Building ceramic tile slitting device

Through the combination of lifting tracks and screw transmission and the design of elastic rubber block pressing plates, the problem of displacement and shaking of ceramic tiles during the cutting process is solved, and the precise positioning and movement control of the cutting wheel is realized, ensuring the stability and accuracy of the cutting, and improving processing efficiency and site cleanliness.

CN120481086AInactive Publication Date: 2025-08-15SHAANXI QINGCHEN INFORMATION TECHNOLOGY CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202510737943.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-04
Publication Date
2025-08-15
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The lack of effective tile fixing devices in the prior art leads to the tile easily displaced and shaking during the cutting process, the cutting size deviation is large, and the cutting wheel positioning and movement control are not accurate enough, which affects the cutting quality.

Method used

The lifting track and screw transmission combination is combined with elastic rubber blocks and pressing plates to achieve accurate vertical and horizontal positioning and movement control of the cutting wheel, and a special waste trough is designed to collect cutting debris to ensure the stability and accuracy of the cutting process.

Benefits of technology

It realizes stable and tightening of ceramic tiles, reduces cutting size deviation, improves the straightness and dimensional accuracy of cutting lines, improves processing efficiency and site cleanliness, and meets the strict requirements for tiles in building decoration.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120481086A_ABST
    Figure CN120481086A_ABST
Patent Text Reader

Abstract

The invention discloses a building ceramic tile slitting device which comprises a rack, a cutting platform is fixedly connected to the rack, a waste groove is formed in the cutting platform, the cutting platform is provided with a lifting rail, a sliding table is slidably connected to the lifting rail, a cutting wheel assembly is arranged on the sliding table and comprises a cutting wheel, and the cutting wheel is arranged on the cutting platform. The cutting wheel can extend to the waste tank; fixing plates are fixedly connected to the two ends of the lifting track, lead screws are rotationally connected to the two fixing plates through bearings, a driving motor is fixedly connected to one end of each lead screw, and the lead screws are connected to the sliding table; a vertical plate is fixedly connected to the cutting platform, a bearing frame is fixedly connected to the vertical plate, a first pressing plate capable of ascending and descending is connected to the lower side of the bearing frame, a first gap is formed in the first pressing plate, and the cutting wheel in the cutting wheels can extend into the first gap. The cutting device has the beneficial effects of being stable and accurate in cutting, and the problems in the prior art are solved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The invention belongs to the technical field of tile cutting, and in particular relates to a building tile cutting device. Background Art

[0002] In scenarios such as home renovation and commercial building renovation, tile slitting devices are used to cut tiles to suit different spatial layouts. For example, when laying tiles in a bathroom, the tiles need to be cut according to the location of sanitary fixtures such as washbasins and toilets, as well as the dimensions of the wall, to ensure a perfect fit. In the final stage of tile production, tile slitting devices cut large tile sheets into finished tiles of varying specifications. This allows for the production of tiles in various sizes to meet market demand, including standard sizes such as 300mm×300mm and 600mm×600mm, as well as custom sizes.

[0003] In existing technology, after the tile is placed on the cutting platform and adjusted for position using a positioning device, the drive system is activated, and the cutting tool, driven by a motor, rotates at high speed. The cutting tool is then manually or automatically controlled (some advanced slitting devices can achieve CNC automated cutting) to cut the tile along the set cutting line. During the cutting process, the cutting tool utilizes its inherent hardness and the cutting force generated by its high-speed rotation to gradually sever the tile material, resulting in a tile of the desired size.

[0004] However, the above technology has the following drawbacks: Existing technologies lack effective tile fixing devices or lack robust fixing methods. This can easily cause the tiles to shift and wobble due to the cutting force during the cutting process, resulting in significant deviations in cut dimensions and an inability to meet the stringent requirements for tile size fit in architectural decoration. For example, with some simple manual cutting devices, relying solely on manual hand-holding to cut the tiles, it's difficult to maintain a stable tile position, resulting in uneven edges and inaccurate dimensions.

