Prefabricated tile wall installation structure and construction process
By using a prefabricated tile wall installation structure, and utilizing the design of sliding grooves and positioning components, the problem of damage to the tile wall surface during design changes is solved, thereby improving the reuse rate of tiles and the environmental friendliness of construction.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-04-25
- Publication Date
- 2026-03-06
AI Technical Summary
Existing tiled walls suffer from high tile damage rates and low reuse rates when redesigning, and the construction process is not green or environmentally friendly enough.
The prefabricated tile wall installation structure uses sliding grooves and positioning components on the installation parts. The tile panels are embedded and assembled by using limiting blocks to fit into the sliding grooves. The position of the limiting blocks can be adjusted by adjusting components, simplifying the installation and disassembly process.
It improves the reuse rate of ceramic tile slabs, reduces the use of concrete in construction, enhances the stability and convenience of installation, and achieves a green and environmentally friendly construction process.
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Figure CN116537482B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of decoration and construction, and more specifically, it relates to a prefabricated tile wall installation structure and its construction process. Background Technology
[0002] Tiling walls is a common practice in modern home renovation.
[0003] When laying existing wall tiles, after measuring and setting out the lines, cement mortar is laid on the back of the tiles after they have been soaked in water. The tiles are then laid on the corresponding wall surface. After the tiles are laid, diagonal leveling and compaction tools are used to clean the horizontal and vertical joints. Finally, the joints are caulked to complete the wall tile installation.
[0004] When it is necessary to change the wall design, the tiles need to be knocked off. Since they are fixed by cement mortar, the tiles are basically damaged during the knocking off process, resulting in low reuse rate, which needs to be improved. Summary of the Invention
[0005] To address the low reuse rate of ceramic tiles on wall surfaces, this application provides a prefabricated ceramic tile wall installation structure and its construction process.
[0006] This application provides a prefabricated tile wall installation structure and its construction process, which adopts the following technical solution:
[0007] An assembled tile wall installation structure includes mounting components for installation on a wall and multiple tile panels disposed on the mounting components. Multiple mounting components are distributed in parallel. Each mounting component has a sliding groove on its side adjacent to the wall, the sliding groove extending along the length of the mounting component. Each tile panel has a positioning component on its back, comprising a fixing part disposed on the tile panel and a limiting block disposed on the fixing part. The limiting block protrudes from the sidewall of the fixing part and forms a limiting groove between itself and the tile panel. The limiting groove is configured such that when the limiting block is correspondingly located within the sliding groove, the solid part of the mounting component located on the side of the sliding groove closest to the tile panel is embedded and limited.
[0008] The above technical solution achieves embedded assembly of the tile slabs by embedding them into the sliding groove using the positioning blocks of the positioning components. During actual installation, the tiles are positioned by abutting against each other. This prefabricated installation allows the tile slabs to be disassembled and recycled when the wall design needs to be changed, reducing damage caused by disassembly and increasing the reuse rate of the tile slabs. Furthermore, it reduces on-site concrete mixing, making the decoration construction more environmentally friendly.
[0009] Optionally, the sliding groove extends through the mounting member at least once along its length. The mounting member has two sliding grooves with their openings facing opposite directions. Each tile plate has two positioning members, which correspond one-to-one with the sliding grooves of the corresponding mounting member.
[0010] The above technical solution uses two sliding grooves to guide and position the tile slab, allowing the positioning component to slide and be installed along the length of the sliding groove, resulting in better structural stability after the tile slab is installed.
[0011] Optionally, in each of the two positioning members of the ceramic tile, the two limiting blocks are arranged facing each other, and the distance between the two limiting blocks is greater than or equal to the distance between the two sliding groove openings of the corresponding mounting member. Each limiting block is slidably connected to the corresponding fixing part, and each fixing part is provided with an adjusting member. The adjusting member is used to adjust the sliding of the limiting block and make the distance between the two limiting blocks less than the distance between the two sliding groove openings of the corresponding mounting member.
[0012] With the above technical solution, the sliding of the limiting block is adjusted by the adjusting component. During actual installation, the tile board is installed on the mounting component when the distance between the two limiting blocks is greater than the distance between the two sliding groove openings of the corresponding mounting component. Then, the limiting block is slid into the corresponding sliding groove by the adjusting component to achieve limiting. The tile board does not need to slide and be inserted from one end of the sliding groove, making the installation of the tile board more convenient.
