A type of floor tile mold structure
By using an adjustable frame structure and a tile separation structure, the problems of high labor intensity and low efficiency in the process of laying floor tiles are solved, enabling precise tile laying and improving the aesthetics and cleanliness of the floor.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHANXI CONSTR ENG CO LTD
- Filing Date
- 2025-05-28
- Publication Date
- 2026-05-26
AI Technical Summary
The existing floor tiling process is labor-intensive, inefficient, and makes it difficult to control the tile position and grout width, resulting in an unsightly floor finish.
It adopts an adjustable frame structure and a tile partition structure. By adjusting the position of the longitudinal and transverse partition plates, independent areas are divided to match the floor tile area. Combined with the drive device and connecting mechanism, it can achieve precise tile laying.
It improves work efficiency, ensures that each tile is accurately laid in the designated position, and enhances the aesthetics and cleanliness of the floor.
Smart Images

Figure CN224281896U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of ceramic tile technology, specifically to a floor tile laying mold structure. Background Technology
[0002] Tiles are a type of building decoration material, typically made from raw materials such as clay, quartz, and feldspar through processes such as mixing, molding, and sintering. They possess properties such as wear resistance, slip resistance, easy cleaning, and aesthetic appeal. Tiles are widely used for the decoration and paving of floors, walls, and ceilings, and can also be used for waterproofing and slip resistance in specific areas such as kitchens and bathrooms. There are many types of tiles, including glazed tiles, vitrified tiles, ceramic tiles, and mosaic tiles. The different materials and processing characteristics of tiles result in a variety of colors, textures, shapes, and sizes, meeting different occasions and personalized needs.
[0003] The current process of laying floor tiles generally involves manually pulling lines and laying the tiles one by one. This is not only labor-intensive and inefficient, but also requires high skill from the operator. Furthermore, it is difficult to control the tile placement and grout width, making it difficult to achieve the desired aesthetic effect for the entire floor. Utility Model Content
[0004] This utility model provides a floor tile mold structure to solve the problems in the background art.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a floor tile mold structure, comprising an adjustable frame structure and a tile separating structure, wherein the adjustable frame structure includes two splicing strips and two driving devices, and the two splicing strips and the two driving devices are interconnected by butt joints.
[0006] The driving device includes a driving bar, with a maintenance cover movably snapped onto the top of the driving bar. A fixed rack is fixedly connected inside the driving bar, and a movable rack is slidably connected inside the driving bar. A follower gear meshes between the fixed rack and the movable rack, and a connecting rod is fixedly installed at the center of the follower gear.
[0007] The tile partition structure includes a longitudinal partition plate and a transverse partition plate, which overlap each other. Both the longitudinal and transverse partition plates are connected to a follower gear via a connecting rod. The transverse partition plate has an insertion hole inside, and an abutment strip is movably inserted into the inner side of the insertion hole.
[0008] Furthermore, both the splicing strip and the side end of the driving device are fixedly connected to connecting blocks, and the inner side of the mating corner is provided with a connecting port, and the connecting block and the connecting port are movably engaged.
[0009] Furthermore, a lifting rod is fixedly installed at the top of the movable rack, and the top of the lifting rod extends above the inspection cover.
[0010] Furthermore, a guide opening is provided on the front side of the inspection cover, and the connecting rod extends to the outside of the drive bar through the guide opening. The entrance of the guide opening is located above the movable rack.
[0011] Furthermore, a locking pin is rotatably connected inside the drive bar, the locking pin is located above the fixed rack, and a rotating rod is fixedly installed at the top of the locking pin.
[0012] Furthermore, an arc-shaped groove is provided at the top of the inspection cover, and the rotating rod extends to the top of the inspection cover through the arc-shaped groove.
[0013] Furthermore, the portion of the abutment strip extending to the inner side of the transverse partition plate is in contact with the surface of the longitudinal partition plate.
[0014] Compared with the prior art, the present invention provides a floor tile mold structure, which has the following beneficial effects:
[0015] This floor tile installation mold structure, through the setting of an adjustable frame structure and a tile separating structure, utilizes...
[0016] The adjustable frame structure allows for flexible adjustment of the positions of the longitudinal and transverse partitions within the tile partition structure. This effectively divides the internal space into multiple independent zones, each the same size as a tile. Tiles can be laid directly within these zones, saving labor and significantly improving efficiency. Furthermore, this method results in a more aesthetically pleasing floor, as each tile is precisely positioned, ensuring overall neatness and harmony. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the structure of this utility model;
[0018] Figure 2 This is a schematic diagram of the adjustable frame structure of this utility model;
[0019] Figure 3 This is a schematic diagram of the driving device of this utility model;
[0020] Figure 4 This is a schematic diagram of the tile partition structure of this utility model.
