Method and device for dredging liquid leakage electrode of massager, massager and storage medium
By designing a dredging device in the massager to detect and clear the blocked microporous electrodes, the problem of easy blockage of microporous electrodes is solved, and the user experience of the massager is improved.
Patent Information
- Application Number
- CN202111228908.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-10-21
- Publication Date
- 2025-05-06
- Estimated Expiration
- 2041-10-21
AI Technical Summary
The microporous electrodes in existing massagers are easily blocked by skin sweat, dust and other factors, causing the liquid to not seep out, affecting the user experience.
A method and device for unblocking of the massager ooze electrode is designed, and the liquid pumping device is used to detect the permeability state of the microporous electrode in the electrode assembly, determine the blocked target microporous electrode, and adjust the output parameters of the pumping device to unblock the blocked microporous electrode.
It effectively solves the problem of microporous electrode blockage, ensures that conductive liquid can seep out normally, increases the contact area between the user's skin and the electrode assembly, and improves the user's user experience.
Smart Images

Figure CN115999048B_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of massage equipment, and in particular to a method and device for unblocking a liquid seepage electrode of a massager, a massager and a storage medium. Background Art
[0002] Massagers generally use an electrode assembly to output electrical pulse signals to act on human muscles to massage muscles and relieve fatigue. The electrode assembly includes at least two electrodes. During an electrical pulse output, the two electrodes serve as the positive and negative electrodes respectively and fit the human skin. Since the human body is conductive, a loop is formed, and the current flows through the neck skin and muscles to achieve electrical pulse massage.
[0003] It was found that when the user's skin does not fit the electrode well 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, which the user cannot even feel, thus greatly affecting the user experience.
[0004] To solve the above problems, massagers in related technologies use microporous electrodes to penetrate liquid into the user's skin to moisten the skin, increase the contact area between the electrode and the skin, and reduce impedance. However, due to the small size of the micropores, during daily wear, the micropores may be blocked by factors such as human skin sweat and dust, causing the liquid to be unable to seep out, thereby reducing the use effect of the massager. Summary of the invention
[0005] In order to solve or partially solve the problems existing in the related art, the present application provides a method, device, massager and storage medium for unclogging the leakage electrode of a massager, which can dredge the leakage electrode in time when it is blocked and cannot leak, thereby improving the user experience.
[0006] In a first aspect, the present application provides a method for clearing liquid seepage electrodes of a massager, wherein the massager comprises an electrode assembly for outputting an electric pulse signal, a liquid storage device for storing a conductive liquid, and a liquid pumping device for conducting liquid, wherein the electrode assembly comprises at least one group of microporous electrode pairs, and the method comprises:
[0007] After obtaining the liquid infiltration instruction, controlling the liquid pumping device to pump the conductive liquid stored in the liquid storage device to the electrode assembly;
[0008] detecting the liquid seepage state of the microporous electrode in the electrode assembly;
[0009] According to the seepage state, determining a target microporous electrode that meets a preset blocking condition;
[0010] adjusting the output parameters of the liquid pumping device;
[0011] The liquid pumping device is controlled to pump out the conductive liquid according to the adjusted output parameter to clear the target microporous electrode.
[0012] Preferably, the adjusting the output parameter of the liquid pumping device comprises:
[0013] Increase the output power and / or output flow rate of the liquid pumping device.
[0014] Preferably, increasing the output power and / or output flow rate of the liquid pumping device comprises:
[0015] increasing the output power of the liquid pumping device to at least twice the original output power; and / or,
[0016] The output flow rate of the liquid pumping device is increased to at least twice the original output flow rate.
[0017] Preferably, one end of the liquid pumping device is connected to the liquid storage device through a first liquid conduit, and the other end of the liquid pumping device is respectively connected to each microporous electrode in the electrode assembly through a plurality of second liquid conduits.
[0018] Preferably, the inner diameter of each of the second liquid guiding tubes at one end close to the liquid pumping device is greater than or equal to the inner diameter of the end close to the microporous electrode.
[0019] Preferably, each of the second liquid conduits is provided with a one-way valve, and before the liquid pumping device is controlled to pump out the conductive liquid according to the adjusted output parameter to clear the target microporous electrode, the method further comprises:
[0020] The one-way valve corresponding to the target microporous electrode is controlled to be opened, and the one-way valves corresponding to the remaining microporous electrodes are controlled to be closed.
[0021] Preferably, before controlling the liquid pumping device to pump out the conductive liquid according to the adjusted output parameter to dredge the target microporous electrode, the method further includes:
[0022] Detecting a wearing state of the massager;
[0023] When the massager is not worn, the step of controlling the liquid pumping device to pump out the conductive liquid according to the adjusted output parameters to unclog the target microporous electrode is performed.
[0024] Preferably, the method further comprises:
[0025] When the massager is in a worn state, a first prompt message is output to guide the user to take off the massager.
[0026] Preferably, when the electrode assembly includes at least two groups of microporous electrode pairs, the detecting the liquid seepage state of the microporous electrodes in the electrode assembly includes:
[0027] Detecting the impedance value of each group of microporous electrode pairs in the electrode assembly;
[0028] The liquid seepage state of the corresponding microporous electrode pair is determined according to the impedance value of each group of microporous electrode pairs.
[0029] Preferably, determining the target microporous electrode that meets the preset blocking condition according to the seepage state includes:
[0030] According to the seepage state, determining a microporous electrode pair that meets a preset blocking condition;
[0031] The microporous electrode included in the microporous electrode pair that meets the preset blocking condition is determined as the target microporous electrode.
[0032] Preferably, determining the target microporous electrode that meets the preset blocking condition according to the seepage state includes:
[0033] If each microporous electrode pair including the first microporous electrode satisfies the preset blocking condition, the first microporous electrode is determined as the target microporous electrode.
[0034] Preferably, the detecting the impedance value of each group of microporous electrode pairs in the electrode assembly includes:
[0035] The impedance value of each group of microporous electrode pairs in the electrode assembly in the working mode is detected.
[0036] Preferably, determining the liquid seepage state of the corresponding microporous electrode pair according to the impedance value of each group of microporous electrode pairs includes:
[0037] When the impedance value of a microporous electrode pair is greater than a preset impedance value, it is determined that the liquid seepage state of the microporous electrode pair meets the preset blocking condition;
[0038] When the impedance value of a microporous electrode pair is less than or equal to the preset impedance value, it is determined that the liquid seepage state of the microporous electrode pair does not meet the preset blocking condition.
[0039] Preferably, determining the liquid seepage state of the corresponding microporous electrode pair according to the impedance value of each group of microporous electrode pairs includes:
[0040] Determine a first impedance value of each microporous electrode pair before liquid infiltration and a second impedance value after liquid infiltration;
[0041] When the difference between the first impedance value and the second impedance value of the microporous electrode pair is less than the preset difference value, it is determined that the liquid seepage state of the microporous electrode pair meets the preset blocking condition;
[0042] When the difference between the first impedance value and the second impedance value of a microporous electrode pair is greater than or equal to the preset difference value, it is determined that the liquid seepage state of the microporous electrode pair does not meet the preset blocking condition.
