An automated ceramic grinding machine tool
Through the combined design of the drive mechanism and the limiting mechanism, the problem of difficulty in adjusting the position of the ceramic grinding machine tool is solved, and more efficient ceramic processing and equipment stability is achieved, and ceramic damage is avoided.
Patent Information
- Application Number
- CN202510638513.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-19
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2045-05-19
AI Technical Summary
The cutting equipment of existing ceramic grinding machines is difficult to adjust the position, resulting in a reduced machining efficiency.
The driving mechanism drives the limiting mechanism and the reciprocating screw body assembly, and the limiting mechanism fixes the ceramic workpiece and the position adjustment of the CNC grinder. Combined with the design of the ratchet set and the buffer shaft, the stability and adjustability of the equipment are ensured.
It improves the processing efficiency and stability of ceramic grinding machine tools, avoids damage to ceramics, and enhances the equipment's automatic cutting ability.
Smart Images

Figure CN120170591B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of ceramic processing, and specifically relates to an automatic ceramic grinding machine tool. Background Technique
[0002] Ceramics are the general term for pottery and porcelain; any utensils made from these two different types of clay, namely clay and porcelain clay, through processes such as batching, shaping, drying, and roasting can be called ceramics. In modern ceramic processing, a grinding machine tool is often required to process its surface or interior. However, the existing grinding machine tools have some deficiencies. For example, for an automatic grinding machine tool with the application number CN202110843372.0, this device can effectively clean grinding particles, saving time and effort, and can better fix the workpiece during processing. However, in actual use, since the cutting device of this device is difficult to adjust its position, it may lead to the need to move the cutting device through other components when processing ceramics and other workpieces, which may result in problems with difficult automatic cutting, thus reducing the processing efficiency of this device.
[0003] Therefore, we propose an automatic ceramic grinding machine tool to solve the problems raised above. Summary of the Invention
[0004] The purpose of the present invention is to provide an automatic ceramic grinding machine tool to solve the problem that the cutting device of the current ceramic grinding machine tool on the market is difficult to adjust its position, which may lead to the need to move the cutting device through other components when processing ceramics and other workpieces, resulting in problems with difficult automatic cutting and thus reducing the processing efficiency of this device as mentioned in the above background technique.
[0005] To achieve the above purpose, the present invention provides the following technical solution: An automatic ceramic grinding machine tool includes a first device housing, a workbench connected to the rear end of the first device housing, and a second device housing, and a numerical control grinding machine is provided on the top of the second device housing; a first motor is provided inside the first device housing, and the rear end of the first motor is connected to a transmission mechanism, and the right end of the first motor is connected to a limiting mechanism. The top of the workbench is connected to the transmission mechanism, and the first motor can drive the transmission mechanism or the limiting mechanism to operate.
[0006] Inside the second device housing, there is a driving mechanism, and the right end of the driving mechanism is connected to a moving mechanism. The moving mechanism includes a reciprocating lead screw body, and a lead screw sleeve is arranged outside the reciprocating lead screw body. The top of the lead screw sleeve is fixedly connected to a control seat, and a numerical control grinding machine is connected to the top of the control seat. Moreover, the right end of the driving mechanism is connected to a limiting mechanism. After the transmission mechanism drives the workpiece to be transmitted to the bottom of the numerical control grinding machine, the driving mechanism will drive the limiting mechanism to fix the ceramic workpiece. Subsequently, the ceramic workpiece is limited and fixed by the limiting mechanism. At the same time, the lead screw sleeve will also drive the control seat and the numerical control grinding machine to move, so as to perform automatic cutting on the ceramic workpiece.
[0007] By driving two sets of components, namely the limiting mechanism and the reciprocating lead screw body, the driving mechanism can make the driving mechanism freely adjust the positions of the control seat and the numerical control grinding machine after the limiting mechanism fixes the ceramic workpiece. Thus, when the numerical control grinding machine performs automatic cutting on the ceramic workpiece, it is more convenient, thereby increasing the efficiency of the device during use.
