Double-layer hollow low-radiation tempered glass
By introducing a radiation protection mechanism and a rotating mechanism into double-layered hollow low-emissivity tempered glass, the problem of the inability to adjust the radiation protection performance in existing technologies has been solved, enabling automatic adjustment according to weather conditions and improving the applicability and convenience of the glass.
Patent Information
- Application Number
- CN202423254849.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-28
- Publication Date
- 2026-01-02
- Estimated Expiration
- 2034-12-28
AI Technical Summary
Existing double-glazed tempered glass cannot effectively adjust its radiation protection performance under conditions of sufficient or insufficient sunlight, resulting in excessively strong or dim indoor light and affecting the user experience.
A double-layer hollow low-emissivity tempered glass was designed. By installing an anti-radiation mechanism and a rotating mechanism, the anti-radiation plate is moved closer to or away from the tempered glass body by rotating the second mounting bracket. Combined with the connecting and limiting mechanism, the anti-radiation plate can be easily adjusted.
It achieves automatic adjustment of radiation protection performance according to weather conditions, increases the convenience and applicability of the glass, ensures radiation protection effect under strong sunlight, and does not affect light transmission in rainy weather.
Smart Images

Figure CN223753947U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to the technical field of toughened glass, and particularly relates to a double-layer hollow low-emissivity toughened glass. BACKGROUND
[0002] The double-layer hollow toughened glass is formed by clamping an aluminum alloy spacing strip between two layers of toughened glass, injecting dry gas or gas mixture, and sealing by joints or strips, and has been widely applied in the fields of buildings and homes due to its high strength, impact resistance, sound and heat insulation, and high safety performance.
[0003] When sunlight passes through the double-layer hollow toughened glass to irradiate into the room, ultraviolet rays can cause damage to some indoor items, and therefore, it is necessary to increase the radiation resistance of the double-layer hollow toughened glass. The existing double-layer hollow toughened glass reduces ultraviolet radiation of sunlight by installing a radiation-resistant coating or film. In the face of sunny weather, the existing double-layer hollow toughened glass is very suitable, but when it encounters rainy weather or insufficient sunlight, the existing double-layer hollow toughened glass makes the room very dark. In view of the above problems, a new double-layer hollow low-emissivity toughened glass is proposed. SUMMARY
[0004] This section aims to outline some aspects of the embodiments of the utility model and briefly introduce some preferred embodiments. Some simplifications or omissions may be made in this section and the abstract of the specification and the utility model name to avoid obscuring the purpose of this section, the abstract of the specification and the utility model name, and such simplifications or omissions cannot be used to limit the scope of the utility model.
[0005] To solve the above problems, the utility model adopts the following technical scheme.
[0006] A double-layer hollow low-emissivity toughened glass comprises a first mounting frame, a spacing frame and a toughened glass body, the spacing frame is fixedly installed on the inner wall of the first mounting frame, the toughened glass body is symmetrically fixedly installed on the spacing frame, a radiation-proof mechanism is installed on the first mounting frame, the radiation-proof mechanism comprises a second mounting frame and a radiation-proof plate, the second mounting frame is installed on the first mounting frame, and the radiation-proof plate is fixedly installed on the inner wall of the second mounting frame.
[0007] As a preferred technical scheme of the double-layer hollow low-emissivity toughened glass of the utility model, a rotating mechanism for rotation is fixedly installed on one side of the second mounting frame, the rotating mechanism comprises a rotating installation shell, a rotating block and a rotating seat, the rotating installation shell is fixedly installed on the first mounting frame, the rotating block is symmetrically and slidably installed on the inner wall of the rotating installation shell, the rotating seat is symmetrically and fixedly installed on one side of the second mounting frame, and the rotating block is rotationally connected with the rotating seat.
[0008] As a double hollow low-emissivity tempered glass preferred technical scheme of the utility model, the rotating mechanism further comprises a first spring and a pressing block, the rotating block is fixedly installed with the first spring on the side close to the rotating installation shell, and the other side of the first spring is fixedly connected with the rotating installation shell; the rotating block is fixedly installed with the pressing block, and the pressing block is slidingly connected with the rotating installation shell.