[0043] Preferably, the massager further comprises a plurality of pressure sensors, which are respectively arranged in each second liquid guiding tube;
[0044] The detecting the liquid seepage state of the microporous electrode in the electrode assembly comprises:
[0045] Using the multiple pressure sensors to respectively detect the pressure value in the second liquid guide tube corresponding to each microporous electrode in the electrode assembly;
[0046] The liquid seepage state of the corresponding microporous electrode is determined according to the pressure value in the second liquid guide tube corresponding to each microporous electrode.
[0047] Preferably, the method of determining the liquid seepage state of the corresponding microporous electrode according to the pressure value in the second liquid conduit corresponding to each microporous electrode includes:
[0048] When the pressure value in the second liquid conduit corresponding to the microporous electrode is greater than the preset pressure value, it is determined that the liquid seepage state of the microporous electrode meets the preset blocking condition;
[0049] When the pressure value in the second liquid conduit corresponding to the microporous electrode is less than or equal to the preset pressure value, it is determined that the liquid seepage state of the microporous electrode does not meet the preset blocking condition.
[0050] Preferably, the method further comprises:
[0051] After the target microporous electrode is unblocked, a second prompt message is output to guide the user to clean the target microporous electrode.
[0052] The second aspect of the present application provides a device for dredging liquid electrodes of a massager, the massager comprising an electrode assembly for outputting an electric pulse signal, a liquid storage device for storing a conductive liquid, and a liquid pumping device for conducting liquid, the electrode assembly comprising at least one group of microporous electrode pairs; the dredging device comprises:
[0053] a liquid seepage control module, configured to control the liquid pumping device to pump the conductive liquid stored in the liquid storage device to the electrode assembly after obtaining a liquid seepage instruction;
[0054] A liquid seepage detection module, used to detect the liquid seepage state of the microporous electrode in the electrode assembly;
[0055] A pore blocking determination module, used to determine a target microporous electrode that meets a preset blocking condition according to the seepage state;
[0056] A parameter adjustment module, used for adjusting the output parameters of the liquid pumping device;
[0057] The hole blocking and unblocking module is used to control the liquid pumping device to pump out the conductive liquid according to the adjusted output parameters to unblock the target microporous electrode.
[0058] Preferably, the parameter adjustment module increases the output power and / or output flow rate of the liquid pumping device.
[0059] Preferably, one end of the liquid pumping device is connected to the liquid storage device through a first liquid conduit, and the other end of the liquid pumping device is respectively connected to each microporous electrode in the electrode assembly through a plurality of second liquid conduits.
[0060] Preferably, each of the second liquid guiding tubes is provided with a one-way valve, and the dredging device further comprises:
[0061] The switch control module is used to control the one-way valve corresponding to the target microporous electrode to open and the one-way valves corresponding to the remaining microporous electrodes to close before the plugging and unblocking module unblocks the target microporous electrode.
[0062] Preferably, the dredging device further comprises:
[0063] A wearing detection module, used to detect the wearing status of the massager;
[0064] The hole blocking and unblocking module controls the liquid pumping device to pump out the conductive liquid according to the adjusted output parameters to unblock the target microporous electrode when the massager is not worn.
[0065] Preferably, when the electrode assembly includes at least two groups of microporous electrode pairs, the liquid seepage detection module detects the impedance value of each group of microporous electrode pairs in the electrode assembly, and determines the liquid seepage state of the corresponding microporous electrode pair according to the impedance value of each group of microporous electrode pairs.
[0066] Preferably, the massager also includes a plurality of pressure sensors, which are respectively arranged in each second liquid conduit; the liquid seepage detection module uses the plurality of pressure sensors to respectively detect the pressure values in the second liquid conduits corresponding to each microporous electrode in the electrode assembly, and determines the liquid seepage state of the corresponding microporous electrode according to the pressure values in the second liquid conduits corresponding to each microporous electrode.
[0067] The third aspect of the present application provides a massager, comprising an electrode assembly for outputting an electric pulse signal, a liquid storage device for storing a conductive liquid, a liquid pumping device for conducting the liquid, and a clearing device for the liquid seepage electrode of the massager as described above, wherein the electrode assembly comprises at least one group of microporous electrode pairs.
[0068] A fourth aspect of the present application provides a massager, comprising:
[0069] Processor; and
[0070] The memory stores executable codes thereon, and when the executable codes are executed by the processor, the processor is caused to execute the method as described above.
[0071] A fifth aspect of the present application provides a non-temporary machine-readable storage medium having executable code stored thereon. When the executable code is executed by a processor, the processor is caused to execute the method as described above.
[0072] The method for unblocking the liquid-leakage electrode of a massager provided in the present application can, after obtaining the liquid-leakage instruction, introduce the conductive liquid stored in the liquid storage device on the massager into the electrode assembly on the massager, and detect the liquid-leakage state of the microporous electrode in the electrode assembly. According to the liquid-leakage state, the target microporous electrode that meets the preset blockage condition can be determined. Further, the output parameters of the liquid pumping device can be adjusted so that the liquid pumping device pumps out the conductive liquid according to the adjusted output parameters to unblock the target microporous electrode. Through the above-mentioned processing, when it is detected that a microporous electrode is blocked and cannot successfully leak liquid, the blocked hole can be unblocked in time, so that the liquid leaks out normally, thereby increasing the contact area between the user's skin and the electrode assembly and improving the user experience.
[0073] It should be understood that the foregoing general description and the following detailed description are exemplary and explanatory only and are not restrictive of the present application. BRIEF DESCRIPTION OF THE DRAWINGS
[0074] The above and other objects, features and advantages of the present application will become more apparent through a more detailed description of exemplary embodiments of the present application in conjunction with the accompanying drawings, wherein the same reference numerals generally represent the same components in the exemplary embodiments of the present application.
[0075] Figure 1 is a three-dimensional structural diagram of a massager shown in an embodiment of the present application;
[0076] Figure 2 It is a flow chart of a method for clearing liquid leakage electrodes of a massager shown in an embodiment of the present application;
[0077] Figure 3 It is a flow chart of another method for dredging the liquid leakage electrode of a massager shown in an embodiment of the present application;
[0078] Figure 4 It is a flow chart of another method for dredging the liquid leakage electrode of a massager shown in an embodiment of the present application;
[0079] Figure 5It is a structural schematic diagram of a device for dredging liquid-leaking electrodes of a massager shown in an embodiment of the present application;
[0080] Figure 6 It is a structural schematic diagram of another device for dredging liquid-leaking electrodes of a massager shown in an embodiment of the present application;
[0081] Figure 7 is a structural block diagram of a massager shown in an embodiment of the present application;
[0082] Figure 8 It is a structural block diagram of another massager shown in an embodiment of the present application. DETAILED DESCRIPTION
[0083] The embodiments of the present application will be described in more detail below with reference to the accompanying drawings. Although the embodiments of the present application are shown in the accompanying drawings, it should be understood that the present application can be implemented in various forms and should not be limited by the embodiments described herein. On the contrary, these embodiments are provided to make the present application more thorough and complete, and to fully convey the scope of the present application to those skilled in the art.
[0084] The terms used in this application are for the purpose of describing specific embodiments only and are not intended to limit this application. The singular forms of "a", "said" and "the" used in this application and the appended claims are also intended to include plural forms unless the context clearly indicates other meanings. 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.
