Leakage Hole Blockage Detection Method, Wearable Massage Device and Storage Medium

By detecting the parameter values between the electrode sheets of the wearable massage equipment, we can judge whether the liquid seepage hole is blocked, and clear it when necessary, the problem of the liquid seepage holes of the electrode sheet is blocked, and the working reliability and user experience of the equipment are improved.

CN115999052BActive Publication Date: 2025-07-25GUANGDONG SKG INTELLIGENT TECH CO LTD
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Patent Information

Application Number
CN202111237300.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2021-10-21
Publication Date
2025-07-25
Estimated Expiration
2041-10-21

AI Technical Summary

Technical Problem

In existing wearable massage equipment, the effusion holes of the electrode sheet are easily blocked by the mixture of dust, sweat and sebum, resulting in the failure of the effusion, making it difficult for users to detect the naked eye and affect the user experience.

Method used

By obtaining the seepage instruction, detect the parameter values (such as impedance or current) between the electrode sheets, determine whether the seepage hole is blocked, and clear the blockage when it is detected to ensure that the seepage proceeds smoothly.

Benefits of technology

It realizes low-cost, safe and reliable detection of the blockage of the electrode sheet liquid seepage hole, improves the reliability and user experience of the equipment, and avoids cumbersome user operations.

✦ Generated by Eureka AI based on patent content.

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Abstract

An embodiment of the present application discloses a method for detecting clogging of liquid seepage holes, a wearable massage device, and a storage medium. Among them, the method is applied to the wearable massage device, and the wearable massage device includes at least two electrode sheets. Each electrode sheet includes a liquid seepage hole for liquid seepage. The method includes: obtaining a liquid seepage instruction; performing liquid seepage on at least two target electrode sheets indicated by the liquid seepage instruction; when the liquid seepage is completed, detecting a first parameter value between every two of the at least two target electrode sheets; and judging whether there is a clogging of the liquid seepage hole of the electrode sheet among the at least two target electrode sheets according to the first parameter value between each pair of electrodes. By using the embodiment of the present application, it is possible to accurately detect whether the liquid seepage hole of the electrode sheet is clogged, with low cost and high detection efficiency.
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Description

Technical Field

[0001] The present application relates to the field of wearable devices, and in particular, to a method for detecting clogging of liquid seepage holes, a wearable massage device, and a storage medium. Background Art

[0002] Electrical pulse massage is a technological trend, and products such as portable U-shaped cervical massagers gradually dominate the market. However, a pain point of massagers using electrical pulse therapy technology is that it will cause stinging to users. The reason for the stinging is that the current density per unit area is too large, and the current density is related to the contact area of the electrode sheet. Since it is difficult to achieve good contact between the electrode sheet and the human body, some technical solutions adopt the method of increasing the pre-pressure of the electrode sheet, but increasing the pre-pressure will bring the uncomfortable problem of feeling choked to the user. In view of this background, another method of automatic liquid seepage of the electrode sheet is gradually accepted by massager products. By automatically seeping liquid through the massager, the contact resistance and dielectric constant between the electrode sheet and the human body are improved, and in addition to enhancing the user experience, it does not cause stinging.

[0003] However, in the related technologies of automatic liquid seepage of the electrode sheet, a difficulty is that a mixture of dust in the air, human sweat, and sebum generated by skin aging will block the liquid seepage holes of the electrode sheet, resulting in the inability of the electrode sheet to complete liquid seepage. And due to the design requirements of aesthetics and liquid seepage volume control, the area of the liquid seepage holes is generally very small, and it is difficult for users to visually detect whether the liquid seepage holes are blocked. Therefore, there is an urgent need for a method for detecting clogging of liquid seepage holes that is low-cost, safe and reliable, and convenient and fast to check whether the liquid seepage holes of the electrode sheet are blocked. Summary of the Invention

[0004] Embodiments of the present application provide a method for detecting clogging of liquid seepage holes, a wearable massage device, and a storage medium, which can safely and reliably detect whether the liquid seepage holes of the detection electrode sheet are blocked, and have low detection cost and high detection efficiency. The technical solution is as follows:

[0005] In a first aspect, an embodiment of the present application provides a method for detecting clogging of liquid seepage holes, which is applied to a wearable massage device. The wearable massage device includes at least two electrode sheets including liquid seepage holes for liquid seepage. The method includes:

[0006] Obtain a liquid seepage instruction;

[0007] Perform liquid seepage on at least two target electrode sheets indicated by the liquid seepage instruction;

[0008] When the liquid seepage is completed, detect a first parameter value between each pair of electrodes in at least two target electrode sheets;

[0009] Judge whether there is a blockage of the liquid seepage holes of the electrode sheet in at least two target electrode sheets according to the first parameter value between each pair of electrodes.

[0010] In a second aspect, an embodiment of the present application provides a wearable massage device, which includes at least two electrode sheets each including a liquid seepage hole for seeping liquid. The wearable massage device further includes:

[0011] an acquisition module, configured to acquire a liquid seepage instruction;

[0012] a liquid seepage module, configured to perform liquid seepage on at least two target electrode sheets indicated by the liquid seepage instruction;

[0013] a detection module, configured to detect a first parameter value between each pair of electrodes in the at least two target electrode sheets when the liquid seepage is completed;

[0014] a judgment module, configured to judge whether there is a blockage in the liquid seepage hole of the electrode sheet in the at least two target electrode sheets according to the first parameter value between each pair of electrodes.

[0015] In a third aspect, an embodiment of the present application provides a computer storage medium storing multiple instructions, which are adapted to be loaded and executed by a processor to perform the above method steps.

[0016] In a fourth aspect, an embodiment of the present application provides a wearable massage device, which may include: at least two electrode sheets each including a liquid seepage hole, a processor, and a memory; wherein, the memory stores a computer program, and the computer program is adapted to be loaded and executed by the processor to perform the above method steps. Each electrode sheet includes a liquid seepage hole for seeping liquid.

[0017] The beneficial effects brought by the technical solutions provided by some embodiments of the present application at least include:

[0018] When the present application performs liquid seepage on two target electrode sheets according to the acquired liquid seepage instruction, it detects the first parameter value between each pair of electrodes to judge whether there is a blockage in the liquid seepage hole of the electrode sheet, effectively solving the problem of how to detect whether the liquid seepage hole of the electrode sheet in a wearable massage device provided with an electrode sheet is blocked, thereby ensuring that the wearable massage device is started when the electrode sheet seeps liquid smoothly, improving the working reliability of the wearable massage device, as well as improving the user experience. Moreover, the detection method has a low cost, high detection efficiency, does not require the user to perform cumbersome detection means by themselves, and has good detection safety. Description of the Drawings

[0019] To more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the accompanying drawings required for use in the description of the embodiments or the prior art. Obviously, the accompanying drawings in the following description are only some embodiments of the present application. For those of ordinary skill in the art, without creative efforts, other accompanying drawings can also be obtained based on these drawings.

[0020] Figure 1 is a schematic structural diagram of a wearable massage device provided by an embodiment of the present application;

[0021] Figure 2 is a schematic flowchart of a method for detecting the blockage of a liquid seepage hole provided by an embodiment of the present application;

[0022] Figure 3 is a schematic circuit diagram of an equivalent circuit of an electrode sheet provided by an embodiment of the present application;

[0023] Figure 4A is a schematic flowchart of a method for detecting blockage based on a first parameter value provided by an embodiment of the present application;

[0024] Figure 4B is a schematic flowchart of another method for detecting blockage based on a first parameter value provided by an embodiment of the present application;

[0025] Figure 5 is a schematic flowchart of a method for detecting the blockage of a liquid seepage hole provided by an embodiment of the present application;

[0026] Figure 6 is a schematic flowchart of a method for detecting the blockage of a liquid seepage hole provided by an embodiment of the present application;

[0027] Figure 7 is a schematic flowchart of a method for detecting the blockage of a liquid seepage hole provided by an embodiment of the present application;

[0028] Figure 8 is a schematic flowchart of a method for detecting the blockage of a liquid seepage hole provided by an embodiment of the present application;

[0029] Figure 9 is a schematic structural diagram of a wearable massage device provided by an embodiment of the present application;

[0030] Figure 10 is a schematic structural diagram of another wearable massage device provided by an embodiment of the present application. Detailed implementation manners

[0031] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present application without creative efforts shall fall within the protection scope of the present application.

