Liquid infiltration control method and device of massage equipment, massage equipment and storage medium

By detecting the human body's impedance value and controlling the seepage of conductive liquid, the problem of current loss caused by excessive impedance between the electrodes and the skin in massage devices is solved, resulting in better massage effects and user experience.

CN115337548BActive Publication Date: 2025-12-16GUANGDONG SKG INTELLIGENT TECH CO LTD
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Patent Information

Application Number
CN202110528224.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2021-05-14
Publication Date
2025-12-16
Estimated Expiration
2041-05-14

AI Technical Summary

Technical Problem

If the dielectric constant of the interface layer between the electrodes of the massage device and the human skin is too high, the impedance will be large, the current will be lost during transmission, and the massage effect will be poor.

Method used

By detecting the human body impedance value after the user wears the massage device, the amount of conductive liquid seepage is determined based on the impedance value, and the conductive liquid is controlled to seep out through the microporous electrode, increasing the humidity of the human skin, reducing impedance, and improving the current transmission efficiency.

Benefits of technology

It reduces human body resistance, lowers current transmission loss, improves massage effect, reduces tingling sensation, and enhances user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to a liquid permeation control method and device of a massage device, the massage device and a storage medium. The massage device comprises a micropore electrode provided with micropores and a liquid storage device used for storing conductive liquid. The method comprises the following steps: determining a human body impedance value after a user wears the massage device; determining a liquid permeation amount of the conductive liquid according to the human body impedance value, wherein the liquid permeation amount is positively correlated with the human body impedance value; and controlling the conductive liquid to permeate through the micropores of the micropore electrode according to the determined liquid permeation amount. The scheme provided by the application can determine the liquid permeation amount through the human body impedance value, control the conductive liquid to permeate through the micropores of the micropore electrode according to the determined liquid permeation amount, so that the human body impedance can be reduced through the conductive liquid, the current transmission loss is reduced, and the massage effect is improved.
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Description

Technical Field

[0001] This application relates to the field of massage equipment technology, and in particular to a method, apparatus, massage equipment and storage medium for controlling leakage in a massage device. Background Technology

[0002] Massage devices are health care equipment designed to massage the whole body or specific areas of the body. With the continuous development of electronic technology and the improvement of living standards, various types of massage devices have emerged, such as massage chairs, neck massagers, and facial massagers. Massaging different parts of the body with these devices can relieve fatigue and protect or promote the user's health.

[0003] In related technologies, the electrostimulation massage function of massage devices achieves electropulse massage by outputting pulsed current to the user's body parts. However, due to the excessively high dielectric constant of the interface layer between the electrodes of the massage device and the human skin, the impedance is relatively large, resulting in significant current loss during transmission. Consequently, the current flowing through the skin and muscles is very small, leading to poor massage effects. Summary of the Invention

[0004] To address or partially address the problems existing in the related technologies, this application provides a method, device, massage device, and storage medium for controlling leakage in a massage device, which can reduce human body impedance, reduce current transmission loss, and improve the massage effect.

[0005] The first aspect of this application provides a method for controlling leakage in a massage device, the massage device including a microporous electrode with micropores and a liquid storage device for storing conductive liquid, the method comprising:

[0006] Determine the human body impedance value after the user wears the massage device;

[0007] The amount of leakage of the conductive liquid is determined based on the human body impedance value, wherein the amount of leakage is positively correlated with the human body impedance value;

[0008] Based on the determined permeation volume, the conductive liquid is controlled to permeate through the micropores of the microporous electrode.

[0009] In one embodiment, determining the human body impedance value after the user wears the massage device includes:

[0010] After detecting that the user is wearing the massage device, the detection electrodes detect the microcurrent or pulse current flowing through the human body;

[0011] The human body impedance value is determined based on the detected microcurrent or pulse current.

[0012] In one embodiment, determining the amount of leakage of the conductive liquid based on the human body impedance value includes: when the human body impedance value is within a preset range, determining the amount of leakage of the conductive liquid corresponding to the preset human body impedance value.

[0013] In one embodiment, the method further includes: when the human body impedance value is greater than a preset impedance value, controlling the massage device to stop massaging.

[0014] In one embodiment, the method further includes:

[0015] The amount of exudate determined based on the human body impedance value is taken as the first exudate value.

[0016] When the first seepage value is greater than or equal to the preset seepage value, the preset seepage value is used as the determined seepage amount.

[0017] In one embodiment, the method further includes:

[0018] The amount of exudate determined based on the human body impedance value is taken as the first exudate value.

[0019] When the first leakage value is less than the preset leakage value, the second leakage value is determined based on the humidity value and / or contact area of ​​the part of the microporous electrode that is in contact with the human body.

[0020] The amount of seepage is determined based on the first seepage value and the second seepage value.

[0021] In one embodiment, determining the amount of seepage based on the first seepage value and the second seepage value includes: when the sum of the first seepage value and the second seepage value is less than a preset seepage value, taking the sum of the first seepage value and the second seepage value as the determined amount of seepage.

[0022] In one embodiment, the method further includes: when the sum of the first seepage value and the second seepage value is greater than or equal to a preset seepage value, using the preset seepage value as the final seepage amount.

[0023] In one embodiment, the humidity value is obtained by a humidity sensor in the massage device.

[0024] In one embodiment, the humidity sensor is disposed on the microporous electrode of the massage device.

[0025] In one embodiment, the method further includes: using the amount of exudate determined based on the human body impedance value as a first exudate value;

[0026] Determine the user's heart rate;

[0027] The first effusion value is adjusted based on the heart rate to obtain a third effusion value as the determined effusion volume.

[0028] In one implementation, determining the user's heart rate includes:

[0029] The user's heart rate is determined by a heart rate monitor or motion sensor on the massage device; or, the user's heart rate is determined based on the heart rate detected by an external device.

[0030] In one embodiment, the method further includes:

[0031] The amount of exudate determined based on the human body impedance value is taken as the first exudate value.

[0032] Determine the massage voltage for the massage mode to be massaged;

[0033] The first permeation value is adjusted according to the massage voltage to obtain a fourth permeation value as the determined permeation amount.

[0034] In one embodiment, adjusting the first exudate value based on the massage voltage includes: increasing the first exudate value by a first preset value based on the massage voltage being greater than a preset voltage; or,

[0035] If the massage voltage is less than or equal to a preset voltage, the first exudate value is reduced by a second preset value.

[0036] In one embodiment, the method further includes:

[0037] Obtain user feedback information;

[0038] Obtain the correspondence between the leakage volume and the reference parameters corresponding to the feedback information;

[0039] Based on the user feedback information and the correspondence between the seepage volume and the reference parameters, the seepage volume is adjusted to obtain a fifth seepage value as the determined seepage volume.

[0040] A second aspect of this application provides a leakage control device for a massage device, the device comprising:

[0041] The detection module is used to determine the human body impedance value after the user wears the massage device;

[0042] The exudate calculation module is used to determine the amount of conductive liquid exudate based on the human body impedance value determined by the detection module, wherein the amount of exudate is positively correlated with the human body impedance value.

