Static electricity removing device for electronic tag film processing
By designing an electrostatic removal device that uses an air compression box and an ionizing rotating head to generate ionized wind, the existing device has solved the problems of high cost, large size and difficulty in handling and displacement, and the rapid and comprehensive elimination of static electricity and the cleaning of the label film are achieved.
Patent Information
- Application Number
- CN202421597418.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-08
- Publication Date
- 2025-06-24
- Estimated Expiration
- 2034-07-08
AI Technical Summary
The existing electrostatic removal devices require a large-scale traction arrangement, which increases costs, expands the machine volume, and is difficult to facilitate handling and displacement, reducing the use effect.
An electrostatic removal device for electronic label film processing is designed, using an air compression box and an ionizing rotating head to generate ionizing wind. Through contact with the label film, the rapid elimination of static electricity is achieved, replacing the original guiding and release process.
The rapid and comprehensive elimination of static electricity is achieved, the need to arrange components in a large range is avoided, the removal efficiency and stability of static electricity is improved, and the surface of the label film is cleaned.
Smart Images

Figure CN223024634U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of label film processing, in particular to an electrostatic removing device for processing electronic label films. Background Technique
[0002] Electronic label films have good chemical stability, heat sealing property, moisture resistance and other properties. After the production of electronic label films, they need to be attached to electronic labels one by one to achieve the quality effect of the mentioned electronic labels. Therefore, when producing electronic label films, an electrostatic removing device is needed to guide and release the static electricity on their surfaces, avoiding the mutual adsorption of the label film and dust caused by the influence of static electricity and polluting the clarity of the surface layer. Therefore, the electrostatic removing device can effectively improve the cleanliness and clarity effect of the label film;
[0003] However, the existing electrostatic removing devices still have the following defects: Since the current electrostatic removing devices usually use metal conduction release to remove the static electricity on the label film, a large-scale traction layout is required for metal conduction release, which will cause an increase in cost and an expansion of the machine volume, and the device cannot achieve the situation of being convenient for handling and displacement, so the use effect of the current electrostatic removing device will be reduced. Content of the Utility Model
[0004] In view of the above problems, the utility model provides an electrostatic removing device for processing electronic label films.
[0005] In order to achieve the above purpose, the utility model is realized through the following technical solutions: An electrostatic removing device for processing electronic label films, the structure of which includes: a base, a main chassis, a conveying cavity, an electronic control board, and an electrostatic removing structure. The upper end of the base is fixedly connected to the lower end of the main chassis. The middle upper part of the main chassis is penetrated by the conveying cavity. The electronic control board is embedded in the middle and lower part of the surface layer of the main chassis and is electrically connected. The electrostatic removing structure is installed at the upper end of the main chassis and the lower end of the conveying cavity.
[0006] Furthermore, the electrostatic removing structure is provided with an air compression box, a sealing frame, an adapter frame, and an ionization plate. The air compression box is perpendicular to the sealing frame. The sealing frame coincides with the adapter frame. The ionization plate is embedded in the sealing frame through the adapter frame and is parallel and communicated with the air compression box.
[0007] Furthermore, the air compression box is provided with a convex block, a magnetic adsorption frame, a support column, and an ionization rotating head. The convex block is embedded in the center of the edge of the magnetic adsorption frame. The inner side of the magnetic adsorption frame is fixedly connected to the support column. The ionization rotating head is arranged at the center of the magnetic adsorption frame through the support column and is communicated with the ionization plate.
[0008] Further, an adapter block, a ventilation block, a vertical rod, a positioning bolt, and a plastic disk are newly added inside the conveying cavity. The adapter block is fixed to the left and right sides of the ventilation block. The center of the ventilation block is fixedly connected to the vertical rod. The positioning bolt is embedded in the center of the vertical rod. The plastic disk is installed in the central area of the vertical rod through the positioning bolt and is in contact with each other.
[0009] Further, the outside of the air compression box is provided with air suction holes. Both the sealing frame and the connection frame are square in shape. The ionization plate is square in shape and parallel to the surface area of the air compression box.
[0010] Further, the bump is circular in shape. The support columns inside the magnetic attraction frame are set in a vertical orientation. The edge of the ionization rotating head is provided with fan blades.
