Z-shaped closely-spliced glass brick partition system

Through the Z-shaped close-fitting glass brick partition system, the combined structure of reflective cross-grooved plates and columns is used to achieve the movable snap-fitting and splicing of glass bricks, which solves the problems of glass bricks easily slipping and gaps coming apart, and achieves the beauty of seamless connection and structural safety.

CN223317370UActive Publication Date: 2025-09-09SHENZHEN GRANDLAND DECORATION GROUP
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Patent Information

Application Number
CN202421694341.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-17
Publication Date
2025-09-09
Estimated Expiration
2034-07-17

AI Technical Summary

Technical Problem

The existing glass brick partition system is prone to slipping during construction, and the gaps are prone to debonding and falling off, which affects the aesthetics and structural stability, and poses a risk of space pollution.

Method used

A Z-shaped close-fitting glass brick partition system is used, and the movable snap-fitting and splicing of glass bricks is achieved through the combined structure of reflective cross-grooved plates and columns. The frosted layer is used to increase friction, avoiding the use of cement or structural adhesive, and the reflective structure is used to enhance light transmittance.

Benefits of technology

It achieves seamless connection between glass bricks, improves aesthetics and transparency, enhances structural safety, and prevents space pollution. It can be put into use immediately after construction is completed.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of decoration, and particularly relates to a Z-shaped closely-spliced glass brick partition system which comprises a base and a Z-shaped glass brick, frosted layers are integrally cast on the two sides of the glass brick, the base is rotationally connected with a first light-reflecting cross-shaped groove plate through rotating shafts at the two ends, and the first light-reflecting cross-shaped groove plate is connected with a second light-reflecting cross-shaped groove plate through rotating shafts at the two ends. A first reflective cross-shaped column is connected to the middle of the first reflective cross-shaped groove plate in a telescopic and sliding mode, a plurality of second reflective cross-shaped groove plates are connected to the middle of the base in a sliding mode, and second reflective cross-shaped columns are connected to the middles of the second reflective cross-shaped groove plates in a telescopic and sliding mode. The glass bricks are closely spliced, the appearance effect is not provided with reserved gaps in the transverse and vertical directions, cement or structural adhesive is not adopted for fixing, the integral effect and the impression are better, the attractiveness and the permeability are improved, the stability of conventional cement or structural adhesive under the failure condition is avoided, the structural safety is improved, and space pollution is prevented; and after construction is completed, the system can be immediately delivered for use.
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Description

Technical Field

[0001] The utility model belongs to the technical field of decoration and renovation, and particularly relates to a Z-shaped densely assembled glass brick partition system. Background Art

[0002] Glass bricks are a relatively new decorative material, and their unique transparency has made them increasingly popular. They effectively divide spaces, maintain transparency and daylighting, and create a spacious and brighter appearance. They also effectively utilize natural light, achieving energy conservation and environmental protection. Furthermore, glass brick partitions offer soundproofing, heat insulation, and moisture resistance, making them ideal for modern home furnishings.

[0003] Existing glass bricks, as glass products, have smooth surfaces that struggle to maintain friction and are prone to slippage and shattering. During structural design and construction, gaps of approximately 1 cm form between the glass bricks, often connected using white cement grout or structural adhesive. Over time, these gaps can delaminate and fall off due to environmental influences, leaving the visual quality unsatisfactory and potentially polluting the space. Utility Model Content

[0004] The purpose of the utility model is to provide a Z-shaped close-fitting glass brick partition system. The glass bricks are closely fitted together, and the appearance has no reserved gaps in the horizontal and vertical directions. Cement or structural adhesive is not used for fixing, and the overall effect and appearance are better, the aesthetics and permeability are improved, and the stability of conventional cement or structural adhesive in the event of failure is avoided, the structural safety is improved, and space pollution is prevented. After the construction is completed, it can be put into use immediately.

[0005] The technical solutions adopted by this utility model are as follows:

[0006] A Z-shaped close-fitting glass brick partition system includes a base and glass bricks, wherein the glass bricks are arranged in a Z shape, and a frosted layer is integrally cast on both sides of the glass bricks. The base is rotatably connected to a reflective cross groove plate 1 through rotating shafts at both ends, and the middle part of the reflective cross groove plate 1 is telescopically and slidably connected to a reflective cross column 1. The middle part of the base is slidably connected to several reflective cross groove plates 2, and the middle part of the reflective cross groove plates 2 is telescopically and slidably connected to reflective cross columns 2. The glass bricks are arranged to be movably engaged and spliced, and the reflective cross groove plates 2 and the reflective cross columns 2 are vertically passed through two of the glass bricks. The glass bricks are movably stacked on the top of the base and located between the two reflective cross groove plates 1.

[0007] The top of the first reflective cross column is fixedly connected with a convex plate, and the top of the first reflective cross column, which is located above a plurality of the second reflective cross columns, is movably connected with a pressing plate.