[0005] Existing technologies lack precise cutting wheel positioning and movement control mechanisms. Control over the vertical and horizontal movement of the cutting wheel is imprecise, for example, due to the lack of high-precision transmission components and guides. This makes it difficult to ensure the cutting wheel descends vertically to the exact starting point and follows a precise path during horizontal cutting, impacting cut quality. Summary of the Invention

[0006] In response to the problems existing in the prior art, the present invention provides a building tile cutting device, which has the advantages of smooth and precise cutting and solves the problems of the prior art.

[0007] The present invention is achieved as follows: a building tile cutting device includes a frame, a cutting platform is fixedly connected to the frame, a waste trough is provided on the cutting platform, the cutting platform is provided with a lifting rail, a slide is slidably connected to the lifting rail, a cutting wheel assembly is provided on the slide, the cutting wheel assembly includes a cutting wheel, and the cutting wheel can extend to the waste trough; both ends of the lifting rail are fixedly connected to a fixed plate, the two fixed plates are rotatably connected to a screw rod through a bearing, one end of the screw rod is fixedly connected to a drive motor, and the screw rod is connected to the slide; the cutting platform is fixedly connected to a vertical plate, the vertical plate is fixedly connected to a supporting frame, the lower side of the supporting frame is connected to a first pressing plate that can be lifted and lowered, the first pressing plate is provided with a first gap, and the cutting wheel in the cutting wheel can extend into the first gap.

[0008] As a preferred embodiment of the present invention, the lifting track includes a straight track and a lifting drive member, the lifting drive member is fixedly connected to the cutting platform, and the straight track is fixedly connected to the upper end of the lifting drive member; a vertical slide is provided on the vertical plate, a sliding member is installed on the fixed plate, and the sliding member is slidably connected to the vertical slide.

[0009] As a preferred embodiment of the present invention, an elastic rubber block is fixedly connected to the lower surface of the straight track, and when the straight track descends, the elastic rubber block presses the tiles.

[0010] As a preferred embodiment of the present invention, the slide includes a U-shaped block and a connecting platform; the U-shaped block is slidably connected to the upper surface of the straight track; the connecting platform is fixedly connected to the U-shaped block, and the screw rod is connected to the U-shaped block through a thread.

[0011] As a preferred embodiment of the present invention, a transverse slide is provided on the straight track; the cutting wheel assembly includes: a cutting wheel, a motor, and a rotating shaft; the motor is fixedly connected to the U-shaped block, the rotating shaft is rotatably connected to the U-shaped block and the connecting table, and the rotating shaft passes through the transverse slide, and the cutting wheel is fixedly connected to the rotating shaft.

[0012] As a preferred embodiment of the present invention, the lower side of the supporting frame is connected to the first pressure plate through a first spring, the middle part of the first spring is fixedly connected to a fixing plate, the middle part of the fixing plate is connected to a guide rod, the lower end of the guide rod is connected to the first pressure plate, and the upper half of the guide rod is slidably connected to the supporting frame; a shift rod is fixedly connected to the straight track, and the shift rod is inserted into the first spring; the fixing plate is fixedly connected to the supporting plate, a second gap is provided on the supporting plate, and a third gap is provided on the supporting frame, and the third gap, the second gap and the first gap are aligned.

[0013] As a preferred embodiment of the present invention, a first elastic rubber layer is provided on the lower side of the first pressing plate; and a second elastic rubber layer is provided on the upper surface of the supporting plate.

[0014] As a preferred embodiment of the present invention, the upper end of the guide rod is fixedly connected to a connecting block, the lower end of the connecting block is fixedly connected to a second spring, and the lower end of the second spring is fixedly connected to the supporting plate.

[0015] As a preferred embodiment of the present invention, a dust suction pipe is fixedly connected to the connecting platform, a suction hole is provided on the dust suction pipe, and the dust suction pipe is connected to a vacuum cleaner through a hose.

