A diamond tool for stone processing and a stone processing apparatus
By using a mesh plate to support the stone in stone processing equipment and driving the mesh plate to move using a drive assembly, the problem of frequent wood board replacement in existing equipment is solved, avoiding the need for diamond cutters to cut the mesh plate. This achieves cost reduction and efficient waste disposal.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- FUJIAN QUANZHOU WANLONG STONE IND CO LTD
- Filing Date
- 2026-01-04
- Publication Date
- 2026-04-14
AI Technical Summary
Existing stone processing equipment uses diamond cutting tools that cut into wooden boards when cutting stone, requiring the boards to be replaced regularly, which increases operating costs and maintenance workload.
The stone is supported by a mesh plate on the top side of the recycling tank. The mesh plate is driven to move horizontally by the first and second drive components, so that the support rod slides in the inclined first support groove. The mesh plate is lowered to avoid being cut by the diamond cutter. Combined with the diversion pipe and water outlet pipe structure of the recycling tank, the waste is effectively cleaned up.
This reduces the number of times the diamond cutter cuts the stencil, lowers usage costs and maintenance workload, and enables accurate cutting by the diamond cutter and efficient recycling of waste materials.
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Figure CN121468798B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of stone cutting, and in particular to a diamond tool and stone processing equipment for stone processing. Background Technology
[0002] Advanced stone processing technology also helps to achieve efficient utilization of stone resources, reduce waste, and conform to the concept of sustainable development.
[0003] Existing stone processing equipment typically uses a workbench supported by wooden planks to hold the stone in place. It is equipped with a three-axis moving platform on which the cutting machine, equipped with a diamond cutting blade, is fixed. The movement of the three-axis moving platform drives the cutting machine and the diamond cutting blade to cut the stone. This method utilizes the support of the wooden planks to ensure the stability of the stone during the cutting process, allowing the cutting work to proceed smoothly.
[0004] However, existing stone processing equipment has significant drawbacks. Because the diamond cutter cuts into the wood planks during stone cutting, the planks need to be replaced periodically, making the operation cumbersome and increasing operating costs and maintenance workload. Summary of the Invention
[0005] To facilitate accurate cutting of stone with diamond cutters, this application provides a diamond tool and stone processing equipment for stone processing.
[0006] This application provides a diamond tool and stone processing equipment for stone processing, which adopts the following technical solution:
[0007] A stone processing device includes a recycling tank. A three-axis moving platform is fixedly installed on the top side of the recycling tank. A cutting machine body is fixedly installed on the three-axis moving platform. A diamond cutting blade is installed on the cutting machine body. Multiple mesh plates are arranged on the top side of the recycling tank. Multiple support blocks are fixedly installed on the bottom side of the mesh plates. The multiple support blocks are spaced apart along the length direction of the mesh plates. Each support block is provided with a support rod. One end of the support rod is fixedly connected to the inner bottom wall of the recycling tank. A first support groove is opened on the bottom side of the support block for the support rod to pass through. The inner top wall of the first support groove gradually rises from one end of the mesh plate to the other end and is inclined. A first drive assembly is installed on the cutting machine body. A second drive assembly is installed on the recycling tank. The first drive assembly and the second drive assembly are used to drive the mesh plates to move horizontally in opposite directions.
[0008] By adopting the above technical solution, the stone is supported by a mesh plate on the top side of the recycling tank. The mesh plate is driven horizontally by the first and second drive components, allowing the support rod to slide within the inclined first support groove, thus lowering and restoring the mesh plate. When the diamond cutter cuts the stone, the mesh plate below the diamond cutter descends to avoid it, reducing the likelihood of the diamond cutter cutting into the mesh plate and facilitating accurate stone cutting.
[0009] Optionally, the mesh plate has multiple filter holes, which are spaced apart along the width of the mesh plate to form a row, and the multiple rows of filter holes are spaced apart along the length of the mesh plate, with adjacent rows of filter holes being staggered.
[0010] By adopting the above technical solution, it is convenient for waste to be discharged from the filter holes into the recycling tank.
[0011] Optionally, the first driving assembly includes a connecting rod, a mounting block, a column block, a first torsion spring, and a limiting plate. One end of the connecting rod is hinged to the cutting machine body, and the other end of the connecting rod is connected to the mounting block. A storage groove is provided on the bottom side of the mounting block. One end of the column block is hinged inside the storage groove. The first torsion spring is fixedly installed between the column block and the top wall of the storage groove. The first torsion spring is used to drive the column block to extend out of the storage groove. The column block is used to insert into the filter hole. The limiting plate is L-shaped and fixedly installed on the outer wall of the recycling tank. The limiting plate is located at one end of the mesh plate to limit the movement distance of the mesh plate driven by the first driving assembly.
