Automatic cutting equipment for ceramic tile sample
By collecting the cutting fluid in a collection tank and a circulation module, and combining it with a blower and a filtration system, the problem of cutting fluid spillage is solved, enabling efficient cutting and resource recycling of ceramic tile samples.
Patent Information
- Application Number
- CN202511652997.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-12
- Publication Date
- 2026-03-03
AI Technical Summary
Traditional ceramic tile sample cutting equipment spills cutting fluid everywhere after use, resulting in resource waste, environmental pollution, and increased cleaning workload.
A device was designed that includes a workbench, a fixed frame, a cutting module, a positioning module, and a cutting fluid circulation module. The fluid collection tank collects the cutting fluid and recycles it. Combined with a blower and a filtration system, the cutting fluid can be collected and reused quickly.
It improves cutting quality and efficiency, reduces resource waste, keeps the operating environment clean and tidy, and reduces cleaning difficulty and workload.
Smart Images

Figure CN121589931A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of automatic ceramic tile cutting technology, specifically an automatic ceramic tile sample cutting device. Background Technology
[0002] Traditional ceramic tile sample cutting mostly relies on manual operation, requiring significant human intervention in numerous cutting steps, increasing labor costs and the potential for operational errors. With continuous technological advancements, automated ceramic tile cutting equipment has emerged. This equipment typically sprays cutting fluid during the cutting process to assist in cutting, reducing dust and improving cutting quality and efficiency. However, most current automated ceramic tile cutting equipment spills cutting fluid around the equipment after use, without recycling it. This wastes resources, damages the operating environment, and increases the subsequent cleaning workload for operators. Therefore, we need an automated ceramic tile sample cutting device to solve these problems. Summary of the Invention
[0003] The purpose of this invention is to provide an automatic cutting device for ceramic brick samples to solve the problems raised in the prior art.
[0004] To achieve the above objectives, the present invention provides the following technical solution:
[0005] The cutting equipment includes a worktable, a fixed frame, a cutting module, a positioning module, and a cutting fluid circulation module. The fixed frame is fixedly connected to one end of the worktable, and part of the fixed frame is located above the worktable. The cutting module is slidably connected to part of the fixed frame above the worktable, and the cutting module slides from one end of the worktable to the other end. A fluid collection tank is provided at the other end of the worktable, and a through hole is provided at the bottom of the fluid collection tank. The positioning module is fixedly connected to the upper surface of the worktable. The cutting fluid circulation module is located below the worktable, and the cutting fluid circulation module is connected to the outlet pipe of the through hole at the bottom of the fluid collection tank. The cutting fluid circulation module is also connected to the inlet pipe of the cutting module.
[0006] The ceramic tile sample to be cut is placed on the workbench and positioned using the positioning module. The height of the cutting module is adjusted according to the thickness of the ceramic tile sample. Cutting fluid is loaded into the cutting fluid circulation module. The ceramic tile sample is manually fixed using the positioning module. The cutting module and the cutting fluid circulation module are then started to cut the ceramic tile sample. During the cutting process, the cutting fluid circulation module supplies cutting fluid to the cutting module, improving cutting quality and speed while achieving dust reduction and ensuring a clean operating environment. The cutting fluid on the ceramic tile sample flows into the collection tank during the cutting process, and then flows into the cutting fluid circulation module through the pipe. The used cutting fluid is filtered in the cutting fluid circulation module and then sent back into the cutting module for reuse, improving resource utilization and preventing cutting fluid from overflowing onto the workbench and onto the ground, thus reducing the workload of the operators.
[0007] Furthermore, the collection tank is funnel-shaped.
[0008] The funnel-shaped collection tank makes it easier to collect the cutting fluid.
[0009] Furthermore, a first flow channel and a second flow channel are provided on the workbench. The first flow channel is located on both sides of the workbench and points from one end of the workbench to the other end where the liquid collection tank is located. The first flow channel and the liquid collection tank are connected. The flow path of the second flow channel is located directly below the cutting path of the cutting module. The second flow channel and the liquid collection tank are connected. The closer the first flow channel and the second flow channel are to the liquid collection tank, the deeper the first flow channel and the second flow channel are.
