Modular ceramic tile curtain wall

By designing a stabilizing and fixing mechanism, the safety and stability issues of terracotta brick curtain walls during construction and high-rise transportation were resolved, achieving efficient and environmentally friendly construction and installation, and improving the overall quality of the building facade.

CN224591622UActive Publication Date: 2026-08-04SHANGHAI GAOXIN ENERGY-SAVING TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHANGHAI GAOXIN ENERGY-SAVING TECH CO LTD
Filing Date
2025-08-06
Publication Date
2026-08-04

AI Technical Summary

Technical Problem

Existing ceramic brick curtain walls pose safety hazards, cause environmental pollution, and have low construction efficiency during construction. Furthermore, the modular structure has poor stability during transportation and installation in high-rise buildings, making it difficult to meet the requirements of high efficiency, safety, and environmental protection.

Method used

The system employs a multi-layered rigid-flexible composite fixing structure, including stabilizing plates, back bolts, stainless steel bolts, nylon pads, galvanized steel plates, and anodized profiles, combined with a support system of vacuum adsorption plates and brackets, to ensure the stability and safety of ceramic bricks during transportation and installation. The modular design also simplifies the construction process.

Benefits of technology

It effectively avoids the risk of ceramic brick falling off and shifting, reduces dust and waste pollution, improves construction efficiency and high-rise transportation safety, simplifies the construction process, and enhances the overall stability and decorative effect of the curtain wall.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to unit module ceramic brick curtain wall technical field discloses a module ceramic brick curtain wall, including first ceramic brick, the front side of first ceramic brick is provided with stable mechanism, the outer wall of first ceramic brick upper and lower part is provided with fixed establishment, the fixed establishment is used for in the transportation to high -rise building, the left and right sides of first ceramic brick all are fixedly connected with third nylon pad, the stable mechanism includes stabilizing plate, the back side fixed connection of stabilizing plate in first ceramic brick's front side, the inner wall back side left and right ends of stabilizing plate all are screw -thread connection has the back bolt, the inner wall front side left and right ends of stabilizing plate all are screw -thread connection has stainless steel bolt. In the utility model, the stable mechanism realizes the fixation of first ceramic brick through the screw thread connection of stabilizing plate and back bolt, reduces dust and waste pollution, and the modular assembly design simplifies the on -the -spot construction process, greatly shortens the installation time, and effectively improves the construction efficiency.
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Description

Technical Field

[0001] This utility model relates to the field of modular ceramic brick curtain wall technology, and in particular to a modular ceramic brick curtain wall. Background Technology

[0002] In the field of building facade decoration, shaped terracotta brick curtain walls are a type of building envelope structure that uses terracotta bricks as the main decorative material and is fixed to the building surface through a specific construction method. It combines decoration with certain functions. With the rich colors, textures and diverse shapes that can be molded, terracotta bricks have become an important means of shaping a unique building appearance and enhancing the architectural artistic value. They are widely used in various public buildings, commercial buildings and distinctive residential projects, helping buildings to showcase the diverse connotations of regional culture and contemporary style.

[0003] Early terracotta brick curtain walls mostly used a wet-laying process, consisting of terracotta bricks and cement mortar. The terracotta bricks were directly bonded to the building substrate using cement mortar. However, this method has significant drawbacks. On the one hand, wet-laying relies on the adhesive strength of the cement mortar, which is affected by long-term temperature and humidity fluctuations, leading to a decrease in adhesive strength and a high risk of terracotta brick detachment, posing a safety hazard. On the other hand, the mixing and use of cement mortar during wet-laying processes generate dust and waste, causing environmental pollution. Furthermore, on-site wet-laying construction is complex, requiring mortar drying and curing, resulting in low construction efficiency. To solve these problems, existing shaped terracotta brick curtain walls adopt a modular structure. Using prefabricated modular units, the terracotta bricks are assembled with metal frames and connectors in the factory and then installed on-site using a dry-hanging method. This avoids the safety and environmental problems of wet-laying and improves construction efficiency. However, the existing modular structure still has shortcomings. The process involves unit modules being connected and fixed via back bolts and profile components. Although nylon pads cushion the terracotta bricks and metal frame, long-term use can lead to inadequate sealing at module joints due to dimensional deviations during module production and transportation, as well as difficulties in precision control during on-site installation. Furthermore, the physical differences between the metal profiles and terracotta bricks can cause slight deformation and displacement of the terracotta bricks under temperature stress, affecting the overall stability and sealing of the curtain wall. Additionally, the prefabrication and on-site installation of unit modules involve various specialized components and equipment, requiring high levels of construction technology and management. Improper control at each stage can result in limited installation efficiency and difficulties in later maintenance and module replacement. This approach fails to fundamentally solve the construction and maintenance challenges caused by the complex structure, leaving room for optimization in the pursuit of more efficient, safer, and environmentally friendly building facade decoration solutions. Utility Model Content

