Big data digital design machine tool machining center
Through the design of motor-driven gear limiting workpieces, convenient disassembly of tools and automatic waste cleaning, the difficulty of fixing workpieces and waste cleaning in machine tool machining centers is solved, the machining accuracy and efficiency are improved, and the service life of the equipment is extended.
Patent Information
- Application Number
- CN202422540761.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-21
- Publication Date
- 2025-08-19
- Estimated Expiration
- 2034-10-21
AI Technical Summary
The existing machine tool machining center cannot effectively fix the workpiece during the processing process, resulting in increased processing losses and reduced workpiece quality. Inadequate cleaning of processed waste will reduce the device life and increase labor costs, difficult tool maintenance, and affect processing efficiency and accuracy.
The workpiece is limited by the first motor driving gear and rack system, the tool is conveniently disassembled through the fixing block and bolt system, and the second motor drives the cleaning roller to automatically clean up waste chips, and the workpiece is fixed and cleaned in combination with the motor and screw system.
Effectively prevent workpiece movement, reduce production costs and losses, improve processing accuracy and quality, simplify tool maintenance, reduce manual cleaning needs, extend device life and improve processing efficiency.
Smart Images

Figure CN223235729U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of machine tool processing centers, in particular to a digital design machine tool processing center for big data. Background Art
[0002] Big data digital design machine tool processing centers utilize big data technology for digital design. They enable high-precision automated positioning and fixing, improving processing efficiency and accuracy. With the rapid development of information technology and artificial intelligence, big data has become a key force driving the transformation and upgrading of the manufacturing industry. As one of the core equipment in the manufacturing industry, the level of digitalization and intelligence of machine tool processing centers is directly related to product quality and production efficiency. Machine tool processing centers are widely used in aerospace, automotive manufacturing, precision machinery, electronics, and other fields, playing a vital role in improving product quality and production efficiency.
[0003] The existing Chinese patent application number is CN201620817488.1, a machining center machine tool, the existing device includes a machine tool base and a CNC device, the CNC device is located above the machine tool base, a tool magazine support is provided above the CNC device, a flat tool magazine, a guide rail and an X-direction workbench are provided on the tool magazine support, the flat tool magazine is located on the side of the upper end of the tool magazine support, the guide rail is fixedly connected to the tool magazine support, the X-direction workbench is movably connected to the guide rail, a slide is provided on the machine tool base, a Y-direction sliding column is provided on the slide, and a spindle mounting flat is provided above the Y-direction sliding column. A Z-direction sliding spindle is installed on the spindle mounting platform, and the Z-direction sliding spindle is connected to a first drive motor; the machining center machine tool has the advantages of high machining efficiency, low production cost and short product processing time, but the existing device does not take into account that the workpiece cannot be fixed during the machining process of the device, which will increase the loss of the workpiece machining and reduce the machining quality of the workpiece. At the same time, machining waste chips will be generated during the machining process. If the waste chips are not cleaned, the service life of the device will be reduced, and the cleaning of the waste chips will increase labor costs. Long-term use of the machining tool will cause tool wear, and the existing device is not easy to clean and maintain the tool.
[0004] Therefore, we proposed a big data digital design machine tool processing center to solve the above problems. Utility Model Content
[0005] The purpose of the present utility model is to provide a digital design machine tool processing center for big data, so as to solve the problem that the existing device proposed in the above background technology does not take into account the inability to fix the workpiece during the processing of the device, which will increase the loss of the workpiece processing and reduce the processing quality of the workpiece. At the same time, processing waste chips will be generated during the processing. If the waste chips are not cleaned, the service life of the device will be reduced, and the cleaning of the waste chips will increase labor costs. Long-term use of the processing tool will cause tool wear, and the existing device is not easy to clean and maintain the tool.
[0006] To achieve the above purpose, the present invention provides the following technical solutions: a digital design machine tool processing center based on big data, including an operating table,
[0007] A first motor is installed at the left end of the interior of the operating table, and a gear is connected to the upper end of the first motor. The left and right ends of the gear are respectively connected to racks, and a limit block is connected to the rack. Two groups of grooves are opened on the left side of the upper end of the operating table, and the limit blocks pass through the grooves.
[0008] Preferably, a processing tool holder is installed on the upper left end of the operating table, and a fixed block is connected to the lower right end of the processing tool holder, a tool is embedded in the lower end of the fixed block, and thread grooves are symmetrically opened on the left and right ends of the fixed block, and bolts are threadedly connected in the thread grooves.