[0085] 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 the same type of information from each other. For example, without departing from the scope of this application, the first information may also be referred to as the second information, and similarly, the second information may also be referred to as the first information. Thus, the features defined as "first" and "second" may explicitly or implicitly include one or more of the features. In the description of this application, the meaning of "multiple" is two or more, unless otherwise clearly and specifically defined.
[0086] The massagers in the current related technologies, by providing microporous electrodes, can not only output electric pulse signals to massage the user, but also can penetrate liquid into the user's skin through the micropores to infiltrate the skin, increase the contact area between the electrode and the skin, and reduce impedance. However, since the aperture of the micropores is very small, during daily wear, the micropores may be blocked due to factors such as human skin sweat and dust, causing the liquid to be unable to seep out, thereby deteriorating the use effect of the massager. In response to the above problems, the embodiments of the present application provide a method, device, massager and storage medium for unblocking the liquid-seeping electrode of a massager, which can clear the liquid-seeping electrode in time when it is blocked and cannot seep liquid, thereby improving the user experience. The technical scheme of the embodiments of the present application is described in detail below in conjunction with the accompanying drawings.
[0087] In the embodiment of the present application, the massager may be a wearable massager, which may include but is not limited to a neck massager, an eye massager, a waist massager, and the like. Figure 1 Take the neck massager as an example. Figure 1 As shown, the massager 100 may include at least an electrode assembly 10, a liquid storage device 20, a massager body 30 and a liquid pumping device ( Figure 1 ). The electrode assembly 10 may include at least one group of microporous electrode pairs, and the electrode assembly 10 is arranged on the massager body 30, and can be used to output current pulse signals to electrically stimulate the user's skin and acupoints to achieve a massage effect. The liquid storage device 20 is arranged on the massager body 30, and is used to store conductive liquid. The liquid storage device 20 can be fixedly connected to the massager body 30, or can be detachably connected to the massager body 30, for example, it can be detachably connected to the massager body 30 by magnetic attraction or snap-on method. One end of the liquid pumping device can be connected to the liquid storage device 20 through a liquid conduit, and the other end can be connected to the electrode assembly 10 through a liquid conduit. When receiving a liquid seepage instruction, the liquid pumping device works to pump the conductive liquid stored in the liquid storage device 20 to the electrode assembly 10, so that the conductive liquid can seep out to the user's skin through the micropores on the microporous electrode pairs in the electrode assembly 10. The liquid pumping device can be arranged in the massager body 30, and its output parameters are adjustable. When the micropores on the micropore electrode are blocked and cannot seep liquid normally, the output parameters can be adjusted to clear the pores in time, so that the conductive liquid can seep out normally, thereby improving the use effect of the massager.
[0088] Understandably, Figure 1 The structure of the neck massager is shown as one of the following. The massager in the embodiment of the present application is not limited to Figure 1 The structural form shown may also be other structural forms, and the embodiments of the present application are not limited thereto.
[0089] See also Figure 2 , Figure 21 is a flow chart of a method for dredging a liquid leakage electrode of a massager shown in an embodiment of the present application. The method can be applied to the massager 100 described above. Figure 2 As shown, the method may include the following steps:
[0090] 210. After receiving the liquid infiltration instruction, control the liquid pumping device to pump the conductive liquid stored in the liquid storage device to the electrode assembly.
[0091] The electrode assembly may include at least one group of microporous electrode pairs, one group of microporous electrode pairs includes two microporous electrodes, and one microporous electrode may be provided with one or more micropores. The pore size of the micropore is in the micron (μm) level, for example, the pore size range of a micropore may be, but not limited to, 4μm to 50μm, and the spacing between two adjacent micropores on a microporous electrode may be, but not limited to, 200μm to 500μm.
[0092] The liquid pumping device may be a liquid pump or an air pump, which is connected to the liquid storage device and the electrode assembly respectively through a liquid conduit.
[0093] In an embodiment of the present application, the seepage instruction can be initiated by the user. For example, the user can input the seepage instruction to the massager according to his or her own needs to instruct the massager to perform a seepage operation, wherein the user can operate a specific button set on the massager to input the seepage instruction, or the user can input the seepage instruction on a mobile device (such as a mobile phone, tablet computer, etc.) connected to the massager to instruct the massager to perform a seepage operation.
[0094] In addition, the liquid seepage instruction can also be initiated by the massager itself. For example, the massager can periodically monitor the impedance value of each microporous electrode pair. If the impedance value is greater than the preset impedance value, a liquid seepage instruction is generated. Among them, the impedance value of the microporous electrode pair can be regarded as the impedance value of the load between the microporous electrode pairs. When worn by the human body, the human skin contacts the microporous electrode pair. The impedance value is mainly affected by factors such as the contact between the skin and the electrode and the humidity of the skin surface. When the impedance value between the microporous electrode pairs is greater than the preset impedance value, it can be indicated that the impedance value between the current microporous electrode pair and the user's skin is large, which will make the current flowing through the user's skin very small, resulting in a poor massage experience for the user.
[0095] The liquid pumping device pumps the conductive liquid stored in the liquid storage device into the electrode assembly, and the conductive liquid seeps onto the user's skin through the micropores on the microporous electrode pair in the electrode assembly. After the liquid soaks the skin, it can increase the contact area between the skin and the electrode assembly and change the dielectric constant between the two, thereby reducing the impedance value of the electrode assembly and improving the massage effect.
[0096] The liquid pumping device may introduce the conductive liquid into all the microporous electrodes included in the electrode assembly, or may introduce the conductive liquid only into the microporous electrodes in the electrode assembly that are in working state, but not into the microporous electrodes that are not in working state.
[0097] The conductive liquid may be an electrolyte solution (such as physiological saline) or water or other conductive liquids.
[0098] 220. Detect the liquid seepage state of the microporous electrode in the electrode assembly.
[0099] Among them, the liquid seepage state of the microporous electrode in the working state in the electrode assembly can be detected, and the blockage of the micropores on the microporous electrode can be determined by the liquid seepage state of the microporous electrode. For example, the liquid seepage state of the microporous electrode pair can be obtained by detecting the change in the impedance value of each microporous electrode pair in the working state before and after the liquid seepage. For another example, the liquid seepage state of the microporous electrode can be obtained by detecting the pressure at the liquid conduit of each microporous electrode in the working state.
[0100] 230. According to the seepage state, determine a target microporous electrode that meets a preset blocking condition.
[0101] Among them, when the seepage state is determined by the change in impedance value between the microporous electrode pair, if the impedance value between the microporous electrode pair before and after the seepage hardly changes or the change difference is very small, it can be considered that it meets the preset blockage condition. At this time, at least one microporous electrode in the microporous electrode pair is blocked, and the two microporous electrodes contained in the microporous electrode pair are both determined as target microporous electrodes.
[0102] When the seepage state is determined by the pressure of the microporous electrode liquid guide tube, if the pressure at the liquid guide tube is relatively large during seepage, it can be considered that it meets the preset blockage condition, and the microporous electrode is determined as the target microporous electrode.
[0103] 240. Adjust the output parameters of the liquid pumping device.
[0104] In the embodiment of the present application, when a microporous electrode is blocked, a blockage cleaning instruction can be generated, and the output parameters of the liquid pumping device can be adjusted under the control of the blockage cleaning instruction. For example, the output power and / or output flow rate of the liquid pumping device can be adjusted.
