Glass door with heat and sound insulation structure

By adopting internal thermal insulation panels, solar insulation films, hollow cavity and inner panel structures in glass doors, the problem of existing glass doors lacking thermal insulation functions is solved, achieving more efficient thermal insulation and sound insulation effects, and improving the comfort and quietness of the indoor environment.

CN222879569UActive Publication Date: 2025-05-16QINGDAO BAIYOU GLASS TECH CO LTD
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Patent Information

Application Number
CN202421446197.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-24
Publication Date
2025-05-16
Estimated Expiration
2034-06-24

AI Technical Summary

Technical Problem

Existing glass doors lack thermal insulation and sound insulation functions, which causes rapid indoor temperature to rise in summer, increase energy consumption, and cannot effectively isolate external noise, affecting people's rest and work efficiency.

Method used

A glass door with a thermally insulated sound-insulating structure was designed, using an internal thermally insulated door panel and a solar thermal insulation film to improve the thermal insulation effect, and achieving the sound insulation effect through the hollow cavity and inner panel structure.

Benefits of technology

It effectively improves the thermal insulation performance of glass doors, reduces the increase in indoor temperature, and significantly reduces the incoming of external noise through the sound insulation structure, improving the comfort and quietness of the indoor environment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The glass door with the heat insulation and sound insulation structure comprises a shell and an inner heat insulation door plate, a set of lock holes used for installing a lock are formed in the middle of the left side of the shell, and a set of upper bearing plates used for being connected with the upper end of a glass body in a limiting and sealing mode are arranged on the front side of the upper end of the shell. Compared with the prior art, the inner heat insulation door plate is used for improving the heat insulation effect of the outer shell, the upper connecting base is used for supporting the upper end of the glass body, the lower bearing plate is used for being connected with the lower end of the glass body in a limiting and sealing mode, and the lower bearing plate is used for being connected with the lower end of the glass body in a limiting and sealing mode. The lower connecting base is used for bearing the lower end of the glass body, the solar heat insulation film is used for improving the heat insulation effect of the first tempered glass, the second tempered glass and the third tempered glass, the inner portions of the first hollow cavity and the second hollow cavity are kept sealed through the embedded plate, meanwhile, sound transmission media are blocked, and sound insulation is conducted.
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Description

Technical Field

[0001] The utility model belongs to the technical field of glass doors and relates to a glass door with a heat insulation and sound insulation structure. Background Art

[0002] Glass doors are a common building material, which are popular for their transparent or translucent properties. They are mainly composed of glass and metal frames. They are not only beautiful, but also very practical. At the same time, glass doors have excellent visual transparency, which can increase the sense of openness and spaciousness of the space. Whether in commercial places, office buildings or family homes, glass doors can effectively improve the brightness and comfort of the overall environment. Glass doors are widely used in modern architecture and interior design. Their transparent and beautiful characteristics add a sense of openness and transparency to the space. However, if the glass door does not have the function of heat insulation and sound insulation during use, it may cause a series of problems;

[0003] From the perspective of heat insulation, glass doors without heat insulation function will cause the indoor temperature to rise rapidly in summer, increase the burden on air conditioners and other refrigeration equipment, and thus increase energy consumption. The lack of sound insulation function will have an adverse impact on people's daily life and work. In a noisy environment, glass doors cannot effectively isolate external noise, such as traffic noise, noisy voices, etc., causing the indoor environment to become noisy. This will not only affect people's rest and sleep, but also reduce work efficiency and learning effects. Therefore, a glass door with heat insulation and sound insulation structure is urgently needed to solve the above problems. Summary of the invention

[0004] In view of the deficiencies in the prior art, the utility model aims to provide a glass door with a heat-insulating and sound-insulating structure to solve the problems raised in the above-mentioned background technology.

[0005] The utility model is realized by the following technical scheme: a glass door with a heat-insulating and sound-insulating structure, comprising: an outer shell and an inner heat-insulating door panel, wherein a group of lock holes for installing locks are provided in the middle of the left side of the outer shell;

[0006] The front side of the upper end of the shell is provided with a group of upper bearing plates for limiting and sealing connection with the upper end of the glass body, and the front side of the lower end of the shell is provided with a group of lower bearing plates for limiting and sealing connection with the lower end of the glass body;

[0007] A group of side connecting plates 1 for supporting the left side of the glass body is provided at the inner left end of the shell, a group of side connecting plates 2 for supporting the right side of the glass body is provided at the inner right end of the shell, and a group of inner insulation door panels for improving the heat insulation effect are provided inside the shell. The heat insulation effect of the shell can be improved by using the inner insulation door panels.