[0032] In the description of the present application, it should be understood that the terms "first", "second", etc. are only used for descriptive purposes and cannot be construed as indicating or implying relative importance. In the description of the present application, it should be noted that unless otherwise clearly specified and limited, the terms "comprising" and "having", and any variations thereof, are intended to cover non-exclusive inclusion. For example, a process, method, system, product, or device that includes a series of steps or units is not limited to the listed steps or units, but optionally further includes unlisted steps or units, or optionally further includes other steps or units inherent to these processes, methods, products, or devices. For those of ordinary skill in the art, the specific meanings of the above terms in the present application can be understood according to specific circumstances. In addition, in the description of the present application, unless otherwise stated, "a plurality of" means two or more. "And / or" describes the association relationship of associated objects and indicates that three relationships can exist. For example, A and / or B can represent: A exists alone, A and B exist simultaneously, and B exists alone. The character " / " generally represents an "or" relationship between the preceding and following associated objects.

[0033] The present application will be described in detail below with reference to specific embodiments.

[0034] As Figure 1 shown, it is a schematic structural diagram of a wearable massage device provided by an embodiment of the present application. The schematic diagram includes a wearable massage device 10. For example, the wearable massage device 10 can be a neck massager for the user's neck, an eye massager for the user's eyes, etc.

[0035] The wearable massage device 10 includes at least two electrode sheets each including liquid seepage holes for liquid seepage. Among them, the wearable massage device 10 can include a plurality of electrode sheets, and each electrode sheet includes liquid seepage holes, or it can be that some of the electrode sheets include liquid seepage holes and the other part does not. Hereinafter, the case where each electrode sheet includes liquid seepage holes will be taken as an example for description.

[0036] Taking the wearable device 10 including four electrode sheets with liquid seepage holes as an example, as Figure 1As shown in the figure, the wearable device 10 includes: a first electrode sheet 101, a second electrode sheet 102, a third electrode sheet 103, and a fourth electrode sheet 104. Each electrode sheet is provided with liquid seepage holes for liquid seepage. For example, the first electrode sheet 101 is provided with a liquid seepage hole 1011. It can be understood that the present application does not make any limitation on the number of electrode sheets included in the wearable massage device and the number of liquid seepage holes included in each electrode sheet.

[0037] In one embodiment, the wearable massager 10 may further include a liquid storage device (not shown) for storing a conductive liquid. Each electrode sheet can be connected to the liquid storage device through a liquid transmission pipeline (such as a catheter, not shown). A valve (such as a solenoid valve) can be provided on the liquid transmission pipeline to control the on / off of the liquid transmission pipeline. When the valve is opened, the liquid stored in the liquid storage device can be transmitted through the liquid transmission pipeline to flow out of the liquid seepage holes. When the valve is closed, the liquid stored in the liquid storage device cannot be transmitted through the liquid transmission pipeline to flow out of the liquid seepage holes. Preferably, the valve can be provided at a position close to the liquid seepage holes.

[0038] It can be understood that the structure of the above wearable massage device is only an example, and the present application does not make any limitation on the number and structure of the electrode sheets included in the wearable massage device.

[0039] Since a pain point of a massager using electro-pulse therapy technology is that it will cause stinging to the user, in the related art, a method of automatically seeping liquid through the massager is used to improve the contact resistance and dielectric constant between the electrode sheet and the human body to solve the stinging problem. However, in the technical solution of automatic liquid seepage of the electrode sheet, there is a difficulty that a mixture of dust in the air, human sweat, and sebum generated by skin aging will block the liquid seepage holes of the electrode sheet, resulting in the inability of the electrode sheet to complete liquid seepage. And due to the design requirements of aesthetics and liquid seepage volume control, the area of the liquid seepage holes is generally very small, and it is difficult for the user to detect whether the liquid seepage holes are blocked with the naked eye.

[0040] In one embodiment, as Figure 2 shown, it is a schematic flowchart of a method for detecting blockage of liquid seepage holes provided by an embodiment of the present application. This method can be implemented depending on a computer program and can run on a wearable massage device. This computer program can be integrated in an application or run as an independent tool class application.

[0041] Specifically, the method for detecting blockage of liquid seepage holes includes:

[0042] S101. Obtain a liquid seepage instruction.

[0043] Specifically, a seepage instruction can be understood as an instruction for instructing a wearable massage device to perform seepage. For example, when the processor of the wearable massage device detects a massage instruction input by the user, the above massage instruction is also the seepage instruction, and the wearable massage device performs seepage based on the massage instruction. In another embodiment, the processor of the wearable massage device receives a seepage instruction from the user through an input device of the wearable massage device.

[0044] S102. Perform seepage on at least two target electrode pads indicated by the seepage instruction.

[0045] Specifically, at least two target electrode pads can be understood as at least two or all of all the electrode pads included in the wearable massage device. For example, Figure 1 In the shown wearable massage device, at least two target electrode pads can be the first electrode pad 101 and the second electrode pad 102, or the first electrode pad 101, the second electrode pad 102, and the third electrode pad 103, or the first electrode pad 101, the second electrode pad 102, the third electrode pad 103, or the fourth electrode pad 104.

[0046] After receiving the seepage instruction, the valve corresponding to the target electrode pad can be controlled to open to perform seepage on the target electrode pad.

[0047] S103. When the seepage is completed, detect the first parameter value between each pair of electrodes in at least two target electrode pads.

[0048] Specifically, the first parameter value can be an impedance value or a current value, and the impedance value and the current value can be converted.

[0049] Next, taking two target electrode pads as an example, an equivalent circuit diagram corresponding to the circuit formed by the two target electrode pads and the skin will be introduced. As Figure 3 shown, the shown circuit diagram includes: a first resistor R1, a second resistor R2, a third resistor R3, a fourth resistor R4, a first capacitor C1, and a second capacitor C2. The first end of the first resistor R1 is respectively connected to the first end of the first capacitor C1, the first end of the third resistor R3, and the first end of the fourth resistor R4. The second end of the first resistor R1 is connected to the second end of the first capacitor C1. The second end of the third resistor R3 is respectively connected to the second end of the fourth resistor R4, the first end of the second resistor R2, and the first end of the second capacitor C2. The second end of the second capacitor C2 is connected to the second end of the second resistor R2.

[0050] The parallel circuit of the first resistor R1 and the first capacitor C1 is the equivalent circuit of the target electrode sheet, and the parallel circuit of the second resistor R2 and the second capacitor C2 is the equivalent circuit of another target electrode sheet. The third resistor R3 is the equivalent circuit of the skin between the two electrode sheets. When the liquid seepage holes of the two target electrode sheets start to seep liquid, the parallel circuit of the third resistor R3 and the fourth resistor R4 is the equivalent circuit of the skin after seepage.

[0051] S104. Determine whether there is a blockage in the liquid seepage hole of at least one electrode sheet among at least two target electrode sheets according to the first parameter value between each pair of electrodes.

[0052] It should be noted that since the skin surface is not smooth, there is a certain gap between the electrode sheet and the skin. In the case of no liquid seepage, the contact impedance between the electrode sheet and the skin will be relatively large, and the measured impedance value is relatively large or the current value is relatively small; if the liquid seepage hole is not blocked, after the liquid seepage, the conductive liquid infiltrates the skin and fills the gap, making the contact impedance decrease significantly, and the measured impedance value is relatively small or the current value is relatively large. If the liquid seepage hole is blocked, the conductive liquid cannot ooze out or the amount of oozing is too small, then the contact impedance will not decrease significantly.

[0053] According to Figure 3 As can be seen from the equivalent circuit diagram shown, when the liquid seepage hole completes the liquid seepage, the equivalent circuit of the skin between the two target electrode sheets changes from the circuit composed of the third resistor R3 to the equivalent circuit composed of the third resistor R3 and the fourth resistor R4. Since the working voltage applied to the target electrode sheet remains unchanged, the current value and impedance value between the two target electrode sheets will change accordingly.

[0054] Specifically, as Figure 4A shown, it is a schematic flowchart of a blockage detection method based on the first parameter value provided by an embodiment of the present application. In this embodiment, the first parameter value is the impedance value, that is, S104 specifically includes:

[0055] S1041A. When there is at least one first impedance value greater than the first threshold among the first impedance values between each pair of electrodes, determine that there is a blockage in the liquid seepage hole of at least one electrode sheet among at least two target electrode sheets.

[0056] At this time, the first parameter value is the impedance value. Obtain the first impedance value between each pair of electrodes. When it is detected that there is at least one first impedance value greater than the first threshold, determine that there is a blockage in the liquid seepage hole of at least one electrode sheet among at least two target electrode sheets.

[0057] For example, at least two target electrode sheets include a first electrode sheet 101, a second electrode sheet 102, and a third electrode sheet 103. A first impedance value R1 between the first electrode sheet 101 and the second electrode sheet 102 is detected, a first impedance value R2 between the first electrode sheet 101 and the third electrode sheet 103 is detected, and a first impedance value R3 between the second electrode sheet 102 and the third electrode sheet 103 is detected. When one of the first impedance value R1, the first impedance value R2, and the first impedance value R3 is greater than a first threshold value R0, it is confirmed that there is a clogging of the liquid seepage holes in at least one of the at least two target electrode sheets.

