Anti-static label for precision equipment

By introducing a soft scale and cutting knife design on the anti-static label, the problem of label size fixation is solved, the label's cutting length and wear resistance are improved, adapted to precision equipment of different specifications, increased the convenience and life of use, and reminded users through the gradient layer.

CN223051811UActive Publication Date: 2025-07-01FOSHAN JIAOLIWANG TECH CO LTD
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Patent Information

Application Number
CN202421774782.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-24
Publication Date
2025-07-01
Estimated Expiration
2034-07-24

AI Technical Summary

Technical Problem

During use, the existing anti-static labels are fixed in size and cannot adapt to precision equipment of different specifications, and lack reminders and auxiliary use structures.

Method used

An anti-static label is designed, including connecting shells, connecting columns, extrusion rollers, measuring mechanisms and cutting mechanisms. Through the cooperation of a scale soft ruler and a cutting knife, the label can be cut at any length; at the same time, the wear-resistant layer and a gradient layer are used to improve the wear resistance and visual reminder function of the label.

Benefits of technology

It realizes cutting of anti-static labels at any length, adapts to precision equipment of different specifications, increases service life and reminds users through color changes, improving the convenience and practicality of use.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an anti-static label for precision equipment, which comprises an anti-static label, a connecting shell is arranged on the anti-static label, and a connecting column is mounted on the connecting shell in a sliding manner. Through the arrangement of the rotating shaft, the scale flexible rule, the driven wheel, the connecting rope, the first reset spring, the cutting knife, the second reset spring, the handle, the cross-shaped sliding block and other structures, when the anti-static label needs to be used, the anti-static label and one end of the scale flexible rule are moved together, and therefore the anti-static label can be conveniently moved to any accurate length; then the handle is manually driven to move, the handle drives the cutting knife to cut the anti-static label, so that the anti-static label can be conveniently cut off, the anti-static label can be conveniently cut into any accurate length for use, and the problem that an existing anti-static label can only be cut off at a fixed length for use, so that the cutting efficiency is high is solved. And precision equipment with different specifications is inconvenient to use.
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Description

Technical Field

[0001] The utility model relates to the technical field of anti-static labels, in particular to an anti-static label for precision equipment. Background Technique

[0002] In the prior art, the patent with the publication number CN214336156U discloses an anti-static label for precision equipment, which includes a winding base ring, and a label is wound around the circumferential outer wall of the winding base ring. An insulating resin layer is adhered to the bottom outer wall of the base material layer, and an anti-static adhesive layer is adhered to the bottom outer wall of the insulating resin layer. The insulating resin layer is located between the anti-static adhesive layer and the base material layer. An arc-shaped connecting piece is connected to one side of the bottom outer wall of the release layer. An anti-static layer is adhered to the top outer wall of the base material layer, and a waterproof layer is adhered to the top outer wall of the anti-static layer. The top outer wall of the label is provided with equally spaced positioning grooves. The anti-static label for precision equipment provided by the utility model has a good anti-static effect by setting an anti-static layer and an anti-static adhesive layer. During the use of the label, the label with an anti-static function can greatly reduce the static charges on the surface of the label, thereby reducing the probability of static discharge and enabling the precision equipment to work normally.

[0003] During the actual use of the above-mentioned equipment, although the label is provided with positioning grooves for facilitating the separation of the label, during the use process, the size of the label used is determined according to the actual size of the precision equipment. Since the separation positioning grooves on the existing labels are fixed and set according to fixed dimensions, it is not convenient to use in actual use. At the same time, the existing labels are not provided with a structure for reminding users and a structure for assisting long-term use.

[0004] Therefore, an anti-static label for precision equipment is proposed. Content of the Utility Model

[0005] The purpose of the utility model is to provide an anti-static label for precision equipment to solve the problems raised in the above background technique.

[0006] To achieve the above purpose, the utility model provides the following technical solution: an anti-static label for precision equipment, including an anti-static label, a connection shell is arranged on the anti-static label, a connection column is slidably installed on the connection shell, an extrusion roller is rotatably installed on the connection column, a measuring mechanism is installed on the connection column, the measuring mechanism is installed on the connection shell, a cutting mechanism is installed on the connection column, the cutting mechanism is in contact with the anti-static label, and the anti-static label includes a base layer, a wear-resistant layer is fixedly installed on the base layer, and a gradient layer is fixedly installed on the wear-resistant layer;

[0007] The measuring mechanism includes a storage box which is installed on a connecting column. A rotating shaft is rotatably installed on the inner wall of the storage box. A graduated flexible ruler is sleeved on the rotating shaft, and the graduated flexible ruler is adapted to the anti-static label.