[0004] To overcome the above shortcomings, this utility model provides a modular ceramic brick curtain wall, which aims to solve the problems of safety hazards, environmental pollution, and low construction efficiency caused by wet installation in the prior art.

[0005] To achieve the above objectives, the present invention adopts the following technical solution: a modular ceramic brick curtain wall, including a first ceramic brick, a stabilizing mechanism provided on the front side of the first ceramic brick, a fixing mechanism provided on the upper and lower parts of the outer wall of the first ceramic brick, the fixing mechanism being used for transporting to a high-rise building, and a third nylon pad being fixedly connected to both the left and right sides of the first ceramic brick.

[0006] The stabilizing mechanism includes a stabilizing plate, the rear side of which is fixedly connected to the front side of the first ceramic brick. The left and right ends of the rear side of the inner wall of the stabilizing plate are threaded with back bolts, and the left and right ends of the front side of the inner wall of the stabilizing plate are threaded with stainless steel bolts. The front ends of the two stainless steel bolts are threaded with first nylon washers. A bent galvanized steel plate is fixedly connected to the front side of the first nylon washers. A second nylon washer is fixedly connected to the rear side of the inner wall of the bent galvanized steel plate, and an anodized profile is fixedly connected to the front side of the outer wall of the bent galvanized steel plate.

[0007] As a further description of the above technical solution:

[0008] The fixing mechanism includes two adsorption plates. The adjacent sides of the two adsorption plates are slidably connected to the upper and lower parts of the outer wall of the first ceramic brick, respectively. Vacuum devices are fixedly connected to the opposite sides of the two adsorption plates. A stabilizing block is fixedly connected to the inner wall of the vacuum device. A bracket is fixedly connected to the rear side of the stabilizing block. A fixing block is fixedly connected to the rear side of the inner wall of the bracket. A clamping block is slidably connected to the inner wall of the fixing block.

[0009] As a further description of the above technical solution:

[0010] Two third nylon pads are fixedly connected to a second ceramic brick on opposite sides, and two connecting holes are opened on the top of each of the two second ceramic bricks.

[0011] As a further description of the above technical solution:

[0012] A connecting component is provided on the right side of the second ceramic brick on the right side, and an access component is provided on the left side of the second ceramic brick on the left side.

[0013] As a further description of the above technical solution:

[0014] The connecting component includes a connecting block, the left side of which is fixedly connected to the right side of the second ceramic brick on the right side. A connecting post is fixedly connected to the right side of the connecting block. Two snap-fit ​​blocks are fixedly connected to the upper and lower ends and the front and rear sides of the connecting block. A stabilizing groove is provided on the inner wall of the snap-fit ​​block.

[0015] As a further description of the above technical solution:

[0016] The access component includes an access block, the right side of which is fixedly connected to the left side of the second ceramic brick on the left. An access slot is provided on the left side of the access block. Two access devices are fixedly connected to the upper and lower ends and the front and rear sides of the access block. A snap-fit ​​slot is provided on the left side of each of the multiple access devices.

[0017] As a further description of the above technical solution:

[0018] The first ceramic brick has telescopic rods fixedly connected to the left and right ends of the front side of its inner wall, and the front end of the telescopic rods is fixedly connected to a limit block.

[0019] As a further description of the above technical solution:

[0020] Both of the limiting blocks have springs on their outer walls, and the rear ends of both springs are fixedly connected to rubber blocks.

