Massage instrument

By separating the atomization device from the electrode assembly in the massager, fixing it with a conductive base and magnet, combining a flow splitter and a flexible hose, the problem of space occupied and complex structure of the atomization device is solved, and a massager design with simplified structure and good atomization effect is achieved.

CN120502024APending Publication Date: 2025-08-19GUANGDONG SKG INTELLIGENT TECH CO LTD
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Patent Information

Application Number
CN202410187816.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2024-02-19
Publication Date
2025-08-19

AI Technical Summary

Technical Problem

The atomization device of the existing massager occupies space in the electrode assembly and has a complex structure. It fails to effectively consider the impact of the attitude change of the atomization device on the atomization effect, resulting in poor atomization effect.

Method used

The atomization device is arranged at intervals relative to the flexible bracket, fixed by a conductive base and a magnet, the mist outlet channel of the atomization device is connected to the channel, freeing up the internal space of the electrode assembly, simplifying the structure, and providing a flow path through the diverter and flexible hose to ensure the atomization effect.

Benefits of technology

The structure of the electrode assembly is simplified, the good atomization effect is ensured, and it can adapt to different forms of massage parts, improving the convenience and effect of the massager.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a massage instrument. The massage instrument comprises a wearing support, an atomization device and a plurality of electrode assemblies. A channel is formed in the wearing support. The wearing support comprises an elastic arm and two handles, and the elastic arm comprises a flexible support and an elastic support. The atomization device is arranged on one of the two handles or the elastic support at intervals relative to the flexible support, and a mist outlet hole of the atomization device is communicated with the channel. The atomization device comprises an atomization piece and a liquid storage box, and the liquid storage box is located above the atomization piece in the height direction of the wearing support. The plurality of electrode assemblies are arranged on the flexible support of the wearing support, and the mist outlet hole of each electrode assembly is communicated with the channel. According to the scheme, the atomization device can be stripped from the electrode assembly, and the influence of the posture change of the atomization device on the atomization effect is fully considered, so that the internal space of the electrode assembly is released, the structure of the electrode assembly is simplified, and the good atomization effect is guaranteed.
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Description

Technical Field

[0001] The present application relates to the field of medical devices, and in particular to a massager. Background Art

[0002] Massagers can achieve a massage effect by applying electrical stimulation to the skin. To avoid dry skin causing high skin impedance and thus stinging during massage, massagers can spray atomized liquid on the massage area to reduce skin impedance.

[0003] Conventional massagers typically incorporate an atomizer within the electrode assembly, allowing atomized gas to quickly flow out of the atomizer holes on the electrode sheet. However, due to the small size of the electrode assembly, placing the atomizer within the electrode assembly takes up space within the assembly. Furthermore, each electrode assembly requires a separate atomizer, resulting in a complex electrode assembly structure. Summary of the Invention

[0004] An embodiment of the present application provides a massager, the design of which of the atomization device does not occupy the internal space of the electrode assembly and is also conducive to simplifying the structure of the electrode assembly.

[0005] In a first aspect, an embodiment of the present application provides a massager comprising a wearing bracket, an atomizing device, and a plurality of electrode assemblies. The wearing bracket has a channel inside. The wearing bracket comprises an elastic arm and two handles, and the elastic arm comprises a flexible bracket and an elastic bracket. The atomizing device is arranged on one of the two handles or the elastic bracket at intervals relative to the flexible bracket, and the mist outlet channel of the atomizing device is connected to the channel. The atomizing device comprises an atomizing element and a liquid storage tank, and the liquid storage tank is located above the atomizing element in the height direction of the wearing bracket. A plurality of electrode assemblies are arranged on the flexible bracket of the wearing bracket, and the mist outlet hole of each electrode assembly is connected to the channel.

[0006] By fixing the atomizer device on one of the two handles or the elastic bracket at intervals relative to the flexible bracket and connecting it to each mist outlet, the atomizer device can be peeled off from the electrode assembly, and the influence of the posture change of the atomizer device on the atomization effect is fully considered to release the internal space of the electrode assembly, simplify the structure of the electrode assembly, and ensure a good atomization effect.

[0007] In one implementation of the first aspect, the elastic arm has a channel inside. The elastic arm also includes an assembly groove and a conductive seat. The conductive seat is set in the assembly groove, and a flow channel is set in the conductive seat, which is part of the channel. The atomizer is installed in the assembly groove and electrically connected to the conductive seat, and the mist outlet channel of the atomizer is connected to the flow channel. By setting up an assembly groove and a conductive seat in the elastic arm, wherein the conductive seat is set in the assembly groove, the atomizer is installed in the assembly groove, and the atomizer is electrically connected to the conductive seat, the power supply device of the atomizer is stripped out from the electrode assembly, thereby releasing the internal space of the electrode assembly, simplifying the structure of the electrode assembly, and ensuring a good atomization effect.