[0013] Optionally, the adjusting component includes an abutment block and an adjusting rod. The adjusting rod is slidably connected to the fixing part. The sliding direction of the adjusting rod is perpendicular to the sliding direction of the corresponding limiting block and parallel to the back of the ceramic tile. The abutment block is disposed on the limiting block. The adjusting rod has an adjusting surface that is inclined along the sliding direction of the adjusting rod to abut against the corresponding abutment block to drive the limiting block to slide.
[0014] The above technical solution involves adjusting the adjusting rod to move the adjusting surface, which in turn moves the contact block, thereby causing the limiting block to slide and embed into the sliding groove to achieve limiting.
[0015] Optionally, multiple abutment blocks are distributed at intervals along the sliding direction of the adjusting rod, and the adjusting surface is provided corresponding to the abutment blocks.
[0016] Through the above technical solution, multiple abutment blocks are distributed at intervals along the sliding direction of the adjusting rod, and in conjunction with multiple adjusting surfaces, the sliding of the limiting block is made more stable.
[0017] Optionally, the adjusting rod has an adjusting groove located on the side of the limiting block near or away from the tile board. The adjusting groove extends along the sliding direction of the adjusting rod and includes a first groove segment parallel to the sliding direction of the adjusting rod and a second groove segment communicating with the first groove segment. The second groove segment is inclined toward another limiting block corresponding to the tile board in a direction away from the first groove segment. The adjusting surface is the inner sidewall of the second groove segment. The abutment block is embedded in the adjusting groove.
[0018] The above technical solution allows the adjusting rod to both drive the limiting block to slide into the corresponding sliding groove and drive the limiting block to slide out of the sliding groove, making the actual installation and disassembly operations more convenient.
[0019] Optionally, the outer end face of the abutment block is a circumferential surface and its axis is perpendicular to the back of the ceramic tile. The abutment block is rotatably connected to the limiting block about its own axis.
[0020] Through the above technical solution, the rotating connection of the abutment block can reduce the friction between the abutment block and the inner wall of the adjustment groove, making the adjustment of the adjustment rod more convenient and smooth.
[0021] Optionally, the upper end of the fixing part is flush with the upper end of the ceramic tile, the sliding direction of the adjusting rod is vertical, and the lower end of the adjusting rod protrudes from the lower end of the ceramic tile.
[0022] When the tile slabs are assembled, the adjusting rod of the upper tile slab abuts against the fixing part of the lower tile slab, so that the lower end of the adjusting rod of the upper tile slab is flush with the lower end of the corresponding tile slab. The sliding of the adjusting rod causes the abutment block to slide, so that the limiting block is embedded in the sliding groove for limiting.
[0023] With the above technical solution, when the tile panels are assembled, the upper tile panel abuts against the lower tile panel, causing the adjusting rod to retract, which in turn drives the corresponding limiting block of the tile panel to embed into the sliding groove, making the installation of the tile panels more efficient and convenient.
[0024] Optionally, the upper end of the fixing part is threaded with an adjusting bolt, the upper end of the adjusting bolt being lower than or flush with the upper end of the fixing part. The adjusting bolt is configured to abut against the adjusting rod when the tile is removed, causing the lower end of the adjusting rod to protrude from the lower end of the tile and causing the limiting block to disengage from the sliding groove.
[0025] With the above technical solution, when it is necessary to remove the tile panel, the adjusting rod can be moved by turning the adjusting bolt, which makes the tile panel removal operation more convenient.
[0026] This application also provides a construction process for a prefabricated tile wall installation structure, used for constructing any of the prefabricated tile wall installation structures described above, comprising the following steps:
[0027] S1, Install the mounting bracket on the wall;
[0028] S2, the positioning part of the tile board is matched with the sliding groove to realize the installation of the tile board.
[0029] In summary, this application includes at least one of the following beneficial technical effects:
[0030] (1) Through prefabricated installation, when the wall design needs to be changed, the tile panels can be disassembled and recycled, reducing the damage caused by disassembling the tile panels and making the tile panels more reusable.