[0105] 250. Control the liquid pumping device to pump out the conductive liquid according to the adjusted output parameters to clear the target microporous electrode.
[0106] The liquid pumping device pumps out the conductive liquid again with the adjusted output parameters to change the force with which the conductive liquid impacts the micropores, thereby achieving the purpose of unblocking the target micropore electrodes.
[0107] The method provided in the embodiment of the present application can, after obtaining the liquid seepage instruction, introduce the conductive liquid stored in the liquid storage device on the massager into the electrode assembly on the massager, and detect the liquid seepage state of the microporous electrode in the electrode assembly. According to the liquid seepage state, the target microporous electrode that meets the preset blockage condition can be determined. Further, the output parameters of the liquid pumping device can be adjusted so that the liquid pumping device pumps out the conductive liquid according to the adjusted output parameters to unclog the target microporous electrode. Through the above processing, when it is detected that a microporous electrode is blocked and cannot successfully infiltrate, the blocked hole can be unclogged in time, so that the liquid can seep out normally, thereby increasing the contact area between the user's skin and the electrode assembly and improving the user experience.
[0108] See also Figure 3 , Figure 3 FIG. 1 is a flow chart of another method for dredging the liquid leakage electrode of a massager according to an embodiment of the present application. Figure 3 As shown, the method may include the following steps:
[0109] 310. After receiving the liquid infiltration instruction, control the liquid pumping device to pump the conductive liquid stored in the liquid storage device to the electrode assembly.
[0110] 320. Detect the liquid seepage state of the microporous electrode in the electrode assembly.
[0111] 330. According to the seepage state, determine a target microporous electrode that meets a preset blocking condition.
[0112] 340. Adjust the output parameters of the liquid pumping device.
[0113] The specific implementation of steps 310 to 340 may refer to the relevant descriptions of steps 210 to 240 in the previous embodiment, and will not be repeated here.
[0114] 350. Check the wearing status of the massager.
[0115] In the embodiment of the present application, whether the massager is worn can be determined by detecting one or more parameters of the massager such as impedance value, capacitance value, distance value and pressure value. Since the above parameters will change before and after the massager is worn, the wearing state of the massager can be determined by the change of these parameters.
[0116] Optionally, the wearing state of the massager can be determined by detecting the impedance value between the microporous electrode pairs in the electrode assembly in a working state. Preferably, the microporous electrode pair does not contain a target microporous electrode. When the massager is worn by the user, due to the conductivity of the human body, the microporous electrode pair is connected to the human body, and the impedance value is small. When the user is not wearing the massager, there is air between the microporous electrode pairs and they cannot be connected, making the impedance value very large. Therefore, when the impedance value between the microporous electrode pairs is greater than a pre-set critical impedance value, the massager can be considered to be in a non-worn state; otherwise, the massager can be considered to be in a worn state.
[0117] Optionally, one or more capacitive sensors may be provided on the massager, and the wearing state of the massager may be determined by obtaining the capacitance value of the capacitive sensor. The capacitive sensor may be a capacitive proximity sensor, and when the human body approaches the capacitive sensor, the capacitance value increases, and when the human body moves away from the capacitive sensor, the capacitance value decreases. Therefore, when the capacitance value of the capacitive sensor is less than a preset capacitance value, the massager may be considered to be in a non-worn state; otherwise, the massager may be considered to be in a worn state.
[0118] Optionally, one or more distance sensors may be provided on the massager, and the wearing state of the massager may be determined by the distance value obtained by the distance sensor. The distance sensor may be at least one of an infrared distance sensor, a laser distance sensor, an ultrasonic distance sensor, and the like. When the human body approaches the massager, the distance value becomes smaller; when the human body moves away from the massager, the distance value becomes larger. Therefore, when the distance value measured by the distance sensor is greater than a preset distance value, the massager may be considered to be in a non-worn state; otherwise, the massager may be considered to be in a worn state.
[0119] Optionally, one or more pressure sensors may be provided on the massager, and the wearing state of the massager may be determined by the pressure value obtained by the pressure sensor. When the human body contacts the massager, a pressure value is generated; when the human body does not contact the massager, the pressure value tends to 0. Therefore, when the pressure value measured by the pressure sensor is less than a preset pressure value, the massager may be considered to be in a non-wearing state; otherwise, the massager may be considered to be in a wearing state.
[0120] It is understandable that the wearing state of the massager may be determined in combination with two or more of the above methods, thereby further improving the accuracy of wearing state detection.
[0121] It should be noted that there may be no sequential relationship between step 340 and step 350 , and they may be executed in a sequential order or in a swapped order, which is not a sole limitation here.
[0122] 360. When the massager is not worn, the liquid pumping device is controlled to pump out the conductive liquid according to the adjusted output parameters to clear the target microporous electrodes.
[0123] Among them, when the user takes off the massager and it is not worn, the hole unblocking operation is performed, that is, the liquid pumping device is controlled to output the conductive liquid with the adjusted output parameters to flush the blocked holes.
[0124] 370. When the massager is in a worn state, a first prompt message is output to guide the user to take off the massager.
[0125] Among them, when the massager is worn by the user, if it is detected that the microporous electrode is blocked, the user can be reminded that the massager needs to be cleaned and the user can be prompted to take off the massager to prevent the user's skin from being soiled by the dirt cleaned out while wearing the massager.
[0126] The method provided in the embodiment of the present application, when it is detected that the microporous electrode is blocked and cannot successfully seep liquid, further determines whether the massager is worn, and promptly unclogs the blocked holes when it is not worn. This can avoid soiling the user's skin when unblocking the blocked holes, and can also allow the liquid to seep out normally, thereby improving the user experience.
[0127] See also Figure 4 , Figure 4 FIG. 1 is a flow chart of another method for dredging the liquid leakage electrode of a massager according to an embodiment of the present application. Figure 4 As shown, the method may include the following steps:
[0128] 410. After receiving the liquid infiltration instruction, control the liquid pumping device to pump the conductive liquid stored in the liquid storage device to the electrode assembly.
[0129] In the embodiment of the present application, one end of the liquid pumping device can be connected to the liquid storage device through a first liquid conduit, and the other end of the liquid pumping device can be connected to each microporous electrode in the electrode assembly through multiple second liquid conduits.
[0130] Wherein, each second liquid guide tube may be provided with a one-way valve to prevent liquid backflow. When executing the above step 410, the one-way valve corresponding to the microporous electrode in the working mode may be opened, and when the liquid pumping device stops working, the one-way valve may be closed.
[0131] 420. Detect the liquid seepage state of the microporous electrode in the electrode assembly.
[0132] 430. According to the seepage state, determine a target microporous electrode that meets a preset blocking condition.
[0133] In an optional embodiment, when the electrode assembly includes one or more groups of microporous electrode pairs, the impedance value of each group of microporous electrode pairs in the electrode assembly can be detected, and the seepage state of the corresponding microporous electrode pair can be determined based on the impedance value of each group of microporous electrode pairs.
[0134] Optionally, the microporous electrode pairs satisfying the preset blocking conditions may be determined according to the liquid seepage state of each group of microporous electrode pairs, and the microporous electrodes included in the microporous electrode pairs satisfying the preset blocking conditions may be determined as target microporous electrodes.