[0008] In one implementation of the first aspect, a conductive portion is mounted on the conductive seat, a magnet is disposed within the conductive portion, and the atomizing device is in electrical contact with the conductive portion and magnetically attracted to the magnet. By placing the conductive portion on the conductive seat, wherein a magnet is disposed within the conductive portion, the atomizing device is facilitated to be tightly fixed to the conductive seat, thereby facilitating electrical contact between the atomizing device and the conductive seat. This solution replaces the solution of placing the atomizing device on the electrode assembly, stripping the power supply device of the atomizing device from the electrode assembly, thereby freeing up space within the electrode assembly, simplifying the structure of the electrode assembly, and ensuring a good atomization effect.

[0009] In one implementation of the first aspect, the assembly groove is extended along the height direction of the elastic arm and is set on the elastic bracket. Reinforcing ribs are set at the edge of the connection between the assembly groove and the elastic bracket. The depth direction of the assembly groove is the width direction of the elastic arm. The atomization device also includes an atomization chamber, and along the direction from the opening of the assembly groove to the bottom of the assembly groove, the liquid storage tank, the atomization chamber and the conductive seat are arranged in sequence. The mist outlet channel is provided in the atomization chamber. By extending the assembly groove along the height direction of the elastic arm and setting it on the elastic bracket, wherein a reinforcing rib is set at the edge of the connection between the assembly groove and the elastic bracket, the atomization device also includes an atomization chamber, and along the direction from the opening of the assembly groove to the bottom of the assembly groove, the liquid storage tank, the atomization chamber and the conductive seat are arranged in sequence, which is conducive to peeling the atomization device from the electrode assembly, thereby releasing the internal space of the electrode assembly, simplifying the structure of the electrode assembly, and ensuring a good atomization effect.

[0010] In one implementation of the first aspect, the length of the atomizing device is greater than or equal to the depth of the assembly tank, and at least a portion of the liquid storage tank is exposed outside the assembly tank. By ensuring that the length of the atomizing device is greater than or equal to the depth of the assembly tank and that at least a portion of the liquid storage tank is exposed outside the assembly tank, a user can conveniently observe the amount of atomized liquid in the liquid storage tank at any time while using the atomizing device, thereby ensuring a good atomization effect.

[0011] In an implementation of the first aspect, the massager also includes a diverter and a plurality of flexible hoses, the diverter and the plurality of flexible hoses are all located in the wearing bracket, and the plurality of flexible hoses are all connected to the diverter. The diverter does not contact the inner wall of the wearing bracket, the inner cavity of the diverter is part of the channel, and the diverter is connected to the mist outlet hole of the atomizing device. Each flexible hose serves as part of the channel. A flexible hose is correspondingly connected to an electrode assembly, and each flexible hose is connected to the diverter and a mist outlet channel. By setting up a diverter and a plurality of flexible hoses in the wearing bracket, wherein the plurality of flexible hoses are all connected to the diverter. The diverter does not contact the inner wall of the wearing bracket. The inner cavity of the diverter is part of the channel. The diverter is connected to the mist outlet hole of the atomizing device. Each flexible hose is part of the channel. One flexible hose is connected to one electrode assembly respectively, and each flexible hose connects the diverter and one mist outlet channel, which can provide a flow path for the mist formed after the atomizing device heats the atomizing liquid, thereby facilitating the separation of the atomizing device from the electrode assembly, thereby releasing the internal space of the electrode assembly, simplifying the structure of the electrode assembly, and ensuring a good atomization effect.

[0012] In one implementation of the first aspect, the diverter has a mist inlet and multiple mist outlets. The mist inlet faces the mist outlet passage of the atomizing device. Providing the mist inlet and multiple mist outlets in the diverter, with the mist inlet facing the mist outlet passage of the atomizing device, provides a flow path for mist formed after the atomizing liquid is heated by the atomizing device. This facilitates separation of the atomizing device from the electrode assembly, thereby freeing up space within the electrode assembly, simplifying the electrode assembly structure, and ensuring a good atomization effect.

[0013] In one implementation of the first aspect, each flexible hose is provided with a plurality of support members arranged along the extension direction of the channel. By providing a plurality of support members arranged along the extension direction of the channel in each flexible hose, it is possible to prevent the electrode assembly from moving and squeezing the flexible bracket, thereby preventing the pipeline from being deformed and blocked, thereby ensuring a good atomization effect of the atomization device.

[0014] In one implementation of the first aspect, the multiple air outlet holes of the diverter correspond one-to-one with the multiple electrode assemblies. The port at the connection between the electrode assembly and the flexible hose faces the mist outlet hole of the diverter corresponding to the electrode assembly. By making the multiple mist outlet holes of the diverter correspond one-to-one with the multiple electrode assemblies, and the port at the connection between the electrode assembly and the flexible hose faces the mist outlet hole of the diverter corresponding to the electrode assembly, a circulation path can be provided for the mist formed after the atomizing device heats the atomized liquid, which is conducive to peeling the atomizing device from the electrode assembly, thereby freeing up the internal space of the electrode assembly, simplifying the structure of the electrode assembly, and ensuring a good atomization effect.