[0008] As a preferred technical solution of the present invention, the first motor is fixedly connected to the inside of the first device housing, and the rear end of the first motor is connected to a first sprocket. Moreover, a first chain is meshed outside the first sprocket, and the right end of the first chain is meshed with a second sprocket. Both the front and rear ends of the first sprocket and the second sprocket are provided with ratchet groups.
[0009] Adopting the above technical solution can make the first motor operate more stably when running with the transmission mechanism or the limiting mechanism, thereby increasing the stability of the device during operation.
[0010] As a preferred technical solution of the present invention, the second sprocket is fixedly connected to the inside of the first device housing, and the ratchet group includes a first ratchet. Moreover, the rear end of the first ratchet is meshed with a second ratchet, the rear end of the second ratchet is connected to a spring shaft, and the ratchet orientations of the ratchet groups at the rear ends of the first sprocket and the second sprocket are opposite.
[0011] Adopting the above technical solution can make it more convenient for the first motor to drive the transmission mechanism or the limiting mechanism, and the second motor to drive the moving mechanism or the rotating mechanism to operate, thereby increasing the adjustability of the device during operation.
[0012] As a preferred technical solution of the present invention, the rear end of the first sprocket is connected to the transmission mechanism through a ratchet group, and the transmission mechanism includes a first driving shaft. Moreover, a transmission belt is meshed outside the first driving shaft, the right end of the transmission belt is meshed with a second driving shaft, and both the first driving shaft and the second driving shaft are composed of a sprocket body and a rotating roller.
[0013] Adopting the above technical solution can make the transmission belt move more stably when driving the ceramic, thereby increasing the stability of the device during operation.
[0014] As a preferred technical solution of the present invention, the first drive shaft and the second drive shaft are connected to the workbench through a limit seat, and the limiting mechanism includes a third sprocket. The second sprocket is connected to the third sprocket through a ratchet group. The outside of the third sprocket is engaged with a second chain, and the right end of the second chain is engaged with a fourth sprocket. Reciprocating threaded shafts are provided at the rear ends of the third sprocket and the fourth sprocket. Threaded sleeves are provided on the outside of the reciprocating threaded shafts. The rear ends of the threaded sleeves are connected to mounting plates, and buffer shafts are connected to the rear sides of the mounting plates. The mounting plates and the buffer shafts are located on top of the workbench and the transmission mechanism.
[0015] Adopting the above technical solution can enable the mounting plate to buffer the surface of the ceramic through the buffer shaft when pushing the ceramic, so that the mounting plate will not damage the ceramic when pushing the ceramic.
[0016] As a preferred technical solution of the present invention, the rear end of the workbench is fixedly connected to the second device housing. The driving mechanism includes a second motor. A fifth sprocket is provided at the right end of the second motor. The outside of the fifth sprocket is engaged with a third chain. The bottom of the third chain is engaged with a sixth sprocket. A set of ratchet groups are provided at the right ends of the fifth sprocket and the sixth sprocket. The ratchet groups at the right end of the fifth sprocket and the right end of the sixth sprocket have opposite ratchet orientations.
[0017] Adopting the above technical solution can make it more convenient for the second motor to drive the moving mechanism or the rotating mechanism to operate, thereby increasing the adjustability of the device.
[0018] As a preferred technical solution of the present invention, the right end of the fifth sprocket is connected to the moving mechanism through a ratchet group. The moving mechanism includes a reciprocating lead screw body. A lead screw sleeve is provided on the outside of the reciprocating lead screw body. The top of the lead screw sleeve is fixedly connected to the control seat. A sliding rod is provided inside the second device housing. The sliding rod and the lead screw sleeve form a sliding connection.
[0019] Adopting the above technical solution can enable the reciprocating lead screw body to rotate the lead screw sleeve through the sliding rod when driving the lead screw sleeve to operate, thereby increasing the stability of the lead screw sleeve during movement.