[0016] As a preferred embodiment of the present invention, a horizontally arranged channel is provided inside the cutting platform, and the channel is connected to the waste trough.

[0017] Compared with the prior art, the present invention has the following beneficial effects: 1. The cutting wheel uses a combination of lifting rails and screw drive to achieve precise positioning and movement control in the vertical and horizontal directions. The lifting rail ensures that the cutting wheel descends vertically with high accuracy, so that the starting point of cutting into the tile is accurate; the screw drive has high-precision displacement control characteristics, and the pitch accuracy ensures that each movement of the slide is small and precise. Combined with the accurately positioned gap of the first pressure plate, it strictly constrains the cutting path, minimizes the cutting size deviation to the greatest extent, and meets the stringent requirements of architectural decoration for tile size fit. The tiles are stably pressed by the first pressure plate, eliminating displacement deviations caused by vibration and uneven force during cutting. The cutting lines are straight and the dimensions are accurate. Whether it is conventional square or rectangular cutting, it effectively improves the beauty and sealing of tile splicing and paving.

[0018] 2. The cutting platform is specially designed with a waste chute. During the cutting process, tile chips and fragments will naturally fall into the waste chute under the action of gravity and the cutting and throwing force of the cutting wheel. They will not be scattered in the cutting area, causing trouble for cleaning and affecting subsequent cutting. It also avoids waste materials from scratching or bumping the finished tiles, ensuring that the processing site is clean and orderly, reducing labor intensity and improving overall processing efficiency.

[0019] 3. By controlling the forward and reverse rotation, start and stop, and adjusting the speed and other parameters of the drive motor, the vertical cutting depth, horizontal cutting speed and direction of the cutting wheel can be flexibly adjusted to meet the cutting needs of tiles of different thicknesses and materials.

[0020] 4. The overall device integrates the cutting platform, lifting rails, and supporting frame, among other core components, based on a machine frame. Each part works closely together and is securely connected. The machine frame serves as the load-bearing foundation, ensuring the precise relative positioning of each component. The lifting rails, fixed plates, and screws form a stable transmission support structure, absorbing the reaction force of cutting while providing precise guidance. The supporting frame and cutting platform work together to ensure uniform and effective pressure from the pressure plate. The compact layout reduces floor space, making it easy to install and flexible in environments such as factory workshops and renovation sites. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1This is a schematic diagram of the three-dimensional structure of the building tile cutting device provided by an embodiment of the present invention from a first perspective; Figure 2 is a schematic diagram of the three-dimensional structure of the building tile cutting device provided by an embodiment of the present invention from a second perspective; Figure 3 The embodiment of the present invention provides Figure 2 Schematic diagram of the enlarged structure of part A; Figure 4 3D is a schematic diagram of the three-dimensional structure of the building tile cutting device provided by an embodiment of the present invention from a third perspective; Figure 5 The embodiment of the present invention provides Figure 4 Schematic diagram of the enlarged structure of part B; Figure 6 This is a schematic diagram of the main structure of the building tile cutting device provided by an embodiment of the present invention; Figure 7 The embodiment of the present invention provides Figure 6 Schematic diagram of the cross-sectional structure of the CC part; Figure 8 The embodiment of the present invention provides Figure 7 Schematic diagram of the enlarged structure of part D.

[0022] In the figure: 1. Frame; 2. Cutting platform; 3. Waste chute; 4. Lifting track; 41. Straight track; 42. Lifting drive member; 5. Slide; 51. U-shaped block; 52. Connecting table; 61. Cutting wheel; 62. Motor; 63. Rotating shaft; 7. Fixed plate; 8. Screw; 9. Drive motor; 10. Vertical plate; 11. Carrying frame; 12. First pressure plate; 13. First gap; 14. Vertical slide; 15. Sliding member; 16. Elastic rubber block; 17. Horizontal slide; 18. First spring; 19. Fixed plate; 20. Guide rod; 21. Push rod; 22. Carrying plate; 23. Second gap; 24. Third gap; 25. Connecting block; 26. Second spring; 27. Dust suction pipe; 28. Channel. DETAILED DESCRIPTION

[0023] In order to further understand the content, features and effects of the present invention, the following embodiments are given as examples and described in detail with reference to the accompanying drawings.

