Massager exudate mechanism adjustment method, device and massager

By obtaining the difference in physical parameters of the liquid before and after replacement, the seepage mechanism is adjusted to optimize the amount of seepage and massage waiting time, solving the problem of liquid waste or insufficient seepage after liquid replacement, and ensuring the stability of massage effect and user experience.

CN115337544BActive Publication Date: 2025-09-05GUANGDONG SKG INTELLIGENT TECH CO LTD
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Patent Information

Application Number
CN202110527825.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2021-05-14
Publication Date
2025-09-05
Estimated Expiration
2041-05-14

AI Technical Summary

Technical Problem

After replacing the massager's liquid storage device or the liquid in the liquid storage device, liquid waste or insufficient liquid seepage may occur, affecting the massage effect and user experience.

Method used

By obtaining the difference in physical parameters of the liquid before and after replacement, the exudation mechanism is adjusted to determine the exudation mechanism after replacement, including parameters such as dielectric constant, conductivity and viscosity, to optimize the exudate volume and massage waiting time to ensure the massage effect and user experience.

Benefits of technology

Effectively prevent liquid waste or insufficient seepage, ensuring the stability of massage effect and user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application relates to a method and device for adjusting the seepage mechanism of a massager, and the massager, which are capable of replacing the liquid used to assist massage in the massager and determining the seepage mechanism of the replaced liquid to prevent liquid waste or insufficient seepage, thereby ensuring the massage effect and user experience. The method includes: obtaining a parameter difference between the physical parameters of two liquids in a liquid storage device before and after replacement, the two liquids before and after replacement being: the liquid in the liquid storage device before replacement and the liquid after replacement; obtaining a first seepage mechanism corresponding to the liquid before replacement; and determining a second seepage mechanism of the liquid after replacement based on the parameter difference and the first seepage mechanism.
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Description

Technical Field

[0001] The present application relates to the technical field of massage equipment, and in particular to a method and device for regulating the fluid seepage mechanism of a massager, and the massager. Background Art

[0002] With the continuous development of massage equipment technology, massagers of different types and functions have gradually entered people's daily lives and work. Common massagers include neck massagers and waist massagers, etc.

[0003] These massagers can output electrical pulse signals through the configured electrode components to act on human muscles, thereby massaging muscles and relieving fatigue. To enhance the user experience, the massagers are also equipped with a liquid leakage function.

[0004] As massagers are used for longer periods of time, users often need to replace the device's reservoir or the liquid in it. If the liquid seepage mechanism used before the replacement is used again, this can lead to liquid waste or insufficient seepage, ultimately resulting in poor massage results and a reduced user experience. Summary of the Invention

[0005] In order to overcome the problems existing in the related art, the present application provides a method, device and massager for adjusting the seepage mechanism of a massager, which can replace the liquid used for auxiliary massage in the massager and determine the seepage mechanism of the replaced liquid to prevent liquid waste or insufficient seepage, thereby ensuring the massage effect and user experience.

[0006] The first aspect of the present application provides a method and device for adjusting the seepage mechanism of a massager, and a massager, wherein the massager is provided with a liquid storage device and a microporous electrode, and the liquid in the liquid storage device can seep out through the microporous electrode to assist massage. The method for adjusting the amount of seepage includes: obtaining the parameter difference between the physical parameters of the two liquids in the liquid storage device before and after replacement, and the two liquids before and after replacement are respectively: the liquid before replacement and the liquid after replacement in the liquid storage device; obtaining a first seepage mechanism corresponding to the liquid before replacement; and determining a second seepage mechanism of the liquid after replacement based on the parameter difference and the first seepage mechanism.

[0007] In a possible implementation manner of the first aspect, the physical parameter includes at least one of a dielectric constant, a conductivity, and a viscosity of the liquid.

[0008] In a possible implementation of the first aspect, when the physical parameter includes the dielectric constant or conductivity; determining the second seepage mechanism of the replaced liquid based on the parameter difference and the first seepage mechanism includes: determining the seepage amount of the second seepage mechanism based on the difference between the dielectric constant or conductivity of the two liquids before and after the replacement and the seepage amount of the first seepage mechanism.

[0009] In a possible implementation of the first aspect, determining the seepage amount of the second seepage mechanism based on the difference between the dielectric constants or conductivities of the two liquids before and after the replacement and the seepage amount of the first seepage mechanism includes: comparing the first dielectric constant or first conductivity of the liquid before replacement with the second dielectric constant or second conductivity of the liquid after replacement; if the first dielectric constant is greater than the second dielectric constant, or the first conductivity is greater than the second conductivity, increasing the seepage amount of the first seepage mechanism to obtain the seepage amount of the second seepage mechanism; if the first dielectric constant is less than the second dielectric constant, or the first conductivity is less than the second conductivity, reducing the seepage amount of the first seepage mechanism to obtain the seepage amount of the second seepage mechanism.

[0010] In a possible implementation of the first aspect, the difference between the dielectric constant or conductivity of the two liquids before and after the replacement is positively correlated with the adjustment range of the exudate amount.

[0011] In a possible implementation of the first aspect, when the physical parameter includes the viscosity; determining the second seepage mechanism of the replaced liquid based on the parameter difference and the first seepage mechanism includes: determining the seepage amount of the second seepage mechanism based on the difference between the viscosities of the two liquids before and after the replacement and the seepage amount of the first seepage mechanism.

[0012] In a possible implementation of the first aspect, determining the amount of seepage of the second seepage mechanism based on the difference between the viscosities of the two liquids before and after the replacement and the amount of seepage of the first seepage mechanism includes: comparing the first viscosity of the liquid before replacement with the second viscosity of the liquid after replacement; if the first viscosity is greater than the second viscosity, reducing the amount of seepage of the first seepage mechanism to obtain the amount of seepage of the second seepage mechanism; if the first viscosity is less than the second viscosity, increasing the amount of seepage of the first seepage mechanism to obtain the amount of seepage of the second seepage mechanism.

[0013] In a possible implementation of the first aspect, the difference in viscosity between the two liquids before and after the replacement is positively correlated with the adjustment range of the exudate volume.

[0014] In a possible implementation of the first aspect, when the physical parameter includes the viscosity; determining the second seepage mechanism of the replaced liquid based on the parameter difference and the first seepage mechanism includes: determining the massage waiting time of the second seepage mechanism based on the difference between the viscosities of the two liquids before and after the replacement, and the massage waiting time of the first seepage mechanism.

[0015] In a possible implementation of the first aspect, the massage waiting time of the second exudate mechanism is determined based on the difference between the viscosities of the two liquids before and after the replacement and the massage waiting time of the first exudate mechanism, including: comparing the first viscosity of the liquid before the replacement with the second viscosity of the liquid after the replacement; if the first viscosity is greater than the second viscosity, reducing the massage waiting time of the first exudate mechanism to obtain the massage waiting time of the second exudate mechanism; if the first viscosity is less than the second viscosity, increasing the massage waiting time of the first exudate mechanism to obtain the massage waiting time of the second exudate mechanism.

[0016] In a possible implementation of the first aspect, the difference in viscosity between the two liquids before and after the replacement is positively correlated with the adjustment range of the massage waiting time.

[0017] In a possible implementation of the first aspect, the method further includes: obtaining the skin moisture of the part where the massager contacts the human body; after determining the massage waiting time of the second liquid seepage mechanism based on the difference between the viscosities of the two liquids before and after the replacement and the massage waiting time of the first liquid seepage mechanism, the method further includes: adjusting the massage waiting time of the second liquid seepage mechanism according to the skin moisture to obtain a new massage waiting time.