[0043] The seepage control module is used to control the conductive liquid to seep out through the micropores of the microporous electrode in the massage device based on the seepage amount determined by the seepage calculation module.

[0044] In one embodiment, the device further includes:

[0045] The first adjustment module is used to take the amount of exudate determined according to the human body impedance value as the first exudate value; when the first exudate value is greater than or equal to the preset exudate value, the preset exudate value is taken as the determined exudate amount.

[0046] In one embodiment, the device further includes:

[0047] The second adjustment module is used to take the amount of exudate determined according to the human body impedance value as the first exudate value; when the first exudate value is less than the preset exudate value, to determine the second exudate value according to the humidity value and / or contact area of ​​the microporous electrode in contact with the human body; and to determine the amount of exudate according to the first exudate value and the second exudate value.

[0048] In one embodiment, the device further includes:

[0049] The third adjustment module is used to take the amount of exudate determined according to the human body impedance value as the first exudate value; determine the user's heart rate; adjust the first exudate value according to the heart rate to obtain a third exudate value as the determined exudate amount.

[0050] In one embodiment, the device further includes:

[0051] The fourth adjustment module is used to take the amount of exudate determined according to the human body impedance value as the first exudate value; determine the massage voltage of the massage mode to be massaged; and adjust the first exudate value according to the massage voltage to obtain a fourth exudate value as the determined exudate amount.

[0052] In one embodiment, the device further includes:

[0053] The fifth adjustment module is used to obtain user feedback information; obtain the correspondence between the seepage volume and the reference parameters corresponding to the feedback information; adjust the seepage volume according to the user feedback information and the correspondence between the seepage volume and the reference parameters to obtain a fifth seepage value as the determined seepage volume.

[0054] A third aspect of this application provides a massage device, which includes: a microporous electrode with micropores, a liquid storage device for storing conductive liquid, and a seepage control device as described above.

[0055] A fourth aspect of this application provides an electronic device, comprising:

[0056] Processor; and

[0057] A memory that stores executable code, which, when executed by the processor, causes the processor to perform the method described above.

[0058] The fifth aspect of this application provides a non-transitory machine-readable storage medium having executable code stored thereon, which, when executed by a processor of an electronic device, causes the processor to perform the method described above.

[0059] The technical solution provided in this application may include the following beneficial effects:

[0060] The seepage control method provided in this application first determines the human body impedance value, then determines the seepage amount of conductive liquid based on the human body impedance value, and finally controls the conductive liquid to seep out through the micropores of the microporous electrode based on the determined seepage amount. This seepage of conductive liquid increases the moisture of the human skin, reduces human body impedance, reduces current loss during transmission, reduces stinging sensation caused by excessive impedance during massage, and improves the massage effect. Furthermore, seepage increases the contact area between the electrodes of the massage device and the human skin, which can also reduce electrical stimulation, improve the massage effect, and enhance the user experience.

[0061] Furthermore, the seepage control method provided in this application can adjust the seepage amount in various ways. For example, the seepage amount determined based on the human body impedance value can be used as a first seepage value; when the first seepage value is greater than or equal to a preset seepage value, the preset seepage value can be used as the determined seepage amount; or, when the first seepage value is less than the preset seepage value, a second seepage value can be determined based on the humidity value and / or contact area of ​​the microporous electrode in contact with the human body; the seepage amount can be determined based on the first seepage value and the second seepage value; or, the user's heart rate can be determined; the first seepage value can be adjusted based on the heart rate to obtain a third seepage value as the determined seepage amount; or, the massage voltage of the massage mode to be massaged can be determined; the first seepage value can be adjusted based on the massage voltage to obtain a fourth seepage value as the determined seepage amount; or, user feedback information can be obtained; the correspondence between the seepage amount and reference parameters corresponding to the feedback information can be obtained; the seepage amount can be adjusted based on the user feedback information and the correspondence between the seepage amount and reference parameters to obtain a fifth seepage value as the determined seepage amount. By combining various parameters to adjust the amount of exudate, the adjustment of the amount of exudate can be made more accurate, which can effectively and precisely control the amount of exudate, avoid waste of resources, and further improve the massage effect.

[0062] It should be understood that the above general description and the following detailed description are exemplary and explanatory only, and do not limit this application. Attached Figure Description

[0063] The above and other objects, features and advantages of this application will become more apparent from the more detailed description of exemplary embodiments of this application taken in conjunction with the accompanying drawings, wherein the same reference numerals generally represent the same components in the exemplary embodiments of this application.

[0064] Figure 1 This is a perspective structural diagram of a massage device shown in an embodiment of this application;

[0065] Figure 2 This is a schematic flowchart illustrating a method for controlling leakage in a massage device according to an embodiment of this application;

[0066] Figure 3 This is a schematic flowchart illustrating a method for controlling leakage in a massage device according to another embodiment of this application;

[0067] Figure 4 This is a schematic flowchart illustrating a method for controlling leakage in a massage device according to another embodiment of this application;

[0068] Figure 5 This is a schematic flowchart illustrating a method for controlling leakage in a massage device according to another embodiment of this application;

[0069] Figure 6 This is a schematic flowchart illustrating a method for controlling leakage in a massage device according to another embodiment of this application;

[0070] Figure 7 This is a schematic flowchart illustrating a method for controlling leakage in a massage device according to another embodiment of this application;

[0071] Figure 8 This is a schematic flowchart illustrating a method for controlling leakage in a massage device according to another embodiment of this application;

[0072] Figure 9 This is a schematic diagram of the structure of a seepage control device shown in an embodiment of this application;

[0073] Figure 10 This is another structural schematic diagram of a seepage control device shown in an embodiment of this application;

[0074] Figure 11 This is a structural block diagram of a massage device shown in an embodiment of this application;

[0075] Figure 12 This is a schematic diagram of the structure of an electronic device shown in an embodiment of this application. Detailed Implementation

[0076] Embodiments of this application will now be described in more detail with reference to the accompanying drawings. While embodiments of this application are shown in the drawings, it should be understood that this application may be implemented in various forms and should not be limited to the embodiments set forth herein. Rather, these embodiments are provided to make this application more thorough and complete, and to fully convey the scope of this application to those skilled in the art.

[0077] The terminology used in this application is for the purpose of describing particular embodiments only and is not intended to be limiting of the application. The singular forms “a,” “the,” and “the” used in this application and the appended claims are also intended to include the plural forms unless the context clearly indicates otherwise. It should also be understood that the term “and / or” as used herein refers to and includes any or all possible combinations of one or more of the associated listed items.

[0078] It should be understood that although the terms "first," "second," "third," etc., may be used in this application to describe various information, this information should not be limited to these terms. These terms are only used to distinguish information of the same type from one another. For example, without departing from the scope of this application, first information may also be referred to as second information, and similarly, second information may also be referred to as first information. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this application, "multiple" means two or more, unless otherwise explicitly specified.