[0024] The structure of the present invention is described in detail below with reference to the accompanying drawings.

[0025] like Figures 1 to 8As shown, an embodiment of the present invention provides a building tile cutting device, including a frame 1, a cutting platform 2 is fixedly connected to the frame 1, a waste trough 3 is provided on the cutting platform 2, a lifting rail 4 is provided on the lifting rail 4, a slide 5 is slidably connected to the slide 5, a cutting wheel assembly is provided on the slide 5, the cutting wheel assembly includes a cutting wheel 61, and the cutting wheel 61 can extend to the waste trough 3; both ends of the lifting rail 4 are fixedly connected to fixed plates 7, and the two fixed plates 7 are rotatably connected to a screw rod 8 through bearings, one end of the screw rod 8 is fixedly connected to a drive motor 9, and the screw rod 8 is connected to the slide 5; the cutting platform 2 is fixedly connected to a vertical plate 10, and the vertical plate 10 is fixedly connected to a supporting frame 11, and the lower side of the supporting frame 11 is connected to a first pressing plate 12 that can be lifted and lowered, and the first pressing plate 12 is provided with a first gap 13, and the cutting wheel 61 in the cutting wheel 61 can extend into the first gap 13.

[0026] The above-mentioned building tile cutting device comprises the following steps when used: Preparation for tile positioning and pressing: At the beginning of the operation, place the building tiles to be cut flat on the designated position of the cutting platform 2. The cutting platform 2 serves as a load-bearing base and provides a stable support surface. The first pressing plate 12 that can be raised and lowered under the support frame 11 comes into play at this time, causing the first pressing plate 12 to descend and press on the surface of the tile. The first gap 13 reserved on the first pressing plate 12 has a width that matches the thickness of the cutting wheel 61 and a position that corresponds to the subsequent cutting trajectory, ensuring that the cutting wheel 61 can pass through unimpeded to carry out the cutting action. This pressing operation effectively fixes the tile, prevents displacement and shaking due to force during the cutting process, and ensures cutting accuracy.

[0027] The cutting wheel 61 is in place and the cutting action is triggered: when the tiles are firmly pressed, the drive motor 9 connected to the fixed plates 7 at both ends of the lifting track 4 starts to run, and the output shaft of the drive motor 9 drives the screw 8 to rotate. The screw 8 is a precision transmission component and is connected to the slide 5 by means of threaded fit. As the screw 8 rotates, the slide 5 slides horizontally smoothly and accurately in the direction specified by the lifting track 4 according to the direction and pitch of the screw 8 thread. Then the lifting track 4 moves downward, and the cutting wheel 61 installed on the side of the slide 5 moves downward synchronously, passing through the first gap 13 of the first pressure plate 12 until the cutting wheel 61 contacts the surface of the tile. Its sharp and wear-resistant wheel rim cuts into the tile material with the powerful cutting force possessed by its own high-speed rotation.

[0028] Continuous Cutting and Size Control: After the cutting wheel 61 enters the starting position of the tile, the drive motor 9 continues to operate, driving the slide 5 horizontally along the lifting track 4 through the screw rod 8. The cutting wheel 61 then traverses the tile along the predetermined cutting path. Waste and debris generated by cutting fall through the waste chute 3 provided on the cutting platform 2, preventing waste accumulation from hindering the cutting process or scratching the finished tile surface. The operator precisely controls the travel, starting, and stopping of the slide 5 according to the desired tile size, achieving a straight-line cut and slicing large tiles into smaller pieces that meet building installation and processing requirements.

