Tempered hollow glass with anti-seismic structure
By combining an inner buffer pad, an outer buffer pad, a honeycomb fixing frame, and a reinforcing aluminum plate, the problem of poor seismic resistance of tempered insulating glass is solved, achieving better seismic performance and heat insulation, dustproof, and anti-fogging and mildew effects.
Patent Information
- Application Number
- CN202520046597.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-09
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2035-01-09
AI Technical Summary
Existing tempered insulated glass has shortcomings in terms of earthquake resistance. The foam is easily damaged, and the reinforcing ribs can easily crush the glass, affecting its service life and safety.
It adopts a combination structure of inner buffer pad, outer buffer pad, honeycomb fixed frame and reinforced aluminum plate, combined with rubber material and inert gas filling to form a multi-layer buffer system, and puts desiccant in the fixed frame to prevent fogging and mold growth.
It enhances the shock resistance of tempered insulated glass, absorbs impact, prevents dust from entering, keeps the inside of the glass dry, and improves heat insulation and aesthetics.
Smart Images

Figure CN223676098U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to the technical field of toughened hollow glass, specifically relates to a toughened hollow glass with anti -shock structure. BACKGROUND
[0002] With the acceleration of urbanization process and the continuous progress of building technology, glass is more and more widely used in the field of building, from traditional window to today's building curtain wall, daylighting roof and other large glass structure, has become the important element indispensable to modern building, and building design pursues higher lighting, aesthetic and space openness, promotes glass area to increase continuously, and the complexity of glass structure also increases day by day, for example, in high-rise commercial building and landmark building, large-area glass curtain wall not only improves the visual effect of building, but also can bring sufficient natural light to indoor space, creates bright, permeable environment, however, this also makes the safety and functionality of glass in building face higher challenge.
[0003] The existing toughened hollow glass often adds foam to the edge of glass or sets reinforcing ribs outside glass to fix glass to achieve the anti-shock effect, in use, the foam is easy to be damaged, and the reinforcing rib is easy to press the glass to be damaged when being impacted, thereby affecting the anti-shock effect of the toughened hollow glass, therefore, a toughened hollow glass with anti-shock structure is needed to solve the above problems. UTILITY MODEL CONTENTS
[0004] The utility model aims at providing a toughened hollow glass with anti-shock structure to solve the problems in the above background technology.
[0005] To achieve the above object, the utility model provides the following technical scheme: a toughened hollow glass with anti-shock structure, comprising upper layer glass and lower layer glass, the upper layer glass is equipped with anti-shock assembly between lower layer glass, the top and bottom of anti-shock assembly are equipped with reinforced aluminum plate, the reinforced aluminum plate is equipped with shock absorbing rubber between upper layer glass, the anti-shock assembly includes inner layer buffer pad, the outer side of inner layer buffer pad is coated with sealant, the outer side of inner layer buffer pad is equipped with fixed frame through sealant, the inside of fixed frame is equipped with honeycomb groove, the inner wall of honeycomb groove is equipped with desiccant through the mesh groove, the outer side of fixed frame is equipped with outer layer buffer pad through the sealant.
[0006] As a preferred implementation, the top of the inner layer buffer pad and the fixed frame is connected to the bottom of the upper layer glass through the sealant, and the bottom of the inner layer buffer pad and the fixed frame is connected to the top of the lower layer glass through the sealant.
[0007] As a preferred implementation form, a cavity is formed between the upper glass and the lower glass, the cavity is filled with inert gas, and the inner sides of the upper glass and the lower glass are provided with transparent coating films.
[0008] As a preferred implementation form, the number of the reinforcing aluminum plates is two, the bottom of one of the reinforcing aluminum plates is connected to the top of the upper glass through one of the shock-absorbing rubber strips, and the top of the other reinforcing aluminum plate is connected to the bottom of the lower glass through a shock-absorbing rubber strip.
[0009] As a preferred implementation form, the inner layer cushion, the fixed frame and the outer layer cushion are all made of rubber material, and the top and the bottom of the outer layer cushion are connected to the reinforcing aluminum plates through sealing glue.
[0010] As a preferred implementation form, the outer layer cushion is located outside the upper glass, the lower glass and the fixed frame, and is connected to the outer sides of the upper glass, the lower glass and the fixed frame through sealing glue.
[0011] Compared with the prior art, the utility model has the advantages that:
[0012] The utility model discloses a multilayer and multidirectional buffer system formed by the combination of the inner layer cushion, the outer layer cushion, the honeycomb-shaped fixed frame and the reinforcing aluminum plate, which can absorb the impact force around the tempered hollow glass when the tempered hollow glass is subjected to earthquake or other external force impact, and can further protect the tempered hollow glass by absorbing the impact force on both sides of the tempered hollow glass through the honeycomb-shaped fixed frame, the reinforcing aluminum plate and the inner layer cushion.