[0058] It can be understood that the clogging of the liquid seepage holes of the electrode sheet described in this application can be understood as that the liquid seepage amount of the electrode sheet does not reach a preset threshold value. For example, the preset threshold value is 1 milliliter. The above first parameter value is obtained based on two electrode sheets whose liquid seepage amounts reach the preset threshold value. Whether there is a clogging of the liquid seepage holes in at least two target electrode sheets is judged based on the first parameter value, that is, it is judged whether there is an electrode sheet whose liquid seepage amount does not reach the preset threshold value.

[0059] In some possible embodiments, an electrode sheet may include a plurality of liquid seepage holes. When judging whether the liquid seepage holes of the electrode sheet are clogged, it can be judged whether the total liquid seepage amount of the plurality of liquid seepage holes included in the electrode sheet reaches the above preset threshold value. If not, it can be regarded as the clogging of the liquid seepage holes of the electrode sheet.

[0060] Next, in combination with Figure 3 introduce how to calculate the first impedance value R1 between the first electrode sheet 101 and the second electrode sheet 102. Assume Figure 3 In the equivalent circuit shown, the circuit composed of the first capacitor C1 and the first resistor R1 is the equivalent circuit of the first electrode sheet 101, and the circuit composed of the second resistor C2 and the second capacitor C2 is the equivalent circuit of the second electrode sheet 102. That is, the circuit composed of the third capacitor R3 and the fourth resistor R4 is the equivalent circuit of the skin between the first electrode sheet 101 and the second electrode sheet 102. Then the first impedance value R1 is Figure 3 the impedance obtained from the equivalent circuit shown (including the first resistor R1, the second resistor R2, the third resistor R3, the fourth resistor R4, the first capacitor C1, and the second capacitor C2).

[0061] It can be known that the above calculation method of the first impedance value between the first electrode sheet 101 and the second electrode sheet 102 is also applicable to calculating the first impedance value R2 between the first electrode sheet 101 and the third electrode sheet 103, and is also applicable to calculating the first impedance value R3 between the second electrode sheet 102 and the third electrode sheet 103, which will not be elaborated here one by one.

[0062] S1042A. When the first impedance values between each pair of electrodes are all less than or equal to the first threshold value, it is determined that the liquid seepage holes of at least two target electrode plates are not blocked.

[0063] When all of the first impedance values among the first impedance value R1, the first impedance value R2, and the first impedance value R3 are less than or equal to the first threshold value R0, it is confirmed that the liquid seepage holes of at least two target electrode plates are not blocked.

[0064] Specifically, as Figure 4B shown, it is a schematic flowchart of another clogging detection method based on the first parameter value provided by an embodiment of the present application. In this embodiment, the first parameter value is a current value, that is, S104 specifically includes:

[0065] S1041B. When there is a first current value among the first current values between each pair of electrodes that is less than the second threshold value, it is determined that there is at least one electrode plate among at least two target electrode plates whose liquid seepage hole is blocked.

[0066] At this time, the first parameter value is a current value. The first current values between each pair of electrodes are obtained. When it is detected that there is at least one first impedance value less than the second threshold value, it is determined that there is at least one electrode plate among at least two target electrode plates whose liquid seepage hole is blocked.

[0067] For example, at least two target electrode plates include the first electrode plate 101, the second electrode plate 102, and the third electrode plate 103. The first current value I1 between the first electrode plate 101 and the second electrode plate 102 is detected. Assuming Figure 3 in the equivalent circuit shown, the circuit composed of the first capacitor C1 and the first resistor R1 is the equivalent circuit of the first electrode plate 101, the circuit composed of the second resistor C2 and the second capacitor C2 is the equivalent circuit of the second electrode plate 102, that is, the circuit composed of the third capacitor R3 and the fourth resistor R4 is the equivalent circuit of the skin between the first electrode plate 101 and the second electrode plate 102. Then the first current value I1 is the current value obtained when the working voltage E acts on Figure 3 the equivalent circuit shown (including the first resistor R1, the second resistor R2, the third resistor R3, the fourth resistor R4, the first capacitor C1, and the second capacitor C2), and the first current value I2 between the first electrode plate 101 and the third electrode plate 103 is detected, and the first current value I3 between the second electrode plate 102 and the third electrode plate 103 is detected. When there is a first current value among the first current values I1, I2, and I3 that is less than the second threshold value I0, it is confirmed that there is at least one electrode plate among at least two target electrode plates whose liquid seepage hole is blocked.

[0068] S1042B. When the first current value between each pair of electrodes is greater than or equal to the second threshold, it is determined that the liquid seepage holes of at least two target electrode sheets are not blocked.

[0069] When all the first impedance values among the first current value I1, the first current value I2, and the first current value I3 are greater than or equal to the second threshold I0, it is confirmed that the liquid seepage holes of at least two target electrode sheets are not blocked.

[0070] In this application, when it is instructed to seep liquid from two target electrode sheets according to the obtained seepage instruction, the first parameter value between each pair of electrodes is detected to determine whether there is a blockage in the liquid seepage hole of the electrode sheet, effectively solving the problem of how to detect whether the liquid seepage hole of the electrode sheet in a wearable massage device provided with an electrode sheet is blocked, so as to ensure that the wearable massage device is started when the electrode sheet seeps liquid smoothly, improve the working reliability of the wearable massage device, and improve the user experience. Moreover, the detection method has a low cost, high detection efficiency, does not require the user to perform cumbersome detection means by themselves, and has good detection safety.

[0071] In one embodiment, as Figure 5 shown, it is a schematic flowchart of a liquid seepage hole blockage detection method provided by an embodiment of this application. This method can be implemented depending on a computer program and can run on a wearable massage device. This computer program can be integrated in an application or run as an independent tool class application.

[0072] Specifically, this liquid seepage hole blockage detection method includes:

[0073] S201. Obtain a seepage instruction.

[0074] Specifically, S201 is the same as S101 and will not be elaborated here.

[0075] S202. Detect the second parameter value between each pair of electrodes in at least two target electrode sheets.

[0076] Before seepage, detect the second parameter value between each pair of electrodes in at least two target electrode sheets.

[0077] For example, detecting the second parameter value between each pair of electrodes in at least two target electrode sheets is to detect the second parameter value between the first electrode sheet and the second electrode sheet, as Figure 3As shown, the equivalent circuit composed of the first resistor R1 and the first capacitor C1 represents the circuit corresponding to the first electrode plate, the equivalent circuit composed of the second resistor R2 and the second capacitor C2 represents the circuit corresponding to the second electrode plate, and the equivalent circuit formed by the third resistor R3 is the circuit corresponding to the skin between the first electrode plate and the second electrode plate; detecting the second parameter value between the first electrode plate and the second electrode plate, that is, detecting the impedance of the equivalent circuit including the first resistor R1, the second resistor R2, the third resistor R3, the first capacitor C1 and the second capacitor C2, or the current value corresponding to the above equivalent circuit under the working voltage.

[0078] S203. Perform seepage on at least two target electrode plates indicated by the seepage instruction.

[0079] Specifically, S203 is the same as S102, which will not be elaborated here.

[0080] S204. When the seepage is completed, detect the first parameter value between each pair of electrodes in at least two target electrode plates.

[0081] Specifically, S204 is the same as S103, which will not be elaborated here.

[0082] For example, detecting the second parameter value between each pair of electrodes in at least two target electrode plates is to detect the second parameter value between the first electrode plate and the second electrode plate. As Figure 3 shown, the equivalent circuit composed of the first resistor R1 and the first capacitor C1 represents the circuit corresponding to the first electrode plate, the equivalent circuit composed of the second resistor R2 and the second capacitor C2 represents the circuit corresponding to the second electrode plate, and the equivalent circuit formed by the third resistor R3 and the fourth resistor R4 is the circuit corresponding to the skin after seepage between the first electrode plate and the second electrode plate; detecting the first parameter value between the first electrode plate and the second electrode plate, that is, detecting the impedance of the equivalent circuit including the first resistor R1, the second resistor R2, the third resistor R3, the fourth resistor R4, the first capacitor C1 and the second capacitor C2, or the current value corresponding to the above equivalent circuit under the working voltage.

[0083] It can be understood that the second parameter value corresponds to the first parameter value, that is, when the first parameter value is the impedance value, the second parameter value is the impedance value, and when the first parameter value is the current value, the second parameter value is the current value.

[0084] S205. According to the first parameter value and the second parameter value between each pair of electrodes, judge whether there is a blockage in the seepage hole of the electrode plate in the pair of electrodes corresponding to the first parameter value and the second parameter value.

