Tile drilling positioning device and method
By using a brick-attached drilling positioning device, symmetrical positioning is achieved through the engagement of the telescopic component and the positioning plate with the inclined groove. This solves the problem of drilling position deviation caused by multiple measurements in the prior art, and improves drilling efficiency and accuracy.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-01-30
- Publication Date
- 2026-03-31
AI Technical Summary
Existing technology requires multiple measurements when drilling holes in tiles, resulting in wasted time and deviations in hole position.
A brick-laying drilling positioning device is adopted, including an operating table, a side plate, a telescopic component, and a positioning component. The spacing between the positioning plates is adjusted by the telescopic component, and symmetrical positioning is achieved by the engagement block of the drive frame and the positioning plate with the inclined groove, thus ensuring the drilling position accuracy.
This reduces the number of measurements, improves the accuracy and efficiency of drilling positions, and avoids hole position deviations caused by manual positioning.
Smart Images

Figure CN121756473A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of tile drilling technology, and in particular to a tile drilling positioning device and positioning method. Background Technology
[0002] In building interior decoration, ceramic tiles are a commonly used building or decorative material with high hardness. During the tile installation process, it is often necessary to drill holes in the tiles. For example, when encountering the bends in water pipes on the wall or the location of power switch boxes, holes must be drilled in the appropriate positions in the tiles before the tiles can be installed.
[0003] Existing technologies for positioning holes for tile laying typically involve using a measuring tape to measure the location, marking the exact position on the tile surface, and then drilling. However, this requires multiple measurements, which is time-consuming and can lead to deviations in the drilling position. Therefore, a tile laying hole positioning device and method are proposed. Summary of the Invention
[0004] The purpose of this invention is to solve the shortcomings of existing technologies, which require multiple dimensional measurements, wasting time and causing deviations in drilling positions. Therefore, this invention proposes a brick-laying drilling positioning device and method.
[0005] To address the problems existing in the prior art, the present invention adopts the following technical solution: A positioning device and method for drilling holes for tiling includes an operating table. Two side plates are fixedly connected to both sides of the upper surface of the operating table. Telescopic components are rotatably connected to the inner side of the side plates. The telescopic components are symmetrically distributed about the axis of the operating table. A positioning component is provided inside the telescopic components. The positioning component includes a support frame, which is fixedly connected to a telescopic component. A drive column is slidably connected inside the support frame, and a connector is fixedly connected to the inner side of the drive column. The connector passes through the inner side of the support frame and is fixedly connected to the drive frame. A positioning plate is slidably connected inside the drive frame, and the positioning plates are arranged in an array inside the drive frame. The arrayed positioning plates are symmetrically distributed about the center of the support frame, and the structures at both ends of the positioning plates are identical.
[0006] Preferably, the upper surface of the positioning plate is rotatably connected to a meshing block, and the upper end of the drive frame is provided with a sloping groove, and the meshing block slides and fits against the right-angled edge of the sloping groove.
[0007] Preferably, the positioning plate has a storage groove inside, and a connecting block is fixedly connected to the bottom of the engagement block. Two rotating shafts are fixedly connected to both sides of the connecting block. The rotating shafts and the connecting block are both inside the storage groove, and a return spring is provided on the outer wall of the rotating shaft. The two ends of the return spring are respectively connected to the inner wall of the storage groove and the two sides of the connecting block.
[0008] Preferably, a groove is provided on one side of the positioning plate, and a slider is fixedly connected to the other end of the positioning plate, and the groove is adapted to the slider.
[0009] Preferably, the support frame, positioning plate, and drive frame are symmetrically distributed about the geometric center of the side plate, and a lifting column is slidably connected inside the drive column, and the bottom end of the lifting column is connected to the drive column at the lower end when it descends.
[0010] Preferably, a handle is provided on the side of the positioning plate away from the geometric center of the operating table.
[0011] Preferably, the telescopic component includes a fixed plate, which is fixedly connected to the support frame. A sliding plate is slidably disposed inside the fixed plate, and the sliding plate is fixedly connected to the support frame away from the geometric center of the operating table.