[0018] In a possible implementation of the first aspect, the massage waiting time of the second liquid seepage mechanism is adjusted according to the skin humidity, including: if the skin humidity is higher than a temperature threshold, reducing the massage waiting time of the second liquid seepage mechanism according to the temperature difference between the skin humidity and the temperature threshold, and the temperature threshold is pre-set; if the skin humidity is lower than the temperature threshold, increasing the massage waiting time of the second liquid seepage mechanism according to the temperature difference between the skin humidity and the temperature threshold.

[0019] In a possible implementation of the first aspect, the temperature difference between the skin humidity and the temperature threshold is positively correlated with the adjustment amplitude of the massage waiting time of the second liquid permeation mechanism.

[0020] In a possible implementation of the first aspect, when the physical parameters include the dielectric constant and the viscosity, determining the second seepage mechanism of the replaced liquid based on the parameter difference and the first seepage mechanism includes: determining the second seepage mechanism of the replaced liquid based on the difference between the dielectric constants of the two liquids before and after the replacement, the difference between the viscosities of the two liquids before and after the replacement, and the first seepage mechanism.

[0021] The second aspect of the present application provides an adjustment device, which is suitable for use in a massager. The massager is equipped with a liquid storage device and a microporous electrode. The liquid in the liquid storage device can seep out through the microporous electrode to assist massage. The adjustment device includes: an acquisition module and a determination module, wherein the acquisition module is used to obtain the parameter difference between the physical parameters of the two liquids in the liquid storage device before and after replacement, and the two liquids before and after replacement are respectively: the liquid in the liquid storage device before replacement and the liquid after replacement; the acquisition module is also used to obtain a first seepage mechanism corresponding to the liquid before replacement; the determination module is used to determine the second seepage mechanism of the liquid after replacement based on the parameter difference of the acquisition module and the first seepage mechanism.

[0022] A third aspect of the present application provides a massager comprising: a liquid storage device, a microporous electrode and an adjustment device, wherein the adjustment device is used to execute the liquid seepage mechanism adjustment method as described in the first aspect or any possible implementation of the first aspect.

[0023] In a fourth aspect, the present application provides a massager comprising: a processor and a memory, wherein the memory stores executable code, and when the executable code is executed by the processor, the processor executes the exudate mechanism regulation method as described in the first aspect or any possible implementation of the first aspect.

[0024] The fifth aspect of the present application provides a non-transitory machine-readable storage medium having executable code stored thereon. When the executable code is executed by a processor of an electronic device, the processor executes the method for regulating the permeation mechanism as described in the first aspect or any possible implementation of the first aspect.

[0025] The seepage mechanism adjustment method provided in the present application is a method in which the adjustment device obtains the parameter difference between the physical parameters of the two liquids before and after replacement, adjusts the seepage mechanism corresponding to the liquid before replacement, i.e., the first seepage mechanism, to obtain the seepage mechanism of the liquid after replacement, i.e., the second seepage mechanism, so that the second seepage mechanism obtained after adjustment can prevent liquid waste or insufficient seepage, thereby ensuring the massage effect and user experience.

[0026] Furthermore, in the present application, the seepage mechanism corresponding to the liquid before and after replacement, such as the amount of seepage, is adjusted based on at least one of the difference in dielectric constant of the liquid before and after replacement, or the difference in viscosity of the liquid before and after replacement. This can avoid liquid waste or insufficient seepage caused by the difference in dielectric constant and / or viscosity between the liquid before and after replacement, thereby effectively avoiding a deterioration in massage effect and user experience.

[0027] Furthermore, in the present application, the corresponding exudate volume of the liquid before and after replacement is adjusted based on the viscosity of the liquid before and after replacement, and the skin temperature, so that the exudate volume can be accurately determined, thereby effectively avoiding liquid waste or insufficient exudate volume.

[0028] 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

[0029] 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.

[0030] Figure 1 This is a schematic flow chart of an embodiment of the method for regulating the permeation mechanism provided in the embodiments of the present application;

[0031] Figure 2 This is a schematic flow chart of another embodiment of the method for regulating the permeation mechanism provided in the embodiments of the present application;

[0032] Figure 3 This is a schematic flow chart of another embodiment of the method for regulating the permeation mechanism provided in the embodiments of the present application;

[0033] Figure 4 This is a schematic flow chart of another embodiment of the method for regulating the permeation mechanism provided in the embodiments of the present application;

[0034] Figure 5 This is a schematic flow chart of another embodiment of the method for regulating the permeation mechanism provided in the embodiments of the present application;

[0035] Figure 6 This is a schematic flow chart of another embodiment of the method for regulating the permeation mechanism provided in the embodiments of the present application;

[0036] Figure 7 A schematic structural diagram of the regulating device provided in an embodiment of the present application;

[0037] Figure 8A schematic structural diagram of a massager provided in an embodiment of the present application;

[0038] Figure 9 This is another structural schematic diagram of the massager provided in an embodiment of the present application. DETAILED DESCRIPTION

[0039] The preferred embodiments of the present application will be described in more detail below with reference to the accompanying drawings. Although the preferred 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. Instead, 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.

[0040] The terms used in this application are for the purpose of describing specific embodiments only and are not intended to limit this application. As used in this application and the appended claims, the singular forms "a," "an," "the," and "the" are 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 encompasses any and all possible combinations of one or more of the associated listed items.

[0041] 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 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, a feature defined as "first" or "second" may explicitly or implicitly include one or more of the features. In the description of this application, the meaning of "plurality" is two or more, unless otherwise clearly and specifically defined.

[0042] The liquid seepage mechanism adjustment method of the present application is applicable to wearable massage devices, such as waist massagers and neck massagers. The liquid seepage mechanism adjustment method is specifically used in application scenarios corresponding to the user replacing the liquid used for auxiliary massage in the massager. Specifically, it can be replacing the liquid storage device in the massager, or it can also be replacing the liquid in the liquid storage device in the massager.

[0043] A general massager usually includes a liquid storage device and a microporous electrode. The liquid storage device is used to store liquid to assist massage, which can be a conductive liquid. The microporous electrode is provided with micropores and is used to output signal-level pulse current to electrically stimulate human skin.

[0044] In order to facilitate a better understanding of the method for regulating the seepage mechanism in the embodiments of the present application, the method for regulating the seepage mechanism will be described in detail below in conjunction with specific embodiments. In the absence of conflict, the following embodiments and features therein may be combined with each other.

[0045] See also Figure 1 , Figure 1 FIG. 1 is a flow chart of an embodiment of the method for regulating the seepage mechanism provided in the embodiments of the present application; FIG. Figure 1 As shown, the method for regulating the seepage mechanism in the embodiment of the present application includes:

[0046] 101. The regulating device obtains the parameter difference between the physical parameters of the two liquids before and after replacement.

[0047] In an embodiment of the present application, after the user completes replacing the liquid storage device in the massager, or the liquid in the liquid storage device in the massager, the adjustment device can adjust the seepage mechanism through the technical solution in the present application to obtain a new seepage mechanism.

[0048] The physical parameters are parameters corresponding to the physical properties of the liquid itself. It should be understood that different liquids have different physical properties, resulting in differences in their corresponding physical parameters.

[0049] The liquid in this application refers to a liquid used to assist massage, and specifically can be various types of massage fluids and the like.

[0050] Optionally, in some embodiments of the present application, the physical parameter of the liquid may be at least one of dielectric constant, conductivity, and viscosity. The physical parameters of the liquid herein include, but are not limited to, dielectric constant, conductivity, and / or viscosity, and may also include other physical parameters that may cause changes in the seepage mechanism before and after liquid replacement.

[0051] 102. The regulating device obtains a first seepage mechanism corresponding to the liquid before replacement.

[0052] In the embodiments of the present application, the seepage mechanism may include the amount of seepage, the massage waiting time, and methods for determining both. Furthermore, the seepage mechanism may include, but is not limited to, adjustments to the seepage duration and flow rate, as well as other parameters. In this application, the first seepage mechanism represents the seepage mechanism corresponding to the liquid before transformation, and the second seepage mechanism represents the seepage mechanism corresponding to the liquid after transformation, to distinguish the two seepage mechanisms.

