Curved GRG panel ceramic hanging structure and construction method thereof

By employing connecting posts, threaded connections, and snap-fit ​​components between the ceramic component and the GRG plate, the problem of unstable connection between the ceramic component and the curved GRG plate is solved, achieving a more stable connection effect.

CN117145162BActive Publication Date: 2026-07-21BEIJING ZHICHENG HUATENG DECORATION ENG CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
BEIJING ZHICHENG HUATENG DECORATION ENG CO LTD
Filing Date
2023-08-28
Publication Date
2026-07-21

AI Technical Summary

Technical Problem

In existing technologies, the connection between ceramic and curved GRG sheets is unstable, which can easily cause ceramic parts to fall off during use.

Method used

The ceramic parts, GRG plates, and keel are fixed by connecting columns and threaded connections, and the connection is further strengthened by snap-fit ​​components and connecting mechanisms. The stable connection between the ceramic parts and the GRG plates is achieved by the cooperation of the intermediate screw and snap-fit ​​plate.

Benefits of technology

The design of threaded connections and snap-fit ​​components enhances the connection stability between the ceramic parts and the GRG plate, reducing the risk of the ceramic parts falling off during use.

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Abstract

The application relates to a curved GRG plate ceramic hanging structure and a construction method thereof, and belongs to the field of ceramic hanging. The structure comprises a keel connected to a wall body and a GRG plate connected to one side of the keel. One side of the GRG plate is provided with ceramic pieces to be connected to one side of the GRG plate, and a plurality of connecting columns are arranged. The outer side of each connecting column is provided with a thread. Each connecting column penetrates the keel, the GRG plate and the ceramic pieces in sequence and is threadedly connected with the keel and the GRG plate. A clamping assembly for connecting the connecting column and the ceramic pieces is arranged on the connecting column. The application has the effect that the ceramic can be stably connected with the curved GRG plate.
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Description

Technical Field

[0001] This application relates to the field of ceramic cladding, and in particular to a ceramic cladding structure for curved GRG panels and its construction method. Background Technology

[0002] Currently, to cater to people's aesthetic preferences in residential, office, and entertainment settings, a growing number of diverse interior design styles are emerging. To accommodate this differentiation, traditional straight-line structures are being gradually abandoned, with more and more curved designs being adopted in homes.

[0003] To meet the requirements of curved structures in design, GRG is frequently used in the construction of structures with unique curves due to its advantages of being resistant to cracking, breakage, and deformation. GRG is precast glass fiber reinforced gypsum board, a special decorative modified fiber gypsum decorative material.

[0004] However, since GRG panels are often used in curved architectural structures, when ceramics need to be attached to the outside of the GRG panel, it is easy to cause unstable connection between the ceramics and the curved GRG panel, which may affect the later use of the product. Summary of the Invention

[0005] In order to enable a stable connection between ceramics and curved GRG panels, this application provides a ceramic mounting structure for curved GRG panels and its construction method.

[0006] Firstly, the curved GRG plate ceramic mounting structure provided in this application adopts the following technical solution:

[0007] A curved GRG board ceramic mounting structure includes a keel connected to a wall on one side and a GRG board connected to one side of the keel. One side of the GRG board is provided with a ceramic component to be connected to the side of the GRG board. Multiple connecting posts are also provided. Each connecting post has threads on its outer side. Each connecting post passes through the keel, the GRG board and the ceramic component in sequence and is threadedly connected to the keel and the GRG board. The connecting post is also provided with a snap-fit ​​assembly for connecting the connecting post and the ceramic component.

[0008] By adopting the above technical solution, when it is necessary to connect the ceramic part to one side of the GRG plate, the connecting post passes through the keel, the GRG plate and the ceramic part in sequence. The keel, the GRG plate and the ceramic part are connected by the external thread of the connecting post. Then, the connecting post and the ceramic part are further connected by the snap-fit ​​assembly, so that the ceramic part can be stably connected to the GRG plate. This reduces the occurrence of the phenomenon that the ceramic part cannot be stably connected to the GRG plate due to the curved surface of one side of the GRG plate, and thus falls off during use.

[0009] Optionally, a central screw is threaded into the internal part of the connecting post, and the snap-fit ​​assembly includes an abutment block located inside the connecting post and threaded onto the central screw. The outer sidewall of the abutment block is gradually inclined towards the outside of the connecting post from the side away from the moving direction of the abutment block. The inclined sidewall of the abutment block abuts against a plurality of snap-fit ​​plates arranged in the same plane. The side of the snap-fit ​​plate away from the abutment block can extend out of the connecting post to the outside.

