Ceramic tile cutting device

By introducing an electric slider and servo motor to control the water spray volume in the ceramic tile cutting device, and combining it with a multi-level inclined panel to adjust the water spray volume, the problem of the traditional cutting device being unable to effectively cool down has been solved, enabling the cutting machine to operate stably and cut efficiently at a suitable temperature.

CN116572406BActive Publication Date: 2026-05-01PINGXIANG LVBAO TECH GRP CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
PINGXIANG LVBAO TECH GRP CO LTD
Filing Date
2023-06-05
Publication Date
2026-05-01

AI Technical Summary

Technical Problem

Traditional ceramic tile cutting devices cannot effectively adjust the water spray volume for cooling during the cutting process, resulting in poor cutting results, especially when cutting ceramic tiles of different thicknesses, where heat cannot be effectively controlled.

Method used

A ceramic tile cutting device was designed. The water spray volume is controlled by an electric slider and a servo motor. Combined with a multi-level inclined panel to adjust the opening of the water spray pipe, the water spray volume can be adjusted step by step to meet the cutting needs of ceramic tiles of different thicknesses. The device also uses a cleaning rack to remove debris and water stains and keep the cutting machine operating at a suitable temperature.

Benefits of technology

It enables automatic adjustment of water spray volume based on the thickness of ceramic tiles during the cutting process, keeping the cutting machine operating at a suitable temperature, improving cutting accuracy and efficiency, and ensuring the cutting effect of ceramic tiles of different specifications.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the field of ceramic tile processing, in particular to a ceramic tile cutting device. The device comprises a shell, a drain pipe, a cutting component and a fixing component and the like; the bottom of the shell is fixedly connected with the drain pipe, the cutting component is arranged at the top of the shell, and the fixing component is arranged at the top of the electric sliding block. The sliding sleeve slides on the first-stage inclined surface plate, so that the sliding sleeve is in contact with the first-stage inclined surface on the first-stage inclined surface plate, the water inlet pipe part is communicated with the water tank, water in the water spraying pipe is sprayed on the cutting machine blade to reduce the temperature of the cutting machine, the cutting machine is kept in a better working state, when the cutting machine starts cutting the ceramic tile for a period of time, the sliding sleeve is in contact with the second-stage inclined surface on the first-stage inclined surface plate, more water is sprayed from the water spraying pipe, more water can take away more heat, and the cutting machine is kept at a suitable temperature through the reciprocating movement.
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Description

A ceramic tile cutting device Technical Field

[0001] This invention relates to the field of floor tile processing, and more particularly to a ceramic floor tile cutting device. Background Technology

[0002] Ceramic floor tiles will not mold due to weather changes or humidity. They also have excellent wear resistance, are not easily deformed or faded, and are suitable for storing heavy items and cleaning. In addition, ceramic floor tiles have excellent corrosion resistance and will not be corroded by chemicals such as juice and detergents. Their stable performance makes ceramic floor tiles widely used.

[0003] Ceramic floor tiles need to be cut into different sizes during processing to suit different locations. However, a lot of heat is generated at the point where the cutting blade contacts the ceramic floor tile during the cutting process. The temperature gradually rises during cutting, and even more heat is generated when cutting thicker ceramic floor tiles, requiring more water for cooling. In traditional cutting methods, the amount of water used for cooling is not easy to adjust according to the situation, resulting in insufficient cooling effect and consequently poor cutting performance of the cutting machine. Summary of the Invention

[0004] The purpose of this invention is to overcome the shortcomings of the prior art and provide a ceramic tile cutting device that can adjust the water spray volume step by step during the cutting process to cool down the tile, and can also adjust the water spray volume according to the thickness of the ceramic tile, so that the cutting machine can operate at a suitable temperature.

[0005] The technical solution of the present invention is as follows: a ceramic tile cutting device, comprising a housing, a drain pipe, a cutting component and a fixing component, wherein the drain pipe is fixedly connected to the bottom of the housing, the cutting component is located at the top of the housing, and the fixing component is located at the top of the electric slider.