[0135] Specifically, if a group of microporous electrode pairs meets the preset blockage conditions, the two microporous electrodes included in the microporous electrode pair are regarded as blocked target microporous electrodes. Even if only one microporous electrode in the microporous electrode pair is blocked, subsequent flushing operations will still be performed on both microporous electrodes.
[0136] Optionally, if each microporous electrode pair including the first microporous electrode satisfies a preset blocking condition, the first microporous electrode is determined as the target microporous electrode.
[0137] For example, assuming that the massager is provided with microporous electrode 1, microporous electrode 2 and microporous electrode 3, when microporous electrodes 1 and 2 form a group of microporous electrode pairs, it is detected that the group of microporous electrode pairs meets the preset blocking condition; when microporous electrodes 1 and 3 form a group of microporous electrode pairs, it is detected that the group of microporous electrode pairs also meets the preset blocking condition; when microporous electrodes 2 and 3 form a group of microporous electrode pairs, it is detected that the group of microporous electrode pairs does not meet the preset blocking condition, at this time, it can be determined that microporous electrode 1 is blocked, that is, it is the target microporous electrode, and microporous electrodes 2 and 3 are not blocked. Through the above operation, the accuracy of blocking electrode detection can be improved.
[0138] The specific implementation of detecting the impedance value of each group of microporous electrode pairs in the electrode assembly may include:
[0139] The impedance value of each group of microporous electrode pairs in the working mode in the detection electrode assembly is detected.
[0140] In some massage modes, only some of the microporous electrode pairs may be used for massage output, and the remaining microporous electrode pairs are not working. At this time, only all the microporous electrode pairs in the working mode can be tested for liquid leakage, so that liquid leakage detection can be carried out in a targeted manner.
[0141] Optionally, a specific implementation of determining the liquid seepage state of a corresponding microporous electrode pair according to the impedance value of each group of microporous electrode pairs may include:
[0142] When the impedance value of a microporous electrode pair is greater than a preset impedance value, it is determined that the liquid seepage state of the microporous electrode pair meets the preset blocking condition;
[0143] When the impedance value of a microporous electrode pair is less than or equal to a preset impedance value, it is determined that the liquid seepage state of the microporous electrode pair does not meet the preset blocking condition.
[0144] Among them, if the micropores on the microporous electrode are not blocked, the liquid can seep into the user's skin normally through the micropores, which can reduce the impedance value between the microporous electrode pairs. If the impedance value between the microporous electrode pairs is greater than the preset impedance value after the liquid seepage operation, it can be indicated that the impedance value is still large after the liquid seepage operation. At this time, one of the microporous electrodes in the microporous electrode pair is blocked, and the micropores cannot seep liquid or the amount of liquid seeping is very small, that is, the preset blocking condition is met, and the two microporous electrodes included in the microporous electrode pair are determined as target microporous electrodes. If the impedance value between the microporous electrode pair is less than or equal to the preset impedance value after the liquid seepage operation, it can be considered that the two microporous electrodes included in the microporous electrode pair can seep liquid normally and are not blocked, that is, the preset blocking condition is not met.
[0145] Optionally, a specific implementation of determining the liquid seepage state of a corresponding microporous electrode pair according to the impedance value of each group of microporous electrode pairs may include:
[0146] Determine a first impedance value of each group of microporous electrode pairs before liquid infiltration and a second impedance value after liquid infiltration;
[0147] When the difference between the first impedance value and the second impedance value of the microporous electrode pair is less than the preset difference value, it is determined that the liquid seepage state of the microporous electrode pair meets the preset blocking condition;
[0148] When the difference between the first impedance value and the second impedance value of the microporous electrode pair is greater than or equal to the preset difference value, it is determined that the liquid seepage state of the microporous electrode pair does not meet the preset blocking condition.
[0149] Among them, if the micropores on the microporous electrode are not blocked, the impedance value between the microporous electrode pair before and after the seepage will change significantly, for example, the second impedance value after the seepage is less than the first impedance value before the seepage. When the difference between the two is less than the preset difference value, it can be considered that the impedance value before and after the seepage changes very little or basically does not change. At this time, it can be determined that there is a blockage in the microporous electrode pair, that is, the preset blockage condition is met. When the difference between the two is greater than or equal to the preset difference value, it can be considered that the impedance value before and after the seepage changes significantly. At this time, it can be determined that the microporous electrode pair can seep normally, that is, the preset blockage condition is not met.
[0150] Among them, the difference between the first impedance value before infiltration and the second impedance value after infiltration can be the absolute difference between the two (such as the first impedance value minus the second impedance value), or the multiple difference between the two (such as the first impedance value divided by the second impedance value), which is not limited here.
[0151] In an optional embodiment, the massager may further include a plurality of pressure sensors, which are respectively disposed in each second liquid conduit. Preferably, the pressure sensor is disposed in the second liquid conduit and close to the microporous electrode. The plurality of pressure sensors may be used to respectively detect the pressure value in the second liquid conduit corresponding to each microporous electrode in the electrode assembly; and the liquid seepage state of the corresponding microporous electrode may be determined according to the pressure value in the second liquid conduit corresponding to each microporous electrode.
[0152] The specific implementation of determining the liquid seepage state of the corresponding microporous electrode according to the pressure value in the second liquid conduit corresponding to each microporous electrode may include:
[0153] When the pressure value in the second liquid conduit corresponding to the microporous electrode is greater than the preset pressure value, it is determined that the liquid seepage state of the microporous electrode meets the preset blocking condition;
[0154] When the pressure value in the second liquid conduit corresponding to the microporous electrode is less than or equal to the preset pressure value, it is determined that the liquid seepage state of the microporous electrode does not meet the preset blocking condition.
[0155] Specifically, when the liquid pumping device is working to pump liquid, if the microporous electrode is blocked and cannot leak liquid normally, the liquid pressure value in the second liquid guide tube near the microporous electrode will increase. If the liquid pressure value in the tube is greater than the preset pressure value, the preset blocking condition is met; otherwise, the preset blocking condition is not met. By arranging a pressure sensor in each second liquid guide tube, each microporous electrode can be tested for leaking liquid, thereby improving the detection accuracy.
[0156] 440. Adjust the output parameters of the liquid pumping device.
[0157] The output power and / or output flow rate of the liquid pumping device can be increased. By increasing the output power and / or output flow rate, the liquid pressure can be increased, thereby increasing the impact force of the liquid on the micropores.
[0158] Specifically, the output power of the liquid pumping device may be increased to at least twice the original output power; and / or the output flow rate of the liquid pumping device may be increased to at least twice the original output flow rate.
[0159] For example, when a liquid infiltration instruction is received, the liquid pumping device is started so that the liquid pumping device pumps liquid according to the set output power. When a blocked target microporous electrode is detected, the output power of the liquid pumping device is increased to be adjusted to twice or more of the original set output power (such as two times, three times, four times, etc.), thereby increasing the pumping force.
[0160] 450. Control the one-way valve corresponding to the target microporous electrode to open, and control the one-way valves corresponding to the remaining microporous electrodes to close.
[0161] In the embodiment of the present application, before unblocking the target microporous electrode, the one-way valve corresponding to the target microporous electrode can be opened, and the one-way valves corresponding to other microporous electrodes can be closed. Since it is very likely that only the micropores on individual electrodes of the massager are blocked, when only individual electrodes are blocked, before clearing the blocked holes, the one-way valves corresponding to other unblocked microporous electrodes can be closed, thereby avoiding the dispersion of liquid pressure and resulting in poor flushing effect.