[0015] In one implementation of the first aspect, each electrode assembly includes an electrode sheet and a diffuser. The mist outlet hole is provided in the electrode sheet. The diffuser passes through the mist outlet hole, and a portion of the diffuser is located on the outside of the electrode sheet. The diffuser is used to make the mist of the electrode assembly flow along the surface of the electrode sheet after flowing out of the mist outlet hole. By setting up an electrode sheet and a diffuser in the electrode assembly, wherein the mist outlet hole is provided in the electrode sheet, the diffuser passes through the mist outlet hole, and a portion of the diffuser is located on the outside of the electrode sheet, the flow direction of the atomized gas is changed from vertically ejecting from the surface of the electrode sheet to diffusing toward the surface of the electrode sheet, so that the atomized gas is better dispersed on the surface of the electrode sheet to ensure a good atomization effect.

[0016] In one implementation of the first aspect, the diffuser includes a first guide portion, a second guide portion, and a plurality of ribs. The first guide portion is protruding from the surface of the second guide portion. Each rib is protruding from the surface of the first guide portion and the surface of the second portion, and there is a gap between any two adjacent ribs. The first guide portion and the portion of each rib located on the first guide portion are all located on the inner side of the electrode sheet. The second guide portion and the portion of each rib located on the second guide portion are all located on the outer side of the electrode sheet. By establishing the first guide portion, the second guide portion, and the plurality of ribs in the diffuser, wherein the first guide portion is protruding from the surface of the second guide portion, each rib is protruding from the surface of the first guide portion and the surface of the second portion, and there is a gap between any two adjacent ribs, the first guide portion and the portion of each rib located on the first guide portion are all located on the inner side of the electrode sheet, and the second guide portion and the portion of each rib located on the second guide portion are all located on the outer side of the electrode sheet, it is beneficial for the atomized gas to be better dispersed on the surface of the electrode sheet, thereby ensuring a good atomization effect.

[0017] In one implementation of the first aspect, the atomization hole of each electrode assembly is a trumpet-shaped hole, with the larger end of the trumpet hole facing outward from the electrode assembly and the smaller end of the trumpet hole facing inward from the electrode assembly. By aligning the larger end of the trumpet hole with the outer side of the electrode assembly and the smaller end of the trumpet hole with the inner side of the electrode assembly, the atomized gas is better dispersed across the surface of the electrode sheet, thereby ensuring a good atomization effect.

[0018] In one implementation of the first aspect, a water absorbent member is provided within the channel. The water absorbent member is provided at the junction of the diverter and the mist outlet channel. This arrangement prevents excessive water from clogging the channel after the heated mist cools and liquefies, thereby ensuring a good atomization effect.

[0019] In an implementation of the first aspect, the minimum inner diameter of the channel is greater than or equal to 1.5 mm. By making the minimum inner diameter of the channel greater than or equal to 1.5 mm, channel blockage can be avoided, thereby ensuring a good atomization effect. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 Schematic diagram of the structure of the massager provided in the embodiment of the present application;

[0021] Figure 2 This is an AA cross-sectional view of the atomizing device of the massager provided in an embodiment of the present application;

[0022] Figure 3 Schematic diagram of the structure of the liquid storage tank of the atomization device provided in an embodiment of the present application;

[0023] Figure 4 Schematic diagram of the structure of the remaining components of the atomization device provided in an embodiment of the present application except for the liquid storage tank;

[0024] Figure 5 This is another structural schematic diagram of the remaining components of the atomization device provided in an embodiment of the present application, excluding the liquid storage tank;

[0025] Figure 6 1 is a schematic structural diagram of an electrode assembly of a massager provided in an embodiment of the present application;

[0026] Figure 7 is an exploded view of an electrode assembly of a massager provided in an embodiment of the present application;

[0027] Figure 8 is a cross-sectional view of an electrode assembly of a massager provided in an embodiment of the present application;

[0028] Figure 9 Schematic diagram of the structure of the diffuser of the massager provided in the embodiment of the present application;

[0029] Figure 10 This is a schematic diagram of the structure of the wearing bracket provided in an embodiment of the present application;

[0030] Figure 11 is an exploded view of the elastic arm provided in an embodiment of the present application;

[0031] Figure 12 Schematic diagram of the coordination structure of the atomizing device, the conductive seat and the adapter provided in an embodiment of the present application;

[0032] Figure 13 Schematic diagram of the structure of the conductive seat provided in the embodiment of the present application;

[0033] Figure 14 This is an AA cross-sectional view of the matching structure of the conductive seat and the adapter provided in an embodiment of the present application;

[0034] Figure 15 Schematic diagram of the mist transmission system provided in an embodiment of the present application. DETAILED DESCRIPTION

[0035] The following will be combined with the drawings of the embodiments of the present application to clearly and completely describe the technical solutions in the embodiments of the present application. Obviously, the described embodiments are part of the embodiments of the present application, not all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by ordinary technicians in this field without making creative efforts should fall within the scope of protection of this application.