[0008] Preferably, a support plate is installed on the connecting shell. A first return spring is installed on the support plate. The other end of the first return spring is installed with a connecting rope. A driven wheel is wound on the connecting rope, and the driven wheel is sleeved on the rotating shaft.

[0009] Preferably, the cutting mechanism includes two fixing sleeves which are respectively sleeved at both ends of the extrusion roller and are respectively installed on two connecting columns. L-shaped blocks are installed on both fixing sleeves. An installation plate is installed on the two L-shaped blocks. An activity hole is formed on the installation plate, and the anti-static label is movably installed on the inner wall of the activity hole.

[0010] Preferably, a fixing block is installed on the installation plate. A second return spring is installed on the fixing block. The other end of the second return spring is installed with a handle. A cross-shaped slider is installed on the handle. A cutting knife is installed on the cross-shaped slider, and the cutting knife is in contact with the anti-static label.

[0011] Preferably, a cross-shaped sliding hole is formed on the installation plate, and the cross-shaped slider is slidably installed on the inner wall of the cross-shaped sliding hole.

[0012] Preferably, the wear-resistant layer is made of polypropylene material, and its width range is between eight microns and twenty-five microns.

[0013] Preferably, the gradient layer is made of diarylethene material, and its width range is between eight microns and ten microns.

[0014] Compared with the prior art, the beneficial effects of the utility model are as follows:

[0015] (1) In the utility model, through the arrangement of structures such as a rotating shaft, a graduated flexible ruler, a driven wheel, a connecting rope, a first return spring, a cutting knife, a second return spring, a handle and a cross-shaped slider, when the anti-static label needs to be used, the anti-static label and one end of the graduated flexible ruler are moved together, so that the anti-static label can be conveniently moved to any precise length. Then, the handle is manually driven to move, and the handle drives the cutting knife to cut the anti-static label, so that the anti-static label can be conveniently cut off, and then the anti-static label can be conveniently cut into any precise length for use, avoiding the situation that the existing anti-static label can only be cut off and used at a fixed length, which is not convenient for using precision equipment of different specifications.

[0016] (2) In this utility model, through the setting of structures such as the wear-resistant layer and the gradient layer, by means of the wear-resistant layer, the wear resistance of the anti-static label during use can be effectively increased, so that its service life can be extended. At the same time, by means of the gradient layer, the color change on the outer surface of the anti-static label caused by ultraviolet rays can be utilized, thereby reminding the staff. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 is the main structural schematic diagram of this utility model;

[0018] Figure 2 is the connection structural schematic diagram of the extrusion roller, storage box and mounting plate of this utility model;

[0019] Figure 3 is the connection structural schematic diagram of the storage box, driven wheel and retaining sleeve of this utility model;

[0020] Figure 4 is the connection structural schematic diagram of the cutting knife, second return spring and handle of this utility model;

[0021] Figure 5 is the internal structural schematic diagram of the anti-static label of this utility model;

[0022] In the figure: 1, anti-static label; 2, connecting shell; 3, connecting column; 4, extrusion roller; 5, storage box; 51, rotating shaft; 52, graduated flexible ruler; 53, driven wheel; 54, support plate; 55, first return spring; 56, connecting rope; 6, retaining sleeve; 61, L-shaped block; 62, mounting plate; 63, movable hole; 64, cutting knife; 65, fixed block; 66, second return spring; 67, handle; 68, cross slider; 69, cross slide hole; 7, base layer; 8, wear-resistant layer; 9, gradient layer. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0023] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all of the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without making creative efforts shall fall within the protection scope of the present utility model.