[0010] The closer the first and second flow channels are to the liquid collection tank, the deeper they are. The cutting fluid flowing down from the ceramic tile sample can flow to the liquid collection tank more quickly and is less likely to leave impurities in its own flow channels, reducing the difficulty of cleaning. The flow path of the second flow channel is located directly below the cutting path of the cutting module. When the cutting module is cutting, it will not damage the worktable, and the cutting module has more space for height adjustment.
[0011] Furthermore, the cutting module includes a drive motor, a cylinder module, a housing, a cutting motor, a cutting blade, a blower, and an air blowing assembly. The cylinder module is slidably connected to the mounting bracket. The drive motor drives the cylinder module to slide. One end of the telescopic rod of the cylinder module is fixedly connected to the housing. The cutting motor is fixedly connected to the housing and is housed inside the housing. The cutting blade is fixedly connected to the output shaft of the cutting motor. The bottom end of the cutting blade protrudes from the housing. The housing is provided with a liquid inlet, which is located directly above the cutting blade and is connected to the cutting fluid circulation module pipeline. The blower is housed inside the housing and is fixedly connected to the housing. The blower's outlet is connected to the air inlet of the air blowing assembly. The air blowing assembly is fixedly connected to the housing. The air outlet of the air blowing assembly is elongated. The angle formed between the air outlet of the air blowing assembly and the worktable is an acute angle, with the apex of the angle pointing towards the liquid collection tank.
[0012] The ceramic tile sample to be cut is placed on the worktable. After being positioned by the positioning module, the cylinder module is activated according to the thickness of the ceramic tile sample to be cut. The cutting depth of the cutting blade is adjusted, and the drive motor, cutting motor, fan, and cutting fluid circulation module are activated. The cylinder module drives the cutting blade to cut the ceramic tile sample. During the cutting process, the cutting fluid circulation module provides cutting fluid to the cutting blade, and the fan blows air through the air blowing component to blow the cutting fluid on the sample onto the worktable. The fluid flows into the collection tank through the first flow channel and the second flow channel or directly into the collection tank, realizing the rapid collection of the cutting fluid.
[0013] Furthermore, a baffle is provided at the front end of the outer casing, the length and width of which ensure that the baffle can block the cutting fluid splashing during cutting.
[0014] The baffle blocks the cutting fluid that splashes during cutting, reducing the total loss of cutting fluid. The cutting fluid is then blown by the fan into the collection tank through the first and second flow channels or directly into the collection tank.
[0015] Furthermore, the positioning module includes a scale bar, a slide bar, and a locking bolt. The locking bolt has a groove. The scale bar is fixedly connected to the upper surface of the worktable. The scale bar is perpendicular to the cutting path of the cutting module. The slide bar passes through the scale bar and is slidably connected to the scale bar. The slide bar and the cutting path of the cutting module are always parallel. The locking bolt passes through the groove and is threadedly connected to the slide bar. A portion of the scale bar is spaced between the locking bolt and the slide bar.
[0016] The scale bar has graduations. According to the cutting requirements of the sample size, adjust the slider to the corresponding graduation on the scale bar, tighten the locking bolt to fix the slider, align one right angle of the ceramic tile sample to be cut with the inner right angle formed by the slider and the scale bar, manually hold the other end of the ceramic tile sample to achieve positioning and cutting of the ceramic tile sample.
[0017] Furthermore, a pulley is provided at the end of the slider away from the scale bar, and the pulley is placed on the worktable, with the rolling direction of the pulley parallel to the scale bar.
[0018] A pulley is installed at one end of the slider to facilitate its movement on the worktable without jamming, thus optimizing the operator's feel and improving the positioning efficiency of the ceramic tile samples to be cut.
[0019] Furthermore, the cutting fluid circulation module includes a storage tank, a filter plate, and a small water pump. The storage tank is located below the workbench, and the filter plate is fixedly connected to the storage tank. The filter plate divides the storage tank into two areas. One area of the storage tank is connected to the through-hole outlet pipe at the bottom of the collection tank. The small water pump is located in the other area of the storage tank and is connected to the inlet pipe of the outer casing.