[0036] Existing electrostimulation massagers reduce skin impedance by spraying atomized liquid onto the affected area. However, integrating the atomizer into the electrode assembly further cramps the already small internal space of the electrode assembly and complicates its structure. Furthermore, existing electrostimulation massagers fail to adequately consider the impact of the atomizer's posture changes on the atomization effect, resulting in poor atomization results.

[0037] In view of this, an embodiment of the present application provides a massager that can separate the atomization device from the electrode assembly and fully consider the impact of the posture change of the atomization device on the atomization effect, so as to release the internal space of the electrode assembly, simplify the structure of the electrode assembly, and ensure a good atomization effect.

[0038] Figure 1 This is a schematic diagram of the structure of the massager 1 provided in the embodiment of the present application. Figure 1 The massager 1 may include an atomizer 2, an electrode assembly 3, and a wearing bracket 4. The atomizer 2 may be located on one side of the wearing bracket 4, and the electrode assembly 3 may be located on the side of the wearing bracket 4 facing away from the atomizer 2. The atomizer 2 may be located approximately in the middle of the wearing bracket 4, which allows the atomizer 2 to serve as a fulcrum for deformation when the wearing bracket is opened, thereby facilitating the opening of the wearing bracket 4.

[0039] Figure 2 AA is a cross-sectional view of the atomizing device 2 of the massager 1 provided in an embodiment of the present application. Figure 3 Schematic diagram of the structure of the liquid storage tank 21 of the atomization device 2 provided in an embodiment of the present application.

[0040] Combine Figure 2 and Figure 3As shown, the atomizing device 2 may include a liquid storage tank 21, an atomizing element 22, a circulation piece 23, a mist outlet channel 25, and a magnet 26. The liquid storage tank 21 may be nested on the remaining components of the atomizing device 2, and an enclosed space may be formed between the two, and the enclosed space may be a liquid storage chamber 27. The liquid storage chamber 27 may be composed of an ellipsoidal cavity and a funnel-shaped cavity. The circulation piece 23 may be set up at the end of the atomizing element 22 away from the liquid storage tank 21. The mist outlet channel 25 may be set up at the end of the circulation piece 23 away from the atomizing element 22. The surface where the circulation piece 23 and the mist outlet channel 25 are located may form an enclosed space, and the enclosed space may be the atomizing chamber 24. The magnet 26 may be set up on both sides of the mist outlet channel 25, and there may be two magnets 26.

[0041] Combine Figure 2 and Figure 3 As shown, the liquid storage tank 21 can be located above the atomizing element 22 in the width direction of the wearing bracket 4, so that the atomized liquid can flow to the atomizing element 22 by its own gravity when the massager 1 is in use. The liquid storage tank 21 may include a liquid storage tank body 211 and a shell 212. The liquid storage tank body 211 may be connected to the shell 212. The liquid storage tank body 211 may be in the shape of an elliptical cylinder, and the liquid storage tank body 211 may have a partial liquid storage cavity 27. The liquid storage tank body 211 may form a cavity 213 with the shell 212. After the liquid storage tank 21 is nested on the remaining components of the atomizing device 2, the remaining components of the atomizing device 2 may be covered by the cavity 213.

[0042] Figure 4 2 is a schematic structural diagram of the remaining components of the atomization device 2 provided in an embodiment of the present application, excluding the liquid storage tank 21. Figure 5 This is another structural diagram of the remaining components of the atomizing device 2 provided in the embodiment of the present application except the liquid storage tank 21. Figure 5 and Figure 2 As shown, the atomizing element 22 can heat and atomize the atomized liquid in the liquid storage tank 21 to form mist.

[0043] Combine Figure 5 and Figure 2 As shown, the circulation sheet 23 may have a plurality of through holes, which may facilitate the flow of mist formed by the atomizing element 22 heating and atomizing the atomized liquid, thereby allowing the mist to enter the atomizing chamber 24 better.

[0044] See also Figure 2 The atomizing chamber 24 can accommodate the mist formed by the atomizing element 22 heating and atomizing the atomized liquid. The mist in the atomizing chamber 24 can be discharged from the through hole 28 of the mist outlet channel 25 under the action of the air pump.

[0045] The magnet 26 can fix the atomizing device 2 on the wearing bracket 4 under the effect of magnetic attraction. The connection relationship between the atomizing device 2 and the wearing bracket 4 will be explained in detail later.

[0046] Combine Figure 4 and Figure 2 As shown, the atomizing device 2 may further include an air inlet channel 29. The gas blown out by the air pump may enter the atomizing chamber 24 through the through hole 28 of the air inlet channel 29, and then the mist in the atomizing chamber 24 may be discharged from the mist outlet channel 25.