[0008] As a preferred embodiment, a group of glass bodies for providing sound insulation effect is provided between the side connecting plate 1 and the side connecting plate 2, and a group of upper connecting seats for supporting the upper ends of the glass bodies are provided at the upper ends, so that the upper ends of the glass bodies can be supported by using the upper connecting seats.

[0009] As a preferred embodiment, the lower end of the glass body is provided with a group of lower connecting seats for supporting its lower end. The lower connecting seats have the same specifications as the upper connecting seats. The outer side of the upper connecting seats is connected and fixed to the inner side of the upper supporting plate, so that the lower end of the glass body can be supported by using the lower connecting seats.

[0010] As a preferred embodiment, the outer side of the lower connecting seat is connected and fixed to the inner side of the lower supporting plate, the front and rear sides of the upper connecting seat are both embedded and connected to a group of inner sides of the upper supporting plates, and the front and rear sides of the lower connecting seat are both embedded and connected to a group of inner sides of the lower supporting plates.

[0011] As a preferred embodiment, the left side cross section of the shell is an I-shaped structure, the cross section of the shell is a U-shaped structure, and the shell is engaged and connected with two groups of upper supporting plates and two groups of lower supporting plates, and fixed by bolts.

[0012] As a preferred embodiment, the glass body includes a tempered glass 1 and an inner panel, and a group of hollow cavities 1 for isolating the sound propagation air between the tempered glass 1 and the tempered glass 2 are provided on the front side of the tempered glass 1;

[0013] A tempered glass 2 is provided on the front side of the hollow cavity 1, a group of hollow cavities 2 for isolating the sound propagating air between the tempered glass 2 and the tempered glass 3 is provided on the front side of the tempered glass 2, a group of tempered glass 3 is provided on the front side of the hollow cavity 2, and a group of solar insulation films for heat insulation are provided on the front and rear surfaces of the tempered glass 1, the tempered glass 2 and the tempered glass 3. The use of solar insulation films can improve the heat insulation effect of the tempered glass 1, the tempered glass 2 and the tempered glass 3.

[0014] As a preferred embodiment, a group of embedded panels for controlling the distance between tempered glass one and tempered glass two are provided on the left and right sides of the interior of hollow cavity one and the left and right sides of the interior of hollow cavity two. The embedded panels are made of a rubber material and are bonded to the surfaces of tempered glass one, tempered glass two and tempered glass three. By using the embedded panels, the interior of hollow cavity one and hollow cavity two can be kept sealed, while blocking the medium for sound propagation and performing sound insulation.

[0015] After adopting the above technical scheme, the beneficial effects of the utility model are: by using the inner heat-insulating door panel to improve the heat-insulating effect of the outer shell, by using the upper connecting seat to support the upper end of the glass body, by using the lower connecting seat to support the lower end of the glass body, by using the solar heat-insulating film to improve the heat-insulating effect of the tempered glass one, the tempered glass two and the tempered glass three, by using the embedded plate to keep the internal sealing of the hollow cavity one and the hollow cavity two, and at the same time block the medium for sound propagation and perform sound insulation. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] In order to more clearly illustrate the embodiments of the utility model or the technical solutions in the prior art, the drawings required for use in the embodiments or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the utility model. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying creative labor.

[0017] Figure 1 This is a schematic diagram of a top view of the right front oblique side of a glass door with a heat insulation and sound insulation structure according to the utility model;

[0018] Figure 2 It is a schematic diagram of the structure of the glass door with heat insulation and sound insulation structure according to the utility model, which is dissected in the middle of the shell and viewed from the left oblique rear side;

[0019] Figure 3 This is a schematic diagram of the upper right side top view of the glass body in a glass door with a heat insulation and sound insulation structure of the utility model;

[0020] Figure 4 This is an enlarged view of point A in a glass door with a heat-insulating and sound-insulating structure according to the utility model;

[0021] In the figure: 100 - shell, 110 - upper bearing plate, 120 - keyhole, 130 - glass body, 140 - upper connecting seat, 150 - side connecting plate 1, 160 - side connecting plate 2, 170 - lower connecting seat, 180 - inner insulation door panel;

[0022] 13a-tempered glass 1, 13b-tempered glass 2, 13c-tempered glass 3, 13d-hollow cavity 1, 13e-hollow cavity 2, 13f-inner embedded panel. DETAILED DESCRIPTION

[0023] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments of the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.