[0053] Before the massager begins massaging, the liquid in the liquid storage device seeps out of the seepage bottle onto the massaged area, specifically where the microporous electrodes of the massager contact the body. For example, the liquid in the seepage bottle of a neck massager seeps out onto the neck, while the liquid in the seepage bottle of a waist massager seeps out onto the waist.

[0054] 103. The regulating device determines a second seepage mechanism of the replaced liquid according to the parameter difference and the first seepage mechanism.

[0055] In the embodiments of the present application, the parameter difference can be characterized as the difference between the physical parameters of the two liquids before and after replacement. When the physical parameter is dielectric constant or conductivity, the parameter difference can be characterized as the difference between the dielectric constants of the two liquids before and after replacement, or the absolute value of the difference. Similarly, when the physical parameter is viscosity, the parameter difference can be characterized as the difference between the viscosities of the two liquids before and after replacement, or the absolute value of the difference.

[0056] In the embodiment of the present application, the regulating device can adjust the first liquid seepage mechanism based on a single or multiple factors such as the difference between the dielectric constants of the two liquids, the difference between the viscosities of the two liquids, and temperature. Specific implementations include the following:

[0057] 1. Adjust the amount of permeate based on the difference in dielectric constant or conductivity between the liquids.

[0058] Optionally, in some embodiments of the present application, when the physical parameter is dielectric constant or conductivity, the regulating device determines a second seepage mechanism of the replaced liquid based on the parameter difference and the first seepage mechanism, including: the regulating device determines the second seepage mechanism of the replaced liquid based on the difference between the dielectric constant or conductivity of the two liquids before and after replacement and the amount of seepage obtained in the first seepage mechanism.

[0059] Accordingly, a specific implementation method may be: the regulating device adjusts the amount of seepage in the first seepage mechanism based on the difference between the dielectric constant or conductivity of the two liquids before and after replacement to obtain a new amount of seepage as the amount of seepage in the second seepage mechanism.

[0060] Second, the amount of exudate is adjusted based on the difference in viscosity between the liquids.

[0061] Optionally, in some embodiments of the present application, when the physical parameter is viscosity, the regulating device determines the second seepage mechanism of the replaced liquid based on the parameter difference and the first seepage mechanism, including: the regulating device determines the seepage amount of the second seepage mechanism based on the difference between the viscosities of the two liquids before and after replacement and the seepage amount of the first seepage mechanism.

[0062] Accordingly, a specific implementation may be: the regulating device adjusts the amount of seepage in the first seepage mechanism based on the difference between the viscosities of the two liquids before and after replacement to obtain a new amount of seepage as the amount of seepage in the second seepage mechanism.

[0063] 3. Adjust the massage waiting time based on the difference in liquid viscosity.

[0064] Optionally, in some embodiments of the present application, when the physical parameter is viscosity, the regulating device determines the second seepage mechanism of the replaced liquid based on the parameter difference and the first seepage mechanism, including: the regulating device determines the massage waiting time of the second seepage mechanism based on the difference between the viscosities of the two liquids before and after replacement, and the massage waiting time of the first seepage mechanism.

[0065] Accordingly, a specific implementation method may be: the regulating device adjusts the massage waiting time in the first seepage mechanism based on the difference between the viscosities of the two liquids before and after replacement to obtain a new massage waiting time as the massage waiting time in the second seepage mechanism.

[0066] 4. Adjust the massage waiting time based on the difference between skin temperature and liquid viscosity.

[0067] Optionally, in some embodiments of the present application, when the physical parameter is viscosity, the regulating device determines the second seepage mechanism of the replaced liquid based on the parameter difference and the first seepage mechanism, including: the regulating device determines the massage waiting time of the second seepage mechanism based on the difference between the viscosities of the two liquids before and after replacement, and the massage waiting time of the first seepage mechanism; further, the regulating device adjusts the massage waiting time of the second seepage mechanism according to the skin humidity to obtain the adjusted massage waiting time.

[0068] Optionally, the skin humidity is the skin humidity of the part where the massager contacts the human body, for example, the skin humidity of the part where the microporous electrodes in the massager contact the human body.

[0069] Accordingly, a specific implementation method may be: the adjustment device adjusts the massage waiting time in the first liquid seepage mechanism based on the difference between the viscosities of the two liquids before and after replacement to obtain the massage waiting time in the second liquid seepage mechanism; further, the massage waiting time in the second liquid seepage mechanism is adjusted based on skin humidity to obtain the adjusted massage waiting time.

[0070] 5. Adjust the massage waiting time based on the differences in the dielectric constants of the liquids and the differences in the viscosities of the liquids.

[0071] Optionally, in some embodiments of the present application, the regulating device determines a second seepage mechanism of the replaced liquid based on the parameter difference and the first seepage mechanism, including: the regulating device determines the second seepage mechanism of the replaced liquid based on the difference between the dielectric constants of the two liquids before and after replacement, the difference between the viscosities of the two liquids before and after replacement, and the first seepage mechanism.

[0072] Accordingly, a specific implementation method may be: the regulating device first adjusts the amount of seepage in the first seepage mechanism based on the difference between the dielectric constants of the two liquids before and after replacement, and then adjusts the adjusted amount of seepage again based on the difference between the viscosities of the two liquids before and after replacement to obtain the final amount of seepage.

[0073] Similarly, the regulating device may first adjust the amount of seepage in the first seepage mechanism based on the difference between the viscosities of the two liquids before and after replacement, and then adjust the adjusted amount of seepage again based on the difference between the dielectric constants of the two liquids before and after replacement to obtain the final amount of seepage.

[0074] It should be understood that the seepage mechanism regulation method in the present application is applicable to scenarios where the two liquids before and after replacement are liquids whose physical parameters have changed, for example, they are two different liquids before and after replacement, or they are the same liquid before and after replacement, but the different liquid concentrations affect the dielectric constant and / or viscosity.

[0075] In an embodiment of the present application, the regulating device obtains the parameter difference between the physical parameters of the two liquids before and after replacement, adjusts the seepage mechanism corresponding to the liquid before replacement, i.e., the first seepage mechanism, and obtains the seepage mechanism of the liquid after replacement, i.e., the second seepage mechanism, so that the second seepage mechanism obtained after adjustment can prevent liquid waste or insufficient seepage, thereby ensuring the massage effect and user experience.

[0076] The following describes in detail embodiments in which the regulating device can adjust the first seepage mechanism based on a single or multiple factors, such as the difference between the dielectric constants of the two liquids, the difference between the electrical conductivities of the two liquids, the difference between the viscosities of the two liquids, and temperature.

[0077] See also Figure 2 , Figure 2 FIG. 1 is a flow chart of another embodiment of the method for regulating the seepage mechanism provided in the embodiments of the present application; FIG. Figure 2 As shown, the method for regulating the seepage mechanism in the embodiment of the present application includes:

[0078] 201. The regulating device obtains the parameter difference between the dielectric constant or conductivity of two liquids before and after replacement.

[0079] In the embodiments of this application, the dielectric constant refers to the product of the relative dielectric constant and the absolute dielectric constant in a vacuum. The relative dielectric constant is a physical parameter that characterizes the dielectric or polarization properties of a dielectric material. Its value is equal to the ratio of the capacitance of a capacitor of the same size made with the predicted material as the dielectric to the capacitance of a capacitor made with a vacuum as the dielectric. This value also represents the material's electrical storage capacity. It is also called relative permittivity. Different materials have different relative dielectric constants at different temperatures.

