Ultrathin flexible glass chemical tempering device
By designing support components and isolation components, and using high-temperature lines to form point contact limits, the problems of fixture marks and scratches in the chemical tempering process of ultra-thin flexible glass were solved, achieving a stable chemical tempering process and large-scale production, and extending the service life of the equipment.
Patent Information
- Application Number
- CN202422832653.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-20
- Publication Date
- 2025-12-09
- Estimated Expiration
- 2034-11-20
AI Technical Summary
Existing chemical tempering equipment for ultra-thin flexible glass is prone to fixture marks and scratches during the tempering process, affecting the appearance of the product and is not suitable for large-scale production.
The design incorporates support and isolation components, with high-temperature lines forming point contact limits to reduce the contact area with the glass. Corrosion-resistant and high-temperature-resistant materials are used to ensure the stability of the chemical tempering process.
It effectively reduces fixture marks and scratches, ensures the stability of the chemical tempering process, supports large-scale production, extends equipment life, and reduces costs.
Smart Images

Figure CN223646474U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of ultra-thin flexible glass production technology, and more specifically, it relates to an ultra-thin flexible glass chemical tempering device. Background Technology
[0002] Currently, foldable screens utilize flexible materials or ultra-thin glass. Chemical tempering is an indispensable part of the strengthening process for flexible materials. Therefore, the future development trend of foldable screens will be towards using ultra-thin glass as a flexible cover for module assembly and mass production. To improve the strength of ultra-thin glass cover plates, potassium nitrate in a high-temperature molten state is often used for sodium-potassium ion replacement to achieve chemical tempering. However, current methods for tempering glass with clamps significantly impact the product's appearance, with the main defects being clamp marks and scratches, severely affecting mass production.
[0003] Existing technology includes a designation titled "An Ultra-Thin Flexible Glass Railing," with publication number CN220840147U. This technology relates to the field of glass production technology and specifically discloses an ultra-thin flexible glass railing, comprising a support mechanism, a placement mechanism mounted on the support mechanism for vertical adjustment and limiting of the flexible glass, and a limiting mechanism mounted on the support mechanism for lateral limiting of the glass on the placement mechanism. The placement mechanism includes a fixed placement seat mounted on the support mechanism, with movable placement seats on both sides of the fixed placement seat, and a lateral movement component connected to the movable placement seats for relative movement. This invention adjusts the lateral and longitudinal spacing of the movable placement seats and the upper limit seats through the lateral movement component and the vertical adjustment component of the placement mechanism. After the glass is placed, the lateral limiting seats of the limiting mechanism are adjusted to limit the glass on both sides, facilitating adjustment and use of glass of different specifications and ensuring the stability and convenience of glass placement.
[0004] However, this technology does not address the technical issues and solutions of this application. Utility Model Content
[0005] The technical problem to be solved by this utility model is to provide an ultra-thin flexible glass chemical tempering device that is simple in structure, can effectively reduce the contact area between the product and the device during chemical tempering, solves the problems of fixture marks and scratches, has no deteriorating effect on the chemical tempering process of ultra-thin glass, allows the product to be mass-produced, and ensures good process stability.
[0006] To solve the above-mentioned technical problems, the technical solution adopted by this utility model is as follows:
[0007] This utility model is a chemical tempering device for ultra-thin flexible glass, including a support member, with multiple isolation members arranged at the lower or upper part of the support member, gaps formed between adjacent isolation members, and high-temperature lines arranged in an alternating manner between adjacent isolation members, the high-temperature lines forming product limiting points.
[0008] The support includes an upper support and a lower support, which are connected by a support connector.
[0009] The upper support member is provided with multiple isolation members at its lower part, and high-temperature wire groups are set between adjacent isolation members. Each high-temperature wire group includes two high-temperature wires arranged in an alternating manner.
[0010] The lower support member is provided with multiple isolation members on its upper part, and each group of high-temperature wires includes two high-temperature wires arranged in an alternating manner.
[0011] The two high-temperature wires in each high-temperature wire group are arranged in an X-shape.
[0012] The multiple isolation components of the upper support are perpendicular to the upper support.
[0013] The multiple isolation members of the lower support are perpendicular to the lower support.
[0014] Both the upper and lower support components are made of corrosion-resistant materials.
[0015] Each piece of ultra-thin flexible glass has a structure at its upper part that can be fastened to the product limiting point position of the upper support component, and a structure at its lower part that can be fastened to the product limiting point position of the lower support component.
[0016] Multiple sets of high-temperature wire groups are arranged between adjacent isolation members of the upper support member 7, and multiple sets of high-temperature wire groups are arranged between adjacent isolation members of the lower support member 7.
