and the electrode assembly by liquid penetration, reduce the impedance value of the electrode assembly, and improve the user's use experience. The technical solutions of the embodiments of the present application will be described in detail below with reference to the drawings.

[0070] In the embodiments of the present application, the massage instrument can be a wearable massage instrument, which can include but is not limited to a neck massage instrument, an eye massage instrument, a waist massage instrument, etc.Figure 1 is taken as an example for illustration, as shown in Figure 1 , the massage instrument 100 can at least include an electrode assembly 10, a liquid storage device 20 and a massage instrument body 30. Among them, the electrode assembly 10 can include at least one set of micro-porous electrode pairs, the electrode assembly 10 is arranged on the massage instrument body 30, which can be used to output current pulse signals to stimulate the skin and joints of the user to achieve the massage effect. The liquid storage device 20 is arranged on the massage instrument body 30 and is used to store conductive liquid. The liquid storage device 20 can be fixedly connected with the massage body 30, or can be detachably connected with the massage instrument body 30. The electrode assembly 10 can be connected with the liquid storage device 20 through a liquid guide pipe (not shown in the figure), and when the massage instrument 100 is worn by the user, the conductive liquid stored in the liquid storage device 20 is guided into the electrode assembly 10, so that the conductive liquid is exuded onto the skin of the user through the micro-porous electrode pairs on the electrode assembly 10. When the impedance value is too large, the massage effect is affected, and the liquid exudation can improve the contact between the user's skin and the electrode assembly and reduce the impedance value of the electrode assembly. Figure 1

[0071] It can be understood that, Figure 1 only one of the structures of the neck massage instrument is shown, the massage instrument in the embodiment of the application is not limited to Figure 1 the structure shown in the figure, but can also be other structures, and the embodiment of the application is not limited.

[0072] Please refer to Figure 2 , Figure 2 is a flowchart of a control method of a massage instrument according to an embodiment of the application. The method can be applied to the massage instrument 100 described above. As shown in Figure 2 , the method can include the following steps:

[0073] 210, detecting the wearing state of the massage instrument.

[0074] In the embodiment of the application, when the massage instrument is in a powered-on state, it can be detected whether the massage instrument is worn by the user, and if it is worn by the user, the subsequent operation can be further performed, and if it is not worn, it can be automatically powered off within a set time (such as 1 minute, 2 minutes, etc.).

[0075] Among them, whether the massage instrument is worn can be determined by detecting one or more parameters such as impedance value, capacitance value, distance value and pressure value of the massage instrument. Since the above parameters will change before and after the massage instrument is worn, the wearing state of the massage instrument can be determined by the change of the parameters.

[0076] For example, when the user approaches the massage instrument, the capacitance value becomes larger; when the user moves away from the massage instrument, the capacitance value becomes smaller. ​

[0077] For example, when the user is close to the massage instrument, the distance value becomes smaller; when the user is far away from the massage instrument, the distance value becomes larger.

[0078] For example, when the user wears the massage instrument, the impedance value becomes smaller; when the user does not wear the massage instrument, the impedance value becomes larger.

[0079] For example, when the user wears the massage instrument, the pressure value becomes larger, and when the user does not wear the massage instrument, the pressure value becomes smaller.

[0080] 220、When the massage instrument is in the worn state, the conductive liquid stored in the liquid storage device on the massage instrument is introduced into the electrode assembly, and the conductive liquid is exuded through the micropores on the micropore electrode pair in the electrode assembly.

[0081] The electrode assembly can include at least one set of micropore electrode pairs, and each set of micropore electrode pairs includes two micropore electrodes. One or more micropores can be arranged on one micropore electrode. The diameter of one micropore can range from 5 microns to 50 microns, and the distance between two adjacent micropores on one micropore electrode can range from 200 microns to 500 microns.

[0082] When the massage instrument is worn by the user, the conductive liquid stored in the liquid storage device can be introduced into the electrode assembly, and the conductive liquid is exuded onto the user's skin through the micropores on the micropore electrode pair in the electrode assembly. After the liquid wets the skin, the contact area between the skin and the electrode assembly can be increased, the dielectric constant between the two can be changed, thereby reducing the impedance value of the electrode assembly and improving the massage effect.

[0083] The electrode assembly only exudes liquid when it is worn by the user, and does not exude liquid when it is not worn, thereby preventing liquid waste.

[0084] When the electrode assembly includes multiple sets of micropore electrode pairs, all micropore electrode pairs can be exuded, or only micropore electrode pairs in the working mode can be exuded.

[0085] The method provided by the embodiments of the present application can detect the wearing state of the massage instrument. When the massage instrument is in the worn state, the conductive liquid stored in the liquid storage device on the massage instrument can be introduced into the electrode assembly, so that the conductive liquid is exuded through the micropores on the micropore electrode pair in the electrode assembly. Through the above processing, when the massage instrument is worn by the user, the conductive liquid is introduced into the electrode assembly and exuded onto the user's skin through the micropores on the electrode, thereby increasing the contact area between the user's skin and the electrode assembly, reducing the impedance value of the electrode assembly, increasing the current flowing through the user's skin, and improving the user experience.

[0086] Please refer to Figure 3 , Figure 3is a flowchart of another control method of a massage device according to an embodiment of the present application. As shown in Figure 3 The method can include the following steps:

[0087] 310, obtaining a wearing parameter of the massage device.

[0088] The massage device can further include a wearing detection assembly, which can be used to detect the wearing parameter of the massage device. The wearing parameter can include, but is not limited to, at least one of an impedance value, a capacitance value, a pressure value, and a distance value of the wearing detection assembly.

[0089] 320, determining a wearing state of the massage device according to the wearing parameter.

[0090] In an optional embodiment, the wearing detection assembly can include an electrode assembly, specifically, at least one pair of micro-pore electrodes in the electrode assembly. By obtaining the impedance value of the electrode assembly and comparing the impedance value of the electrode assembly with a preset impedance value, when the impedance value of the electrode assembly is less than the preset impedance value, it can be determined that the massage device is in a worn state; when the impedance value of the electrode assembly is greater than or equal to the preset impedance value, it can be determined that the massage device is in an unworn state.