[0024] Embodiment 1: Please refer to Figures 1-5, the present utility model provides a technical solution: an anti-static label for precision equipment, including an anti-static label 1, a connection housing 2 is provided on the anti-static label 1, a connection column 3 is slidably installed on the connection housing 2, a pressing roller 4 is rotatably installed on the connection column 3, a measuring mechanism is installed on the connection column 3, the measuring mechanism is installed on the connection housing 2, a cutting mechanism is installed on the connection column 3, and the cutting mechanism is in contact with the anti-static label 1;

[0025] In order to facilitate cutting the anti-static label 1 into different sizes to adapt to different specifications of precision equipment for use, a measuring mechanism is arranged, specifically including a storage box 5, the storage box 5 is installed on the connection column 3, a rotating shaft 51 is rotatably installed on the inner wall of the storage box 5, a graduated flexible ruler 52 is sleeved on the rotating shaft 51, the graduated flexible ruler 52 is adapted to the anti-static label 1, a support plate 54 is installed on the connection housing 2, a first return spring 55 is installed on the support plate 54, the other end of the first return spring 55 is installed with a connecting rope 56, a driven wheel 53 is wound on the connecting rope 56, and the driven wheel 53 is sleeved on the rotating shaft 51. When it is necessary to cut the anti-static label 1, first keep one end of the graduated flexible ruler 52 flush with the anti-static label 1, and then pull the anti-static label 1 and one end of the graduated flexible ruler 52 outwards together. During the movement of the anti-static label 1 and the graduated flexible ruler 52, the graduated flexible ruler 52 drives the rotating shaft 51 to rotate in the storage box 5, the rotating shaft 51 drives the driven wheel 53 to rotate, and when the driven wheel 53 rotates, it winds and winds the connecting rope 56. When the connecting rope 56 is wound on the driven wheel 53, it stretches the first return spring 55. By referring to the digital scale on the graduated flexible ruler 52, the anti-static label 1 can be accurately moved to any length for use.

[0026] In order to facilitate the convenient cutting of the static - resistant label 1 after measurement, a cutting mechanism is arranged, which specifically includes two retaining sleeves 6. The two retaining sleeves 6 are respectively sleeved at both ends of the extrusion roller 4 and are respectively installed on two connecting columns 3. L - shaped blocks 61 are installed on both of the two retaining sleeves 6. An installation plate 62 is installed on the two L - shaped blocks 61. An activity hole 63 is formed in the installation plate 62. The static - resistant label 1 is movably installed on the inner wall of the activity hole 63. A fixing block 65 is installed on the installation plate 62. A second return spring 66 is installed on the fixing block 65. The other end of the second return spring 66 is installed with a handle 67. A cross - shaped slider 68 is installed on the handle 67. A cutting knife 64 is installed on the cross - shaped slider 68. The cutting knife 64 is in contact with the static - resistant label 1. A cross - shaped sliding hole 69 is formed in the installation plate 62. The cross - shaped slider 68 is slidably installed on the inner wall of the cross - shaped sliding hole 69. Manually driving the handle 67 to move, the handle 67 drives the second return spring 66 to stretch. At the same time, the handle 67 drives the cross - shaped slider 68 in the cross - shaped sliding hole 69 of the installation plate 62 to move. The cross - shaped slider 68 drives the cutting knife 64 to move, so as to conveniently cut the static - resistant label 1 with the digital scale measured on the reference scale soft ruler 52.

[0027] Embodiment 2: On the basis of Embodiment 1, in order to facilitate increasing the service life of the static - resistant label 1, a static - resistant label 1 is arranged, which specifically includes a base layer 7. A wear - resistant layer 8 is fixedly installed on the base layer 7. A gradient layer 9 is fixedly installed on the wear - resistant layer 8. The wear - resistant layer 8 is made of polypropylene material, and its width range is between eight microns and twenty - five microns. The gradient layer 9 is made of diarylethene material, and its width range is between eight microns and ten microns. By setting the wear - resistant layer 8, the wear resistance of the static - resistant label 1 during use can be effectively increased, so that its service life can be increased. At the same time, by setting the gradient layer 9, the color change of the outer surface of the static - resistant label 1 can be caused by ultraviolet rays, so as to remind the staff. The other features are the same as those in Embodiment 1.