[0024] See also Figure 1-Figure 4 A glass door with a heat-insulating and sound-insulating structure comprises: a shell 100, a glass body 130, a side connecting plate 150 and an inner heat-insulating door panel 180, and a group of lock holes 120 for installing locks are provided in the middle of the left side of the shell 100;

[0025] The upper front side of the housing 100 is provided with a set of upper bearing plates 110 for position-limiting and sealing connection with the upper end of the glass body 130, and the lower front side of the housing 100 is provided with a set of lower bearing plates for position-limiting and sealing connection with the lower end of the glass body 130;

[0026] A group of side connecting plates 150 for supporting the left side of the glass body 130 is provided at the inner left end of the outer shell 100, a group of side connecting plates 160 for supporting the right side of the glass body 130 is provided on the inner side of the right end of the outer shell 100, and a group of inner insulation door panels 180 for improving the insulation effect are provided inside the outer shell 100. The insulation effect of the outer shell 100 can be improved by using the inner insulation door panels 180.

[0027] A group of glass bodies 130 for providing sound insulation effect are arranged between the side connecting plate 150 and the side connecting plate 2 160 . A group of upper connecting seats 140 for supporting the upper ends of the glass bodies 130 are arranged on the upper ends of the glass bodies 130 . The upper ends of the glass bodies 130 can be supported by using the upper connecting seats 140 .

[0028] A group of lower connecting seats 170 for supporting the lower end of the glass body 130 are provided at the lower end. The lower connecting seats 170 have the same specifications as the upper connecting seats 140. The outer side of the upper connecting seat 140 is connected and fixed to the inner side of the upper supporting plate 110. The lower end of the glass body 130 can be supported by using the lower connecting seat 170.

[0029] The outer side of the lower connecting seat 170 is connected and fixed to the inner side of the lower bearing plate, the front and rear sides of the upper connecting seat 140 are both embedded and connected to the inner side of a group of upper bearing plates 110, and the front and rear sides of the lower connecting seat 170 are both embedded and connected to the inner side of a group of lower bearing plates.

[0030] The left side cross section of the shell 100 is an I-shaped structure, and the cross section of the shell 100 is a U-shaped structure. The shell 100 is engaged and connected with two groups of upper bearing plates 110 and two groups of lower bearing plates, and is fixed by bolts.

[0031] The glass body 130 includes a tempered glass 13a, a hollow cavity 13d and an inner panel 13f. The front side of the tempered glass 13a is provided with a set of hollow cavities 13d for isolating the sound propagation air between the tempered glass 13a and the tempered glass 2 13b.

[0032] A tempered glass 2 13b is provided on the front side of the hollow cavity 13d, a group of hollow cavity 2 13e is provided on the front side of the tempered glass 2 13b for isolating the sound propagating air between the tempered glass 2 13b and the tempered glass 3 13c, a group of tempered glass 3 13c is provided on the front side of the hollow cavity 2 13e, and a group of solar insulation films for heat insulation are provided on the front and rear surfaces of the tempered glass 1 13a, the tempered glass 2 13b and the tempered glass 3 13c. The use of solar insulation films can improve the heat insulation effect of the tempered glass 1 13a, the tempered glass 2 13b and the tempered glass 3 13c.

[0033] A group of inner panels 13f for controlling the distance between the tempered glass 1 13a and the tempered glass 2 13b are provided on the left and right sides of the hollow cavity 1 13d and the left and right sides of the hollow cavity 2 13e. The inner panels 13f are made of a rubber material and are bonded to the surfaces of the tempered glass 1 13a, the tempered glass 2 13b and the tempered glass 3 13c. By using the inner panels 13f, the inner sealing of the hollow cavity 1 13d and the hollow cavity 2 13e can be maintained, while the medium for sound propagation is blocked and sound insulation is performed.

[0034] See also Figure 1-Figure 4 As the first embodiment of the utility model: In order to solve the problem that from the perspective of heat insulation, glass doors without heat insulation function will cause the indoor temperature to rise rapidly in summer, increase the burden on refrigeration equipment such as air conditioners, and further increase energy consumption, first, when the external hot air contacts the outside of the utility model, since a group of inner heat insulation door panels 180 for improving the heat insulation effect are provided inside the outer shell 100, the heat of the external air can be blocked by the inner heat insulation door panels 180 inside the outer shell 100, and at the same time, a group of solar insulation films for heat insulation are provided on the front and rear surfaces of the tempered glass 1 13a, the tempered glass 2 13b and the tempered glass 3 13c. When sunlight shines on the glass body 130, the solar insulation film can insulate the heat from the sun, and the three layers of tempered glass can effectively block the entry of heat.