[0013] The utility model discloses a further noise absorption and noise reduction by setting the fixed frame as honeycomb-shaped, prevent dust from entering the cavity of the tempered hollow glass by setting the shock-absorbing rubber strip between the upper glass and the lower glass and the reinforcing aluminum plate, prevent the reinforcing aluminum plate from directly contacting the glass and scratching the glass, ensure the dry environment in the glass by setting the desiccant in the net groove of the inner wall of the honeycomb-shaped fixed frame, and prevent the fogging and mildewing in the cavity. DRAWINGS
[0014] Figure 1 It is the schematic diagram of the main body three-dimensional structure of the utility model;
[0015] Figure 2 It is the schematic diagram of the main body cross section three-dimensional structure of the utility model;
[0016] Figure 3 It is the schematic view of the three-dimensional structure of the anti-seismic assembly of the utility model;
[0017] Figure 4 It is the schematic view of the three-dimensional structure of the anti-seismic assembly of the utility model; Figure 3 It is the schematic view of the three-dimensional structure of the anti-seismic assembly of the utility model;
[0018] In the figure: 1, upper glass; 2, anti-seismic assembly; 3, reinforced aluminum plate; 4, shock-absorbing rubber strip; 5, lower glass; 6, transparent coating; 7, cavity; 201, inner layer buffer pad; 202, sealing glue; 203, fixed frame; 204, honeycomb groove; 205, desiccant; 206, outer layer buffer pad. DETAILED DESCRIPTION
[0019] The utility model will be further described below in combination with examples.
[0020] The following examples are used to illustrate the utility model, but cannot be used to limit the protection scope of the utility model. The conditions in the examples can be further adjusted according to specific conditions, and simple improvements of the method of the utility model under the concept of the utility model all belong to the range required to be protected by the utility model.
[0021] Please refer to Figures 1-4 The utility model provides a kind of toughened hollow glass with anti-seismic structure, including upper glass 1 and lower glass 5, upper glass 1 and lower glass 5 between being equipped with anti-seismic assembly 2, the top and bottom of anti-seismic assembly 2 are equipped with reinforced aluminum plate 3, and reinforced aluminum plate 3 is equipped with shock-absorbing rubber strip 4 between upper glass 1, anti-seismic assembly 2 includes inner layer buffer pad 201, and the outside of inner layer buffer pad 201 is coated with sealing glue 202, and the outside of inner layer buffer pad 201 is equipped with fixed frame 203 by sealing glue 202, and the inside of fixed frame 203 is equipped with honeycomb groove 204, and the inner wall of honeycomb groove 204 is equipped with desiccant 205 by the mesh groove of being equipped, and the outside of fixed frame 203 is equipped with outer layer buffer pad 206 by the sealing glue 202 of being coated, when toughened hollow glass encounters earthquake or other external force impact, outer layer buffer pad 206 can absorb the impact force around toughened hollow glass, and the impact force on both sides of toughened hollow glass can be absorbed by the fixed frame 203 of honeycomb shape and reinforced aluminum plate and inner layer buffer pad 201, so as to further protect toughened hollow glass, and the dry environment inside glass is ensured by the mesh groove inside wall of fixed frame 203 of honeycomb shape and the desiccant 205 of being arranged inside.
[0022] The top of the inner layer buffer pad 201 and the fixed frame 203 are connected with the bottom of the upper glass 1 through the sealing glue 202, and the bottom of the inner layer buffer pad 201 and the fixed frame 203 are connected with the top of the lower glass 5 through the sealing glue 202, and the inner layer buffer pad 201 and the fixed frame 203 are connected with the upper glass 1 and the lower glass 5 through the sealing glue 202, so that dust and moisture can be prevented from entering the cavity 7 of the tempered hollow glass.
[0023] The cavity 7 is arranged between the upper glass 1 and the lower glass 5, the cavity 7 is filled with inert gas, the inner sides of the upper glass 1 and the lower glass 5 are provided with transparent coating films 6, the cavity 7 between the upper glass 1 and the lower glass 5 is filled with inert gas, the heat insulation performance of the glass is effectively improved, the transparent coating films 6 further improve the heat insulation and ultraviolet resistance performance of the glass, and meanwhile, the appearance of the glass after coating is more beautiful and has certain decoration effect.