[0006] As a preferred embodiment of the present invention, the cutting component includes a slide rail, an electric slider, a cutting machine, a water tank, a water inlet pipe, and a water spray pipe. The slide rail is fixedly connected to the top of the housing, the electric slider is slidably connected to the slide rail, the cutting machine is fixedly connected to the electric slider, the water tank is fixedly connected to the cutting machine, the water inlet pipe is fixedly connected to the water tank and communicates with the water tank, and two water spray pipes are fixedly connected to the water tank and communicate with the water tank.

[0007] As a preferred embodiment of the present invention, the fixing component includes a long plate, a frame, a short rod, a T-shaped rod, a connecting spring, a beveled plate, a T-shaped plate, a return spring, and a pressure plate. The long plate is fixedly connected to the top of the electric slider, the frame is fixedly connected to the top of the housing, the short rod is fixedly connected to the frame, the T-shaped rod is slidably connected to the lower part of the short rod, a connecting spring is connected between the T-shaped rod and the frame, a beveled plate is fixedly connected to one side of the T-shaped rod, the long plate will contact the beveled plate, a T-shaped plate is fixedly connected to the bottom of the T-shaped rod, four return springs are connected to the T-shaped plate, and a pressure plate is connected between the four return springs.

[0008] As a preferred embodiment of the present invention, it further includes an adjustable water outlet component, which is mounted on the frame. The adjustable water outlet component includes a U-shaped limiting plate, a multi-stage inclined plate one, a multi-stage inclined plate two, a sliding sleeve, a baffle, an inclined rod one, and an inclined rod two. Two U-shaped limiting plates are fixedly connected to the frame. The lower parts of the two U-shaped limiting plates are slidably connected to the multi-stage inclined plate one and the multi-stage inclined plate two, respectively. A baffle is slidably connected to the water tank. A sliding sleeve is slidably connected to the top of the baffle. An inclined rod one and an inclined rod two are fixedly connected to the top of the housing. The top of the inclined rod one contacts the multi-stage inclined plate one, and the top of the inclined rod two contacts the multi-stage inclined plate two.

[0009] As a preferred embodiment of the present invention, it further includes an adaptive water output adjustment component, which is disposed on the housing. The adaptive water output adjustment component includes a support ring, a servo motor, a gear, a rack, and a control switch. A support ring is fixedly connected to one side of the housing, a servo motor is fixedly connected to the support ring, a gear is fixedly connected to the output shaft of the servo motor, racks are fixedly connected to both the first and second multi-stage inclined plates, and both racks mesh with the gears. A control switch is fixedly connected to the bottom of the T-shaped plate.

[0010] As a preferred embodiment of the present invention, it further includes a short plate, a T-shaped block, a return spring, a limiting sleeve, a tension spring, and a cleaning frame. Short plates are fixedly connected to both sides of the cutting machine. T-shaped blocks are slidably connected to both short plates. A return spring is connected between the T-block and the short plate. A limiting sleeve is slidably connected to both T-blocks. Two tension springs are connected between the limiting sleeve and the T-block. A cleaning frame is fixedly connected to the bottom of both limiting sleeves.

[0011] As a preferred embodiment of the present invention, it also includes long rods and small protrusions. Long rods are fixedly connected to both cleaning frames, and several small protrusions are fixedly connected to one side of the slide rail.

[0012] As a preferred embodiment of the present invention, a through groove is provided on the top of the housing.

[0013] As a preferred embodiment of the present invention, the small protrusion is provided with two inclined surfaces.

[0014] Beneficial effects: 1. The operator places the ceramic tile to be cut on the housing, then starts the electric slider. The cutting machine slides and gradually cuts the ceramic tile on the housing. At this time, the operator turns on the water inlet pipe so that the water flows into the water tank. Then the water in the tank will be sprayed out from the spray pipe and fall on the part of the cutting machine that contacts the ceramic tile, reducing the temperature of the cutting machine during the cutting process until the cutting machine has finished cutting the ceramic tile on the housing. At the same time, the movement of the cutting machine drives the long plate to move, making the contact between the pressure plate and the ceramic tile on the housing more compact, making the ceramic tile less likely to slip during the cutting process and improving the cutting accuracy.