[0079] In related technologies, the electrostimulation massage function of massage devices achieves electropulse massage by outputting pulsed current to the human skin. However, due to the excessively high dielectric constant of the interface layer between the electrodes of the massage device and the human skin, the impedance is relatively large, resulting in significant current loss during transmission and thus poor massage effect.

[0080] To address the aforementioned issues, this application provides a method for controlling leakage in a massage device. This method reduces the impedance between the electrodes of the massage device and human skin, thereby reducing current loss during transmission and improving the massage effect.

[0081] The technical solutions of the embodiments of this application are described in detail below with reference to the accompanying drawings.

[0082] In this embodiment, the massage device can be a wearable massager, such as a neck massager, eye massager, or waist massager. For example, a neck massager will be used as an example for explanation.

[0083] See Figure 1The massage device may include a microporous electrode 10 with micropores, a liquid storage device 20 for storing conductive liquid, and a massage device body 30. The liquid storage device 20 may be fixedly connected to the massage device body 30 or detachably connected to the massage device body 30. The microporous electrode 10 can be connected via a liquid guide tube ( Figure 1 (Not shown) is connected to the liquid storage device 20. The microporous electrode 10 can output current pulse signals to electrically stimulate the skin, achieving a massage effect. Additionally, conductive liquid seeps out through the micropores. The liquid storage device 20 stores the conductive liquid. When preset conditions are met, the conductive liquid seeps out through the micropores of the microporous electrode 10, improving the contact between the skin and the electrode, increasing skin moisture, reducing skin resistance, and enhancing the massage effect. In this embodiment, the microporous electrode 10 can be of various shapes, including but not limited to: a microporous electrode head, a microporous electrode sheet, or a microporous electrode disk.

[0084] Understandable, Figure 1 The diagram shown represents only one structural form of the neck massager; the massager in this embodiment is not limited to any particular type. Figure 1 The structural form shown may also be other structural forms, and the embodiments of this application are not limited thereto.

[0085] Figure 2 This is a schematic flowchart illustrating a method for controlling leakage in a massage device according to an embodiment of this application.

[0086] See Figure 2 This embodiment provides a method for controlling leakage in a massage device, the method comprising:

[0087] Step S201: Determine the human body impedance value after the user wears the massage device.

[0088] It should be noted that the above human body impedance values ​​may include the human body impedance values ​​between microporous electrodes.

[0089] Among them, after detecting that the user is wearing the massage device, a detection microcurrent (when the massage device is not outputting a pulse current for massage) or pulse current can be output through the micro-hole electrode, and the detection microcurrent or pulse current flowing through the human body can be detected; the human body impedance value can be determined based on the magnitude of the detection microcurrent or pulse current.

[0090] Step S202: Determine the amount of conductive liquid leakage based on the human body impedance value, wherein the amount of leakage is positively correlated with the human body impedance value.

[0091] Specifically, when the human body impedance value is within a preset range, the amount of conductive liquid that permeates corresponding to the preset human body impedance value is determined. The amount of permeation is positively correlated with the human body impedance value; the higher the human body impedance value, the more permeation is required, and the lower the human body impedance value, the less permeation is required.

[0092] Step S203: Based on the determined permeation volume, control the conductive liquid to permeate through the micropores of the microporous electrode.

[0093] Specifically, the output of conductive liquid seeping through the micropores of the microporous electrode is controlled according to a determined permeation rate. The conductive liquid in the storage device is transferred to the microporous electrode through a liquid guide tube and seeps out from the micropores of the microporous electrode according to the determined permeation rate.

[0094] The seepage control method provided in this application first determines the human body impedance value, then determines the seepage amount of conductive liquid based on the human body impedance value, and finally controls the conductive liquid to seep out through the micropores of the microporous electrode based on the determined seepage amount. This seepage of conductive liquid increases the moisture of the human skin, reduces human body impedance, reduces current loss during transmission, reduces stinging sensation caused by excessive impedance during massage, and improves the massage effect. Furthermore, seepage increases the contact area between the electrodes of the massage device and the human skin, which can also reduce electrical stimulation, improve the massage effect, and enhance the user experience.

[0095] Figure 3 This is a schematic flowchart illustrating a method for controlling leakage in a massage device according to another embodiment of this application. Figure 3 relatively Figure 2 The scheme of this application is described in more detail.

[0096] See Figure 3 This embodiment provides a method for controlling leakage in a massage device, the method comprising:

[0097] Step S301: Determine the human body impedance value after the user wears the massage device.

[0098] For example, after detecting that a user is wearing a massage device, a detection microcurrent (when the massage device is not outputting a pulse current for massage) or a pulse current can be output through a micro-hole electrode, and the detection microcurrent or pulse current flowing through the human body can be detected; based on the magnitude of the detection microcurrent or pulse current, the human body impedance value can be determined.

[0099] For example, BIA (Bio-impedance analysis) can be used to determine human body impedance. Biological tissues contain many cells, and between these cells are numerous fluids, which can be considered electrolytes. When a low-frequency or direct current is applied through biological tissue, the current bypasses the cells and flows through the extracellular fluid. When the frequency of the current flowing through the biological tissue increases, because the equivalent capacitance of the cell membrane decreases, some current will penetrate the cell membrane and flow through the intracellular fluid. Biological tissues have higher impedance at lower frequencies and lower impedance at higher frequencies; this change in impedance accurately reflects the capacitive property of the cell membrane in biological tissues. At least two detection electrodes can also be set in a massage device. A microcurrent is output through one detection electrode, flows through the human body, and enters through the other detection electrode, thus detecting the human body impedance value.

[0100] Step S302: When the human body impedance value is within a preset range, determine the amount of conductive liquid seepage corresponding to the preset human body impedance value.

[0101] This application embodiment can set a preset range for human body impedance values. Within this preset range, different human body impedance values ​​correspond to different amounts of conductive liquid seepage. This preset range can be, for example, 1000-2000Ω, but is not limited to this. When the human body impedance value is within the preset range, the amount of conductive liquid seepage corresponding to the preset human body impedance value can be determined. The seepage amount is positively correlated with the human body impedance value; the higher the human body impedance value, the more seepage is required, and the lower the human body impedance value, the less seepage is required. Therefore, when setting different amounts of conductive liquid seepage for different human body impedance values, the seepage amount will also be adaptively increased or decreased as the human body impedance value increases or decreases to better meet the requirements of the seepage mechanism. For example, when the human body impedance value in the preset range is 1200Ω, the corresponding preset seepage value is 0.06ml; when the human body impedance value is 1300Ω, the corresponding preset seepage value is 0.07ml, and so on.

[0102] Step S303: Based on the determined permeation volume, control the conductive liquid to permeate through the micropores of the microporous electrode.

[0103] After determining the permeation volume, the output of conductive liquid permeating through the micropores of the microporous electrode from the liquid storage device is controlled, with the permeation occurring through the micropores of the microporous electrode. The microporous electrode from which the conductive liquid permeates can be in a massage output state to avoid wasting the conductive liquid output.

