Portable patch structure and portable bioelectric patch thereof
By setting anode and cathode protrusions on the electrode layer and connecting them to the conductive gel substrate layer through through holes in the insulating layer, the problems of cumbersome and unstable manufacturing of existing electrode patches are solved, achieving the effect of simplified process and stable adhesion.
Patent Information
- Application Number
- CN202422626907.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-29
- Publication Date
- 2025-10-17
- Estimated Expiration
- 2034-10-29
AI Technical Summary
The existing electrode patch manufacturing process is cumbersome, the wire connection is inconvenient, and the male-female connection method increases weight and instability, affecting ease of use and manufacturing efficiency.
By setting anode and cathode protrusions on the electrode layer and connecting them to the conductive gel substrate layer through through holes in the insulating layer, the wires and male and female connections are omitted, forming a closed loop, simplifying the manufacturing process and improving the bonding stability.
It saves manufacturing steps, reduces production costs, improves ease of operation, and achieves stable and long-lasting adhesion of bioelectric patches.
Smart Images

Figure CN223439027U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of auxiliary physical treatment and rehabilitation equipment, in particular to a portable patch structure and portable bioelectricity patch thereof. BACKGROUND
[0002] The electric patch is a kind of accessory widely used in the working of auxiliary physical treatment and rehabilitation equipment, when using, the electrode patch needs to be placed in a specific position of the human body, so that the electrode is tightly attached to the skin surface. Then, the physical treatment and rehabilitation equipment output a certain frequency range and amplitude range of stimulation signal to the electrode sheet, to stimulate the nerves or muscles of the human body, so that the human body produces clinical biological response, so as to achieve the purpose of treatment.
[0003] In the prior art, the Chinese utility model patent with the authorization announcement number "CN203370196U" and the name "improved structure of electrode patch" specifically discloses that "a covering material is arranged, and a conductive material is arranged below the covering material, a conductive gel is arranged below the conductive material, the conductive gel comprises a base cloth and a gel, a release film is arranged below the conductive gel, the conductive gel is attached to the skin surface layer of the human body after the release film is removed, the conductive material comprises an electrode terminal, the electrode terminal is extended from the conductive material, and current can be conducted to the conductive material by corresponding single power supply", and it can be known from the drawings in the specification disclosed by the patent document that two wiring terminals are inserted into the electrode sheet, the wiring terminals are arranged in parallel, the wiring terminals are connected with the controller and the power supply through wires, although the wiring terminals are collected together and the patch is also collected on the base cloth in the connection mode, the external connection of the conductive terminal is not abandoned, the scattered wires bring many inconveniences to the use when using, and many manufacturing steps are additionally added when manufacturing, the degree of complexity of manufacturing is increased, and the manufacturing efficiency is reduced.
[0004] In addition, the connection mode of the male buckle and the female buckle is also adopted in other technical solutions known by the inventor, the male buckle or the female buckle is welded on the conductive layer (the conductive layer is covered with an insulating layer, and the male buckle or the female buckle penetrates through the insulating layer) and the electric plate layer, respectively, and the conductive gel is electrified by the buckling of the male buckle and the female buckle, although the buckling mode of the male buckle and the female buckle omits the external wires and the wire terminals and reduces the contact failure rate, the welding steps of the male buckle and the female buckle and other manufacturing steps are still increased, and the manufacturing efficiency is reduced. Since the vertical height of the male buckle and the female buckle is high and the weight of the male buckle and the female buckle is heavy, the overall weight of the electric patch integrated with the male buckle and the female buckle is heavy or the gravity center is high, so that the electric patch is not easy to be stable and long-lastingly pasted, especially when being vertically pasted.
[0005] It is to be understood that the information disclosed in the Background section is only for the purpose of enhancing the understanding of the background of the present disclosure and therefore can include information that is not prior art to those skilled in the art. Utility Model Content
[0006] In view of the above defects, the technical problem to be solved by the utility model is to provide a convenient patch structure and a convenient bioelectric patch, so as to save processing procedures and processing materials, especially to save processing steps, and also effectively improve the convenience of operation.
[0007] In order to solve the above technical problems, the utility model provides a kind of convenient patch structure, including the electric plate layer, insulating layer and the conductive gel base material layer for being sequentially arranged with skin contact, the insulating layer is provided with through hole, the electric plate layer is equipped with cathode protrusion and anode protrusion, the cathode protrusion and the anode protrusion are inserted into the through hole on the insulating layer and are connected with the conductive gel base material layer, so that the conductive gel base material layer, electric plate layer and human skin form patch closed loop, the conductive gel in the conductive gel base material layer is generally in direct contact with skin, and the conductive gel is generally soft and sticky.