[0035] See also Figure 1-Figure 4, as the second embodiment of the utility model: based on the elaboration in the above embodiment, further, in order to solve the problem that the glass door cannot effectively isolate external noise, such as traffic noise, noisy human voices, etc., which causes the indoor environment to become noisy, which not only affects people's rest and sleep, but also reduces work efficiency and learning effects, since the front side of the tempered glass 1 13a is provided with a group of hollow cavities 13d for isolating the sound propagation air between the tempered glass 1 13a and the tempered glass 2 13b, and the front side of the tempered glass 2 13b is provided with a group of hollow cavities 13e for isolating the sound propagation air between the tempered glass 2 13b and the tempered glass 3 13c, the control cavity 1 and the hollow cavity 2 13e can effectively cut off the propagation medium of external noise and isolate the external noise.

[0036] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the protection scope of the present invention.

Claims

1. A glass door with a heat and sound insulation structure, comprising: An outer shell (100), a glass body (130), a side connecting plate (150), and an inner heat-insulating door panel (180), wherein a group of lock holes (120) for installing a lock are provided in the middle of the left side of the outer shell (100); A group of upper bearing plates (110) for position-limiting and sealing connection with the upper end of the glass body (130) are provided on the front side of the upper end of the housing (100), and a group of lower bearing plates for position-limiting and sealing connection with the lower end of the glass body (130) are provided on the front side of the lower end of the housing (100); The glass body (130) comprises a tempered glass (13a), a hollow cavity (13d) and an inner panel (13f); a group of hollow cavities (13d) for isolating the air from sound transmission between the tempered glass (13a) and the tempered glass (13b) are provided on the front side of the tempered glass (13a); A tempered glass 2 (13b) is provided on the front side of the hollow cavity 1 (13d), a group of hollow cavity 2 (13e) for isolating the sound propagation air between the tempered glass 2 (13b) and the tempered glass 3 (13c) is provided on the front side of the tempered glass 2 (13b), a group of tempered glass 3 (13c) is provided on the front side of the hollow cavity 2 (13e), and a group of solar heat insulation films for heat insulation are provided on the front and rear surfaces of the tempered glass 1 (13a), the tempered glass 2 (13b) and the tempered glass 3 (13c); A group of side connecting plates (150) for supporting the left side of the glass body (130) are provided at the inner left end of the shell (100), a group of side connecting plates (160) for supporting the right side of the glass body (130) are provided at the inner right end of the shell (100), and a group of inner heat-insulating door panels (180) for improving the heat-insulating effect are provided inside the shell (100).

2. The glass door with heat and sound insulation structure according to claim 1, characterized in that: A group of glass bodies (130) for providing sound insulation is provided between the first side connecting plate (150) and the second side connecting plate (160), and a group of upper connecting seats (140) for supporting the upper ends of the glass bodies (130) are provided at the upper ends.

3. The glass door with heat and sound insulation structure according to claim 2, characterized in that: A group of lower connecting seats (170) for supporting the lower end of the glass body (130) is provided at the lower end thereof; the lower connecting seats (170) have the same specifications as the upper connecting seats (140); and the outer side of the upper connecting seats (140) is connected and fixed to the inner side of the upper supporting plate (110).

4. The glass door with heat and sound insulation structure according to claim 3, characterized in that: The outer side of the lower connecting seat (170) is connected and fixed to the inner side of the lower supporting plate, the front and rear sides of the upper connecting seat (140) are both embedded and connected to the inner side of a group of upper supporting plates (110), and the front and rear sides of the lower connecting seat (170) are both embedded and connected to the inner side of a group of lower supporting plates.

5. The glass door with heat and sound insulation structure according to claim 1, characterized in that: The left side cross section of the shell (100) is an I-shaped structure, the cross section of the shell (100) is a U-shaped structure, and the shell (100) is engaged and connected with two groups of upper bearing plates (110) and two groups of lower bearing plates, and is fixed by bolt connection.

6. The glass door with heat and sound insulation structure according to claim 1, characterized in that: A group of inner panels (13f) for controlling the distance between the tempered glass one (13a) and the tempered glass two (13b) are provided on the left and right sides of the hollow cavity one (13d) and the left and right sides of the hollow cavity two (13e); the inner panels (13f) are made of a rubber material and are bonded to the surfaces of the tempered glass one (13a), the tempered glass two (13b) and the tempered glass three (13c).