[0047] Figure 6 : is a structural diagram of the electrode assembly 3 of the massager 1 provided in an embodiment of the present application, Figure 7 This is an exploded view of the electrode assembly 3 of the massager 1 provided in the embodiment of the present application. Figure 6 and Figure 7 As shown, the electrode assembly 3 may include a fixing member 31, a sealing member 32, an electrode sheet 33, and a diffuser 34. A direction perpendicular to the electrode sheet 33 is defined as a first direction. The fixing member 31 and the electrode sheet 33 may be connected along the first direction. The sealing member 32 may be disposed around the gap at the connection interface between the fixing member 31 and the electrode sheet 33. The diffuser 34 may be disposed within the space enclosed by the fixing member 31 and the electrode sheet 33.

[0048] Combine Figure 6 and Figure 1 As shown, the fixing member 31 can be connected to the side of the wearing bracket 4 away from the atomizing device 2, and the fixing member 31 can play a good supporting and fixing role for the electrode sheet 33. Schematically, the fixing member 31 can be made of silicone material.

[0049] The electrode sheet 33 can output electrical stimulation, and the inner surface of the electrode sheet 33 can be attached to the fixing member 31 . The attaching surface between the electrode sheet 33 and the fixing member 31 can be provided with a sealing member 32 .

[0050] The sealing member 32 , schematically, can be made of rubber or plastic material and can prevent mist from flowing out of the gap between the electrode sheet 33 and the fixing member 31 .

[0051] The diffuser 34 can be built into the electrode assembly 3 and pass through the mist outlet hole 36 provided on the electrode assembly 3, thereby allowing a portion of the diffuser 34 to be located outside the electrode sheet 33. The diffuser 34 can be used to direct the mist from the electrode assembly 3 along the surface of the electrode sheet 33 after exiting the mist outlet hole 36, thereby better dispersing the mist on the surface of the electrode sheet 33, ultimately achieving a better impedance reduction effect on the affected skin. The structure and mechanism of action of the diffuser 34 will be described in detail later.

[0052] Figure 81 is a cross-sectional view of the electrode assembly 3 of the massager 1 provided in the embodiment of the present application. Figure 8 and Figure 7 As shown, the electrode assembly 3 may further include a mist channel 35. The mist channel 35 may receive the mist transmitted from the atomizing device 2 and transmit the mist to the diffuser 34 for further processing.

[0053] The mist outlet 36 of each electrode assembly 3 can be a trumpet hole, with the large end of the trumpet hole 36 facing outward from the electrode assembly 36 and the small end of the trumpet hole 36 facing inward from the electrode assembly. The trumpet hole 36 provides a certain amount of storage space and facilitates the diffusion of mist to the surface of the electrode sheet 33, preventing the mist outlet channel of the electrode sheet 33 from being too small and easily blocked when in contact with the skin.

[0054] Figure 9 Schematic diagram of the structure of the diffuser 34 provided in the embodiment of the present application. Figure 9 The diffuser 34 may include a first guide portion 341 , a plurality of ribs 342 and a second guide portion 344 .

[0055] The first guide portion 341 can be approximately a columnar structure, and the second guide portion 344 can be approximately a truncated cone structure. The first guide portion 341 can be protruded from the surface of the second guide portion 344. Schematically, the first guide portion 341 can be located on the end surface of the second guide portion 344 with a smaller diameter, and an obtuse angle can be formed between the first guide portion 341 and the second guide portion 344.

[0056] The ribs 342 may be protruded from the surface of the first guide portion 341 and the surface of the second guide portion 344 , and a gap 343 may be formed between any two adjacent ribs 342 .

[0057] Combine Figure 9 and Figure 8 As shown, the first guide portion 341 and the portion of the rib 342 located on the first guide portion 341 are both located on the inner side of the electrode sheet 33. The second guide portion 344 and the portion of the rib 342 located on the second guide portion 344 are both located on the outer side of the electrode sheet 33. The first guide portion 341 and the portion of the rib 342 located on the first guide portion 341 can both be located on the inner side of the electrode sheet 33.

[0058] The diffuser 34 can be fixed to the inner wall of the mist channel 35 within the electrode assembly 3 via the ribs 342. The gap 343 can serve as a flow path for the mist, allowing the mist flowing through the mist channel 35 to flow out through the gap 343. The second guide portion 344 can disperse the mist flowing out of the gap 343 through the horn hole 36 onto the surface of the electrode sheet 33, thereby achieving mist outflow and dispersion.

[0059] Figure 10Schematic diagram of the structure of the wearing bracket 4 provided in the embodiment of the present application. Figure 10 The wearing bracket 4 may include an elastic arm 5 and a handle 6.

[0060] The handles 6 can be located at opposite ends of the extension direction of the elastic arm 5. The handles 6 can serve as force-bearing components for opening the elastic arm 5 when the user uses the massager 1, and can generate a certain clamping force on the action part after the user wears the massager 1.