[0008] In one embodiment of the utility model, the size of the electric plate layer is not greater than the insulating layer, the insulating layer is provided with at least one first positioning part, and the outer edge of the electric plate layer is provided with a second positioning part matched with the first positioning part;When the second positioning part and the first positioning part are aligned, the anode protrusion and the cathode protrusion are inserted into the through hole, and two first positioning parts can be generally provided, and only one first positioning part can be provided to complete the positioning of the cathode protrusion and the anode protrusion penetrating through the through hole when the shape is special.
[0009] In one embodiment of the utility model, the electric plate layer, the insulating layer and the conductive gel base material layer are all arranged in a circular shape.
[0010] In one embodiment of the utility model, the electric plate layer, the insulating layer and the conductive gel base material layer are all arranged in a rectangular shape, or at least one polygonal shape with an edge protrusion, or at least one curved arc protrusion or concave curved surface shape.
[0011] In one embodiment of the utility model, the first positioning part and the second positioning part are marking protrusions or marking grooves, and when the outer end of the first positioning part is aligned with the inner end of the second positioning part, the anode protrusion and the cathode protrusion are inserted into the through hole and connected with the conductive gel base material layer.
[0012] In one embodiment of the utility model, the through hole is provided with conductive gel, so that the cathode protrusion and the anode protrusion are more stable when penetrating through the through hole and electrically connected with the conductive gel base material layer.
[0013] The utility model also provides a portable bioelectricity patch, including the end cover of covering electric board layer, easy to peel off the film and the portable patch structure of any one of above, the end cover the electric board layer the insulating layer the conductive gel base material layer and easy to peel off the film are sequentially arranged from top to bottom, the electric board layer is communicated the conductive gel base material layer through the cathode protrusion and the anode protrusion penetrates the insulating layer.
[0014] In one embodiment of the utility model, the end cover is provided with a third positioning part, which is aligned with the first positioning part of the electric board layer or the second positioning part of the insulating layer.
[0015] In one embodiment of the utility model, a switch is further included, which is arranged on the electric board layer, and the end of the switch extends from the inside of the end cover to the outside of the end cover; a hollow hole is formed in the end cover, the protruding part of the switch is engaged in the hollow hole, and the switch moves back and forth in the hollow hole to control the opening and closing of the circuit.
[0016] In one embodiment of the utility model, a Bluetooth connection part is arranged on the electric board layer, which can be connected with a mobile terminal through Bluetooth, and the circuit of the electric board layer is controlled by the mobile terminal.
[0017] As described above, the portable patch structure and the portable bioelectricity patch have the following beneficial effects:
[0018] In the utility model, the anode protrusion and the cathode protrusion that are in communication with the battery on the substrate are fixed on the side of the electric board layer close to the conductive gel base material layer, the anode protrusion and the cathode protrusion penetrate the through hole and contact the conductive gel base material layer, the circuit is started to supply power to the conductive gel base material layer, and the closed loop is formed by the conductive gel base material layer, the electric board layer and the human skin. The utility model avoids the connection of the electric board layer and the conductive gel base material layer by wires during production and manufacturing, avoids the complicated steps during the connection of the male buckle and the female buckle, effectively saves the manufacturing steps, saves the production cost, and does not need to plug in the conductive connector when used, which saves the complicated steps of plugging in the wire during use, improves the convenience of operation, and realizes the stable and long-term sticking of the bioelectricity patch. BRIEF DESCRIPTION OF DRAWINGS
[0019] Figure 1 The first perspective three-dimensional schematic view of the portable patch structure provided in the first embodiment of the utility model is shown in the figure.
[0020] Figure 2 The second perspective three-dimensional schematic view of the portable patch structure provided in the first embodiment of the utility model is shown in the figure.