[0021] This utility model has the following beneficial effects:

[0022] 1. In this utility model, the stabilizing mechanism fixes the first ceramic brick through the threaded connection between the stabilizing plate and the back bolt. Combined with stainless steel bolts, the first nylon pad, the bent galvanized steel plate, and the second nylon pad are connected in sequence. The oxidized profile forms a multi-layer rigid-flexible composite fixing structure, which avoids the risk of falling off caused by cement mortar bonding in the traditional wet-laying process, reduces dust and waste pollution, and the modular assembly design simplifies the on-site construction process, greatly shortens the installation time, and effectively improves construction efficiency.

[0023] 2. In this utility model, the fixing mechanism slides with the outer wall of the first ceramic brick through two adsorption plates, and achieves stable adsorption of the first ceramic brick under the action of the vacuum device. Combined with the support structure formed by the stabilizing block, the bracket and the fixing block, and the clamping block connected to the external transportation equipment, this structure uses vacuum adsorption force to ensure that the first ceramic brick does not fall off during transportation, effectively solving the problem of ceramic brick displacement and falling during the transportation of high-rise buildings in the prior art, and improving the safety and reliability of high-rise transportation. Attached Figure Description

[0024] Figure 1 This is a perspective view of a modular ceramic brick curtain wall proposed in this utility model;

[0025] Figure 2 This is a front view of a modular ceramic brick curtain wall proposed in this utility model;

[0026] Figure 3 This is a top view of a modular ceramic brick curtain wall proposed in this utility model;

[0027] Figure 4 A structural breakdown diagram of a stabilizing mechanism for a modular ceramic brick curtain wall proposed in this utility model;

[0028] Figure 5 This is a structural schematic diagram of a fixing mechanism for a modular ceramic brick curtain wall proposed in this utility model;

[0029] Figure 6 This is a structural exploded view of a connecting component for a modular ceramic brick curtain wall proposed in this utility model;

[0030] Figure 7 This is a structural exploded view of the access component for a modular ceramic brick curtain wall proposed in this utility model.

[0031] Legend:

[0032] 1. First ceramic brick; 2. Stabilizing mechanism; 201. Stabilizing plate; 202. Back bolt; 203. Stainless steel bolt; 204. First nylon pad; 205. Bent galvanized steel plate; 206. Second nylon pad; 207. Anodized profile; 3. Fixing mechanism; 301. Adsorption plate; 302. Vacuum device; 303. Stabilizing block; 304. Bracket; 305. Fixing block; 306. Clamping block; 4. Third nylon pad; 5. Second ceramic brick; 6. Connecting hole; 7. Connecting assembly; 701. Connecting block; 702. Connecting column; 703. Snap-on block; 704. Stabilizing groove; 8. Access assembly; 801. Access block; 802. Access groove; 803. Access device; 804. Snap-on groove; 9. Telescopic rod; 10. Limiting block; 11. Spring; 12. Rubber block. Detailed Implementation

[0033] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0034] Reference Figure 1 , Figure 3 and Figure 4 The present invention provides an embodiment of a modular ceramic brick curtain wall, comprising a first ceramic brick 1, which serves as the basic decorative unit of the curtain wall, providing a decorative surface and basic support for the entire curtain wall structure. A stabilizing mechanism 2 is provided on the front side of the first ceramic brick 1, which is used to stably install the first ceramic brick 1 onto the building body. A fixing mechanism 3 is provided on the upper and lower parts of the outer wall of the first ceramic brick 1, which is used to fix the first ceramic brick 1 during transportation to high-rise buildings to prevent it from falling off or shifting during transportation. A third nylon pad 4 is fixedly connected to both the left and right sides of the first ceramic brick 1. The third nylon pad 4 can provide cushioning when the first ceramic brick 1 is spliced ​​with adjacent components to avoid damage to the first ceramic brick 1 due to collision.