[0031] (2) By setting the adjustment component, the tile board does not need to be slid and inserted into the sliding groove from one end, making the installation of the tile board more convenient;
[0032] (3) By adjusting the lower end of the tile plate, when the tile plate is assembled, the upper tile plate abuts against the lower tile plate, causing the adjusting rod to retract, which can drive the corresponding limiting block of the tile plate to be embedded in the sliding groove, making the installation of the tile plate more efficient and convenient. Attached Figure Description
[0033] Figure 1 This is an overall schematic diagram of Example 1;
[0034] Figure 2 This is a partial explosion diagram of the ceramic tile slab in Example 1;
[0035] Figure 3 This is a schematic diagram of the positioning component structure in Example 1;
[0036] Figure 4 This is a partial cross-sectional view of the positioning component in Embodiment 1;
[0037] Figure 5 This is a schematic diagram of the adjusting component structure in Example 1;
[0038] Figure 6 This is a partial cross-sectional view of the positioning component in Embodiment 2.
[0039] Reference numerals: 1. Mounting component; 11. Strip plate; 12. Sliding groove; 2. Tile plate; 21. Tile body; 211. Inlay; 22. Fixing base; 221. Inlay groove; 3. Positioning component; 31. Fixing part; 32. Limiting block; 321. Guide surface; 4. Limiting groove; 5. Adjusting component; 51. Abutting block; 52. Adjusting rod; 6. Adjusting surface; 7. Adjusting groove; 71. First groove segment; 72. Second groove segment; 8. Adjusting bolt; 9. Drive bolt. Detailed Implementation
[0040] The present application will be further described in detail below with reference to the accompanying drawings.
[0041] This application discloses a prefabricated tile wall installation structure and its construction process.
[0042] Example 1:
[0043] A prefabricated tile wall installation structure, see Figure 1 The system includes a mounting component 1 and a tile panel 2. The mounting component 1 is used for installation on the wall. Multiple mounting components 1 are distributed in parallel. In actual use, the mounting component 1 can be a single long panel. In this example, the mounting component 1 includes two parallel long strips 11. In actual installation, the long strips 11 are installed on the wall vertically or horizontally. This example mainly shows the state where the long strips 11 are installed vertically.
[0044] Each mounting component 1 has a sliding groove 12 on its side adjacent to the wall, and the length of the sliding groove 12 extends along the length of the mounting component 1. Each mounting component 1 has two sliding grooves 12, which are correspondingly opened on two elongated plates 11, and the openings of the two sliding grooves 12 are arranged in opposite directions, either facing each other or facing away from each other. This example shows the state where the openings of the two sliding grooves 12 are arranged facing away from each other. Each sliding groove 12 has at least one end that passes through the corresponding elongated plate 11 along its length. In actual installation, the orientation of the through ends of the two elongated plates 11 needs to be consistent. For easy identification during installation, the sliding groove 12 is usually processed to pass through both ends along the length of the elongated plate 11.
[0045] See Figure 1 and Figure 2 Multiple tile slabs 2 are provided and are used to install on corresponding mounting parts 1. To enhance the structural strength of the tile slabs 2, each tile slab 2 includes a tile body 21 and a fixing seat 22. The fixing seat 22 is generally made of metal and is located on the side of the tile body 21 closest to the wall. The tile body 21 is fixed to the fixing seat 22 by adhesive. To enhance positioning, the fixing seat 22 has a groove 221 on its end face facing the tile body 21. The tile body 21 has an insert 211 that is positioned by embedding into the groove 221. When the insert 211 is embedded into the groove 221 for positioning, the outer peripheral surface of the tile body 21 is flush with the outer peripheral surface of the fixing seat 22 to form a rectangular plate.
[0046] See Figure 1 and Figure 3When the tile slab 2 is installed, the end face closest to the wall is the back side, and each tile slab 2 has a positioning element 3 on its back side. The positioning element 3 includes a fixing part 31 fixed to the back side of the tile slab 2 and a limiting block 32 disposed on the fixing part 31. The limiting block 32 protrudes from the side wall of the corresponding fixing part 31 and forms a limiting groove 4 between itself and the tile slab 2. After the limiting block 32 is inserted into the sliding groove 12, the solid part of the sliding groove 12 near the tile slab 2 is inserted into the limiting groove 4 to form a limit, thereby preventing the tile slab 2 from detaching from the mounting element 1.
[0047] Each tile slab 2 has two positioning elements 3, which are configured one-to-one with the sliding grooves 12 of the corresponding mounting component 1. In this example, the limiting blocks 32 of the two positioning elements 3 of each tile slab 2 are arranged facing each other. Of course, in actual use, when the openings of the two sliding grooves 12 of the mounting component 1 are arranged facing each other, the limiting blocks 32 of the two positioning elements 3 can be adjusted to be arranged facing away from each other.