[0091] When the electrode assembly includes multiple pairs of micro-pore electrodes, obtaining the impedance value of the electrode assembly can be obtaining the impedance value of one pair of micro-pore electrodes in the electrode assembly in a working mode, and taking the impedance value of the pair of micro-pore electrodes as the impedance value of the electrode assembly.

[0092] Alternatively, the impedance values of all pairs of micro-pore electrodes in the electrode assembly in the working mode are obtained, the average value of the impedance values of all pairs of micro-pore electrodes is taken, and the average value is taken as the impedance value of the electrode assembly.

[0093] When the massage device is worn by a user, due to the conductivity of the human body, the micro-pore electrode pair is in conduction with the human body, and the impedance value is small. When the user does not wear the massage device, the micro-pore electrode pair is air, which cannot be conducted, so that the impedance value is very large.

[0094] The electrode assembly can output an electric pulse signal through the electric muscle stimulation (EMS) technology. The method of obtaining the impedance value of the electrode assembly can include: connecting a voltage dividing circuit with a known impedance value to the electric stimulation output circuit, the voltage dividing circuit will divide the voltage output by the EMS output circuit (which can be regarded as a pair of micro-pore electrodes in the electrode assembly), by sampling and processing the signal after the voltage dividing of the voltage dividing circuit, the voltage value divided by the voltage dividing circuit is obtained, according to the voltage dividing principle, the voltage value of the remaining circuit can be obtained, so that the impedance value between the electrodes can be calculated.

[0095] For example, a small resistance is connected in series to the electric stimulation output circuit, and the small resistance is a resistance voltage dividing circuit. After the massage instrument is turned on, the EMS output circuit outputs a 5V voltage, the signal after voltage division of the resistance voltage dividing circuit is amplified through an amplification circuit, and the amplified signal is sampled at a sampling rate of 200KHz and a sampling duration of 300ms. The average value of the collected signal is taken, and if the value is lower than 70mv, it indicates that the massage instrument is not worn on the human body because the impedance value between the electrodes is large. If the value is higher than 70mv, it indicates that the massage instrument is worn on the human body.

[0096] In an optional embodiment, the wearing detection assembly can include one or more capacitive sensors. The capacitance value of the capacitive sensor is obtained, and the capacitance value of the capacitive sensor is compared with a preset capacitance value. When the capacitance value of the capacitive sensor is greater than the preset capacitance value, it can be determined that the massage instrument is in a worn state. When the capacitance value of the capacitive sensor is less than or equal to the preset capacitance value, it can be determined that the massage instrument is in an unworn state.

[0097] The capacitive sensor can be a capacitive proximity sensor. When the human body approaches the capacitive sensor, the capacitance value increases. When the human body moves away from the capacitive sensor, the capacitance value decreases.

[0098] In an optional embodiment, the wearing detection assembly can include one or more pressure sensors. The pressure value measured by the pressure sensor is obtained, and the pressure value measured by the pressure sensor is compared with a preset pressure value. When the pressure value measured by the pressure sensor is greater than the preset pressure value, it can be determined that the massage instrument is in a worn state. When the pressure value measured by the pressure sensor is less than or equal to the preset pressure value, it can be determined that the massage instrument is in an unworn state.

[0099] The pressure sensor can be used to measure the pressure value between a certain position on the massage instrument and the human body. When the human body contacts the massage instrument, a pressure value is generated. When the human body does not contact the massage instrument, the pressure value tends to 0.

[0100] In an optional embodiment, the wearing detection assembly can include one or more distance sensors. The distance value measured by the distance sensor is obtained, and the distance value measured by the distance sensor is compared with a preset distance value. When the distance value measured by the distance sensor is less than the preset distance value, it can be determined that the massage instrument is in a worn state. When the distance value measured by the distance sensor is greater than or equal to the preset distance value, it can be determined that the massage instrument is in an unworn state.

[0101] The distance sensor is used to measure the distance between a specific point on the massager and the human body. The distance sensor can be at least one of the following: infrared distance sensor, laser distance sensor, ultrasonic distance sensor, etc. The distance value decreases when the human body moves closer to the massager and increases when the human body moves away from the massager.

[0102] 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.

[0103] For example, when both impedance and capacitance values ​​are detected, if the impedance value is less than a preset impedance value and the capacitance value is greater than a preset capacitance 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.

[0104] 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.

[0105] 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.

[0106] For example, when both impedance and distance values ​​are detected, if the impedance value is less than a preset impedance value and the distance value is less than a preset distance value, the massager is determined to be in a worn state. If neither condition is met, the massager is determined to be in an unworn state.

[0107] 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.

[0108] 330. When the massager is in the wearing state, the conductive liquid stored in the liquid storage device is introduced into the electrode assembly, and the conductive liquid seeps out through the micropores on the microporous electrode pair in the electrode assembly.

[0109] In this embodiment, the liquid seepage operation can be performed when the massager is being worn. When the massager is not being worn, the liquid seepage operation can be stopped, thereby preventing liquid waste.

[0110] In an optional embodiment, when the massage device is in the worn state, introducing the conductive liquid stored in the liquid storage device into the electrode assembly can include:

[0111] introducing a preset amount of the conductive liquid stored in the liquid storage device into the electrode assembly when the massage device is in the worn state.

[0112] In order to avoid excessive liquid leakage at one time, not only causing liquid waste, but also excessive liquid can cause discomfort to the user. Therefore, the amount of conductive liquid leaked each time can be a preset amount, which can be 0.1 ml / time, 0.2 ml / time, 0.5 ml / time or other values.

[0113] In an optional embodiment, the electrode assembly includes at least two groups of micro-porous electrode pairs, and when the massage device is in the worn state, introducing the conductive liquid stored in the liquid storage device into the electrode assembly can include:

[0114] introducing the conductive liquid stored in the liquid storage device into all micro-porous electrode pairs when the massage device is in the worn state, and leaking the conductive liquid through the micro-pores on all micro-porous electrode pairs.