[0021] In the diagram: 1. Adjustable frame structure; 101. Splicing strip; 102. Drive device; 103. Butt joint edge; 104. Connecting block; 105. Drive bar; 106. Inspection cover; 107. Fixed rack; 108. Movable rack; 109. Lifting rod; 110. Guide port; 111. Follower gear; 112. Connecting rod; 113. Locking pin; 114. Rotating rod; 2. Tile partition structure; 201. Longitudinal partition plate; 202. Transverse partition plate; 203. Insertion hole; 204. Abutment strip. Detailed Implementation
[0022] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. 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.
[0023] Please see Figure 1-4 This utility model discloses a floor tile mold structure, including an adjustable frame structure 1 and a tile separating structure 2. The adjustable frame structure 1 includes two splicing strips 101 and two driving devices 102, which are connected to each other by butt joint corners 103.
[0024] The drive device 102 includes a drive bar 105, with a maintenance cover 106 movably engaged at the top of the drive bar 105. A fixed rack 107 is fixedly connected inside the drive bar 105, and a movable rack 108 is slidably connected thereto. A follower gear 111 meshes between the fixed rack 107 and the movable rack 108, and a connecting rod 112 is fixedly installed at the center of the follower gear 111.
[0025] The tile partition structure 2 includes a longitudinal partition plate 201 and a transverse partition plate 202, which overlap each other. Both the longitudinal partition plate 201 and the transverse partition plate 202 are connected to the follower gear 111 via a connecting rod 112. The transverse partition plate 202 has an insertion hole 203 inside, and an abutment strip 204 is movably inserted into the inner side of the insertion hole 203.
[0026] By setting up an adjustable frame structure 1 and a tile partition structure 2, the positions of the longitudinal partition plates 201 and transverse partition plates 202 in the tile partition structure 2 can be flexibly adjusted using the adjustable frame structure 1. This allows the internal space of the adjustable frame structure 1 to be effectively divided into multiple independent areas, each with a size exactly equal to the area of the floor tiles. Floor tiles can be laid directly in these independent areas, saving labor and significantly improving work efficiency. Furthermore, floor tiles laid in this way result in a more aesthetically pleasing floor, as each tile is precisely placed in its designated position, ensuring overall neatness and harmony.
[0027] Specifically, the splicing strip 101 and the drive device 102 are both fixedly connected to the side ends of the connecting block 104, and the inner side of the mating corner 103 is provided with a connection port, and the connecting block 104 is movably engaged with the connection port.
[0028] In this embodiment, the splicing strip 101 and the driving device 102 are securely connected via the mating corners 103 through the snap-fit connection between the connecting block 104 and the connecting port, thereby enhancing the stability and robustness of the entire adjustable frame structure 1. This connection method is not only simple and easy to implement, but also facilitates disassembly and reassembly, improving the flexibility and applicability of the mold structure.
[0029] Specifically, a lifting rod 109 is fixedly installed at the top of the movable rack 108, and the top of the lifting rod 109 extends above the inspection cover 106.
[0030] In this embodiment, the lifting rod 109 is designed to allow the user to directly pull the movable rack 108 from above for movement. The user simply needs to grasp the lifting rod 109 and lift it upwards to cause the movable rack 108 to slide inside the drive bar 105. This allows the follower gear 111 to no longer be pressed by the movable rack 108, and the position of the connecting rod 112 can be changed by pulling the longitudinal partition plate 201 and the transverse partition plate 202, ultimately achieving adjustment of the longitudinal partition plate 201 and the transverse partition plate 202.
[0031] This design not only makes operation more intuitive and convenient, but also reduces the complexity and tedium of the operation process, further improving work efficiency and user experience. At the same time, the top of the lifting rod 109 extends to the top of the inspection cover 106, which also makes it easier for users to inspect and maintain the drive device 102 when needed, improving the maintainability and ease of use of the mold.
[0032] Specifically, the inspection cover 106 has a guide opening 110 on its front side, and the connecting rod 112 extends through the guide opening 110 to the outside of the drive bar 105. The entrance of the guide opening 110 is located above the movable rack 108.