[0015] 2. The sliding sleeve will slide on the first inclined plate of the multi-stage inclined plate, so that the sliding sleeve contacts the first inclined surface of the multi-stage inclined plate, so that the water inlet pipe is connected to the water tank. The water in the spray pipe sprays onto the cutting machine blade, which can reduce the temperature of the cutting machine and help the cutting machine maintain a good working condition. After the cutting machine has been cutting ceramic floor tiles for a period of time, the sliding sleeve contacts the second inclined surface of the multi-stage inclined plate, and more water is sprayed out from the spray pipe. More water can carry away more heat. This process repeats, keeping the cutting machine at a suitable temperature.

[0016] 3. When the ceramic tiles to be cut are thicker, the cutting machine generates more heat when cutting thicker tiles. Simultaneously, the thicker tiles result in a shorter downward movement distance for the pressure plate, activating the control switch. This activates the servo motor, causing the multi-level inclined plate one and multi-level inclined plate two to move in opposite directions. This allows the sliding sleeve to contact the inclined surfaces of either multi-level inclined plate one or multi-level inclined plate two earlier during the sliding process. This ensures that the greater heat generated when cutting thicker ceramic tiles is neutralized by more water, further enabling the cutting machine to better cut ceramic tiles of different sizes, resulting in better cutting results. Attached Figure Description

[0017] Figure 1 is a schematic diagram of the first three-dimensional structure of the present invention.

[0018] Figure 2 is a schematic diagram of the second three-dimensional structure of the present invention.

[0019] Figure 3 is a three-dimensional structural diagram of the fixing component of the present invention.

[0020] Figure 4 is a schematic diagram of the third three-dimensional structure of the present invention.

[0021] Figure 5 is an enlarged three-dimensional structural diagram of A in Figure 4 of this invention.

[0022] Figure 6 is a three-dimensional structural diagram of the sliding sleeve and baffle of the present invention.

[0023] Figure 7 is a partial three-dimensional structural schematic diagram of the water outlet adjustment component of the present invention.

[0024] Figure 8 is a partial three-dimensional structural schematic diagram of the present invention.

[0025] The components are as follows: 1-Shell, 2-Drain pipe, 31-Slide rail, 32-Electric slider, 33-Cuter, 34-Water tank, 35-Water inlet pipe, 36-Water spray pipe, 41-Long plate, 42-Frame, 43-Short rod, 44-T-shaped rod, 45-Connecting spring, 46-Beveled plate, 47-T-shaped plate, 48-Reset spring, 49-Pressure plate, 51-U-shaped limit plate, 52-Multi-level beveled plate one, 53-Multi-level beveled plate two, 54-Sliding sleeve, 55-Baffle, 56-Beveled rod one, 57-Beveled rod two, 61-Support ring, 62-Servo motor, 63-Gear, 64-Rack, 65-Control switch, 71-Short plate, 72-T-shaped block, 73-Return spring, 74-Limited sleeve, 75-Tension spring, 76-Cleaning frame, 81-Long rod, 82-Small protrusion. Detailed Implementation

[0026] The present invention will be described in detail below with reference to the accompanying drawings and specific embodiments, but this is not intended to limit the present invention.

[0027] Example 1: A ceramic tile cutting device, as shown in Figures 1-8, includes a housing 1, a drain pipe 2, a cutting component, and a fixing component. The drain pipe 2 is bolted to the bottom of the housing 1, and a through groove is opened on the top of the housing 1. The cutting component is located on the top of the housing 1, and the fixing component is located on the top of the electric slider 32.

[0028] The cutting components include a slide rail 31, an electric slider 32, a cutting machine 33, a water tank 34, a water inlet pipe 35, and a water spray pipe 36. The top of the housing 1 is bolted to the slide rail 31. The electric slider 32 is slidably connected to the slide rail 31. The cutting machine 33 is bolted to the electric slider 32. The water tank 34 is bolted to the cutting machine 33. The water inlet pipe 35 is connected to the water tank 34 via a flat key. The water inlet pipe 35 is connected to the water tank 34. Two water spray pipes 36 are connected to the water tank 34 via a flat key. Both water spray pipes 36 are connected to the water tank 34.