[0115] In which, when the massage device is worn by the user, liquid can be leaked from all micro-porous electrode pairs on the massage device, thereby effectively reducing the overall impedance value of the electrode assembly.

[0116] In an optional embodiment, when the massage device is in the worn state, introducing the conductive liquid stored in the liquid storage device into all micro-porous electrode pairs can include:

[0117] introducing the conductive liquid stored in the liquid storage device into the micro-porous electrode pairs in the working mode when the massage device is in the worn state, and leaking the conductive liquid through the micro-pores on the micro-porous electrode pairs in the working mode.

[0118] In which, when the electrode assembly includes multiple groups of micro-porous electrode pairs, each group of micro-porous electrode pairs can be used for current pulse output. In some massage modes, only part of the micro-porous electrode pairs can be used for massage output, and the remaining micro-porous electrode pairs are not working. At this time, only all micro-porous electrode pairs in the working mode can be used for liquid leakage, and the micro-porous electrode pairs not in the working mode are not used for liquid leakage. In this way, targeted liquid leakage can be performed, thereby preventing liquid waste.

[0119] In an optional embodiment, the massage device can further include a liquid pumping device, and when the massage device is in the worn state, introducing the conductive liquid stored in the liquid storage device into the electrode assembly can include:

[0120] When the massage instrument is in the worn state, the liquid pumping device is controlled to pump the conductive liquid stored in the liquid storage device to the electrode assembly.

[0121] The liquid pumping device can be a liquid pump or a gas pump. One end of the liquid pumping device can be connected to the liquid storage device through a liquid guide pipe, and the other end can be connected to the electrode assembly through a liquid guide pipe. In use, the liquid pumping device works to deliver the conductive liquid in the liquid storage device to the electrode assembly, and forms micro-droplets through the micro-holes on the micro-holes electrode.

[0122] The liquid storage device can be detachable, for example, it can be detachably connected to the massage instrument body through magnetic attraction or buckle.

[0123] It can be understood that the above-mentioned pumping of the conductive liquid by the liquid pumping device is only one of the implementation manners. The massage instrument in the embodiments of the present application is not limited to this implementation manner, and other implementation manners can also be used, for example, a switch valve is provided. When liquid penetration is needed, the switch valve is controlled to open, so that the conductive liquid in the liquid storage device flows to the electrode assembly, and the opening time of the switch valve can be controlled to control the penetration amount of the conductive liquid. When the liquid penetration is finished, the switch valve is controlled to close.

[0124] The method provided in the embodiments of the present application 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 experience when the massage instrument is worn by the user by introducing the conductive liquid into the electrode assembly and penetrating it to the user's skin through the micro-holes on the electrode. In addition, the micro-holes electrode pair in the working mode is penetrated, and the micro-holes electrode pair not in the working mode is not penetrated, which can effectively prevent liquid waste.

[0125] Please refer to Figure 4 , Figure 4 is another flowchart of a control method of a massage instrument according to an embodiment of the present application. As shown in Figure 4 , the method can include the following steps:

[0126] 410, detecting the wearing state of the massage instrument.

[0127] 420, when the massage instrument is in the worn state, obtaining the ambient temperature of the environment in which the massage instrument is located.

[0128] Optionally, a first temperature sensor can be provided on the massage instrument to measure the ambient temperature.

[0129] Optionally, the ambient temperature can be provided by a mobile device (such as a mobile phone, a computer, etc.) connected to the massage instrument.

[0130] 430. According to the ambient temperature, the temperature adjusting device is controlled to adjust the temperature of the conductive liquid stored in the liquid storage device.

[0131] The massager can further include a temperature adjusting device for adjusting the temperature of the conductive liquid. The temperature adjusting device can adjust the temperature of all the conductive liquid in the liquid storage device, thereby reducing the number of subsequent temperature adjustments. In this case, the temperature adjusting device can be arranged in the liquid storage device.

[0132] The temperature adjusting device can also only adjust the temperature of the portion of the conductive liquid that is about to be introduced into the electrode assembly, thereby reducing energy consumption. In this case, the temperature adjusting device can be arranged at the liquid guide pipe, for example, wound around the liquid guide pipe in the form of a coil.

[0133] 440. The conductive liquid that has been temperature-adjusted is introduced into the electrode assembly, and the conductive liquid is exuded through the micropores on the micro-porous electrode in the electrode assembly.

[0134] In an optional embodiment, according to the ambient temperature, the temperature adjusting device is controlled to adjust the temperature of the conductive liquid stored in the liquid storage device can include:

[0135] When the ambient temperature is lower than a first preset ambient temperature, the temperature adjusting device is controlled to heat the conductive liquid stored in the liquid storage device;

[0136] Correspondingly, introducing the conductive liquid that has been temperature-adjusted into the electrode assembly can include:

[0137] The heated conductive liquid is introduced into the electrode assembly.

[0138] The first preset ambient temperature can be a default temperature set by the system, or the user can set and modify the size of the preset ambient temperature, which is not limited in the present application. For example, the first preset ambient temperature can be 20 degrees, 18 degrees, 15 degrees, 10 degrees, or other values.

[0139] When the ambient temperature is lower than the first preset ambient temperature, it can indicate that the current temperature is low (e.g., when the temperature is low in winter), and at this time, the conductive liquid can be heated to increase the temperature of the liquid, thereby avoiding that too cold liquid causes irritation to the user and affects the user experience.

[0140] The temperature adjusting device is controlled to heat the conductive liquid stored in the liquid storage device can include:

[0141] The temperature adjusting device is controlled to heat the conductive liquid stored in the liquid storage device until the temperature of the conductive liquid is raised to a first preset liquid temperature.

[0142] The first preset liquid temperature can be a default temperature or a custom temperature set by the user according to his / her own needs. For example, the first preset liquid temperature can be 30 degrees, 35 degrees, 36 degrees, 38 degrees, or other values.