[0104] The conductive liquid in this application embodiment can refer to a liquid with conductive properties. The function of the conductive liquid includes conducting the pulsed current output from the microporous electrode to the human body to provide massage therapy through electrical stimulation. Optionally, in some embodiments of this application, the conductive liquid may include a massage liquid with pharmacological functions, such as massage oil. Using a massage liquid with pharmacological functions as the conductive liquid can further enhance the massage effect through the medicinal properties of the massage liquid itself.

[0105] Step S304: When the human body impedance value is greater than the preset impedance value, control the massage device to stop massaging.

[0106] When the human body impedance value is greater than the preset impedance value, such as the maximum impedance value in the preset range, it indicates that the massage device may be in a state of not being worn correctly or in an abnormal state. The massage device can be controlled to stop the massage and stop the leakage function to avoid wasting conductive liquid.

[0107] It should be noted that there is no necessary sequential relationship between steps S304 and S302.

[0108] In this embodiment, when the human body impedance value is within a preset range, the amount of conductive liquid corresponding to the preset human body impedance value is determined. Then, based on the determined amount of liquid, the conductive liquid is controlled to seep out through the micropores of the microporous electrode. The seeping conductive liquid increases the moisture of the human skin, reduces human body impedance, reduces current loss during transmission, and reduces the stinging sensation caused by excessive impedance during massage. Additionally, the seepage increases the contact area between the massage device's electrodes and the human skin, reducing electrical stimulation and thus improving the massage effect and user experience. Furthermore, when the human body impedance value exceeds the preset impedance value, the massage device is stopped, preventing waste of conductive liquid when the user is not wearing or is not wearing the massage device correctly.

[0109] Figure 4 This is a schematic flowchart illustrating a method for controlling leakage in a massage device according to another embodiment of this application. Figure 4 Compared to Figure 3 This adds a reference factor to the preset seepage value.

[0110] See Figure 4 This embodiment provides a method for controlling leakage in a massage device, the method comprising:

[0111] Step S401: Determine the human body impedance value after the user wears the massage device.

[0112] This step S401 can be found in the description of step S301, and will not be repeated here.

[0113] Step S402: Determine the amount of conductive liquid seepage based on the human body impedance value.

[0114] Specifically, when the human body impedance value is within a preset range, the amount of conductive liquid that permeates corresponding to the preset human body impedance value is determined. The amount of permeation is positively correlated with the human body impedance value; the higher the human body impedance value, the more permeation is required, and the lower the human body impedance value, the less permeation is required.

[0115] Step S403: The amount of exudate determined based on the human body impedance value is taken as the first exudate value. When the first exudate value is greater than or equal to the preset exudate value, the preset exudate value is taken as the determined exudate amount.

[0116] In this embodiment, a preset seepage value T can be set. The preset seepage value T can be the maximum seepage value of the storage device, for example, a maximum seepage value of 0.085 ml. The seepage volume determined based on the human body impedance value is used as a first seepage value L and compared with the preset seepage value T. To avoid the final seepage volume exceeding the maximum seepage value, when the first seepage value L is greater than the preset seepage value T (i.e., L>T), since it exceeds the maximum seepage value of the conductive liquid, the preset seepage value T is selected as the determined seepage volume, i.e., the final seepage volume. When the first seepage value L is equal to the preset seepage value T (i.e., L=T), the preset seepage value T can also be directly selected as the determined seepage volume, i.e., the final seepage value. For example, if the preset seepage value T is 0.085 ml, and the first seepage value L is 0.09 ml, which is greater than the preset seepage value T, then the seepage volume of the conductive liquid is determined to be 0.085 ml.

[0117] Step S404: Based on the determined permeation volume, control the conductive liquid to permeate through the micropores of the microporous electrode.

[0118] This step S404 can be found in the description of step S303, and will not be repeated here.

[0119] Figure 5 This is a schematic flowchart illustrating a method for controlling leakage in a massage device according to another embodiment of this application. Figure 5 Compared to Figure 4 This adds a reference factor to the humidity value and / or contact area of ​​the microporous electrode in contact with the human body.

[0120] See Figure 5 The method includes:

[0121] Step S501: Determine the human body impedance value after the user wears the massage device.

[0122] This step S501 can be found in the description of step S301, and will not be repeated here.

[0123] Step S502: Determine the amount of conductive liquid seepage based on the human body impedance value.

[0124] This step S502 can be found in the description of step S402, and will not be repeated here.

[0125] Step S503: The amount of exudate determined based on the human body impedance value is taken as the first exudate value. When the first exudate value is less than the preset exudate value, the second exudate value is determined based on the humidity value and / or contact area of ​​the microporous electrode in contact with the human body.

[0126] In this embodiment, a preset seepage value T can be set. The preset seepage value T can be the maximum seepage value of the liquid storage device. The humidity value of the area where the microporous electrode contacts the human body includes, but is not limited to, air humidity or human skin humidity, or it can be a humidity value determined jointly by air humidity and human skin humidity.

[0127] In this embodiment, the microporous electrode can be of various shapes, including but not limited to: microporous electrode heads, microporous electrode sheets, or microporous electrode disks. The same type of microporous electrode can exist in the same massage device, for example, at least two or more microporous electrode heads; at least two types of microporous electrodes can also exist in the same massage device, for example, microporous electrode heads and microporous electrode sheets can coexist. Furthermore, the number of different types of microporous electrodes on the same massage device can be the same or different; for example, the number of microporous electrode heads may be greater than the number of microporous electrode sheets.

[0128] The amount of exudate determined based on the human body impedance value is used as the first exudate value L and compared with the preset exudate value T. When the first exudate value L is less than the preset exudate value T, a second exudate value L1 is further determined based on the humidity value and / or contact area of ​​the microporous electrode in contact with the human body. The second exudate value L1 can be understood as an adjustment value.

[0129] The second leakage value L1 is determined based on at least one parameter, namely the humidity value and the contact area. For example, the second leakage value L1 can be determined based on the humidity value, or based on the contact area, or based on both the humidity value and the contact area.

[0130] The humidity level can be detected by installing a humidity sensor on the massage device, such as on the microporous electrodes or at other locations on the device. The contact area can be detected by measuring the number and size of the microporous electrodes in massage output mode, or it can be directly measured using other sensors.

[0131] Step S504: When the sum of the first leakage value and the second leakage value is less than the preset leakage value, use the sum of the first leakage value and the second leakage value as the determined leakage volume; when the sum of the first leakage value and the second leakage value is greater than or equal to the preset leakage value, use the preset leakage value as the determined leakage volume.

[0132] After obtaining the second leakage value L1, add the first leakage value L and the second leakage value L1, and determine whether the sum of the first leakage value L and the second leakage value L1 is greater than or equal to the preset leakage value T.

[0133] The preset leakage value T is the maximum leakage value of the exuded conductive liquid. When the sum of the first leakage value L and the second leakage value L1 is less than the preset leakage value T (i.e., L + L1 < T), it is determined that the sum of the first leakage value L and the second leakage value L1 is the determined leakage volume, that is, the final leakage volume. For example, if the preset leakage value T is 0.085 ml, the first leakage value L is 0.06 ml, the second leakage value L1 is 0.005 ml, and L + L1 is 0.065 ml, which is less than the preset leakage value T, the leakage volume of the conductive liquid is determined to be 0.065 ml.