[0012] Preferably, gear blocks are slidably connected to both ends of the sliding plate, and a shrink block is fixedly connected to the bottom of the gear blocks. The shrink block slides inside the sliding plate, and a support spring is provided at the bottom of the shrink block. The other end of the support spring abuts against the inside of the sliding plate. Gear grooves are provided on the two sides of the fixed plate that contact the sliding plate, and the gear blocks mesh inside the gear grooves.
[0013] Preferably, a rotating column is fixedly connected to the outer wall of the fixed plate near the center of the operating table, and a rotating hole is opened on the inner side of the side plate, and the rotating column rotates inside the rotating hole.
[0014] Compared with the prior art, the beneficial effects of the present invention are as follows: After the operating table is placed on the side of the water pipe, the symmetrical positioning plates are separated by the telescopic component, and the pipe is placed in the gap between the two rows of positioning plates. Then, the drive frame is rotated by the drive column set inside the support frame. Since the inclined groove opened at the upper end of the drive frame is in contact with the right angle edge of the meshing block set at the upper end of the positioning plate, the drive frame moves with the drive column and drives the positioning plate to move. The positioning plates on both sides move inward at the same time. After the end of the positioning plate contacts the pipe, the meshing block set at the upper end of the positioning plate rotates into the receiving groove opened inside the positioning plate to position the pipe. After positioning, the tile is placed between the two symmetrical positioning plates and a hole is drilled. This reduces the number of measurements and ensures that the positional deviation of the drilling point on the tile is small, avoiding the hole position offset caused by manual positioning. Attached Figure Description
[0015] The accompanying drawings, which are included to provide a further understanding of the invention and form part of this application, illustrate exemplary embodiments of the invention and, together with their description, serve to explain the invention and do not constitute an undue limitation thereof. In the drawings: Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the overall partial cross-sectional structure of the present invention; Figure 3 This is a schematic diagram of the positioning structure of the present invention; Figure 4 This is a schematic cross-sectional view of the telescopic component of the present invention; Figure 5 This is a partial structural diagram of the positioning component of the present invention; Figure 6 This is a schematic diagram of the disassembled positioning plate structure of the present invention; Figure 7 This is a schematic diagram of the support frame and drive frame structure of the present invention.
[0016] Numbered in the diagram: 1. Control panel; 11. Side panel; Positioning components; 21. Support frame; 22. Drive frame; 23. Positioning plate; 231. Storage slot; 232. Rotating shaft; 233. Return spring; 234. Connecting block; 235. Engaging block; 236. Slider; 237. Slide groove; 24. Drive column; 25. Lifting column; 26. Inclined groove; 27. Connector; Telescopic assembly; 31. Fixed plate; 32. Sliding plate; 33. Gear block; 34. Retractable block; 35. Support spring; 36. Gear groove; Rotating column; 41. Rotating hole; 5. Handle. Detailed Implementation
[0017] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0018] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "installed," "equipped with," "sleeved / connected," "connected," etc., should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium; it can be a connection within two components. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances.