[0143] For example, when the winter temperature is lower than 10 degrees, the liquid temperature can be heated to close to the human body temperature, such as 36 degrees, and then exuded. In this way, the user can be prevented from being stimulated by too cold liquid, and the user can also be prevented from being scalded by too hot liquid.

[0144] In an optional embodiment, the controlling of the temperature adjusting device to adjust the temperature of the conductive liquid stored in the liquid storage device according to the ambient temperature can include:

[0145] When the ambient temperature is higher than the second preset ambient temperature, the temperature adjusting device is controlled to cool the conductive liquid stored in the liquid storage device.

[0146] Correspondingly, the conductive liquid after the temperature adjustment is introduced into the electrode assembly can include:

[0147] The conductive liquid after the cooling is introduced into the electrode assembly.

[0148] The second preset ambient temperature can be a default temperature or can be set and modified by the user, which is not limited in the present application. For example, the second preset ambient temperature can be 28 degrees, 30 degrees, 32 degrees, 35 degrees, or other values.

[0149] When the ambient temperature is higher than the second preset ambient temperature, it can indicate that the current temperature is relatively high (such as in summer), and at this time, the conductive liquid can be cooled to reduce the liquid temperature, so as to relieve the summer heat on the user, cool the user, and improve the user experience.

[0150] The controlling of the temperature adjusting device to cool the conductive liquid stored in the liquid storage device can include:

[0151] The temperature adjusting 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 the second preset liquid temperature.

[0152] The second preset liquid temperature can be a default temperature or a custom temperature set by the user according to his / her own needs. The second preset liquid temperature can be 25 degrees, 20 degrees, 18 degrees, 15 degrees, or other values.

[0153] In an optional embodiment, the temperature of the conductive liquid stored in the liquid storage device can also be detected, and the temperature of the conductive liquid can be adjusted in combination with the ambient temperature and the temperature of the conductive liquid. In this embodiment, a second temperature sensor can be arranged in the massager to measure the temperature of the conductive liquid. Preferably, the second temperature sensor can be arranged in the liquid storage device.

[0154] When the ambient temperature is lower than the first preset ambient temperature, the control of the temperature adjusting device to heat the conductive liquid stored in the liquid storage device can include:

[0155] When the ambient temperature is lower than the first preset ambient temperature, and the temperature of the conductive liquid is lower than the third preset liquid temperature, the control of the temperature adjusting device to heat the conductive liquid stored in the liquid storage device.

[0156] The third preset liquid temperature can be a default temperature set by the system, or can be set and modified by the user, which is not limited in the present application. The third preset liquid temperature is lower than the first preset liquid temperature.

[0157] For example, when the ambient temperature in winter is lower than 10 degrees, the temperature of the conductive liquid can be detected, and when the temperature of the conductive liquid is lower than the third preset liquid temperature, such as lower than 25 degrees, the conductive liquid can be heated to increase the temperature of the conductive liquid. The temperature of the conductive liquid can make the heating operation more specific, and avoid repeated heating when the temperature of the conductive liquid is not low.

[0158] When the ambient temperature is higher than the second preset ambient temperature, the control of the temperature adjusting device to cool the conductive liquid stored in the liquid storage device can include:

[0159] When the ambient temperature is higher than the second preset ambient temperature, and the temperature of the conductive liquid is higher than the fourth preset liquid temperature, the control of the temperature adjusting device to cool the conductive liquid stored in the liquid storage device.

[0160] The fourth preset liquid temperature can be a default temperature set by the system, or can be set and modified by the user, which is not limited in the present application. The fourth preset liquid temperature is higher than the second preset liquid temperature.

[0161] For example, when the ambient temperature in summer is higher than 30 degrees, the temperature of the conductive liquid can be detected, and when the temperature of the conductive liquid is higher than the fourth preset liquid temperature, such as higher than 28 degrees, the conductive liquid can be cooled to reduce the temperature of the conductive liquid. The temperature of the conductive liquid can make the cooling operation more specific, and avoid repeated cooling when the temperature of the conductive liquid is not high.

[0162] The method provided by the embodiment of the application can increase the contact area between the skin of the user and the electrode assembly, reduce the impedance value of the electrode assembly, increase the current flowing through the skin of the user, and improve the user experience when the massage instrument is worn by the user. In addition, the temperature of the conductive liquid is adjusted by the ambient temperature, so that the liquid temperature is more suitable for the user, and the user experience is further improved.

[0163] Further, the temperature of the conductive liquid is adjusted in combination with the ambient temperature and the liquid temperature, so that the temperature adjustment is more explicit, and repeated adjustment is avoided.

[0164] Please refer to Figure 5 , Figure 5 is a flowchart of another control method of a massage instrument shown by the embodiment of the application. As shown in Figure 5 , the method can include the following steps:

[0165] 510, detecting the wearing state of the massage instrument.

[0166] 520, when the massage instrument is in the worn state, the conductive liquid stored in the liquid storage device is introduced into the electrode assembly, and the conductive liquid is exuded through the micropores on the microporous electrode pair in the electrode assembly.

[0167] 530, when the time length of exuding the conductive liquid exceeds the preset time length, the conductive liquid stored in the liquid storage device is introduced into the electrode assembly again.

[0168] The preset time length can be a default time length set by the system, or a time length customized by the user according to actual needs. For example, the preset time length can be 10 minutes, 15 minutes, 20 minutes, 25 minutes or other values.

[0169] After the liquid is exuded, if the user uses for a long time, the liquid will evaporate slowly. After the exuding is completed once, the time can be counted, and when the time length exceeds the preset time length, for example, after 20 minutes, the exuding can be performed again to supplement the liquid in time.

[0170] In an optional embodiment, when the time length of exuding the conductive liquid exceeds the preset time length, introducing the conductive liquid stored in the liquid storage device into the electrode assembly again can include:

[0171] When the time length of exuding the conductive liquid exceeds the preset time length, it is detected whether the electrode assembly is in a working mode; and when the electrode assembly is in the working mode, the conductive liquid stored in the liquid storage device is introduced into the electrode assembly again.