[0134] When the sum of the first leakage value L and the second leakage value L1 is greater than or equal to the preset leakage value T (i.e., L + L1 ≥ T), to avoid the final leakage volume being greater than the maximum leakage value, it is determined that the preset leakage value T is the determined leakage volume, that is, the final leakage volume. For example, if the preset leakage value T is 0.085 ml, the first leakage value L is 0.06 ml, the second leakage value L1 is 0.03 ml, and L + L1 is 0.09 ml, which is greater than the preset leakage value T, the leakage volume of the conductive liquid is determined to be 0.085 ml.

[0135] Step S505: Control the conductive liquid to leak out through the micropores of the microporous electrode according to the determined leakage volume.

[0136] For the description of this step S505, reference can be made to the description in step S303, which will not be elaborated here.

[0137] The method provided in this embodiment uses the leakage volume determined according to the human impedance value as the first leakage value, and determines the second leakage value according to the humidity value and / or contact area of the part where the microporous electrode contacts the human body. By determining the final leakage volume based on the relationship among the first leakage value, the second leakage value, and the preset leakage value, the leakage volume can be adjusted more accurately, and a more targeted output of the conductive liquid can be provided.

[0138] Figure 6 It is a schematic flowchart of a leakage control method for a massage device shown in another embodiment of the present application. Figure 6 Relative to Figure 4 , the reference factor of heart rate is added.

[0139] See Figure 6 This embodiment provides a method for controlling leakage in a massage device, the method comprising:

[0140] Step S601: Determine the human body impedance value after the user wears the massage device.

[0141] This step S601 can be found in the description of step S301, and will not be repeated here.

[0142] Step S602: Determine the amount of conductive liquid seepage based on the human body impedance value.

[0143] This step S602 can be found in the description of step S402, and will not be repeated here.

[0144] Step S603: The amount of exudate determined based on the human body impedance value is taken as the first exudate value.

[0145] Step S604: Determine the user's heart rate.

[0146] Among these methods, the user's heart rate can be determined using a heart rate monitor or motion sensor on the massage device.

[0147] A user's heart rate can be directly collected and measured, for example, by using a heart rate monitor on a massage device to detect the pulse; it can also be obtained through the user's movement status information, for example, by using a motion sensor on a massage device to collect the user's movement status and determine the heart rate based on the movement status; or it can be obtained by receiving the user's heart rate detected by other devices, such as a wristband worn by the user, and thus determining the user's heart rate based on the heart rate detected by other devices, such as external devices.

[0148] Step S605: Adjust the first effusion value according to the heart rate to obtain the third effusion value as the determined effusion volume.

[0149] To enable the permeation mechanism to provide targeted conductive liquid output for users in different states, thereby enhancing the massage effect, the first permeation value L can be adjusted based on the heart rate to obtain a third permeation value as the determined permeation volume. Different heart rates correspond to different adjustment amounts. When the heart rate is fast, it indicates that the user is in an active state, and the user's skin may be sweating. Therefore, the first permeation value L can be processed based on the specific heart rate value, for example, by reducing the permeation volume from the first permeation value L, to obtain the third permeation value as the determined permeation volume, which is also the final permeation volume.

[0150] Step S606: Based on the determined permeation volume, control the conductive liquid to permeate through the micropores of the microporous electrode.

[0151] This step S606 can be found in the description of step S303, and will not be repeated here.

[0152] The method provided in this application embodiment obtains the user's heart rate and adjusts the permeation volume according to the heart rate to obtain the final permeation volume. It then controls the permeation of conductive liquid based on the final permeation volume, enabling the permeation mechanism to provide targeted massage output for users in different states, thereby meeting the permeation volume requirements of users in various states and improving the massage effect.

[0153] Figure 7 This is a schematic flowchart illustrating a method for controlling leakage in a massage device according to another embodiment of this application. Figure 7 Compared to Figure 4 This adds a reference factor for the massage voltage.

[0154] See Figure 7 This embodiment provides a seepage method, which includes:

[0155] Step S701: Determine the human body impedance value after the user wears the massage device.

[0156] This step S701 can be found in the description of step S301, and will not be repeated here.

[0157] Step S702: Determine the amount of conductive liquid seepage based on the human body impedance value.

[0158] This step S702 can be found in the description of step S402, and will not be repeated here.

[0159] Step S703: The amount of exudate determined based on the human body impedance value is taken as the first exudate value.

[0160] Step S704: Determine the massage voltage for the massage mode to be massaged.

[0161] Specifically, based on the massage mode selected by the user, the massage voltage of the massage mode can be determined. This massage voltage can be the output voltage of the microporous electrode.

[0162] Step S705: Adjust the first exudate value according to the massage voltage to obtain the fourth exudate value as the determined exudate volume.

[0163] Because changes in massage voltage cause changes in the body's impedance, to ensure the massage device responds sensitively and adapts to various operating conditions, the amount of fluid leakage can be fine-tuned based on the massage voltage. For example, the first leakage value L can be adjusted according to the massage voltage. If the massage voltage is greater than a preset voltage, the first leakage value L is increased by a first preset value, for example, by 0.005 ml; or, if the massage voltage is less than or equal to the preset voltage, the first leakage value L is decreased by a second preset value, for example, by 0.005 ml. In other words, if the massage voltage is greater than the preset voltage, the leakage volume is increased, and the adjustment value is determined by the difference between the massage voltage and the preset voltage; the larger the difference, the larger the adjustment, and vice versa.

[0164] In this embodiment, a preset voltage can be set for the microporous electrode, and the output voltage of the microporous electrode can be compared with the preset voltage. When the massage voltage is greater than the preset voltage, the current is larger, and current transmission loss is more likely to occur, which can increase the amount of fluid permeation; when the output voltage is less than or equal to the preset voltage, the current is smaller, current transmission loss is smaller, and excessive fluid permeation can easily affect the massage experience, so the amount of fluid permeation can be reduced.

[0165] A fourth permeation value can be obtained by increasing the first permeation value L based on whether the massage voltage is greater than or equal to the preset voltage, or by decreasing the first permeation value L based on whether the massage voltage is less than or equal to the preset voltage. Using the fourth permeation value as the fixed permeation amount, i.e., the final permeation amount, allows for adjustment of the permeation amount based on the relationship between the massage voltage and the output voltage. This makes the permeation mechanism more suitable for the use of the massage device, resulting in a better massage effect.

[0166] Step S706: Based on the determined permeation volume, control the conductive liquid to permeate through the micropores of the microporous electrode.

[0167] This step S706 can be found in the description of step S303, and will not be repeated here.

[0168] The method provided in this application adjusts the amount of seepage based on the massage voltage. When the massage voltage is greater than a preset voltage, the first seepage value is increased; or when the massage voltage is less than or equal to the preset voltage, the first seepage value is decreased. The amount of increase or decrease is determined by the difference between the output voltage and the preset voltage. This allows the amount of seepage to be more adapted to the output of the massage device, effectively and precisely controlling the amount of seepage to meet the massage output requirements and obtain a better massage effect.