[0035] The stabilizing mechanism 2 includes a stabilizing plate 201, the rear side of which is fixedly connected to the front side of the first terracotta brick 1. The stabilizing plate 201 can distribute and transfer the external force on the first terracotta brick 1 to other components, enhancing the installation stability of the first terracotta brick 1. The left and right ends of the rear side of the inner wall of the stabilizing plate 201 are threaded with back bolts 202, which can firmly connect the stabilizing plate 201 to the first terracotta brick 1, preventing relative displacement between them. The left and right ends of the front side of the inner wall of the stabilizing plate 201 are threaded with stainless steel bolts 203, which can tightly fix the stabilizing plate 201 to the subsequently connected components, ensuring the reliability of the connection. The front ends of the two stainless steel bolts 203 are threaded with first nylon washers 204. The first nylon pad 204 reduces the rigid contact between the stainless steel bolt 203 and the bent galvanized steel plate 205, thus providing buffering and shock absorption. The bent galvanized steel plate 205 is fixedly connected to the front side of the first nylon pad 204. As an intermediate connector, the bent galvanized steel plate 205 can further transmit and disperse external forces, thereby improving the structural strength of the entire stabilizing mechanism 2. The second nylon pad 206 is fixedly connected to the rear side of the inner wall of the bent galvanized steel plate 205. The second nylon pad 206 can enhance the sealing and buffering effect of the connection between the bent galvanized steel plate 205 and other components. The anodized profile 207 is fixedly connected to the front side of the outer wall of the bent galvanized steel plate 205. The anodized profile 207 has high strength and corrosion resistance, and can provide stable frame support for the stabilizing mechanism 2.

[0036] Specifically, the first terracotta brick 1 serves as a basic decorative unit, providing both a decorative surface and foundation support. Its front stabilizing mechanism 2 is threadedly connected to a stabilizing plate 201 and a back bolt 202, firmly fixing the stabilizing plate 201 to the front of the first terracotta brick 1 to prevent relative displacement. The stabilizing plate 201 is connected to a first nylon pad 204 via stainless steel bolts 203. The first nylon pad 204 is connected to a bent galvanized steel plate 205, which in turn connects to a second nylon pad 206 and anodized profile 207. The stabilizing plate 201 distributes and transmits the external force on the first terracotta brick 1. The stainless steel bolts 203 ensure reliable connection between the stabilizing plate 201 and subsequent components. The first nylon pad 206... 4. Reducing the rigid contact between the stainless steel bolts 203 and the bent galvanized steel plate 205 provides a buffering and shock-absorbing effect. The bent galvanized steel plate 205 transmits and disperses external forces to enhance the strength of the stabilizing mechanism 2. The second nylon pad 206 enhances the sealing and buffering effect of the connection between the bent galvanized steel plate 205 and other components. The anodized profile 207 provides a stable frame support for the stabilizing mechanism 2, together securing the first terracotta brick 1 to the main building structure. The fixing mechanism 3 on the upper and lower parts of the outer wall of the first terracotta brick 1 fixes the first terracotta brick 1 during high-rise transportation to prevent it from falling off or shifting. The third nylon pads 4 on the left and right sides of the first terracotta brick 1 provide buffering when it is spliced ​​with adjacent components to avoid collision damage.

[0037] Reference Figure 1 , Figure 2 and Figure 5 The fixing mechanism 3 includes two adsorption plates 301, which can be tightly fitted to the outer wall of the first ceramic brick 1, providing a foundation for subsequent adsorption and fixing. The adjacent sides of the two adsorption plates 301 are slidably connected to the upper and lower parts of the outer wall of the first ceramic brick 1, respectively. This sliding connection method facilitates adjusting the position of the adsorption plates 301 according to the size of the first ceramic brick 1, enhancing adaptability. Vacuum devices 302 are fixedly connected to the opposite sides of the two adsorption plates 301. The vacuum devices 302 can create negative pressure by extracting air between the adsorption plates 301 and the first ceramic brick 1, achieving the adsorption and fixing effect. A stabilizing block 303 is fixedly connected to the inner wall of the vacuum device 302 to stabilize... Block 303 enhances the structural stability of vacuum device 302 and prevents it from deforming during operation. A bracket 304 is fixedly connected to the rear side of the stabilizing block 303. The bracket 304 connects the stabilizing block 303 and the fixed block 305 into a whole, which plays a role in force transmission and support. A fixed block 305 is fixedly connected to the rear side of the inner wall of the bracket 304. The fixed block 305 provides an installation base for the clamping block 306 and ensures the stability of the clamping block 306. The clamping block 306 is slidably connected to the inner wall of the fixed block 305. The clamping block 306 can be connected to external transportation equipment, and the sliding connection facilitates the adjustment of the connection position to ensure stability during transportation.