[0019] Example: This example provides a tile drilling positioning device and method, see [link to example]. Figure 1-7 Specifically, it includes an operating table 1, on which two side plates 11 are fixedly connected to both sides of the upper surface of the operating table 1. A telescopic assembly 3 is rotatably connected to the inner side of the side plates 11, and the telescopic assembly 3 is symmetrically distributed about the axis of the operating table 1. A positioning assembly 2 is provided inside the telescopic assembly 3. The positioning component 2 includes a support frame 21, which is fixedly connected to the telescopic component 3. A drive column 24 is slidably connected inside the support frame 21, and a connector 27 is fixedly connected to the inner side of the drive column 24. The connector 27 passes through the inner side of the support frame 21 and is fixedly connected to a drive frame 22. A positioning plate 23 is slidably connected inside the drive frame 22. The positioning plates 23 are arranged in an array inside the drive frame 22. The arrayed positioning plates 23 are symmetrically distributed about the center of the support frame 21, and the two ends of the positioning plates 23 have the same structure. In this optional embodiment, the side plates 11 on both sides of the operating table 1 support symmetrically distributed telescopic components 3. The spacing can be adjusted by telescopic extension to adapt to pipes or tiles of different sizes. The telescopic components 3 are fixed to the support frame 21, driving the overall adjustment range of the positioning components 2. In the positioning components 2, the drive column 24 slides in the support frame 21 and drives the drive frame 22 to move through the connector 27. The positioning plates 23 in the drive frame 22 are symmetrically arrayed and move synchronously with the drive frame 22. The same structure at both ends achieves bidirectional symmetrical positioning. The symmetrically distributed positioning plates 23 can move closer or further away from both sides synchronously. By adhering to the pipes or tiles, a stable clamp is formed. Combined with the adjustment capability of the telescopic components 3, positioning adaptation in multiple scenarios can be achieved. The symmetrical distribution and synchronous movement of the positioning plates 23 ensure that the position of the drilling point on the tile is symmetrical and has a small deviation, avoiding the offset problem of manual positioning. At the same time, the symmetrical structure achieves bidirectional synchronous positioning, reducing the tedious steps of single-sided adjustment. Combined with the telescopic function, it can quickly adapt to the scenario and improve drilling efficiency. Optionally, the upper surface of the positioning plate 23 is rotatably connected to a meshing block 235, and the upper end of the drive frame 22 is provided with a sloping groove 26, and the meshing block 235 slides and fits against the right-angled edge of the sloping groove 26. In this optional embodiment, when the drive frame 22 moves, the right-angled edge of the inclined groove 26 will generate a lateral thrust on the meshing block 235. Since the meshing block 235 is rotatably connected to the positioning plate 23, the thrust is transmitted to the positioning plate 23 through the meshing block 235, causing the positioning plate 23 to slide synchronously along the drive frame 22, thereby achieving symmetrical movement of the two positioning plates 23. This ensures that the movement of the drive frame 22 and the positioning plate 23 is completely synchronized, avoiding positioning deviations caused by inconsistent displacements of the two positioning plates 23, and improving hole position accuracy. At the same time, the positioning plate 23 is made of metal, which allows for multiple uses and reduces the possibility of deformation. Optionally, the positioning plate 23 has a storage groove 231 inside, and the bottom of the engagement block 235 is fixedly connected to a connecting block 234. Two rotating shafts 232 are fixedly connected to both sides of the connecting block 234. The rotating shafts 232 and the connecting block 234 are both inside the storage groove 231. A return spring 233 is provided on the outer wall of the rotating shaft 232. The two ends of the return spring 233 are respectively connected to the inner wall of the storage groove 231 and the two sides of the connecting block 234. In this optional embodiment, the engagement block 235 is fixed to the rotating shaft 232 via the bottom connecting block 234 and can rotate around the rotating shaft 232 within the receiving groove 231. The return spring 233 is sleeved on the outside of the rotating shaft 232, with its two ends connected to the inner wall of the receiving groove 231 and the connecting block 234, respectively. Under normal conditions, the elastic force pushes the connecting block 234 and the engagement block 235 to the initial position, keeping the engagement block 235 in contact with the right-angle side of the inclined groove 26. When the positioning plate 23 is obstructed from contacting the pipe, the engagement block 235 is subjected to a reaction force to rotate around the rotating shaft 232 and compress the single-sided return spring 233. Part of the structure is stored in the receiving groove 231. After positioning is completed, the reaction force disappears, and the elastic force of the return spring 233 drives the connecting block 234 and the engagement block 235 back to the initial position, re-engaging with the inclined groove 26 to form a locking state, thus avoiding positioning errors caused by the position deviation of the engagement block 235. Optionally, a groove 237 is provided on one side of the positioning plate 23, and a slider 236 is fixedly connected to the other end of the positioning