[0020] The storage tank is divided into two areas by a filter plate. After use, the cutting fluid enters one area of the storage tank through a pipe. Before reaching the filtration area of the filter plate, some impurities in the cutting fluid settle in one area of the storage tank, which reduces the impurity content of the upper cutting fluid when it passes through the filtration area of the filter plate, thus enhancing the filtration effect. The filtered cutting fluid enters the other area of the storage tank, and a small water pump transports the filtered cutting fluid to the cutting module through a pipe.
[0021] Furthermore, the upper part of the filter plate is provided with filter holes.
[0022] The lower end of the filter plate is a solid plate, and the upper part is provided with filter holes. Before the cutting fluid reaches the height of the filter holes in the area of the storage tank connected to the collection tank pipe, the impurities in the cutting fluid settle in the storage tank first, reducing the impurity content of the upper layer of cutting fluid after passing through the filter holes. After being filtered through the filter holes, the upper layer of cutting fluid flows into another area of the storage tank for reuse by the cutting module, thereby improving resource utilization.
[0023] Furthermore, all pipe connections are made using flexible hoses.
[0024] The flexible hose connection allows the cutting module to move freely during the cutting process, and the hose connection is easy to install and remove, making it convenient for storage.
[0025] Compared with the prior art, the beneficial effects of the present invention are:
[0026] 1. The first and second flow channels of this invention are deeper as they are closer to the liquid collection tank. The cutting fluid flowing down from the ceramic tile sample can flow to the liquid collection tank more quickly and is less likely to leave impurities in its own flow channels, reducing the difficulty of cleaning. The flow path of the second flow channel is located directly below the cutting path of the cutting module. When the cutting module is cutting, it will not damage the worktable, and the cutting module has more space for height adjustment.
[0027] 2. The blower of the present invention blows air through the air blowing assembly to blow the cutting fluid on the sample onto the worktable, and the fluid flows into the collection tank through the first flow channel and the second flow channel or directly into the collection tank, thereby achieving rapid collection of the cutting fluid;
[0028] 3. The scale bar of this invention is set with scales. According to the cutting requirements of the sample size, adjust the slider to the corresponding scale on the scale bar, tighten the locking bolt to fix the slider, and make one right angle of the ceramic tile sample to be cut coincide with the inner right angle formed by the slider and the scale bar. Manually hold the other end of the ceramic tile sample to achieve rapid positioning and cutting of the ceramic tile sample.
[0029] 4. The liquid storage tank of this invention is divided into two areas by a filter plate. After use, the cutting fluid enters one area of the liquid storage tank through a pipeline and is stored there. Before reaching the filtration area of the filter plate, some impurities in the cutting fluid settle in one area of the liquid storage tank, which reduces the impurity content of the upper layer of cutting fluid when it passes through the filtration area of the filter plate, thus enhancing the filtration effect. The filtered cutting fluid enters the other area of the liquid storage tank, and a small water pump transports the filtered cutting fluid to the cutting module through a pipeline, thereby improving resource utilization. Attached Figure Description
[0030] Figure 1 This is a front view of the overall structure of an automatic ceramic tile sample cutting device according to the present invention;
[0031] Figure 2 This is a schematic diagram of the overall structure of an automatic ceramic brick sample cutting device without pipe connections according to the present invention;
[0032] Figure 3 This is a schematic diagram of the structure of the cutting fluid removal circulation module of an automatic ceramic brick sample cutting device according to the present invention;
[0033] Figure 4 This is a schematic diagram of the first flow channel of an automatic ceramic brick sample cutting device according to the present invention;
[0034] Figure 5 This is a schematic diagram of the structure of the second flow channel of an automatic ceramic brick sample cutting device according to the present invention;
[0035] Figure 6 for Figure 1A magnified view of part A;
[0036] Figure 7 for Figure 2 A magnified schematic diagram of part B.
[0037] In the diagram: 1. Workbench; 2. Fixing frame; 3. Cutting module; 4. Positioning module; 5. Cutting fluid circulation module; 11. Collection tank; 12. First flow channel; 13. Second flow channel; 31. Drive motor; 32. Cylinder module; 33. Housing; 34. Cutting motor; 35. Cutting blade; 36. Fan; 37. Air blowing assembly; 38. Baffle; 39. Liquid inlet; 41. Scale bar; 42. Sliding bar; 43. Locking bolt; 44. Channel; 45. Pulley; 51. Liquid storage tank; 52. Filter plate; 53. Small water pump. Detailed Implementation
[0038] 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.