[0010] By adopting the above technical solution, when it is necessary to further determine the connection relationship between the ceramic part and the GRG plate through the snap-fit ​​device, after inserting one end of the connecting post into the ceramic part, the middle screw is rotated. The middle screw drives the abutment block to move away from the GRG plate. Then, the abutment block drives multiple snap-fit ​​plates to extend out of the connecting post at the end away from the abutment block. This allows the connecting post to move the ceramic part closer to the GRG plate through the snap-fit ​​plates during the subsequent movement of the connecting post, so that the ceramic part and the GRG plate can fit together, thereby making the connection between the ceramic part and the GRG plate more stable.

[0011] Optionally, one end of the intermediate screw passes through the end of the connecting column near the keel, and a grout inlet hole is provided in the middle of the intermediate screw, which is connected to the end of the intermediate screw near the keel. The abutment block is provided with a placement groove for placing multiple snap-fit ​​plates. A grouting connection hole is provided inward on the side wall of the placement groove, which can be connected to the grout inlet hole. A grouting through hole is provided on the snap-fit ​​plate, which can be connected to the grouting connection hole. Each snap-fit ​​plate is also provided with multiple grouting through holes and grouting holes on the side of the snap-fit ​​plate near the side wall of the ceramic part, which are connected to the side wall of the ceramic part.

[0012] By adopting the above technical solution, after the connecting post is extended from one end of the snap-fit ​​plate by the abutting block and one side of the snap-fit ​​plate abuts against the side wall of the ceramic part, the grout inlet hole on the middle screw is connected to the grout injection hole on the abutting block, and the grout injection hole is connected to the grout injection through hole on the snap-fit ​​plate. Then, glue is injected from the grout inlet hole port near the keel end of the middle screw. The glue then flows along the grout inlet hole to the grout injection hole, and from the grout injection hole to the grout injection through hole, and then flows out from the grout injection hole to achieve adhesion between the snap-fit ​​plate and the side wall of the ceramic part. This further reduces the occurrence of ceramic parts falling off during use due to unstable ceramic part connection.

[0013] Optionally, the connecting column is also provided with a connecting mechanism for connecting the opposite surfaces of the GRG plate and the ceramic part.

[0014] By adopting the above technical solution, the connection between the ceramic part and the GRG plate is strengthened due to the existence of the connecting mechanism, thereby further reducing the danger caused by the ceramic part falling during use.

[0015] Optionally, the connecting mechanism includes a drive bevel gear fixedly sleeved to the outside of the intermediate screw. The drive bevel gear meshes with multiple driven bevel gears. Each driven bevel gear is fixedly connected to a drive screw on the side away from the intermediate screw. Each drive screw is threadedly connected to a connecting plate on the side away from the driven bevel gear. The end of each connecting plate away from the drive screw can extend through the interior of the connecting post and is located between the ceramic part and the GRG plate. Each connecting plate is provided with a ceramic connecting assembly for connecting the ceramic part on the side near the ceramic part, and a fastener for connecting the GRG plate is provided on the side of each connecting plate near the GRG plate.

[0016] By adopting the above technical solution, when the rotating connecting column moves the ceramic part closer to the GRG plate, the intermediate screw is rotated. At the same time as the snap-fit ​​plate extends out of the connecting column, the intermediate screw drives the drive bevel gear to rotate. The drive bevel gear drives multiple driven bevel gears to rotate. During the rotation of the multiple driven bevel gears, the drive screw drives the drive screw to rotate. The rotation of the drive screw causes the connecting plate to extend out of the connecting column, so that the connecting plate can be located between the ceramic part and the GRG plate and abut against the opposite surfaces of the GRG plate and the ceramic part. Then, the ceramic part is connected by the ceramic connecting assembly, and the GRG plate is connected by fasteners, which further fixes the ceramic part and the GRG plate, and further reduces the occurrence of the ceramic part falling off during use due to the unstable connection between the ceramic part and the GRG plate.

[0017] Optionally, each of the connecting plates has an air cavity inside. The ceramic connecting assembly includes a moving block located inside the air cavity. The moving block abuts against the inner wall of the air cavity and separates the air cavity. One end of each driving screw passes through the connected connecting plate and is rotatably connected to the moving block inside the connecting plate. The ceramic connecting assembly also includes a suction cup fixedly connected to the side of the connecting plate near the ceramic part, communicating with the side of the air cavity inside the connecting plate away from the driving screw.