[0009] As a double hollow low-emissivity tempered glass preferred technical scheme of the utility model, the other side of the second installation frame is fixedly installed with a connecting mechanism for fixation, the connecting mechanism comprises a connecting installation shell, a connecting seat, a movable block and a second spring, the other side of the second installation frame is fixedly installed with the connecting installation shell, the connecting installation shell is provided below with the connecting seat fixedly installed with the first installation frame, the connecting installation shell is slidingly connected with the movable block on the inner wall, and the movable block is slidingly connected with the connecting seat; the second spring is symmetrically fixedly installed on the movable block, and the other side of the second spring is fixedly connected with the connecting installation shell.
[0010] As a double hollow low-emissivity tempered glass preferred technical scheme of the utility model, the connecting mechanism further comprises an extrusion installation shell, an extrusion block and a lead screw, the extrusion installation shell is provided above the connecting installation shell with the extrusion installation shell fixedly installed with the first installation frame, the extrusion installation shell is slidingly installed with the extrusion block on the inner wall, and the extrusion block is slidingly connected with the connecting installation shell; the lead screw is rotatably installed on the upper surface of the extrusion installation shell, and the lead screw is engagedly connected with the extrusion block.
[0011] As a double hollow low-emissivity tempered glass preferred technical scheme of the utility model, the first installation frame is symmetrically installed with a limiting mechanism for limiting, the limiting mechanism comprises a limiting groove and a rotating limiting block, the first installation frame is symmetrically provided with the limiting groove, and the rotating limiting block is rotatably installed on the inner wall of the limiting groove; an arc groove is formed in the side surface of the rotating limiting block, and the second installation frame passes through the arc groove of the rotating limiting block.
[0012] As a double hollow low-emissivity tempered glass preferred technical scheme of the utility model, the limiting mechanism further comprises a first baffle and a second baffle, the first baffle is fixedly installed on the inner wall of the limiting groove, the second baffle is fixedly installed on the inner wall of the arc groove of the rotating limiting block, and the first baffle and the second baffle are in contact with each other.
[0013] Compared with the prior art, the utility model has the advantages of:
[0014] In the utility model, the anti-radiation mechanism and the rotating mechanism are installed, the second installation frame is rotated, the anti-radiation plate is driven to approach the tempered glass body, the rotating block rotates in the rotating seat, the strong sunlight can be prevented from radiating, when it is rainy, the second installation frame is reversely rotated, the second installation frame is perpendicular to the first installation frame, the anti-radiation plate is away from the tempered glass body, whether the double hollow tempered glass needs to be prevented from radiating can be controlled, and the convenience of the double hollow tempered glass is improved.
[0015] The utility model discloses a connecting mechanism and limiting mechanism, when the anti -radiation board is close to toughened glass main part, movable block is extruded into the inside connecting seat by extruding block, and the first mounting frame and second mounting frame are connected firmly, when not needing the anti -radiation treatment, second mounting frame and first mounting frame are in perpendicular state, and the side of second mounting frame enters the inside rotating limiting block arc groove, and is positioned. BRIEF DESCRIPTION OF DRAWINGS
[0016] Figure 1 The utility model provides whole structure schematic diagram for the utility model provides double -deck hollow toughened glass structure schematic diagram for the utility model provides rotating mechanism position schematic diagram for the utility model provides rotating mechanism structure schematic diagram for the utility model provides connecting mechanism position schematic diagram for the utility model provides connecting mechanism structure schematic diagram for the utility model provides limiting mechanism position schematic diagram for the utility model provides limiting mechanism structure schematic diagram.
[0017] Figure 2 The utility model provides whole structure schematic diagram for the utility model provides double -deck hollow toughened glass structure schematic diagram for the utility model provides rotating mechanism position schematic diagram for the utility model provides rotating mechanism structure schematic diagram for the utility model provides connecting mechanism position schematic diagram for the utility model provides connecting mechanism structure schematic diagram for the utility model provides limiting mechanism position schematic diagram for the utility model provides limiting mechanism structure schematic diagram.