[0039] Example: Figure 1 - Figure 7 As shown, the present invention provides a technical solution for an automatic cutting device for ceramic tile samples:
[0040] like Figure 1 and Figure 2 As shown, the cutting equipment includes a worktable 1, a fixed frame 2, a cutting module 3, a positioning module 4, and a cutting fluid circulation module 5. The fixed frame 2 is fixedly connected to one end of the worktable 1, and part of the fixed frame 2 is located above the worktable 1. The cutting module 3 is slidably connected to part of the fixed frame 2 above the worktable 1. The sliding direction of the cutting module 3 is from one end of the worktable 1 to the other end of the worktable 1. A liquid collection tank 11 is provided at the other end of the worktable 1. A through hole is provided at the bottom end of the liquid collection tank 11. The positioning module 4 is fixedly connected to the upper surface of the worktable 1. The cutting fluid circulation module 5 is located below the worktable 1. The cutting fluid circulation module 5 is connected to the outlet pipe of the through hole at the bottom end of the liquid collection tank 11. The cutting fluid circulation module 5 is connected to the inlet pipe of the cutting module 3.
[0041] The ceramic tile sample to be cut is placed on the workbench 1 and positioned using the positioning module 4. The height of the cutting module 3 is adjusted according to the thickness of the ceramic tile sample. The cutting fluid circulation module 5 is filled with cutting fluid, and the ceramic tile sample is manually fixed in conjunction with the positioning module 4. The cutting module 3 and the cutting fluid circulation module 5 are then started to cut the ceramic tile sample. During the cutting process, the cutting fluid circulation module 5 supplies cutting fluid to the cutting module 3, improving the cutting quality and speed while achieving dust reduction during cutting, ensuring a clean and tidy operating environment. During the cutting process, the cutting fluid on the ceramic tile sample flows into the collection tank 11, and then flows into the cutting fluid circulation module 5 through the pipe. The used cutting fluid is filtered in the cutting fluid circulation module 5 and then sent back to the cutting module 3 for recycling, improving resource utilization and preventing the cutting fluid from overflowing from the workbench 1 onto the ground, thus reducing the workload of the operators.
[0042] like Figure 2 and Figure 3 As shown, the liquid collection tank 11 is funnel-shaped.
[0043] The collection tank 11 is funnel-shaped, which makes it easier to collect the cutting fluid.
[0044] like Figures 3-5 As shown, a first flow channel 12 and a second flow channel 13 are provided on the workbench 1. The first flow channel 12 is located on both sides of the workbench 1, and the first flow channel 12 points from one end of the workbench 1 to the other end where the liquid collection tank 11 is located. The first flow channel 12 and the liquid collection tank 11 are connected. The flow path of the second flow channel 13 is located directly below the cutting path of the cutting module 3. The second flow channel 13 and the liquid collection tank 11 are connected. The closer the first flow channel 12 and the second flow channel 13 are to the liquid collection tank 11, the deeper the first flow channel 12 and the second flow channel 13 are.
[0045] The closer the first flow channel 12 and the second flow channel 13 are to the liquid collection tank 11, the deeper they are. The cutting fluid flowing down from the ceramic tile sample can flow to the liquid collection tank 11 more quickly and is less likely to leave impurities in its own flow channel, reducing the difficulty of cleaning. The flow path of the second flow channel 13 is located directly below the cutting path of the cutting module 3. When the cutting module 3 is cutting, it will not damage the worktable 1, and the cutting module 3 has more space for height adjustment.