[0085] According to Figure 3As can be seen from the equivalent circuit diagram shown, when the liquid seepage holes complete liquid seepage, the equivalent circuit of the skin between the two target electrode sheets changes from the circuit composed of the third resistor R3 to the equivalent circuit composed of the third resistor R3 and the fourth resistor R4. Since the working voltage applied to the target electrode sheets remains unchanged, the current value and impedance value between the two target electrode sheets will change accordingly. When the parameter values before and after liquid seepage do not change, or the change is less than the threshold value, it indicates that the liquid seepage holes of the electrode pair corresponding to the parameter value are blocked.

[0086] Specifically, determine the absolute value of the difference between the first parameter value and the second parameter value between each electrode pair; in the case where the absolute value of the difference is less than the third threshold value, determine that there is at least one liquid seepage hole blocked in the two electrode sheets corresponding to the difference; in the case where the absolute value of the difference is greater than or equal to the third threshold value, determine that the liquid seepage holes of the two said electrode sheets corresponding to the difference are not blocked, and when the first parameter value and the second parameter value are impedance values, the first parameter value is less than the second parameter value, and when the first parameter value and the second parameter value are current values, the first parameter value is greater than the second parameter value.

[0087] Taking the first parameter value and the second parameter value as current values as an example, for instance, at least two target electrode sheets include the first electrode sheet 101, the second electrode sheet 102, and the third electrode sheet 103; before liquid seepage, detect the second current value I 11 between the first electrode sheet 101 and the second electrode sheet 102, and detect the second current value I 21 between the first electrode sheet 101 and the third electrode sheet 103, and detect the second current value I 31 between the second electrode sheet 102 and the third electrode sheet 103; when the liquid seepage is completed, detect the first current value I 12 between the first electrode sheet 101 and the second electrode sheet 102, and detect the first current value I 22 between the first electrode sheet 101 and the third electrode sheet 103, and detect the first current value I 32 between the second electrode sheet 102 and the third electrode sheet 103; obtain the absolute value difference X1 between the second current value I 12 and the first current value I 11 , obtain the absolute value difference X2 between the second current value I 22 and the first current value I 21 , obtain the absolute value difference X3 between the second current value I 32 and the first current value I 31 ; when there is one difference among the difference X1, the difference X2, and the difference X3 that is less than the third threshold value I0, confirm that there is at least one liquid seepage hole blocked in at least two target electrode sheets.

[0088] In this application, when a liquid leakage instruction is obtained, the second parameter value between each pair of electrodes is acquired. When it is indicated that there is liquid leakage in two target electrode pads, the first parameter value between each pair of electrodes is detected. Based on the second parameter value and the first parameter value, it is determined whether there is a blockage in the liquid leakage holes of the electrode pads. The determination condition is more reasonable, avoiding the problem that a single parameter value cannot meet the complex working environment. It effectively solves the problem of how to detect whether the liquid leakage holes of the electrode pads in a wearable massage device provided with electrode pads are blocked, thereby ensuring that the wearable massage device is started when the electrode pads leak liquid smoothly, improving the working reliability of the wearable massage device, enhancing the user experience, and having a relatively low cost, high detection efficiency, no need for the user to perform cumbersome detection means by themselves, and good detection safety.

[0089] As shown in the above embodiment, this application checks whether the liquid leakage holes of the target electrode pads are blocked through the first parameter value of the target electrode pads. When it is detected that there is a blockage in the liquid leakage holes of the target electrode pads, this application can also attempt to dredge the blocked liquid leakage holes of the target electrode pads through the following embodiments so that the user can use the wearable massage device normally.

[0090] In one embodiment, as Figure 6 shown, it is a schematic flowchart of a liquid leakage hole blockage detection method provided by an embodiment of this application. This method can be implemented depending on a computer program and can run on a wearable massage device. This computer program can be integrated in an application or run as an independent tool class application.

[0091] Specifically, this liquid leakage hole blockage detection method includes:

[0092] S301. Obtain a liquid leakage instruction.

[0093] Specifically, S301 is the same as S101 and will not be elaborated here.

[0094] S302. Perform liquid leakage on at least two target electrode pads indicated by the liquid leakage instruction.

[0095] Specifically, S302 is the same as S102 and will not be elaborated here.

[0096] S303. When the liquid leakage is completed, detect the first parameter value between each pair of electrodes in at least two target electrode pads.

[0097] Specifically, S303 is the same as S103 and will not be elaborated here.

[0098] S304. Determine whether there is a blockage in the liquid leakage holes of the electrode pads in at least two target electrode pads according to the first parameter value between each pair of electrodes; if so, execute S305, if not, execute S306.

[0099] Specifically, S304 is the same as S104, and details are not described herein again.

[0100] S305. Instruct at least two target electrode sheets to perform liquid seepage again.

[0101] Specifically, it is determined whether there is a blockage in the liquid seepage holes of the electrode sheets in at least two target electrode sheets according to the first parameter value between each pair of electrodes. If so, instruct at least two target electrode sheets to perform liquid seepage again.

[0102] S306. Work normally.

[0103] Specifically, it is determined whether there is a blockage in the liquid seepage holes of the electrode sheets in at least two target electrode sheets according to the first parameter value between each pair of electrodes. If not, instruct the wearable massage device to continue working normally. For example, the user wears the wearable massage device around the neck; the wearable massage device detects a start instruction and a liquid seepage instruction, and based on the above steps, it is detected and determined that there is no blockage in the liquid seepage holes of the electrode sheets in at least two target electrode sheets, and the liquid seepage is completed, then the massage program is started to perform a massage operation on the user.

[0104] S307. Determine whether the number of times of liquid seepage reaches a preset threshold; if so, execute S308, if not, execute S303.

[0105] Specifically, instruct at least two target electrode sheets to perform liquid seepage again; in the case of completing the liquid seepage, detect the first parameter value between each pair of electrodes in at least two target electrode sheets; if it is determined that there is a blockage in the liquid seepage holes of the electrode sheets in at least two target electrode sheets according to the first parameter value between each pair of electrodes, continue to instruct at least two target electrode sheets to perform liquid seepage again. Until the number of times of liquid seepage reaches the preset threshold. For example, after 10 times of liquid seepage, it is determined that there is still a blockage in the liquid seepage holes of the electrode sheets in at least two target electrode sheets according to the first parameter value between each pair of electrodes.

[0106] In the embodiment of the present application, the liquid seepage pressure and / or liquid seepage duration of the liquid seepage holes of at least two target electrode sheets increase sequentially with the increase of the number of times of liquid seepage. For example, the pressure of the first liquid seepage is P1 and the liquid seepage duration is T1; the pressure of the second liquid seepage is P2 and the liquid seepage duration is T2, then P2 is greater than P1 and T2 is greater than T1. In the embodiment of the present application, by increasing the liquid seepage pressure and / or extending the liquid seepage duration, it is beneficial to dredge the blocked liquid seepage holes during multiple liquid seepage processes and solve the problem of blockage of slightly blocked liquid seepage holes.

[0107] S308. Execute the target event.

[0108] Specifically, if the liquid seepage holes are still blocked after multiple instances of liquid seepage, the wearable massage device can execute a target event. The target event includes at least one of the following: outputting an abnormal prompt message, stopping the massage output, and sending an abnormal prompt message to a target electronic device; where the target electronic device corresponds to the wearable massage device. For example, the abnormal prompt message includes a prompt voice instructing the user to remove the wearable massage device.

[0109] The target electronic device includes, but is not limited to, a mobile station (MS), a mobile terminal device, a mobile telephone, a handset, and a portable equipment, etc. This terminal device can communicate with the wearable electronic device via a radio access network (RAN).

[0110] This application provides a method for unclogging liquid seepage holes through multiple instances of liquid seepage. That is, when the blockage of the liquid seepage holes is relatively slight, multiple instances of liquid seepage can be used to unclog the blocked holes, which is beneficial to improving the user experience.

[0111] In this application, when it is instructed to perform liquid seepage for two target electrode pads according to the obtained liquid seepage instruction, the first parameter value between each pair of electrodes is detected to determine whether there is a blockage in the liquid seepage holes of the electrode pads. This effectively solves the problem of how to detect whether the liquid seepage holes of the electrode pads in a wearable massage device provided with electrode pads are blocked. Thus, it ensures that the wearable massage device is started when the electrode pads seep liquid smoothly, improves the working reliability of the wearable massage device, and enhances the user experience. Moreover, the detection method has a low cost, high detection efficiency, does not require the user to perform cumbersome detection means by themselves, and has good detection security.