[0021] Figure 3A schematic diagram showing the positioning of a portable patch structure provided in the first embodiment of the present invention;
[0022] Figure 4 An exploded schematic diagram of a portable patch structure provided in Example 1 of the present utility model;
[0023] Figure 5 An exploded schematic diagram of a portable patch structure provided in Example 2 of the present utility model;
[0024] Figure 6 This is a schematic diagram of the assembly of the portable bioelectric patch provided in Example 1 of the present utility model;
[0025] Figure 7 This is a schematic diagram of the assembly of the portable bioelectric patch provided in the second embodiment of the present utility model;
[0026] Figure 8 This is a schematic diagram of the top-down sequential structure of another embodiment of the portable bioelectric patch of the utility model, in which the first conductive gel, the second conductive gel, and the conductive substrate layer are arranged relative to each other;
[0027] Figure 9 This is a top-down structural diagram of the first conductive gel, the second conductive gel, and the conductive substrate layer in another (shape) embodiment of the portable bioelectric patch of the present invention.
[0028] Description of reference numerals:
[0029] 100, electric plate layer; 110, anode protrusion; 120, cathode protrusion; 130, first positioning portion; 200, insulating layer; 210, through hole; 220, second positioning portion; 300, conductive gel substrate layer; 310, conductive substrate layer; 320, first conductive gel; 330, second conductive gel; 400, end cap; 410, third positioning portion; 420, hollow hole; 500, switch; 600, easy-to-peel film. DETAILED DESCRIPTION
[0030] The following describes the implementation of the present invention through specific embodiments. People familiar with this technology can easily understand other advantages and effects of the present invention from the contents disclosed in this specification.
[0031] It should be noted that the structures, proportions, sizes, etc. illustrated in the drawings of this specification are only used to match the contents disclosed in the specification for understanding and reading by those familiar with this technology, and are not used to limit the conditions for implementation of the present invention. Therefore, they have no substantial technical significance. Any modification of the structure, change in the proportional relationship, or adjustment of the size should still fall within the scope of the technical content disclosed in the present invention without affecting the efficacy and purpose of the present invention. At the same time, the terms such as "upper", "lower", "left", "right", "middle", etc. quoted in this specification are only for the convenience of description and are not used to limit the scope of implementation of the present invention. Changes or adjustments in their relative relationships should also be considered as the scope of implementation of the present invention without substantially changing the technical content.
[0032] Example 1
[0033] like Figures 1-4 The figure shows one embodiment of a portable patch structure, which includes an electrical plate layer 100, an insulating layer 200, and a conductive gel substrate layer 300 for contacting the skin. The electrical plate layer 100 and the conductive gel substrate layer 300 are respectively adhered to the sides of the insulating layer. The electrical plate layer 100, the insulating layer 200, and the conductive gel substrate layer 300 are all arranged in a circular shape. An anode protrusion 110 and a cathode protrusion 120 are welded to the side of the electrical plate layer 100 near the conductive gel substrate layer. The anode protrusion 110 is connected to the positive electrode of the battery, and the cathode protrusion 120 is connected to the negative electrode of the battery. The insulating layer 200 is provided with a through hole 120 of any shape. The anode protrusion 110 and the cathode protrusion 120 extend through the through hole 210 to connect with the conductive gel substrate layer 300, forming a closed circuit between the conductive gel substrate layer 300, the electrical plate layer 200, and the human skin.
[0034] In the assembly manufacturing process, the conductive gel base layer 300 is adhered to the insulating layer 200 to fix it. Then, the anode protrusion 110 and the cathode protrusion 120 are integrated on the back of the electric plate layer 100 by welding or fixed bonding or other fixed connection. The anode protrusion 110 and the cathode protrusion 120 can be a welding column formed by the protruding welding points on the back of the electric plate layer 100 or a conductive column welded to the back of the electric plate layer 100. Of course, the shape of the conductive column or the protruding welding point is not limited to a cylindrical shape, but can also be a conical shape or a circular platform shape, etc. Finally, the anode protrusion 110 and the cathode protrusion 120 are in contact with the conductive gel base layer 300 through the through hole 210 on the insulating layer 200, and the electric plate layer 100 is firmly adhered to the insulating layer 200. This embodiment realizes the automatic insertion of the anode protrusion 110 and the cathode protrusion 120 into the through hole 210 during the installation process, without the need for additional operations, saving the installation work steps to realize the electrical connection between the electric plate layer 100 and the conductive gel layer base layer 300, improving the convenience of operation, and effectively reducing the production cost. If a male-female buckle connection method is used, a male buckle or a female buckle also needs to be provided on the conductive gel layer base layer 300. This setting itself also occupies a certain operation step. If a male buckle or a female buckle needs to be provided on the conductive gel layer base layer 300, a female buckle or a male buckle needs to be provided on the electric plate layer 100, which requires two-step operation. The structure of the utility model only needs to open a hole on the insulating layer 200, so that the protrusion on the electric plate layer 100 penetrates through the opening of the insulating layer 200, and then the electric plate layer 100 is in electrical communication with the conductive gel layer base layer 300, thereby saving the cumbersome operation step of the male-female buckle. Or use a wire connection, which also needs an additional welding step. For example, the wire (the back of the electric plate needs to be welded with a wire, which is a welding step) is welded on the conductive gel layer base layer 300 (at this time, a welding step is needed), and the wire itself needs to have a certain excess length, otherwise it is not conducive to the operation of the next welding step. However, when the electric plate back and the conductive gel layer base layer 300 are pasted, the bending state of the wire, whether it will protrude from the edge of the conductive gel layer base layer 300, the insulating layer 200 and the electric plate layer 100, etc. need to be considered.