[0061] The elastic arm 5 may include a flexible bracket 51, an elastic bracket 52, an assembly groove 53, a conductive seat 54, and a reinforcing rib 55. The flexible bracket 51 may be tightly connected to the elastic bracket 52, the assembly groove 53 may be located in the middle of the elastic arm 5, the reinforcing rib 55 may be provided at the edge of the connection between the assembly groove 53 and the elastic bracket 52, and the conductive seat 54 may be provided at the bottom of the assembly groove 53.

[0062] Combine Figure 10 and Figure 1 As shown, the flexible bracket 51 can be connected to the elastic bracket 52, and the atomizer 2 can be set on the side of the elastic bracket 52 facing away from the flexible bracket 51. This means that the atomizer 2 can be set on the elastic bracket 52 at intervals relative to the flexible bracket 51. The flexible bracket 51 can provide deformation space when the electrode assembly 3 is squeezed, so that the electrode assembly 3 can adjust its posture to adapt to the different shapes of the massage area. The flexible bracket 51 can also generate a certain squeezing force on the electrode assembly 3, so that the electrode assembly 3 fits more closely on the massage area. Schematically, the flexible bracket 51 can be made of silicone material.

[0063] Combine Figure 10 、 Figure 1 and Figure 2 As shown, the elastic bracket 52 can separate the atomizing device 2 from the matching structure of the flexible bracket 51 and the electrode assembly 3, so that the electrode assembly 3 is stressed and squeezes the flexible bracket 51. As a result, when the flexible bracket 51 is deformed, the posture of the atomizing device 2 will not change, so that the liquid can flow smoothly to the atomizing element 22 by its own gravity for atomization, ensuring the atomization effect. Schematically, the elastic bracket 52 can be made of resin material.

[0064] The deformation cavity 50 can be formed between the flexible bracket 51 and the elastic bracket 52. The deformation cavity 50 can provide deformation space for the flexible bracket 51 when the flexible bracket 51 is deformed, thereby increasing the deformation range of the electrode assembly 3 when the massager 1 is worn and used, so as to better adapt to the shape of the action part and enhance the massage effect.

[0065] Combine Figure 10 and Figure 1 As shown, the depth direction of the assembly groove 53 can be Figure 1In the width direction of the elastic arm 5 indicated in FIG, the assembly groove 53 can accommodate the atomizing device 2. The length of the atomizing device 2 can be greater than or equal to the depth of the assembly groove 53. At least a portion of the liquid storage tank 21 of the atomizing device 2 can be exposed in the assembly groove 53.

[0066] A conductive base 54 can be installed within the assembly slot 53. The conductive base 54 can generate magnetic attraction through the magnet 26, thereby securing the atomizer 2. The conductive base 54 provides an electrical connection for the atomizer 22 of the atomizer 2, allowing the atomizer 2 to be electrically connected to the conductive base 54. The conductive base 54 also provides a partial flow path for the flow of mist. The structure of the conductive base 54 will be explained in detail later.

[0067] The reinforcing ribs 55 can form a solidified area at the location of the assembly groove 53, thereby preventing the atomizing device 2 from loosening when the elastic arm 5 is opened. Schematically, the reinforcing ribs 55 can be made of resin material.

[0068] Figure 11 : is an exploded view of the elastic arm 5 provided in the embodiment of the present application. Figure 11 , the elastic arm 5 may further include an adapter 56 .

[0069] Combine Figure 11 、 Figure 2 and Figure 4 As shown, one end of the adapter 56 can be connected to the conductive seat 54. The adapter 56 can provide an inflow channel for the gas generated by the air pump, thereby allowing the gas to pass through the air inlet channel 29 of the atomizing device 2 fixed on the conductive seat 54, and finally the gas can enter the atomizing chamber 24 of the atomizing device 2. The gas entering the atomizing chamber 24 can discharge the mist stored in the atomizing chamber 24 through the mist outlet channel 25.

[0070] Figure 12 Schematic diagram of the coordination structure of the atomizing device 2, the conductive seat 54 and the adapter 56 provided in the embodiment of the present application. Figure 14 The conductive seat 54 and the atomizing device 2 can be arranged in sequence along the width direction of the elastic arm 5. The adapter 56 can be connected to the conductive seat 54 in a direction perpendicular to the arrangement plane of the conductive seat 54 and the atomizing device 2.

[0071] Figure 13 Schematic diagram of the structure of the conductive seat 54 provided in the embodiment of the present application. Figure 13 and Figure 5 As shown, the conductive base 54 may include a base 541 and a conductive portion 542. The base 541 may have an air inlet 543 and a mist outlet 544. The conductive portion 542, one side of the air inlet 543, and one side of the mist outlet 544 may be located on the same plane of the base 541.

[0072] The conductive portion 542 can provide an electrical connection for the atomizer 2 resting on the conductive seat 54. A magnet can be placed inside the conductive portion 542 to generate a magnetic force with the magnet 26 of the atomizer 2, thereby achieving magnetic attraction to fix the atomizer 2. Illustratively, the conductive portion 542 can be made of copper. The air inlet 543 provides an inflow channel for the gas generated by the air pump. The mist outlet 544 provides an outflow channel for the mist generated by the atomizer 2.