[0029] The fixed components include a long plate 41, a frame 42, a short rod 43, a T-shaped rod 44, a connecting spring 45, a beveled plate 46, a T-shaped plate 47, a return spring 48, and a pressure plate 49. The top of the electric slider 32 is fixedly connected to the long plate 41. The top of the housing 1 is bolted to the frame 42. The short rod 43 is bolted to the frame 42. The lower part of the short rod 43 is slidably connected to the T-shaped rod 44. A connecting spring 45 connects the T-shaped rod 44 to the frame 42. One side of the T-shaped rod 44 is bolted to the beveled plate 46. The long plate 41 will contact the beveled plate 46. The bottom of the T-shaped rod 44 is bolted to the T-shaped plate 47. Four return springs 48 are connected to the T-shaped plate 47. The pressure plate 49 is connected between the four return springs 48.

[0030] First, the operator places the ceramic tile to be cut on the housing 1. Then, the operator activates the electric slider 32, causing it to slide on the slide rail 31. The sliding of the electric slider 32 moves the cutting machine 33 and the water tank 34. The movement of the cutting machine 33 moves the long plate 41, which in turn presses against the beveled plate 46, causing it to move downwards. The connecting spring 45 is stretched, and the downward movement of the beveled plate 46 moves the T-shaped plate 47 downwards. The downward movement of the T-shaped plate 47, through the four return springs 48, moves the pressure plate 49 downwards until the pressure plate 49 contacts the ceramic tile on the housing 1. As the inclined plate 46 continues to move downwards, the four return springs 48 are compressed. These springs make the pressure plate 49 contact the ceramic tile on the housing 1 more tightly, preventing the tile from slipping during cutting. Simultaneously, the moving cutting machine 33 contacts the ceramic tile on the housing 1, gradually cutting it. At this point, the operator introduces water into the inlet pipe 35, allowing water to flow into the water tank 34. The water in the tank 34 is then sprayed from the spray pipe 36 onto the part of the cutting machine 33 that contacts the ceramic tile, reducing the temperature rise of the cutting machine 33 during cutting. The cutting machine 33 completes the cutting of the ceramic tile on the housing 1. Simultaneously, the long plate 41 disengages from the inclined plate 46, and the connecting spring 45 resets. This reset of the connecting spring 45 causes the T-shaped rod 44 to move upwards, and the four reset springs 48 also reset. The T-shaped rod 44 continues to move upwards, driving the pressure plate 49 upwards via the four reset springs 48, thus removing the pressure plate 49 from pressing down on the cut ceramic tile. Next, the operator removes the cut ceramic tile and places another ceramic tile to be cut on the housing 1. Then, the operator adjusts the electric slider 32 so that it moves along the slide rail... The electric slider 32 slides in the opposite direction, causing the cutting machine 33 to move in the opposite direction and contact another ceramic tile on the housing 1. At the same time, the movement of the cutting machine 33 causes the long plate 41 to move. The movement of the long plate 41 will squeeze the beveled plate 46, so that the pressure plate 49 will press down on the ceramic tile on the housing 1 again. At the same time, the water in the water tank 34 will be sprayed out from the water spray pipe 36 and fall on the part of the cutting machine 33 that is in contact with the ceramic tile. Until the ceramic tile on the housing 1 is cut, the long plate 41 and the beveled plate 46 will disengage, and the pressure plate 49 will no longer squeeze the ceramic tile on the housing 1. This process is repeated to continuously cut the ceramic tile.

[0031] Example 2: Based on Example 1, as shown in Figures 6-7, it also includes an adjustable water outlet component. The adjustable water outlet component is located on the frame 42 and includes a U-shaped limiting plate 51, a multi-stage inclined plate 1 52, a multi-stage inclined plate 2 53, a sliding sleeve 54, a baffle 55, an inclined rod 1 56, and an inclined rod 2 57. Two U-shaped limiting plates 51 are bolted to the frame 42. The lower parts of the two U-shaped limiting plates 51 are slidably connected to the multi-stage inclined plate 1 52 and the multi-stage inclined plate 2 53, respectively. A baffle 55 is slidably connected to the water tank 34. A sliding sleeve 54 is slidably connected to the top of the baffle 55. An inclined rod 1 56 and an inclined rod 2 57 are bolted to the top of the shell 1. The top of the inclined rod 1 56 contacts the multi-stage inclined plate 1 52, and the top of the inclined rod 2 57 contacts the multi-stage inclined plate 2 53.