[0048] The limiting block 32 can be directly fixed to the fixing part 31. In this case, the tile slab 2 needs to be slid into the sliding groove 12 of the mounting part 1 during installation. This example shows the case where the limiting block 32 is slidably connected to the corresponding fixing part 31. When both limiting blocks 32 of the tile slab 2 are in the initial state, the distance between the two limiting blocks 32 is greater than or equal to the distance between the openings of the two sliding grooves 12 of the corresponding mounting part 1. When the two limiting blocks 32 slide towards each other to the locked state, the distance between the two limiting blocks 32 of the tile slab 2 is less than the distance between the openings of the two sliding grooves 12 of the corresponding mounting part 1.
[0049] See Figure 1 and Figure 3 Each of the two limiting blocks 32 has a guide surface 321 at one end that is close to each other. The guide surfaces 321 are both located on the side of the limiting block 32 that is close to the tile plate 2, and the two guide surfaces 321 gradually tilt toward the tile plate 2 in a direction that moves away from each other. When the two limiting blocks 32 are embedded in the corresponding sliding groove 12, the guide surfaces 321 guide and guide the tile plate 2 to fit against the mounting piece 1, making the installation of the tile plate 2 more convenient.
[0050] See Figure 4 and Figure 5Each fixing part 31 is provided with an adjusting member 5, which is used to adjust the limiting block 32 from the initial state to the locked state. The adjusting member 5 includes an abutment block 51 and an adjusting rod 52. The adjusting rod 52 is slidably connected to the corresponding fixing part 31, and the sliding direction of the adjusting rod 52 is perpendicular to the sliding direction of the corresponding limiting block 32 and parallel to the back of the tile plate 2. The abutment block 51 is disposed on the limiting block 32 and is located between the adjusting rod 52 and the corresponding limiting block 32. The adjusting rod 52 has an adjusting surface 6, which is inclined along the sliding direction of the adjusting rod 52 to abut against the corresponding abutment block 51 to drive the limiting block 32 to slide. Multiple abutment blocks 51 are distributed at intervals along the sliding direction of the adjusting rod 52, and the adjusting surface 6 is disposed corresponding to the abutment blocks 51. When the adjusting rod 52 is located on the side of the limiting block 32 away from the corresponding limiting block 32 of the tile plate 2, the adjusting surface 6 is disposed on the end face of the adjusting rod 52 near the corresponding limiting block 32.
[0051] When the adjusting rod 52 is located on the side of the limiting block 32 that is close to or far from the tile plate 2, an adjusting groove 7 is provided on the end face of the adjusting rod 52 that is close to the limiting block 32. The adjusting groove 7 extends along the sliding direction of the adjusting rod 52 and includes a first groove segment 71 parallel to the sliding direction of the adjusting rod 52 and a second groove segment 72 communicating with the first groove segment 71. The second groove segment 72 is inclined toward the other limiting block 32 of the tile plate 2 in a direction away from the first groove segment 71. At this time, the adjusting surface 6 is the inner sidewall of the second groove segment 72. The outer end face of the abutment block 51 is circumferential and its axis is perpendicular to the back of the tile plate 2. Each abutment block 51 is embedded in the adjusting groove 7. In order to reduce the friction between the inner wall of the adjusting groove 7 and the abutment block 51, each abutment block 51 is rotatably connected to the limiting block 32 around its own axis. When the adjusting rod 52 slides and causes the abutment block 51 to undergo relative displacement along the adjusting groove 7, friction is reduced by rolling.
[0052] To facilitate production, the fixing part 31 can be formed by splicing the front and rear covers. After the adjusting rod 52, the contact block 51 and the limiting block 32 are all installed in place, the front and rear covers are welded and fixed or locked and fixed by fasteners such as bolts and rivets.
[0053] See Figure 4 and Figure 5The upper end of the fixing part 31 is flush with the upper end of the tile plate 2, and the lower end of the fixing part 31 is flush with the lower end of the tile plate 2. The sliding direction of the adjusting rod 52 is vertically set. When the adjusting rod 52 adjusts the limiting block 32 in the initial state, the lower end of the adjusting rod 52 protrudes from the lower end of the tile plate 2. When the tile plates 2 are assembled, the adjusting rod 52 of the upper tile plate 2 abuts against the fixing part 31 of the lower tile plate 2. During the pressing down of the upper tile plate 2, the lower end of the adjusting rod 52 of the upper tile plate 2 moves to be flush with the lower end of the corresponding tile plate 2. During this process, the sliding of the adjusting rod 52 causes the abutment block 51 to slide, so that the limiting block 32 is embedded in the sliding groove 12 to limit and thereby realize the adjustment of the limiting block 32 to the locked state.