[0018] By adopting the above technical solution, after one side of the connecting plate abuts against the ceramic part, and the other side of the connecting plate is connected to the GRG plate by fasteners, the middle screw is rotated to drive multiple moving blocks to move towards the side close to the driven bevel gear. During the movement of the moving blocks, the air chamber connected to the suction cup is formed into a negative pressure state, which allows the suction cup to adsorb the ceramic part, thereby realizing the connection between the connecting plate and the ceramic part.

[0019] Optionally, the fastener is a connecting pin that is fixedly connected to the side of the connecting plate near the GRG plate and can be inserted into the interior of the GRG plate.

[0020] By adopting the above technical solution, when the connecting column moves the ceramic part closer to the GRG plate, the connecting column also moves the connecting plate closer to the GRG plate, so that multiple connecting pins can be inserted into the GRG plate, thereby realizing the connection between the connecting plate and the GRG plate.

[0021] Optionally, each of the snap-fit ​​plates has a buffer pad fixedly connected to the side that abuts against the ceramic part, and the grouting hole is provided through the buffer pad.

[0022] By adopting the above technical solution, the presence of the buffer pad can reduce the wear on the side wall of the ceramic part caused by the snap-fit ​​plate when the ceramic part is moved closer to the GRG plate by the snap-fit ​​plate.

[0023] Secondly, this application provides a method for ceramic mounting on curved GRG panels, employing the following technical solution:

[0024] A method for installing ceramic cladding on curved GRG panels, as described in the first aspect, includes the following steps:

[0025] S1: Multiple interconnected through holes are made on the ceramic parts, GRG plates and keel according to actual needs. Then, different connecting posts are inserted into each through hole to connect the ceramic parts, GRG plates and keel.

[0026] S2: Simultaneously rotate the connecting post and the middle screw, so that the abutment block pushes multiple snap-fit ​​plates into the ceramic part during the movement, and drives multiple connecting plates to be placed between the ceramic part and the GRG plate. Then, rotate the middle screw to drive the ceramic part to move towards the side closer to the GRG plate through multiple snap-fit ​​plates, so that the suction cup is adsorbed on the ceramic part, and the connecting pin is inserted into the GRG plate.

[0027] S3: Inject glue into the slurry inlet hole to connect the snap plate and the ceramic part.

[0028] By adopting the above technical solution, the position of the through hole is first determined according to the shape of the ceramic part and the GRG plate. Then, the connecting post is inserted, and the ceramic part is moved closer to the GRG plate by the snap-fit ​​assembly. This makes the opposite surfaces of the ceramic part and the GRG plate abut against the side wall of the connecting plate. The connecting plate and the ceramic part are connected by the ceramic connecting assembly on one side of the connecting plate, and the connecting plate and the GRG plate are connected by the connecting nail. Finally, the ceramic part and the snap-fit ​​plate are connected by glue, which can achieve a stable connection between the ceramic part and the GRG plate, making the connection between the ceramic part and the GRG plate more stable in actual use.

[0029] In summary, this application includes at least one of the following beneficial technical effects:

[0030] 1. The keel, GRG plate and ceramic parts are connected by connecting columns, and the ceramic parts can be moved closer to the GRG plate by the snap-fit ​​assembly, so that the ceramic parts are indirectly attached to the GRG plate, and the position of the ceramic parts can be stabilized while connecting the ceramic parts.

[0031] 2. By connecting the grout inlet hole inside the middle screw with the grout injection hole on one side of the connecting plate, glue can be injected into one side of the grout inlet hole. The glue flows out from the grout injection hole on one side of the connecting plate. The glue adheres to the snap-fit ​​plate and the side wall of the ceramic part, thereby making the connection between the ceramic part and the connecting column more stable.

[0032] 3. By connecting the connecting plate and the ceramic part through a ceramic connecting assembly, and by connecting the connecting plate and the GRG plate through fasteners, the connection relationship between the ceramic part and the GRG plate can be made more stable. Attached Figure Description

[0033] Figure 1 This is a schematic diagram of the overall structure of an embodiment of this application.

[0034] Figure 2 This is a cross-sectional view of the overall structure of an embodiment of this application.

[0035] Figure 3 yes Figure 2 A partially enlarged schematic diagram of structure A in the middle.