[0169] Figure 8 This is a schematic flowchart illustrating a method for controlling leakage in a massage device according to another embodiment of this application. Figure 8 Compared to Figure 4 This increases the reference factors for user feedback.

[0170] See Figure 8 This embodiment provides a method for controlling leakage in a massage device, the method comprising:

[0171] Step S801: Determine the human body impedance value after the user wears the massage device.

[0172] This step S801 can be found in the description of step S301, and will not be repeated here.

[0173] Step S802: Determine the amount of conductive liquid seepage based on the human body impedance value.

[0174] This step S802 can be found in the description of step S402, and will not be repeated here.

[0175] Step S803: Based on the determined permeation volume, control the conductive liquid to permeate through the micropores of the microporous electrode.

[0176] This step S803 can be found in the description of step S303, and will not be repeated here.

[0177] Step S804: Obtain user feedback information and obtain the correspondence between the exudate volume and the reference parameters corresponding to the user feedback information.

[0178] The embodiments of this application can establish an exudation mechanism for each user, that is, adjust the exudation amount based on user feedback.

[0179] Because each user's experience with the percolation mechanism varies, it can be adjusted for each user to suit their individual habits and provide a more targeted massage output. Therefore, after applying percolation, user feedback can be collected, including obtaining user feedback information and the correspondence between the percolation volume and reference parameters. For example, by collecting the user's description or evaluation of the percolation mechanism's effectiveness, and combining this with the obtained correspondence between the actual percolation volume and reference parameters during the massage, a comprehensive feedback on the percolation mechanism can be obtained. This feedback allows for subsequent fine-tuning of the preset percolation mechanism.

[0180] User feedback can be obtained through the function buttons on the massage device. For example, it could be "Too much fluid, press the first button," "Too little fluid, press the second button," or "Sufficient fluid, press the third button." In one embodiment, the function buttons can be integrated into the output control buttons. When the feedback function is activated, for example, the first button could be the electrode function button, the second button could be the fluid dispensing function button, and the third button could be the pause massage button.

[0181] Step S805: Based on user feedback and the correspondence between the seepage volume and the reference parameters, adjust the seepage volume to obtain the fifth seepage value as the determined seepage volume.

[0182] Based on user feedback and the correspondence between the leakage volume and reference parameters, the leakage volume is adjusted to obtain a fifth leakage value. This value is used to fine-tune the leakage volume in subsequent massage outputs, so that the final leakage volume meets the user's expectations as much as possible. It also enables precise control of the leakage volume, avoiding resource waste and poor massage experience. Furthermore, it makes the leakage function of the massage device more accurate and improves the practicality of the massage device.

[0183] Step S806: Based on the determined permeation volume, control the conductive liquid to permeate through the micropores of the microporous electrode.

[0184] This step S806 can be found in the description of step S303, and will not be repeated here.

[0185] In this embodiment of the application, considering the personalized needs of massage devices, a feedback method is provided. By obtaining user feedback information and the correspondence between the leakage volume and reference parameters corresponding to the user feedback information, the preset leakage mechanism is fine-tuned based on the feedback to establish a user's personal leakage mechanism. This makes the fine-tuned leakage mechanism more in line with the user's personal massage habits, meets the personalized needs of the massage device, and can effectively and accurately control the leakage volume, avoiding resource waste or poor massage experience due to insufficient leakage volume.

[0186] It should be noted that the above-mentioned adjustment of the amount of conductive liquid seepage based on user feedback can be applied to the same user, and can be adjusted after each massage if the adjustment conditions are met, so that the user can use the previously adjusted amount of seepage for auxiliary massage the next time.

[0187] It should be noted that, Figures 5-8 The example given is an adjustment of the leakage volume by considering different reference factors such as humidity value and / or contact area, heart rate, massage voltage, and user feedback. However, this is not the only approach. Two or more of these reference factors can be considered together to adjust the leakage volume, and the principle is similar.

[0188] Corresponding to the aforementioned application function implementation method embodiments, this application also provides a leakage control device for a massage device, a massage device, and corresponding embodiments.

[0189] Figure 9 This is a schematic diagram of the structure of a leakage control device for a massage device shown in an embodiment of this application.

[0190] See Figure 9The leakage control device can be used to perform any of the leakage control methods described in the foregoing embodiments. The massage device may include a microporous electrode for outputting electrical pulse signals and a reservoir for storing conductive liquid.

[0191] The seepage control device 90 includes: a detection module 910, a seepage calculation module 920, and a seepage control module 930.

[0192] The detection module 910 is used to determine the human body impedance value after the user wears the massage device. After detecting that the user is wearing the massage device, the detection module 910 can output a detection microcurrent (when the massage device is not outputting a pulse current for massage) or a pulse current through a micro-hole electrode, and detect the detection microcurrent or pulse current flowing through the human body; based on the magnitude of the detection microcurrent or pulse current, the human body impedance value is determined.

[0193] The seepage calculation module 920 is used to determine the amount of conductive liquid seepage based on the human body impedance value determined by the detection module 910, wherein the seepage amount is positively correlated with the human body impedance value. The higher the human body impedance value, the more seepage is required, and the lower the human body impedance value, the less seepage is required.

[0194] The seepage control module 930 is used to control the seepage of conductive liquid through the micropores of the microporous electrode in the massage device based on the seepage amount determined by the seepage calculation module 920.

[0195] Figure 10 This is another structural schematic diagram of a leakage control device for a massage device shown in an embodiment of this application.

[0196] See Figure 10 The device can be used to perform any of the seepage control methods described in the foregoing embodiments. The massage device may include a microporous electrode for outputting electrical pulse signals and a reservoir for storing conductive liquid.

[0197] The seepage control device 90 includes: a detection module 910, a seepage calculation module 920, a seepage control module 930, a first adjustment module 940, a second adjustment module 950, a third adjustment module 960, a fourth adjustment module 970, and a fifth adjustment module 980.

[0198] The functions of the detection module 910, the seepage calculation module 920, and the seepage control module 930 can be found in [reference]. Figure 9 The description in the text will not be repeated here.

[0199] The first adjustment module 940 is used to take the amount of exudate determined by the exudate calculation module 920 based on the human body impedance value as the first exudate value; when the first exudate value is greater than or equal to the preset exudate value, the preset exudate value is taken as the determined exudate amount.

[0200] The second adjustment module 950 is used to take the amount of seepage determined by the seepage calculation module 920 based on the human body impedance value as the first seepage value; when the first seepage value is less than the preset seepage value, it determines the second seepage value based on the humidity value and / or contact area of ​​the microporous electrode in contact with the human body; and determines the seepage amount based on the first and second seepage values. By determining the second seepage value based on the humidity value and / or contact area of ​​the microporous electrode in contact with the human body, and determining the final seepage amount through the relationship between the first seepage value, the second seepage value, and the preset seepage value, the seepage amount can be adjusted more accurately, providing a more targeted conductive liquid output.