[0018] Figure 3 The utility model provides whole structure schematic diagram for the utility model provides double -deck hollow toughened glass structure schematic diagram for the utility model provides rotating mechanism position schematic diagram for the utility model provides rotating mechanism structure schematic diagram for the utility model provides connecting mechanism position schematic diagram for the utility model provides connecting mechanism structure schematic diagram for the utility model provides limiting mechanism position schematic diagram for the utility model provides limiting mechanism structure schematic diagram.
[0019] Figure 4 The utility model provides whole structure schematic diagram for the utility model provides double -deck hollow toughened glass structure schematic diagram for the utility model provides rotating mechanism position schematic diagram for the utility model provides rotating mechanism structure schematic diagram for the utility model provides connecting mechanism position schematic diagram for the utility model provides connecting mechanism structure schematic diagram for the utility model provides limiting mechanism position schematic diagram for the utility model provides limiting mechanism structure schematic diagram.
[0020] Figure 5 The utility model provides whole structure schematic diagram for the utility model provides double -deck hollow toughened glass structure schematic diagram for the utility model provides rotating mechanism position schematic diagram for the utility model provides rotating mechanism structure schematic diagram for the utility model provides connecting mechanism position schematic diagram for the utility model provides connecting mechanism structure schematic diagram for the utility model provides limiting mechanism position schematic diagram for the utility model provides limiting mechanism structure schematic diagram.
[0021] Figure 6 The utility model provides whole structure schematic diagram for the utility model provides double -deck hollow toughened glass structure schematic diagram for the utility model provides rotating mechanism position schematic diagram for the utility model provides rotating mechanism structure schematic diagram for the utility model provides connecting mechanism position schematic diagram for the utility model provides connecting mechanism structure schematic diagram for the utility model provides limiting mechanism position schematic diagram for the utility model provides limiting mechanism structure schematic diagram.
[0022] Figure 7 The utility model provides whole structure schematic diagram for the utility model provides double -deck hollow toughened glass structure schematic diagram for the utility model provides rotating mechanism position schematic diagram for the utility model provides rotating mechanism structure schematic diagram for the utility model provides connecting mechanism position schematic diagram for the utility model provides connecting mechanism structure schematic diagram for the utility model provides limiting mechanism position schematic diagram for the utility model provides limiting mechanism structure schematic diagram.
[0023] Figure 8 The utility model provides whole structure schematic diagram for the utility model provides double -deck hollow toughened glass structure schematic diagram for the utility model provides rotating mechanism position schematic diagram for the utility model provides rotating mechanism structure schematic diagram for the utility model provides connecting mechanism position schematic diagram for the utility model provides connecting mechanism structure schematic diagram for the utility model provides limiting mechanism position schematic diagram for the utility model provides limiting mechanism structure schematic diagram.
[0024] The correspondence between the annotations of the various drawings and the component names in the drawings is as follows:
[0025] 1, first mounting frame, 2, spacer frame, 3, toughened glass main body, 4, second mounting frame, 5, anti -radiation board, 6, rotating mechanism, 61, rotating installation shell, 62, rotating block, 63, rotating seat, 64, first spring, 65, pressing block, 7, connecting mechanism, 71, connecting installation shell, 72, connecting seat, 73, movable block, 74, second spring, 75, extrusion installation shell, 76, extrusion block, 77, screw rod, 8, limiting mechanism, 81, limiting groove, 82, rotating limiting block, 83, first baffle, 84, second baffle. DETAILED DESCRIPTION
[0026] In order to make the above-mentioned purpose, features and advantages of the utility model more obvious and easy to understand, the specific embodiments of the utility model are described in detail below with reference to the drawings.
[0027] Many specific details are set forth in the following description in order to provide a thorough understanding of the present application. However, the present application can be practiced according to other embodiments that can not be described in detail herein, and the skilled in the art will appreciate that the present application can be practiced in a variety of ways, all of which are intended to be encompassed by the present application. Therefore, the present application is not limited to the specific embodiments disclosed in the following description.
[0028] Secondly, the "one embodiment" or "embodiment" referred to herein means that the specific features, structures or characteristics can be included in at least one implementation of the present application. "In one embodiment" appearing in different places in the specification does not mean the same embodiment, nor is it an embodiment that is independent or alternative to other embodiments. The present application provides the following embodiments.