[0036] Figure 4 yes Figure 2 A partially enlarged schematic diagram of the B-structure.

[0037] Explanation of reference numerals in the attached drawings: 1. Keel; 2. GRG plate; 3. Ceramic component; 4. Connecting column; 41. Abutment groove; 42. Snap-fit ​​horizontal groove; 421. Sliding groove; 43. Connecting vertical groove; 44. Connecting horizontal groove; 441. Suction cup moving groove; 442. Nail moving groove; 45. First handle; 5. Snap-fit ​​assembly; 51. Abutment block; 511. Placement groove; 512. Grouting connecting hole; 52. Snap-fit ​​plate; 521. Slider; 522. Grouting tube. 523. Grouting hole; 524. Buffer pad; 6. Intermediate screw; 61. Grouting hole; 62. Drive plate; 63. Second handle; 7. Connecting mechanism; 71. Drive bevel gear; 72. Driven bevel gear; 73. Drive screw; 74. Connecting plate; 741. Air chamber; 75. Ceramic connecting assembly; 751. Moving block; 752. Suction cup; 76. Fastener; 761. Connecting nail; 8. Fixing frame; 81. Fixing bolt. Detailed Implementation

[0038] The following is in conjunction with the appendix Figure 1 - Appendix Figure 4 This application will be described in further detail.

[0039] This application discloses a ceramic mounting structure for curved GRG (Glass Reinforced Plastic) sheets, referring to... Figure 1 and Figure 2 It includes a keel 1 fixedly connected to the wall on one side, a GRG plate 2 connected to one side of the keel 1, and a ceramic component 3 on the side of the GRG plate 2 away from the keel 1. The ceramic component 3 is hollow inside and is vertically and parallel to the GRG plate 2 on the side closest to the GRG plate 2.

[0040] The structure also includes a connecting post 4, which has an external thread on its outer side. The connecting post 4 passes through the keel 1, the GRG plate 2 and the ceramic part 3 in sequence and is threadedly connected to the keel 1, the GRG plate 2 and the ceramic part 3.

[0041] Reference Figure 3 The end of the connecting post 4 that is inserted into the ceramic part 3 is provided with a snap-fit ​​component 5, which can connect the connecting post 4 and the ceramic part 3.

[0042] When it is necessary to connect the GRG plate 2 and the ceramic part 3, the connecting post 4 is passed through the keel 1, the GRG plate 2 and the ceramic part 3 in sequence and is threaded to the keel 1 and the GRG plate 2, thereby realizing the connection between the ceramic part 3 and the GRG plate 2. Then, the connection relationship between the ceramic part 3 and the connecting post 4 is further strengthened by the snap-fit ​​component 5, thereby strengthening the connection relationship between the ceramic part 3 and the GRG plate 2.

[0043] By connecting the ceramic part 3 and the GRG plate 2 with the connecting post 4, and with one end of the connecting post 4 also connected to the keel 1, the connection between the ceramic part 3 and the GRG plate 2 can be made more stable.

[0044] A central screw 6 is threaded into the internal part of the connecting post 4, and the central screw 6 is coaxially arranged with the connecting post 4. The outer side wall of the central screw 6 near the ceramic part 3 has external threads, and the central screw 6 is rotatably connected to the inner wall of the connecting post 4. The snap-fit ​​assembly 5 includes an abutment block 51 threaded onto the outer side of the central screw 6. An abutment groove 41 is provided inside the connecting post 4 to allow the abutment block 51 to move towards one side of the GRG plate 2. The abutment block 51 is conical, with the apex of the cone facing the direction of movement of the abutment block 51.

[0045] The snap-fit ​​assembly 5 also includes multiple snap-fit ​​plates 52. In this embodiment, there are four snap-fit ​​plates 52, and all four snap-fit ​​plates 52 are evenly distributed around the center line of the intermediate screw 6 in a horizontal plane perpendicular to the length direction of the intermediate screw 6. Multiple connecting grooves 41 and snap-fit ​​transverse grooves 42 are provided inside the connecting post 4. In this embodiment, there are four snap-fit ​​transverse grooves 42, and the number of each groove corresponds one-to-one with the number of snap-fit ​​plates 52. Each snap-fit ​​plate 52 abuts against the tapered inclined sidewall of the abutment block 51 on the side closest to the abutment block 51.