[0011] Further, there are two adapter blocks on the ventilation block. The ventilation block is provided with a large number of ventilation holes. The positioning bolt on the vertical rod is circular in shape and its own diameter is smaller than the diameter of the plastic disk. The surface of the plastic disk is in a finely polished state and the center of the circle is limited by the center of the positioning bolt. Beneficial Effects
[0012] Compared with the prior art, the present utility model has the following beneficial effects:
[0013] 1. After the electrostatic elimination structure of the present utility model is further improved, it can absorb and pressurize the external air based on the air compression box, and then combine the ionization rotating head to push the wind energy towards the ionization plate, so that the wind energy can achieve the characteristics of ionization wind after being ionized. Finally, when the ionization wind enters the conveying cavity and contacts the label film, the static electricity on the label film can be eliminated, achieving rapid elimination, replacing the original guiding and releasing process, avoiding the effect of arranging components in a large area. At the same time, the covering effect at the upper and lower ends of the conveying cavity can contact the upper and lower layers of the label film, achieving the effect of comprehensively eliminating static electricity, and the wind energy generated by the ionization rotating head can blow away the dust on the label film, cleaning the surface while eliminating static electricity.
[0014] 2. Based on the newly added components inside the conveying cavity of the present utility model, the vertical rod can be vertically installed in the conveying cavity through the parallel connection of the two ventilation blocks and the ionization plate. Then, the positioning bolt in the handling rod can determine the position of the plastic disk. Therefore, the circular plastic disk can be connected to other conveying devices to receive and pull the label film. Then, the label film can stably pass through the conveying cavity area combined with the rotation effect of the plastic disk, thereby achieving the characteristic of eliminating static electricity in parallel upper and lower layers, improving the static electricity elimination stability of the label film, and preventing the displacement of the label film caused by the high-speed wind generated by the electric rotating head. Description of the Drawings
[0015] Figure 1 This is a schematic structural diagram of an electrostatic eliminator for processing electronic tag films according to the present utility model.
[0016] Figure 2 This is a three-dimensional structural schematic diagram of an improved electrostatic elimination structure according to the present utility model.
[0017] Figure 3 This is a three-dimensional structural schematic diagram of an improved air compression box according to the present utility model.
[0018] Figure 4 This is a schematic cross-sectional view of a newly added component inside a conveying cavity according to the present utility model.
[0019] In the figure: base - 1, main chassis - 2, conveying cavity - 3, electric control board - 4, electrostatic elimination structure - 5, air compression box - 51, sealing frame - 52, connecting frame - 53, ionization plate - 54, bump - 511, magnetic attraction frame - 512, support column - 513, ionization rotating head - 514, connecting block - 31, air permeable block - 32, vertical rod - 33, positioning bolt - 34, plastic tray - 35. Specific implementation mode
[0020] Next, the technical solutions of the present utility model will be clearly and completely described in conjunction with the accompanying drawings. Obviously, the described embodiments are part of the embodiments of the present utility model, rather than all of them. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without making creative efforts belong to the scope of protection of the present utility model.
[0021] In the description of the present utility model, it should be noted that the orientation or positional relationship indicated by the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the present utility model. In addition, the terms "first", "second", "third" are only used for descriptive purposes and cannot be construed as indicating or implying relative importance. Embodiment
[0022] As Figures 1 - 4 shown, the present utility model provides an electrostatic eliminator for processing electronic tag films.
[0023] Please refer to Figure 1, the present utility model provides an electrostatic elimination device for processing electronic tag films, including: a base 1, a main chassis 2, a conveying cavity 3, an electric control board 4, and an electrostatic elimination structure 5. The upper end of the base 1 is fixedly connected to the lower end of the main chassis 2. The middle upper part of the main chassis 2 is penetrated by the conveying cavity 3. The electric control board 4 is embedded in the middle lower part of the surface layer of the main chassis 2 and is electrically connected. The electrostatic elimination structure 5 is installed at the upper end of the main chassis 2 and the lower end part of the conveying cavity 3.
[0024] Please refer to Figure 2 , the present utility model provides an electrostatic elimination device for processing electronic tag films, including: the electrostatic elimination structure 5 is provided with an air compression box 51, a sealing frame 52, a connecting frame 53, and an ionization plate 54. The air compression box 51 is perpendicular to the sealing frame 52. The sealing frame 52 coincides with the connecting frame 53. The ionization plate 54 is embedded in the sealing frame 52 through the connecting frame 53 and is parallel and communicated with the air compression box 51. The outside of the air compression box 51 is provided with air suction holes. Both the sealing frame 52 and the connecting frame 53 are square in shape. The ionization plate 54 is square in shape and parallel to the surface area of the air compression box 51.