[0080] When electrodes deliver pulsed current to the human body, the body behaves like a combination of capacitance and resistance, exhibiting both resistance and capacitive reactance. The dielectric constant influences the capacitive reactance, while conductivity influences the resistance, ultimately affecting the impedance. Conductivity is a parameter used to describe the ease with which charge flows through a substance. The product of this quantity and the electric field strength E in a medium equals the conduction current density J. In ecology, conductivity is expressed numerically as the ability of a solution to conduct electric current. It is expressed in Siemens per meter (S / m).

[0081] The parameter difference between the dielectric constants of the two liquids before and after replacement refers to the difference or ratio between the dielectric constant value of the liquid before replacement and the dielectric constant value of the liquid after replacement.

[0082] Similarly, the parameter difference between the permittivities of the two liquids before and after replacement refers to the difference or ratio between the permittivity value of the liquid before replacement and the permittivity value of the liquid after replacement.

[0083] 202. The regulating device obtains the amount of seepage corresponding to the liquid before replacement, that is, the amount of seepage of the first seepage mechanism.

[0084] This step 202 is similar to the above-mentioned step 102. For step 202, please refer to the description of the relevant part in the above-mentioned step 102, which will not be repeated in this application.

[0085] 203. The regulating device determines the amount of seepage of the second seepage mechanism according to the difference between the dielectric constants or permittivities of the two liquids before and after the replacement and the amount of seepage of the first seepage mechanism.

[0086] The seepage volume of the first seepage mechanism is the seepage volume of the liquid before replacement, and the seepage volume of the second seepage mechanism is the seepage volume of the liquid after replacement.

[0087] Optionally, in some embodiments of the present application, the regulating device determines the second seepage mechanism of the replaced liquid based on the difference between the dielectric constants of the two liquids before and after replacement and the amount of seepage in the obtained first seepage mechanism, which may include: the regulating device compares the first dielectric constant of the liquid before replacement with the second dielectric constant of the liquid after replacement; if the first dielectric constant is greater than the second dielectric constant, the regulating device increases the seepage amount of the first seepage mechanism to obtain the seepage amount of the second seepage mechanism; if the first dielectric constant is less than the second dielectric constant, the regulating device reduces the seepage amount of the first seepage mechanism to obtain the seepage amount of the second seepage mechanism.

[0088] For example, assuming that the first dielectric constant of liquid A before replacement is 9.6 and its seepage volume is 0.05 ml, if the second dielectric constant of liquid B after replacement is 6.3, then the difference between the first dielectric constant and the second dielectric constant is determined to be +3.2, and the adjustment device adds 0.015 ml to the seepage volume of liquid A of 0.050 ml, resulting in a seepage volume of liquid B of 0.065 ml; if the second dielectric constant of the liquid after replacement is 16, then the difference between the first dielectric constant and the second dielectric constant is determined to be -6.4, and the adjustment device will reduce the seepage volume of liquid A of 0.050 ml by 0.030 ml, resulting in a seepage volume of liquid B of 0.020 ml.

[0089] Similarly, in some embodiments of the present application, the adjustment device may further determine a second seepage mechanism for the replaced liquid based on the difference in conductivity between the two liquids before and after replacement and the amount of seepage obtained in the first seepage mechanism. The specific adjustment method is similar to the adjustment method corresponding to the difference in dielectric constants between the two liquids described above and will not be repeated here.

[0090] Optionally, in some embodiments of the present application, the difference in dielectric constants between the two liquids before and after replacement is positively correlated with the adjustment range of the amount of exudate. In other words, the greater the difference in dielectric constants between the two liquids before and after replacement, the greater the adjustment range of the amount of exudate.

[0091] Similarly, the difference in conductivity between the two liquids before and after replacement is positively correlated with the adjustment amplitude of the exudate volume.

[0092] For example, the difference in dielectric constant between liquid A and liquid B before and after replacement is +3.2, and the amount of exudate increases by 0.015 ml. The difference in dielectric constant between the two liquids before and after replacement is -6.4, and the amount of exudate decreases by 0.030 ml.

[0093] It's easy to understand that if the dielectric constant after replacement is greater than before, or the conductivity after replacement is greater than before, then the amount of seepage will decrease; conversely, it will increase. If the values ​​before and after are the same, then the original seepage mechanism is maintained. The greater the difference, the greater the adjustment range for the amount of seepage.

[0094] The greater the dielectric constant or conductivity, the smaller the impedance and the more obvious the massage feeling. Under the same conditions, the amount of exudate corresponding to the liquid with a larger dielectric constant or conductivity is smaller than the amount of exudate corresponding to the liquid with a smaller dielectric constant or conductivity.

[0095] In an embodiment of the present application, the regulating device obtains the parameter difference between the dielectric constant or conductivity of the two liquids before and after replacement, adjusts the amount of exudate corresponding to the liquid before replacement, and obtains the amount of exudate of the liquid after replacement. This can make the obtained value of the exudate amount more accurate, thereby effectively preventing liquid waste or insufficient exudate, thereby ensuring the massage effect and user experience.

[0096] It should be noted that it is easy to understand that the regulating device in the embodiment of the present application can also simultaneously regulate the amount of exudate based on the dielectric constant and conductivity. The specific regulating method is similar to the regulating method based on the single factor dielectric constant or conductivity, and will not be repeated here.

[0097] See also Figure 3 , Figure 3 FIG. 1 is a flow chart of another embodiment of the method for regulating the seepage mechanism provided in the embodiments of the present application; FIG. Figure 3 As shown, the method for regulating the seepage mechanism in the embodiment of the present application includes:

[0098] 301. The regulating device obtains the parameter difference between the viscosities of the two liquids before and after replacement.

[0099] In the embodiments of the present application, viscosity refers to the degree of viscosity of a liquid. Specifically, it is mainly characterized by viscosity, which is described as follows: In layman's terms, viscosity is measured by the resistance to the movement of an object in a liquid, such as the viscosity value measured by a rotational viscometer. If the resistance to the movement of an object at a certain speed in a liquid is large, the viscosity of the liquid is relatively large. Conversely, if the resistance to the movement of an object at a certain speed in a liquid is small, the viscosity of the liquid is relatively small. The physical unit of viscosity in this application is Pascal-second (Pa·s).

[0100] The parameter difference between the viscosities of the two liquids before and after replacement refers to the difference between the viscosity value of the liquid before replacement and the viscosity value of the liquid after replacement.

[0101] 302. The regulating device obtains the amount of seepage corresponding to the liquid before replacement, that is, the amount of seepage of the first seepage mechanism.

[0102] This step 302 is similar to the above-mentioned step 102. For step 302, please refer to the description of the relevant part in the above-mentioned step 102, which will not be repeated in this application.

[0103] 303. The regulating device determines the amount of seepage of the second seepage mechanism according to the difference between the viscosities of the two liquids before and after the replacement and the amount of seepage of the first seepage mechanism.

[0104] Optionally, in some embodiments of the present application, the regulating device determines the amount of seepage of the second seepage mechanism based on the difference between the viscosities of the two liquids before and after replacement and the amount of seepage of the first seepage mechanism, which may include: the regulating device compares the first viscosity of the liquid before replacement with the second viscosity of the liquid after replacement; if the first viscosity is greater than the second viscosity, the regulating device reduces the amount of seepage of the first seepage mechanism to obtain the amount of seepage of the second seepage mechanism; if the first viscosity is less than the second viscosity, the regulating device increases the amount of seepage of the first seepage mechanism to obtain the amount of seepage of the second seepage mechanism.