[0009] By adopting the above technical solution, a fixed block is fixedly connected to the lower end of the right side of the tool holder, and a tool is embedded in the lower end of the fixed block, so that the tool can be disassembled and installed.
[0010] Preferably, clamping blocks are symmetrically embedded in the left and right ends of the fixing block, and the bolts pass through the clamping blocks, and the lower ends of the clamping blocks are embedded in the left and right ends of the tool.
[0011] By adopting the above technical solution, the bolts can be removed from both ends of the fixed block by rotating the bolts. Since the bolts penetrate the clamping block, the clamping block can be removed from both ends of the fixed block and the clamping block can be removed from the left and right ends of the tool at the same time.
[0012] Preferably, the gear is rotatably connected to the inside of the operating table, and the gear is meshed with the rack, the rear end of the rack at the left end is fixedly connected to the limit block, and the front end of the rack at the left end is fixedly connected to the limit block, and the limit block is slidably connected to the groove.
[0013] By adopting the above technical solution, the gear is driven to rotate by the first motor, which can drive the racks at the left and right ends to move in opposite directions, and drive the limit blocks connected to the racks to move along the groove toward the middle end or to the front and rear ends at the same time, which can limit the workpiece.
[0014] Preferably, a second motor is installed at the left end of the operating table, and a reciprocating screw is connected to the right end of the second motor. The reciprocating screw is rotatably connected to the inside of the operating table, and a first slider is threadedly connected to the reciprocating screw. A sliding rod is installed at the rear end of the operating table, and a second slider is slidably connected to the sliding rod.
[0015] By adopting the above technical solution, the reciprocating screw is driven by the first motor to rotate to provide motion power for the first slider.
[0016] Preferably, the front end of the first slider is fixedly connected to a first connecting rod, the rear end of the second slider is fixedly connected to a second connecting rod, and a cleaning roller is connected between the first connecting rod and the second connecting rod.
[0017] By adopting the above technical solution, a first connecting rod is connected to the first slider, a second slider is connected to the sliding rod, a second connecting rod is connected to the second slider, and a cleaning roller is connected between the first connecting rod and the second connecting rod. The first slider can be used to drive the cleaning roller to perform reciprocating motion to achieve a cleaning effect.
[0018] Preferably, a slide groove is provided at both the front and rear ends of the operating table, and the first connecting rod passes through the slide groove, and the second connecting rod passes through the slide groove, the first connecting rod is slidably connected to the slide groove, and the second connecting rod is slidably connected to the slide groove.
[0019] By adopting the above technical solution, the cleaning roller is connected via the first connecting rod and the second connecting rod, thereby supporting the cleaning roller.
[0020] Compared with the existing technology, the beneficial effects of the present invention are: the digital design of the big data machine tool processing center;
[0021] 1. Through the cooperation between the first motor, gear, rack, limit block and groove, the first motor drives the gear to rotate, the gear drives the two sets of racks to move toward the middle or both ends at the same time, and the rack drives the limit block to move in the groove, thereby limiting the workpiece to be processed, preventing the workpiece from moving, reducing production costs and losses, and improving the processing accuracy of the device and the production quality of the workpiece;
[0022] 2. Through the coordination among the fixing block, tool, thread groove, bolt and clamping block, the tool is fixed by bolt and clamping block. After removing the bolt and clamping block, the tool can be disassembled, cleaned and maintained, thereby improving the processing speed and precision of the device and extending the service life of the device.
[0023] 3. Through the cooperation between the second motor, the reciprocating screw, the first slider, the first connecting rod, the slide rod, the second slider, the second connecting rod, the cleaning roller and the slide groove, the second motor is used to drive the reciprocating screw to rotate, so that the first slider drives the first connecting rod, the cleaning roller, the second connecting rod and the second slider to perform reciprocating motion, so that the cleaning roller cleans the operating table to prevent the accumulation of waste chips generated by processing. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] Figure 1 This is a schematic diagram of the front cross-sectional structure of the utility model;
[0025] Figure 2 This is a schematic diagram of the cross-sectional structure of the utility model from above;
[0026] Figure 3 This is a schematic diagram of the tool structure of the utility model;
[0027] Figure 4 This is a schematic diagram of the cleaning roller structure of the utility model;
[0028] Figure 5 This is a front view structural diagram of the utility model.