[0029] As Figure 1 and Figure 2 , which is a schematic diagram of the double-layer hollow low-emissivity tempered glass structure in the present embodiment. The double-layer hollow low-emissivity tempered glass in the present embodiment comprises a first mounting frame 1, a spacer frame 2 and a tempered glass body 3. The spacer frame 2 is fixedly installed on the inner wall of the first mounting frame 1, and the tempered glass body 3 is symmetrically fixedly installed on the spacer frame 2. The first mounting frame 1 is provided with an anti-radiation mechanism, which comprises a second mounting frame 4 and an anti-radiation plate 5. The second mounting frame 4 is installed on the first mounting frame 1, and the anti-radiation plate 5 is fixedly installed on the inner wall of the second mounting frame 4.
[0030] In the present embodiment, the two tempered glass bodies 3 and the spacer frame 2 are firmly bonded, and the cavity formed by the spacer frame 2 and the tempered glass body 3 is filled with argon. Then, the bonded spacer frame 2 and tempered glass body 3 are firmly connected with the first mounting frame 1 to form a complete double-layer hollow tempered glass. The anti-radiation mechanism composed of the second mounting frame 4 and the anti-radiation plate 5 is installed in the direction facing the indoor. When the sunlight is too strong, the second mounting frame 4 is rotated, and the anti-radiation plate 5 is close to the tempered glass body 3 to perform anti-radiation treatment on the sunlight irradiating into the room. When it is rainy, the anti-radiation plate 5 is rotated in the opposite direction, the second mounting frame 4 is away from the tempered glass body 3 and is in a perpendicular state with the tempered glass body 3, and the anti-radiation treatment is no longer performed, thereby increasing the convenience of the double-layer hollow tempered glass.
[0031] As Figure 3 and Figure 4 shown, the second mounting frame 4 is fixedly provided with a rotating mechanism 6 for rotation on one side. The rotating mechanism 6 comprises a rotating installation shell 61, a rotating block 62 and a rotating seat 63. The rotating installation shell 61 is fixedly installed on the first mounting frame 1. The rotating block 62 is symmetrically and slidably installed on the inner wall of the rotating installation shell 61. The rotating seat 63 is symmetrically and fixedly installed on one side of the second mounting frame 4. The rotating block 62 is rotatably connected with the rotating seat 63.
[0032] In the embodiment, the rotating block 62 moves out of the rotating installation shell 61, and the rotating block 62 enters the rotating seat 63 and is rotatably connected with the rotating seat 63, so as to rotatably connect the first mounting frame 1 with the second mounting frame 4, and the second mounting frame 4 is rotated to facilitate the approach or the away of the radiation-proof plate 5 to the tempered glass main body 3.
[0033] As shown in Figure 4 , the rotating mechanism 6 further comprises a first spring 64 and a pressing block 65, the rotating block 62 is fixedly installed with the first spring 64 on one side close to the rotating installation shell 61, and the other side of the first spring 64 is fixedly connected with the rotating installation shell 61, and the rotating block 62 is fixedly installed with the pressing block 65, and the pressing block 65 is slidably connected with the rotating installation shell 61.
[0034] In the embodiment, when the second mounting frame 4 or the radiation-proof plate 5 needs to be replaced and maintained, the pressing block 65 is pressed, the rotating block 62 moves out of the rotating seat 63 and enters the rotating installation shell 61, the first spring 64 is extruded and shrinks, the rotating block 62 is separated from the rotating seat 63, the second mounting frame 4 is separated from the first mounting frame 1, the second mounting frame 4 or the radiation-proof plate 5 is replaced and maintained, the first spring 64 is reset and opened when the second mounting frame 4 needs to be installed, the rotating block 62 moves out of the rotating installation shell 61 and enters the rotating seat 63, and the second mounting frame 4 is conveniently removed and replaced.