[0105] For example, assuming that the first viscosity of liquid A before replacement is 5 (Pa·s) and its exudate volume is 0.05ml, if the second viscosity of liquid B after replacement is 3 (Pa·s), then the difference between the first viscosity and the second viscosity is determined to be +2 (Pa·s), and the adjusting device reduces the exudate volume of liquid A by 0.050ml by 0.020ml, and the exudate volume of liquid B is 0.030ml; if the second viscosity of the liquid after replacement is 8, then the difference between the first viscosity and the second viscosity is determined to be -3, and the adjusting device increases the exudate volume of liquid A by 0.050ml by 0.030ml, and the exudate volume of liquid B is 0.080ml.

[0106] Optionally, in some embodiments of the present application, the difference in viscosity between the two liquids before and after replacement is positively correlated with the adjustment range of the exudate volume. In other words, the greater the difference in viscosity between the two liquids before and after replacement, the greater the adjustment range of the exudate volume.

[0107] For example, the difference in viscosity between liquid A and liquid B before and after replacement is +2, and the amount of exudate decreases by 0.020 ml. The difference in viscosity between liquid A and liquid B before and after replacement is -3, and the amount of exudate increases by 0.030 ml.

[0108] It is easy to understand that the liquid in the liquid storage device after replacement is different from that before replacement. You can also obtain the viscosity of the liquid before and after replacement and compare the viscosity of the two to obtain the viscosity difference value. According to the viscosity difference value, the amount of exudate can be fine-tuned. The greater the viscosity difference value, the more the amount of exudate can be adjusted. The exudate volume of high-viscosity liquid is greater than that of low-viscosity liquid, because low-viscosity liquid is easier to spread. If the amount of exudate is large, it will cause the liquid to flow to the skin outside the massage area, giving the user a bad user experience. If the viscosity is high, the liquid is not easy to spread, and more exudate is needed to make the liquid cover the entire massage area corresponding to the electrode.

[0109] In an embodiment of the present application, the regulating device obtains the parameter difference between the viscosities of the two liquids before and after replacement, adjusts the amount of exudate corresponding to the liquid before replacement, and obtains the amount of exudate of the liquid after replacement. This can make the obtained value of the exudate amount more accurate, thereby effectively preventing liquid waste or insufficient exudate, thereby ensuring the massage effect and user experience.

[0110] See also Figure 4 , Figure 4 FIG. 1 is a flow chart of another embodiment of the method for regulating the seepage mechanism provided in the embodiments of the present application; FIG. Figure 4 As shown, the method for regulating the seepage mechanism in the embodiment of the present application includes:

[0111] 401. The regulating device obtains a parameter difference between the viscosities of the two liquids before and after replacement.

[0112] The step 401 is similar to the above step 301. For the related description of the step 401, please refer to the above step 301 and will not be repeated here.

[0113] 402. The adjustment device obtains the massage waiting time corresponding to the liquid before replacement, that is, the massage waiting time of the first liquid seepage mechanism.

[0114] In the embodiment of the present application, the massage waiting time refers to the waiting time between the completion of exudation and the start of massage.

[0115] For example, liquid seepage is the liquid in the liquid storage device of the massager seeping out from the liquid storage device to the microporous electrode, and then seeping out from the micropores on the microporous electrode to the human skin.

[0116] Optionally, in some embodiments of the present application, the massage waiting time may include: the time for waiting for the start of massage after the end of exudation; or the sum of the exudation time and the time for waiting for the start of massage after the end of exudation, where the exudation time refers to the time between the start time of exudation and the end time of exudation.

[0117] For example, the massage waiting time for liquid a is 1s, which means that the time difference from controlling the liquid storage device to start outputting liquid to the microporous electrode to starting the massage function is 1s, wherein 1s can include the time from the start of the liquid storage device to the end of liquid output to the microporous electrode and the time waiting for the massage to start after the seepage ends.

[0118] 403. The adjustment device determines the massage waiting time of the second liquid seepage mechanism according to the difference between the viscosities of the two liquids before and after the replacement and the massage waiting time of the first liquid seepage mechanism.

[0119] Optionally, in some embodiments of the present application, the adjusting device determines the massage waiting time of the second exudate mechanism based on the difference between the viscosities of the two liquids before and after replacement and the massage waiting time of the first exudate mechanism, including: the adjusting device compares the first viscosity of the liquid before replacement with the second viscosity of the liquid after replacement; if the first viscosity is greater than the second viscosity, the adjusting device reduces the massage waiting time of the first exudate mechanism to obtain the massage waiting time of the second exudate mechanism; if the first viscosity is less than the second viscosity, the adjusting device increases the massage waiting time of the first exudate mechanism to obtain the massage waiting time of the second exudate mechanism.

[0120] For example, assuming that the first viscosity of liquid A before replacement is 5 (Pa·s), its massage waiting time is 1.0s. If the second viscosity of liquid B after replacement is 3 (Pa·s), the difference between the first viscosity and the second viscosity is determined to be +2 (Pa·s), and the adjustment device reduces the massage waiting time of liquid A by 0.4s based on the massage waiting time of 1.0s, and the massage waiting time of liquid B is 0.6s; if the second viscosity of the replaced liquid is 8, the difference between the first viscosity and the second viscosity is determined to be -3, and the adjustment device increases the massage waiting time of liquid A by 0.6s based on the massage waiting time of 1.0s, and the massage waiting time of liquid B is 1.6s.

[0121] Optionally, in some embodiments of the present application, the difference in viscosity between the two liquids before and after replacement is positively correlated with the adjustment range of the massage waiting time. In other words, the greater the difference in viscosity between the two liquids before and after replacement, the greater the adjustment range of the massage waiting time.

[0122] For example, the difference in viscosity between liquid A and liquid B before and after replacement is +2, and the massage waiting time is reduced by 0.4s. The difference in viscosity between liquid A and liquid B before and after replacement is -3, and the massage waiting time is increased by 0.6s.

[0123] It should be understood that the liquid in the liquid storage device after replacement is inconsistent with the liquid before replacement. It is also possible to obtain the viscosity of the liquid before and after replacement and compare the viscosity of the two to obtain the difference in viscosity. The massage waiting time of the massager is adjusted according to the difference. The massage waiting time of the liquid with higher viscosity is longer than the seepage time of the liquid with lower viscosity. The massage waiting time refers to the time difference from the start of controlling the liquid storage device to output liquid to the microporous electrode to the start of massage. For example, the seepage time of liquid A is 1.0s, and the seepage time of liquid B is 1.2s, where the viscosity of liquid A is greater than the viscosity of liquid B.

[0124] In an embodiment of the present application, the adjustment device obtains the parameter difference between the viscosity of the two liquids before and after replacement, adjusts the massage waiting time corresponding to the liquid before replacement, and obtains the massage waiting time of the liquid after replacement. This can make the obtained massage waiting time value more accurate, so that the liquid can be fully spread on the human skin, thereby ensuring the massage effect and user experience.

[0125] See also Figure 5 , Figure 5 FIG. 1 is a flow chart of another embodiment of the method for regulating the seepage mechanism provided in the embodiments of the present application; FIG. Figure 5 As shown, the method for regulating the seepage mechanism in the embodiment of the present application includes:

[0126] 501. The regulating device obtains the parameter difference between the viscosities of the two liquids before and after replacement.

[0127] 502. The adjustment device obtains the massage waiting time corresponding to the liquid before replacement, that is, the massage waiting time of the first liquid seepage mechanism.

[0128] Step 501 and step 502 are similar to the above-mentioned step 301 and step 402 respectively. The relevant descriptions of step 501 and step 502 can be found in the above-mentioned step 301 and step 402 respectively, and are not repeated here.

[0129] 503. The regulating device obtains the skin humidity of the part where the massager contacts the human body.

[0130] In the embodiment of the present application, the skin humidity may specifically be the skin humidity of the part where the microporous electrodes in the massager come into contact with the human body.

[0131] Specifically, a humidity sensor may be provided on the microporous electrode to detect the skin humidity.