[0033] In this embodiment, the guide port 110 allows for easy engagement of different numbers of follower gears 111 with the fixed rack 107, thereby facilitating the adjustment of the number of longitudinal partition plates 201 and transverse partition plates 202 to meet the tiling requirements of different sized floors.
[0034] The design of the guide port 110 not only allows the connecting rod 112 to pass smoothly, but also ensures the stability and accuracy of the follower gear 111 during movement, avoiding adjustment errors caused by shaking or offset.
[0035] During operation, users can flexibly add or reduce the number of follower gears 111 through the guide port 110 according to the ground size and tiling requirements, thereby adjusting the number and position of the longitudinal partition plates 201 and the transverse partition plates 202. This design not only improves the flexibility and adaptability of the mold structure, but also makes the entire tiling process more efficient and convenient.
[0036] Specifically, a locking pin 113 is rotatably connected inside the drive bar 105. The locking pin 113 is located above the fixed rack 107. A rotating rod 114 is fixedly installed at the top of the locking pin 113. An arc-shaped groove is opened at the top of the inspection cover 106. The rotating rod 114 extends to the top of the inspection cover 106 through the arc-shaped groove.
[0037] In this embodiment, the locking pin 113 effectively fixes the position of the movable rack 108, preventing it from moving when not in operation, thereby ensuring the stability and accuracy of the mold structure. When adjustment of the movable rack 108 is required, the user only needs to rotate the locking pin 113 to release the locking of the movable rack 108, allowing the movable rack 108 to be height-adjusted inside the drive bar 105, facilitating subsequent adjustment operations.
[0038] A rotating rod 114 is fixedly installed on the top of the locking pin 113. The rotating rod 114 allows the user to rotate the locking pin 113 directly from above, further improving the convenience and comfort of operation. At the same time, the top of the rotating rod 114 can also be equipped with anti-slip textures or anti-slip sleeves to increase the user's grip and stability during rotation, and prevent slippage or misoperation.
[0039] Specifically, the portion of the abutment strip 204 extending to the inner side of the transverse partition 202 is in contact with the surface of the longitudinal partition 201.
[0040] In this embodiment, the design of the abutment strip 204 can enhance the connection stability between the longitudinal partition 201 and the transverse partition 202, ensuring that the partition structure will not be displaced or deformed due to external forces when laying floor tiles.
[0041] The tight fit between the contact strip 204 and the longitudinal partition plate 201 can effectively prevent gaps from forming in the floor tiles during the laying process, and ensure that the edges and corners of the floor tiles fit together with the connection between the contact strip 204 and the longitudinal partition plate 201, further enhancing the aesthetics and overall effect of the floor laying.
[0042] In addition, the material and size of the 204 anti-collision strip can be customized according to actual needs to meet the requirements of different floor paving scenarios and improve the applicability and flexibility of the mold structure.
[0043] In use, people adapt the lengths of the adjustable frame structure 1 and the tile partition structure 2 according to the area where the floor tiles are to be laid.
[0044] Then, the user can place the adjustable frame structure 1 on the ground where the tiles are to be laid according to the actual ground size and tiling requirements. Then, through the entrance of the guide port 110, a different number of follower gears 111 are sent into the interior of the drive bar 105, causing the follower gears 111 to mesh with the fixed rack 107. Then, by pulling the longitudinal partition plate 201 and the transverse partition plate 202, the positional relationship between the follower gears 111 and the fixed rack 107 is changed, thereby flexibly adjusting the position of the longitudinal partition plate 201 and the transverse partition plate 202, thus dividing an independent area equal to the area of the floor tiles.
[0045] Then push the lifting rod 109 down, the movable rack 108 will slide down inside the drive bar 105 and mesh with the follower gear 111 again. At this time, the follower gear 111 will drive the longitudinal partition plate 201 and the transverse partition plate 202 to be fixed in the current position through the connecting rod 112.
[0046] Furthermore, by rotating the rotating rod 114, it is displaced along the arc-shaped groove, which in turn drives the locking pin 113 to rotate, causing the locking pin 113 to gradually rotate to the top of the movable rack 108, thereby locking the movable rack 108. This design not only ensures the stability and accuracy of the mold structure during adjustment, but also makes the operation simpler and more efficient.
[0047] Next, users can lay floor tiles in the designated independent areas. Since the size of each area is equal to the area of the floor tiles, it can be ensured that the floor tiles are laid accurately in the predetermined positions, improving laying efficiency and the aesthetics of the floor.