[0020] As a preferred technical solution of the present invention, the inside of the second device housing is connected to the rotating mechanism through a rotating seat. The rotating mechanism includes a sixth sprocket. The right end of the sixth sprocket is fixedly connected to a rotating rod through a ratchet group. A first bevel gear is connected to the right end of the rotating rod. A second bevel gear is engaged with the rear end of the first bevel gear. A telescopic rod is connected to the front end of the second bevel gear. A third bevel gear is connected to the front end of the telescopic rod. A fourth bevel gear is engaged with the bottom of the third bevel gear. A seventh sprocket is connected to the bottom of the fourth bevel gear. The outside of the seventh sprocket is engaged with a fourth chain. The right end of the fourth chain is engaged with an eighth sprocket. Rotating shafts are connected to the bottoms of the seventh sprocket and the eighth sprocket;
[0021] The bottom of the rotating shaft is connected with a fixed plate, and both the seventh sprocket and the eighth sprocket are arranged inside the fixed plate for protection, and a hydraulic rod is connected to the rear end of the fixed plate.
[0022] Adopting the above technical solution can make the second motor drive the rotating shaft more stably, and can push the fixed plate through the hydraulic rod, so that when the rotating shaft outside the fixed plate fits with the ceramic, it is more convenient.
[0023] As a preferred technical solution of the present invention, the hydraulic rod is fixedly connected to the inside of the second device housing, and a circuit board is provided inside the control seat, and the control seat is circuit-connected to the numerical control grinding machine through a control row board.
[0024] Adopting the above technical solution can make it more convenient for the control seat to connect and control the numerical control grinding machine, thereby increasing the firmness of the equipment during installation.
[0025] As a preferred technical solution of the present invention, a bearing seat is provided inside the second device housing, and the second device housing is connected to the right end of the rotating rod through the bearing seat, and a bearing seat is also provided inside the first device housing, and the first device housing is slidably connected to the threaded sleeve through the bearing seat.
[0026] Adopting the above technical solution can make the equipment more firm during installation, so that the equipment can operate more stably.
[0027] Compared with the prior art, the beneficial effects of the present invention are: by driving the two sets of components of the limiting mechanism and the reciprocating lead screw body through the driving mechanism, it can make the driving mechanism drive the control seat and the numerical control grinding machine to freely adjust the position after the limiting mechanism limits and fixes the ceramic workpiece, so that when the numerical control grinding machine automatically cuts the ceramic workpiece, it is more convenient, thereby increasing the efficiency of the equipment during use;
[0028] Furthermore, through the setting of the ratchet group, it can make it more convenient for the first motor to drive the transmission mechanism or the limiting mechanism, and for the second motor to drive the moving mechanism or the rotating mechanism, thereby increasing the adjustability of the equipment during operation;
[0029] Even further, by setting a buffer shaft at the rear side of the mounting plate, it can make the mounting plate buffer the surface of the ceramic through the buffer shaft when pushing the ceramic, so that the mounting plate will not damage the ceramic when pushing the ceramic. BRIEF DESCRIPTION OF THE DRAWINGS
[0030] Figure 1 It is a front elevation structural diagram of the present invention;
[0031] Figure 2 It is a sectional three-dimensional structural diagram of the first device housing of the present invention;
[0032] Figure 3 is a schematic three-dimensional structure diagram of the side view cross-section of the present invention;
[0033] Figure 4 is a schematic three-dimensional structure diagram of the cross-section of the second device housing of the present invention;
[0034] Figure 5 is a schematic three-dimensional structure diagram of the engagement of the first motor and the first sprocket of the present invention;
[0035] Figure 6 is of the present invention Figure 5 schematic enlarged structure diagram at position A;
[0036] Figure 7 is a schematic three-dimensional structure diagram of the transmission mechanism of the present invention;
[0037] Figure 8 is a schematic three-dimensional structure diagram of the disassembly of parts of the limit mechanism of the present invention;
[0038] Figure 9 is a schematic elevation structure diagram of the second motor of the present invention;
[0039] Figure 10 is a schematic three-dimensional structure diagram of the moving mechanism of the present invention;
[0040] Figure 11 is a schematic three-dimensional structure diagram of the rotating mechanism of the present invention;
[0041] Figure 12 is a schematic three-dimensional structure diagram of the engagement of the third bevel gear and the fourth bevel gear of the present invention;
[0042] Figure 13 is a schematic three-dimensional structure diagram of the top of the first device housing and the second device housing of the present invention.