[0046] Each snap-fit ​​plate 52 is fixedly connected to a slider 521 on the side away from the abutment block 51, and each snap-fit ​​transverse groove 42 is provided with a groove 421 on the groove wall near the abutment block 51 for the slider 521 to be inserted and to move towards the side near the outside of the connecting post 4.

[0047] After inserting the connecting post 4 into the ceramic part 3, rotate the intermediate screw 6. During rotation, the intermediate screw 6 moves the abutment block 51 closer to the interior of the ceramic part 3. As the abutment block 51 moves, it causes the four snap-fit ​​plates 52, which abut against the side wall of the abutment block 51, to move outward along the snap-fit ​​groove 42. The sliding block 521, in cooperation with the groove 421, restricts the position of the moving snap-fit ​​plates 52, allowing one end of each snap-fit ​​plate 52 to move out of the connecting post 4 and one side to abut against the inner wall of the ceramic part 3. Then, rotating the connecting post 4 pulls the ceramic part 3 closer to the GRG plate 2 via the multiple snap-fit ​​plates 52, thus determining the relative position between the ceramic part 3 and the GRG plate 2. This allows the worker to apply adhesive between the ceramic part 3 and the GRG plate 2, achieving a stable connection between them.

[0048] Reference Figure 4 The intermediate screw 6, near the keel 1, penetrates the side wall of the connecting column 4 and is rotatably connected to it. A grout inlet hole 61 is located in the center of the intermediate screw 6, with one end of the hole connecting to the outside. The end of the grout inlet hole 61 away from the keel 1 is divided into four streams, each of which penetrates the side wall of the intermediate screw 6. Each of the four streams of grout inlet holes 61 corresponds to one of the four snap-fit ​​plates 52.

[0049] Reference Figure 3 The abutment block 51 has a circumferential placement groove 511 on the side away from the central screw 6, which can accommodate the end of the snap-fit ​​plate 52. Multiple grouting connection holes 512 are provided on the side wall of the placement groove 511 of the abutment block 51, near the central screw 6. In this embodiment, four grouting connection holes 512 are provided. When the abutment block 51 moves, it drives the snap-fit ​​plate 52 into the placement groove 511, and the side wall of each snap-fit ​​plate 52 abuts against the inner wall of the adjacent placement groove 511. Each grouting connection hole 512 is connected to the branch point of one of the grout inlet holes 61.

[0050] Each snap-fit ​​plate 52 has a grouting through hole 522, and when one end of the snap-fit ​​plate 52 is placed inside the placement groove 511, one end of the grouting through hole 522 on each snap-fit ​​plate 52 can communicate with the grouting connecting hole 512 of the abutment block 51. On the side of each snap-fit ​​plate 52 away from the abutment block 51 and that can abut against the inner wall of the ceramic part 3, multiple grouting holes 523 communicating with the grouting through hole 522 are opened inward.

[0051] When the intermediate screw 6 is rotated, the abutment block 51 moves, and one end of the snap-fit ​​plate 52 is moved out of the snap-fit ​​groove 42 through the abutment block 51, the connecting column 4 is rotated, causing one side of each snap-fit ​​plate 52 to abut against the inner wall of the ceramic part 3, and moving the ceramic part 3 to the side closer to the GRG plate 2. When one side of the snap-fit ​​plate 52 abuts against the inner wall of the ceramic part 3, the grouting through hole 522 on the snap-fit ​​plate 52 and the grouting connecting hole 512 on the abutment block 51 are connected to the grouting hole 61 on the intermediate screw 6. Then, glue is injected into one end of the intermediate screw 6 that passes through the connecting column 4, so that the glue can flow out from the grouting hole 523 on the side of the snap-fit ​​plate 52 near the ceramic part 3, thereby bonding the ceramic part 3 and the snap-fit ​​plate 52, thereby strengthening the connection between the connecting column 4 and the ceramic part 3, and also strengthening the connection between the ceramic part 3 and the GRG plate 2.

[0052] The connecting column 4 is located between the ceramic part 3 and the GRG plate 2, and a connecting mechanism 7 for connecting the ceramic part 3 and the GRG plate 2 is also provided.

[0053] Because of the existence of the connecting mechanism 7, when the connecting post 4 moves the ceramic part 3 toward the side closer to the GRG plate 2 through multiple snap-fit ​​plates 52, the connection between the ceramic part 3 and the GRG plate 2 can be further strengthened by the connecting mechanism 7.