[0201] The third adjustment module 960 is used to take the amount of seepage determined by the seepage calculation module 920 based on the human body impedance value as the first seepage value; determine the user's heart rate; and adjust the first seepage value according to the heart rate to obtain a third seepage value as the determined seepage amount. By obtaining the user's heart rate and adjusting the seepage amount according to the heart rate, the final seepage amount is obtained, and the seepage of conductive liquid is controlled according to the final seepage amount. This enables the seepage mechanism to provide targeted massage output for users in different states, thereby meeting the seepage amount needs of users in various states and improving the massage effect.

[0202] The fourth adjustment module 970 is used to take the amount of exudate determined by the exudate calculation module 920 based on the human body impedance value as the first exudate value; determine the massage voltage of the massage mode to be massaged; and adjust the first exudate value according to the massage voltage to obtain the fourth exudate value as the determined exudate amount.

[0203] The fifth adjustment module 980 is used to acquire user feedback information; acquire the correspondence between the leakage volume and reference parameters corresponding to the feedback information; and adjust the leakage volume based on the user feedback information and the correspondence between the leakage volume and reference parameters to obtain a fifth leakage value as the determined leakage volume. Using the fifth adjustment module 980, the leakage volume can be tailored to the user's individual usage habits, enhancing the massage experience. It also allows for precise control of the leakage volume, avoiding resource waste and poor massage experience, and making the leakage function more accurate and practical.

[0204] The seepage control device provided in this embodiment increases the humidity of human skin by seeping out conductive liquid, reduces human body impedance, reduces current loss during transmission, and reduces the stinging sensation caused by excessive impedance during massage, enabling the massage device to perform its massage function normally and improving the massage effect. In addition, seepage can increase the contact area between the electrodes of the massage device and human skin, which can also reduce electrical stimulation, improve the massage effect, and enhance the user experience.

[0205] Figure 11 This is a structural block diagram of a massage device shown in an embodiment of this application.

[0206] This massage device can be used to perform any of the leakage control methods for massage devices described in the foregoing embodiments.

[0207] like Figure 11 As shown, the massage device 100 may include: a microporous electrode 1010, a liquid storage device 1020, and a seepage control device 1030 as described above. The structure and function of the seepage control device 1030 can be found in [reference needed]. Figure 9 and Figure 10 The description in the text.

[0208] The microporous electrode 1010 is used to output electrical pulse signals and also to exude conductive liquid through the micropores; the liquid storage device 1020 is used to store the conductive liquid; the liquid exudation control device 1030 is used to determine the human body impedance value after the user wears the massage device, determine the amount of liquid exudation based on the human body impedance value, and control the conductive liquid in the liquid storage device 1020 to exude through the micropores of the microporous electrode 1010 based on the amount of liquid exudation.

[0209] In this embodiment, the microporous electrode 1010 is connected to the liquid storage device 1020 and the leakage control device 1030, respectively.

[0210] The microporous electrode 1010 may include at least one set of microporous electrodes for outputting electrical pulse signals to provide electrical stimulation massage. The microporous electrode 1010 may be equipped with a humidity sensor for acquiring the humidity value of human skin and transmitting it to the exudation control device 1030 for adjusting the amount of exudation.

[0211] In this embodiment, the liquid storage device 1020 and the microporous electrode 1010 can be connected via a liquid guide tube, allowing conductive liquid to be transferred to the microporous electrode 1010. The liquid storage device 1020 may include a liquid storage bottle or a liquid storage cavity within the massage device. Optionally, the liquid storage device 1020 may also include a liquid pump, which pressurizes the conductive liquid to pump the conductive liquid stored in the liquid storage device 1020 to the microporous electrode 1010, and / or pumps the conductive liquid located in the micropores of the microporous electrode 1010 to the human skin, making the transfer of conductive liquid more efficient.

[0212] In this embodiment, the conductive liquid may also include a medicinal component that has a massage-aiding effect, such as a liniment, which can provide both conductive function and massage-aiding effect.

[0213] The massage device provided in this embodiment detects the human body impedance at the point where the microporous electrode contacts the user through a seepage control device, determines the seepage amount, and controls the conductive liquid to seep out through the micropores of the microporous electrode based on the determined seepage amount. The seeping conductive liquid increases the moisture of the human skin, reduces human body impedance, reduces current loss during transmission, and minimizes the stinging sensation caused by excessive impedance during massage, allowing the massage device to function properly and improving the massage effect.

[0214] Regarding the apparatus in the above embodiments, the specific manner in which each module performs its operation has been described in detail in the embodiments related to the method, and will not be elaborated further here.

[0215] Figure 12 This is a schematic diagram of the structure of an electronic device shown in an embodiment of this application.

[0216] See Figure 12 The electronic device 1200 includes a memory 1210 and a processor 1220. The electronic device 1200 may be, for example, a massage device. The memory 1210 and the processor 1220 are communicatively connected. It is understood that... Figure 12 The structure of the electronic device 1200 shown does not constitute a limitation on the embodiments of this application. It may include more components than shown, such as microporous electrodes, communication interfaces (such as Bluetooth modules, WIFI modules, etc.), input / output interfaces (such as buttons, touch screens, speakers, microphones, etc.), sensors, etc. Among them:

[0217] The processor 1220 can be a Central Processing Unit (CPU), or other general-purpose processors, digital signal processors (DSPs), application-specific integrated circuits (ASICs), field-programmable gate arrays (FPGAs), or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc. The general-purpose processor can be a microprocessor or any conventional processor.

[0218] Memory 1210 may include various types of storage units, such as system memory, read-only memory (ROM), and permanent storage devices. ROM may store static data or instructions required by processor 1220 or other modules of the computer. Permanent storage devices may be read-write storage devices. Permanent storage devices may be non-volatile storage devices that retain stored instructions and data even when the computer is powered off. In some embodiments, permanent storage devices use mass storage devices (e.g., magnetic or optical disks, flash memory) as permanent storage devices. In other embodiments, permanent storage devices may be removable storage devices (e.g., floppy disks, optical drives). System memory may be a read-write storage device or a volatile read-write storage device, such as dynamic random access memory. System memory may store some or all of the instructions and data required by the processor during operation. Furthermore, memory 1210 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, memory 1210 may include a removable storage device that is readable and / or writable, such as a laser disc (CD), a read-only digital versatile optical disc (e.g., DVD-ROM, dual-layer DVD-ROM), a read-only Blu-ray disc, an ultra-high density optical disc, a flash memory card (e.g., SD card, mini SD card, Micro-SD card, etc.), a magnetic floppy disk, etc. Computer-readable storage media do not contain carrier waves or transient electronic signals transmitted wirelessly or via wired connections.

[0219] The memory 1210 stores executable code, which, when processed by the processor 1220, can cause the processor 1220 to execute part or all of the methods described above.

[0220] Furthermore, the method according to this application can also be implemented as a computer program or computer program product, which includes computer program code instructions for performing some or all of the steps in the method described above.