plate 23, and the groove 237 is adapted to the slider 236. In this optional embodiment, by embedding the slider 236 into the groove 237, multiple positioning plates 23 can be spliced and extended, the overall length of the positioning structure can be flexibly adjusted, and it can be adapted to tiles or pipes of different sizes, solving the problem of limited length of a single positioning plate 23. Moreover, the precise fit between the groove 237 and the slider 236 makes the spliced positioning plates 23 form an integral rigid structure, avoiding positioning offset caused by gaps, ensuring that multiple positioning plates 23 move synchronously, and improving positioning accuracy. Optionally, the support frame 21, positioning plate 23, and drive frame 22 are symmetrically distributed about the geometric center of the side plate 11, and a lifting column 25 is slidably connected inside the drive column 24, and the bottom end of the lifting column 25 is connected to the drive column 24 at the lower end when it descends. In this optional embodiment, since the support frame 21 and the positioning plate 23 are symmetrical about the side plate 11, when the upper drive column 24 slides, the lifting column 25 inside the drive column 24 slides downward and connects to the drive column 24 at the bottom. When the upper drive column 24 slides, the drive column 24 at the bottom follows and is driven. After the pipe position is positioned, the lifting column 25 is raised upward and the connection between the two drive columns 24 is canceled, so that the tile is placed between the upper and lower positioning plates 23. Optionally, a handle 5 is provided on the side of the positioning plate 23 away from the geometric center of the operating table 1; In this optional embodiment, the positioning plate 23 located at the center of the control panel 1 is adjusted by the handle 5, and the position of the pipe is adjusted to improve its applicability. Optionally, the telescopic component 3 includes a fixed plate 31, which is fixedly connected to the support frame 21. A sliding plate 32 is slidably disposed inside the fixed plate 31, and the sliding plate 32 is fixedly connected to the support frame 21 which is away from the geometric center of the operating table 1. In this optional embodiment, the fixed plate 31 is fixed to the support frame 21 near the center of the operating table 1, and the sliding plate 32 is nested inside the fixed plate 31 and can slide along it. At the same time, the sliding plate 32 is fixed to the support frame 21 away from the center. When it is necessary to adjust the positioning range, the sliding plate 32 is pushed to slide along the fixed plate 31, which can change the distance between the two support frames 21: when the sliding plate 32 is pulled outward, the distance increases. This sliding fit transmits force through the rigid structure to ensure the stability of the support frame 21 and the positioning component 2 during the adjustment process, and realizes the linear adjustment of the overall span. At the same time, due to the relative sliding of the sliding plate 32 and the fixed plate 31, the distance of the positioning component 2 can be flexibly adjusted to adapt to workpieces such as tiles and pipes of different widths. It can meet the processing needs of multiple specifications without changing the equipment. Optionally, gear blocks 33 are slidably connected to both ends of the sliding plate 32, and a shrink block 34 is fixedly connected to the bottom of the gear block 33. The shrink block 34 slides inside the sliding plate 32, and a support spring 35 is provided at the bottom of the shrink block 34. The other end of the support spring 35 abuts against the inside of the sliding plate 32. Gear grooves 36 are opened on the two sides of the fixed plate 31 that contact the sliding plate 32, and the gear block 33 meshes inside the gear grooves 36. In this optional embodiment, the support spring 35 pushes the retraction block 34 upward under normal conditions, causing the gear block 33 to extend out of the sliding plate 32 and precisely mesh with the gear groove 36 on the inner wall of the fixed plate 31. At this time, the sliding plate 32 and the fixed plate 31 are relatively fixed and cannot slide freely. When the spacing needs to be adjusted, the sliding plate 32 slides with the support frame 21. The gear blocks 33 at both ends of the sliding plate 32 compress the support spring 35 downward and cause the retraction block 34 to retract into the sliding plate 32. The gear block 33 disengages from the gear groove 36, and the sliding plate 32 can slide freely along the fixed plate 31. After sliding to the target position, the gear block 33 is released, the support spring 35 recovers its elasticity, and pushes the gear block 33 to mesh with the gear groove 36 at the corresponding position again, completing the automatic locking and fixing the current telescopic spacing. At the same time, the meshing structure of the gear block 33 and the gear groove 36 has a large contact area and strong biting force, which can resist the vibration and external force during drilling, avoid the sliding plate 32 from being accidentally displaced, ensure the stability of the spacing of the positioning components 2, and improve the drilling accuracy. Optionally, a rotating column 4 is fixedly connected to the outer wall of the fixed plate 31 near the center of the operating table 1, and a rotating hole 41 is opened on the inner side of the side plate 11, and the rotating column 4 rotates inside the rotating hole 41. In this optional embodiment, by rotating the rotating column 4 inside the rotating hole 41, the positioning component 2 can be driven to position the pipe and then flip to clamp the tile between the upper and lower rows of positioning plates 23, thereby drilling and improving the accuracy of tile drilling.
