OGS (one glass solution) semi-permeable ink transmittance testing structure

By screen printing the measuring part on the large glass substrate of OGS products, the problems of inaccurate test angle and low rework efficiency caused by insufficient space during the semi-permeable hole transmission test are solved, and the rework is realized in the large-scale layout state, saving labor and time and improving testing efficiency.

CN222965116UActive Publication Date: 2025-06-10TRULY OPTO ELECTRONICS
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Patent Information

Application Number
CN202421348714.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-13
Publication Date
2025-06-10
Estimated Expiration
2034-06-13

AI Technical Summary

Technical Problem

When testing the semi-permeable pore transmittance of OGS products, the semi-permeable pore is a certain distance from the edge of the large glass substrate, resulting in insufficient placement of the test instrument, resulting in inaccurate testing angles, affecting the test value, and cutting into small pieces for testing may require rework, which seriously affects efficiency.

Method used

The measuring part is screened on the first layer of ink of the large glass substrate. The measuring part is located on the idle area of ​​the first layer of ink, close to the side of the large glass substrate. This setting facilitates the placement of the instrument during testing, and avoids the reworking problem of each particle after being cut into small pieces.

Benefits of technology

By screen printing the measuring part on the large glass substrate, the problems of inaccurate testing angle and low rework efficiency are solved, and the rework is realized in the large-scale layout state, saving labor and time, and improving testing efficiency.

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Abstract

The embodiment of the utility model belongs to the technical field of OGS touch screens. The utility model further relates to an OGS semitransparent ink transmittance testing structure which comprises a large glass substrate, the large glass substrate is provided with a first layer of ink, the first layer of ink is provided with a measuring part, and the measuring part is located in an idle area of the first layer of ink. According to the invention, the measuring part is screen-printed on the first layer of printing ink of the large glass substrate, the measuring part is used for measuring the transmittance, the measuring part is positioned on the idle area of the first layer of printing ink, and the idle area is generally positioned on the side of the large glass substrate, so that an instrument can be conveniently placed during testing, and the measured data of the measuring part is consistent with that on a product; the problem of repair of each piece after the pieces are cut into small pieces and single pieces is avoided, when problems are found, repair can be carried out in a large piece typesetting state, and labor and time are saved.
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Description

Technical Field

[0001] The utility model relates to the technical field of OGS touch screens, and more specifically, to a structure for testing the transmittance of OGS semi-transparent ink. Background Art

[0002] The English full name of OGS is One glass solution. Briefly speaking, defining all the traces and patterns of the Sensor on the LENS is called OGS. Previously, it was made on 2.5-generation lines and 3.5-generation lines. With the improvement of technology and cost savings, the generation has been getting higher and higher. Basically, it starts from 4.5-generation lines. Correspondingly, the glass layout is also increasing, and the size of a large glass sheet is also getting larger. In order to save costs, screen printing ink also uses the method of large sheet screen printing;

[0003] There are semi-transparent holes in some products. It is necessary to screen-print semi-transparent ink at the semi-transparent holes on an entire layout. Because the semi-transparent holes of the product are at a certain distance from the edge of the large glass substrate, when testing the transmittance of the semi-transparent holes, the product cannot be placed or is difficult to place due to insufficient space for placing the testing instrument, resulting in inaccurate testing angles and affecting the test values. And if it is cut into small pieces and tested one by one, there may be a situation of rework, and it is necessary to repair one by one, seriously affecting the efficiency. Therefore, we make improvements on this and propose a structure for testing the transmittance of OGS semi-transparent ink. Summary of the Utility Model

[0004] The technical problem to be solved by the embodiment of the utility model is that the semi-transparent holes of the product are at a certain distance from the edge of the large glass substrate. When testing the transmittance of the semi-transparent holes, the product cannot be placed or is difficult to place due to insufficient space for placing the testing instrument, resulting in inaccurate testing angles and affecting the test values.

[0005] In order to solve the above technical problem, the utility model adopts the following technical scheme:

[0006] A structure for testing the transmittance of OGS semi-transparent ink, comprising: a large glass substrate, the large glass substrate has a first layer of ink, and a measuring part is arranged on the first layer of ink, and the measuring part is located in the idle area of the first layer of ink.