[0012] By adopting the above technical solution, during the cutting process driven by the three-axis moving platform to descend the cutting machine body, the column block first squeezes the mesh plate to slide, and then the column block inserts into the filter hole. After the column block is inserted into the filter hole, it continues to slide, thereby pushing the mesh plate to slide and descend. When the mesh plate abuts against the limiting plate, the mesh plate stops sliding, and then the column block is pressed against the mesh plate, causing the column block to rotate and enter the receiving groove.
[0013] Optionally, both sides of the recycling tank are provided with sliding openings for the mesh plate to slide through, and the length of the sliding opening along the height direction is greater than the thickness of the mesh plate.
[0014] By adopting the above technical solution, the stencil can smoothly pass through the sliding opening during horizontal movement and lifting and lowering under the influence of the inclination of the first support groove, ensuring the smoothness of the stencil's movement and lifting, and thus ensuring the normal lowering and restoration of the stencil as needed during the cutting process.
[0015] Optionally, the second drive assembly includes a push plate, a side plate, a second torsion spring, a rotating rod, and a drive rod. The rotating rod is rotatably mounted on the outer wall of the recycling tank. The push plate is fixedly mounted on the rotating rod. The second torsion spring is fixedly mounted between the rotating rod and the recycling tank. The drive rod is fixedly mounted on the rotating rod. The side plate is fixedly mounted on one end of the mesh plate. The push plate is located on the side of the side plate near the recycling tank.
[0016] By adopting the above technical solution, after the cutting is completed, the drive rod drives the rotating rod to rotate, and the rotating rod drives the push plate to push the side plate away from the recycling tank, so that the cut mesh plate can be moved in the opposite direction to restore it.
[0017] Optionally, the three-axis moving platform includes a first horizontal slide rail, a second horizontal slide rail, and a lifting cylinder. There are two first horizontal slide rails, which are fixedly installed in parallel on the top side of the recycling tank. The second horizontal slide rail is installed between the two first horizontal slide rails. The lifting cylinder is installed on the second horizontal slide rail, and the cutting machine body is installed on the lifting cylinder. The first horizontal slide rail is used to drive the second horizontal slide rail to move horizontally, the second horizontal slide rail is used to drive the lifting cylinder to move horizontally, and the lifting cylinder is used to drive the cutting machine body to move up and down.
[0018] By adopting the above technical solution, the position of the cutting machine body can be flexibly adjusted to cut the stone.
[0019] Optionally, a support sleeve is threaded onto the top end of the support rod, and the support sleeve passes through the first support groove.
[0020] By adopting the above technical solution, the height of the rotating support sleeve can be adjusted, making it easier for the support sleeve to abut against the inner top wall of the first support groove.
[0021] Optionally, a diversion pipe is fixedly installed on one side wall of the recycling tank. One end of the diversion pipe is sealed, and the other end of the diversion pipe is used to connect to a water pump. Multiple water outlet pipes are fixedly installed on the body of the diversion pipe. The water outlet pipes are fixedly installed through the side wall of the recycling tank. A discharge port is opened on the side of the recycling tank away from the diversion pipe.
[0022] By adopting the above technical solution, a diversion pipe is installed on the side wall of the recycling tank. The diversion pipe is connected to a water pump. Multiple water outlet pipes are installed in the pipe body and run through the side wall of the recycling tank. In conjunction with the discharge port opened on the other side of the recycling tank, the water pump can be used to make water enter the recycling tank through the diversion pipe and the water outlet pipe, and the waste in the tank can be discharged through the discharge port, so as to achieve effective cleaning of waste.
[0023] Optionally, the bottom wall of the recycling tank is inclined, gradually decreasing from one side near the diversion pipe to the other.
[0024] By adopting the above technical solution, after the water pump is connected to the diversion pipe, the water flows into the recycling tank through the outlet pipe. The inclined inner bottom wall allows the water flow to carry the waste to the discharge port, which facilitates the discharge of waste from the recycling tank.
[0025] A diamond tool for stone processing includes a disc base and diamond cutting heads spaced apart along the circumference of the disc base. Multiple toothed blocks are fixedly installed on the circumference of the disc base. The diamond cutting heads have toothed grooves for the toothed blocks to enter, and the toothed blocks are fixedly connected to the inner wall of the toothed grooves.