[0132] 504. The adjustment device determines the massage waiting time of the second liquid seepage mechanism according to the difference between the viscosities of the two liquids before and after the replacement and the massage waiting time of the first liquid seepage mechanism.

[0133] Step 504 is similar to step 403 above. For the description of step 504 , please refer to step 403 above, which will not be repeated here.

[0134] 505. The regulating device adjusts the massage waiting time of the second liquid exudation mechanism according to the skin humidity to obtain the adjusted massage waiting time.

[0135] Optionally, in some embodiments of the present application, the regulating device adjusts the massage waiting time of the second exudation mechanism according to the skin humidity, including: if the skin humidity is higher than the temperature threshold, the regulating device reduces the massage waiting time of the second exudation mechanism according to the temperature difference between the skin humidity and the temperature threshold, wherein the temperature threshold is pre-set, and its specific setting method can be based on experience; if the skin humidity is lower than the temperature threshold, the regulating device increases the massage waiting time of the second exudation mechanism according to the temperature difference between the skin humidity and the temperature threshold.

[0136] It should be understood that the skin temperature is measured and the duration of the exudation is adjusted accordingly. If the temperature is above a temperature threshold, the massage waiting time is reduced by the temperature difference value; if the temperature is below the temperature threshold, the massage waiting time is increased by the temperature difference value. Temperature affects the speed at which the liquid spreads: higher temperatures allow the liquid to spread more easily, shortening the massage waiting time; lower temperatures increase the massage waiting time.

[0137] In an embodiment of the present application, the massage waiting time corresponding to the liquid before replacement is adjusted based on the parameter difference between the viscosities of the two liquids before and after replacement. After obtaining the massage waiting time of the liquid after replacement, the massage waiting time of the liquid after replacement is adjusted again based on the skin temperature. This can further improve the accuracy of the massage waiting time, so that the liquid can be fully spread on the human skin, thereby ensuring the massage effect and user experience.

[0138] See also Figure 6 , Figure 6 FIG. 1 is a flow chart of another embodiment of the method for regulating the seepage mechanism provided in the embodiments of the present application; FIG. Figure 6 As shown, the method for regulating the seepage mechanism in the embodiment of the present application includes:

[0139] 601. The regulating device obtains a parameter difference between the dielectric constants of the two liquids before and after the replacement, and a parameter difference between the viscosities of the two liquids before and after the replacement.

[0140] In step 601 , the regulating device obtains the parameter difference between the dielectric constants of the two liquids before and after the replacement. For details, please refer to the relevant description in step 201 above, which will not be repeated here.

[0141] In step 601 , the regulating device obtains the parameter difference between the viscosities of the two liquids before and after the replacement. For details, please refer to the relevant description in step 301 above, which will not be repeated here.

[0142] 602. The regulating device obtains a first liquid seepage mechanism corresponding to the liquid before replacement.

[0143] In an embodiment of the present application, the first seepage mechanism also includes: seepage volume and massage waiting time. In this step, the adjustment device obtains the seepage volume and massage waiting time corresponding to the liquid before replacement. Please refer to the relevant description in the above step 102, which will not be repeated here.

[0144] 603. The regulating device determines a second seepage mechanism of the replaced liquid based on the difference between the dielectric constants of the two liquids before and after the replacement, the difference between the viscosities of the two liquids before and after the replacement, and the first seepage mechanism.

[0145] In the embodiment of the present application, the regulating device determines the second seepage mechanism based on the difference in dielectric constants of the liquids, the difference in viscosity of the liquids, and the first seepage mechanism. Specifically, the second seepage mechanism may include but is not limited to the following determination methods:

[0146] Method 1: First, the regulating device adjusts the seepage volume of the liquid before replacement according to the difference between the dielectric constants of the two liquids before and after replacement. The specific adjustment method is described in the relevant part above. Secondly, the regulating device adjusts the adjusted seepage volume again according to the difference between the viscosities of the two liquids before and after replacement, and finally obtains the seepage volume of the liquid after replacement. The specific adjustment method is described in the relevant part above.

[0147] Method 2: Contrary to the above-mentioned method 1, first, the regulating device adjusts the seepage amount of the liquid before replacement according to the difference between the viscosities of the two liquids before and after replacement; secondly, the regulating device adjusts the adjusted seepage amount again according to the difference between the viscosities of the two liquids before and after replacement, and finally obtains the seepage amount of the liquid after replacement.

[0148] Method three: On the one hand, the regulating device adjusts the exudate amount of the liquid before replacement according to at least one of the difference between the dielectric constants of the two liquids before and after replacement, or the difference between the viscosities of the two liquids before and after replacement, to obtain the exudate amount of the liquid after replacement; on the other hand, the regulating device adjusts the massage waiting time of the liquid before replacement according to the difference between the viscosities of the two liquids before and after replacement, to obtain the massage waiting time of the liquid after replacement; or, the regulating device adjusts the exudate amount of the liquid before replacement and the skin humidity according to the difference between the viscosities of the two liquids before and after replacement, to obtain the massage waiting time of the liquid after replacement.

[0149] It should be noted that the specific detailed operations and beneficial effects corresponding to the adjustment or determination methods mentioned in the above methods 1 to 3 can be found in the above Figure 1-Figure 5 The description of the relevant parts and beneficial effects in the corresponding embodiments will not be repeated here.

[0150] Corresponding to the aforementioned application function implementation method embodiment, the present application also provides a seepage mechanism adjustment device, a massager, a non-transitory machine-readable storage medium and corresponding embodiments, which will be described in turn below.

[0151] See also Figure 7 , Figure 7 This is a structural schematic diagram of the adjustment device provided in an embodiment of the present application.

[0152] like Figure 7 As shown, the adjustment device 700 in the embodiment of the present application is suitable for use in a massager, which has a liquid storage device and a microporous electrode. The liquid in the liquid storage device can seep out through the microporous electrode to assist massage. The adjustment device 700 includes: an acquisition module 701 and a determination module 702, wherein the acquisition module 701 is used to obtain the parameter difference between the physical parameters of the two liquids in the liquid storage device before and after replacement, and the two liquids before and after replacement are respectively: the liquid before replacement and the liquid after replacement in the massager; the acquisition module 701 is also used to obtain a first seepage mechanism corresponding to the liquid before replacement; the determination module 702 is used to determine the second seepage mechanism of the liquid after replacement based on the parameter difference of the acquisition module and the first seepage mechanism.

[0153] Optionally, in some embodiments of the present application, the acquisition module 701 is specifically used to: obtain at least one of the parameter difference between the dielectric constants of two liquids in the liquid storage device before and after replacement, the parameter difference between the conductivity of two liquids in the liquid storage device before and after replacement, or the parameter difference between the viscosity of two liquids in the liquid storage device before and after replacement.

[0154] Optionally, in some embodiments of the present application, when the physical parameters include dielectric constant, the determination module 702 is specifically used to determine the seepage amount of the second seepage mechanism based on the difference between the dielectric constants of the two liquids before and after replacement obtained by the acquisition module 701 and the seepage amount of the first seepage mechanism.

[0155] Optionally, in some embodiments of the present application, the determination module 702 is specifically used to: compare the first dielectric constant of the liquid before replacement with the second dielectric constant of the liquid after replacement; if the first dielectric constant is greater than the second dielectric constant, increase the seepage amount of the first seepage mechanism to obtain the seepage amount of the second seepage mechanism; if the first dielectric constant is less than the second dielectric constant, reduce the seepage amount of the first seepage mechanism to obtain the seepage amount of the second seepage mechanism.

[0156] Optionally, in some embodiments of the present application, the difference between the dielectric constants of the two liquids before and after replacement obtained by the acquisition module 701 is positively correlated with the adjustment amplitude of the exudate amount.