[0032] First, the operator continuously supplies water into the inlet pipe 35. When the water tank 34 moves, it causes the baffle 55 to move, which in turn causes the sliding sleeve 54 to move. Initially, the sliding sleeve 54 slides on the multi-stage inclined plate 52, making it contact the first inclined surface on the multi-stage inclined plate 52. The first inclined surface on the multi-stage inclined plate 52 squeezes the sliding sleeve 54, causing it to move upward. This upward movement of the sliding sleeve 54 causes the baffle 55 to move upward, connecting the inlet pipe 35 to the water tank 34. Water flows from the inlet pipe 35 into the water tank 34, and then from the water tank 34 into the spray pipe 36. Simultaneously, the cutting machine 33 generates some heat when it first starts operating, and the water in the spray pipe 36 sprays onto... The blades on the cutting machine 33 can reduce the temperature of the cutting machine 33, making it easier for the cutting machine 33 to maintain a better working condition. After the cutting machine 33 has been cutting ceramic floor tiles for a period of time, it will generate more heat. At this time, the sliding sleeve 54 contacts the second inclined surface on the multi-stage inclined plate 52, causing the sliding sleeve 54 to move upward a distance. The upward movement of the sliding sleeve 54 causes the baffle 55 to move upward a distance, making the connection between the water inlet pipe 35 and the water tank 34 larger. This allows more water to flow into the water tank 34 from the water inlet pipe 35. Finally, more water is sprayed out from the water spray pipe 36. More water can carry away more heat, keeping the cutting machine 33 at a suitable temperature. This process is repeated until the ceramic floor tiles are cut. After the floor tile cutting is completed, the sliding sleeve 54 contacts the last inclined surface on the first multi-level inclined plate 52. The first multi-level inclined plate 52 no longer presses against the sliding sleeve 54, causing the sliding sleeve 54 and the baffle 55 to move downwards under the action of gravity. The baffle 55 moves downwards and re-blocks the water inlet pipe 35. The sliding sleeve 54 continues to slide along the first multi-level inclined plate 52 and will contact the inclined surface rod 56, causing the sliding sleeve 54 to move towards the second multi-level inclined plate 53. The sliding sleeve 54 contacts the second multi-level inclined plate 53 and disengages from the first multi-level inclined plate 52 until the operator adjusts the electric slider 32 to slide in the opposite direction. The reverse sliding of the electric slider 32 causes the sliding sleeve 54, the cutting machine 33, and the water tank 34 to slide in the opposite direction. The electric slider 32 continues to slide in the opposite direction. The reverse sliding motion drives the cutter 33 to cut the ceramic floor tiles again. At the same time, the sliding sleeve 54 gradually comes into contact with the inclined surface on the second multi-level inclined plate 53. As the heat generated by the cutter 33 gradually increases, the sliding sleeve 54 also gradually drives the baffle 55 to move upward, causing the water spray pipe 36 to spray out an increasing amount of water. The increasing amount of water can carry away the heat generated by the cutter 33, allowing the cutter 33 to remain within the appropriate temperature range after working for a period of time. After the cutting is completed, the sliding sleeve 54 comes into contact with the second inclined plate 57, causing the sliding sleeve 54 to re-contact the first multi-level inclined plate 52 and disengage from the second multi-level inclined plate 53. This process is repeated, allowing the water spray pipe 36 to spray water of different sizes to maintain the cutter 33 working normally at a suitable temperature.

[0033] Example 3: Based on Example 2, as shown in Figures 1 and 3, it also includes an adaptive water output adjustment component. The adaptive water output adjustment component is located on the housing 1. The adaptive water output adjustment component includes a support ring 61, a servo motor 62, a gear 63, a rack 64, and a control switch 65. The support ring 61 is fixedly connected to one side of the housing 1. The servo motor 62 is bolted to the support ring 61. The gear 63 is connected to the output shaft of the servo motor 62 via a flat key. The rack 64 is bolted to both the first multi-stage inclined plate 52 and the second multi-stage inclined plate 53. Both racks 64 mesh with the gear 63. The control switch 65 is bolted to the bottom of the T-shaped plate 47.