[0026] By adopting the above technical solution, the tooth block and tooth groove are matched, increasing the connection strength between the disc base and the diamond cutter head.
[0027] In summary, this application includes at least one of the following beneficial technical effects:
[0028] The first drive assembly and the second drive assembly drive the screen plate to move horizontally in opposite directions, causing the support rod to slide in the first support groove. Due to the inclination of the first support groove, the screen plate can be lowered, reducing the occurrence of the diamond cutter cutting the screen plate, reducing the cost of use and maintenance, and facilitating accurate cutting of stone by the diamond cutter.
[0029] The recycling tank is equipped with a diversion pipe, a water outlet pipe, and a discharge port, and the inner bottom wall is inclined to facilitate the recycling of waste generated during cutting. Attached Figure Description
[0030] Figure 1 This is a schematic diagram of the overall structure from a first-view perspective of Embodiment 1 of this application;
[0031] Figure 2 This is a schematic diagram of the overall structure from a second perspective of Embodiment 1 of this application;
[0032] Figure 3 This is a schematic diagram of the structure of the recycling tank in Embodiment 1 of this application;
[0033] Figure 4 This is a schematic diagram of the structure of the stencil in Embodiment 1 of this application;
[0034] Figure 5 This is an exploded view of the support rod and support block in Embodiment 1 of this application;
[0035] Figure 6 This is a partial structural schematic diagram of the first driving component in Embodiment 1 of this application;
[0036] Figure 7 yes Figure 2 Enlarged view at point A;
[0037] Figure 8 This is a schematic diagram of the overall structure of Embodiment 2 of this application.
[0038] Explanation of reference numerals in the attached drawings: 1. Recycling tank; 2. Diverter pipe; 3. Discharge port; 4. Water outlet pipe; 5. Three-axis moving platform; 51. First horizontal slide rail; 52. Second horizontal slide rail; 53. Lifting cylinder; 6. Cutting machine body; 7. Diamond cutter; 8. Mesh plate; 9. Slide opening; 10. Support block; 11. Support sleeve; 12. Support rod; 13. First support groove; 14. Second support groove; 15. First drive assembly; 151. Connecting rod; 152. Mounting block; 153. Column block; 154. First torsion spring; 155. Limiting plate; 16. Storage groove; 17. Second drive assembly; 171. Push plate; 172. Side plate; 173. Second torsion spring; 174. Rotating rod; 175. Drive rod; 18. Filter hole; 19. Disc base; 20. Diamond cutter head; 21. Tooth block; 22. Tooth groove. Detailed Implementation
[0039] The following is in conjunction with the appendix Figure 1-8 This application will be described in further detail. Example 1
[0040] This application discloses a stone processing equipment.
[0041] Reference Figure 1 , Figure 2 A stone processing device includes a recovery tank 1. A diversion pipe 2 is fixedly installed on one side of the recovery tank 1, and a discharge port 3 is opened on the other side of the recovery tank 1. The bottom wall of the recovery tank 1 gradually slopes down from one side near the diversion pipe 2 to the other side. One end of the diversion pipe 2 is sealed, and the other end is used to connect to a water pump. Multiple water outlet pipes 4 are fixedly installed on the body of the diversion pipe 2, and the water outlet pipes 4 are fixedly inserted through the side wall of the recovery tank 1.
[0042] When it is necessary to clean the waste inside the recycling tank 1, the diversion pipe 2 is connected to the water pump. Water enters the outlet pipe 4 from the diversion pipe 2, and then enters the recycling tank 1 from the outlet pipe 4. The waste inside the recycling tank 1 flows to the discharge port 3 under the flushing of water, and then the waste and water are discharged from the discharge port 3.
[0043] Reference Figure 1 , Figure 2A three-axis moving platform 5 is installed on the top side of the recycling tank 1. The three-axis moving platform 5 includes a first horizontal slide rail 51, a second horizontal slide rail 52, and a lifting cylinder 53. There are two first horizontal slide rails 51, which are fixedly installed in parallel on the top side of the recycling tank 1. The second horizontal slide rail 52 is installed between the two first horizontal slide rails 51. The lifting cylinder 53 is installed on the second horizontal slide rail 52. A cutting machine body 6 is installed on the lifting cylinder 53, and a diamond cutting blade 7 is fixedly installed on the cutting machine body 6. The first horizontal slide rail 51 is used to drive the second horizontal slide rail 52 to move horizontally. The second horizontal slide rail 52 is used to drive the lifting cylinder 53 to move horizontally. The lifting cylinder 53 is used to drive the cutting machine body 6 to move up and down, thereby realizing the three-axis movement of the cutting machine body 6, which in turn facilitates the cutting machine body 6 to drive the diamond cutting blade 7 to cut the stone.