[0035] Further, as Figure 4As shown, the size of the electric plate layer 100 is not greater than the size of the insulating layer 200, the insulating layer 200 is provided with at least one first positioning part 130, and the outer edge of the electric plate layer 100 is provided with a second positioning part 220 matched with the first positioning part 130. It should be noted that the first positioning part 130 can be arranged near the outer edge of the insulating layer 200, and the first positioning part 130 can also be symmetrically arranged on the insulating layer 200; or a plurality of first positioning parts 130 can be distributed circumferentially along the outer edge of the insulating layer 200. In the embodiment, the number of the first positioning part 130 includes but is not limited to two, and the specific number can be determined according to the specific working condition (generally, the size and shape of the insulating layer 200 and the conductive gel base material layer 300 are matched, the shape of the electric plate layer 100 is smaller than that of the insulating layer 200, which is more convenient to use, the shape of the conductive gel base material layer 300 is larger, the contact surface with the human body is larger, and the electrode patch is more comfortable to use, so two positioning parts 130 can be arranged to facilitate alignment with the electric plate layer 100).
[0036] It should be noted that when the shape of the electric plate layer 100 completely corresponds to the shape of the insulating layer 200, such as when the shape of the electric plate layer 100 and the shape of the insulating layer 200 are both circular and the outer edge size of the circular is the same, only one pair of first positioning part 130 and second positioning part 220 is arranged, and after the first positioning part 130 and the second positioning part 220 are aligned, the anode protrusion 110 and the cathode protrusion 120 are inserted into the through hole 210. When the shape of the electric plate layer 100 is asymmetric to the shape of the insulating layer 200, such as when the shape of the electric plate layer and the shape of the insulating layer are both circular but the outer edge size of the circular is different, two pairs of first positioning part 130 and second positioning part 220 are arranged, and the two first positioning parts 130 arranged on the electric plate layer 100 are arranged in a staggered manner (i.e., arranged at a certain interval), and the two second positioning parts 220 on the first insulating layer 200 are also arranged in a staggered manner (i.e., arranged at a certain interval), when one pair of first positioning part 130 and second positioning part 220 are aligned, the other pair of first positioning part 130 and second positioning part 220 arranged at a certain interval are also aligned at the same time, and the anode protrusion 110 and the cathode protrusion 120 are inserted into the through hole 210.
[0037] Further, as shown in FIG. 6, the conductive gel base material layer 300 is provided with a plurality of through holes 310, and the through holes 310 are arranged in a staggered manner (i.e., arranged at a certain interval), and the through holes 310 are arranged in a staggered manner (i.e., arranged at a certain interval) on the first insulating layer 200. When one pair of through holes 310 and through holes 310 are aligned, the other pair of through holes 310 and through holes 310 arranged at a certain interval are also aligned at the same time, and the anode protrusion 110 and the cathode protrusion 120 are inserted into the through hole 310. Figure 3As shown, in the embodiment, the first positioning part 130 and the second positioning part 220 are marking protrusions or marking recesses, the patterns of which include but are not limited to curved or straight, and can also be set as arrow-shaped, triangular, etc. In other alternative embodiments, the protruding degree or recessing depth of the first positioning part 130 and the second positioning part 220 can also be deepened or shallowed as needed. When assembling, when the outer end of the first positioning part 130 is aligned with the inner end of the second positioning part 220, the anode protrusion 110 and the cathode protrusion 120 are inserted into the through hole 210 to be connected with the conductive gel base material layer 300. Specifically, when the first positioning part 130 is a marking protrusion and the second positioning part 220 is a positioning recess; or, the first positioning part 130 is a marking recess and the second positioning part 220 is a marking protrusion; or, the first positioning part 130 is a marking protrusion and the second positioning part 220 is a marking protrusion; or, the first positioning part 130 is a marking recess and the second positioning part 220 is a marking recess. When the marking protrusion and the marking recess are aligned, the anode protrusion 110 and the cathode protrusion 120 are inserted into the through hole 210 to be connected with the conductive gel base material layer 300. In addition, the first positioning part 130 and the second positioning part 220 can also be set in an indicating pattern, which includes but is not limited to a rectangle, a triangle, etc., so that they can be clearly identified during assembly.