[0172] Specifically, when the time length from the last time of liquid penetration reaches the preset time length, it can be detected whether there is still a microporous electrode pair in the electrode assembly in the working mode. When one or more microporous electrode pairs are still working, the microporous electrode pair being worked can be penetrated again, or all microporous electrode pairs can be penetrated again. If all microporous electrode pairs stop working, there is no need to penetrate again, thereby avoiding liquid waste.

[0173] In an optional embodiment, the environment parameter of the environment where the massage instrument is located can be detected, which can include but is not limited to the environment temperature and / or the environment humidity. Further, the preset time length can be adjusted according to the environment parameter.

[0174] Optionally, a temperature and humidity sensor can be arranged on the massage instrument to measure the environment temperature and the environment humidity.

[0175] Optionally, the environment temperature and the environment humidity can also be provided by a mobile device connected to the massage instrument.

[0176] Since the environment temperature and / or the environment humidity can affect the evaporation speed of the liquid, the preset time length can be automatically adjusted according to the environment temperature and / or the environment humidity. The higher the environment temperature, the faster the evaporation speed, and the shorter the preset time length. The lower the environment temperature, the slower the evaporation speed, and the longer the preset time length. The greater the environment humidity, the slower the evaporation speed, and the longer the preset time length. The smaller the environment humidity, the faster the evaporation speed, and the shorter the preset time length.

[0177] Specifically, if the environment temperature is higher than a first environment temperature, the preset time length can be adjusted to a first preset time length; if the environment temperature is lower than a second environment temperature, the preset time length can be adjusted to a second preset time length, wherein the first environment temperature is greater than the second environment temperature, and the first preset time length is less than the second preset time length.

[0178] If the environment humidity is higher than a first environment humidity, the preset time length can be adjusted to a third preset time length; if the environment humidity is lower than a second environment humidity, the preset time length can be adjusted to a fourth preset time length, wherein the first environment humidity is greater than the second environment humidity, and the third preset time length is greater than the fourth preset time length.

[0179] In an optional embodiment, a first operation instruction for modifying the preset time length input by a user can also be received, which can carry a new preset time length set by the user; and the preset time length is adjusted according to the first operation instruction.

[0180] Since different users perceive current differently, the system allows users to set and modify the preset duration. 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 within the application to modify the preset duration and set a new preset duration to replace the original one.

[0181] In an optional implementation, a second operation command input by the user can also be received, which can be used to instruct the massager to introduce the conductive liquid stored in the reservoir into the electrode assembly again; according to the second operation command, the conductive liquid stored in the reservoir is introduced into the electrode assembly again.

[0182] Because different users perceive current differently, the device allows users to control the leakage itself. Even if the preset leakage time has not yet elapsed, users can still control the massager to begin leakage. Specifically, users can directly operate the buttons on the massager to initiate leakage, or they can issue a leakage command through a mobile application.

[0183] The method provided in this application embodiment, when the massager is worn by a user, introduces conductive liquid into the electrode assembly, which then seeps through micropores on the electrodes onto the user's skin. This increases the contact area between the user's skin and the electrode assembly, reduces the impedance value of the electrode assembly, and increases the current flowing through the user's skin, thus improving the user experience. Furthermore, when a set time has elapsed since the last liquid application, liquid can be applied again to replenish the fluid in a timely manner.

[0184] Please see Figure 6 , Figure 6 This is a schematic diagram of the structure of a control device for a massager according to an embodiment of this application. This device 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 electrode pairs. Figure 6 As shown, the device may include:

[0185] Wearing detection module 610 is used to detect the wearing status of the massager;

[0186] The liquid seepage control module 620 is used to introduce the conductive liquid stored in the liquid storage device into the electrode assembly when the wear detection module 610 detects that the massager is being worn, and to let the conductive liquid seep out through the micropores on the microporous electrode pair in the electrode assembly.

[0187] Optionally, the massage instrument can further include a wearing detection assembly, the wearing detection module 610 can include: a parameter acquisition submodule and a state determination submodule; wherein:

[0188] The parameter acquisition submodule is configured to acquire a wearing parameter of the massage instrument, the wearing parameter can include but is not limited to at least one of an impedance value, a capacitance value, a pressure value and a distance value of the wearing detection assembly;

[0189] The state determination submodule is configured to determine a wearing state of the massage instrument according to the wearing parameter.

[0190] Optionally, the wearing detection assembly can include an electrode assembly, and the parameter acquisition submodule can acquire the wearing parameter of the massage instrument in the following manner:

[0191] The parameter acquisition submodule acquires an impedance value of the electrode assembly;

[0192] Correspondingly, the state determination submodule can determine the wearing state of the massage instrument according to the wearing parameter in the following manner:

[0193] When the impedance value of the electrode assembly is less than a preset impedance value, the state determination submodule determines that the massage instrument is in a worn state.

[0194] Optionally, the wearing detection assembly can include at least one capacitance sensor, and the parameter acquisition submodule can acquire the wearing parameter of the massage instrument in the following manner:

[0195] The parameter acquisition submodule acquires a capacitance value of the capacitance sensor;

[0196] Correspondingly, the state determination submodule can determine the wearing state of the massage instrument according to the wearing parameter in the following manner:

[0197] When the capacitance value of the capacitance sensor is greater than a preset capacitance value, the state determination submodule determines that the massage instrument is in a worn state.

[0198] Optionally, the wearing detection assembly can include at least one pressure sensor, and the parameter acquisition submodule can acquire the wearing parameter of the massage instrument in the following manner:

[0199] The parameter acquisition submodule acquires a pressure value measured by the pressure sensor;

[0200] Correspondingly, the state determination submodule can determine the wearing state of the massage instrument according to the wearing parameter in the following manner:

[0201] When the pressure value measured by the pressure sensor is greater than a preset pressure value, the state determination submodule determines that the massage instrument is in a worn state.