[0112] As shown in the above embodiment, this application checks whether the liquid seepage holes of the target electrode pads are blocked through the first parameter value of the target electrode pads, and in the case of detecting that there is a blockage in the liquid seepage holes of the target electrode pads, attempts to unclog the blocked liquid seepage holes of the target electrode pads so that the user can normally use the wearable massage device. The following is another embodiment provided by this application for attempting to unclog the blocked liquid seepage holes of the target electrode pads. This embodiment can accurately find the target blocked electrode pads with blocked liquid seepage holes in the target electrode pads, accurately unclog the liquid seepage holes of the target blocked electrode pads, and reduce the energy consumption when unclogging the liquid seepage holes.

[0113] In one embodiment, as Figure 7 shown, it is a schematic flowchart of a method for detecting liquid seepage hole blockage provided by an embodiment of this application. This method can be implemented depending on a computer program and can run on a wearable massage device. This computer program can be integrated in an application or run as an independent tool - type application.

[0114] Specifically, the method for detecting the clogging of the seepage holes includes:

[0115] S401. Obtain a seepage instruction.

[0116] Specifically, S401 is the same as S101, which will not be elaborated here.

[0117] S402. Perform seepage on at least two target electrode plates indicated by the seepage instruction.

[0118] Specifically, S402 is the same as S102, which will not be elaborated here.

[0119] S403. When the seepage is completed, detect the first parameter values between each pair of electrodes in at least two target electrode plates.

[0120] Specifically, S403 is the same as S103, which will not be elaborated here.

[0121] S404. Determine whether there is a clogging of the seepage holes in the electrode plates among at least two target electrode plates according to the first parameter values between each pair of electrodes.

[0122] Specifically, S404 is the same as S104, which will not be elaborated here.

[0123] S405. Determine the electrode plate with the clogged seepage hole as the target clogged electrode plate, and instruct the target clogged electrode plate to perform seepage again.

[0124] Specifically, determine whether there is a clogging of the seepage holes in the electrode plates among at least two target electrode plates according to the first parameter values between each pair of electrodes.

[0125] Optionally, the first parameter value is a current value. Assume that the number of the above at least two target electrode plates is N. If there are N - 1 first parameter values less than the first threshold, and there is only one unique intersection among the sets of each pair of electrodes corresponding to the above N - 1 first parameter values, it can be determined that the electrode plate within the intersection is the only electrode plate with a clogged seepage hole among the N target electrode plates, and determine the electrode plate with the clogged seepage hole as the target clogged electrode plate.

[0126] Optionally, the first parameter value is an impedance value. Assume that the number of the above at least two target electrode plates is N. If there are N - 1 first parameter values greater than the first threshold, and there is only one unique intersection among the sets of each pair of electrodes corresponding to the above N - 1 first parameter values, it can be determined that the electrode plate within the intersection is the only electrode plate with a clogged seepage hole among the N target electrode plates, and determine the electrode plate with the clogged seepage hole as the target clogged electrode plate.

[0127] For example, as Figure 1As shown, at least two target electrode sheets include a first electrode sheet 101, a second electrode sheet 102, and a third electrode sheet 103. A first current value I1 between the first electrode sheet 101 and the second electrode sheet 102 is detected, a first current value I2 between the first electrode sheet 101 and the third electrode sheet 103 is detected, and a first current value I3 between the second electrode sheet 102 and the third electrode sheet 103 is detected. When among the first current value I1, the first current value I2, and the first current value I3, the first current value I1 and the first current value I2 are less than a second threshold I0, while the first current value I3 is greater than the second threshold I0, it indicates that the liquid seepage holes corresponding to the second electrode sheet 102 and the third electrode sheet 103 are not blocked, further indicating that the liquid seepage hole of the first electrode sheet 101 is blocked, that is, the first electrode sheet 101 is the target blocked electrode sheet.

[0128] Specifically, after determining the target blocked electrode sheet, the target blocked electrode sheet is instructed to seep liquid to attempt to unclog the blocked liquid seepage hole of the target blocked electrode sheet. For example, the first electrode sheet 101 serving as the target blocked electrode sheet is instructed to seep liquid.

[0129] S406. In the case where the liquid seepage is completed, the first parameter values between the target blocked electrode sheet and other electrode sheets are detected.

[0130] Specifically, in the case where the target blocked electrode sheet is instructed to complete the liquid seepage, the first parameter values between the target blocked electrode sheet and other electrode sheets are detected. For example, after the first electrode sheet 101 serving as the target blocked electrode sheet is instructed to seep liquid, the first current value I1' between the first electrode sheet 101 and the second electrode sheet 102 is detected, and the first current value I2' between the first electrode sheet 101 and the third electrode sheet 102 is detected; based on the first current value I1' and the first current value I2', it is detected again whether the first electrode sheet 101 of the target blocked electrode sheet is blocked.

[0131] S407. Determine whether the number of liquid seepage times reaches a preset threshold; if so, execute S408, if not, execute S409.

[0132] Specifically, S407 is the same as S307, which will not be elaborated here.

[0133] S408. Execute the target event.

[0134] Specifically, S408 is the same as S308, which will not be elaborated here.

[0135] S409. Determine whether the liquid seepage hole of the target blocked electrode sheet is blocked according to the first parameter values between the target blocked electrode sheet and other electrode sheets; if so, execute S405, if not, execute S410.

[0136] Specifically, if the number of times of liquid leakage does not reach the preset threshold, continue to determine whether the liquid leakage holes of the target blocked electrode patch are blocked according to the first parameter values between the target blocked electrode patch and other electrode patches respectively.

[0137] S410. Normal operation.

[0138] Specifically, if it is determined according to the first parameter values between the target blocked electrode patch and other electrode patches respectively that the liquid leakage holes of the target blocked electrode patch are not blocked, instruct the wearable massage device to continue working.

[0139] Specifically, if the liquid leakage holes of the target blocked electrode patch are still blocked, execute S405 until the number of times of liquid leakage reaches the preset threshold. If the target blocked electrode patch is still blocked, execute the target event. In other words, when the target blocked electrode patch is still blocked after the number of times of liquid leakage reaches the preset threshold, it means that the above-mentioned multiple hydraulic dredging schemes have no effect on the liquid leakage holes of the target blocked electrode patch, and the liquid leakage holes of the target blocked electrode patch may be severely blocked, and the user needs to adopt other dredging schemes, such as returning the wearable massage device to the manufacturer. The target event includes at least one of the following: outputting an abnormal prompt message, stopping the massage output, and sending an abnormal prompt message to the target electronic device; wherein, the target electronic device corresponds to the wearable massage device. For example, the abnormal prompt message includes a prompt voice instructing the user to remove the wearable massage device.

[0140] This application determines the target blocked electrode patch and only instructs the target blocked electrode patch to leak liquid multiple times to dredge the liquid leakage holes, realizing the precise dredging of the liquid leakage holes and reducing the power consumption of the wearable massage device.

[0141] When this application instructs two target electrode patches to leak liquid according to the obtained liquid leakage instruction, by detecting the first parameter values between each pair of electrodes to determine whether there is a blockage in the liquid leakage holes of the electrode patches, it effectively solves the problem of how to detect whether the liquid leakage holes of the electrode patches in a wearable massage device provided with electrode patches are blocked, thereby ensuring that the wearable massage device is started when the electrode patches leak liquid smoothly, improving the working reliability of the wearable massage device, as well as improving the user experience. Moreover, the detection method has a low cost, high detection efficiency, does not require the user to perform cumbersome detection means by themselves, and has good detection safety.

[0142] In one embodiment, as Figure 8 shown, it is a schematic flowchart of a method for detecting liquid leakage hole blockage provided by an embodiment of this application. This method can be implemented depending on a computer program and can run on a wearable massage device. This computer program can be integrated in an application or run as an independent tool class application.

[0143] Specifically, this method for detecting liquid leakage hole blockage includes:

[0144] S501. Obtain a seepage instruction.

[0145] Specifically, S501 is the same as S101 and will not be elaborated here.

[0146] S502. Detect the second parameter values between each pair of electrodes in at least two target electrode sheets.

[0147] Specifically, S502 is the same as S202 and will not be elaborated here.

[0148] S503. Perform seepage on at least two target electrode sheets indicated by the seepage instruction.

[0149] Specifically, S203 is the same as S203 and will not be elaborated here.

[0150] S504. When seepage is completed, detect the first parameter values between each pair of electrodes in at least two target electrode sheets.

[0151] Specifically, S504 is the same as S204 and will not be elaborated here.

[0152] S505. According to the first parameter values and the second parameter values between each pair of electrodes, determine whether there is a blockage in the seepage holes of the electrode sheets in the electrode pairs corresponding to the first parameter values and the second parameter values; if so, execute S507, if not, execute S506.

[0153] Specifically, S505 is the same as S205 and will not be elaborated here.

[0154] S506. Work normally.