[0043] In the figure: 1. First device housing; 2. Second device housing; 3. Workbench; 4. First motor; 5. First sprocket; 6. First chain; 7. Second sprocket; 8. First ratchet; 9. Second ratchet; 10. Spring shaft; 11. First drive shaft; 12. Transmission belt; 13. Second drive shaft; 14. Third sprocket; 15. Second chain; 16. Fourth sprocket; 17. Reciprocating threaded shaft; 18. Threaded sleeve; 19. Mounting plate; 20. Buffer shaft; 21. Second motor; 22. Fifth sprocket; 23. Third chain; 24. Sixth sprocket; 25. Reciprocating lead screw body; 26. Slide bar; 27. Lead screw sleeve; 28. Rotating rod; 29. First bevel gear; 30. Second bevel gear; 31. Telescopic rod; 32. Third bevel gear; 33. Fourth bevel gear; 34. Seventh sprocket; 35. Fourth chain; 36. Eighth sprocket; 37. Rotating shaft; 38. Fixed plate; 39. Hydraulic rod; 40. Control seat; 41. Numerical control grinding machine. Detailed implementation mode
[0044] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments.
[0045] Please refer to Figures 1-13 , the present invention provides a technical solution: an automated ceramic grinding machine tool, including a first device housing 1, a workbench 3 connected to the rear end of the first device housing 1, and a second device housing 2, and a numerical control grinding machine 41 is provided on the top of the second device housing 2; a first motor 4 is provided inside the first device housing 1, and the rear end of the first motor 4 is connected to a transmission mechanism, and the right end of the first motor 4 is connected to a limiting mechanism. The top of the workbench 3 is connected to the transmission mechanism, and the first motor 4 can drive the transmission mechanism or the limiting mechanism to operate;
[0046] A driving mechanism is provided inside the second device housing 2, and a moving mechanism is connected to the right end of the driving mechanism. The moving mechanism includes a reciprocating lead screw body 25, and a lead screw sleeve 27 is provided outside the reciprocating lead screw body 25. The top of the lead screw sleeve 27 is fixedly connected to a control seat 40, and the top of the control seat 40 is connected to a numerical control grinding machine 41. And a limiting mechanism is connected to the right end of the driving mechanism. After the transmission mechanism drives the workpiece to be transmitted to the bottom of the numerical control grinding machine 41, the driving mechanism will drive the limiting mechanism to fix the ceramic workpiece, and then the ceramic workpiece will be limited and fixed by the limiting mechanism. At the same time, the lead screw sleeve 27 will also drive the control seat 40 and the numerical control grinding machine 41 to move, so as to perform automatic cutting on the ceramic workpiece;
[0047] The first motor 4 is fixedly connected inside the first device housing 1, and a first sprocket 5 is connected to the rear end of the first motor 4. Moreover, a first chain 6 is meshed with the outside of the first sprocket 5, a second sprocket 7 is meshed with the right end of the first chain 6, and ratchet groups are provided at the rear ends of both the first sprocket 5 and the second sprocket 7;
[0048] The second sprocket 7 is fixedly connected inside the first device housing 1, and the ratchet group includes a first ratchet 8. Moreover, a second ratchet 9 is meshed with the rear end of the first ratchet 8, a spring shaft 10 is connected to the rear end of the second ratchet 9, and the ratchet orientations of the ratchet groups at the rear ends of the first sprocket 5 and the second sprocket 7 are opposite;
[0049] The rear end of the first sprocket 5 is connected to the transmission mechanism through a ratchet group, and the transmission mechanism includes a first drive shaft 11. Moreover, a transmission belt 12 is meshed with the outside of the first drive shaft 11, a second drive shaft 13 is meshed with the right end of the transmission belt 12, and both the first drive shaft 11 and the second drive shaft 13 are composed of a sprocket body and a rotating roller;