[0024] The number of the reinforcing aluminum plates 3 is two, one bottom of the reinforcing aluminum plate 3 is connected with the top of the upper glass 1 through one shock-absorbing rubber strip 4, and the top of the other reinforcing aluminum plate 3 is connected with the bottom of the lower glass 5 through the shock-absorbing rubber strip 4, the shock-absorbing rubber strips 4 arranged between the upper glass 1, the lower glass 5 and the reinforcing aluminum plates 3 can prevent dust from entering the cavity 7 in the tempered hollow glass and prevent the reinforcing aluminum plates 3 from directly contacting the glass to scratch the glass.
[0025] The inner layer buffer pad 201, the fixed frame 203 and the outer layer buffer pad 206 are all made of rubber material, and the top and the bottom of the outer layer buffer pad 206 are connected with the reinforcing aluminum plates 3 through the sealing glue 202.
[0026] The outer layer buffer pad 206 is located outside the upper glass 1, the lower glass 5 and the fixed frame 203, and the outer layer buffer pad 206 is connected with the outer sides of the upper glass 1, the lower glass 5 and the fixed frame 203 through the sealing glue 202.
[0027] The working principle and the use process of the utility model are as follows: firstly, when the tempered hollow glass is used, the dry agent 205 is arranged in the net slot formed in the inner wall of the honeycomb-shaped fixed frame 203, so that the dry environment in the glass is ensured, the cavity 7 between the upper glass 1 and the lower glass 5 is filled with inert gas, the heat insulation performance of the glass is effectively improved, the transparent coating film 6 further improves the heat insulation and ultraviolet resistance performance of the glass, and then the user's use experience is obtained, then when the tempered hollow glass is subjected to earthquake or other external force impact, the outer layer buffer pad 206 made of rubber material can absorb and buffer the impact force around the tempered hollow glass, the honeycomb-shaped fixed frame 203 made of rubber material and the reinforcing aluminum plate and the inner layer buffer pad 201 made of rubber material can absorb and buffer the impact force on both sides of the tempered hollow glass, so that the tempered hollow glass is further protected.
[0028] While the embodiments of the present application have been illustrated and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made therein without departing from the spirit and scope of the application, which is defined by the appended claims and their equivalents.
Claims
1. A tempered hollow glass with anti-shock structure, comprising an upper glass (1) and a lower glass (5), characterized in that: The upper glass (1) and the lower glass (5) are provided with an anti-seismic assembly (2), the top and bottom of the anti-seismic assembly (2) are provided with reinforced aluminum plates (3), the reinforced aluminum plates (3) and the upper glass (1) are provided with shock-absorbing rubber strips (4), the anti-seismic assembly (2) comprises an inner layer buffer pad (201), the outer side of the inner layer buffer pad (201) is coated with sealing glue (202), the outer side of the inner layer buffer pad (201) is provided with a fixed frame (203) through the sealing glue (202), the inside of the fixed frame (203) is provided with a honeycomb groove (204), the inner wall of the honeycomb groove (204) is provided with a desiccant (205) through the mesh groove, and the outer side of the fixed frame (203) is provided with an outer layer buffer pad (206) through the coating sealing glue (202).
2. The tempered hollow glass with anti-vibration structure according to claim 1, characterized in that: The top of the inner layer buffer pad (201) and the fixed frame (203) is connected with the bottom of the upper glass (1) through the sealing glue (202), and the bottom of the inner layer buffer pad (201) and the fixed frame (203) is connected with the top of the lower glass (5) through the sealing glue (202).
3. The tempered hollow glass with anti-vibration structure according to claim 1, characterized in that: The upper glass (1) and the lower glass (5) are provided with a cavity (7), the inside of the cavity (7) is filled with inert gas, and the inner sides of the upper glass (1) and the lower glass (5) are provided with transparent coating films (6).
4. The tempered hollow glass with anti-vibration structure according to claim 1, characterized in that: The number of the reinforced aluminum plates (3) is two, one bottom of the reinforced aluminum plate (3) is connected with the top of the upper glass (1) through one shock-absorbing rubber strip (4), and the top of the other reinforced aluminum plate (3) is connected with the bottom of the lower glass (5) through the shock-absorbing rubber strip (4).
5. The tempered hollow glass with anti-vibration structure according to claim 1, characterized in that: The inner layer buffer pad (201), the fixed frame (203) and the outer layer buffer pad (206) are all made of rubber material, and the top and bottom of the outer layer buffer pad (206) are connected with the reinforced aluminum plate (3) through the sealing glue (202).
6. The tempered hollow glass with anti-vibration structure according to claim 1, characterized in that: The outer layer buffer pad (206) is located outside the upper glass (1), the lower glass (5) and the fixed frame (203), and the outer layer buffer pad (206) is connected with the outer sides of the upper glass (1), the lower glass (5) and the fixed frame (203) through the sealing glue (202).