[0038] It should be further noted that the alignment of the outer end of the first positioning part 130 with the inner end of the second positioning part 220 also includes another case, i.e. when the first positioning part 130 is a positioning protrusion and the second positioning part 220 is a positioning recess, during assembly, the positioning protrusion is engaged in the positioning recess, i.e. the first positioning part 130 is engaged on the second positioning part 220, and the anode protrusion 110 and the cathode protrusion 120 are automatically inserted into the through hole 210 to achieve accurate installation. Similarly, the first positioning part 130 can also be a positioning recess and the second positioning part 220 can be a positioning protrusion, during assembly, the second positioning part 220 is engaged on the first positioning part 130, i.e. the anode protrusion 110 and the cathode protrusion 120 are automatically inserted into the through hole 210 to complete the assembly.
[0039] Further, as Figure 4As shown, the conductive gel substrate layer 300 can be set as a single body or in a layered setting. When the layered setting is adopted, in one embodiment of the present invention, the conductive gel substrate layer includes a conductive substrate layer 310, a first conductive gel 320 and a second conductive gel 330. The conductive substrate layer 310 is adhered to the insulating layer 200. The first conductive gel 320 and the second conductive gel 330 are both arranged on the side of the conductive substrate layer 310 away from the insulating layer 200, and the first conductive gel 320 and the second conductive gel 330 are set relative to each other. The relative setting is not necessarily a completely identical mirror-symmetrical setting. For example, when the first conductive gel and the conductive gel substrate layer attached to it are in an S shape, the conductive gel substrate layer attached to it by the second conductive gel is also in an S shape. Of course, the mirror-symmetrical setting is generally a better choice, which can enhance the structural stability of the conductive gel substrate layer. The relative setting of the first conductive gel 320 and the second conductive gel 330 is not limited to a symmetrical mirror setting. In other optional embodiments, it can also be as shown in the attached Figure 8 The arrangement shown is asymmetrical, but it is certainly not limited to the above arrangement.
[0040] In this embodiment, a battery for powering the circuit is also integrated and arranged on the electrical plate layer 100 . The battery is preferably a micro disposable battery or a micro rechargeable battery.
[0041] Example 2
[0042] The second embodiment is substantially the same as the first embodiment. The difference between the first embodiment and the second embodiment is that Figure 5 As shown, the electric plate layer 100, the insulating layer 200 and the conductive gel substrate layer 300 are all arranged in a rectangular shape. In this embodiment, no positioning portion is required on the insulating layer 200. The anode protrusion 110 and the cathode protrusion 120 on the back of the electric plate layer 100 are arranged diagonally. At the same time, the through holes 210 opened in the insulating layer 200 are adapted to the anode protrusion 110 and the cathode protrusion 120 to ensure that the anode protrusion 110 and the cathode protrusion 120 are smoothly inserted into the through holes 210 and connected with the conductive gel substrate layer 300. Of course, in other optional embodiments, other layout forms can also be adopted, such as the anode protrusion 110 and the cathode protrusion 120 are arranged in the same horizontal row or the same vertical column, etc., and do not necessarily need to be arranged in a diagonal position.
[0043] This method relies on the shapes of the electrical layer 100 and the insulating layer 200 to complete the alignment of the protrusions and the holes. There is no need to set up a separate positioning part. The positioning is completed by only setting the welding or gluing positions and the punching positions on the electrical layer 100 and the insulating layer 200 during production.