[0007] As an improved way of the utility model, the setting position of the measuring part is close to the side of the large glass substrate.

[0008] As an improved way of the utility model, the measuring part includes a plurality of test ink layers, and the plurality of test ink layers are all screen-printed on the first layer of ink of the large glass substrate.

[0009] As an improved mode of the present utility model, a plurality of OGS modules are further arranged on the large glass substrate.

[0010] As an improved mode of the present utility model, the OGS module includes an OGS product pattern, and the OGS product pattern is arranged on the large glass substrate.

[0011] As an improved mode of the present utility model, the OGS module further includes a semi-transparent ink layer, the semi-transparent ink layer is arranged on the large glass substrate, and the position of the semi-transparent ink layer corresponds to the position of the OGS product pattern.

[0012] As an improved mode of the present utility model, the semi-transparent ink layer and the test ink layer are screen-printed with the same semi-transparent ink.

[0013] As an improved mode of the present utility model, a plurality of positioning parts are further arranged on the large glass substrate, and the plurality of positioning parts are arranged around the plurality of OGS modules.

[0014] As an improved mode of the present utility model, the positioning part is a positioning mark, and the positioning mark is screen-printed on the first-layer ink of the large glass substrate.

[0015] As an improved mode of the present utility model, the thickness of the large glass substrate is 0.7 mm.

[0016] Compared with the prior art, the embodiments of the present utility model mainly have the following beneficial effects:

[0017] To solve the problem that in the prior art, the semi-transparent holes of the product are at a certain distance from the edge of the large glass substrate, when testing the transmittance of the semi-transparent holes, the product cannot be placed or is difficult to place due to insufficient space for placing the testing instrument, resulting in inaccurate testing angles and affecting the test values. In this application, a measuring part is screen-printed on the first-layer ink of the large glass substrate, and the measuring part is used to measure the transmittance. The measuring part is located in the idle area of the first-layer ink, and the idle area is usually located on the side of the large glass substrate. Therefore, it is convenient to place the instrument during testing. The measurement data of the measuring part is the same as that on the product, avoiding the repair problem of each small piece after cutting into small single grains. When problems are found, they can be repaired in the state of large-piece layout, saving labor and time. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 is a schematic structural diagram of the OGS semi-transparent ink transmittance test structure provided by this application;

[0019] Figure 2 is the Figure 1 partial structural schematic diagram of the OGS semi-transparent ink transmittance test structure provided by this application;

[0020] Figure 3 The enlarged structural schematic diagram of the A position in the Figure 1 OGS semi-transparent ink transmittance test structure provided for this application.

[0021] Markings in the figure:

[0022] 1. Large glass substrate; 101. OGS product pattern; 102. Semi-transparent ink layer; 2. Test ink layer; 3. Positioning mark. Detailed implementation manners

[0023] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those of ordinary skill in the technical field to which this utility model belongs; the terms used in the description of the application in this article are only for the purpose of describing specific embodiments and are not intended to limit this utility model. The mention of "embodiment" in this article means that the specific features, structures or characteristics described in connection with the embodiment can be included in at least one embodiment of this utility model. The appearance of this phrase in various positions in the specification does not necessarily refer to the same embodiment, nor is it an independent or alternative embodiment mutually exclusive with other embodiments. Those skilled in the art explicitly and implicitly understand that the embodiments described herein can be combined with other embodiments.

[0024] As described in the background art, there are semi-transparent holes on some products, and it is necessary to screen-print semi-transparent ink on a whole layout. Because the semi-transparent holes of the product are at a certain distance from the edge of the large glass substrate, when testing the transmittance of the semi-transparent holes, the product cannot be placed or is difficult to place due to insufficient space for placing the test instrument, resulting in inaccurate test angles and affecting the test values. And if it is cut into small pieces and tested one by one, there may be a situation of rework, and it is necessary to repair one by one, seriously affecting the efficiency.

[0025] To solve this technical problem, this utility model provides an OGS semi-transparent ink transmittance test structure.

[0026] Specifically, please refer to Figures 1-2 , the OGS semi-transparent ink transmittance test structure specifically includes:

[0027] A large glass substrate 1, the large glass substrate 1 has a first layer of ink, and a measuring part is arranged on the first layer of ink, and the measuring part is located in the idle area of the first layer of ink.