[0054] To facilitate the disassembly of the tile slab 2, an adjusting bolt 8 is threadedly connected to the upper end of the fixing part 31. The upper end of the adjusting bolt 8 is lower than or flush with the upper end of the fixing part 31, and the lower end of the adjusting bolt 8 is used to abut against the adjusting rod 52. During actual installation, the adjusting bolt 8 is in a state that does not interfere with the retraction of the adjusting rod 52. At this time, the installation process of the tile slab 2 only requires retracting the adjusting rod 52 by abutting against it so that the limiting block 32 is adjusted to the locked state. When it is necessary to remove the tile slab 2, the adjusting bolt 8 is turned to abut against the adjusting rod 52, causing the lower end of the adjusting rod 52 to protrude from the lower end of the tile slab 2 and causing the limiting block 32 to disengage from the sliding groove 12, thereby adjusting the limiting block 32 to the initial state.
[0055] This application also discloses a construction process for a prefabricated tile wall installation structure, used for constructing the aforementioned prefabricated tile wall installation structure, including the following steps:
[0056] S1, Fix the mounting component 1 to the wall. The two elongated plates 11 of the mounting component 1 can be directly fixed to the wall, or the two elongated plates 11 can be indirectly installed on the wall through the mounting base. When installed using the mounting base, the elongated plates 11 slide and connect to the mounting base to adjust the relative distance between the two elongated plates 11. The specific adjustment mechanism can be an adjusting screw that is rotatably connected to the mounting base and threadedly connected to the elongated plates 11. The adjusting screw facilitates fine-tuning of the position of the elongated plates 11, making the actual installation operation more convenient.
[0057] S2, the positioning part 3 of the tile board 2 is matched with the sliding groove 12 to realize the installation of the tile board 2. First, the two limiting blocks 32 of the tile board 2 are in the initial state. After the back of the tile board 2 is attached to the mounting part 1, the limiting blocks 32 are inserted into the corresponding sliding groove 12 by pressing the adjusting rod 52, so that the two limiting blocks 32 are in the locked state, thereby realizing the installation and fixation of the tile board 2.
[0058] The working principle of this embodiment is as follows:
[0059] The tile slab 2 is embedded and assembled by inserting the limiting block 32 of the positioning component 3 into the sliding groove 12. The assembly-type installation makes the installation operation of the tile slab 2 relatively simple.
[0060] When the wall design needs to be changed, the tile slab 2 can be removed and recycled. By turning the adjusting bolt 8, the adjusting rod 52 is pushed out, causing the limiting block 32 to come out of the sliding groove 12, making the removal of the tile slab 2 more convenient, reducing the damage caused by the removal of the tile slab 2, and making the reuse rate of the tile slab 2 higher.
[0061] Example 2:
[0062] A prefabricated tile wall installation structure, see Figure 6 The difference from Embodiment 1 lies in the different driving structure for adjusting the movement of the adjusting rod 52. The lower end of the adjusting rod 52 does not protrude from the lower end of the ceramic tile 2. The structure for driving the movement of the adjusting rod 52 uses a driving bolt 9. The driving bolt 9 is rotatably connected to the fixing part 31 via a snap ring. The axis of the driving bolt 9 is parallel to the sliding direction of the adjusting rod 52. The driving bolt 9 is threadedly connected to the adjusting rod 52. The rotation of the driving bolt 9 drives the adjusting rod 52 to move, thereby adjusting the position of the limiting block 32.