[0050] The first drive shaft 11 and the second drive shaft 13 are connected to the workbench 3 through a limit seat, and the limit mechanism includes a third sprocket 14. Moreover, the second sprocket 7 is connected to the third sprocket 14 through a ratchet group, a second chain 15 is meshed with the outside of the third sprocket 14, a fourth sprocket 16 is meshed with the right end of the second chain 15, and reciprocating threaded shafts 17 are provided at the rear ends of both the third sprocket 14 and the fourth sprocket 16. A threaded sleeve 18 is provided on the outside of the reciprocating threaded shaft 17, and a mounting plate 19 is connected to the rear end of the threaded sleeve 18. Moreover, a buffer shaft 20 is connected to the rear side of the mounting plate 19, and the mounting plate 19 and the buffer shaft 20 are located above the workbench 3 and the transmission mechanism;
[0051] When the first motor 4 rotates forward, the first sprocket 5 will drive the first drive shaft 11 to rotate, so that the first drive shaft 11 cooperates with the second drive shaft 13 to drive the transmission belt 12 to rotate, and the transmission belt 12 moves the ceramic to the specified position. Subsequently, the first motor 4 rotates in reverse, the second sprocket 7 drives the third sprocket 14 to rotate, and the third sprocket 14 also drives the fourth sprocket 16 to rotate through the second chain 15. As a result, the third sprocket 14 and the fourth sprocket 16 drive the reciprocating threaded shaft 17 to rotate, so that the reciprocating threaded shaft 17 drives the threaded sleeve 18 to move, and thus the threaded sleeve 18 drives the mounting plate 19 and the buffer shaft 20 to push the ceramic to the outside of the rotating mechanism, so that the rotating mechanism is attached to the surface of the ceramic, thereby limiting it. When the rotating mechanism drives the ceramic to rotate, the buffer shaft 20 at the rear end of the mounting plate 19 will also rotate accordingly, thereby protecting the ceramic, so that the device can provide better protection when processing the ceramic;
[0052] The rear end of the workbench 3 is fixedly connected to the second device housing 2. The driving mechanism includes a second motor 21. A fifth sprocket 22 is provided at the right end of the second motor 21. A third chain 23 is meshed outside the fifth sprocket 22. And a sixth sprocket 24 is meshed at the bottom of the third chain 23. And a set of ratchet groups are provided at the right ends of both the fifth sprocket 22 and the sixth sprocket 24. The ratchet directions of the ratchet groups at the right end of the fifth sprocket 22 and the ratchet groups at the right end of the sixth sprocket 24 are opposite;
[0053] The right end of the fifth sprocket 22 is connected to the moving mechanism through a ratchet group. And the moving mechanism includes a reciprocating lead screw body 25. And a lead screw sleeve 27 is provided outside the reciprocating lead screw body 25. The top of the lead screw sleeve 27 is fixedly connected to the control seat 40. And a sliding rod 26 is provided inside the second device housing 2. And the sliding rod 26 and the lead screw sleeve 27 form a sliding connection;
[0054] The inside of the second device housing 2 is connected to the rotating mechanism through a rotating seat. And the rotating mechanism includes a sixth sprocket 24. And the right end of the sixth sprocket 24 is fixedly connected to a rotating rod 28 through a ratchet group. And a first bevel gear 29 is connected to the right end of the rotating rod 28. A second bevel gear 30 is meshed at the rear end of the first bevel gear 29. And a telescopic rod 31 is connected to the front end of the second bevel gear 30. And a third bevel gear 32 is connected to the front end of the telescopic rod 31. A fourth bevel gear 33 is meshed at the bottom of the third bevel gear 32. And a seventh sprocket 34 is connected to the bottom of the fourth bevel gear 33. And a fourth chain 35 is meshed outside the seventh sprocket 34. The right end of the fourth chain 35 is meshed with an eighth sprocket 36. And a rotating shaft 37 is connected to the bottoms of the seventh sprocket 34 and the eighth sprocket 36; The bottom of the rotating shaft 37 is connected to a fixing plate 38. And both the seventh sprocket 34 and the eighth sprocket 36 are provided inside the fixing plate 38 for protection. And a hydraulic rod 39 is connected to the rear end of the fixing plate 38;