[0028] The OGS semi-transparent ink transmittance test structure provided by the present utility model screens and prints a measuring part on the first-layer ink of a large glass substrate 1. The measuring part is used to measure the transmittance and is located in the idle area of the first-layer ink, and the idle area is usually located on the side of the large glass substrate 1. Therefore, it is convenient to place the instrument during the test. The measurement data of the measuring part is the same as that of the product, avoiding the repair problem of each small piece after being cut into small pieces. When problems are found, they can be repaired in the state of large-piece layout, saving labor and time.

[0029] In order to enable those skilled in the art to better understand the solution of the present utility model, the technical solutions in the embodiments of the present utility model will be clearly and completely described below with reference to the accompanying drawings.

[0030] It should be noted that, without conflict, the embodiments in the present utility model and the features and technical solutions in the embodiments can be combined with each other.

[0031] It should be noted that similar reference numerals and letters denote similar items in the following drawings. Therefore, once an item is defined in one drawing, it does not need to be further defined and explained in subsequent drawings.

[0032] Embodiment 1 of the OGS semi-transparent ink transmittance test structure of the present utility model

[0033] Please refer to Figures 1-2 , the OGS semi-transparent ink transmittance test structure of the present utility model includes: a large glass substrate 1. The large glass substrate 1 has a first-layer ink, and a measuring part is provided on the first-layer ink. The measuring part is located in the idle area of the first-layer ink. By screen-printing the measuring part on the first-layer ink of the large glass substrate 1, the measuring part is used to measure the transmittance and is located in the idle area of the first-layer ink, and the idle area is usually located on the side of the large glass substrate 1. Therefore, it is convenient to place the instrument during the test. The measurement data of the measuring part is the same as that of the product, avoiding the repair problem of each small piece after being cut into small pieces. When problems are found, they can be repaired in the state of large-piece layout, saving labor and time and improving the test efficiency.

[0034] Furthermore, the thickness of the large glass substrate 1 is 0.7 mm. The thickness of 0.7 mm not only ensures the strength of the structure but also ensures good performance of the transmittance. The thickness of the large glass substrate 1 is an important factor affecting its optical performance and mechanical strength. By precisely controlling the thickness, the overall performance of the product can be optimized.

[0035] Furthermore, as Figures 1-2 shown, the setting position of the measuring part is close to the side of the large glass substrate 1. Being close to the side can facilitate placing the instrument during the test.

[0036] Embodiment 2 of the OGS semi-transparent ink transmittance test structure of the present utility model

[0037] Please refer to Figures 1-2 , the OGS semi-transparent ink transmittance test structure of the present utility model includes: a large glass substrate 1, the large glass substrate 1 has a first layer of ink, and a measuring part is arranged on the first layer of ink. The measuring part is located in the idle area of the first layer of ink. By screen-printing the measuring part on the first layer of ink of the large glass substrate 1, the measuring part is used to measure the transmittance. The measuring part is located in the idle area of the first layer of ink, and the idle area is usually located on the side of the large glass substrate 1. Therefore, it is convenient to place the instrument during the test. The measurement data of the measuring part is consistent with that of the product, avoiding the problem of repairing each small piece after cutting into small pieces. When problems are found, they can be repaired in the state of large-scale layout, saving labor and time and improving the test efficiency.

[0038] Furthermore, the thickness of the large glass substrate 1 is 0.7 mm. The 0.7 mm thickness not only ensures the strength of the structure but also ensures good performance of the transmittance. The thickness of the large glass substrate 1 is an important factor affecting its optical performance and mechanical strength. By precisely controlling the thickness, the overall performance of the product can be optimized.

[0039] Furthermore, as Figures 1-2 shown, the setting position of the measuring part is close to the side of the large glass substrate 1. Being close to the side is convenient for placing the instrument during the test.

[0040] Furthermore, as Figures 1-2 shown, the measuring part includes several test ink layers 2. The several test ink layers 2 are all screen-printed on the first layer of ink of the large glass substrate 1. By setting the several test ink layers 2, multiple measurement data can be obtained during the measurement process, thereby reducing errors and improving the accuracy of the measurement. The multi-point measurement method can obtain more comprehensive data and avoid errors that may be brought by single-point measurement, thus improving the reliability of the test results.