[0054] The connecting mechanism 7 includes a drive bevel gear 71 fixedly sleeved on the outside of the intermediate screw 6. Multiple driven bevel gears 72 mesh with the drive bevel gear 71. In this embodiment, four driven bevel gears 72 are provided, and these four driven bevel gears 72 are evenly distributed around the intermediate screw 6. The centerline of each driven bevel gear 72 is perpendicular to the length direction of the intermediate screw 6. A connecting vertical groove 43 is provided inside the connecting column 4 for accommodating the drive bevel gear 71 and the driven bevel gears 72.

[0055] Each driven bevel gear 72 has a drive screw 73 fixedly connected to its middle position on the side away from the intermediate screw 6. Each drive screw 73 is perpendicular to the intermediate screw 6. A connecting plate 74 is connected to the end of each drive screw 73 away from the driven bevel gear 72, and this end is inserted into and threadedly connected to the adjacent connecting plate 74. The connecting post 4 also has four connecting slots 44 for placing the connecting plates 74, with one end of each connecting plate 74 movable to the outside of the connecting post 4. Each connecting plate 74 is located inside one of the connecting slots 44 and slides against the side wall of the connecting slot 44.

[0056] Each connecting plate 74 has a ceramic connecting assembly 75 for connecting the ceramic part 3 on the side near the ceramic part 3, and each connecting plate 74 has a fastener 76 for connecting the GRG plate 2 on the side near the GRG plate 2.

[0057] When further fixing of the connection between the GRG plate 2 and the ceramic part 3 is required, while the ceramic part 3 is moved closer to the GRG plate 2 by the snap-fit ​​plate 52, the intermediate screw 6 is rotated to drive the drive bevel gear 71 to rotate. The drive bevel gear 71 drives the four driven bevel gears 72 to rotate. During the rotation of each driven bevel gear 72, it drives the drive screw 73 connected on one side to rotate. During the rotation of each drive screw 73, it drives the adjacent connecting plate 74 on one side to move out of the connecting post 4 along the connecting transverse groove 44, thereby extending to the space between the ceramic part 3 and the GRG plate 2. Then, the ceramic part 3 is connected by the ceramic connecting assembly 75 on one side of each connecting plate 74, and the GRG plate 2 is connected by the fastener 76, so that the connection between the ceramic part 3 and the fastener 76 can be more stable.

[0058] Each connecting plate 74 is hollow and configured as an air cavity 741. The ceramic connecting assembly 75 includes a moving block 751 located inside the air cavity 741. The sidewall of the moving block 751 abuts against the inner wall of the air cavity 741 and can divide the air cavity 741 into two chambers. The end of each drive screw 73 near the connecting plate 74 is inserted into the interior of the connecting plate 74 and is rotatably connected to the moving block 751 inside the connecting plate 74.

[0059] The ceramic connecting assembly 75 also includes a suction cup 752 located at the end of each connecting plate 74 away from the drive screw 73 and close to the ceramic part 3. Each suction cup 752 is connected to the air cavity 741 on the side of the moving block 751 away from the drive screw 73. Each connecting transverse groove 44 of the connecting post 4 is also provided with a suction cup moving groove 441 on the side close to the ceramic part 3 for the suction cup 752 to slide into.

[0060] When the suction cup 752 is connected via the ceramic connecting assembly 75, during the process of moving the connecting plate 74 out of the connecting post 4, the drive screw 73 drives the connecting plate 74 to move outward from the connecting post 4. Then, when one side of the suction cup 752 abuts against the ceramic part 3, the intermediate screw 6 rotates in the opposite direction, thereby driving the moving block 751 to move closer to the driven bevel gear 72. This creates a negative pressure on the side of the air chamber 741 away from the drive screw 73. When one side of the ceramic part 3 moves closer to the connecting plate 74 under the action of the snap-fit ​​plate 52, the suction cup 752 adsorbs the ceramic part 3, thus achieving adsorption of the ceramic part 3. Furthermore, during the rotation, since the connecting plate 74 is connected to the GRG plate 2 via the fastener 76, the position of the connecting plate 74 is fixed during the reverse rotation of the drive screw 73.

[0061] The fastener 76 is configured as a connecting pin 761, with the tip of the connecting pin 761 facing away from the connecting plate 74. Each connecting transverse groove 44 of the connecting post 4 is also provided with a pin shifting groove 442 on the side near the GRG plate 2 for the connecting pin 761 to slide into.