[0034] When the ceramic tiles to be cut are thicker, the cutting machine 33 generates more heat during the cutting process. Simultaneously, the thicker tiles result in a shorter downward movement distance for the pressure plate 49. When the T-shaped rod 44 moves downward, driving the T-shaped plate 47 downward, the control switch 65 on the T-shaped plate 47 contacts the pressure plate 49, activating the control switch 65. This activates the servo motor 62, whose output shaft rotates, driving the gear 63. The gear 63 then moves the two racks 64 in opposite directions, causing the multi-stage inclined plate 1 52 and multi-stage inclined plate 2 53 to move in opposite directions. This allows the sliding sleeve 54 to contact the inclined surfaces of multi-stage inclined plate 1 52 or multi-stage inclined plate 2 53 earlier during the sliding process. This allows the water spray pipe 36 to spray more water earlier, neutralizing the increased heat generated by the cutting machine 33 when cutting thicker ceramic tiles. This further enables the cutting machine 33 to better cut ceramic tiles of different sizes, resulting in a better cutting effect.

[0035] Example 4: Based on Example 3, as shown in Figures 3 and 5, it also includes a short plate 71, a T-shaped block 72, a return spring 73, a limiting sleeve 74, a tension spring 75, and a cleaning frame 76. Both sides of the cutting machine 33 are bolted to the short plate 71. The T-shaped block 72 is slidably connected to both short plates 71. The return spring 73 is connected between the T-shaped block 72 and the short plate 71. The limiting sleeve 74 is slidably connected to both T-shaped blocks 72. Two tension springs 75 are connected between the limiting sleeve 74 and the T-shaped block 72. The bottom of both limiting sleeves 74 is bolted to the cleaning frame 76.

[0036] When the cutting machine 33 cuts ceramic tiles, it generates debris. At the same time, the water sprayed from the water pipe 36 also remains on the ceramic tiles. When the cutting machine 33 moves, it drives two short plates 71 to move. The movement of the short plates 71 drives the movement of the limiting sleeve 74, which in turn drives the movement of the T-block 72. The movement of the T-block 72 drives the movement of the cleaning frame 76. One of the cleaning frames 76 can scrape away the debris and water stains remaining on the surface of the ceramic tiles after the previous cut. The other cleaning frame 76 can gather the water sprayed from the water pipe 36, making the cooling effect of the cutting machine 33 better. At the same time, it can remove the debris and water stains generated by this cut, improving the processing efficiency of ceramic tiles. The return spring 73 can make the cleaning frame 76 fit more closely to the surface of the ceramic tiles, resulting in a better cleaning effect.

[0037] Example 5: Based on Example 4, as shown in Figure 3, it also includes a long rod 81 and a small protrusion 82. The two cleaning frames 76 are connected to the long rod 81 by bolts. Several small protrusions 82 are connected to one side of the slide rail 31 by bolts. The small protrusions 82 are provided with two inclined surfaces.

[0038] When the T-block 72 moves, it drives the long rod 81 to move. During the movement, the two long rods 81 intermittently contact the small protrusion 82. The small protrusion 82 squeezes the long rods 81, causing them to move. The movement of the long rods 81 drives the limiting sleeve 74 to move, which in turn drives the T-block 72 to move. One of the tension springs 75 is stretched, and the other is compressed. The movement of the T-block 72 causes the cleaning rack 76 to slide along the surface of the ceramic tile. When the long rod 81 disengages from the small protrusion 82, both tension springs 75 return to their original positions. The return of the two tension springs 75 causes the cleaning rack 76 to return to its original position. This process repeats, causing the cleaning rack 76 to move back and forth on the surface of the ceramic tile, resulting in a better cleaning of the ceramic tile surface.

[0039] Those skilled in the art should understand that the above embodiments do not limit the present invention in any way, and all technical solutions obtained by equivalent substitution or equivalent transformation fall within the protection scope of the present invention.