[0162] 460. Control the liquid pumping device to pump out the conductive liquid according to the adjusted output parameters to clear the target microporous electrode.
[0163] Among them, after adjusting the output parameters, the liquid pumping device can be allowed to pump out the conductive liquid again with the adjusted output parameters, thereby increasing the force of the liquid impacting the micropores and allowing the micropores to be unblocked.
[0164] The inner diameter of each second liquid guide tube near the liquid pumping device can be greater than or equal to the inner diameter of the end near the microporous electrode. Specifically, the inner diameter of the liquid guide tube near the microporous electrode can be gradually narrowed, which can increase the liquid pressure at the micropore and facilitate the flushing of the micropore.
[0165] Further, after the target microporous electrode is unblocked, a second prompt message may be output to guide the user to clean the target microporous electrode.
[0166] Since dirt may stick to the outside of the microporous electrode during flushing, after the liquid pumping device flushes the target microporous electrode, the user can be prompted to clean the electrode assembly through voice, text, etc., so that the user can manually clean the remaining dirt according to the prompt, achieving a better cleaning effect.
[0167] The method provided in the embodiment of the present application, when it is detected that a microporous electrode is blocked and cannot successfully infiltrate liquid, increases the output parameters of the liquid pumping device to increase the impact force of the liquid on the micropores, thereby clearing the blocked holes and allowing the liquid to infiltrate normally, thereby increasing the contact area between the user's skin and the electrode assembly and improving the user experience.
[0168] The above describes in detail the method for unblocking the liquid leakage electrode of the massager of the present application. Correspondingly, the present application also provides a device for unblocking the liquid leakage electrode of the massager and a massager.
[0169] See also Figure 5 , Figure 51 is a schematic diagram of the structure of a device for dredging a liquid seepage electrode of a massager shown in an embodiment of the present application. The device can be used to perform any of the methods for dredging a liquid seepage electrode of a massager described in the above embodiments. The massager may include an electrode assembly for outputting an electric pulse signal, a liquid storage device for storing a conductive liquid, and a liquid pumping device for conducting liquid, and the electrode assembly may include at least one set of microporous electrode pairs. Figure 5 As shown, the dredging device 500 may include:
[0170] The liquid seepage control module 510 is used to control the liquid pumping device to pump the conductive liquid stored in the liquid storage device to the electrode assembly after obtaining the liquid seepage instruction;
[0171] A liquid seepage detection module 520, used to detect the liquid seepage state of the microporous electrodes in the electrode assembly;
[0172] A pore blocking determination module 530 is used to determine a target microporous electrode that meets a preset blocking condition according to the seepage state;
[0173] A parameter adjustment module 540, used to adjust the output parameters of the liquid pumping device;
[0174] The hole blocking and unblocking module 550 is used to control the liquid pumping device to pump out the conductive liquid according to the adjusted output parameters to unblock the target microporous electrode.
[0175] The parameter adjustment module 540 increases the output power and / or output flow rate of the liquid pumping device.
[0176] Specifically, the parameter adjustment module 540 increases the output power of the liquid pumping device to at least twice the original output power; and / or, the parameter adjustment module 540 increases the output flow of the liquid pumping device to at least twice the original output flow.
[0177] Among them, one end of the liquid pumping device can be connected to the liquid storage device through a first liquid conduit, and the other end of the liquid pumping device can be connected to each microporous electrode in the electrode assembly through a plurality of second liquid conduits.
[0178] The inner diameter of each second liquid guiding tube at one end close to the liquid pumping device is greater than or equal to the inner diameter of the end close to the microporous electrode.
[0179] Optional, please also see Figure 6 Each second liquid guiding tube may be provided with a one-way valve, and the dredging device 500 may further include:
[0180] The switch control module 560 is used to control the one-way valve corresponding to the target microporous electrode to open, and control the one-way valves corresponding to the remaining microporous electrodes to close, before the plugging and unblocking module 550 unblocks the target microporous electrode.
[0181] Optional, such as Figure 6 As shown, the dredging device 500 may also include:
[0182] A wearing detection module 570, used to detect the wearing status of the massager;
[0183] Correspondingly, when the massager is not worn, the hole blocking and unblocking module 550 controls the liquid pumping device to pump out the conductive liquid according to the adjusted output parameters to unblock the target microporous electrode.
[0184] Optionally, the dredging device 500 may further include a first prompt module (not shown in the figure), wherein:
[0185] The first prompt module is used to output a first prompt message to guide the user to take off the massager when the massager is in a worn state.
[0186] Optionally, when the electrode assembly includes at least two groups of microporous electrode pairs, the liquid seepage detection module 520 detects the impedance value of each group of microporous electrode pairs in the electrode assembly, and determines the liquid seepage state of the corresponding microporous electrode pair according to the impedance value of each group of microporous electrode pairs.
[0187] Optionally, the pore blocking determination module 530 determines a microporous electrode pair that meets a preset blocking condition according to the seepage state, and determines the microporous electrode included in the microporous electrode pair that meets the preset blocking condition as the target microporous electrode.
[0188] Optionally, when the liquid seepage detection module 520 detects that all microporous electrode pairs including the first microporous electrode meet the preset blocking condition, the blocking hole determination module 530 determines the first microporous electrode as the target microporous electrode.
[0189] The specific implementation of the leakage detection module 520 detecting the impedance value of each group of microporous electrode pairs in the electrode assembly may include:
[0190] The liquid leakage detection module 520 detects the impedance value of each group of microporous electrode pairs in the electrode assembly in the working mode.
[0191] Optionally, the specific implementation of the liquid seepage detection module 520 determining the liquid seepage state of the corresponding microporous electrode pair according to the impedance value of each group of microporous electrode pairs may include:
[0192] The seepage detection module 520 determines that the seepage state of the microporous electrode pair meets the preset blockage condition when the impedance value of a microporous electrode pair is greater than the preset impedance value; and determines that the seepage state of the microporous electrode pair does not meet the preset blockage condition when the impedance value of a microporous electrode pair is less than or equal to the preset impedance value.
[0193] Optionally, the specific implementation of the liquid seepage detection module 520 determining the liquid seepage state of the corresponding microporous electrode pair according to the impedance value of each group of microporous electrode pairs may include:
[0194] The seepage detection module 520 determines the first impedance value of each group of microporous electrode pairs before seepage and the second impedance value after seepage; when the difference between the first impedance value and the second impedance value of a microporous electrode pair is less than a preset difference value, it is determined that the seepage state of the microporous electrode pair meets the preset blockage condition; when the difference between the first impedance value and the second impedance value of a microporous electrode pair is greater than or equal to the preset difference value, it is determined that the seepage state of the microporous electrode pair does not meet the preset blockage condition.
[0195] Optionally, the massager may further include a plurality of pressure sensors, respectively disposed in each second liquid conduit; the liquid seepage detection module 520 utilizes the plurality of pressure sensors to respectively detect the pressure values in the second liquid conduits corresponding to each microporous electrode in the electrode assembly, and determines the liquid seepage state of the corresponding microporous electrode according to the pressure values in the second liquid conduits corresponding to each microporous electrode.