[0029] Through the above settings, the beneficial effects are as follows: First, the cutting wheel 61 uses the lifting rail 4 and the screw 8 transmission combination to achieve precise positioning and movement control in the vertical and horizontal directions. The lifting rail 4 ensures that the cutting wheel 61 descends vertically with high accuracy, so that the starting point of cutting into the tile is accurate; the screw 8 transmission has high-precision displacement control characteristics, and the pitch accuracy ensures that each movement of the slide 5 is small and precise. Combined with the gap of the accurately positioned first pressure plate 12, it strictly constrains the cutting path, minimizes the cutting size deviation to the greatest extent, and meets the strict requirements of architectural decoration for the size fit of tiles. The tiles are stably pressed by the first pressure plate 12, eliminating displacement deviations caused by vibration and uneven force during cutting. The cutting lines are straight and the dimensions are accurate. Whether it is conventional square or rectangular cutting, it effectively improves the beauty and sealing of tile splicing and paving.

[0030] Second, the cutting platform 2 is specially designed with a waste trough 3. During the cutting process, tile chips and fragments naturally fall into the waste trough 3 under the action of gravity and the cutting and throwing force of the cutting wheel 61. They will not be scattered in the cutting area to cause cleaning trouble and affect subsequent cutting. It also avoids waste materials from scratching or bumping the finished tiles, ensuring that the processing site is clean and orderly, reducing labor intensity and improving overall processing efficiency.

[0031] Third, by controlling the forward and reverse rotation, start and stop, and adjusting the speed and other parameters of the driving motor 9, the vertical cutting depth, horizontal cutting speed and direction of the cutting wheel 61 can be flexibly adjusted to meet the needs of cutting tiles of various thicknesses and materials such as full-ceramic, ceramic, stoneware, etc.

[0032] Fourth, the overall device integrates the cutting platform 2, lifting rails 4, and support frame 11, all of which are tightly coordinated and securely connected. The frame 1 serves as the load-bearing foundation, ensuring the constant relative positioning accuracy of each component. The lifting rails 4, along with the fixed plate 7 and screw 8, form a stable transmission support structure, absorbing the cutting reaction force while providing precise guidance. The support frame 11 integrates with the cutting platform 2 to ensure uniform and effective pressure from the pressure plate. The compact layout reduces floor space, making it easy to install and flexible in environments such as factory workshops and renovation sites.

[0033] Furthermore, the lifting track 4 includes a straight track 41 and a lifting drive member 42, the lifting drive member 42 is fixedly connected to the cutting platform 2, and the straight track 41 is fixedly connected to the upper end of the lifting drive member 42; a vertical slide 14 is provided on the vertical plate 10, and a sliding member 15 is installed on the fixed plate 7, and the sliding member 15 is slidably connected to the vertical slide 14.

[0034] When the height of the cutting wheel 61 needs to be adjusted to accommodate cutting tiles of varying thicknesses or for equipment commissioning or maintenance, the lifting drive 42 (using a hydraulic rod as an example) located on the cutting platform 2 begins operating. The hydraulic rod, through the flow of internal hydraulic oil, achieves the telescopic movement of the piston in a closed cylinder according to Pascal's law. One end of the hydraulic rod is fixed to the cutting platform 2 as a support base, and the other end is firmly connected to the straight track 41. As the hydraulic rod piston extends outward, it applies an upward thrust to the straight track 41, driving it vertically upward. Conversely, when the piston retracts, the straight track 41 steadily descends. Because the cutting wheel 61 is mounted on a slide 5 that is slidably connected to the straight track 41, changes in the straight track 41's height are directly converted into adjustments to the cutting wheel 61's height position, precisely controlling the vertical distance between the cutting wheel 61 and the tile surface to be cut to meet diverse cutting depth requirements.