[0017] The working principle and beneficial effects of this utility model are as follows:
[0018] The ultra-thin flexible glass chemical tempering device of this utility model features a structure with two sets of support members for supporting and limiting the ultra-thin flexible glass from the upper and lower parts respectively. Each support member is equipped with multiple isolation members, forming gaps between adjacent isolation members. High-temperature lines are arranged in an alternating pattern between adjacent isolation members, forming product limiting points. Thus, during the positioning of the product to be chemically tempered, the upper part of the product contacts the product limiting point formed by the high-temperature lines of the upper support member (point contact), and the lower part of the product contacts the product limiting point formed by the high-temperature lines of the lower support member (point contact). This changes the original line and surface contact to point contact, significantly reducing the contact area between the product and the positioning part of the device during tempering. This ensures no deterioration of the chemical tempering process of the ultra-thin glass, guarantees large-scale production, and ensures good process stability. The support members, isolation members, support member connectors, and high-temperature lines of the device are all made of materials resistant to strong alkalis and high temperatures, improving corrosion resistance and high-temperature resistance. This ensures that the device will not be easily damaged during long-term use, extending its service life, effectively saving costs, and optimizing the appearance of the glass product. Attached Figure Description
[0019] The following is a brief explanation of the contents depicted in the accompanying drawings and the markings therein:
[0020] Figure 1 This is a schematic diagram of the structure of the ultra-thin flexible glass chemical tempering device described in this utility model;
[0021] The labels in the attached diagram are as follows: 1. Support component; 2. Isolation component; 3. Gap section; 4. High temperature line; 5. Product limiting point; 6. Upper support component; 7. Lower support component; 8. Ultra-thin flexible glass; 9. Support component connector. Detailed Implementation
[0022] The following description, with reference to the accompanying drawings, provides a more detailed explanation of the specific embodiments of this utility model, including the shape and structure of each component, the relative positions and connections between the parts, the functions and working principles of each part:
[0023] As attached Figure 1As shown, this utility model is a chemical tempering device for ultra-thin flexible glass, including a support member 1. Multiple isolation members 2 are arranged at the lower or upper part of the support member 1, gaps 3 are formed between adjacent isolation members 2, and staggered high-temperature lines 4 are arranged between adjacent isolation members 2, forming product limiting points 5. The above structure addresses the shortcomings of the prior art by proposing an improved technical solution. In the structural configuration, two sets of support members 1 are provided: an upper support member and a lower support member, used to support and limit the ultra-thin flexible glass from the upper and lower parts respectively. Each support member 1 is provided with multiple isolation members 2, gaps 3 are formed between adjacent isolation members 2, and staggered high-temperature lines 4 are arranged between adjacent isolation members 2, forming product limiting points 5. In this way, when positioning the product to be chemically tempered, the upper part of the product contacts the product limiting point 5 formed by the high-temperature line 4 of the upper support component, which is a point contact; the lower part of the product contacts the product limiting point 5 formed by the high-temperature line 4 of the lower support component, which is also a point contact. This changes the original line and surface contact to point contact, significantly reducing the contact area between the product and the positioning part of the device during tempering. This ensures no deterioration of the chemical tempering process of ultra-thin glass, allows for large-scale production, and guarantees good process stability. The support component, isolation component 2, support component connector, and high-temperature line of the device are all made of materials resistant to strong alkalis and high temperatures, improving corrosion resistance and high-temperature resistance. This ensures the device can be used for a long time without easily being damaged, extending its service life, effectively saving costs, and optimizing the appearance of the glass product. The ultra-thin flexible glass chemical tempering device described in this utility model has a simple structure. During chemical tempering, it effectively reduces the contact area between the product and the device, solving the problems of clamp marks and scratches. It has no deterioration of the chemical tempering process of ultra-thin glass, allows for large-scale production, and guarantees good process stability.
[0024] The support components include an upper support component 6 and a lower support component 7, which are connected by a support component connector 9. In this structure, the upper support component 6 and the lower support component 7 are arranged symmetrically, and are fixedly connected by the support component connector. When the product to be chemically tempered is positioned, it is located between the upper support component 6 and the lower support component 7, with the upper and lower parts respectively providing positioning and making point contact with the corresponding product positioning point 5.
[0025] The upper support member 6 has multiple isolation members 2 at its lower part, and high-temperature wire groups are set between adjacent isolation members 2. Each high-temperature wire group includes two high-temperature wires 4 arranged in an alternating pattern. In the above structure, the high-temperature wires intersect to form product limiting points 5, ensuring point contact with the product, reducing the contact area between the device and the glass, and the high-temperature wires are flexible to avoid rigid contact that could damage the glass, effectively protecting the product.
[0026] The lower support 7 is equipped with multiple isolation elements 2 on its upper part, and each group of high-temperature wires includes two staggered high-temperature wires 4. In the above structure, the high-temperature wires intersect to form product limiting points 5, ensuring point contact with the product, reducing the contact area between the device and the glass, and the high-temperature wires are flexible to avoid rigid contact that could damage the glass, effectively protecting the product.
