Novel electrode slice hydrogel conductive film composite mechanism
By designing clamping components and motor drive systems on the electrode sheet, the back of the hydrocoagulated conductive paste has a small fluctuation and a curling edge light film, which is easy to peel, which solves the problem that the existing electrode sheet is prone to damage the hydrocoagulated conductive paste when peeling the optical film, and improves the practicality of the electrode sheet.
Patent Information
- Application Number
- CN202420550285.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-03-21
- Publication Date
- 2025-06-10
- Estimated Expiration
- 2034-03-21
AI Technical Summary
The existing electrode sheets need to manually contact the edge to peel off the light film before treatment, which can easily damage the hydrocoagulation conductive glue and reduce the practicality of the electrode sheet.
A new type of electrode sheet hydrogel conductive film composite mechanism is designed, using a clamping assembly between the conductive plate and the hydrogel conductive paste. The conductive plate is driven by the motor to push the clamping assembly, so that its clamping plate and adjustment structure clamp the back of the hydrogel conductive paste in a "mouth" shape, causing the light film to be disengaged and facilitate peeling.
It effectively avoids the problem of damaging the hydrocondensing conductive adhesive during manual peeling, and enhances the integrity and practicality of the electrode sheet.
Smart Images

Figure CN222955804U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of hydrogel conductive gel electrode sheets, in particular to a novel electrode sheet hydrogel conductive film composite structure. Background Art
[0002] The electrode patch is attached to the corresponding treatment part of the human body, so that the pulses generated by the therapeutic device pass through the patch, like countless electric needles to simulate acupuncture and massage therapy and other functions. However, there is hydrogel conductive gel on the electrode patch, and it is aligned and overlapped with the light film. Before treatment, you need to manually touch its edge to peel off the light film. However, if you are not careful, you will touch it and damage the integrity of the hydrogel conductive gel on the electrode patch, reducing the practicality of the electrode patch. Utility Model Content
[0003] In view of the above problems, the utility model provides a novel electrode sheet hydrogel conductive film composite structure.
[0004] In order to achieve the above-mentioned purpose, the utility model is realized by the following technical scheme: a novel electrode sheet hydrogel conductive film composite structure, the structure of which includes a conductive plate, a clamping component, a hydrogel conductive rubber plate, a shell, a motor, and a light film, the conductive plate is matched with the motor by an electrical connection between the shell, and more than two clamping components are installed between the conductive plate and the hydrogel conductive rubber plate, and a light film is installed on the outside of the hydrogel conductive rubber plate;
[0005] The clamping assembly includes a perforation, a splint, an adjustment structure, and a bending plate. The perforation is opened above the surface of the splint, and an adjustment structure is provided between the perforations. The splint is hingedly connected to the outside of the bending plate. The bending plate is an arc-shaped folding structure, which is movably engaged with the bottom of the conductive plate, and the bending plate and the splint are movably engaged with the back of the hydrogel conductive rubber plate.
[0006] As a further improvement of the utility model, the adjustment structure includes a barbed hook, a telescopic band, a fixed ring, an additional strip, and an assisting piece. The barbed hook is obliquely fixedly connected on both sides of the telescopic band, and the tip of the barbed hook is interference fit on both sides of the additional strip. An assisting piece is installed above the additional strip through a fixed ring, and both ends of the telescopic band and the additional strip are inserted and connected inside the through hole.
[0007] As a further improvement of the utility model, the additional strip is interference-fitted on the outside of the hydrogel conductive rubber plate.
[0008] As a further improvement of the utility model, the assisting member includes a resistance block, a toggle member, a round block, and a support rod. The resistance block is slidably fitted between the arc-shaped end of the support rod and the telescopic belt through the toggle member, and the support rod is hingedly connected to the inside of the fixed ring through the round block.
[0009] As a further improvement of the utility model, the toggle member includes a running-in plate, a fixed block, and a curved bow. Both ends of the running-in plate and the curved bow are fixedly connected between the abutment blocks, and the running-in plate is interference fit in the arc-shaped end of the support rod. A fixed block is welded to the inner side of the curved bow.
[0010] As a further improvement of the utility model, the fixed block and the curved bow are slidably matched on both sides of the telescopic belt.
[0011] Compared with the prior art, the utility model has the following beneficial effects:
[0012] The utility model utilizes a clamping assembly under the conductive plate. Before the hydrogel conductive adhesive plate is used, the conductive plate can first push the clamping assembly downward in the shell, so that the bent plate in the middle can involve the clamping plates on both sides to fold, and push the adjustment structure toward the back of the hydrogel conductive adhesive plate, so that the clamping plate and the adjustment structure can clamp the back of the hydrogel conductive adhesive plate in a "mouth" shape, so that the back of the hydrogel conductive adhesive plate has a small fluctuation and the optical film can be detached from the edge, which is convenient for the subsequent peeling of the optical film, thereby enhancing the integrity and practicality of the hydrogel conductive adhesive on the electrode sheet. BRIEF DESCRIPTION OF THE DRAWINGS
[0013] Figure 1 The utility model is a structural schematic diagram of a novel electrode sheet hydrogel conductive film composite structure.