[0041] Furthermore, as Figures 1-3 shown, several OGS modules are also arranged on the large glass substrate 1.

[0042] Furthermore, as Figures 1-3 shown, the OGS module includes an OGS product pattern 101. The OGS product pattern 101 is arranged on the large glass substrate 1. The integrated design of these components makes the product function more perfect and improves the overall performance of the product.

[0043] Furthermore, as Figures 1-3As shown, the OGS module further includes a semi-transparent ink layer 102. The semi-transparent ink layer 102 is disposed on the large glass substrate 1, and the position of the semi-transparent ink layer 102 corresponds to the position of the OGS product pattern 101. The setting of the test ink layer 2 enables the measurement of the semi-transparent ink layer 102 to be no longer required during the measurement process.

[0044] Furthermore, the semi-transparent ink layer 102 and the test ink layer 2 are screen-printed with the same semi-transparent ink and are screen-printed synchronously, thereby ensuring that the data of the semi-transparent ink layer 102 is consistent with the data of the test ink layer 2. Therefore, the measurement of the test ink layer 2 represents the measurement of the semi-transparent ink layer 102. The setting of the test ink layer 2 enables the semi-transparent ink layer 102 to be no longer measured separately during the measurement process, saving test time and cost. Through the synchronous screen-printing technology, it is ensured that the test ink layer 2 and the semi-transparent ink layer 102 have the same optical properties. Therefore, only by measuring the test ink layer 2 can the overall performance be understood; also, since the position of the test ink layer 2 is closer to the side of the large glass substrate 1 relative to the semi-transparent ink layer 102, it is easier to operate when measuring the test ink layer 2.

[0045] Embodiment Three of the OGS Semi-Transparent Ink Transmittance Test Structure of the Present Utility Model

[0046] Please refer to Figures 1-2 , the OGS semi-transparent ink transmittance test structure of the present utility model includes: a large glass substrate 1. The large glass substrate 1 has a first-layer ink, and a measurement part is disposed on the first-layer ink. The measurement part is located in the idle area of the first-layer ink. By screen-printing the measurement part on the first-layer ink of the large glass substrate 1, the measurement part is used to measure the transmittance. The measurement part is located in the idle area of the first-layer ink, and the idle area is usually located on the side of the large glass substrate 1. Therefore, it is convenient to place the instrument during the test. The measurement data of the measurement part is consistent with that on the product, avoiding the problem of rework for each small piece after cutting into small single grains. When problems are found, rework can be carried out in the state of large-scale layout, saving labor and time and improving the test efficiency.

[0047] Furthermore, the thickness of the large glass substrate 1 is 0.7 mm. The thickness of 0.7 mm not only ensures the strength of the structure but also ensures good performance of the transmittance; the thickness of the large glass substrate 1 is an important factor affecting its optical properties and mechanical strength. By precisely controlling the thickness, the overall performance of the product can be optimized.

[0048] Furthermore, as Figures 1-2 shown, the setting position of the measurement part is close to the side of the large glass substrate 1. Being close to the side enables the instrument to be conveniently placed during the test.

[0049] Furthermore, as Figures 1-2As shown in the figure, the measuring part includes several test ink layers 2, and several test ink layers 2 are all screen-printed on the first-layer ink of a large glass substrate 1. By setting several test ink layers 2, multiple measurement data can be obtained during the measurement process, thereby reducing errors and improving the accuracy of measurement. The multi-point measurement method can obtain more comprehensive data and avoid errors that may be brought by single-point measurement, thus improving the reliability of the test results.

[0050] Furthermore, as Figures 1-3 shown in the figure, several OGS modules are also arranged on the large glass substrate 1.

[0051] Furthermore, as Figures 1-3 shown in the figure, the OGS module includes an OGS product pattern 101, and the OGS product pattern 101 is arranged on the large glass substrate 1. The integrated design of these components makes the product function more perfect and improves the overall performance of the product.

[0052] Furthermore, as Figures 1-3 shown in the figure, the OGS module further includes a semi-transparent ink layer 102, and the semi-transparent ink layer 102 is arranged on the large glass substrate 1, and the position of the semi-transparent ink layer 102 corresponds to the position of the OGS product pattern 101. The setting of the test ink layer 2 makes it unnecessary to measure the semi-transparent ink layer 102 during the measurement process.