[0202] Optionally, the wear detection component may include at least one distance sensor, and the parameter acquisition submodule may acquire the wear parameters of the massager in the following ways:

[0203] The parameter acquisition submodule acquires the distance value measured by the distance sensor;

[0204] Accordingly, the method by which the status determination submodule determines the wearing status of the massager based on the wearing parameters may include:

[0205] The status determination submodule determines that the massager is in the wearing state when the distance value measured by the distance sensor is less than the preset distance value.

[0206] Optionally, when the electrode assembly includes at least two sets of microporous electrode pairs, the liquid seepage control module 620, when the wear detection module 610 detects that the massager is in a worn state, introduces the conductive liquid stored in the liquid storage device into the electrode assembly. The method by which the conductive liquid seeps out through the micropores on the microporous electrode pairs in the electrode assembly may include:

[0207] When the wear detection module 610 detects that the massager is being worn, the liquid control module 620 introduces the conductive liquid stored in the liquid storage device into all the microporous electrode pairs, and the conductive liquid seeps out through the micropores on all the microporous electrode pairs.

[0208] Optionally, when the wear detection module 610 detects that the massager is being worn, the leakage control module 620 introduces the conductive liquid stored in the liquid storage device into all the microporous electrode pairs. The method by which the conductive liquid seeps out through the micropores on all the microporous electrode pairs may include:

[0209] When the wear detection module 610 detects that the massager is being worn, the liquid control module 620 introduces the conductive liquid stored in the liquid storage device into the microporous electrode pair in the working mode, and the conductive liquid seeps out through the micropores on the microporous electrode pair in the working mode.

[0210] Optionally, the massager may also include a liquid pumping device. When the wear detection module 610 detects that the massager is being worn, the method by which the conductive liquid stored in the liquid storage device is introduced into the electrode assembly may include:

[0211] When the wear detection module 610 detects that the massager is being worn, the liquid control module 620 controls the liquid pumping device to pump the conductive liquid stored in the liquid storage device to the electrode assembly.

[0212] Optionally, when the wear detection module 610 detects that the massager is being worn, the leakage control module 620 may introduce the conductive liquid stored in the liquid storage device into the electrode assembly in the following ways:

[0213] The liquid permeation control module 620 guides the preset amount of conductive liquid stored in the liquid storage device to the electrode assembly when the wearing detection module 610 detects that the massage instrument is in a worn state.

[0214] Optionally, the massage instrument can further include a temperature adjusting device, Figure 6 The device shown can further include:

[0215] A temperature acquisition module is configured to acquire an ambient temperature of an environment in which the massage instrument is located before the liquid permeation control module 620 guides the conductive liquid stored in the liquid storage device to the electrode assembly.

[0216] A temperature adjusting module is configured to control the temperature adjusting device to adjust the temperature of the conductive liquid stored in the liquid storage device according to the ambient temperature.

[0217] The liquid permeation control module 620 guides the conductive liquid stored in the liquid storage device to the electrode assembly in a manner that can include:

[0218] The liquid permeation control module 620 guides the conductive liquid that has been temperature adjusted to the electrode assembly.

[0219] Optionally, the temperature adjusting module controls the temperature adjusting device to adjust the temperature of the conductive liquid stored in the liquid storage device according to the ambient temperature in a manner that can include:

[0220] The temperature adjusting module controls the temperature adjusting device to heat the conductive liquid stored in the liquid storage device when the ambient temperature is lower than a first preset ambient temperature.

[0221] Correspondingly, the liquid permeation control module 620 guides the conductive liquid that has been temperature adjusted to the electrode assembly in a manner that can include:

[0222] The liquid permeation control module 620 guides the conductive liquid that has been heated to the electrode assembly.

[0223] The temperature adjusting module controls the temperature adjusting device to heat the conductive liquid stored in the liquid storage device in a manner that can include:

[0224] The temperature adjusting module controls the temperature adjusting device 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.

[0225] Optionally, the temperature adjusting module controls the temperature adjusting device to adjust the temperature of the conductive liquid stored in the liquid storage device according to the ambient temperature in a manner that can include:

[0226] The temperature adjusting module controls the temperature adjusting device to cool the conductive liquid stored in the liquid storage device when the ambient temperature is higher than a second preset ambient temperature.

[0227] Correspondingly, the way in which the liquid seepage control module 620 introduces the temperature-regulated conductive liquid to the electrode assembly can include:

[0228] The liquid seepage control module 620 introduces the refrigerated conductive liquid to the electrode assembly.

[0229] Optionally, the way in which the temperature regulation module controls the temperature regulation device to refrigerate the conductive liquid stored in the liquid storage device can include:

[0230] The temperature regulation module controls the temperature regulation device to refrigerate 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.

[0231] Optionally, the temperature acquisition module can also be configured to acquire the liquid temperature of the conductive liquid stored in the liquid storage device.

[0232] The way in which the temperature regulation module controls the temperature regulation device to heat the conductive liquid stored in the liquid storage device when the ambient temperature is lower than the first preset ambient temperature can include:

[0233] The temperature regulation module controls the temperature regulation device to heat 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.

[0234] The way in which the temperature regulation module controls the temperature regulation device to refrigerate the conductive liquid stored in the liquid storage device when the ambient temperature is higher than the second preset ambient temperature can include:

[0235] The temperature regulation module controls the temperature regulation device to refrigerate the conductive liquid stored in the liquid storage device when the ambient temperature is higher than the second preset ambient temperature and the liquid temperature is higher than the fourth preset liquid temperature.

[0236] Optionally, the liquid seepage control module 620 can also be configured to introduce the conductive liquid stored in the liquid storage device to the electrode assembly again when the time length from the seepage of the conductive liquid exceeds a preset time length.