[0035] As shown in Figure 5 and Figure 6 , the other side of the second mounting frame 4 is fixedly installed with a connecting mechanism 7 for fixing, the connecting mechanism 7 comprises a connecting installation shell 71, a connecting seat 72, a movable block 73 and a second spring 74, the other side of the second mounting frame 4 is fixedly installed with the connecting installation shell 71, the connecting installation shell 71 is provided below the connecting seat 72 fixedly installed with the first mounting frame 1, the movable block 73 is slidably connected with the inner wall of the connecting installation shell 71 and slidably penetrates the connecting seat 72, the second spring 74 is symmetrically fixedly installed on the movable block 73 and the other side of the second spring 74 is fixedly connected with the connecting installation shell 71.
[0036] In the embodiment, when the sunlight is strong, the radiation-proof plate 5 approaches the tempered glass main body 3, the connecting installation shell 71 approaches the connecting seat 72, the movable block 73 moves downward and enters the connecting seat 72, the second spring 74 shrinks, the connecting installation shell 71 and the connecting seat 72 are connected, and the second mounting frame 4 is firmly connected with the first mounting frame 1 when the radiation-proof plate 5 is radiated.
[0037] As shown in Figure 6As shown, the connecting mechanism 7 further comprises an extrusion mounting shell 75, an extrusion block 76 and a screw rod 77. The extrusion mounting shell 75 is fixedly installed above the connecting mounting shell 71 and is fixedly installed with the first mounting rack 1. The extrusion block 76 is slidably installed on the inner wall of the extrusion mounting shell 75 and is slidably connected with the connecting mounting shell 71. The screw rod 77 is rotatably installed on the upper surface of the extrusion mounting shell 75 and is engaged with the extrusion block 76.
[0038] In the embodiment, the screw rod 77 is rotated to control the downward movement of the extrusion block 76. The extrusion block 76 moves out of the extrusion mounting shell 75 and enters the inside of the connecting mounting shell 71. The extrusion block 76 extrudes the movable block 73 to move downward, and the movable block 73 is sent into the inside of the connecting seat 72. The screw rod 77 is reversely rotated to retract the extrusion block 76 into the inside of the extrusion mounting shell 75. The second spring 74 is reset to be opened. The movable block 73 is retracted into the inside of the connecting mounting shell 71, so that the connecting mounting shell 71 and the connecting seat 72 are separated, and the first mounting rack 1 and the second mounting rack 4 are switched from the connected state to the separated state.
[0039] As shown in Figure 7 and Figure 8 , the first mounting rack 1 is symmetrically provided with a limiting mechanism 8 for limiting. The limiting mechanism 8 comprises a limiting groove 81 and a rotating limiting block 82. The limiting groove 81 is symmetrically formed on the first mounting rack 1. The rotating limiting block 82 is rotatably installed on the inner wall of the limiting groove 81. The side surface of the rotating limiting block 82 is provided with an arc groove. The second mounting rack 4 passes through the arc groove of the rotating limiting block 82.
[0040] In the embodiment, when the second mounting rack 4 is in the vertical state with the first mounting rack 1, the rotating limiting block 82 on the inner wall of the limiting groove 81 is rotated. The side surface of the second mounting rack 4 enters the inside of the arc groove of the rotating limiting block 82 to limit the second mounting rack 4, so that the second mounting rack 4 is prevented from being randomly rotated. It is ensured that the second mounting rack 4 and the first mounting rack 1 are always in the vertical state in rainy weather.
[0041] As shown in Figure 8 , the limiting mechanism 8 further comprises a first baffle 83 and a second baffle 84. The first baffle 83 is fixedly installed on the inner wall of the limiting groove 81. The second baffle 84 is fixedly installed on the inner wall of the arc groove of the rotating limiting block 82. The first baffle 83 and the second baffle 84 are in contact with each other.
[0042] In the embodiment, when the rotating limiting block 82 rotates on the inner wall of the limiting groove 81, the first baffle 83 and the second baffle 84 are in contact to limit the second mounting rack 4. When the second mounting rack 4 is connected with the first mounting rack 1, the rotating limiting block 82 is reversely rotated to retract into the inside of the limiting groove 81. The first baffle 83 and the second baffle 84 are no longer in contact, and the second mounting rack 4 is no longer limited.