[0020] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A tile drilling positioning device and positioning method, comprising an operating table (1), characterized in that: The operating platform (1) upper surface both sides are fixedly connected with two side plates (11), the side plate (11) inboard is rotatably connected with telescopic assembly (3), and the telescopic assembly (3) about operating platform (1) axial position is symmetric distribution, the telescopic assembly (3) inside is provided with positioning assembly (2); The positioning assembly (2) includes a support frame (21), the support frame (21) is fixedly connected with the telescopic assembly (3), and the support frame (21) is slidably connected with a drive column (24) inside, and the drive column (24) is fixedly connected with a connecting piece (27) inside, the connecting piece (27) penetrates the support frame (21) inside and is fixedly connected with a drive frame (22), and the drive frame (22) is slidably connected with a positioning plate (23) inside, and the positioning plate (23) is arrayed in the drive frame (22) inside, and the arrayed positioning plate (23) is symmetrically distributed about the center of the support frame (21), and the positioning plate (23) is provided with the same structure at both ends.
2. A tile drilling and positioning device and method according to claim 1 wherein: The positioning plate (23) upper surface is rotatably connected with a meshing block (235), and the drive frame (22) inside upper end is provided with a slope groove (26), and the meshing block (235) is slidably attached to the slope groove (26) straight side.
3. A tile drilling location device and method according to claim 2, wherein: The positioning plate (23) is provided with a receiving groove (231) inside, and the meshing block (235) is fixedly connected with a connecting block (234) at the bottom, the connecting block (234) is fixedly connected with two rotating shafts (232) on both sides, the rotating shaft (232) and the connecting block (234) are both in the receiving groove (231), and the rotating shaft (232) is provided with a return spring (233) on the outer wall, and the return spring (233) is connected to the inner wall of the receiving groove (231) and the connecting block (234) on both sides respectively.
4. A tile drilling location device and method according to claim 3 wherein: The positioning plate (23) is provided with a sliding groove (237) on one side, and the positioning plate (23) is fixedly connected with a sliding block (236) at the other end, and the sliding groove (237) is matched with the sliding block (236).
5. A tile drilling location device and method according to claim 4 wherein: The support frame (21), the positioning plate (23) and the drive frame (22) are symmetrically distributed about the geometric center of the side plate (11), and the drive column (24) is slidably connected with a lifting column (25) inside, and the lifting column (25) is connected to the drive column (24) at the bottom when it is lowered.
6. A tile drilling location device and method according to claim 5 wherein: The positioning plate (23) is provided with a handle (5) on the side away from the geometric center of the operating platform (1).
7. A tile drilling location device and method according to claim 1 wherein: The telescopic assembly (3) includes a fixed plate (31), the fixed plate (31) is fixedly connected with the support frame (21), and the fixed plate (31) is slidably provided with a sliding plate (32) inside, and the sliding plate (32) is fixedly connected with the support frame (21) away from the geometric center of the operating platform (1).
8. A tile drilling location device and method according to claim 7, wherein: The gear block (33) is slidably connected at both ends of the sliding plate (32), and the bottom of the gear block (33) is fixedly connected with a contraction block (34), the contraction block (34) slides in the sliding plate (32), and the bottom of the contraction block (34) is provided with a supporting spring (35), and the other end of the supporting spring (35) abuts against the inside of the sliding plate (32), gear grooves (36) are formed in the two surfaces of the fixed plate (31) in contact with the sliding plate (32), and the gear block (33) is engaged in the gear grooves (36).
9. A tile drilling location device and method according to claim 7, wherein: The outer wall of the fixed plate (31) is fixedly connected with a rotating column (4) near the center position of the operation table (1), rotating holes (41) are formed in the inner side of the side plate (11), and the rotating column (4) rotates in the rotating holes (41).