[0048] During the tiling process, if it is necessary to adjust the positions of the longitudinal divider 201 and the transverse divider 202 to accommodate different floor sizes or tiling requirements, the user simply needs to lift the lifting rod 109 upwards again. The movable rack 108 will disengage from the follower gear 111, allowing the user to freely move the longitudinal divider 201 and the transverse divider 202 to their new positions. Then, the user can push the lifting rod 109 downwards again to secure them. This flexible and convenient adjustment method greatly simplifies the tiling process and improves work efficiency.
[0049] Furthermore, during the tile laying process, the positional relationship between the contact strip 204 and the insertion hole 203 can be changed to accommodate tiles of different sizes and shapes, further enhancing the flexibility and applicability of the mold structure. This detachable and replaceable design between the contact strip 204 and the insertion hole 203 allows users to quickly adjust the layout of the partition structure according to actual needs, meeting diverse floor laying requirements.
[0050] Furthermore, the floor tile-laying mold structure of this utility model is easy to disassemble and reassemble. When cleaning or maintaining the mold structure is required, the user only needs to simply release the locking mechanism between the connecting block 104 and the connecting port to disassemble components such as the splicing strip 101, the driving device 102, and the mating corner 103. This design not only facilitates regular cleaning and maintenance of the mold structure, extending its service life, but also makes the mold structure more space-saving during transportation and storage, improving its portability and practicality.
[0051] In summary, this floor tile laying mold structure, by setting up an adjustable frame structure 1 and a tile dividing structure 2, allows for flexible adjustment of the positions of the longitudinal dividing plates 201 and transverse dividing plates 202 within the tile dividing structure 2. This effectively divides the internal space of the adjustable frame structure 1 into multiple independent areas, each with a size exactly equal to the area of the floor tile. Tiles can be directly laid within these independent areas, saving labor and significantly improving work efficiency. Furthermore, floor tiles laid in this way result in a more aesthetically pleasing floor, as each tile is precisely positioned in its designated location, ensuring overall neatness and harmony.
[0052] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A floor tile-laying mold structure, comprising an adjustable frame structure (1) and a tile separating structure (2), characterized in that: The adjustable frame structure (1) includes two splicing strips (101) and two driving devices (102), which are connected to each other by butt joints (103); The drive device (102) includes a drive bar (105), with a maintenance cover (106) movably attached to the top of the drive bar (105). A fixed rack (107) is fixedly connected inside the drive bar (105), and a movable rack (108) is slidably connected. A follower gear (111) meshes between the fixed rack (107) and the movable rack (108). A connecting rod (112) is fixedly installed at the center of the follower gear (111). The tile partition structure (2) includes a longitudinal partition plate (201) and a transverse partition plate (202). The longitudinal partition plate (201) and the transverse partition plate (202) overlap each other. Both the longitudinal partition plate (201) and the transverse partition plate (202) are connected to the follower gear (111) through a connecting rod (112). The transverse partition plate (202) has an insertion hole (203) inside. An abutment strip (204) is movably inserted into the inner side of the insertion hole (203).
2. The floor tile mold structure according to claim 1, characterized in that: The splicing strip (101) and the drive device (102) are both fixedly connected to the side ends of the connecting block (104). The inner side of the mating corner (103) is provided with a connection port, and the connecting block (104) is movably engaged with the connection port.
3. The floor tile mold structure according to claim 1, characterized in that: A lifting rod (109) is fixedly installed at the top of the movable rack (108), and the top of the lifting rod (109) extends above the inspection cover (106).
4. The floor tile mold structure according to claim 1, characterized in that: The inspection cover (106) has a guide opening (110) on the front side. The connecting rod (112) extends to the outside of the drive bar (105) through the guide opening (110). The entrance of the guide opening (110) is located above the movable rack (108).
5. The floor tile mold structure according to claim 1, characterized in that: The drive bar (105) is rotatably connected to a locking pin (113), which is located above the fixed rack (107). A rotating rod (114) is fixedly installed at the top of the locking pin (113).
6. The floor tile mold structure according to claim 5, characterized in that: The top of the inspection cover (106) is provided with an arc-shaped groove, and the rotating rod (114) extends to the top of the inspection cover (106) through the arc-shaped groove.
7. The floor tile mold structure according to claim 1, characterized in that: The portion of the abutment strip (204) extending to the inside of the transverse partition (202) is in contact with the surface of the longitudinal partition (201).