[0196] The specific implementation of the liquid leakage detection module 520 determining the liquid leakage state of the corresponding microporous electrode according to the pressure value in the second liquid conduit corresponding to each microporous electrode may include:
[0197] The seepage detection module 520 determines that the seepage state of the microporous electrode meets the preset blockage condition when the pressure value in the second liquid conduit corresponding to the microporous electrode is greater than the preset pressure value; and determines that the seepage state of the microporous electrode does not meet the preset blockage condition when the pressure value in the second liquid conduit corresponding to the microporous electrode is less than or equal to the preset pressure value.
[0198] Optionally, the dredging device 500 may further include a second prompt module (not shown in the figure), wherein:
[0199] The second prompt module is used to output second prompt information to guide the user to clean the target microporous electrode after the blocking and unblocking module 550 unblocks the target microporous electrode.
[0200] The unblocking device provided in the embodiment of the present application can unblock the blocked holes in time when it is detected that the microporous electrodes are blocked and cannot successfully infiltrate liquid, so that the liquid can seep out normally, thereby increasing the contact area between the user's skin and the electrode assembly and improving the user experience.
[0201] Regarding the dredging device in the above embodiment, the specific manner in which each module performs operations has been described in detail in the embodiment of the method, and will not be elaborated again here.
[0202] See also Figure 7 , Figure 71 is a structural block diagram of a massager shown in an embodiment of the present application. The massager can be used to perform any of the massager liquid leakage electrode dredging methods described in the above embodiments. Figure 7 As shown, the massager 700 may include: an electrode assembly 710 for outputting an electric pulse signal, a liquid storage device 720 for storing a conductive liquid, a liquid pumping device 730 for conducting liquid, and a clearing device 500 for the liquid seepage electrode of the massager as described above, wherein the electrode assembly 710 may include at least one group of microporous electrode pairs.
[0203] The structure and function of the dredging device 500 can be seen in the above Figure 5 and Figure 6 The relevant description in will not be repeated here.
[0204] See also Figure 8 , Figure 8 is a structural block diagram of another massager shown in an embodiment of the present application. The massager can be used to perform any of the massager liquid leakage electrode dredging methods described in the above embodiments. Figure 8 As shown, the massager 800 may include: a processor 810 and a memory 820. The processor 810 and the memory 820 are in communication connection. It is understandable that Figure 8 The structure of the massager 800 shown in the figure does not constitute a limitation on the embodiments of the present application, and it may include more components than shown in the figure, such as electrode assemblies, communication interfaces (such as Bluetooth modules, WIFI modules, etc.), input and output interfaces (such as buttons, touch screens, speakers, microphones, etc.), sensors, etc. Among them:
[0205] The processor 810 may be a central processing unit (CPU), or 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. A general-purpose processor may be a microprocessor or the processor may be any conventional processor, etc.
[0206] The memory 820 may include various types of storage units, such as system memory, read-only memory (ROM), and permanent storage devices. Among them, ROM can store static data or instructions required by the processor 810 or other modules of the computer. The permanent storage device may be a readable and writable storage device. The permanent storage device may be a non-volatile storage device that does not lose the stored instructions and data even after the computer is powered off. In some embodiments, the permanent storage device uses a large-capacity storage device (such as a magnetic or optical disk, flash memory) as a permanent storage device. In some other embodiments, the permanent storage device may be a removable storage device (such as a floppy disk, optical drive). The system memory may be a readable and writable storage device or a volatile readable and writable storage device, such as a dynamic random access memory. The system memory may store some or all instructions and data required by the processor at run time. In addition, the memory 820 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 embodiments, the memory 820 may include a readable and / or writable removable storage device, such as a laser disc (CD), a read-only digital versatile disc (e.g., DVD-ROM, double-layer DVD-ROM), a read-only Blu-ray disc, an ultra-density optical disc, a flash memory card (e.g., SD card, mini SD card, Micro-SD card, etc.), a magnetic floppy disk, etc. The computer-readable storage medium does not include carrier waves and transient electronic signals transmitted wirelessly or wired.
[0207] The memory 820 stores executable codes, and when the executable codes are processed by the processor 810 , the processor 810 can execute part or all of the steps in the above-mentioned method.
[0208] In addition, the method according to the present application may also be implemented as a computer program or a computer program product, which includes computer program code instructions for executing some or all of the steps in the above method of the present application.
[0209] Alternatively, the present application can also be implemented as a non-temporary machine-readable storage medium (or computer-readable storage medium, or machine-readable storage medium) on which executable code (or computer program, or computer instruction code) is stored. When the executable code (or computer program, or computer instruction code) is executed by a processor of an electronic device (or electronic device, server, etc.), the processor executes part or all of the steps of the above-mentioned method according to the present application.
[0210] The embodiments of the present application have been described above, and the above description is exemplary, not exhaustive, and is not limited to the disclosed embodiments. Many modifications and changes will be apparent to those of ordinary skill in the art without departing from the scope and spirit of the described embodiments. The selection of terms used herein is intended to best explain the principles of the embodiments, practical applications, or improvements to the technology in the market, or to enable other persons of ordinary skill in the art to understand the embodiments disclosed herein.
Claims
1. A method for unblocking a liquid seepage electrode of a massager, characterized in that: The massager comprises an electrode assembly for outputting an electric pulse signal, a liquid storage device for storing a conductive liquid, and a liquid pumping device for conducting the liquid, the electrode assembly comprises at least one group of microporous electrode pairs, and the method comprises: After obtaining the liquid infiltration instruction, controlling the liquid pumping device to pump the conductive liquid stored in the liquid storage device to the electrode assembly; detecting the liquid seepage state of the microporous electrode in the electrode assembly; According to the seepage state, determining a target microporous electrode that meets a preset blocking condition; adjusting the output parameters of the liquid pumping device; The liquid pumping device is controlled to pump out the conductive liquid according to the adjusted output parameter to clear the target microporous electrode.
2. The method according to claim 1, characterized in that The step of adjusting the output parameters of the liquid pumping device comprises: Increase the output power and / or output flow rate of the liquid pumping device.
3. The method according to claim 2, characterized in that The step of increasing the output power and / or output flow rate of the liquid pumping device comprises: increasing the output power of the liquid pumping device to at least twice the original output power; and / or, The output flow rate of the liquid pumping device is increased to at least twice the original output flow rate.
4. The method according to claim 1, characterized in that: One end of the liquid pumping device is connected to the liquid storage device through a first liquid conduit, and the other end of the liquid pumping device is respectively connected to each microporous electrode in the electrode assembly through a plurality of second liquid conduits.
5. The method according to claim 4, characterized in that The inner diameter of each of the second liquid guiding tubes at one end close to the liquid pumping device is greater than or equal to the inner diameter of the end close to the microporous electrode.
6. The method according to claim 4, characterized in that Each of the second liquid conduits is provided with a one-way valve, and before the liquid pumping device is controlled to pump out the conductive liquid according to the adjusted output parameter to clear the target microporous electrode, the method further includes: The one-way valve corresponding to the target microporous electrode is controlled to be opened, and the one-way valves corresponding to the remaining microporous electrodes are controlled to be closed.