[0155] Specifically, according to the first parameter values and the second parameter values between each pair of electrodes, when it is determined that there is no blockage in the seepage holes of the electrode sheets in the electrode pairs corresponding to the first parameter values and the second parameter values, it is indicated that the wearable massage device works normally, for example, massage output is executed, etc.

[0156] S507. Instruct at least two target electrode sheets to perform seepage again.

[0157] Specifically, according to the first parameter values and the second parameter values between each pair of electrodes, when it is determined that there is a blockage in the seepage holes of the electrode sheets in the electrode pairs corresponding to the first parameter values and the second parameter values, it is indicated that at least two target electrode sheets perform seepage again.

[0158] S508. Determine whether the seepage times reach a preset threshold; if so, execute S509, if not, execute S504.

[0159] Specifically, S508 is the same as S307 and will not be elaborated here.

[0160] S509. Execute the target event.

[0161] Specifically, S509 is the same as S308, which will not be elaborated here.

[0162] When the number of times of detecting liquid leakage of at least two target electrode pads does not reach the preset threshold, S504 is executed, that is, it continues to determine whether there is a blockage in the liquid leakage holes of the at least two target electrode pads.

[0163] The present application provides a method for dredging liquid leakage holes through multiple liquid leakages. That is, when the blockage of the liquid leakage holes is relatively slight, the blockage holes can be dredged by using multiple liquid leakages, which is beneficial to improving the user experience.

[0164] The present application obtains the second parameter value between each pair of electrodes according to the obtained liquid leakage instruction, and detects the first parameter value between each pair of electrodes when indicating liquid leakage of two target electrode pads. Based on the second parameter value and the first parameter value, it is determined whether there is a blockage in the liquid leakage holes of the electrode pads. The judgment condition is more reasonable, avoiding the problem that a single parameter value cannot meet the complex working environment; effectively solving the problem of how to detect whether there is a blockage in the liquid leakage holes of the electrode pads of the wearable massage device provided with electrode pads, so as to ensure that the wearable massage device is started when the electrode pads leak smoothly, improving the working reliability of the wearable massage device and the user experience, and the detection method has a low cost, high detection efficiency, does not require the user to perform cumbersome detection means by himself, and has good detection safety.

[0165] The following is an apparatus embodiment of the present application, which can be used to execute the method embodiment of the present application. For details not disclosed in the apparatus embodiment of the present application, please refer to the method embodiment of the present application.

[0166] Please refer to Figure 9 , which shows a schematic structural diagram of a wearable massage device provided by an exemplary embodiment of the present application. The wearable massage device can be implemented as all or part of a device through software, hardware, or a combination of both. The wearable massage device includes at least two electrode pads containing liquid leakage holes, and the liquid leakage holes are used for liquid leakage. The wearable massage device further includes an acquisition module 901, a liquid leakage module 902, a detection module 903, and a judgment module 904.

[0167] The acquisition module 901 is configured to acquire a liquid leakage instruction;

[0168] The liquid leakage module 902 is configured to perform liquid leakage on at least two target electrode pads indicated by the liquid leakage instruction;

[0169] The detection module 903 is configured to detect the first parameter value between each pair of electrodes in the at least two target electrode pads when the liquid leakage is completed;

[0170] A judgment module 904, configured to judge whether there is a clogging of the liquid seepage holes of the electrode sheets in the at least two target electrode sheets according to the first parameter values between the respective electrode pairs.

[0171] In one or more embodiments, the first parameter value is a first impedance value, and the judgment module 904 includes:

[0172] A resistance acquisition unit, configured to determine that there is a clogging of the liquid seepage holes of at least one electrode sheet in the at least two target electrode sheets when at least one of the first impedance values between the respective electrode pairs is greater than a first threshold;

[0173] A first judgment unit, configured to determine that the liquid seepage holes of the at least two target electrode sheets are not clogged when the first impedance values between the respective electrode pairs are all less than or equal to the first threshold.

[0174] In one or more embodiments, the first parameter value is a first current value, and the judgment module 904 includes:

[0175] A current acquisition unit, configured to determine that there is a clogging of the liquid seepage holes of at least one electrode sheet in the at least two target electrode sheets when at least one of the first current values between the respective electrode pairs is less than a second threshold;

[0176] A second judgment unit, configured to determine that the liquid seepage holes of the at least two target electrode sheets are not clogged when the first current values between the respective electrode pairs are all greater than or equal to the second threshold.

[0177] In one or more embodiments, the wearable massage device further includes:

[0178] A second detection module, configured to detect a second parameter value between each electrode pair in the at least two target electrode sheets;

[0179] The judgment module 904 includes:

[0180] A third judgment unit, configured to judge whether there is a clogging of the liquid seepage holes of the electrode sheets in the electrode pairs corresponding to the first parameter value and the second parameter value according to the first parameter value and the second parameter value between the respective electrode pairs.

[0181] In one or more embodiments, the third judgment unit includes:

[0182] A difference sub-unit, configured to determine the absolute value of the difference between the first parameter value and the second parameter value between the respective electrode pairs;

[0183] There is a sub-unit for determining that there is a clogging of the liquid seepage hole in at least one of the two electrode sheets corresponding to the difference when the absolute value of the difference is less than a third threshold;

[0184] A determining sub-unit for determining that the liquid seepage holes of the two electrode sheets corresponding to the difference are not clogged when the absolute value of the difference is greater than or equal to the third threshold.

[0185] In one or more embodiments, the wearable massage device further includes:

[0186] A first liquid seepage module for indicating that the at least two target electrode sheets perform liquid seepage again if there is a clogging of the liquid seepage hole in an electrode sheet among the at least two target electrode sheets.

[0187] In one or more embodiments, the wearable massage device further includes:

[0188] An execution module for continuing to execute the step of detecting the first parameter value between each pair of electrodes in the at least two target electrode sheets in the case of completing liquid seepage, until after the number of liquid seepage times of the at least two target electrode sheets reaches a preset threshold, if there is still a clogging of the liquid seepage hole in an electrode sheet among the at least two target electrode sheets, then execute a target event.

[0189] In one or more embodiments, the liquid seepage pressure and / or the liquid seepage duration of the liquid seepage holes of the at least two target electrode sheets increase sequentially with the increase of the number of liquid seepage times.

[0190] In one or more embodiments, the wearable massage device further includes:

[0191] A determining module for determining the electrode sheet with the clogged liquid seepage hole as the target clogged electrode sheet if there is a clogging of the liquid seepage hole in an electrode sheet among the at least two target electrode sheets;

[0192] A second liquid seepage module for indicating that the target clogged electrode sheet performs liquid seepage again.

[0193] In one or more embodiments, the wearable massage device further includes:

[0194] A second detection module for detecting the first parameter value between the target clogged electrode sheet and other electrode sheets respectively when the target clogged electrode sheet completes liquid seepage; wherein, the other electrode sheets are the electrode sheets other than the target clogged electrode sheet among the at least two target electrode sheets;

[0195] A second judgment module for judging whether the liquid seepage hole of the target clogged electrode sheet is clogged according to the first parameter value between the target clogged electrode sheet and other electrode sheets respectively;

[0196] The liquid seepage execution module is used to, if the liquid seepage holes of the target blocked electrode sheet are blocked, continue to execute the step of instructing the target blocked electrode sheet to perform liquid seepage again until the number of liquid seepage times of the target blocked electrode sheet reaches a preset threshold. If the liquid seepage holes of the target blocked electrode sheet are still blocked, a target event is executed.

[0197] In one or more embodiments, the liquid seepage pressure and / or the liquid seepage duration of the liquid seepage holes of the target blocked electrode sheet increase sequentially with the increase in the number of liquid seepage times.

[0198] In one or more embodiments, the target event includes at least one of the following: outputting an abnormal prompt message, stopping the massage output, and sending an abnormal prompt message to a target electronic device; wherein, the target electronic device corresponds to the wearable massage device.

[0199] When this application instructs two target electrode sheets to perform liquid seepage according to the obtained liquid seepage instruction, it detects the first parameter value between each pair of electrodes to determine whether there is a blockage in the liquid seepage holes of the electrode sheet, effectively solving the problem of how to detect whether the liquid seepage holes of the electrode sheet in a wearable massage device provided with an electrode sheet are blocked. Thus, it ensures that the wearable massage device is started when the electrode sheet seeps liquid smoothly, improves the working reliability of the wearable massage device, and improves the user experience. Moreover, the detection method has a low cost, high detection efficiency, does not require the user to perform cumbersome detection means by themselves, and has good detection safety.

[0200] It should be noted that when the liquid seepage hole blockage detection device provided in the above embodiment executes the liquid seepage hole blockage detection method, only the above-mentioned division of each functional module is used for illustration. In actual application, the above functions can be allocated to different functional modules according to needs, that is, the internal structure of the device is divided into different functional modules to complete all or part of the functions described above. In addition, the liquid seepage hole blockage detection device provided in the above embodiment and the liquid seepage hole blockage detection method embodiment belong to the same concept, and the implementation process is detailed in the method embodiment, which will not be elaborated here.