[0237] Optionally, the way in which the liquid seepage control module 620 introduces the conductive liquid stored in the liquid storage device to the electrode assembly again when the time length from the seepage of the conductive liquid exceeds a preset time length can include:

[0238] The liquid seepage control module 620 detects whether the electrode assembly is in a working mode when the time length from the seepage of the conductive liquid exceeds a preset time length, and introduces the conductive liquid stored in the liquid storage device to the electrode assembly again when the electrode assembly is in the working mode.

[0239] Optionally, Figure 6 The device shown can also include:

[0240] The temperature and humidity detection module is configured to detect an environmental parameter of an environment in which the massage instrument is located, and the environmental parameter can include an environmental temperature and / or an environmental humidity.

[0241] The time length adjustment module is configured to adjust the preset time length according to the environmental parameter.

[0242] The device provided by the embodiments of the present application can increase the contact area between the skin of the user and the electrode assembly, reduce the impedance value of the electrode assembly, increase the current flowing through the skin of the user, and improve the user experience when the massage instrument is worn by the user by introducing the conductive liquid into the electrode assembly and allowing the conductive liquid to seep out of the micro-holes on the electrode and onto the skin of the user. The temperature of the conductive liquid is adjusted by the environmental temperature, so that the liquid temperature is more suitable for the user, and the user experience is further improved. In addition, when the time length since the last seepage reaches the set time length, the liquid can be seeped again to supplement the liquid in time.

[0243] As to the device in the above embodiments, the specific manner in which each module performs operations has been described in detail in the embodiments of the method, and will not be described in detail here.

[0244] Please refer to Figure 7 Figure 7 is a structural block diagram of a massage instrument according to an embodiment of the present application. The massage instrument can be used to execute the control method of any of the massage instruments described in the foregoing embodiments. As Figure 7 shown, the massage instrument 700 can include an electrode assembly 710, a liquid storage device 720, and a controller 730, wherein the electrode assembly 710 can include at least one set of micro-hole electrode pairs, the electrode assembly 710 is respectively connected to the liquid storage device 720 and the controller 730, and the controller 730 is further connected to the liquid storage device 720;

[0245] The electrode assembly 710 can be configured to output an electric pulse signal.

[0246] The liquid storage device 720 can be configured to store a conductive liquid.

[0247] The controller 730 can be configured to detect a wearing state of the massage instrument 700, introduce the conductive liquid stored in the liquid storage device 720 into the electrode assembly 710 when the massage instrument 700 is in the wearing state, and allow the conductive liquid to seep out through the micro-holes on the micro-hole electrode pairs in the electrode assembly 710.

[0248] The specific structure and functions of the controller 730 can be referred to the related description of the control device of the massage instrument in Figure 6 , which will not be described here.

[0249] Please refer to​Figure 8 , Figure 8 is another structure block diagram of a massage instrument. The massage instrument can be used to execute the control method of any of the massage instruments described in the foregoing embodiments. As shown in Figure 8 , the massage instrument 800 can include a processor 810 and a memory 820. The processor 810 and the memory 820 are communicatively connected. It can be understood that Figure 8 the structure of the massage instrument 800 shown in the foregoing embodiments does not constitute a limitation on the embodiments of the present application, and it can include more components than those shown in the figure, such as an electrode assembly, a communication interface (such as a Bluetooth module, a WIFI module, etc.), an input / output interface (such as a key, a touch screen, a speaker, a microphone, etc.), a sensor, etc. Among them:

[0250] The processor 810 can be a central processing unit (CPU), and can also be other general-purpose processors, digital signal processors (DSP), application specific integrated circuits (ASIC), field-programmable gate arrays (FPGA) or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc. The general-purpose processor can be a microprocessor or the processor can also be any conventional processor.

[0251] The memory 820 can include various types of storage units, such as a system memory, a read-only memory (ROM), and a permanent storage device. Among them, the ROM can store static data or instructions required by the processor 810 or other modules of the computer. The permanent storage device can be a read-write storage device. The permanent storage device can be a non-volatile storage device that does not lose stored instructions and data even after the computer is powered off. In some embodiments, the permanent storage device uses a mass storage device (such as a magnetic or optical disk, a flash memory) as a permanent storage device. In some other embodiments, the permanent storage device can be a removable storage device (such as a floppy disk, an optical drive). The system memory can be a read-write storage device or a volatile read-write storage device, such as a dynamic random access memory. The system memory can store some or all instructions and data required by the processor during runtime. In addition, the memory 820 can include a combination of any computer readable storage media, including various types of semiconductor storage chips (DRAM, SRAM, SDRAM, flash memory, programmable read-only memory), magnetic disks and / or optical disks. In some embodiments, the memory 820 can include a read and / or write removable storage device, such as a compact disc (CD), a read-only digital versatile disc (such as DVD-ROM, double-layer DVD-ROM), a read-only Blu-ray disc, an ultra-density optical disc, a flash memory card (such as an SD card, a min SD card, a Micro-SD card, etc.), a magnetic floppy disk, etc. The computer readable storage medium does not include a carrier wave and an instantaneous electronic signal transmitted by wireless or wired transmission.

[0252] The memory 820 stores executable code, which, when processed by the processor 810, can cause the processor 810 to perform some or all of the steps in the above-mentioned methods.

[0253] In addition, the method according to the present application can also be implemented as a computer program or a computer program product, which includes computer program code instructions for performing some or all of the steps in the above-mentioned methods of the present application.

[0254] Alternatively, the present application can also be implemented as a non-transitory machine readable storage medium (or computer readable storage medium, or machine readable storage medium) having executable code (or computer program, or computer instruction code) stored thereon, which, when executed by a processor of an electronic device (or electronic device, server, etc.), causes the processor to perform some or all of the steps of the above-mentioned methods according to the present application.

[0255] Having described various embodiments of the application, it is to be understood that the above description is meant not to limit and not to encompass all of the possible embodiments. Many modifications and variations of this application can be apparent to those of ordinary skill in the art without departing from the scope and spirit of the described embodiments. It is intended that the scope of the application be defined by the scope of the patent and by the claims as allowed by the patent office, which can include adaptations based on the description, equivalents, and / or substitutions of elements individually or collectively to the entire disclosure.