[0055] The hydraulic rod 39 is fixedly connected to the inside of the second device housing 2. And a circuit board is provided inside the control seat 40. And the control seat 40 is electrically connected to the numerical control grinding machine 41 through a control wiring board; A bearing seat is provided inside the second device housing 2. And the second device housing 2 is connected to the right end of the rotating rod 28 through the bearing seat. And a bearing seat is also provided inside the first device housing 1. The first device housing 1 is slidably connected to the threaded sleeve 18 through the bearing seat.
[0056] Working principle: When using the automatic ceramic grinding machine, first start the first motor 4 to make the first motor 4 rotate forward. Thus, the first motor 4 drives the transmission mechanism to operate, moving the ceramic on the top of the transmission mechanism to the specified position. Subsequently, make the first motor 4 rotate in reverse to drive the limiting mechanism to operate. Thus, the limiting mechanism pushes the ceramic to the specified position, making the ceramic mesh with the front side of the rotating mechanism. Then make the second motor 21 rotate in reverse to make the rotating mechanism operate. Thus, the rotating mechanism drives the ceramic to rotate, making the numerical control grinding machine 41 on the top of the control seat 40 grind the ceramic;
[0057] When the first motor 4 rotates forward, the ratchet group at the front end of the first sprocket 5 will engage, that is, the first ratchet 8 will engage with the second ratchet 9, and the second ratchet 9 drives the first drive shaft 11 to rotate through the spring shaft 10. And because the ratchet group at the right end of the second sprocket 7 is opposite to the ratchet group at the right end of the first sprocket 5, the ratchet group at the rear end of the second sprocket 7 will disengage, that is, the first ratchet 8 will disengage from the second ratchet 9, and the second ratchet 9 will retract under the drive of the spring shaft 10;
[0058] When the first motor 4 rotates forward, the first sprocket 5 will drive the first drive shaft 11 to rotate, so that the first drive shaft 11 cooperates with the second drive shaft 13 to drive the conveyor belt 12 to rotate, so that the conveyor belt 12 moves the ceramic to the designated position. Subsequently, the first motor 4 rotates reversely, so that the second sprocket 7 drives the third sprocket 14 to rotate, and the third sprocket 14 will also drive the fourth sprocket 16 to rotate through the second chain 15, so that the third sprocket 14 and the fourth sprocket 16 drive the reciprocating threaded shaft 17 to rotate, so that the reciprocating threaded shaft 17 drives the threaded sleeve 18 to move, so that the threaded sleeve 18 drives the mounting plate 19 and the buffer shaft 20 to push the ceramic to the outside of the rotating mechanism, so that the rotating mechanism fits the surface of the ceramic, so as to limit it;
[0059] When the second motor 21 rotates reversely, the sixth sprocket 24 will drive the rotating rod 28 and the first bevel gear 29 to rotate through the ratchet group, so that the first bevel gear 29 drives the second bevel gear 30 and the telescopic rod 31 to rotate, so that the telescopic rod 31 drives the third bevel gear 32 to rotate, so that the third bevel gear 32 drives the fourth bevel gear 33 and the seventh sprocket 34 to rotate, and the seventh sprocket 34 will drive the eighth sprocket 36 to rotate through the fourth chain 35, so that the seventh sprocket 34 and the eighth sprocket 36 drive the rotating shaft 37 to rotate at the same time, so that the rotating shaft 37 fits the ceramic so that the ceramic rotates. And at this time, due to the rotation of the ceramic, the buffer shaft 20 will also rotate accordingly, so as to protect the surface of the ceramic;
[0060] When the second motor 21 rotates forward, the fifth sprocket 22 will drive the reciprocating lead screw body 25 to rotate through the ratchet group, so that the reciprocating lead screw body 25 slides inside the lead screw sleeve 27, so that the lead screw sleeve 27 drives the control seat 40 and the numerical control grinding machine 41 to move to the designated position to perform processing operations on the ceramic;