[0043] The above is further detailed description of the utility model in combination with specific embodiments, and cannot be determined that the utility model specific implementation is limited to these descriptions. For ordinary skilled in the art to which the utility model belongs, without departing from the concept of the utility model, a number of simple deductions or substitutions can be made, and all should be regarded as belonging to the protection scope determined by the claims submitted by the utility model.
Claims
1. A double-layer hollow low-emissivity tempered glass, comprising a first mounting frame (1), a spacer frame (2), and a tempered glass body (3), wherein the spacer frame (2) is fixedly mounted on the inner wall of the first mounting frame (1), and the tempered glass body (3) is symmetrically fixedly mounted on the spacer frame (2), characterized in that: The first mounting frame (1) is provided with a radiation-proof mechanism, which comprises a second mounting frame (4) and a radiation-proof plate (5), the second mounting frame (4) is fixedly installed on the first mounting frame (1), and the radiation-proof plate (5) is fixedly installed on the inner wall of the second mounting frame (4); a rotating mechanism (6) for rotation is fixedly installed on one side of the second mounting frame (4), the rotating mechanism (6) comprises a rotating installation shell (61), a rotating block (62) and a rotating seat (63), the rotating installation shell (61) is fixedly installed on the first mounting frame (1), the rotating block (62) is symmetrically and slidably installed on the inner wall of the rotating installation shell (61), and the rotating seat (63) is symmetrically and fixedly installed on one side of the second mounting frame (4); and the rotating block (62) is rotatably connected with the rotating seat (63).
2. The double-layered hollow low-e tempered glass according to claim 1, characterized in that, The rotating mechanism (6) further comprises a first spring (64) and a pressing block (65), one side of the rotating block (62) close to the rotating installation shell (61) is fixedly installed with the first spring (64), the other side of the first spring (64) is fixedly connected with the rotating installation shell (61), and the pressing block (65) is fixedly installed on the rotating block (62) and slidably connected with the rotating installation shell (61).
3. The double-layered hollow low-e tempered glass according to claim 1, characterized in that, The other side of the second mounting frame (4) is fixedly installed with a connecting mechanism (7) for fixation, the connecting mechanism (7) comprises a connecting installation shell (71), a connecting seat (72), a movable block (73) and a second spring (74), the connecting installation shell (71) is fixedly installed on the other side of the second mounting frame (4), the connecting seat (72) is fixedly installed on the first mounting frame (1) and located below the connecting installation shell (71), the movable block (73) is slidably connected with the inner wall of the connecting installation shell (71) and slidably penetrates the connecting seat (72), and the second spring (74) is symmetrically and fixedly installed on the movable block (73) and fixedly connected with the connecting installation shell (71) at the other side.
4. The double-layered hollow low-e tempered glass according to claim 3, characterized in that, The connecting mechanism (7) further comprises an extrusion installation shell (75), an extrusion block (76) and a lead screw (77), the extrusion installation shell (75) is fixedly installed on the first mounting frame (1) and located above the connecting installation shell (71), the extrusion block (76) is slidably installed on the inner wall of the extrusion installation shell (75) and slidably penetrates the connecting installation shell (71), and the lead screw (77) is rotatably installed on the upper surface of the extrusion installation shell (75) and meshedly connected with the extrusion block (76).
5. The double-layered hollow low-e tempered glass according to claim 1, characterized in that, Symmetrical limiting mechanisms (8) for limiting are installed on the first mounting frame (1), the limiting mechanism (8) comprises a limiting groove (81) and a rotating limiting block (82), the limiting groove (81) is symmetrically formed on the first mounting frame (1), and the rotating limiting block (82) is rotatably installed on the inner wall of the limiting groove (81); and an arc groove is formed in the side surface of the rotating limiting block (82), and the second mounting frame (4) penetrates the arc groove of the rotating limiting block (82).
6. The double-layered hollow low-e tempered glass according to claim 5, characterized in that, The limiting mechanism (8) further comprises a first baffle (83) and a second baffle (84), the first baffle (83) is fixedly installed on the inner wall of the limiting groove (81), the second baffle (84) is fixedly installed on the inner wall of the arc groove of the rotating limiting block (82), and the first baffle (83) and the second baffle (84) are in contact with each other.