[0062] When the snap-fit ​​plate 52 moves the ceramic part 3 toward the side closer to the GRG plate 2, the connecting post 4 also moves the four connecting plates 74 toward the side closer to the GRG plate 2, so that the connecting pins 761 on one side of each connecting plate 74 can be inserted into the GRG plate 2, thereby achieving a stable connection between the connecting plate 74 and the GRG plate 2.

[0063] Reference Figure 4 A first handle 45 is fixedly connected to the end of the connecting column 4 near the keel 1. The end of the intermediate screw 6 near the first handle 45 passes through the first handle 45 and is rotatably connected to the first handle 45. A second handle 63 is fixedly connected to the end of the intermediate screw 6 passing through the first handle 45.

[0064] By setting a second handle 63, it is possible for staff to rotate the middle screw 6 independently.

[0065] Reference Figure 3 Each snap-fit ​​plate 52 is fixedly connected to a buffer pad 524 on the side near the GRG plate 2, and each grouting hole 523 is set through the buffer pad 524.

[0066] Due to the presence of the buffer pad 524, when the ceramic part 3 is moved towards the side closer to the GRG plate by multiple snap-fit ​​plates 52, the buffer pad 524 can reduce the wear generated on the inner wall of the ceramic part 3.

[0067] This application also discloses a method for ceramic mounting on curved GRG plates, as detailed below:

[0068] S1: Based on the dimensions of the ceramic part 3 to be connected to one side of the GRG plate 2, multiple sets of corresponding mounting holes are made on the side of the keel 1, GRG plate 2 and ceramic part 3 near the GRG plate 2, and each set of mounting holes consists of two vertically opened holes.

[0069] S2: Insert each connecting post 4 through the keel 1 and GRG plate 2 into the ceramic part 3 in sequence. Then rotate the middle screw 6. The middle screw 6 drives the abutment block 51 to move away from the second handle 63, thereby moving the four snap-fit ​​plates 52 out of the connecting post 4.

[0070] The intermediate screw 6 also drives the drive bevel gear 71 to rotate, and the drive bevel gear 71 drives the drive screw 73 to rotate, thereby moving the four connecting plates 74 out of the connecting column 4, and making each connecting plate 74 located between the ceramic part 3 and the GRG plate 2.

[0071] A fixing frame 8 is provided between the GRG plate 2 and the keel 1, and each connecting post 4 is threaded through the fixing frame 8. A fixing bolt 81 is provided on the side of the fixing frame 8 near the GRG plate 2 to connect the GRG plate 2 and the fixing frame 8. A fixing bolt 81 is also provided on the end of the fixing frame 8 near the keel 1 to connect the keel 1 and the fixing frame 8.

[0072] Rotating the connecting column 4 causes the ceramic part 3 to move closer to the GRG plate 2, thereby inserting the connecting nail 761 into the GRG plate 2. Rotating the middle screw 6 causes the four moving blocks 751 to move closer to the middle screw 6, thereby enabling the suction cup 752 to adsorb the ceramic part 3.

[0073] S3: Inject glue into the grout inlet hole 61 from the end of the middle screw 6 near the keel 1, so that the glue can pass through the grout inlet hole 61, the grouting connection hole 512, the grouting through hole 522 and the grouting hole 523 in sequence, and bond the snap-fit ​​plate 52 to the ceramic part 3, thereby realizing the connection between the ceramic part 3 and the snap-fit ​​plate 52.

[0074] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A ceramic mounting structure for curved GRG (Glass Reinforced Plastic) sheets, characterized in that: It includes a keel (1) connected to the wall on one side and a GRG plate (2) connected to one side of the keel (1). The GRG plate (2) has a ceramic part (3) that will be connected to the side of the GRG plate (2) on one side. It also has a plurality of connecting posts (4). Each connecting post (4) has a thread on its outer side. Each connecting post (4) passes through the keel (1), the GRG plate (2) and the ceramic part (3) in sequence and is threaded to the keel (1) and the GRG plate (2). The connecting post (4) is also provided with a snap-fit ​​assembly (5) for connecting the connecting post (4) and the ceramic part (3). The connecting post (4) has an internal threaded intermediate screw (6). The snap-fit ​​assembly (5) includes an abutment block (51) located inside the connecting post (4) and threaded onto the intermediate screw (6). The outer sidewall of the abutment block (51) is gradually inclined toward the outside of the connecting post (4) from the side away from the moving direction of the abutment block (51). The inclined sidewall of the abutment block (51) abuts against a plurality of snap-fit ​​plates (52) arranged in the same plane. The side of the snap-fit ​​plate (52) away from the abutment block (51) can extend out of the connecting post (4) to the outside.