[0038] Specifically, in the fixing mechanism 3, two adsorption plates 301 are slidably connected to the upper and lower parts of the outer wall of the first ceramic brick 1 on adjacent sides. The position can be adjusted according to the size of the first ceramic brick 1 to enhance adaptability, and they are tightly fitted to the outer wall of the first ceramic brick 1 to provide a basis for adsorption and fixing. The vacuum device 302 is fixedly connected to the side of the two adsorption plates 301 that is far apart. The vacuum device 302 achieves the adsorption and fixing effect by drawing air between the adsorption plates 301 and the first ceramic brick 1 to form a negative pressure. The stabilizing block 303 is fixedly connected to the inner wall of the vacuum device 302 to enhance its own structural stability and prevent deformation during operation. The bracket 304 is fixedly connected to the rear side of the stabilizing block 303 to connect the stabilizing block 303 and the fixing block 305 into a whole, which plays a role in force transmission and support. The fixing block 305 is fixedly connected to the rear side of the inner wall of the bracket 304 to provide an installation base for the clamping block 306 to ensure its stability. The clamping block 306 is slidably connected to the inner wall of the fixing block 305 to connect with external transportation equipment. The sliding connection facilitates the adjustment of the connection position to ensure stability during transportation, thereby fixing the first ceramic brick 1 to prevent it from falling off or shifting when transported to high-rise buildings.

[0039] Reference Figure 1 , Figure 6 and Figure 7Two third nylon pads 4 are fixedly connected to second ceramic bricks 5 on opposite sides. The second ceramic bricks 5 and the first ceramic bricks 1 cooperate to form the main unit module of the curtain wall, enhancing the overall decorative effect and structural integrity of the curtain wall. Two connecting holes 6 are opened on the top of each of the two second ceramic bricks 5. The connecting holes 6 can be used to pass through connectors, which facilitates the fixed connection of the second ceramic bricks 5 with other components or adjacent unit modules. A connecting component 7 is provided on the right side of the right second ceramic brick 5. The connecting component 7 is used to connect the right second ceramic brick 5 with other components. An access component 8 is provided on the left side of the left second ceramic brick 5. The access component 8 cooperates with the connecting component 7 to realize the quick docking of the left and right second ceramic bricks 5. The connecting component 7 includes a connecting block 701. The left side of the connecting block 701 is fixedly connected to the right side of the second ceramic brick 5 on the right side. The connecting block 701 provides an installation base for other components of the connecting assembly 7. A connecting post 702 is fixedly connected to the right side of the connecting block 701. The connecting post 702 can be inserted into the access slot 802 to achieve the initial positioning of the connecting assembly 7 and the access assembly 8. Two snap-fit ​​blocks 703 are fixedly connected to the upper and lower ends and the front and rear sides of the connecting block 701. The snap-fit ​​blocks 703 can engage with the snap-fit ​​slots 804 to enhance the stability of the connection between the connecting assembly 7 and the access assembly 8. A stabilizing groove 704 is provided on the inner wall of the snap-fit ​​block 703. The stabilizing groove 704 can accommodate the protruding structure on the access device 803, further improving the stability of the engagement between the snap-fit ​​block 703 and the access device 803. The insertion component 8 includes an insertion block 801. The right side of the insertion block 801 is fixedly connected to the left side of the second ceramic brick 5 on the left. The insertion block 801 provides an installation carrier for other components of the insertion component 8. An insertion slot 802 is provided on the left side of the insertion block 801. The insertion slot 802 is adapted to the connecting post 702, providing insertion space for the connecting post 702 to achieve precise docking between the connection component 7 and the insertion component 8. Two connectors 803 are fixedly connected to the upper and lower ends and the front and rear sides of the insertion block 801. The connectors 803 are correspondingly set with the snap-fit ​​blocks 703 and can cooperate with the snap-fit ​​blocks 703 to achieve connection. A snap-fit ​​slot 804 is provided on the left side of each of the multiple connectors 803. The snap-fit ​​slot 804 engages with the snap-fit ​​blocks 703 to prevent the connection component 7 from being connected to the snap-fit ​​block 703. After the connection component 8 is connected, it will detach. The left and right ends of the front side of the inner wall of the first ceramic brick 1 are fixedly connected to the telescopic rod 9. The telescopic rod 9 can move to extend and retract to adapt to different installation spaces and force conditions. The front end of the telescopic rod 9 is fixedly connected to the limit block 10. The limit block 10 can limit the extension range of the spring 11 and prevent the spring 11 from falling off the telescopic rod 9. The outer walls of the two limit blocks 10 are provided with springs 11. The springs 11 have an elastic reset function and can generate elastic force after being subjected to external force, which plays a role in buffering and shock absorption. The rear ends of the two springs 11 are fixedly connected to the rubber block 12. The rubber block 12 is soft and can further enhance the buffering effect and avoid the spring 11 from directly contacting the inner wall of the first ceramic brick 1 and causing wear.