[0029] In the figure: 1. operating table; 2. machining tool holder; 3. fixing block; 4. tool; 5. thread groove; 6. bolt; 7. clamping block; 8. first motor; 9. gear; 10. rack; 11. limit block; 12. groove; 13. second motor; 14. reciprocating screw; 15. first slider; 16. first connecting rod; 17. slide rod; 18. second slider; 19. second connecting rod; 20. cleaning roller; 21. slide groove. DETAILED DESCRIPTION
[0030] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0031] See also Figure 1-5The utility model provides a technical solution: a digital design machine tool processing center for big data, including an operating table 1, a first motor 8 is installed at the left end of the interior of the operating table 1, and the upper end of the first motor 8 is connected to a gear 9, the left and right ends of the gear 9 are respectively connected to a rack 10, and the rack 10 is connected to a limit block 11, two groups of grooves 12 are opened on the left side of the upper end of the operating table 1, and the limit block 11 passes through the groove 12, the gear 9 is rotatably connected to the inside of the operating table 1, and the gear 9 is meshed with the rack 10, and the rear end of the left end rack 10 is fixedly connected to the limit block 11 The front end of the left end rack 10 is fixedly connected to the limit block 11, and the limit block 11 is slidably connected to the groove 12. The gear 9 is driven to rotate by the first motor 8, and the gear 9 is meshed with the rack 10, which can drive the left and right end racks 10 to move in opposite directions, and drive the limit block 11 connected to the rack 10 to move along the groove 12 toward the middle end or to the front and rear ends at the same time, which can limit the workpiece to prevent processing errors caused by workpiece displacement, reduce production costs and losses, and improve the processing accuracy of the device and improve the production quality of workpieces.
[0032] The left upper end of the operating table 1 is provided with a processing tool holder 2, and the right lower end of the processing tool holder 2 is connected with a fixing block 3, the lower end of the fixing block 3 is embedded with a tool 4, and the left and right ends of the fixing block 3 are symmetrically provided with thread grooves 5, and the inner threads of the thread grooves 5 are connected with bolts 6, and the left and right ends of the fixing block 3 are symmetrically embedded with clamping blocks 7, and the bolts 6 pass through the clamping blocks 7, and the lower end of the clamping blocks 7 are embedded in the left and right ends of the tool 4. The fixing block 3 is fixedly connected to the right lower end of the processing tool holder 2, and the lower end of the fixing block 3 is embedded with the tool 4, the tool 4 can be disassembled and installed, and the bolt 6 can be taken out from both ends of the fixing block 3 by rotating the bolt 6. Because the bolt 6 passes through the clamping block 7, the clamping block 7 can be taken out from both ends of the fixing block 3, and the clamping block 7 can be taken out from the left and right ends of the tool 4, so that the tool 4 can be disassembled, and the tool 4 can be cleaned and maintained, thereby improving the processing rate of the device, improving the processing accuracy of the device, and increasing the service life of the device.
[0033] A second motor 13 is installed at the left end of the operating table 1, and a reciprocating screw rod 14 is connected to the right end of the second motor 13. The reciprocating screw rod 14 is rotatably connected to the inside of the operating table 1, and a first slider 15 is threadedly connected to the reciprocating screw rod 14. A slide rod 17 is installed at the rear end of the operating table 1, and a second slider 18 is slidably connected to the slide rod 17. The front end of the first slider 15 is fixedly connected to the first connecting rod 16, and the rear end of the second slider 18 is fixedly connected to the second connecting rod 19, and a cleaning roller 20 is connected between the first connecting rod 16 and the second connecting rod 19. A slide groove 21 is provided at the front and rear ends of the operating table 1, and the first connecting rod 16 passes through the slide groove 21, and the second connecting rod 19 passes through the slide groove 21. The first connecting rod 16 is slidably connected to the slide groove 21, and the second connecting rod 19 is slidably connected to the slide groove 21. The second motor 13 is used. The reciprocating screw 14 is driven to rotate. The reciprocating screw 14 is threadedly connected to the first slider 15. The front end of the first slider 15 is connected to the first connecting rod 16. The upper end of the first connecting rod 16 is connected to the cleaning roller 20. The second slider 18 is slidably connected to the slide rod 17, and the rear end of the second slider 18 is connected to the second connecting rod 19. A cleaning roller 20 is connected between the first connecting rod 16 and the second connecting rod 19. The slide rod 17 plays a limiting role. Therefore, when the reciprocating screw 14 rotates, it can drive the first slider 15 and the first connecting block 16 to do reciprocating motion, and can drive the cleaning roller 20, the second connecting rod 19 and the second slider 18 to do reciprocating motion, so that the cleaning roller 20 cleans the operating table 1, cleans the machine tool, prevents the accumulation of waste chips generated by processing, reduces the processing rate and processing accuracy, and at the same time reduces manual labor and labor costs.