[0061] When using this equipment, the first motor 4 and the second motor 21 can be controlled through the numerical control panel, so that when the equipment controls the operation of the first motor 4 and the second motor 21, it can be more convenient, increasing the operability of the equipment during operation.
[0062] Thus, a series of operations are completed. Contents not described in detail in this specification belong to the prior art well-known to those skilled in the art.
[0063] For those skilled in the art, it is obvious that the present invention is not limited to the details of the above-described exemplary embodiments, and that the present invention can be implemented in other specific forms without departing from the spirit or essential characteristics of the present invention. Therefore, from any perspective, the embodiments should be regarded as exemplary and non-limiting. The scope of the present invention is defined by the appended claims rather than the above description. Therefore, all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be embraced within the present invention. Any reference signs in the claims should not be construed as limiting the claims concerned.
Claims
1. An automated ceramic grinding machine tool, comprising a first device housing (1), a workbench (3) connected to the rear end of the first device housing (1), and a second device housing (2), and a numerical control grinding machine (41) is provided on the top of the second device housing (2); a first motor (4) is provided inside the first device housing (1), and the rear end of the first motor (4) is connected to a transmission mechanism, and the right end of the first motor (4) is connected to a limiting mechanism. The top of the workbench (3) is connected to the transmission mechanism, and the first motor (4) can drive the transmission mechanism or the limiting mechanism to operate; It is characterized in that: A driving mechanism is provided inside the second device housing (2), and a moving mechanism is connected to the right end of the driving mechanism. The moving mechanism includes a reciprocating lead screw body (25), and a lead screw sleeve (27) is provided outside the reciprocating lead screw body (25). The top of the lead screw sleeve (27) is fixedly connected to a control seat (40), and the top of the control seat (40) is connected to a numerical control grinding machine (41). The right end of the driving mechanism is connected to a limiting mechanism. After the transmission mechanism drives the workpiece to be transmitted to the bottom of the numerical control grinding machine (41), the driving mechanism will drive the limiting mechanism to fix the ceramic workpiece, and then the ceramic workpiece is limited and fixed by the limiting mechanism. At the same time, the lead screw sleeve (27) will also drive the control seat (40) and the numerical control grinding machine (41) to move, so as to perform automatic cutting on the ceramic workpiece; The first motor (4) is fixedly connected to the inside of the first device housing (1), and a first sprocket (5) is connected to the rear end of the first motor (4), and a first chain (6) is meshed outside the first sprocket (5). The right end of the first chain (6) is meshed with a second sprocket (7), and ratchet groups are provided at the rear ends of the first sprocket (5) and the second sprocket (7); The rear end of the first sprocket (5) is connected to the transmission mechanism through a ratchet group. The transmission mechanism includes a first driving shaft (11), and a transmission belt (12) is meshed outside the first driving shaft (11). The right end of the transmission belt (12) is meshed with a second driving shaft (13), and both the first driving shaft (11) and the second driving shaft (13) are composed of a sprocket body and a rotating roller; The first driving shaft (11) and the second driving shaft (13) are connected to the workbench (3) through a limiting seat, and the limiting mechanism includes a third