[0040] Specifically, two third nylon pads 4 are fixedly connected to the second terracotta bricks 5 on opposite sides, forming the main body of the curtain wall unit module together with the first terracotta brick 1, enhancing the overall decorative effect and structural integrity of the curtain wall. Connecting holes 6 on the top of the two second terracotta bricks 5 allow for the insertion of connectors, facilitating the fixed connection of the second terracotta bricks 5 with other components or adjacent unit modules. The connecting component 7 on the right side of the right second terracotta brick 5 enables its connection with other components. The access component 8 on the left side of the left second terracotta brick 5 cooperates with the connecting component 7 to achieve quick docking of the left and right second terracotta bricks 5. The connecting block 701 in the connecting component 7 is fixed to the right side of the right second terracotta brick 5 to provide an installation base for other components. The connecting post 702 on the right side of the connecting block 701 is inserted into the access slot 802 to achieve initial positioning of the connecting component 7 and the access component 8. The snap-fit ​​blocks 703 on the upper and lower ends and the front and rear sides of the connecting block 701 engage with the snap-fit ​​slots 804 to enhance the connection stability. The stabilizing groove 704 of the wall accommodates the protruding structure on the connector 803 to improve the stability of the fit. The connector block 801 in the connector assembly 8 is fixed on the left side of the second ceramic brick 5 to provide an installation carrier for other components. The connector groove 802 on the left side of the connector block 801 provides an insertion space for the connecting column 702 to achieve precise docking. The connectors 803 on the upper and lower ends and front and rear sides of the connector block 801 cooperate with the snap block 703 to achieve connection. The snap groove 804 on the left side of the connector 803 engages with the snap block 703 to prevent disengagement after connection. The telescopic rod 9 on the left and right ends of the front side of the inner wall of the first ceramic brick 1 can extend and retract to adapt to different installation spaces and force conditions. The limiting block 10 at the front end of the telescopic rod 9 limits the extension range of the spring 11 to prevent it from falling off. The spring 11 on the outer wall of the limiting block 10 generates elastic force after being subjected to external force, which plays a role in buffering and shock absorption. The rubber block 12 at the rear end of the spring 11 enhances the buffering effect and avoids direct contact between the spring 11 and the inner wall of the first ceramic brick 1, which would cause wear.

[0041] Working principle: The system forms a stable component by pre-threading the back bolts 202 to the inner wall of the first ceramic brick 1. The stabilizing plate 201 serves as the basic support structure. The first nylon pad 204 is fixed to the inner wall of the stabilizing plate 201 by stainless steel bolts 203, forming the first layer of flexible buffer. The anodized profile 207 and the second nylon pad 206 are also connected by bolts. The multi-layer nylon buffer design not only absorbs the stress generated by thermal expansion and contraction, but also reduces the electrochemical corrosion between metal parts through flexible contact, thus extending the system's lifespan. The bent galvanized steel plate 205 serves as an adapter and is connected to the anodized profile 207 through the second nylon pad 206, solving the dust pollution and waste emission problems caused by the wet-laying process. Construction personnel only need to quickly assemble the prefabricated modules with bolts.