[0201] The serial numbers of the embodiments of the present application are only for description and do not represent the superiority or inferiority of the embodiments.

[0202] The embodiment of the present application also provides a computer storage medium, which can store multiple instructions, and the instructions are suitable for being loaded and executed by a processor to perform the liquid seepage hole blockage detection method as described in the above Figures 1 - 8 illustrated embodiment. The specific execution process can refer to the specific description of the Figures 1 - 8 illustrated embodiment and will not be elaborated here.

[0203] The present application also provides a computer program product, which stores at least one instruction, and the at least one instruction is loaded and executed by the processor to perform the method for detecting clogging of the seepage holes in the above-mentioned Figures 1 - 8 illustrated embodiment. The specific execution process can be referred to Figures 1 - 8 the specific description of the illustrated embodiment, and details are not described herein again.

[0204] Please refer to Figure 10 , which is a schematic structural diagram of a wearable massage device provided by an embodiment of the present application. As Figure 10 shown, the wearable massage device 1000 may include: at least one processor 1001, at least one network interface 1004, a user interface 1003, a memory 1005, at least one communication bus 1002, and at least two electrode sheets 1006 including seepage holes.

[0205] Among them, the communication bus 1002 is used to realize the connection and communication between these components.

[0206] Among them, the user interface 1003 may include a display screen (Display) and a keyboard, and optionally, the user interface 1003 may further include a standard wired interface and a wireless interface.

[0207] Among them, the network interface 1004 may optionally include a standard wired interface and a wireless interface (such as a WI-FI interface).

[0208] Among them, the processor 1001 may include one or more processing cores. The processor 1001 connects various parts within the entire server 1000 through various interfaces and lines. By running or executing instructions, programs, code sets, or instruction sets stored in the memory 1005, and by calling the data stored in the memory 1005, it executes various functions of the server 1000 and processes data. Optionally, the processor 1001 may be implemented in at least one hardware form of digital signal processing (DSP), field-programmable gate array (FPGA), or programmable logic array (PLA). The processor 1001 may integrate a combination of one or several of a central processing unit (CPU), a graphics processing unit (GPU), and a modem, etc. Among them, the CPU mainly processes the operating system, user interface, application programs, etc.; the GPU is responsible for rendering and drawing the content to be displayed on the display screen; the modem is used to process wireless communications. It can be understood that the above-mentioned modem may not be integrated into the processor 1001 and may be implemented separately by a single chip.

[0209] Among them, the memory 1005 may include random access memory (RAM) and may also include read-only memory. Optionally, the memory 1005 includes a non-transitory computer-readable storage medium. The memory 1005 can be used to store instructions, programs, code, code sets, or instruction sets. The memory 1005 may include a program storage area and a data storage area. Among them, the program storage area may store instructions for implementing the operating system, instructions for at least one function (such as touch function, sound playback function, image playback function, etc.), instructions for implementing the above-mentioned various method embodiments, etc.; the data storage area may store the data involved in the above-mentioned various method embodiments. Optionally, the memory 1005 may also be at least one storage device located far from the aforementioned processor 1001. As Figure 10 shown, the memory 1005, as a computer storage medium, may include an operating system, a network communication module, a user interface module, and a leakage hole blockage detection application program.

[0210] In Figure 10In the wearable massage device 1000 shown, the user interface 1003 is mainly used to provide an interface for the user to input and obtain the data input by the user; and the processor 1001 can be used to call the seepage hole blockage detection application program stored in the memory 1005 and specifically perform the following operations:

[0211] Obtain a seepage instruction;

[0212] Perform seepage on at least two target electrode sheets indicated by the seepage instruction;

[0213] When the seepage is completed, detect the first parameter value between each electrode pair in at least two target electrode sheets;

[0214] Judge whether there is a blockage in the seepage hole of the electrode sheet in the at least two target electrode sheets according to the first parameter value between each electrode pair.

[0215] In one or more embodiments, when the processor 1001 executes that the first parameter value is the first impedance value, and judges whether there is a blockage in the seepage hole of the electrode sheet in the at least two target electrode sheets according to the first parameter value between each electrode pair, it specifically executes:

[0216] When there is at least one first impedance value greater than the first threshold among the first impedance values between each electrode pair, determine that there is a blockage in the seepage hole of at least one electrode sheet in the at least two target electrode sheets;

[0217] When the first impedance values between each electrode pair are all less than or equal to the first threshold, determine that the seepage holes of the at least two target electrode sheets are not blocked.

[0218] In one or more embodiments, when the processor 1001 executes that the first parameter value is the first current value, and judges whether there is a blockage in the seepage hole of the electrode sheet in the at least two target electrode sheets according to the first parameter value between each electrode pair, it specifically executes:

[0219] When there is at least one first current value less than the second threshold among the first current values between each electrode pair, determine that there is a blockage in the seepage hole of at least one electrode sheet in the at least two target electrode sheets;

[0220] When the first current values between each electrode pair are all greater than or equal to the second threshold, determine that the seepage holes of the at least two target electrode sheets are not blocked.

[0221] In one or more embodiments, before the processor 1001 performs seepage on at least two target electrode sheets indicated by the seepage instruction, it specifically executes:

[0222] Detect the second parameter value between each pair of electrodes in at least two target electrode sheets;

[0223] The processor 1001 executes to determine whether there is a clogging of the liquid seepage holes of the electrode sheets in the at least two target electrode sheets according to the first parameter value between each pair of electrodes, including:

[0224] Judge whether there is a clogging of the liquid seepage holes of the electrode sheets in the electrode pairs corresponding to the first parameter value and the second parameter value according to the first parameter value and the second parameter value between each pair of electrodes.

[0225] In one or more embodiments, the processor 1001 executes to determine whether there is a clogging of the liquid seepage holes of the two electrode sheets corresponding to the first parameter value and the second parameter value according to the first parameter value and the second parameter value between each pair of electrodes, and specifically executes:

[0226] Determine the absolute value of the difference between the first parameter value and the second parameter value between each pair of electrodes;

[0227] When the absolute value of the difference is less than a third threshold, determine that there is at least one electrode sheet with a clogged liquid seepage hole among the two electrode sheets corresponding to the difference;

[0228] When the absolute value of the difference is greater than or equal to the third threshold, determine that the liquid seepage holes of the two electrode sheets corresponding to the difference are not clogged.

[0229] In one or more embodiments, after the processor 1001 executes to determine whether there is a clogging of the liquid seepage holes of the electrode sheets in the at least two target electrode sheets according to the first parameter value between each pair of electrodes, it further specifically executes:

[0230] If there is a clogging of the liquid seepage holes of the electrode sheets in the at least two target electrode sheets, instruct the at least two target electrode sheets to perform liquid seepage again.

[0231] In one or more embodiments, after the processor 1001 executes to instruct the at least two target electrode sheets to perform liquid seepage again, it further specifically executes:

[0232] Continue to execute the step of detecting the first parameter value between each pair of electrodes in the at least two target electrode sheets in the case of completing liquid seepage, until after the number of liquid seepage times of the at least two target electrode sheets reaches a preset threshold, and there is still a clogging of the liquid seepage holes of the electrode sheets in the at least two target electrode sheets, then execute the target event.

[0233] In one or more embodiments, the liquid seepage pressure and / or the liquid seepage duration of the liquid seepage holes of the at least two target electrode sheets increase sequentially with the increase of the number of liquid seepage times.

[0234] In one or more embodiments, after the processor 1001 determines whether there is a clogging of the liquid seepage holes of the electrode sheets in the at least two target electrode sheets according to the first parameter value between the electrode pairs, the processor 1001 further specifically executes:

[0235] If there is a clogging of the liquid seepage holes in the at least two target electrode sheets, determine the electrode sheet with the clogged liquid seepage hole as the target clogged electrode sheet;

[0236] Instruct the target clogged electrode sheet to perform liquid seepage again.

[0237] In one or more embodiments, after the processor 1001 executes the instruction to instruct the target clogged electrode sheet to perform liquid seepage again, the processor 1001 further specifically executes:

[0238] When the target clogged electrode sheet completes liquid seepage, detect the first parameter values between the target clogged electrode sheet and other electrode sheets respectively; wherein, the other electrode sheets are the electrode sheets in the at least two target electrode sheets except the target clogged electrode sheet;

[0239] Judge whether the liquid seepage holes of the target clogged electrode sheet are clogged according to the first parameter values between the target clogged electrode sheet and other electrode sheets respectively;

[0240] If the liquid seepage holes of the target clogged electrode sheet are clogged, continue to execute the step of instructing the target clogged electrode sheet to perform liquid seepage again until the number of times of liquid seepage of the target clogged electrode sheet reaches a preset threshold. After that, if the liquid seepage holes of the target clogged electrode sheet are still clogged, execute a target event.