[0044] In other optional embodiments, the electric plate layer 100 and the insulating layer 200 (the electric plate layer 100 and the insulating layer 200 are the same or matched) can also be provided as a polygonal shape with at least one protruding corner or a curved surface shape with at least one protruding or recessed curved arc. When assembled, the self-positioning can be achieved through the curved surface shape with at least one protruding or recessed curved arc or the polygonal shape with at least one protruding corner (for example, the electric plate layer 100 and the insulating layer 200 are both pentagonal, but one corner is more protruding, and the complete positioning of the electric plate layer 100 and the insulating layer 200 can be achieved through the protruding corner; or for another example Figure 9 As shown, the anode protrusion 110 and the cathode protrusion 120 are accurately inserted into the through hole 120.
[0045] In other optional embodiments, as shown in Figure 9 (the electric plate layer 100 in the embodiment is not shown, and the shape of the electric plate layer 100 is the same as that of the insulating layer 200), the insulating layer 200, the electric plate layer 100, and the conductive gel base material layer 300 can also be provided as a curved surface shape with at least one protruding corner or a protruding or recessed curved arc. When positioned, the positioning can be achieved through the protruding corner or the protruding or recessed curved arc of the curved surface shape. Of course, the above-mentioned embodiments are only partial embodiments.
[0046] Embodiment three
[0047] The utility model provides still a kind of portable bioelectricity patch, as shown in Figure 6 And Figure 7 As shown, the portable bioelectricity patch is manufactured by one of the portable patch structures in the above-mentioned embodiments, which includes one of the above-mentioned portable patch structures, an end cover 400 covering the electric plate layer 100 and an easy-to-peel film 600. The end cover 400, the electric plate layer 100, the insulating layer 200, the conductive gel base material layer 300 and the easy-to-peel film 600 are sequentially arranged from top to bottom. The electric plate layer 100 is connected to the conductive gel base material layer 300 through the cathode protrusion 120 and the anode protrusion 110 penetrating the insulating layer 200.
[0048] Further, the end cover 400 is provided with a third positioning portion 410 aligned with the second positioning portion 220 of the electric plate layer 100 or the first positioning portion 130 of the insulating layer. It should be noted that when the electric plate layer 100 is covered by the end cover 400, the end cover 400 is located outside the electric plate layer 100. At this time, the shape of the electric plate layer 100 and its alignment state with the insulating layer 200 do not affect the assembly process. The key is to take the electric plate layer 100 and the end cover 400 as a whole, and to ensure correct assembly, the insulating layer 200 is aligned with the end cover 400. Therefore, the end cover 400 needs to be provided with a third positioning portion 410, which can be aligned with at least one of the second positioning portion 410 on the electric plate layer 100 or the first positioning portion on the insulating layer 200, so as to realize accurate assembly and fixation. Such design ensures the correct cooperation between the electric plate layer, the insulating layer and the end cover, thereby ensuring the stability and reliability of the circuit.
[0049] As shown in Figure 7 An embodiment of the portable bioelectricity patch is shown in the figure. After the electric plate layer 100 is covered by the end cover 400, the appearance view shows that the end cover 400 does not completely cover the insulating layer 200. At this time, the exposed area of the insulating layer 200 can also be pasted with a decorative base cloth. For example, a promotional sign of the product unit can be provided on the annular decorative base cloth. The decorative base cloth can further cover the flange edge of the end cover 400, so that the overall structure is more stable and beautiful.
[0050] In an embodiment, the switch 500 is arranged on the electric plate layer 100, and the end of the switch 500 extends from the inside of the end cover 400 to the outside of the end cover 400. The end cover 400 is provided with a hollow hole 420, and the electric plate layer 100 is adhered to the inside of the end cover 400 to ensure that the protruding part of the switch 500 is engaged in the hollow hole 420. The on-off of the circuit is controlled by the back and forth movement of the switch 500 in the hollow hole 420. It should be noted that the hollow hole 420 includes but is not limited to being arranged on the side wall of the end cover 400, and can also be arranged on the top of the end cover 400. The embodiment effectively reduces the overall height of the product, and further reduces the overall weight of the product, so as to realize the paste towards the vertical skin surface.
[0051] In an embodiment, the electric plate layer 100 is provided with a Bluetooth connection portion, which can be connected with a mobile terminal through Bluetooth, and the circuit of the electric plate layer 100 is controlled by the mobile terminal. The embodiment provides a wireless, light, low-power, safe and easy-to-operate integrated control method, so that the circuit control of the electric plate layer 100 is more flexible and efficient. The mobile terminal includes but is not limited to a mobile phone, a tablet computer, a smart watch and the like.