[0025] The air compression box 51 can suck in air through the external air suction holes for compression, thereby improving the rotation strength of the components. The sealing frame 52 can coincide with the connecting frame 53 through its own shape. The ionization plate 54 can be stably installed in the connecting frame 53 through its square shape, so that the air generated by the air compression box 51 can accurately penetrate through its own surface layer.
[0026] Please refer to Figure 3 , the present utility model provides an electrostatic elimination device for processing electronic tag films, including: the air compression box 51 is provided with a convex block 511, a magnetic attraction frame 512, a support column 513, and an ionization rotating head 514. The convex block 511 is embedded in the center of the edge of the magnetic attraction frame 512. The inner side of the magnetic attraction frame 512 is fixedly connected to the support column 513. The ionization rotating head 514 is arranged at the center of the magnetic attraction frame 512 through the support column 513 and is communicated with the ionization plate 54. The convex block 511 is circular in shape. The support column 513 inside the magnetic attraction frame 512 is set in a vertical orientation. The edge of the ionization rotating head 514 is provided with fan blades.
[0027] The convex block 511 can improve the accuracy of the penetration and coincidence of the magnetic attraction frame 512 and the components through its circular shape. The magnetic attraction frame 512 can improve the position accuracy of the ionization rotating head 514 through the internal support column 513. The electric rotating head 514 can generate wind energy through the rotation of the fan blades at its edge, so as to improve the generation effect of ionization wind.
[0028] Please refer to Figure 4, the present utility model provides an electrostatic elimination device for processing electronic tag films, including: inside the conveying cavity 3, there are newly added connecting blocks 31, air-permeable blocks 32, vertical rods 33, positioning bolts 34, and plastic discs 35. The connecting blocks 31 are fixed on the left and right sides of the air-permeable block 32. The center of the air-permeable block 32 is fixedly connected to the vertical rod 33. The positioning bolt 34 is embedded in the central part of the vertical rod 33. The plastic disc 35 is installed in the central area of the vertical rod 33 through the positioning bolt 34 and is in contact with each other. There are two connecting blocks 31 on the air-permeable block 32. The air-permeable block 32 is provided with a large number of air-permeable holes. The positioning bolt 34 on the vertical rod 33 is circular in shape and its own diameter is smaller than the diameter of the plastic disc 35. The surface layer of the plastic disc 35 is in a finely polished form and its center is limited by the center of the positioning bolt 34;
[0029] The two connecting blocks 31 on the air-permeable block 32 can improve the parallelism of the connection between the air-permeable block 32 and the components. The large number of air-permeable holes in the air-permeable block 32 can allow the ionization wind to penetrate. The positioning bolt 34 on the vertical rod 33 can lock the position of the plastic disc 35 through its circular shape. The plastic disc 35 can pull and transport the label film in combination with other components through its finely polished surface layer, preventing scratches during electrostatic elimination during transmission.
[0030] The working principle of the present utility model is described as follows:
[0031] First: The electrostatic elimination device for processing electronic tag films can determine the position of the main chassis 2 through the base 1. Then, after the main chassis 2 is connected to an external power supply, the electronic control board 4 can adjust the wind speed of the components inside the conveying cavity 3 and the electrostatic elimination structure 5. So that after the components inside the conveying cavity 3 are connected to an external conveying structure, the label film can be received, pulled, and stabilized in a straight line. The label film can achieve a partially parallel form inside the conveying cavity 3. Then, combined with the up-and-down arrangement of the electrostatic elimination structure 5, the upper and lower parts of the label film can be electrostatically eliminated in all directions;
[0032] Second: The air compression box 51 of the electrostatic elimination structure 5 can be installed on the outside of the top of the main chassis 2 and the lower end of the conveying cavity 3 through the sealing frame 52. Then, the connecting frame 53 in the sealing frame 52 can determine the position of the ionization plate 54, so that the ionization plate 54 can be parallel to the upper end of the air compression box 51 and face the up-and-down directions of the conveying cavity 3. Furthermore, the air compression box 51 can push the wind energy to the area of the ionization plate 54 by using its own effect of generating high-speed wind, so that the wind energy can carry ionization and be converted into the effect of ionization wind. Then, after the ionization wind contacts the label film, it can neutralize and eliminate the static electricity on the label film, thus replacing the original guiding and releasing process, saving the layout of a large number of metal traction components, and at the same time improving the electrostatic elimination efficiency of the label film;
[0033] Third: the magnetic frame 512 of the air compression box 51 can be stably and parallelly installed on the upper end of the main box 2 and the lower part of the conveying cavity 3 in combination with the protrusion 511, and then the vertical support column 513 inside the magnetic frame 512 can determine the position of the ionization rotating head 514, so that the ionization rotating head 514 can rotate in combination with the edge blades, and wind energy can be generated according to the arrangement and rotation of the blades, and then the generated wind energy can be pushed to the ionization plate 54 area, and the ionization strength of the wind energy can be improved after the ionization support of the ionization plate 54, and then the ionization wind can neutralize and eliminate the static charge on the label film after contacting the label film, so as to improve the strength and convenience of eliminating static electricity;
[0034] Fourth: the two newly added air-permeable blocks 32 inside the conveying chamber 3 can be spliced with the inner side of the anti-static structure 5 through the connecting block 31, and then the vertical rod 33 in the air-permeable block 32 can determine the position of the plastic disc 35 through the positioning bolt 34, so that the plastic disc 35 can be spliced with the external conveying structure through the circular shape, so that the label film can be pulled and transported in a straight line. For this reason, the linear pulling and transmission process of the label film can achieve a parallel and stable anti-static effect through the ionized wind induced by the air-permeable block 32, so that the parallel anti-static strength of the plastic film can be further improved.