[0035] During the lifting and lowering process of the straight track 41, the vertical slide 14 on the vertical plate 10 and the sliding member 15 (slider or roller) on the fixed plate 7 work together to play a key guiding and stabilizing role. The vertical slide 14, as a groove or guide rail structure with precise dimensions and good straightness, defines the movement path of the sliding member 15. If the sliding member 15 is a slider, it is tightly embedded in the vertical slide 14. Relying on the low friction and high precision fit between the slider and the surface of the vertical slide 14, when the hydraulic rod pushes the straight track 41 to lift and lower, the slider can only slide strictly along the vertical slide 14 in the vertical direction, preventing the straight track 41 from experiencing horizontal shaking, offset and other unstable conditions; if the sliding member 15 is a roller, the roller is installed on the fixed plate 7 through a bearing and rolls forward in the vertical slide 14. The extremely low rolling friction characteristic is used to reduce the lifting resistance. At the same time, the contact limit between the roller and the sides and bottom of the vertical slide 14 ensures that the lifting and lowering process of the straight track 41 is smooth and stable, and the height adjustment action of the cutting wheel 61 is linear and stable.

[0036] Furthermore, an elastic rubber block 16 is fixedly connected to the lower surface of the straight track 41. When the straight track 41 descends, the elastic rubber block 16 can further press the tiles to improve stability.

[0037] Furthermore, the slide 5 includes a U-shaped block 51 and a connecting platform 52; the U-shaped block 51 is slidably connected to the upper surface of the straight track 41; the connecting platform 52 is fixedly connected to the U-shaped block 51, and the screw rod 8 is connected to the U-shaped block 51 by a thread.

[0038] Furthermore, a transverse slide 17 is provided on the straight track 41; the cutting wheel assembly includes: a cutting wheel 61, a motor 62, and a rotating shaft 63; the motor 62 is fixedly connected to the U-shaped block 51, the rotating shaft 63 is rotatably connected to the U-shaped block 51 and the connecting platform 52, and the rotating shaft 63 passes through the transverse slide 17, and the cutting wheel 61 is fixedly connected to the rotating shaft 63.

[0039] Furthermore, the lower side of the supporting frame 11 is connected to the first pressure plate 12 through a first spring 18, and a fixing plate 19 is fixedly connected to the middle part of the first spring 18, and a guide rod 20 is connected to the middle part of the fixing plate 19, and the lower end of the guide rod 20 is connected to the first pressure plate 12, and the upper half of the guide rod 20 is slidably connected to the supporting frame 11; a shift rod 21 is fixedly connected to the straight track 41, and the shift rod 21 is inserted into the first spring 18; the fixing plate 19 is fixedly connected to a supporting plate 22, and a second gap 23 is provided on the supporting plate 22, and a third gap 24 is provided on the supporting frame 11, and the third gap 24, the second gap 23 and the first gap 13 are aligned.

[0040] With this setting, there are two ways to use it: Method of use 1: Place the tiles on the cutting platform 2, shorten the lifting drive 42, and lower the straight track 41. On the one hand, the cutting wheel 61 can be lowered to cut the tiles. On the other hand, the straight track 41 drives the lever 21 to press down the first spring 18, thereby lowering the first pressure plate 12.

[0041] Method 2: Place the tile on the carrier plate 22. The lifting drive 42 extends, raising the straight track 41. This not only raises the cutting wheel 61 to cut the tile, but also shifts the first spring 18 upward via the lever 21, further raising the carrier plate 22. This clamps the tile between the carrier plate 22 and the carrier frame 11, ensuring stable cutting. Furthermore, this method is suitable for tiles of varying thicknesses.

[0042] Furthermore, a first elastic rubber layer is provided on the lower side of the first pressing plate 12; and a second elastic rubber layer is provided on the upper surface of the supporting plate 22. When the first pressing plate 12 applies a compressive force to the ceramic tile placed on the cutting platform 2 under the drive of the supporting frame 11, the first elastic rubber layer, as a medium in direct contact with the surface of the ceramic tile, plays a key role by virtue of its own good elastic deformation properties. The interior of the rubber material is composed of a large number of cross-linked polymer chains forming an elastic network structure. When subjected to the pressure of the pressing plate, these molecular chains will be compressed and bent, generating elastic deformation to absorb and disperse the pressure. Unlike the direct pressure of a rigid pressing plate, this buffering process can transfer the concentrated compressive force evenly and gently to the surface of the ceramic tile, avoiding rupture due to excessive local pressure exceeding the compressive strength of the ceramic tile, and effectively protecting the integrity of the ceramic tile.