[0027] The two high-temperature wires 4 in each high-temperature wire group are arranged in an X-shape. The multiple isolation elements 2 of the upper support member 6 are perpendicular to the upper support member 6. The multiple isolation elements 2 of the lower support member 7 are perpendicular to the lower support member 7. Both the upper support member 6 and the lower support member 7 are made of corrosion-resistant materials. Corrosion-resistant materials effectively improve the service life of the device.
[0028] Each piece of ultra-thin flexible glass 8 has an upper part configured to be locked at the product limiting point 5 of the upper support member 6, and a lower part configured to be locked at the product limiting point 5 of the lower support member 7. With this structure, the upper and lower parts of each piece of ultra-thin flexible glass 8 can be reliably limited, and one device can limit multiple pieces of glass.
[0029] Multiple sets of high-temperature wires are arranged between adjacent spacers 2 of the upper support member 6, and multiple sets of high-temperature wires are arranged between adjacent spacers 2 of the lower support member 7. In this structure, depending on the actual glass size, the upper and lower parts of each piece of glass can be limited by multiple sets of high-temperature wires.
[0030] The ultra-thin flexible glass chemical tempering device of this utility model has a structure in which two sets of support members 1 are provided, namely an upper support member and a lower support member, to support and limit the ultra-thin flexible glass 8 from the upper and lower parts respectively. Each support member 1 is provided with multiple isolation members 2, and gaps 3 are formed between adjacent isolation members 2. High-temperature lines 4 are arranged in an alternating manner between adjacent isolation members 2, and the high-temperature lines 4 form product limiting points 5. In this way, when positioning the product to be chemically tempered, the upper part of the product contacts the product limiting point 5 formed by the high-temperature lines 4 of the upper support member, which is a point contact, and the lower part of the product contacts the product limiting point 5 formed by the high-temperature lines 4 of the lower support member, which is a point contact. The original line and surface contact is changed to point contact, which greatly reduces the contact area between the product and the positioning part of the device during tempering, ensuring that there is no deteriorating impact on the chemical tempering process of ultra-thin glass, ensuring that the product can be mass-produced, and ensuring good process stability. The device's support components, isolation components 2, support component connectors, and high-temperature lines are all made of materials resistant to strong alkalis and high temperatures, which improves corrosion resistance and high-temperature resistance, ensuring that the device can be used for a long time without being easily damaged, thus extending the device's service life, effectively saving costs, and optimizing the appearance of glass products.
[0031] The present invention has been described above with reference to the accompanying drawings. Obviously, the specific implementation of the present invention is not limited to the above-described manner. Any improvements made using the inventive concept and technical solution of the present invention, or the direct application of the inventive concept and technical solution to other situations without modification, are all within the protection scope of the present invention.
Claims
1. A chemical tempering device for ultrathin flexible glass, characterized in that: Includes a support member (1), with multiple isolation members (2) provided at the lower or upper part of the support member (1), a gap (3) formed between adjacent isolation members (2), and staggered high temperature lines (4) provided between adjacent isolation members (2), forming product limiting points (5).
2. The ultra-thin flexible glass chemical tempering device according to claim 1, characterized in that: The support member includes an upper support member (6) and a lower support member (7), which are connected by a support member connector (9).
3. The ultrathin flexible glass chemical tempering device according to claim 2, characterized in that: The upper support member (6) is provided with multiple isolation members (2) at the bottom, and high temperature wire groups are provided between adjacent isolation members (2). Each high temperature wire group includes two high temperature wires (4) arranged in an alternating manner.
4. The ultrathin flexible glass chemical tempering device according to claim 2 or 3, characterized in that: The lower support member (7) is provided with multiple isolation members (2) on the upper part, and each high temperature line group includes two high temperature lines (4) arranged in an alternating manner.
5. The ultrathin flexible glass chemical tempering device according to claim 1 or 2, characterized in that: The two high-temperature wires (4) in each high-temperature wire group have an X-shaped structure.
6. The ultrathin flexible glass chemical tempering device according to claim 2, characterized in that: The multiple isolation members (2) of the upper support member (6) are perpendicular to the upper support member (6).
7. The ultrathin flexible glass chemical tempering device according to claim 3, characterized in that: The multiple isolation members (2) of the lower support member (7) are perpendicular to the lower support member (7).
8. The ultrathin flexible glass chemical tempering device according to claim 2, characterized in that: The upper support (6) and lower support (7) are both made of corrosion-resistant materials.
9. The ultrathin flexible glass chemical tempering device according to claim 2, characterized in that: Each piece of ultra-thin flexible glass (8) has an upper part that can be fastened to the product limit point (5) of the upper support member (6), and a lower part that can be fastened to the product limit point (5) of the lower support member (7).
10. The ultrathin flexible glass chemical tempering device according to claim 2, characterized in that: Multiple sets of high-temperature wire groups are arranged between adjacent isolation members (2) of the upper support member (6) and between adjacent isolation members (2) of the lower support member (7).
Citation Information
Patent Citations
Ultrathin flexible glass fence
CN220840147U