[0053] Furthermore, the semi-transparent ink layer 102 and the test ink layer 2 are screen-printed with the same semi-transparent ink, and the semi-transparent ink layer 102 and the test ink layer 2 are screen-printed synchronously, thereby ensuring that the data of the semi-transparent ink layer 102 is consistent with the data of the test ink layer 2. Therefore, measuring the test ink layer 2 means measuring the semi-transparent ink layer 102. The setting of the test ink layer 2 makes it unnecessary to measure the semi-transparent ink layer 102 separately during the measurement process, saving test time and cost. Through the synchronous screen-printing technology, it is ensured that the test ink layer 2 and the semi-transparent ink layer 102 have the same optical properties. Therefore, only by measuring the test ink layer 2 can the overall performance be understood; and because the position of the test ink layer 2 is closer to the edge of the large glass substrate 1 relative to the semi-transparent ink layer 102, it is easier to operate when measuring the test ink layer 2.

[0054] Furthermore, as Figure 1 and Figure 3 shown in the figure, several positioning parts are also arranged on the large glass substrate 1, and several positioning parts are arranged around several OGS modules. The setting of the positioning parts can facilitate the confirmation of the setting position of the OGS modules.

[0055] Furthermore, as Figure 1 and Figure 3As shown, the positioning part is the positioning mark 3, and the positioning mark 3 is screen-printed on the first-layer ink of the large glass substrate 1. The position of the OGS module can be indicated through the positioning mark 3, thereby facilitating the setting of the OGS module.

[0056] Obviously, the embodiments described above are only a part of the embodiments of the present invention, rather than all of the embodiments. The preferred embodiments of the present invention are given in the drawings, but they do not limit the patent scope of the present invention. The present invention can be implemented in many different forms. On the contrary, the purpose of providing these embodiments is to make the understanding of the disclosed content of the present invention more thorough and comprehensive. Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions described in the foregoing specific embodiments, or perform equivalent replacements on some of the technical features. Any equivalent structure made by using the specification and drawings of the present invention, directly or indirectly applied in other related technical fields, is equally within the scope of the patent protection of the present invention.

Claims

1. An OGS semi-permeable ink transmittance test structure, characterized in that: include: A large glass substrate (1), the large glass substrate (1) having a first layer of ink, and a measuring part is arranged on the first layer of ink, the measuring part being located on an idle area of ​​the first layer of ink.

2. The OGS semi-permeable ink transmittance test structure according to claim 1, characterized in that: The measuring unit is arranged close to the side of the large glass substrate (1).

3. The OGS semi-permeable ink permeability test structure according to claim 2, characterized in that: The measuring part comprises a plurality of test ink layers (2), and the plurality of test ink layers (2) are all screen-printed on a first layer of ink on a large glass substrate (1).

4. The OGS semi-permeable ink transmittance test structure according to claim 3, characterized in that: A plurality of OGS modules are also arranged on the large glass substrate (1).

5. The OGS semi-permeable ink transmittance test structure according to claim 4, characterized in that: The OGS module comprises an OGS product pattern (101), and the OGS product pattern (101) is arranged on a large glass substrate (1).

6. The OGS semi-permeable ink transmittance test structure according to claim 5, characterized in that: The OGS module further comprises a semi-permeable ink layer (102), wherein the semi-permeable ink layer (102) is arranged on the large glass substrate (1), and the position of the semi-permeable ink layer (102) corresponds to the position of the OGS product pattern (101).

7. The OGS semi-permeable ink permeability test structure according to claim 6, characterized in that: The semi-permeable ink layer (102) and the test ink layer (2) are formed by silk-screen printing using the same semi-permeable ink.

8. The OGS semi-permeable ink transmittance test structure according to claim 1, 3 or 6, characterized in that: The large glass substrate (1) is also provided with a plurality of positioning parts, and the plurality of positioning parts are arranged around a plurality of OGS modules.

9. The OGS semi-permeable ink transmittance test structure according to claim 8, characterized in that: The positioning portion is a positioning mark (3), and the positioning mark (3) is screen-printed on the first layer of ink on the large glass substrate (1).

10. The OGS semi-permeable ink transmittance test structure according to claim 1, characterized in that: The thickness of the large glass substrate (1) is 0.7 mm.