[0046] like Figure 2 and Figure 3As shown, the cutting module 3 includes a drive motor 31, a cylinder module 32, a housing 33, a cutting motor 34, a cutting blade 35, a blower 36, and an air blowing assembly 37. The cylinder module 32 is slidably connected to the fixing frame 2. The drive motor 31 drives the cylinder module 32 to slide. One end of the telescopic rod of the cylinder module 32 is fixedly connected to the housing 33. The cutting motor 34 is fixedly connected to the housing 33 and is housed inside the housing 33. The cutting blade 35 is fixedly connected to the output shaft of the cutting motor 34, and the bottom end of the cutting blade 35 protrudes from the housing 33. The housing 33 is provided with... The liquid inlet 39 is located directly above the cutting blade 35 and is connected to the cutting fluid circulation module 5 via a pipe. The blower 36 is located inside the housing 33 and is fixedly connected to the housing 33. The air outlet of the blower 36 is connected to the air inlet of the air blowing assembly 37. The air blowing assembly 37 is fixedly connected to the housing 33. The air outlet of the air blowing assembly 37 is elongated and the angle formed between the air outlet of the air blowing assembly 37 and the worktable 1 is an acute angle. The apex of the angle between the air outlet of the air blowing assembly 37 and the worktable 1 points towards the liquid collection tank 11.
[0047] The ceramic tile sample to be cut is placed on the worktable 1. After being positioned by the positioning module 4, the cylinder module 32 is activated according to the thickness of the ceramic tile sample to be cut. The cutting blade 35 is adjusted to cut the ceramic tile sample to be cut to a certain depth. The drive motor 31, cutting motor 34, blower 36 and cutting fluid circulation module 5 are activated. The cylinder module 32 drives the cutting blade 35 to cut the ceramic tile sample. During the cutting process, the cutting fluid circulation module 5 provides cutting fluid to the cutting blade 35. The blower 36 blows air through the air blowing component 37 to blow the cutting fluid on the sample onto the worktable 1. The fluid flows into the collection tank 11 through the first flow channel 12 and the second flow channel 13 or directly into the collection tank 11 to achieve rapid collection of the cutting fluid.
[0048] like Figure 2 As shown, a baffle 38 is provided at the front end of the outer casing 33. The length and width of the baffle 38 ensure that the baffle 38 can block the cutting fluid splashing during cutting.
[0049] The baffle 38 blocks the cutting fluid splashing during cutting, reducing the total loss of cutting fluid, and allows the cutting fluid to flow into the collection tank 11 through the first flow channel 12 and the second flow channel 13 or directly into the collection tank 11 under the blowing of the blower 36.
[0050] like Figure 2 and Figure 7As shown, the positioning module 4 includes a scale bar 41, a slide bar 42, and a locking bolt 43. The locking bolt 43 is provided with a groove 44. The scale bar 41 is fixedly connected to the upper end face of the worktable 1. The scale bar 41 is perpendicular to the cutting path of the cutting module 3. The slide bar 42 passes through the scale bar 41 and is slidably connected to the scale bar 41. The slide bar 42 and the cutting path of the cutting module 3 are always parallel. The locking bolt 43 passes through the groove 44 and is threadedly connected to the slide bar 42. A portion of the scale bar 41 is spaced between the locking bolt 43 and the slide bar 42.
[0051] The scale bar 41 is set with scales. According to the cutting requirements of the sample size, adjust the slider 42 to the corresponding scale on the scale bar 41, tighten the locking bolt 43 to fix the slider 42, and align one right angle of the ceramic tile sample to be cut with the inner right angle formed by the slider 42 and the scale bar 41. Manually hold the other end of the ceramic tile sample to achieve positioning and cutting of the ceramic tile sample.
[0052] like Figure 6 As shown, a pulley 45 is provided at the end of the slider 42 away from the scale bar 41. The pulley 45 is placed on the worktable 1, and the rolling direction of the pulley 45 is parallel to the scale bar 41.
[0053] A pulley 45 is provided at one end of the slide bar 42 to facilitate the movement of the slide bar 42 on the worktable 1 without jamming, thus optimizing the operator's operating feel and improving the positioning efficiency of the ceramic tile sample to be cut.
[0054] like Figure 1 As shown, the cutting fluid circulation module 5 includes a storage tank 51, a filter plate 52, and a small water pump 53. The storage tank 51 is located below the workbench 1. The filter plate 52 is fixedly connected to the storage tank 51, and the filter plate 52 divides the storage tank 51 into two areas. One area of the storage tank 51 is connected to the through-hole outlet pipe at the bottom of the collection tank 11. The small water pump 53 is located in the other area of the storage tank 51 and is connected to the inlet pipe of the outer casing 33.