[0073] Figure 14 AA cross-sectional view of the matching structure of the conductive base 54 and the adapter 56 provided in the embodiment of the present application. Figure 14 The adapter 56 may include an air inlet channel 561 and a mist outlet channel 562. The air inlet channel 561 and the mist outlet channel 562 of the adapter 56 may be connected to the air inlet hole 543 and the mist outlet hole 544 of the conductive base 54, respectively.

[0074] Combine Figure 13 、 Figure 4 and Figure 10 As shown, the gas generated by the air pump on the handle 6 can pass through the air inlet channel 561 of the adapter 56, and can enter the air inlet channel 29 of the atomizing device 2 from the air inlet hole 543 of the conductive base, thereby blowing out the mist stored in the atomizing chamber 24. The blown mist can pass through the mist outlet hole of the mist outlet channel 25 in the atomizing device 2 and then through the mist outlet hole 544 into the mist outlet channel 562 of the adapter 56, and then enter the entire channel.

[0075] The mist generated by the atomization device 2 needs to be transported to the electrode assembly 3 through the channel in the elastic arm 5 . Figure 15 Schematic diagram of the mist transmission system provided in the embodiment of the present application. Figure 15 The elastic arm 5 may further include a diverter 57 and a flexible hose 58 .

[0076] Combine Figure 15 、 Figure 2 、 Figure 10 and Figure 13 As shown, the diverter 57 can be set in the deformation cavity 50 between the flexible bracket 51 and the elastic bracket 52. The diverter 57 can not contact the inner wall of the elastic arm 5, that is, the diverter 57 can be suspended in the deformation cavity 52 to adapt to the deformation of the elastic arm 5, maintain a stable position, and thus ensure the stability of the mist path. The diverter 57 can be connected to the adapter 56 and the mist outlet channel 25 of the atomizing device 2 respectively. The diverter 57 can have an inner cavity, which can be a part of the channel.

[0077] Combine Figure 15 and Figure 8As shown, there can be multiple flexible hoses 58. Multiple flexible hoses 58 can be connected to the end of the diverter 57 away from the adapter 56. Each flexible hose 58 can serve as a part of the channel. One flexible hose 58 can be connected to one electrode assembly 3, and each flexible hose 58 can connect the diverter 57 with the horn hole 36 of one electrode assembly 3. Multiple support members 59 can be set up in the flexible hose 58, and the multiple support members 59 can be arranged along the extension direction of the channel. This is to prevent the pipeline from being deformed and blocked when the electrode assembly 3 moves to squeeze the flexible bracket 51.

[0078] The diverter 57 can be a four-channel valve-like structure. The diverter 57 can have a mist inlet hole 571 and a plurality of mist outlet holes 572. The mist inlet hole 571 can face the mist outlet channel 25 of the atomizing device 2, so that the pipeline is not easily bent when arranged. The plurality of mist outlet holes 572 can correspond one to one with the plurality of electrode assemblies 3, and the corresponding mist outlet holes 572 face the port at the connection between the electrode assembly 3 and the flexible hose 58, that is, the port at the connection between the electrode assembly 3 and the flexible hose 58 faces the mist outlet hole 572 of the diverter 57 corresponding to the electrode assembly 3. The diverter 57 can receive the mist from the atomizing device 2 through the mist inlet hole 571, and the diverter 57 can divert the mist into the plurality of flexible hoses 58 through the mist outlet hole 572.

[0079] The mist outlet channel 25 of the atomizing device 2, the mist outlet channel 562 of the adapter 56, and the flexible hose 58 can be collectively referred to as a channel. Schematically, the minimum inner diameter of the channel can be greater than or equal to 1.5 mm, thereby preventing the channel from being blocked due to a too small diameter.

[0080] See also Figure 15 The water absorbing element 7 can be located at the junction of the diverter 57 and the adapter 56. Since the atomizing element 22 heats and atomizes the atomizing chamber 24, the mist can be warm. When the mist flows out of the atomizing chamber 24, it can remove moisture from the air. When the temperature drops, the moisture in the air can be liquefied. To prevent excessive water from clogging the pipe, the water absorbing element 7 can be installed to absorb the water.

[0081] In summary, the transmission process of fog is as follows: Figure 8 、 Figure 13 and Figure 15 As shown, the mist generated in the atomizing device 2 can enter the adapter 56 through the mist outlet hole 544 of the conductive seat 54, and then enter the diverter 57 through the mist outlet channel 562 of the adapter 56. The mist can enter the flexible hose 58 through the diverter 57, and then reach the electrode assembly 3, and then reach the diffuser 34 through the mist channel 35 in the electrode assembly 3. Then the diffuser 34 can make the mist better dispersed on the surface of the electrode sheet 33, and finally act on the target part of the customer.