[0028] The working principle is as follows: When the anti-static label 1 needs to be adhered to a precision device for use and needs to be cut, first align one end of the scale flexible ruler 52 with the anti-static label 1, and then pull the anti-static label 1 and one end of the scale flexible ruler 52 outwards together. During the movement of the anti-static label 1 and the scale flexible ruler 52, the scale flexible ruler 52 drives the rotating shaft 51 to rotate in the storage box 5, the rotating shaft 51 drives the driven wheel 53 to rotate, and when the driven wheel 53 rotates, it winds and wraps the connecting rope 56. When the connecting rope 56 is wound around the driven wheel 53, it stretches the first return spring 55. When the anti-static label 1 needs to be cut, manually drive the handle 67 to move, the handle 67 stretches the second return spring 66, and at the same time the handle 67 drives the cross slider 68 in the cross slide hole 69 on the mounting plate 62 to move, and the cross slider 68 drives the cutting knife 64 to move, so that the anti-static label 1 with the size measured by the digital scale on the reference scale flexible ruler 52 can be conveniently cut, and thus the anti-static label 1 can be accurately cut into any precise size to adapt to different specifications of precision devices for use, thereby increasing the practicability and convenience of the use of the anti-static label 1. After one cutting is completed, the restoring force of the first return spring 55 can drive the rotating shaft 51 to wind the scale flexible ruler 52, which is convenient for the next use. At the same time, the restoring force of the second return spring 66 drives the cutting knife 64 to return to its original position for the next use. After the anti-static label 1 is adhered to the precision device, the setting of the wear-resistant layer 8 can increase the wear-resistant performance of the anti-static label 1 during use. The setting of the gradient layer 9 can conveniently remind the staff that the device has adhered the anti-static label 1.

[0029] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An antistatic label for precision equipment, comprising an antistatic label (1), wherein the antistatic label (1) is provided with a connecting shell (2), a connecting column (3) is slidably mounted on the connecting shell (2), and a squeezing roller (4) is rotatably mounted on the connecting column (3), characterized in that: The connecting column (3) is provided with a measuring mechanism, which is provided on the connecting shell (2); the connecting column (3) is provided with a cutting mechanism, which is in contact with an antistatic label (1); the antistatic label (1) comprises a base layer (7), a wear-resistant layer (8) is fixedly provided on the base layer (7), and a gradient layer (9) is fixedly provided on the wear-resistant layer (8); The measuring mechanism comprises a storage box (5), the storage box (5) is mounted on a connecting column (3), a rotating shaft (51) is rotatably mounted on the inner wall of the storage box (5), a graduated soft ruler (52) is sleeved on the rotating shaft (51), and the graduated soft ruler (52) is compatible with the antistatic label (1).

2. The anti-static label for precision equipment according to claim 1, characterized in that: A support plate (54) is mounted on the connection housing (2), a first return spring (55) is mounted on the support plate (54), a connection rope (56) is mounted on the other end of the first return spring (55), a driven wheel (53) is wound around the connection rope (56), and the driven wheel (53) is sleeved on the rotating shaft (51).

3. The anti-static label for precision equipment according to claim 1, characterized in that: The cutting mechanism comprises two retaining sleeves (6), the two retaining sleeves (6) are respectively sleeved on the two end positions of the squeezing roller (4) and respectively mounted on the two connecting columns (3), the two retaining sleeves (6) are both mounted with L-shaped blocks (61), the two L-shaped blocks (61) are mounted with mounting plates (62), the mounting plates (62) are provided with movable holes (63), and the anti-static label (1) is movably mounted on the inner wall of the movable hole (63).

4. The anti-static label for precision equipment according to claim 3, characterized in that: A fixing block (65) is installed on the mounting plate (62), a second return spring (66) is installed on the fixing block (65), a handle (67) is installed on the other end of the second return spring (66), a cross slider (68) is installed on the handle (67), a cutting knife (64) is installed on the cross slider (68), and the cutting knife (64) is in contact with the anti-static label (1).

5. The anti-static label for precision equipment according to claim 4, characterized in that: The mounting plate (62) is provided with a cross sliding hole (69), and the cross sliding block (68) is slidably mounted on the inner wall of the cross sliding hole (69).

6. The anti-static label for precision equipment according to claim 1, characterized in that: The wear-resistant layer (8) is made of polypropylene and has a width ranging from eight micrometers to twenty-five micrometers.

7. The anti-static label for precision equipment according to claim 1, characterized in that: The gradient layer (9) is made of diarylethene material, and its width ranges from eight micrometers to ten micrometers.

Citation Information

Patent Citations

  • Anti-static label for precision equipment

    CN214336156U