Claims

1. A ceramic tile cutting device, characterized in that, It includes a housing (1), a drain pipe (2), a cutting component and a fixing component. The drain pipe (2) is fixedly connected to the bottom of the housing (1). The cutting component is located on the top of the housing (1) and the fixing component is located on the top of the electric slider (32). The cutting component includes a slide rail (31), an electric slider (32), a cutting machine (33), a water tank (34), a water inlet pipe (35) and a water spray pipe (36). The slide rail (31) is fixedly connected to the top of the housing (1). The electric slider (32) is slidably connected to the slide rail (31). The cutting machine (33) is fixedly connected to the electric slider (32). The water tank (34) is fixedly connected to the cutting machine (33). The water inlet pipe (35) is fixedly connected to the water tank (34). The water inlet pipe (35) is connected to the water tank (34). Two water spray pipes (36) are fixedly connected to the water tank (34). Both water spray pipes (36) are connected to the water tank (34). The fixed components include a long plate (41), a frame (42), a short rod (43), a T-shaped rod (44), a connecting spring (45), a beveled plate (46), a T-shaped plate (47), a return spring (48), and a pressure plate (49). The top of the electric slider (32) is fixedly connected to the long plate (41), the top of the housing (1) is fixedly connected to the frame (42), the frame (42) is fixedly connected to the short rod (43), the lower part of the short rod (43) is slidably connected to the T-shaped rod (44), the T-shaped rod (44) is connected to the frame (42) by a connecting spring (45), the side of the T-shaped rod (44) is fixedly connected to the beveled plate (46), the long plate (41) will contact the beveled plate (46), the bottom of the T-shaped rod (44) is fixedly connected to the T-shaped plate (47), the T-shaped plate (47) is connected to four return springs (48), and the pressure plate (49) is connected between the four return springs (48).

2. The ceramic tile cutting device according to claim 1, characterized in that, It also includes a water outlet adjustment component, which is located on the frame (42). The water outlet adjustment component includes a U-shaped limiting plate (51), a multi-level inclined plate one (52), a multi-level inclined plate two (53), a sliding sleeve (54), a baffle (55), an inclined rod one (56), and an inclined rod two (57). Two U-shaped limiting plates (51) are fixedly connected to the frame (42). The lower parts of the two U-shaped limiting plates (51) are slidably connected to the multi-level inclined plate one (52) and the multi-level inclined plate two (53). A baffle (55) is slidably connected to the water tank (34). A sliding sleeve (54) is slidably connected to the top of the baffle (55). An inclined rod one (56) and an inclined rod two (57) are fixedly connected to the top of the shell (1). The top of the inclined rod one (56) contacts the multi-level inclined plate one (52), and the top of the inclined rod two (57) contacts the multi-level inclined plate two (53).

3. The ceramic tile cutting device according to claim 2, characterized in that, It also includes an adaptive water output adjustment component, which is located on the housing (1). The adaptive water output adjustment component includes a support ring (61), a servo motor (62), a gear (63), a rack (64), and a control switch (65). The support ring (61) is fixedly connected to one side of the housing (1). The servo motor (62) is fixedly connected to the support ring (61). The gear (63) is fixedly connected to the output shaft of the servo motor (62). The rack (64) is fixedly connected to both the first multi-level inclined plate (52) and the second multi-level inclined plate (53). Both racks (64) mesh with the gear (63). The control switch (65) is fixedly connected to the bottom of the T-shaped plate (47).

4. The ceramic tile cutting device according to claim 3, characterized in that, It also includes a short plate (71), a T-shaped block (72), a return spring (73), a limit sleeve (74), a tension spring (75), and a cleaning frame (76). The cutting machine (33) is fixedly connected to both sides of the short plate (71). The T-shaped block (72) is slidably connected to both short plates (71). The return spring (73) is connected between the T-shaped block (72) and the short plate (71). The limit sleeve (74) is slidably connected to both T-shaped blocks (72). The limit sleeve (74) is connected to the T-shaped block (72). Two tension springs (75) are connected between the limit sleeve (74) and the T-shaped block (72). The cleaning frame (76) is fixedly connected to the bottom of both limit sleeves (74).

5. A ceramic tile cutting device according to claim 4, characterized in that, It also includes a long rod (81) and small protrusions (82). The long rod (81) is fixedly connected to both cleaning racks (76), and several small protrusions (82) are fixedly connected to one side of the slide rail (31).

6. The ceramic tile cutting device as described in claim 1, characterized in that: The top of the housing (1) has a through groove.

7. The ceramic tile cutting device as described in claim 5, characterized in that: The small bump (82) has two inclined surfaces.

Citation Information

Patent Citations

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    CN204076536U

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