[0008] Grooves for engaging with the convex plates are formed through both ends of the pressing plate.

[0009] Both sides of the first reflective cross column and the first reflective cross slot plate are movably engaged with sleeve plates.

[0010] The sleeve plate is detachably connected to the pressing plate via a fixing piece.

[0011] The bottom inner wall of the sleeve plate is symmetrically provided with embedding grooves for embedding the rotating shaft.

[0012] The technical effects achieved by the utility model are as follows: the glass bricks are closely joined together, the appearance effect has no reserved gaps in the horizontal and vertical directions, and no cement or structural adhesive is used for fixing, the overall effect and appearance are better, the aesthetics and permeability are improved, the stability of conventional cement or structural adhesive in the event of failure is avoided, the structural safety is improved, and space pollution is prevented. After the construction is completed, it can be delivered for use immediately. BRIEF DESCRIPTION OF THE DRAWINGS

[0013] Figure 1 This is an overall appearance diagram of the Z-shaped close-fitting glass brick partition system provided in an embodiment of the present utility model;

[0014] Figure 2 This is a structural breakdown diagram of the Z-shaped close-fitting glass brick partition system provided in an embodiment of the present utility model;

[0015] Figure 3 yes Figure 2 A partial enlarged view of point A in the middle;

[0016] Figure 4 yes Figure 2 A partial enlarged view of point B in the middle;

[0017] Figure 5 This is a structural diagram of the glass brick provided in the embodiment of the present utility model.

[0018] In the accompanying drawings, the components represented by the reference numerals are as follows:

[0019] 1. Base; 101. Rotating shaft; 102. Reflective cross slot plate 1; 103. Sleeve plate; 104. Embossed groove; 105. Reflective cross column 1; 106. Protruding plate; 107. Pressing plate; 108. Groove; 109. Fixing piece; 110. Reflective cross slot plate 2; 111. Reflective cross column 2; 2. Glass brick; 201. Frosted layer. DETAILED DESCRIPTION

[0020] In order to make the purpose and advantages of the present invention more clearly understood, the present invention is described in detail below with reference to the following embodiments. It should be understood that the following text is only used to describe one or several specific embodiments of the present invention and does not strictly limit the scope of protection of the present invention.

[0021] like Figure 1-5 As shown, a Z-shaped close-fitting glass brick partition system includes a base 1 and glass bricks 2. The glass bricks 2 are arranged in a Z shape. Both sides of the glass bricks 2 are integrally cast with a frosted layer 201. The base 1 is rotatably connected to a reflective cross groove plate 102 through a rotating shaft 101 at both ends. The middle part of the reflective cross groove plate 102 is telescopically slidably connected to a reflective cross column 105. The top of the reflective cross column 105 is fixedly connected to a convex plate 106. The middle part of the base 1 is slidably connected to a plurality of reflective cross groove plates 110. The middle part of the reflective cross groove plate 110 is telescopically slidably connected to a reflective cross column 111. The glass bricks 2 are arranged to be several movably engaged and spliced. 110. The reflective cross column 111 vertically passes through the two glass bricks 2. The glass bricks 2 are movably stacked on the top of the base 1 and located between the two reflective cross groove plates 102. The top of the reflective cross column 105 and located above the several reflective cross columns 111 are movably engaged with a pressure plate 107. The two ends of the pressure plate 107 are penetrated by grooves 108 for engaging with the convex plate 106. The two sides of the reflective cross column 105 and the reflective cross groove plate 102 are movably engaged with a sleeve plate 103. The sleeve plate 103 is detachably connected to the pressure plate 107 through a fixing piece 109. The bottom inner wall of the sleeve plate 103 is symmetrically provided with an embedding groove 104 for the rotating shaft 101 to be embedded.

[0022] According to the above structure, a reflective cross groove plate 102 and a reflective cross column 105 are rotated and erected, and the glass bricks 2 are stacked vertically on the top of the base 1 so that they fit with the reflective cross groove plate 102 and the reflective cross column 105. The reflective cross groove plate 2 110 and the reflective cross column 105 are slid to engage with one end of the stacked glass brick 2, and the remaining glass bricks 2 are stacked in an alternating manner. When the Z-shaped protrusions at both ends of the two glass bricks 2 are staggered and fitted, the glass bricks 2 are stacked vertically. A gap will be left in the middle for the reflective cross slot plate 110 and the reflective cross column 111 to pass through. The glass brick 2 is fixed by the Z-shaped protrusions at both ends of the glass brick 2 and the reflective cross slot plate 110 and the reflective cross column 111. The frosted layers 201 on the upper and lower sides of the glass brick 2 can increase the friction. After all the glass bricks 2 are stacked in the above steps, another reflective cross slot plate 102 and reflective cross column 105 are rotated and erected, and the pressing plate 107 is placed on the glass brick. 106, and the sliding sleeve 103 wraps the two ends of the pressure plate 107, the reflective cross column 105, and the reflective cross groove plate 102, and is further fixed by the fixing piece 109 to prevent the reflective cross groove plate 102, the reflective cross column 105, the pressure plate 107, etc. from moving and dislocating. The reflective cross groove plate 102, the reflective cross column 105, the reflective cross groove plate 2 110, and the reflective cross column 2 111 reflect the light when the light enters the glass brick 2, thereby enhancing the light transmittance of the glass brick 2. The glass bricks 2 of the utility model are closely spliced ​​with each other, and there is no reserved gap in the horizontal and vertical directions in the appearance. No cement or structural adhesive is used for fixing. The overall effect and appearance are better, the aesthetics and permeability are improved, and the stability of conventional cement or structural adhesive in the event of failure is avoided, the structural safety is improved, and space pollution is prevented. It can be delivered for use immediately after construction is completed.