[0043] The elastic rubber layer's surface exhibits a rich microscopic texture and flexible contact points. When the tile is pressed, these textures and contact points closely conform to the microscopic undulations of the tile surface, generating a large number of intermolecular van der Waals forces and mechanical meshing. Furthermore, as the compressive force is applied, the rubber layer deforms, further increasing the contact area. According to the friction formula, under positive pressure, the friction coefficient increases due to the rubber's properties and close contact, and the positive pressure is effectively transmitted. These two factors work together to significantly increase friction, firmly gripping the tile and preventing it from sliding or deflecting even under complex operating conditions such as high-speed cutting by the cutting wheel 61, vibrations generated by the movement of the slide 5, and horizontal forces.

[0044] Furthermore, the upper end of the guide rod 20 is fixedly connected to a connecting block 25, and the lower end of the connecting block 25 is fixedly connected to a second spring 26. The lower end of the second spring 26 is fixedly connected to the supporting plate 22. With this arrangement, when the straight track 41 pushes the first spring 18 upward via the push rod 21, the guide rod 20 also rises, causing the second spring 26 to also rise, thereby pulling the supporting plate 22 upward.

[0045] Furthermore, a dust suction pipe 27 is fixedly connected to the connecting platform 52. The dust suction pipe 27 is provided with a suction hole and is connected to a vacuum cleaner via a hose. Since the dust suction pipe 27 is installed on the connecting platform 52, it can move synchronously with the cutting wheel 61 to absorb cutting dust.

[0046] Furthermore, a horizontal channel 28 is provided inside the cutting platform 2, which is connected to the waste chute 3. This arrangement allows waste materials in the waste chute 3 to flow into the channel 28. Furthermore, tiles can be placed in the channel 28, with the cutting wheel 61 extending through the waste chute 3 into the channel 28 to cut the tiles. In this case, there is no need for the first pressing block to press, allowing for quick adjustment of the tile position.

[0047] Working principle of the present invention: At the beginning of the operation, the building tiles to be cut are placed flat on the designated position of the cutting platform 2. The first pressure plate 12 below the carrier 11, which can be raised and lowered, comes into play at this time, causing the first pressure plate 12 to descend and press against the surface of the tiles. When the tiles are firmly pressed, the drive motor 9 connected to the fixed plates 7 at both ends of the lifting track 4 starts to operate, and the output shaft of the drive motor 9 drives the screw 8 to rotate. The screw 8, as a precision transmission component, is connected to the slide 5 by means of threaded fit. As the screw 8 rotates, the slide 5 slides smoothly and accurately horizontally in the direction specified by the lifting track 4 according to the direction and pitch of the screw 8 thread. Then the lifting track 4 moves downward, and the cutting wheel 61 installed on the side of the slide 5 moves downward synchronously, passing through the first gap 13 of the first pressure plate 12 until the cutting wheel 61 contacts the surface of the tiles. Its sharp and wear-resistant wheel rim cuts into the tile material with the powerful cutting force possessed by its own high-speed rotation. After the cutting wheel 61 enters the starting position on the tile, the drive motor 9 continues to operate, driving the slide 5 horizontally along the lifting track 4 via the screw rod 8. The cutting wheel 61 then cuts across the tile along the predetermined cutting path. The resulting waste debris slides down the waste chute 3 provided on the cutting platform 2 and is discharged, preventing waste accumulation from hindering the cutting process or scratching the finished tile surface.

[0048] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.

[0049] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.