[0157] Optionally, in some embodiments of the present application, when the physical parameter includes conductivity, the determination module 702 is specifically used to determine the seepage amount of the second seepage mechanism based on the difference between the conductivities of the two liquids before and after replacement obtained by the acquisition module 701 and the seepage amount of the first seepage mechanism.

[0158] Optionally, in some embodiments of the present application, the determination module 702 is specifically used to: compare the first conductivity of the liquid before replacement with the second conductivity of the liquid after replacement; if the first conductivity is greater than the second conductivity, increase the seepage amount of the first seepage mechanism to obtain the seepage amount of the second seepage mechanism; if the first conductivity is less than the second conductivity, reduce the seepage amount of the first seepage mechanism to obtain the seepage amount of the second seepage mechanism.

[0159] Optionally, in some embodiments of the present application, the difference between the electrical conductivities of the two liquids before and after replacement obtained by the acquisition module 701 is positively correlated with the adjustment amplitude of the exudate volume.

[0160] Optionally, in some embodiments of the present application, when the physical parameter includes viscosity, the determination module 702 is specifically used to determine the seepage amount of the second seepage mechanism based on the difference between the viscosities of the two liquids before and after replacement and the seepage amount of the first seepage mechanism.

[0161] Optionally, in some embodiments of the present application, the determination module 702 is specifically used to: compare the first viscosity of the liquid before replacement with the second viscosity of the liquid after replacement; if the first viscosity is greater than the second viscosity, reduce the exudate amount of the first exudate mechanism to obtain the exudate amount of the second exudate mechanism; if the first viscosity is less than the second viscosity, increase the exudate amount of the first exudate mechanism to obtain the exudate amount of the second exudate mechanism.

[0162] Optionally, in some embodiments of the present application, the difference between the viscosities of the two liquids before and after replacement obtained by the acquisition module 701 is positively correlated with the adjustment amplitude of the exudate volume.

[0163] Optionally, in some embodiments of the present application, when the physical parameters include viscosity, the determination module 702 is specifically used to determine the massage waiting time of the second exudation mechanism based on the difference between the viscosities of the two liquids before and after replacement, and the massage waiting time of the first exudation mechanism.

[0164] Optionally, in some embodiments of the present application, the determination module 702 is specifically used to: compare the first viscosity of the liquid before replacement with the second viscosity of the liquid after replacement; if the first viscosity is greater than the second viscosity, reduce the massage waiting time of the first exudation mechanism to obtain the massage waiting time of the second exudation mechanism; if the first viscosity is less than the second viscosity, increase the massage waiting time of the first exudation mechanism to obtain the massage waiting time of the second exudation mechanism.

[0165] Optionally, in some embodiments of the present application, the difference between the viscosities of the two liquids before and after the replacement obtained by the acquisition module 701 is positively correlated with the adjustment range of the massage waiting time.

[0166] Optionally, in some embodiments of the present application, the acquisition module 701 is further used to: obtain the skin humidity of the part where the massager contacts the human body; after the determination module 702 determines the massage waiting time of the second exudation mechanism based on the difference between the viscosities of the two liquids before and after replacement and the massage waiting time of the first exudation mechanism, the determination module 702 is further used to: adjust the massage waiting time of the second exudation mechanism according to the skin humidity to obtain the adjusted massage waiting time.

[0167] Optionally, in some embodiments of the present application, the determination module 702 is specifically used to: if the skin humidity is higher than the temperature threshold, reduce the massage waiting time of the second exudation mechanism according to the temperature difference between the skin humidity and the temperature threshold, and the temperature threshold is pre-set; if the skin humidity is lower than the temperature threshold, increase the massage waiting time of the second exudation mechanism according to the temperature difference between the skin humidity and the temperature threshold.

[0168] Optionally, in some embodiments of the present application, the temperature difference between the skin humidity obtained by the acquisition module 701 and the temperature threshold is positively correlated with the adjustment amplitude of the massage waiting time of the second exudation mechanism.

[0169] The adjustment device provided in the present application obtains the parameter difference between the physical parameters of the two liquids before and after replacement, adjusts the seepage mechanism corresponding to the liquid before replacement, i.e., the first seepage mechanism, and obtains the seepage mechanism of the liquid after replacement, i.e., the second seepage mechanism, so that the second seepage mechanism obtained after adjustment can prevent liquid waste or insufficient seepage, thereby ensuring the massage effect and user experience.

[0170] Regarding the apparatus 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.

[0171] See also Figure 8 , Figure 8 FIG. 1 is a structural diagram of a massager provided in an embodiment of the present application; Figure 8 As shown, the massager 800 in the embodiment of the present application includes: a liquid storage device 801, a microporous electrode 802 and an adjustment device 803, wherein the microporous electrode 802 is provided with micropores;

[0172] The liquid storage device 801 is used to store conductive liquid;

[0173] The microporous electrode 802 is used to output a low-frequency pulse current at a signal level;

[0174] The adjustment device 803 is used to: obtain the parameter difference between the physical parameters of the two liquids before and after replacement, the two liquids before and after replacement are: the liquid before replacement and the liquid after replacement in the massager, and the two liquids before and after replacement are both liquids used for massage assistance; obtain the first seepage mechanism corresponding to the liquid before replacement; determine the second seepage mechanism of the liquid after replacement based on the parameter difference of the acquisition module and the first seepage mechanism.

[0175] Optionally, the microporous electrode 802 may also be provided with a sensor having a humidity detection function, for detecting the humidity of the part where the microporous electrode 802 contacts the human body.

[0176] Optionally, the liquid storage device 801 and the microporous electrode 802 are connected via a hose to drain the conductive liquid from the liquid storage device 801 into the micropores on the microporous electrode 802 .

[0177] Optionally, the adjustment device 803 is also used to perform part or all of the steps of the above method of the present application. The solution of the present application has been described in detail above with reference to the accompanying drawings.

[0178] See also Figure 9 , Figure 9 This is another structural diagram of the massager provided in the embodiment of the present application. Figure 9 As shown, the massager 900 in the embodiment of the present application includes: a memory 901 and a processor 902.

[0179] The processor 902 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 any conventional processor.

[0180] The memory 901 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 the processor 902 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 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 the permanent storage device. In 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 dynamic random access memory. The system memory may store some or all instructions and data required by the processor during operation. In addition, the memory 901 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 magnetic disks and / or optical disks may also be used.

[0181] In some embodiments, the memory 901 may include a readable and / or writable removable storage device, such as a compact 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. Computer-readable storage media do not include carrier waves and transient electronic signals transmitted wirelessly or wired.

[0182] The memory 901 stores executable codes. When the executable codes are processed by the processor 902 , the processor 902 may execute part or all of the above-mentioned methods.

[0183] The scheme of the present application has been described in detail above with reference to the accompanying drawings. In the above embodiments, the descriptions of each embodiment have their own emphasis. For parts that are not described in detail in a certain embodiment, please refer to the relevant descriptions of other embodiments. Those skilled in the art should also be aware that the actions and modules involved in the description are not necessarily required for this application. In addition, it is understood that the steps in the method of the embodiment of the present application can be adjusted in sequence, merged and deleted according to actual needs, and the modules in the device of the embodiment of the present application can be merged, divided and deleted according to actual needs.

[0184] 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.

[0185] Alternatively, the present application can also be implemented as a non-transitory machine-readable storage medium (or computer-readable storage medium, or machine-readable storage medium) 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.

[0186] Those skilled in the art will further appreciate that the various illustrative logical blocks, modules, circuits, and algorithm steps described in connection with the application herein may be implemented as electronic hardware, computer software, or combinations of both.