[0221] Alternatively, this application may be implemented as a non-transitory machine-readable storage medium (or computer-readable storage medium, or machine-readable storage medium) storing executable code (or computer program, or computer instruction code) thereon, which, when executed by a processor of an electronic device (or electronic device, server, etc.), causes the processor to perform part or all of the steps of the above-described method according to this application.

[0222] The various embodiments of this application have been described above. These descriptions are exemplary and not exhaustive, nor are they limited to the disclosed embodiments. Many modifications and variations will be apparent to those skilled in the art without departing from the scope and spirit of the described embodiments. The terminology used herein is chosen to best explain the principles, practical application, or improvement of the technology in the market, or to enable others skilled in the art to understand the embodiments disclosed herein.

Claims

1. A method for controlling leakage in a massage device, characterized in that, The massage device includes a microporous electrode with micropores and a liquid storage device for storing conductive liquid, and the method includes: Determine the human body impedance value after the user wears the massage device; The amount of leakage of the conductive liquid is determined based on the human body impedance value, wherein the amount of leakage is positively correlated with the human body impedance value; Based on the determined amount of seepage, the conductive liquid is controlled to seep out through the micropores of the microporous electrode, wherein the microporous electrode is in a massage output state.

2. The method according to claim 1, characterized in that, Determining the human body impedance value after the user wears the massage device includes: After detecting that the user is wearing the massage device, the device detects the microcurrent or pulse current flowing through the human body. The human body impedance value is determined based on the detected microcurrent or pulse current.

3. The method according to claim 1, characterized in that, The step of determining the amount of conductive liquid seepage based on the human body impedance value includes: When the human body impedance value is within a preset range, the amount of conductive liquid seeping into the preset human body impedance value is determined.

4. The method according to claim 3, characterized in that, The method further includes: When the human body impedance value is greater than the preset impedance value, the massage device is controlled to stop massaging.

5. The method according to claim 1, characterized in that, The method further includes: The amount of exudate determined based on the human body impedance value is taken as the first exudate value. When the first seepage value is greater than or equal to the preset seepage value, the preset seepage value is used as the determined seepage amount.

6. The method according to claim 1, characterized in that, The method further includes: The amount of exudate determined based on the human body impedance value is taken as the first exudate value. When the first leakage value is less than the preset leakage value, the second leakage value is determined based on the humidity value and / or contact area of ​​the part of the microporous electrode that is in contact with the human body. The amount of seepage is determined based on the first seepage value and the second seepage value.

7. The method according to claim 6, characterized in that, Determining the amount of seepage based on the first seepage value and the second seepage value includes: When the sum of the first seepage value and the second seepage value is less than a preset seepage value, the sum of the first seepage value and the second seepage value is taken as the determined seepage amount.

8. The method according to claim 7, characterized in that, The method further includes: When the sum of the first seepage value and the second seepage value is greater than or equal to a preset seepage value, the preset seepage value is used as the determined seepage amount.

9. The method according to claim 6, characterized in that: The humidity value is obtained through a humidity sensor in the massage device.

10. The method according to claim 9, characterized in that: The humidity sensor is located on the microporous electrode of the massage device.

11. The method according to claim 1, characterized in that, The method further includes: The amount of exudate determined based on the human body impedance value is taken as the first exudate value. Determine the user's heart rate; The first effusion value is adjusted based on the heart rate to obtain a third effusion value as the determined effusion volume.

12. The method according to claim 11, characterized in that, Determining the user's heart rate includes: The user's heart rate is determined by a heart rate monitor or motion sensor on the massage device; or, the user's heart rate is determined based on the heart rate detected by an external device.

13. The method according to claim 1, characterized in that, The method further includes: The amount of exudate determined based on the human body impedance value is taken as the first exudate value. Determine the massage voltage for the massage mode to be massaged; The first permeation value is adjusted according to the massage voltage to obtain a fourth permeation value as the determined permeation amount.

14. The method according to claim 13, characterized in that, The step of adjusting the first exudate value according to the massage voltage includes: If the massage voltage is greater than a preset voltage, the first exudate value is increased by a first preset value; or, If the massage voltage is less than or equal to a preset voltage, the first exudate value is reduced by a second preset value.

15. The method according to any one of claims 1 to 14, characterized in that, The method further includes: Obtain user feedback information; Obtain the correspondence between the leakage volume and the reference parameters corresponding to the feedback information; Based on the user feedback information and the correspondence between the seepage volume and the reference parameters, the seepage volume is adjusted to obtain a fifth seepage value as the determined seepage volume.

16. A leakage control device for a massage device, characterized in that, include: The detection module is used to determine the human body impedance value after the user wears the massage device; The exudate calculation module is used to determine the amount of conductive liquid exudate based on the human body impedance value determined by the detection module, wherein the amount of exudate is positively correlated with the human body impedance value. The seepage control module is used to control the conductive liquid to seep out through the micropores of the microporous electrode in the massage device according to the seepage amount determined by the seepage calculation module, wherein the microporous electrode is in the massage output state.

17. The apparatus according to claim 16, characterized in that, The device further includes: The first adjustment module is used to take the amount of exudate determined according to the human body impedance value as the first exudate value; when the first exudate value is greater than or equal to the preset exudate value, the preset exudate value is taken as the determined exudate amount.

18. The apparatus according to claim 16, characterized in that, The device further includes: The second adjustment module is used to take the amount of exudate determined according to the human body impedance value as the first exudate value; when the first exudate value is less than the preset exudate value, to determine the second exudate value according to the humidity value and / or contact area of ​​the microporous electrode in contact with the human body; and to determine the amount of exudate according to the first exudate value and the second exudate value.

19. The apparatus according to claim 16, characterized in that, The device further includes: The third adjustment module is used to take the amount of exudate determined according to the human body impedance value as the first exudate value; determine the user's heart rate; adjust the first exudate value according to the heart rate to obtain a third exudate value as the determined exudate amount.

20. The apparatus according to claim 16, characterized in that, The device further includes: The fourth adjustment module is used to take the amount of exudate determined according to the human body impedance value as the first exudate value; determine the massage voltage of the massage mode to be massaged; and adjust the first exudate value according to the massage voltage to obtain a fourth exudate value as the determined exudate amount.

21. The apparatus according to claim 16, characterized in that, The device further includes: The fifth adjustment module is used to obtain user feedback information; obtain the correspondence between the seepage volume and the reference parameters corresponding to the feedback information; adjust the seepage volume according to the user feedback information and the correspondence between the seepage volume and the reference parameters to obtain a fifth seepage value as the determined seepage volume.

22. A massage device, characterized in that, include: The invention comprises a microporous electrode with micropores, a liquid storage device for storing conductive liquid, and a seepage control device according to any one of claims 16-21.

23. An electronic device, 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 to 15.

24. A non-transitory machine-readable storage medium having executable code stored thereon, which, when executed by a processor of an electronic device, causes the processor to perform the method as described in any one of claims 1 to 15.

Citation Information

Patent Citations

  • Iontophoresis injection device and injection method

    CN106659889A

  • Neck massager

    CN211751812U