[0063] 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 fabricated tile wall surface mounting structure comprising a mounting member (1) for mounting to a wall surface and a plurality of tile panels (2) provided to the mounting member (1), characterized in that: The side surface adjacent to the wall surface of the mounting piece (1) is provided with a sliding groove (12), the length direction of the sliding groove (12) extends along the length direction of the mounting piece (1); the back surface of each ceramic tile plate (2) is provided with a positioning piece (3), the positioning piece (3) comprises a fixed part (31) arranged on the ceramic tile plate (2) and a limiting block (32) arranged on the fixed part (31), the limiting block (32) protrudes from the side wall of the fixed part (31) and forms a limiting groove (4) with the ceramic tile plate (2), the limiting groove (4) is arranged to be embedded in the solid body of the mounting piece (1) located on one side of the sliding groove (12) close to the ceramic tile plate (2) when the limiting block (32) is located in the sliding groove (12); The sliding groove (12) of the mounting piece (1) is provided with two, the openings of the two sliding grooves (12) are oppositely arranged, and the positioning piece (3) of each ceramic tile plate (2) is provided with two and is arranged one by one corresponding to the sliding groove (12) of the corresponding mounting piece (1); In the two positioning pieces (3) of each ceramic tile plate (2), the two limiting blocks (32) are oppositely arranged, the distance between the two limiting blocks (32) is greater than or equal to the distance between the openings of the two sliding grooves (12) of the corresponding mounting piece (1), each limiting block (32) is slidably connected to the corresponding fixed part (31), and each fixed part (31) is provided with an adjusting piece (5), the adjusting piece (5) is used for adjusting the sliding of the limiting block (32) and making the distance between the two limiting blocks (32) less than the distance between the openings of the two sliding grooves (12) of the corresponding mounting piece (1); The adjusting piece (5) comprises a resisting block (51) and an adjusting rod (52), the adjusting rod (52) is slidably connected to the fixed part (31), the sliding direction of the adjusting rod (52) is perpendicular to the sliding direction of the corresponding limiting block (32) and parallel to the back surface of the ceramic tile plate (2), the resisting block (51) is arranged on the limiting block (32), and the adjusting rod (52) has an adjusting surface (6), the adjusting surface (6) is arranged to be inclined along the sliding direction of the adjusting rod (52) and is used for abutting against the corresponding resisting block (51) to drive the limiting block (32) to slide; The upper end of the fixed part (31) is flush with the upper end of the ceramic tile plate (2), the sliding direction of the adjusting rod (52) is vertically arranged, and the lower end of the adjusting rod (52) protrudes from the lower end of the ceramic tile plate (2); When the ceramic tile plates (2) are assembled, the adjusting rod (52) of the ceramic tile plate (2) located above abuts against the fixed part (31) of the ceramic tile plate (2) located below, so that the lower end of the adjusting rod (52) of the ceramic tile plate (2) located above is flush with the lower end of the corresponding ceramic tile plate (2), the adjusting rod (52) slides to drive the resisting block (51) to slide, so that the limiting block (32) is embedded in the sliding groove (12) to limit. The adjusting rod (52) is provided with an adjusting groove (7) located on the side of the limiting block (32) close to or away from the tile board (2), the adjusting groove (7) extends along the sliding direction of the adjusting rod (52), the adjusting groove (7) comprises a first groove section (71) parallel to the sliding direction of the adjusting rod (52) and a second groove section (72) communicated with the first groove section (71), the second groove section (72) is inclined towards the direction of the other limiting block (32) of the corresponding tile board (2) away from the first groove section (71), and the adjusting surface (6) is the inner side wall of the second groove section (72); and the abutting block (51) is embedded in the adjusting groove (7).
2. The assembled ceramic tile wall mounting structure according to claim 1, characterized in that: The sliding groove (12) penetrates the mounting member (1) at least at one end in the length direction. 3.The assembled tile wall mounting structure according to claim 1, characterized in that: The abutting blocks (51) are spaced apart in the sliding direction of the adjusting rod (52), and the adjusting surface (6) is arranged corresponding to the abutting blocks (51). 4.The assembled tile wall mounting structure according to claim 1, characterized in that: The outer end surface of the abutting block (51) is a circumferential surface, and the axis thereof is perpendicular to the back surface of the tile board (2), and the abutting block (51) is rotationally connected to the limiting block (32) around the axis thereof. 5.The assembled tile wall mounting structure according to claim 4, characterized in that: The upper end of the fixing part (31) is threadedly connected with an adjusting bolt (8), the upper end of the adjusting bolt (8) is lower than or flush with the upper end of the fixing part (31), and the adjusting bolt (8) is arranged to abut against the adjusting rod (52) when the tile board (2) is disassembled, so that the lower end of the adjusting rod (52) protrudes from the lower end of the tile board (2) and the limiting block (32) is disengaged from the sliding groove (12).
6. A construction process of a fabricated tile wall surface mounting structure, characterized by: The mounting structure of the fabricated tile wall surface according to any one of claims 1-5, Comprising the following steps: S1, mounting the mounting member (1) on the wall surface; S2, the positioning member (3) of the tile board (2) is matched with the sliding groove (12) to realize the installation of the tile board (2).
Citation Information
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Fabricated tile mounting structure and construction process thereof
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