[0187] The flow charts and block diagrams in the accompanying drawings show the possible architecture, functions and operations of the systems and methods according to multiple embodiments of the present application. In this regard, each box in the flow chart or block diagram can represent a part of a module, program segment or code, and the part of the module, program segment or code contains one or more executable instructions for realizing the specified logical function. It should also be noted that in some alternative implementations, the functions marked in the box can also occur in a different order than that marked in the accompanying drawings. For example, two consecutive boxes can actually be executed substantially in parallel, and they can sometimes be executed in the opposite order, depending on the functions involved. It should also be noted that each box in the block diagram and / or flow chart, and the combination of the boxes in the block diagram and / or flow chart can be implemented with a dedicated hardware-based system that performs the specified function or operation, or can be implemented with a combination of dedicated hardware and computer instructions.

[0188] The embodiments of the present application have been described above. The above description is illustrative and not exhaustive, and is not 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 selected to best explain the principles of the embodiments, their practical applications, or improvements to the technology in the market, or to enable other persons skilled in the art to understand the embodiments disclosed herein.

Claims

1. A method for regulating the fluid seepage mechanism of a massager, characterized in that: The massager is provided with a liquid storage device and microporous electrodes, and the liquid in the liquid storage device can seep out through the microporous electrodes to assist massage. The method comprises: Obtaining a parameter difference between physical parameters of two liquids in the liquid storage device before and after replacement, wherein the two liquids before and after replacement are respectively: the liquid in the liquid storage device before replacement and the liquid after replacement; Obtaining a first seepage mechanism corresponding to the liquid before replacement; A second seepage mechanism of the replaced fluid is determined according to the parameter difference and the first seepage mechanism.

2. The method according to claim 1, characterized in that The physical parameter includes at least one of a dielectric constant, a conductivity, and a viscosity of the liquid.

3. The method according to claim 2, characterized in that When the physical parameter includes the dielectric constant or the conductivity; Determining a second seepage mechanism of the replaced liquid based on the parameter difference and the first seepage mechanism includes: The amount of seepage of the second seepage mechanism is determined according to the difference between the dielectric constants or conductivities of the two liquids before and after the replacement and the amount of seepage of the first seepage mechanism.

4. The method according to claim 3, characterized in that The determining the amount of seepage of the second seepage mechanism according to the difference between the dielectric constants or conductivities of the two liquids before and after the replacement and the amount of seepage of the first seepage mechanism includes: comparing a first dielectric constant or a first conductivity of the liquid before replacement with a second dielectric constant or a second conductivity of the liquid after replacement; If the first dielectric constant is greater than the second dielectric constant, or the first conductivity is greater than the second conductivity, increasing the amount of liquid seepage of the first liquid seepage mechanism to obtain the amount of liquid seepage of the second liquid seepage mechanism; If the first dielectric constant is smaller than the second dielectric constant, or the first conductivity is smaller than the second conductivity, the amount of liquid seepage of the first liquid seepage mechanism is reduced to obtain the amount of liquid seepage of the second liquid seepage mechanism.

5. The method according to claim 3, characterized in that The difference between the dielectric constant or conductivity of the two liquids before and after the replacement is positively correlated with the adjustment range of the exudate volume.

6. The method according to claim 2, characterized in that When the physical parameter includes the viscosity; Determining a second seepage mechanism of the replaced liquid based on the parameter difference and the first seepage mechanism includes: The amount of seepage of the second seepage mechanism is determined according to the difference between the viscosities of the two liquids before and after the replacement and the amount of seepage of the first seepage mechanism.

7. The method according to claim 6, characterized in that The determining the amount of seepage of the second seepage mechanism according to the difference between the viscosities of the two liquids before and after the replacement and the amount of seepage of the first seepage mechanism comprises: comparing a first viscosity of the liquid before the replacement with a second viscosity of the liquid after the replacement; If the first viscosity is greater than the second viscosity, reducing the amount of seepage of the first seepage mechanism to obtain the amount of seepage of the second seepage mechanism; If the first viscosity is less than the second viscosity, the amount of liquid seepage of the first liquid seepage mechanism is increased to obtain the amount of liquid seepage of the second liquid seepage mechanism.

8. The method according to claim 6, characterized in that The difference in viscosity between the two liquids before and after the replacement is positively correlated with the adjustment range of the exudate volume.

9. The method according to claim 2, characterized in that When the physical parameter includes the viscosity; Determining a second seepage mechanism of the replaced liquid based on the parameter difference and the first seepage mechanism includes: The massage waiting time of the second liquid seepage mechanism is determined according to the difference between the viscosities of the two liquids before and after the replacement and the massage waiting time of the first liquid seepage mechanism.

10. The method according to claim 9, characterized in that The step of determining the massage waiting time of the second liquid seepage mechanism according to the difference between the viscosities of the two liquids before and after the replacement and the massage waiting time of the first liquid seepage mechanism comprises: comparing a first viscosity of the liquid before the replacement with a second viscosity of the liquid after the replacement; If the first viscosity is greater than the second viscosity, reducing the massage waiting time of the first seepage mechanism to obtain the massage waiting time of the second seepage mechanism; If the first viscosity is less than the second viscosity, the massage waiting time of the first seepage mechanism is increased to obtain the massage waiting time of the second seepage mechanism.

11. The method according to claim 9, characterized in that The difference in viscosity between the two liquids before and after the replacement is positively correlated with the adjustment range of the massage waiting time.

12. The method according to claim 9, characterized in that The method further comprises: obtaining the skin humidity of the part where the massager contacts the human body; After determining the massage waiting time of the second liquid exudation mechanism based on the difference between the viscosities of the two liquids before and after the replacement and the massage waiting time of the first liquid exudation mechanism, the method further includes: The massage waiting time of the second liquid seepage mechanism is adjusted according to the skin humidity to obtain an adjusted massage waiting time.

13. The method according to claim 12, characterized in that The adjusting the massage waiting time of the second liquid permeation mechanism according to the skin humidity includes: If the skin humidity is higher than a temperature threshold, reducing the massage waiting time of the second liquid permeation mechanism according to the temperature difference between the skin humidity and the temperature threshold, wherein the temperature threshold is preset; If the skin humidity is lower than the temperature threshold, the massage waiting time of the second liquid permeation mechanism is increased according to the temperature difference between the skin humidity and the temperature threshold.

14. The method according to claim 13, characterized in that The temperature difference between the skin humidity and the temperature threshold is positively correlated with the adjustment amplitude of the massage waiting time of the second permeation mechanism.

15. The method according to claim 2, characterized in that When the physical parameters include the dielectric constant and the viscosity; Determining a second seepage mechanism of the replaced liquid based on the parameter difference and the first seepage mechanism includes: The second seepage mechanism of the replaced liquid is determined based on the difference between the dielectric constants of the two liquids before and after the replacement, the difference between the viscosities of the two liquids before and after the replacement, and the first seepage mechanism.

16. An adjusting device, characterized in that: The regulating device is suitable for use in a massager having a liquid storage device and microporous electrodes. Liquid in the liquid storage device can seep through the microporous electrodes to assist massage. The regulating device includes: an acquisition module, configured to acquire a parameter difference between physical parameters of two liquids in the liquid storage device before and after replacement, wherein the two liquids before and after replacement are respectively: the liquid in the liquid storage device before replacement and the liquid after replacement; The acquisition module is further configured to acquire a first seepage mechanism corresponding to the liquid before replacement; A determination module is configured to determine a second seepage mechanism of the replaced liquid according to the parameter difference of the acquisition module and the first seepage mechanism.

17. A massager, characterized in that: include: A liquid storage device, a microporous electrode and a regulating device, wherein the regulating device is used to perform the permeation mechanism regulating method as described in any one of claims 1 to 15.

18. 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 for regulating the permeation mechanism according to any one of claims 1 to 15.

19. A non-transitory machine-readable storage medium having executable codes stored thereon, which, when executed by a processor of an electronic device, causes the processor to execute the method for regulating the permeation mechanism according to any one of claims 1 to 15.

Citation Information

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