[0014] Figure 2 It is a bottom view structural schematic diagram of the clamping assembly of the utility model.
[0015] Figure 3 It is a side structural schematic diagram of the adjustment structure of the utility model.
[0016] Figure 4 It is a schematic diagram of the planar structure of the power assisting member of the utility model.
[0017] Figure 5 It is a schematic diagram of the planar structure of the toggle member of the utility model.
[0018] In the figure: conductive plate-3, clamping component-1, hydrogel conductive rubber plate-2, housing-4, motor-5, optical film-6, perforation-1q, splint-1w, adjustment structure-1e, bending plate-1r, inverted hook-e1, telescopic belt-e2, fixing ring-e3, additional strip-e4, assisting member-e5, resistance block-e51, toggle member-e52, round block-e53, support rod-e54, running-in plate-21, fixing block-22, bending bow-23. DETAILED DESCRIPTION
[0019] In order to make the technical means, creative features, objectives and effects of the utility model easy to understand, Figures 1 to 5The figure schematically shows the structure of the implementation mode of the utility model. The utility model is further explained below in conjunction with the specific implementation mode. Example
[0020] like Figures 1 - 5 As shown, the utility model provides a novel electrode sheet hydrogel conductive film composite structure, which structure includes a conductive plate 3, a clamping component 1, a hydrogel conductive rubber plate 2, a shell 4, a motor 5, and a light film 6. The conductive plate 3 is matched with the motor 5 by an electrical connection between the shell 4, and more than two clamping components 1 are installed between the conductive plate 3 and the hydrogel conductive rubber plate 2, and the hydrogel conductive rubber plate 2 is installed with a light film 6 on the outside;
[0021] The clamping assembly 1 includes a perforation 1q, a clamping plate 1w, an adjustment structure 1e, and a bending plate 1r. The perforation 1q is opened above the surface of the clamping plate 1w, and the adjustment structure 1e is provided between the perforations 1q. The clamping plate 1w is hingedly connected to the outside of the bending plate 1r. The bending plate 1r is an arc-shaped folding structure, which is movably engaged at the bottom of the conductive plate 3, and the bending plate 1r and the clamping plate 1w are movably engaged at the back of the hydrogel conductive rubber plate 2.
[0022] The adjustment structure 1e includes a hook e1, a telescopic band e2, a fixed ring e3, an additional strip e4, and an assisting member e5. The hook e1 is obliquely fixedly connected to both sides of the telescopic band e2, and the tip of the hook e1 is interference fit on both sides of the additional strip e4. An assisting member e5 is installed above the additional strip e4 through a fixed ring e3. Both ends of the telescopic band e2 and the additional strip e4 are inserted and connected inside the through hole 1q, and can be centrally tightened along the arc-shaped top of the bending plate 1r.
[0023] The additional strip e4 is interference-fitted on the outside of the hydrogel conductive adhesive sheet 2, and can cooperate with the clamping plate 1w to position, clamp and grasp the hydrogel conductive adhesive sheet 2, so that its edge has a small fluctuation, which promotes the warping of the bottom optical film 6.
[0024] The assisting member e5 includes a resistance block e51, a toggle member e52, a round block e53, and a support rod e54. The resistance block e51 is slidably fitted between the arc-shaped end of the support rod e54 and the telescopic belt e2 through the toggle member e52. The support rod e54 is hingedly connected to the inside of the fixing ring e3 through the round block e53.
[0025] The toggle member e52 includes a grinding plate 21, a fixed block 22, and a bow 23. Both ends of the grinding plate 21 and the bow 23 are fixedly connected between the abutment blocks e51, and the grinding plate 21 is interference fit in the arc-shaped end of the support rod e54. The fixed block 22 is welded to the inner side of the bow 23.
[0026] The fixed block 22 and the bent bow 23 are slidably engaged on both sides of the telescopic belt e2, and can push the middle part of the telescopic belt e2 to strengthen the fully bowed and tightened state of the telescopic belt e2.