[0082] The above description is merely a specific implementation of the embodiments of the present application, but the scope of protection of the embodiments of the present application is not limited thereto. Any changes or substitutions that can be easily conceived by a person skilled in the art within the technical scope disclosed in the embodiments of the present application should be included in the scope of protection of the embodiments of the present application. Therefore, the scope of protection of the embodiments of the present application should be based on the scope of protection of the claims.

Claims

1. A massager, characterized in that: Includes wearing a bracket, a nebulizer device, and multiple electrode assemblies; The wearing bracket has a passage inside; the wearing bracket includes an elastic arm and two handles, and the elastic arm includes a flexible bracket and an elastic bracket; The atomizing device is provided on one of the two handles or the elastic bracket at an interval relative to the flexible bracket, and the mist outlet channel of the atomizing device is connected to the channel; the atomizing device includes an atomizing element and a liquid storage tank, and the liquid storage tank is located above the atomizing element in the height direction of the wearing bracket; The plurality of electrode assemblies are all arranged on the flexible support of the wearing support, and the mist outlet hole of each electrode assembly is communicated with the channel.

2. The massager according to claim 1, wherein: The elastic arm has a channel inside; the elastic arm also includes an assembly groove and a conductive seat; The conductive seat is set in the assembly groove, and a flow channel is provided in the conductive seat, and the flow channel is a part of the channel; The atomizing device is installed in the assembling groove and is electrically connected to the conductive seat. The mist outlet channel of the atomizing device is communicated with the flow channel.

3. The massager according to claim 2, characterized in that The conductive seat is provided with a conductive part, a magnet is provided in the conductive part, and the atomizing device is in electrical contact with the conductive part and is magnetically attracted to the magnet.

4. The massager according to claim 2 or 3, characterized in that: The assembly groove is extended along the height direction of the elastic arm and is set on the elastic bracket; a reinforcing rib is set at the edge of the connection between the assembly groove and the elastic bracket; the depth direction of the assembly groove is the width direction of the elastic arm; The atomizing device further includes an atomizing chamber. Along the direction from the opening of the assembly tank to the bottom of the assembly tank, the liquid storage tank, the atomizing chamber and the conductive seat are arranged in sequence; the mist outlet is provided in the atomizing chamber.

5. The massager according to claim 4, characterized in that The length of the atomizing device is greater than or equal to the depth of the assembly tank; and at least a portion of the liquid storage tank is exposed outside the assembly tank.

6. The massager according to any one of claims 1 to 3, characterized in that: The massager further includes a diverter and a plurality of flexible hoses, wherein the diverter and the plurality of flexible hoses are both located in the wearing bracket, and the plurality of flexible hoses are all connected to the diverter; The diverter does not contact the inner wall of the wearing bracket, the inner cavity of the diverter is part of the channel, and the diverter is connected to the mist outlet channel of the atomizing device; Each of the flexible hoses serves as a part of the channel; one of the flexible hoses is correspondingly connected to one of the electrode assemblies, and each of the flexible hoses is connected to the diverter and one of the mist outlet channels.

7. The massager according to claim 6, characterized in that The diverter has a mist inlet hole and a plurality of mist outlet holes; The mist inlet hole faces the mist outlet channel of the atomizing device.

8. The massager according to claim 6, characterized in that A plurality of supporting members are arranged in each flexible hose along the extending direction of the channel.

9. The massager according to claim 7 or 8, characterized in that: The plurality of air outlet holes of the diverter correspond one-to-one to the plurality of electrode assemblies; and the port at the connection between the electrode assembly and the flexible hose faces the mist outlet holes of the diverter corresponding to the electrode assemblies.

10. The massager according to any one of claims 1 to 3, characterized in that: Each of the electrode assemblies includes an electrode sheet and a diffuser; The mist outlet is provided on the electrode sheet; The diffuser passes through the mist outlet hole, and a portion of the diffuser is located outside the electrode sheet; the diffuser is used to make the mist of the electrode assembly flow along the surface of the electrode sheet after flowing out of the mist outlet hole.

11. The massager according to claim 10, characterized in that The diffuser includes a first guide portion, a second guide portion, and a plurality of ribs; the first guide portion is protruding from the surface of the second guide portion; each of the ribs is protruding from the surface of the first guide portion and the surface of the second portion, and there is a gap between any two adjacent ribs; The first guide portion and the portion of each rib located on the first guide portion are both located on the inner side of the electrode sheet; the second guide portion and the portion of each rib located on the second guide portion are both located on the outer side of the electrode sheet.

12. The massager according to any one of claims 1 to 3, characterized in that: The mist outlet hole of each electrode assembly is a trumpet hole, the large end of the trumpet hole faces the outside of the electrode assembly, and the small end of the trumpet hole faces the inside of the electrode assembly.

13. The massager according to any one of claims 1 to 3, characterized in that: A water absorbing component is provided in the channel; the water absorbing component is provided at the connection between the diverter and the mist outlet channel.

14. The massager according to any one of claims 1 to 3, characterized in that: The minimum inner diameter of the channel is greater than or equal to 1.5 mm.