[0035] The technical features of the above-described embodiments may be arbitrarily combined. To make the description concise, not all possible combinations of the technical features in the above-described embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.
[0036] Therefore, no matter from which point of view, the embodiments should be regarded as exemplary and non-restrictive, and the scope of the utility model is limited by the appended claims rather than the above description, so it is intended to include all changes within the meaning and scope of the equivalent elements of the claims in the utility model. Any reference numerals in the claims should not be regarded as limiting the claims involved.
Claims
1. A static electricity removal device for electronic label film processing, the structure of which includes: A base (1), a main box (2), a conveying chamber (3), an electric control board (4), and a static electricity removal structure (5), characterized in that: the upper end of the base (1) is fixedly connected to the lower end of the main box (2), the upper middle part of the main box (2) is penetrated by the conveying chamber (3), the electric control board (4) is embedded in the lower middle part of the surface of the main box (2) and is electrically connected, and the static electricity removal structure (5) is installed at the upper end of the main box (2) and the lower end of the conveying chamber (3).
2. The static electricity removal device for electronic label film processing according to claim 1, characterized in that: The static electricity removal structure (5) is provided with an air compression box (51), a sealing frame (52), a connecting frame (53), and an ionization plate (54); the air compression box (51) and the sealing frame (52) are perpendicular to each other; the sealing frame (52) and the connecting frame (53) overlap each other; the ionization plate (54) is embedded in the sealing frame (52) through the connecting frame (53) and is parallel to and communicates with the air compression box (51).
3. The static electricity removal device for electronic label film processing according to claim 2, characterized in that: The air compression box (51) is provided with a convex block (511), a magnetic frame (512), a support column (513), and an ionization rotating head (514); the convex block (511) is embedded in the edge center of the magnetic frame (512); the inner side of the magnetic frame (512) is fixedly connected to the support column (513); and the ionization rotating head (514) is arranged at the center of the magnetic frame (512) through the support column (513) and communicates with the ionization plate (54).
4. The static electricity removal device for electronic label film processing according to claim 1, characterized in that: A connecting block (31), a vent block (32), a vertical rod (33), a positioning bolt (34), and a plastic plate (35) are newly provided inside the conveying cavity (3). The connecting block (31) is fixed to the left and right sides of the vent block (32). The center of the vent block (32) is fixedly connected to the vertical rod (33). The positioning bolt (34) is embedded in the center of the vertical rod (33). The plastic plate (35) is installed in the center area of the vertical rod (33) through the positioning bolt (34) and contacts each other.
5. The static electricity removal device for electronic label film processing according to claim 2, characterized in that: The air compression box (51) has an air intake hole on its outside, the sealing frame (52) and the connecting frame (53) are both in a square shape, and the ionization plate (54) is in a square shape and is parallel to the surface area of the air compression box (51).
6. The static electricity removal device for electronic label film processing according to claim 3, characterized in that: The protrusion (511) is circular in shape, the internal support column (513) of the magnetic suction frame (512) is set in a vertical orientation, and the edge of the ionization rotating head (514) carries fan blades.
7. The static electricity removal device for electronic label film processing according to claim 4, characterized in that: The connecting block (31) is provided with two blocks on the air permeable block (32), and the air permeable block (32) carries a large number of air permeable holes. The positioning bolt (34) on the vertical rod (33) is circular in shape and its own diameter is smaller than the diameter of the plastic disk (35). The surface of the plastic disk (35) is finely polished and the center of the circle is limited to the center of the positioning bolt (34).