7. The method according to claim 1, characterized in that Before controlling the liquid pumping device to pump out the conductive liquid according to the adjusted output parameter to dredge the target microporous electrode, the method further includes: Detecting a wearing state of the massager; When the massager is not worn, the step of controlling the liquid pumping device to pump out the conductive liquid according to the adjusted output parameters to unclog the target microporous electrode is performed.
8. The method according to claim 7, characterized in that The method further comprises: When the massager is in a worn state, a first prompt message is output to guide the user to take off the massager.
9. The method according to any one of claims 1 to 8, characterized in that: When the electrode assembly includes at least two groups of microporous electrode pairs, the step of detecting the liquid seepage state of the microporous electrodes in the electrode assembly includes: Detecting the impedance value of each group of microporous electrode pairs in the electrode assembly; The liquid seepage state of the corresponding microporous electrode pair is determined according to the impedance value of each group of microporous electrode pairs.
10. The method according to claim 9, characterized in that The step of determining a target microporous electrode that meets a preset blocking condition according to the seepage state includes: According to the seepage state, determining a microporous electrode pair that meets a preset blocking condition; The microporous electrode included in the microporous electrode pair that meets the preset blocking condition is determined as the target microporous electrode.
11. The method according to claim 9, characterized in that The step of determining a target microporous electrode that meets a preset blocking condition according to the seepage state includes: If each microporous electrode pair including the first microporous electrode satisfies the preset blocking condition, the first microporous electrode is determined as the target microporous electrode.
12. The method according to claim 9, characterized in that The detecting the impedance value of each group of microporous electrode pairs in the electrode assembly comprises: The impedance value of each group of microporous electrode pairs in the electrode assembly in the working mode is detected.
13. The method according to claim 9, characterized in that The step of determining the liquid seepage state of the corresponding microporous electrode pair according to the impedance value of each group of microporous electrode pairs comprises: When the impedance value of a microporous electrode pair is greater than a preset impedance value, it is determined that the liquid seepage state of the microporous electrode pair meets the preset blocking condition; When the impedance value of a microporous electrode pair is less than or equal to the preset impedance value, it is determined that the liquid seepage state of the microporous electrode pair does not meet the preset blocking condition.
14. The method according to claim 9, characterized in that The step of determining the liquid seepage state of the corresponding microporous electrode pair according to the impedance value of each group of microporous electrode pairs comprises: Determine a first impedance value of each microporous electrode pair before liquid infiltration and a second impedance value after liquid infiltration; When the difference between the first impedance value and the second impedance value of the microporous electrode pair is less than the preset difference value, it is determined that the liquid seepage state of the microporous electrode pair meets the preset blocking condition; When the difference between the first impedance value and the second impedance value of a microporous electrode pair is greater than or equal to the preset difference value, it is determined that the liquid seepage state of the microporous electrode pair does not meet the preset blocking condition.
15. The method according to any one of claims 4 to 6, characterized in that: The massager further includes a plurality of pressure sensors, which are respectively arranged in each second liquid guiding tube; The detecting the liquid seepage state of the microporous electrode in the electrode assembly comprises: Using the multiple pressure sensors to respectively detect the pressure value in the second liquid guide tube corresponding to each microporous electrode in the electrode assembly; The liquid seepage state of the corresponding microporous electrode is determined according to the pressure value in the second liquid guide tube corresponding to each microporous electrode.
16. The method according to claim 15, characterized in that The method of determining the liquid seepage state of the corresponding microporous electrode according to the pressure value in the second liquid guide tube corresponding to each microporous electrode comprises: When the pressure value in the second liquid conduit corresponding to the microporous electrode is greater than the preset pressure value, it is determined that the liquid seepage state of the microporous electrode meets the preset blocking condition; When the pressure value in the second liquid conduit corresponding to the microporous electrode is less than or equal to the preset pressure value, it is determined that the liquid seepage state of the microporous electrode does not meet the preset blocking condition.
17. The method according to any one of claims 1 to 8, characterized in that: The method further comprises: After the target microporous electrode is unblocked, a second prompt message is output to guide the user to clean the target microporous electrode.
18. A device for dredging liquid-leaking electrodes of a massager, characterized in that: The massager comprises an electrode assembly for outputting electric pulse signals, a liquid storage device for storing conductive liquid, and a liquid pumping device for conducting liquid, and the electrode assembly comprises at least one group of microporous electrode pairs; The dredging device comprises: a liquid seepage control module, configured to control the liquid pumping device to pump the conductive liquid stored in the liquid storage device to the electrode assembly after obtaining a liquid seepage instruction; A liquid seepage detection module, used to detect the liquid seepage state of the microporous electrode in the electrode assembly; A pore blocking determination module, used to determine a target microporous electrode that meets a preset blocking condition according to the seepage state; A parameter adjustment module, used for adjusting the output parameters of the liquid pumping device; The hole blocking and unblocking module is used to control the liquid pumping device to pump out the conductive liquid according to the adjusted output parameters to unblock the target microporous electrode.
19. The dredging device according to claim 18, characterized in that: The parameter adjustment module increases the output power and / or output flow rate of the liquid pumping device.
20. The dredging device according to claim 18, characterized in that: One end of the liquid pumping device is connected to the liquid storage device through a first liquid conduit, and the other end of the liquid pumping device is respectively connected to each microporous electrode in the electrode assembly through a plurality of second liquid conduits.
21. The dredging device according to claim 20, characterized in that: A one-way valve is provided at each of the second liquid guiding tubes, and the dredging device further comprises: The switch control module is used to control the one-way valve corresponding to the target microporous electrode to open and the one-way valves corresponding to the remaining microporous electrodes to close before the plugging and unblocking module unblocks the target microporous electrode.
22. The dredging device according to claim 18, characterized in that: The dredging device also includes: A wearing detection module, used to detect the wearing status of the massager; The hole blocking and unblocking module controls the liquid pumping device to pump out the conductive liquid according to the adjusted output parameters to unblock the target microporous electrode when the massager is not worn.
23. The dredging device according to any one of claims 18 to 22, characterized in that: When the electrode assembly includes at least two groups of microporous electrode pairs, the liquid seepage detection module detects the impedance value of each group of microporous electrode pairs in the electrode assembly, and determines the liquid seepage state of the corresponding microporous electrode pair according to the impedance value of each group of microporous electrode pairs.
24. The device according to claim 20 or 21, characterized in that The massager also includes a plurality of pressure sensors, which are respectively arranged in each second liquid conduit; the liquid seepage detection module uses the plurality of pressure sensors to respectively detect the pressure values in the second liquid conduits corresponding to each microporous electrode in the electrode assembly, and determines the liquid seepage state of the corresponding microporous electrode according to the pressure values in the second liquid conduits corresponding to each microporous electrode.
25. A massager, characterized in that: It comprises an electrode assembly for outputting electric pulse signals, a liquid storage device for storing conductive liquid, a liquid pumping device for conducting liquid, and a clearing device for the liquid seepage electrode of a massager as described in any one of claims 18 to 24, wherein the electrode assembly comprises at least one group of microporous electrode pairs.
26. A massager, characterized in that: include: processor; as well as A memory having executable codes stored thereon, which, when executed by the processor, causes the processor to execute the method according to any one of claims 1 to 17.
27. A non-transitory machine-readable storage medium having executable codes stored thereon, which, when executed by a processor, causes the processor to perform the method according to any one of claims 1 to 17.
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