[0023] The working principle of the present invention is as follows: a reflective cross slot plate 102 and a reflective cross column 105 are rotated and erected, the glass bricks 2 are stacked vertically on the top of the base 1 so that they fit with the reflective cross slot plate 102 and the reflective cross column 105, the reflective cross slot plate 2 110 and the reflective cross column 105 are slid and engaged with one end of the stacked glass brick 2, and the remaining glass bricks 2 are stacked in a staggered manner. When the Z-shaped protrusions at both ends of the two glass bricks 2 are staggered and engaged, a gap is left in the middle for the reflective cross slot plate 2 110 and the reflective cross column 2 111 to pass through. The glass brick 2 is fixed by the engagement of the Z-shaped protrusions at both ends with the reflective cross slot plate 2 110 and the reflective cross column 2 111, and the frosted layers 201 on the upper and lower sides of the glass brick 2 can be fixed. To increase friction, after all glass bricks 2 are stacked according to the above steps, another reflective cross groove plate 102 and reflective cross column 105 are rotated and erected, and the pressure plate 107 is covered on the top of the glass brick 2 to prevent the glass brick 2 from moving up and down. The groove 108 is engaged with the convex plate 106, and the sliding sleeve 103 wraps the two ends of the pressure plate 107, the reflective cross column 105, and the reflective cross groove plate 102, and is further fixed by the fixing part 109 to prevent the reflective cross groove plate 102, the reflective cross column 105, the pressure plate 107, etc. from moving and dislocating. The reflective cross groove plate 102, the reflective cross column 105, the reflective cross groove plate 2 110, and the reflective cross column 2 111 reflect the light when the light enters the glass brick 2, thereby enhancing the light transmittance of the glass brick 2.

[0024] The above description is merely a preferred embodiment of the present invention. It should be noted that those skilled in the art may make various improvements and modifications without departing from the principles of the present invention, and such improvements and modifications should be considered within the scope of protection of the present invention. Structures, devices, and operating methods not specifically described or explained in this invention shall, unless otherwise specified or limited, be implemented in accordance with conventional means in the art.

Claims

1. A Z-shaped close-fitting glass brick partition system, comprising a base (1) and glass bricks (2), characterized in that: The glass brick (2) is arranged in a Z shape, and both sides of the glass brick (2) are integrally cast with a frosted layer (201), the base (1) is rotatably connected to a reflective cross groove plate (102) through a rotating shaft (101) at both ends, the middle of the reflective cross groove plate (102) is telescopically slidably connected to a reflective cross column (105), the middle of the base (1) is slidably connected to a plurality of reflective cross groove plates (110), the middle of the reflective cross groove plates (110) is telescopically slidably connected to a reflective cross column (111), the glass brick (2) is arranged as a plurality of movably engaged and spliced ​​pieces, the reflective cross groove plates (110) and the reflective cross column (111) are vertically passed through two of the glass bricks (2), and the glass bricks (2) are movably stacked on the top of the base (1) and located between the two reflective cross groove plates (102).

2. The Z-shaped close-fitting glass brick partition system according to claim 1, characterized in that: The top of the reflective cross column (105) is fixedly connected to a convex plate (106), and the top of the reflective cross column (105) is movably connected to a pressure plate (107) located above a plurality of the reflective cross columns (111).

3. The Z-shaped close-fitting glass brick partition system according to claim 2, characterized in that: Grooves (108) for engaging with the convex plate (106) are provided through both ends of the pressing plate (107).

4. The Z-shaped close-fitting glass brick partition system according to claim 1, characterized in that: The two sides of the reflective cross column (105) and the reflective cross slot plate (102) are movably engaged with a sleeve plate (103).

5. The Z-shaped close-fitting glass brick partition system according to claim 4, characterized in that: The sleeve plate (103) is detachably connected to the pressing plate (107) via a fixing member (109).

6. The Z-shaped close-fitting glass brick partition system according to claim 4, characterized in that: The bottom inner wall of the sleeve plate (103) is symmetrically provided with an embedding groove (104) for embedding the rotating shaft (101).