[0044] Reference Figure 2 , Figure 3 The top side of the recycling tank 1 is provided with multiple mesh plates 8, which are rectangular in shape. In another embodiment, the periphery of the diamond cutter 7 faces the first horizontal slide rail 51, and the multiple mesh plates 8 are spaced apart along the length of the first slide rail. In this embodiment, both sides of the diamond cutter 7 face the first horizontal slide rail 51, and the multiple mesh plates 8 are spaced apart along the length of the second slide rail.
[0045] Both sides of the recycling tank 1 are provided with sliding openings 9 for the mesh plate 8 to slide through. The length of the sliding opening 9 along the height direction is greater than the thickness of the mesh plate 8, so as to facilitate the sliding and lifting of the mesh plate 8.
[0046] Reference Figure 4 The mesh plate 8 has multiple filter holes 18, which are spaced apart along the width direction of the mesh plate 8 to form a row. The multiple rows of filter holes 18 are spaced apart along the length direction of the mesh plate 8, and adjacent rows of filter holes 18 are staggered.
[0047] Reference Figure 3 , Figure 5 Multiple support blocks 10 are fixedly installed on the bottom side of the mesh plate 8, and the support blocks 10 are spaced apart along the length of the mesh plate 8. Each support block 10 is provided with a support sleeve 11 and a support rod 12. One end of the support rod 12 is fixedly installed on the inner bottom wall of the recycling tank 1, and the other end of the support rod 12 is threaded through the support sleeve 11. A first support groove 13 is formed on the bottom side of the support block 10, and a second support groove 14 is formed at both ends of the first support groove 13 on the bottom side of the support block 10. The support sleeve 11 slides through the first support groove 13 and the second support groove 14. The inner top wall of the first support groove 13 is gradually raised from one end of the mesh plate 8 to the other end and is inclined.
[0048] The support rod 12 supports the mesh plate 8 through the support sleeve 11 and the support block 10. The stone is placed on the mesh plate 8, which makes it convenient for the diamond cutter 7 to cut the stone.
[0049] Based on the position where the diamond cutter 7 is cutting the stone, the mesh plate 8 below the diamond cutter 7 is moved horizontally, causing the support sleeve 11 to move from one second support groove 14 to another, thereby lowering the mesh plate 8. The lowering of the mesh plate 8 avoids the diamond cutter 7, facilitating accurate cutting of the stone. After cutting, the mesh plate 8 is pushed back to its original position, causing it to rise and providing support for the stone.
[0050] Reference Figure 1 , Figure 6 The cutting machine body 6 is equipped with a first drive assembly 15, which includes a connecting rod 151, a mounting block 152, a column block 153, a first torsion spring 154, and a limiting plate 155. One end of the connecting rod 151 is hinged to the cutting machine body 6, and the other end of the connecting rod 151 is connected to the mounting block 152. A storage groove 16 is provided on the bottom side of the mounting block 152, and one end of the column block 153 is hinged inside the storage groove 16. The first torsion spring 154 is fixedly installed between the column block 153 and the inner top wall of the storage groove 16, and the first torsion spring 154 is used to drive the column block 153 to extend out of the storage groove 16. The limiting plate 155 is L-shaped and fixedly installed on the outer wall of the recycling tank 1. The limiting plate 155 is located at one end of the mesh plate 8 and is used to limit the movement distance of the mesh plate 8 driven by the first drive assembly 15.
[0051] As the three-axis moving platform 5 lowers the cutting machine body 6, the column block 153 abuts against the screen plate 8. Then, the cutting machine body 6 continues to descend, the connecting rod 151 rotates upward, and the column block 153 slides against the screen plate 8, subsequently inserting into the filter hole 18. After the column block 153 inserts into the filter hole 18, the cutting machine body 6 continues to descend, causing the column block 153 to push the screen plate 8 towards the limiting plate 155. When the screen plate 8 abuts against the limiting plate 155, the column block 153 can no longer push the screen plate 8. Then, the screen plate 8 and the column block 153 press against each other, causing the column block 153 to retract into the receiving groove 16. When the screen plate 8 abuts against the limiting plate 155, the support sleeve 11 moves from one second support groove 14 to another, and the screen plate 8 descends. The first drive assembly 15 cooperates with the descent of the cutting mechanism, facilitating the automatic descent of the screen plate 8 during cutting.