sprocket (14). The second sprocket (7) is connected to the third sprocket (14) through a ratchet group. A second chain (15) is meshed outside the third sprocket (14), and the right end of the second chain (15) is meshed with a fourth sprocket (16). Reciprocating threaded shafts (17) are provided at the rear ends of the third sprocket (14) and the fourth sprocket (16). A threaded sleeve (18) is provided outside the reciprocating threaded shaft (17), and the rear end of the threaded sleeve (18) is connected to a mounting plate (19). A buffer shaft (20) is connected to the rear side of the mounting plate (19). The mounting plate (19) and the buffer shaft (20) are located on the top of the workbench (3) and the transmission mechanism; The rear end of the workbench (3) is fixedly connected to the second device housing (2), and the driving mechanism includes a second motor (21). A fifth sprocket (22) is provided at the right end of the second motor (21). A third chain (23) is meshed outside the fifth sprocket (22). A sixth sprocket (24) is meshed at the bottom of the third chain (23). A set of ratchet groups are provided at the right ends of both the fifth sprocket (22) and the sixth sprocket (24). The ratchet directions of the ratchet groups at the right end of the fifth sprocket (22) and the right end of the sixth sprocket (24) are opposite to each other; The inside of the second device housing (2) is connected to a rotating mechanism through a rotating seat. The rotating mechanism includes a sixth sprocket (24). The right end of the sixth sprocket (24) is fixedly connected to a rotating rod (28) through a ratchet group. A first bevel gear (29) is connected to the right end of the rotating rod (28). A second bevel gear (30) is meshed at the rear end of the first bevel gear (29). A telescopic rod (31) is connected to the front end of the second bevel gear (30). A third bevel gear (32) is connected to the front end of the telescopic rod (31). A fourth bevel gear (33) is meshed at the bottom of the third bevel gear (32). A seventh sprocket (34) is connected to the bottom of the fourth bevel gear (33). A fourth chain (35) is meshed outside the seventh sprocket (34). The right end of the fourth chain (35) is meshed with an eighth sprocket (36). The bottom of the seventh sprocket (34) and the eighth sprocket (36) are connected to a rotating shaft (37).
2. The automated ceramic grinding machine tool according to claim 1, characterized in that, The second sprocket (7) is fixedly connected to the inside of the first device housing (1). The ratchet group includes a first ratchet (8). A second ratchet (9) is meshed at the rear end of the first ratchet (8). A spring shaft (10) is connected to the rear end of the second ratchet (9). The ratchet directions of the ratchet groups at the rear end of the first sprocket (5) and the rear end of the second sprocket (7) are opposite to each other.
3. The automated ceramic grinding machine tool according to claim 1, characterized in that, The bottom of the rotating shaft (37) is connected to a fixing plate (38). The seventh sprocket (34) and the eighth sprocket (36) are both protected inside the fixing plate (38). A hydraulic rod (39) is connected to the rear end of the fixing plate (38).
4. The automated ceramic grinding machine tool according to claim 3, characterized in that, The hydraulic rod (39) is fixedly connected to the inside of the second device housing (2). A circuit board is provided inside the control seat (40). The control seat (40) is electrically connected to the numerical control grinding machine (41) through a control board.
5. The automated ceramic grinding machine tool according to claim 4, wherein A bearing seat is provided inside the second device housing (2). The second device housing (2) is connected to the right end of the rotating rod (28) through the bearing seat. A bearing seat is also provided inside the first device housing (1). The first device housing (1) is slidably connected to a threaded sleeve (18) through the bearing seat. A sliding rod (26) is provided inside the second device housing (2). The sliding rod (26) is fixedly connected to a lead screw sleeve (27).
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