[0241] In one or more embodiments, the liquid seepage pressure and / or the liquid seepage duration of the liquid seepage holes of the target clogged electrode sheet increase sequentially with the increase of the number of times of liquid seepage.

[0242] In one or more embodiments, the target event includes at least one of the following: outputting an abnormal prompt message, stopping the massage output, and sending an abnormal prompt message to a target electronic device; wherein, the target electronic device corresponds to the wearable massage device.

[0243] When this application instructs two target electrode sheets to perform liquid seepage according to the obtained liquid seepage instruction, by detecting the first parameter values between the electrode pairs to judge whether there is a clogging of the liquid seepage holes of the electrode sheets, it effectively solves the problem of how to detect whether the liquid seepage holes of the electrode sheets in a wearable massage device provided with electrode sheets are clogged, so as to ensure that the wearable massage device is started when the electrode sheets perform liquid seepage smoothly, improve the working reliability of the wearable massage device, and improve the user experience. Moreover, the detection method has a low cost, high detection efficiency, does not require the user to perform cumbersome detection means by himself, and has good detection safety.

[0244] Those of ordinary skill in the art can understand that all or part of the processes in the methods of the above embodiments can be completed by instructing relevant hardware through a computer program. The program can be stored in a computer-readable storage medium. When the program is executed, it can include the processes of the embodiments of the above various methods. Among them, the storage medium can be a magnetic disk, an optical disk, a read-only memory, or a random access memory, etc.

[0245] The above-disclosed are only the preferred embodiments of the present application. Of course, the scope of the rights of the present application cannot be limited thereby. Therefore, equivalent changes made according to the claims of the present application still fall within the scope covered by the present application.

Claims

1. A method for detecting blockage of seepage holes, characterized in that, The method is applied to a wearable massage device, which includes at least two electrode sheets with liquid seepage holes for liquid seepage. The method includes: Obtaining a liquid seepage instruction; Performing liquid seepage on at least two target electrode sheets indicated by the liquid seepage instruction; When the liquid seepage is completed, detecting a first parameter value between each pair of electrodes in the at least two target electrode sheets; Judging whether there is a liquid seepage hole blockage in the at least two target electrode sheets according to the first parameter value between each pair of electrodes; Before performing liquid seepage on at least two target electrode sheets indicated by the liquid seepage instruction, it further includes: Detecting a second parameter value between each pair of electrodes in the at least two target electrode sheets; The judging whether there is a liquid seepage hole blockage in the at least two target electrode sheets according to the first parameter value between each pair of electrodes includes: Judging whether there is a liquid seepage hole blockage in the electrode sheets corresponding to the first parameter value and the second parameter value according to the first parameter value and the second parameter value between each pair of electrodes.

2. The method according to claim 1, wherein The first parameter value is a first impedance value. The judging whether there is a liquid seepage hole blockage in the at least two target electrode sheets according to the first parameter value between each pair of electrodes includes: When at least one of the first impedance values between each pair of electrodes is greater than a first threshold, determining that there is at least one electrode sheet with a liquid seepage hole blockage in the at least two target electrode sheets; When all the first impedance values between each pair of electrodes are less than or equal to the first threshold, determining that the liquid seepage holes of the at least two target electrode sheets are not blocked.

3. The method according to claim 1, characterized in that, The first parameter value is a first current value. The judging whether there is a liquid seepage hole blockage in the at least two target electrode sheets according to the first parameter value between each pair of electrodes includes: When at least one of the first current values between each pair of electrodes is less than a second threshold, determining that there is at least one electrode sheet with a liquid seepage hole blockage in the at least two target electrode sheets; When all the first current values between each pair of electrodes are greater than or equal to the second threshold, determining that the liquid seepage holes of the at least two target electrode sheets are not blocked.

4. The method according to claim 1, wherein The judging whether there is a liquid seepage hole blockage in the two electrode sheets corresponding to the first parameter value and the second parameter value according to the first parameter value and the second parameter value between each pair of electrodes includes: Determining the absolute value of the difference between the first parameter value and the second parameter value between each pair of electrodes; When the absolute value of the difference is less than a third threshold, determining that there is at least one electrode sheet with a liquid seepage hole blockage in the two electrode sheets corresponding to the difference; When the absolute value of the difference is greater than or equal to the third threshold, determining that the liquid seepage holes of the two electrode sheets corresponding to the difference are not blocked.

5. The method according to claim 1, wherein After judging whether there is a liquid seepage hole blockage in the at least two target electrode sheets according to the first parameter value between each pair of electrodes, it further includes: If there is a blockage in the liquid seepage holes of the electrode sheets among the at least two target electrode sheets, instruct the at least two target electrode sheets to perform liquid seepage again.

6. The method according to claim 5, characterized in that After instructing the at least two target electrode sheets to perform liquid seepage again, it further includes: Continuing to execute the step of detecting the first parameter value between each pair of electrodes in the at least two target electrode sheets in the case of completing liquid seepage, until after the number of liquid seepage times of the at least two target electrode sheets reaches a preset threshold, if there is still a blockage in the liquid seepage holes of the electrode sheets among the at least two target electrode sheets, then execute the target event.

7. The method according to claim 6, characterized in that, The liquid seepage pressure and / or liquid seepage duration of the liquid seepage holes of the at least two target electrode sheets increase sequentially with the increase in the number of liquid seepage times.

8. The method according to claim 1, wherein After judging whether there is a blockage in the liquid seepage holes of the electrode sheets among the at least two target electrode sheets according to the first parameter value between each pair of electrodes, it further includes: If there is a blockage in the liquid seepage holes of the electrode sheets among the at least two target electrode sheets, determine the electrode sheet with the blocked liquid seepage hole as the target blocked electrode sheet; Instruct the target blocked electrode sheet to perform liquid seepage again.

9. The method according to claim 8, wherein After instructing the target blocked electrode sheet to perform liquid seepage again, the method further includes: In the case where the target blocked electrode sheet completes liquid seepage, detecting the first parameter value between the target blocked electrode sheet and other electrode sheets respectively; wherein, the other electrode sheets are the electrode sheets other than the target blocked electrode sheet among the at least two target blocked electrode sheets; Judging whether the liquid seepage hole of the target blocked electrode sheet is blocked according to the first parameter value between the target blocked electrode sheet and other electrode sheets respectively; If the liquid seepage hole of the target blocked electrode sheet is blocked, continue to execute the step of instructing the target blocked electrode sheet to perform liquid seepage again, until after the number of liquid seepage times of the target blocked electrode sheet reaches a preset threshold, if the liquid seepage hole of the target blocked electrode sheet is still blocked, then execute the target event.

10. The method according to claim 9, wherein The liquid seepage pressure and / or liquid seepage duration of the liquid seepage hole of the target blocked electrode sheet increase sequentially with the increase in the number of liquid seepage times.

11. The method according to any one of claims 6-7 or 9-10, characterized in that, The target event includes at least one of the following: outputting an abnormal prompt message, stopping the massage output, sending an abnormal prompt message to the target electronic device; wherein, the target electronic device corresponds to the wearable massage device.

12. A wearable massage device, characterized in that, The wearable massage device includes at least two electrode sheets containing liquid seepage holes for liquid seepage, and the wearable massage device further includes: An acquisition module for acquiring a liquid seepage instruction; A liquid seepage module for performing liquid seepage on at least two target electrode sheets indicated by the liquid seepage instruction; A detection module for detecting the first parameter value between each pair of electrodes in the at least two target electrode sheets in the case of completing liquid seepage; A judgment module for judging whether there is a blockage in the liquid seepage holes of the electrode sheets among the at least two target electrode sheets according to the first parameter value between each pair of electrodes; The wearable massage device further includes: A second detection module for detecting the second parameter value between each pair of electrodes in at least two target electrode sheets; The judgment module includes: A third determination unit, configured to determine whether there is a clogging of the liquid seepage holes of the electrode sheets in the electrode pairs corresponding to the first parameter value and the second parameter value according to the first parameter value and the second parameter value between the electrode pairs.

13. A computer storage medium, characterized in that, The computer storage medium stores a plurality of instructions, and the instructions are adapted to be loaded and executed by a processor to perform the method steps of any one of claims 1 to 11.

14. A wearable massage device, characterized in that, Comprising: At least two electrode sheets each including a liquid seepage hole, a processor, and a memory; wherein, the memory stores a computer program, and the computer program is adapted to be loaded and executed by the processor to perform the method steps of any one of claims 1 to 11, and each of the electrode sheets includes a liquid seepage hole for seeping liquid.

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