[0052] Reference Figure 3 , Figure 7The recycling tank 1 is equipped with a second drive assembly 17, which includes a push plate 171, a side plate 172, a second torsion spring 173, a rotating rod 174, and a drive rod 175. The rotating rod 174 is rotatably mounted on the outer wall of the recycling tank 1 away from the limiting plate 155, and the push plate 171 is fixedly mounted on the rotating rod 174. The second torsion spring 173 is fixedly mounted between the rotating rod 174 and the recycling tank 1, and the drive rod 175 is fixedly mounted on the rotating rod 174. The side plate 172 is fixedly mounted on the end of the mesh plate 8 away from the limiting plate 155, and the push plate 171 is located on the side of the side plate 172 closer to the recycling tank 1.
[0053] After cutting, part of the mesh plate 8 moves downward toward the limiting plate 155. The drive rod 175 drives the rotating rod 174 to rotate, which in turn pushes the side plate 172 away from the recycling tank 1. The side plate 172 then moves the mesh plate 8 away from the limiting plate 155 to reset. After releasing the drive rod 175, the torsion spring drives the push plate 171 to rotate upward and reset.
[0054] Upon completion of cutting, the three-axis moving platform 5 will drive the cutting machine body 6 to reset, facilitating the removal and placement of the stone. While the three-axis moving platform 5 is resetting the cutting machine body 6, the second slide rail will press against the drive rod 175, thus automatically pushing the drive rod 175 to reset the mesh plate 8.
[0055] The implementation principle of the stone processing equipment in this application embodiment is as follows: The stone processing equipment supports the stone through a mesh plate 8. During the cutting process, the first drive component 15 drives the mesh plate 8 to move horizontally according to the position of the diamond cutter 7, causing the mesh plate 8 to descend and reducing the occurrence of the diamond cutter 7 cutting the mesh plate 8, thereby facilitating accurate cutting of the stone by the diamond cutter 7. After cutting is completed, the second drive component 17 drives the mesh plate 8 to move in the opposite direction to restore its original position. The three-axis moving platform 5 can precisely control the position of the cutting machine body 6 to achieve precise cutting. The flushing and discharge structure of the recovery tank 1 can effectively clean up the waste generated during cutting. Example 2
[0056] This application discloses a diamond tool for stone processing.
[0057] Reference Figure 8This application describes a diamond tool for stone processing, used as the diamond cutter 7 in a stone processing device according to Embodiment 1. The diamond tool includes a disc base 19 and diamond cutting heads 20 spaced apart circumferentially along the disc base 19. Multiple toothed blocks 21 are fixedly mounted on the circumference of the disc base 19. The diamond cutting heads 20 have toothed grooves 22 for the toothed blocks 21 to enter. The toothed blocks 21 are fixedly connected to the inner wall of the toothed grooves 22, thereby increasing the connection strength between the disc base 19 and the diamond cutting heads 20. This is because the cooperation between the toothed blocks 21 and the toothed grooves 22 increases the contact area and connection stability between them.
[0058] The implementation principle of a diamond tool for stone processing according to an embodiment of this application is as follows: the diamond tool enhances the connection strength between the disc base 19 and the diamond cutting head 20 through the cooperation of the tooth block 21 and the tooth groove 22, reduces the risk of the diamond cutting head 20 falling off during use, and improves the service life and cutting effect of the tool.