[0042] Furthermore, when carrying out high-rise transportation operations, the vacuum device 302 is activated, causing the adsorption plate 301 to fit tightly against the outer wall of the first ceramic brick 1. The bracket 304 plays a supporting and fixing role, and the fixing block 305 is accurately and firmly fixed to the inner wall of the transportation device. The external transportation equipment is connected to the clamping block 306, and the fixing block 305 and the bracket 304 are stably connected. During transportation, the adsorption force ensures that the ceramic brick does not fall off, and the bracket 304 and the fixing block 305 ensure structural stability, effectively overcoming the wind force during high-rise transportation.

[0043] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A modular ceramic tile curtain wall comprising a first ceramic tile (1), characterized in that: A stabilizing mechanism (2) is provided on the front side of the first ceramic brick (1), and a fixing mechanism (3) is provided on the upper and lower parts of the outer wall of the first ceramic brick (1). The fixing mechanism (3) is used for transporting to high-rise buildings. A third nylon pad (4) is fixedly connected to both the left and right sides of the first ceramic brick (1). The stabilizing mechanism (2) includes a stabilizing plate (201), the rear side of which is fixedly connected to the front side of the first ceramic brick (1). The left and right ends of the rear side of the inner wall of the stabilizing plate (201) are threaded with back bolts (202). The left and right ends of the front side of the inner wall of the stabilizing plate (201) are threaded with stainless steel bolts (203). The front ends of the two stainless steel bolts (203) are threaded with first nylon pads (204). The front side of the first nylon pads (204) is fixedly connected with a bent galvanized steel plate (205). The rear side of the inner wall of the bent galvanized steel plate (205) is fixedly connected with a second nylon pad (206). The front side of the outer wall of the bent galvanized steel plate (205) is fixedly connected with an anodized profile (207).

2. A modular tile wall according to claim 1, wherein: The fixing mechanism (3) includes two adsorption plates (301). The adjacent sides of the two adsorption plates (301) are slidably connected to the upper and lower parts of the outer wall of the first ceramic brick (1). Vacuum devices (302) are fixedly connected to the opposite sides of the two adsorption plates (301). A stabilizing block (303) is fixedly connected to the inner wall of the vacuum device (302). A bracket (304) is fixedly connected to the rear side of the stabilizing block (303). A fixing block (305) is fixedly connected to the rear side of the inner wall of the bracket (304). A clamping block (306) is slidably connected to the inner wall of the fixing block (305).

3. A modular tile wall according to claim 1, wherein: Two third nylon pads (4) are fixedly connected to a second ceramic brick (5) on the opposite side of each other, and two connecting holes (6) are opened on the top of each second ceramic brick (5).

4. A modular tile wall according to claim 3, wherein: A connecting component (7) is provided on the right side of the second ceramic brick (5) on the right side, and an access component (8) is provided on the left side of the second ceramic brick (5) on the left side.

5. A modular tile wall according to claim 4, wherein: The connecting component (7) includes a connecting block (701). The left side of the connecting block (701) is fixedly connected to the right side of the second ceramic brick (5) on the right side. A connecting post (702) is fixedly connected to the right side of the connecting block (701). Two snap-fit ​​blocks (703) are fixedly connected to the upper and lower ends and the front and rear sides of the connecting block (701). A stabilizing groove (704) is provided on the inner wall of the snap-fit ​​block (703).

6. A modular tile wall according to claim 4, wherein: The access component (8) includes an access block (801). The right side of the access block (801) is fixedly connected to the left side of the second ceramic brick (5) on the left side. An access slot (802) is provided on the left side of the access block (801). Two access devices (803) are fixedly connected to the upper and lower ends and the front and rear sides of the access block (801). A snap-fit ​​slot (804) is provided on the left side of each of the multiple access devices (803).

7. A modular tile wall according to claim 1, wherein: The first ceramic brick (1) has telescopic rods (9) fixedly connected to the left and right ends of the front side of the inner wall, and the front end of the telescopic rods (9) is fixedly connected to a limit block (10).

8. A modular tile wall according to claim 7, wherein: The outer walls of the two limiting blocks (10) are provided with springs (11), and the rear ends of the two springs (11) are fixedly connected with rubber blocks (12).