Claims

1. A building tile cutting device, characterized in that: The invention comprises a frame (1), a cutting platform (2) is fixedly connected to the frame (1), a waste trough (3) is provided on the cutting platform (2), a lifting track (4) is provided on the cutting platform (2), a slide (5) is slidably connected to the lifting track (4), a cutting wheel assembly is provided on the slide (5), the cutting wheel assembly comprises a cutting wheel (61), and the cutting wheel (61) can extend to the waste trough (3); Both ends of the lifting rail (4) are fixedly connected to fixed plates (7), and screw rods (8) are rotatably connected to the two fixed plates (7) through bearings. One end of the screw rod (8) is fixedly connected to a drive motor (9), and the screw rod (8) is connected to the slide (5); The cutting platform (2) is fixedly connected to a vertical plate (10), the vertical plate (10) is fixedly connected to a carrier frame (11), the lower side of the carrier frame (11) is connected to a first pressing plate (12) that can be raised and lowered, the first pressing plate (12) is provided with a first gap (13), and the cutting wheel (61) in the cutting wheel (61) can extend into the first gap (13).

2. A building tile cutting device according to claim 1, characterized in that: The lifting track (4) comprises a straight track (41) and a lifting drive member (42), the lifting drive member (42) is fixedly connected to the cutting platform (2), and the straight track (41) is fixedly connected to the upper end of the lifting drive member (42); A vertical slide (14) is provided on the vertical plate (10), a sliding member (15) is installed on the fixed plate (7), and the sliding member (15) is slidably connected to the vertical slide (14).

3. A building tile cutting device according to claim 2, characterized in that: An elastic rubber block (16) is fixedly connected to the lower surface of the straight track (41), and when the straight track (41) descends, the elastic rubber block (16) presses the tiles.

4. A building tile cutting device according to claim 2, characterized in that: The slide (5) comprises a U-shaped block (51) and a connecting platform (52); the U-shaped block (51) is slidably connected to the upper surface of the straight track (41); The connecting platform (52) is fixedly connected to the U-shaped block (51), and the screw rod (8) is connected to the U-shaped block (51) via a thread.

5. A building tile cutting device according to claim 4, characterized in that: The straight track (41) is provided with a transverse slideway (17); The cutting wheel assembly comprises: a cutting wheel (61), a motor (62), and a rotating shaft (63); the motor (62) is fixedly connected to the U-shaped block (51); the rotating shaft (63) is rotatably connected to the U-shaped block (51) and the connecting platform (52); the rotating shaft (63) passes through the transverse slideway (17); and the cutting wheel (61) is fixedly connected to the rotating shaft (63).

6. A building tile cutting device according to claim 2, characterized in that: The lower side of the carrier (11) is connected to the first pressure plate (12) via a first spring (18); a fixing plate (19) is fixedly connected to the middle of the first spring (18); a guide rod (20) is connected to the middle of the fixing plate (19); the lower end of the guide rod (20) is connected to the first pressure plate (12); and the upper half of the guide rod (20) is slidably connected to the carrier (11); A shift rod (21) is fixedly connected to the straight track (41), and the shift rod (21) is plugged into the first spring (18); The fixing plate (19) is fixedly connected to a bearing plate (22), a second gap (23) is provided on the bearing plate (22), a third gap (24) is provided on the bearing frame (11), and the third gap (24), the second gap (23) and the first gap (13) are aligned.

7. A building tile cutting device according to claim 6, characterized in that: A first elastic rubber layer is provided on the lower side of the first pressing plate (12); and a second elastic rubber layer is provided on the upper surface of the bearing plate (22).

8. A building tile cutting device according to claim 7, characterized in that: The upper end of the guide rod (20) is fixedly connected to a connecting block (25), the lower end of the connecting block (25) is fixedly connected to a second spring (26), and the lower end of the second spring (26) is fixedly connected to the bearing plate (22).

9. The building tile cutting device according to claim 4, characterized in that: A dust suction pipe (27) is fixedly connected to the connecting platform (52), and an air suction hole is provided on the dust suction pipe (27). The dust suction pipe (27) is connected to a dust collector via a hose.

10. The building tile cutting device according to claim 1, characterized in that: A horizontally arranged channel (28) is provided inside the cutting platform (2), and the channel (28) is communicated with the waste trough (3).