[0059] The above are all preferred embodiments of this application and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A stone processing equipment, characterized in that: The system includes a recycling tank (1), on which a three-axis moving platform (5) is fixedly installed. A cutting machine body (6) is fixedly installed on the three-axis moving platform (5), and a diamond cutting blade (7) is installed on the cutting machine body (6). Multiple mesh plates (8) are provided on the top side of the recycling tank (1), and multiple support blocks (10) are fixedly installed on the bottom side of the mesh plates (8). The multiple support blocks (10) are spaced apart along the length of the mesh plates (8). Each support block (10) is equipped with a support rod (12). 2) One end is fixedly connected to the inner bottom wall of the recycling tank (1). The bottom side of the support block (10) is provided with a first support groove (13) for the support rod (12) to pass through. The inner top wall of the first support groove (13) is gradually raised from one end of the mesh plate (8) to the other end and is inclined. The cutting machine body (6) is equipped with a first drive assembly (15). The recycling tank (1) is equipped with a second drive assembly (17). The first drive assembly (15) and the second drive assembly (17) are used to drive the mesh plate (8) to move horizontally in opposite directions. The mesh plate (8) has a plurality of filter holes (18), the plurality of filter holes (18) are arranged in a row at intervals along the width direction of the mesh plate (8), the multiple rows of filter holes (18) are arranged at intervals along the length direction of the mesh plate (8), and the filter holes (18) of adjacent two rows are staggered. The first drive assembly (15) includes a connecting rod (151), a mounting block (152), a column block (153), a first torsion spring (154), and a limiting plate (155). One end of the connecting rod (151) is hinged to the cutting machine body (6), and the other end of the connecting rod (151) is connected to the mounting block (152). A storage groove (16) is provided on the bottom side of the mounting block (152), and one end of the column block (153) is hinged inside the storage groove (16). The spring (154) is fixedly installed between the column block (153) and the inner top wall of the storage groove (16). The first torsion spring (154) is used to drive the column block (153) to extend out of the storage groove (16). The column block (153) is used to insert into the filter hole (18). The limiting plate (155) is L-shaped and fixedly installed on the outer wall of the recycling tank (1). The limiting plate (155) is located at one end of the mesh plate (8) to limit the movement distance of the mesh plate (8) driven by the first driving assembly (15). The two side walls of the recycling tank (1) are provided with sliding openings (9) for the mesh plate (8) to slide through. The length of the sliding opening (9) along the height direction is greater than the thickness of the mesh plate (8). The second drive assembly (17) includes a push plate (171), a side plate (172), a second torsion spring (173), a rotating rod (174), and a drive rod (175). The rotating rod (174) is rotatably mounted on the outer wall of the recycling tank (1). The push plate (171) is fixedly mounted on the rotating rod (174). The second torsion spring (173) is fixedly mounted between the rotating rod (174) and the recycling tank (1). The drive rod (175) is fixedly mounted on the rotating rod (174). The side plate (172) is fixedly mounted on one end of the mesh plate (8). The push plate (171) is located on the side of the side plate (172) near the recycling tank (1).
2. The stone processing equipment according to claim 1, characterized in that: The three-axis moving platform (5) includes a first horizontal slide rail (51), a second horizontal slide rail (52), and a lifting cylinder (53). There are two first horizontal slide rails (51) that are fixedly installed in parallel on the top side of the recycling tank (1). The second horizontal slide rail (52) is installed between the two first horizontal slide rails (51). The lifting cylinder (53) is installed on the second horizontal slide rail (52). The cutting machine body (6) is installed on the lifting cylinder (53). The first horizontal slide rail (51) is used to drive the second horizontal slide rail (52) to move horizontally. The second horizontal slide rail (52) is used to drive the lifting cylinder (53) to move horizontally. The lifting cylinder (53) is used to drive the cutting machine body (6) to lift.
3. The stone processing equipment according to claim 1, characterized in that: The top end of the support rod (12) is threaded with a support sleeve (11), and the support sleeve (11) passes through the first support groove (13).
4. The stone processing equipment according to claim 1, characterized in that: A diversion pipe (2) is fixedly installed on one side wall of the recycling tank (1). One end of the diversion pipe (2) is sealed, and the other end of the diversion pipe (2) is used to connect to a water pump. Multiple water outlet pipes (4) are fixedly installed on the body of the diversion pipe (2). The water outlet pipes (4) are fixedly penetrated through the side wall of the recycling tank (1). A discharge port (3) is opened on the side of the recycling tank (1) away from the diversion pipe (2).
5. The stone processing equipment according to claim 4, characterized in that: The bottom wall of the recycling tank (1) is inclined, with the bottom wall gradually decreasing from one side of the diversion pipe (2) to the other side.
6. A diamond tool for stone processing, applied to a stone processing equipment as described in any one of claims 1-5, characterized in that: It includes a disc base (19) and diamond cutter heads (20) spaced apart around the disc base (19). Multiple tooth blocks (21) are fixedly installed on the circumference of the disc base (19). The diamond cutter head (20) has a tooth groove (22) for the tooth blocks (21) to enter. The tooth blocks (21) are fixedly connected to the inner wall of the tooth groove (22).
Citation Information
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