[0055] The storage tank 51 is divided into two areas by the filter plate 52. After use, the cutting fluid enters one area of the storage tank 51 through a pipeline and is stored there. Before reaching the filtration area of the filter plate 52, some impurities in the cutting fluid are internally settled in one area of the storage tank 51, which reduces the impurity content of the upper cutting fluid when it passes through the filtration area of the filter plate 52, thus enhancing the filtration effect. The filtered cutting fluid enters the other area of the storage tank 51, and the small water pump 53 transports the filtered cutting fluid to the cutting module 3 through a pipeline.
[0056] like Figure 2 As shown, the upper part of the filter plate 52 is provided with filter holes.
[0057] The lower end of the filter plate 52 is a solid plate, and the upper part is provided with filter holes. Before the cutting fluid reaches the height of the filter holes in the area of the storage tank 51 connected to the collection tank 11, the impurities in the cutting fluid will settle in the storage tank 51 first, reducing the impurity content of the upper layer of cutting fluid after passing through the filter holes. After being filtered by the filter holes, the upper layer of cutting fluid flows into another area of the storage tank 51 for reuse by the cutting module 3, thereby improving resource utilization.
[0058] like Figure 1 As shown, all pipe connections are made using flexible hoses.
[0059] The connection via flexible hoses ensures that the cutting module 3 moves freely during the cutting process, and the hose connection is easy to install and remove, making it convenient for storage.
[0060] The working principle of this invention is as follows: Based on the cutting requirements of the sample size, adjust the slide bar 42 to the corresponding scale on the scale bar 41, tighten the locking bolt 43 to fix the slide bar 42, align one right angle of the ceramic tile sample to be cut with the inner right angle formed by the slide bar 42 and the scale bar 41, manually hold the other end of the ceramic tile sample to achieve positioning. Based on the thickness of the ceramic tile sample to be cut, start the cylinder module 32, adjust the cutting depth of the cutting blade 35, and start the drive motor 31, cutting motor 34, fan 36, and cutting fluid circulation module 5. The cylinder module 32 drives the cutting blade 35 to cut the ceramic tile sample. During the cutting process, the cutting fluid circulation module 5 provides fluid to the cutting blade 35. The cutting fluid is provided by a blower 36, which blows air through the air blowing assembly 37 to blow the cutting fluid from the sample onto the worktable 1. The fluid flows into the collection tank 11 through the first flow channel 12 and the second flow channel 13, or directly into the collection tank 11, to achieve rapid collection of the cutting fluid. The cutting fluid in the collection tank 11 enters a storage area of the storage tank 51 through a pipe. Before reaching the filtration area of the filter plate 52, some impurities in the cutting fluid undergo internal sedimentation in a storage area of the storage tank 51, which reduces the impurity content of the upper cutting fluid when it passes through the filtration area of the filter plate 52, thereby enhancing the filtration effect. The filtered cutting fluid enters another area of the storage tank 51, and a small water pump 53 transports the filtered cutting fluid to the cutting module 3 through a pipe.
[0061] Finally, it should be noted that the above descriptions are merely preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. An automatic cutting device for ceramic tile samples, characterized in that: The cutting equipment includes a workbench (1), a fixed frame (2), a cutting module (3), a positioning module (4), and a cutting fluid circulation module (5). The fixed frame (2) is fixedly connected to one end of the workbench (1). Part of the fixed frame (2) is located above the workbench (1). The cutting module (3) is slidably connected to part of the fixed frame (2) above the workbench (1). The sliding direction of the cutting module (3) is from one end of the workbench (1) to the other end of the workbench (1). A liquid collection tank (11) is provided at the other end of the workbench (1). A through hole is provided at the bottom end of the liquid collection tank (11). The positioning module (4) is fixedly connected to the upper surface of the workbench (1). The cutting fluid circulation module (5) is located below the workbench (1). The cutting fluid circulation module (5) is connected to the outlet pipe of the through hole at the bottom end of the liquid collection tank (11). The cutting fluid circulation module (5) is connected to the inlet pipe of the cutting module (3).
2. The automatic cutting device for ceramic tile samples according to claim 1, characterized in that: The liquid collection tank (11) is funnel-shaped.