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 pair of microporous electrodes. The method includes: Detect the wearing status of the massager; When the massager is in the wearing state, the conductive liquid stored in the liquid storage device is introduced into the electrode assembly, and the conductive liquid seeps out through the micropores on the microporous electrode pair in the electrode assembly; This also includes: when the time elapsed since the leakage of the conductive liquid exceeds a preset time, the conductive liquid stored in the liquid storage device is introduced into the electrode assembly again.

2. The method according to claim 1, 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 impedance value, 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.

3. The method according to claim 2, characterized in that, The wear detection component includes the electrode component, and the step of acquiring the wear parameters of the massager includes: Obtain the impedance value of the electrode assembly; Determining the wearing status of the massager based on the wearing parameters includes: When the impedance value of the electrode assembly is less than the preset impedance value, the massager is determined to be in a wearing state.

4. The method according to claim 2, characterized in that, The wear detection component includes a capacitive sensor, and the acquisition of the wear parameters of the massager includes: Obtain the capacitance value of the capacitance sensor; Determining the wearing status of the massager based on the wearing parameters includes: When the capacitance value of the capacitance sensor is greater than the preset capacitance value, it is determined that the massager is in a wearing state.

5. The method according to claim 2, characterized in that, The wear detection component includes a pressure sensor, and the acquisition of the wear parameters of the massager includes: Obtain the pressure value measured by the pressure sensor; Determining the wearing status of the massager based on the wearing parameters includes: When the pressure value measured by the pressure sensor is greater than the preset pressure value, it is determined that the massager is in the wearing state.

6. The method according to claim 2, characterized in that, The wear detection component includes a distance sensor, and the acquisition of the wear parameters of the massager includes: Obtain the distance value measured by the distance sensor; Determining the wearing status of the massager based on the wearing parameters includes: When the distance value measured by the distance sensor is less than the preset distance value, it is determined that the massager is in a wearing state.

7. The method according to claim 1, characterized in that, When the electrode assembly includes at least two sets of microporous electrode pairs, when the massager is in a worn state, the conductive liquid stored in the liquid storage device is introduced into the electrode assembly, and the conductive liquid seeps out through the micropores on the microporous electrode pairs in the electrode assembly, including: When the massager is in the wearing state, the conductive liquid stored in the liquid storage device is introduced into all the microporous electrode pairs, and the conductive liquid seeps out through the micropores on all the microporous electrode pairs.

8. The method according to claim 7, characterized in that, When the massager is in the wearing state, the conductive liquid stored in the liquid storage device is introduced into all the microporous electrode pairs, and the conductive liquid seeps out through the micropores on all the microporous electrode pairs, including: When the massager is in the wearing state, the conductive liquid stored in the liquid storage device is introduced into the microporous electrode pair in the working mode, and the conductive liquid seeps out through the micropores on the microporous electrode pair in the working mode.

9. The method according to claim 1, characterized in that, The massager also includes a liquid pumping device, wherein when the massager is worn, the conductive liquid stored in the liquid storage device is introduced into the electrode assembly, including: When the massager is in the wearing state, the liquid pumping device is controlled to pump the conductive liquid stored in the liquid storage device to the electrode assembly.

10. The method according to claim 1, characterized in that, When the massager is in a worn state, the conductive liquid stored in the reservoir is introduced into the electrode assembly, including: When the massager is in the wearing state, a preset amount of conductive liquid stored in the liquid storage device is introduced into the electrode assembly.

11. The method according to any one of claims 1-10, characterized in that, 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 method further includes: Obtain the ambient temperature of the environment in which the massager is located; 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. The step of introducing the conductive liquid stored in the liquid storage device into the electrode assembly includes: The temperature-adjusted conductive liquid is introduced into the electrode assembly.

12. The method according to claim 11, 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; The step of introducing the temperature-adjusted conductive liquid into the electrode assembly includes: The heated conductive liquid is introduced into the electrode assembly.

13. The method according to claim 12, 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.

14. The method according to claim 11, 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; The step of introducing the temperature-adjusted conductive liquid into the electrode assembly includes: The cooled conductive liquid is introduced into the electrode assembly.

15. The method according to claim 14, 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.

16. The method according to claim 12, 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.

17. The method according to claim 14, 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.

18. The method according to claim 1, characterized in that, When the time elapsed since the leakage of the conductive liquid exceeds a preset time, the conductive liquid stored in the storage device is again introduced into the electrode assembly, including: If the time elapsed since the conductive liquid seeps out exceeds a preset time, the electrode assembly is checked to see if it is in working mode. When the electrode assembly is in working mode, the conductive liquid stored in the liquid storage device is introduced into the electrode assembly again.

19. The method according to claim 1, characterized in that, The method further includes: Detect the environmental parameters of the environment in which the massager is located, including ambient temperature and / or ambient humidity; The preset duration is adjusted according to the environmental parameters.

20. 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 pair of microporous electrodes, and the device includes: A wear detection module is used to detect the wearing status of the massager; The liquid seepage control module is used to introduce the conductive liquid stored in the liquid storage device into the electrode assembly when the wear detection module detects that the massager is in a worn state, and to let the conductive liquid seep out through the micropores on the microporous electrode pair in the electrode assembly. The leakage control module is further configured to, when the time elapsed since the leakage of the conductive liquid exceeds a preset time, re-introduce the conductive liquid stored in the storage device into the electrode assembly.

21. 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 electrode pairs; 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 detect the wearing status of the massager. When the massager is in the wearing state, the conductive liquid stored in the liquid storage device is introduced into the electrode assembly, and the conductive liquid seeps out through the micropores on the microporous electrode pair in the electrode assembly. The controller is also configured to, when the time elapsed since the leakage of the conductive liquid exceeds a preset time, re-introduce the conductive liquid stored in the storage device into the electrode assembly.

22. 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 1-19.

23. 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 1-19.

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