[0052] In conclusion, the utility model avoids the connection of the wire and the electric plate layer and the conductive gel base material layer, effectively saves the manufacturing steps, saves the production cost, improves the convenience of operation, does not need the additional operation, and realizes the stable and longer pasting of the bioelectricity patch on the skin.
[0053] The above embodiment only illustrates the principle and effect of the utility model, and is not used to limit the utility model. Any person skilled in the art can modify or change the above embodiment without departing from the spirit and scope of the utility model. Therefore, all equivalent modifications or changes completed by those skilled in the art without departing from the spirit and technical thought disclosed by the utility model should be covered by the claims of the utility model.
Claims
1. A portable patch structure comprising an electric plate layer (100), an insulating layer (200) and a conductive gel substrate layer (300) for contacting the skin, which are arranged in sequence, characterized in that: The insulating layer (200) is provided with a through hole (210), and the electric plate layer (100) is provided with a cathode protrusion (120) and an anode protrusion (110). The cathode protrusion (120) and the anode protrusion (110) penetrate the through hole (210) on the insulating layer and are connected to the conductive gel substrate layer (300), so that the conductive gel substrate layer (300), the electric plate layer (100) and the human skin form a patch closed loop.
2. The portable patch structure according to claim 1, characterized in that: The size of the electric plate layer (100) is no larger than that of the insulating layer (200); at least one first positioning portion (130) is provided on the insulating layer (200); and a second positioning portion (220) is provided on the outer edge of the electric plate layer (100) for positioning in cooperation with the first positioning portion (130); when the second positioning portion (220) and the first positioning portion (130) are aligned, the anode protrusion (110) and the cathode protrusion (120) are inserted into the through hole (210) and connected with the conductive gel substrate layer (300).
3. The portable patch structure according to claim 2, characterized in that: The electric plate layer (100), the insulating layer (200) and the conductive gel substrate layer (300) are all arranged in a circular shape.
4. The portable patch structure according to claim 1, characterized in that: The electric plate layer (100), the insulating layer (200) and the conductive gel substrate layer (300) are all arranged in a rectangular shape, or a polygonal shape with at least one protruding corner, or a curved surface shape with at least one protruding or concave curvature.
5. The portable patch structure according to claim 2, characterized in that: The first positioning portion (130) and the second positioning portion (220) are marking protrusions or marking grooves. When the outer end of the first positioning portion (130) is aligned with the inner end of the second positioning portion (220), the anode protrusion (110) and the cathode protrusion (120) are inserted into the through hole (210) and connected to the conductive gel substrate layer (300).
6. The portable patch structure according to claim 1, characterized in that: Conductive gel is provided in the through hole (210) so that the cathode protrusion (120) and the anode protrusion (110) are more firmly electrically connected to the conductive gel substrate layer (300) when passing through the through hole (210).
7. A portable bioelectric patch, characterized in that: The invention comprises an end cover (400) covering an electric plate layer (100), an easy-to-peel film (600), and a convenient patch structure according to any one of claims 1 to 6, wherein the end cover (400), the electric plate layer (100), the insulating layer (200), the conductive gel substrate layer (300), and the easy-to-peel film (600) are arranged in sequence from top to bottom, and the electric plate layer (100) penetrates the insulating layer (200) and is connected to the conductive gel substrate layer (300) via a cathode protrusion (120) and an anode protrusion (110).
8. The portable bioelectric patch according to claim 7, characterized in that: The end cover (400) is provided with a third positioning portion (410), and the third positioning portion (410) is aligned with at least one of the first positioning portion (130) of the electric plate layer or the second positioning portion (220) of the insulating layer.
9. The portable bioelectric patch according to claim 7, characterized in that: The invention also includes a switch (500), wherein the switch (500) is arranged on the electrical plate layer (100), and the end of the switch (500) extends from the inside of the end cover (400) to the outside of the end cover (400); a hollow hole (420) is provided on the end cover (400), and a protruding portion of the switch (500) is engaged with the hollow hole (420), and the switch (500) moves back and forth in the hollow hole (420) to control the opening and closing of the circuit.
10. The portable bioelectric patch according to claim 7, characterized in that: The electric board layer (100) is provided with a Bluetooth connection part, which can be connected to a mobile terminal via Bluetooth, and the mobile terminal controls the opening and closing of the circuit of the electric board layer (100).
Citation Information
Patent Citations
Improved structure of electrode patch
CN203370196U