3. The automatic cutting device for ceramic tile samples according to claim 2, characterized in that: The workbench (1) is provided with a first flow channel (12) and a second flow channel (13). The first flow channel (12) is located on both sides of the workbench (1). The first flow channel (12) points from one end of the workbench (1) to the other end where the liquid collection tank (11) is located. The first flow channel (12) and the liquid collection tank (11) are connected. The flow path of the second flow channel (13) is located directly below the cutting path of the cutting module (3). The second flow channel (13) and the liquid collection tank (11) are connected. The closer the first flow channel (12) and the second flow channel (13) are to the liquid collection tank (11), the deeper the first flow channel (12) and the second flow channel (13) are.
4. The automatic ceramic tile sample cutting device according to claim 3, characterized in that: The cutting module (3) includes a drive motor (31), a cylinder module (32), a housing (33), a cutting motor (34), a cutting blade (35), a blower (36), and an air blowing assembly (37). The cylinder module (32) and the fixing frame (2) are slidably connected. The drive motor (31) drives the cylinder module (32) to slide. One end of the telescopic rod of the cylinder module (32) is fixedly connected to the housing (33). The cutting motor (34) is fixedly connected to the housing (33). The cutting motor (34) is located inside the housing (33). The cutting blade (35) is fixedly connected to the output shaft of the cutting motor (34). The bottom end of the cutting blade (35) protrudes from the housing (33). The upper part is provided with a liquid inlet (39), which is located directly above the cutting blade (35). The liquid inlet (39) is connected to the cutting fluid circulation module (5) via a pipe. The blower (36) is located inside the outer shell (33) and is fixedly connected to the outer shell (33). The air outlet of the blower (36) is connected to the air inlet of the air blowing assembly (37). The air blowing assembly (37) is fixedly connected to the outer shell (33). The air outlet of the air blowing assembly (37) is elongated. The angle formed between the air outlet of the air blowing assembly (37) and the worktable (1) is an acute angle. The tip of the angle between the air outlet of the air blowing assembly (37) and the worktable (1) points to the liquid collection tank (11).
5. The automatic ceramic tile sample cutting device according to claim 4, characterized in that: The front end of the outer shell (33) is provided with a baffle (38), the length and width of which ensure that the baffle (38) can block the cutting fluid splashed during cutting.
6. The automatic cutting device for ceramic tile samples according to claim 5, characterized in that: The positioning module (4) includes a scale bar (41), a slide bar (42), and a locking bolt (43). The locking bolt (43) is provided with a groove (44). The scale bar (41) is fixedly connected to the upper end face of the worktable (1). The scale bar (41) is perpendicular to the cutting path of the cutting module (3). The slide bar (42) passes through the scale bar (41). The slide bar (42) and the scale bar (41) are slidably connected. The slide bar (42) and the cutting path of the cutting module (3) are always parallel. The locking bolt (43) passes through the groove (44) and is threadedly connected to the slide bar (42). A portion of the scale bar (41) is spaced between the locking bolt (43) and the slide bar (42).
7. The automatic ceramic tile sample cutting device according to claim 6, characterized in that: The slider (42) is provided with a pulley (45) at one end away from the scale bar (41). The pulley (45) is placed on the workbench (1) and the rolling direction of the pulley (45) is parallel to the scale bar (41).
8. The automatic cutting device for ceramic tile samples according to claim 7, characterized in that: The cutting fluid circulation module (5) includes a storage tank (51), a filter plate (52) and a small water pump (53). The storage tank (51) is located below the workbench (1). The filter plate (52) is fixedly connected to the storage tank (51). The filter plate (52) divides the storage tank (51) into two areas. One area of the storage tank (51) is connected to the through-hole outlet pipe at the bottom of the liquid collection tank (11). The small water pump (53) is located in the other area of the storage tank (51). The small water pump (53) is connected to the liquid inlet pipe of the outer casing (33).
9. The automatic cutting device for ceramic tile samples according to claim 8, characterized in that: The upper part of the filter plate (52) is provided with filter holes.
10. An automatic ceramic tile sample cutting device according to claim 9, characterized in that: All pipe connections are made using flexible hoses.