[0027] Based on the above embodiments, the specific working principle is as follows:
[0028] By energizing the motor 5 and the conductive plate 3, the hydrogel conductive rubber plate 2 can be driven to move downward out of the housing 4, so that the bent plate 1r at the bottom of the conductive plate 3 is subjected to bidirectional pressure, and the clamping plates 1w on both sides are pulled to contract into the middle of the conductive plate 3, enabling the clamping plates 1w to follow the arc edge of the folded structure of the bent plate 1r, and bending and squeezing the telescopic belt e2 and the additional strip e4 in the perforation 1q, so that the telescopic belt e2 and the additional strip e4 will be bent in a specific direction, and the telescopic belt e2 will drive the barb e1 to incline close to the additional strip e4. Then, the further contraction of the clamping plates 1w is restricted and pressed. The bending of the telescopic belt e2 will release the pressure on the support rod e54, so that the support rod e54 will open on the telescopic belt e2 with the round block e53 as the fulcrum, and then the contact block e51 at its arc end can cooperate with the elastic support of the grinding plate 21 and the bent bow 23 to drive the support rod e54 to fix and stop the bending radian of the telescopic belt e2 and the additional strip e4, enabling the telescopic belt e2 and the additional strip e4 to gather towards each other on the back of the bent plate 1r, and clamping the back of the hydrogel conductive rubber plate 2 in a "mouth" shape with the clamping plates 1w, causing small fluctuations on the back of the hydrogel conductive rubber plate 2, and making the light film 6 warp and separate, facilitating the subsequent peeling of the light film and enhancing the integrity and practicality of the hydrogel conductive glue on the electrode sheet.
[0029] The technical features of the above embodiments can be combined arbitrarily. For the sake of brevity of description, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, it should be considered as the scope described in this specification.
[0030] Therefore, from any point of view, the embodiments should be regarded as exemplary and non-restrictive. The scope of the present invention is defined by the appended claims rather than the above description. Therefore, all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be included in the present invention. Any reference signs in the claims should not be regarded as limiting the claimed rights.
Claims
1. A novel electrode sheet hydrogel conductive film composite structure, characterized by: The structure comprises a conductive plate (3), a clamping assembly (1), a hydrogel conductive rubber plate (2), a housing (4), a motor (5), and a light film (6); the conductive plate (3) is matched with the motor (5) by means of an electrical connection between the housing (4), and more than two clamping assemblies (1) are installed between the conductive plate (3) and the hydrogel conductive rubber plate (2); and the hydrogel conductive rubber plate (2) is externally installed with a light film (6); The clamping assembly (1) comprises a perforation (1q), a clamping plate (1w), an adjustment structure (1e), and a bending plate (1r); the perforation (1q) is arranged above the surface of the clamping plate (1w), and the adjustment structure (1e) is arranged between the perforations (1q); the clamping plate (1w) is hingedly connected to the outside of the bending plate (1r); the bending plate (1r) is an arc-shaped folded structure, which is movably engaged with the bottom of the conductive plate (3); and the bending plate (1r) and the clamping plate (1w) are movably engaged with the back of the hydrogel conductive rubber plate (2).
2. A novel electrode sheet hydrogel conductive film composite structure according to claim 1, characterized in that: The adjustment structure (1e) comprises an inverted hook (e1), an expansion band (e2), a fixing ring (e3), an additional strip (e4), and an assisting member (e5); the inverted hook (e1) is obliquely fixedly connected to both sides of the expansion band (e2), and the tip of the inverted hook (e1) is interference-fitted on both sides of the additional strip (e4); the assisting member (e5) is installed above the additional strip (e4) via the fixing ring (e3); and the two ends of the expansion band (e2) and the additional strip (e4) are inserted and connected inside the through hole (1q).
3. The novel electrode sheet hydrogel conductive film composite structure according to claim 2, characterized in that: The additional strip (e4) is interference fit on the outside of the hydrogel conductive adhesive plate (2).
4. The novel electrode sheet hydrogel conductive film composite structure according to claim 2, characterized in that: The assisting member (e5) comprises a resistance block (e51), a toggle member (e52), a round block (e53), and a support rod (e54); the resistance block (e51) is slidably fitted between the arc-shaped end of the support rod (e54) and the telescopic belt (e2) through the toggle member (e52); and the support rod (e54) is hingedly connected to the inside of the fixing ring (e3) through the round block (e53).
5. The novel electrode sheet hydrogel conductive film composite structure according to claim 4 is characterized in that: The toggle member (e52) comprises a grinding plate (21), a fixed block (22), and a curved bow (23); both ends of the grinding plate (21) and the curved bow (23) are fixedly connected between the abutment blocks (e51); the grinding plate (21) is interference-fitted on the arc-shaped end of the support rod (e54); and the fixed block (22) is welded to the inner side of the curved bow (23).
6. The novel electrode sheet hydrogel conductive film composite structure according to claim 5, characterized in that: The fixed block (22) and the bending bow (23) are slidably fitted on both sides of the telescopic belt (e2).