2. The curved GRG plate ceramic mounting structure according to claim 1, characterized in that: One end of the intermediate screw (6) passes through the end of the connecting column (4) near the keel (1), and the middle of the intermediate screw (6) is provided with a grout inlet hole (61) that connects the middle screw (6) to the end near the keel (1). The abutting block (51) is provided with a placement groove (511) for placing multiple snap-fit ​​plates (52). The side wall of the placement groove (511) is provided with a grouting connection hole (512) that connects to the grout inlet hole (61). The snap-fit ​​plate (52) is provided with a grouting through hole (522) that connects to the grouting through hole (512). Each snap-fit ​​plate (52) is provided with multiple grouting through holes (522) and grouting holes (523) that connect the snap-fit ​​plate (52) to the side wall of the ceramic part (3) on the side that abuts against the side wall of the ceramic part (3).

3. The curved GRG plate ceramic mounting structure according to claim 2, characterized in that: The connecting column (4) is also provided with a connecting mechanism (7) for connecting the opposite surfaces of the GRG plate (2) and the ceramic part (3).

4. The curved GRG plate ceramic mounting structure according to claim 3, characterized in that: The connecting mechanism (7) includes a drive bevel gear (71) fixedly sleeved on the outside of the intermediate screw (6). The drive bevel gear (71) meshes with a plurality of driven bevel gears (72). Each driven bevel gear (72) is fixedly connected to a drive screw (73) on the side away from the intermediate screw (6). Each drive screw (73) is threadedly connected to a connecting plate (74) on the side away from the driven bevel gear (72). Each connecting plate (74) has one end away from the drive screw (73) that can pass through the interior of the connecting post (4) and is located between the ceramic part (3) and the GRG plate (2). Each connecting plate (74) has a ceramic connecting assembly (75) for connecting the ceramic part (3) on the side close to the ceramic part (3). Each connecting plate (74) has a fastener (76) for connecting the GRG plate (2) on the side close to the GRG plate (2).

5. The curved GRG plate ceramic mounting structure according to claim 4, characterized in that: Each of the connecting plates (74) has an air cavity (741) inside. The ceramic connecting assembly (75) includes a moving block (751) located inside the air cavity (741). The moving block (751) abuts against the inner wall of the air cavity (741) and separates the air cavity (741). One end of each driving screw (73) passes through the connected connecting plate (74) and is rotatably connected to the moving block (751) inside the connecting plate (74). The ceramic connecting assembly (75) also includes a suction cup (752) fixedly connected to the side of the connecting plate (74) near the ceramic part (3) and communicating with the side of the air cavity (741) inside the connecting plate (74) away from the driving screw (73).

6. A curved GRG plate ceramic mounting structure according to any one of claims 4 or 5, characterized in that: The fastener (76) is a connecting pin (761) that is fixedly connected to the side of the connecting plate (74) near the GRG plate (2) and can be inserted into the interior of the GRG plate (2).

7. The curved GRG plate ceramic mounting structure according to claim 2, characterized in that: Each of the snap-fit ​​plates (52) has a buffer pad (524) fixedly connected to the side that can abut against the ceramic part (3), and the grouting hole (523) is provided through the buffer pad (524).

8. A construction method for a curved GRG ceramic tile hanging structure, referring to the hanging structure as described in any one of claims 1-7, characterized in that, Includes the following steps: S1: According to actual needs, multiple interconnected through holes are opened on the ceramic part (3), GRG plate (2) and keel (1), and then different connecting posts (4) are inserted into each through hole to connect the GRG plate (2) and keel (1); S2: Simultaneously rotate the connecting post (4) and the intermediate screw (6) so that the abutment block (51) pushes multiple snap-fit ​​plates (52) into the ceramic part (3) during the movement, and drives multiple connecting plates (74) to be placed between the ceramic part (3) and the GRG plate (2). Then rotate the intermediate screw (6) to drive the ceramic part (3) to move closer to the GRG plate (2) through multiple snap-fit ​​plates (52) so that the suction cup (752) is adsorbed on the ceramic part (3), and the connecting pin (761) is inserted into the GRG plate (2). S3: Inject glue into the slurry inlet (61) and connect the snap plate (52) and the ceramic part (3) through the glue.