[0034] Working principle: When using the digital design machine tool processing center of the big data, the workpiece to be processed is placed on the operating table 1, and the first motor 8 is used to drive the gear 9 to rotate, the gear 9 drives the rack 10 to move, and the rack 10 drives the limit block 11 to move toward the middle end at the same time to limit the workpiece to be processed. The processing tool holder 2 drives the tool 4 to process the workpiece. After processing, the first motor 8 drives the limit block 11 to move to both ends to remove the workpiece. The second motor 13 drives the reciprocating screw 14 to rotate. The reciprocating screw 14 is connected to the first slider 15, and the first slider 15 is connected to the first connecting rod. The slide rod 1 7 is connected to a second slider 18, the second slider 18 is connected to a second connecting rod 19, and a cleaning roller 20 is connected between the first connecting rod 16 and the second connecting rod 19. Therefore, the reciprocating screw 14 rotates to drive the cleaning roller 20 to reciprocate along the reciprocating screw 14 to clean the surface of the operating table 1. The tool 4 will be damaged if used for a long time. By rotating the bolt 6, the bolt 6 can be removed from both ends of the fixed block 3, thereby removing the clamping blocks 7 at both ends. The lower end of the clamping block 7 is embedded in the tool 4, so the tool 4 can be removed from the lower end of the fixed block 3, and the tool 4 can be cleaned and maintained, which is convenient for improving the processing efficiency of the device.
[0035] Thereby completing a series of tasks, the contents not described in detail in this specification belong to the prior art known to professional and technical personnel in this field.
[0036] Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art can still modify the technical solutions described in the aforementioned embodiments, or make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. A big data digital design machine tool processing center, comprising an operating table (1), characterized in that: A first motor (8) is installed at the left end of the interior of the operating table (1), and a gear (9) is connected to the upper end of the first motor (8). The left and right ends of the gear (9) are respectively connected to racks (10), and a limit block (11) is connected to the rack (10). Two groups of grooves (12) are opened on the left side of the upper end of the operating table (1), and the limit block (11) passes through the grooves (12).
2. The big data digital design machine tool processing center according to claim 1, characterized in that: A machining tool holder (2) is installed at the upper left end of the operating table (1), and a fixing block (3) is connected to the lower right end of the machining tool holder (2). A tool (4) is embedded in the lower end of the fixing block (3), and thread grooves (5) are symmetrically provided at both left and right ends of the fixing block (3), and a bolt (6) is connected to the inner thread of the thread groove (5).
3. The big data digital design machine tool processing center according to claim 2, characterized in that: The fixing block (3) is symmetrically embedded with clamping blocks (7) at both left and right ends, and the bolt (6) passes through the clamping blocks (7), and the lower end of the clamping block (7) is embedded in the left and right ends of the tool (4).
4. The big data digital design machine tool processing center according to claim 1, characterized in that: The gear (9) is rotatably connected to the inside of the operating table (1), and the gear (9) is meshed with the rack (10), the rear end of the rack (10) at the left end is fixedly connected to the limit block (11), and the front end of the rack (10) at the left end is fixedly connected to the limit block (11), and the limit block (11) is slidably connected to the groove (12).
5. The big data digital design machine tool processing center according to claim 1, characterized in that: A second motor (13) is installed at the left end of the operating table (1), and a reciprocating screw rod (14) is connected to the right end of the second motor (13). The reciprocating screw rod (14) is rotatably connected to the inside of the operating table (1), and a first slider (15) is threadedly connected to the reciprocating screw rod (14). A sliding rod (17) is installed at the rear end of the operating table (1), and a second slider (18) is slidably connected to the sliding rod (17).
6. The big data digital design machine tool processing center according to claim 5, characterized in that: The front end of the first slider (15) is fixedly connected to a first connecting rod (16), and the rear end of the second slider (18) is fixedly connected to a second connecting rod (19), and a cleaning roller (20) is connected between the first connecting rod (16) and the second connecting rod (19).
7. The big data digital design machine tool processing center according to claim 1, characterized in that: The operating table (1) is provided with a slide groove (21) at both the front and rear ends, and the first connecting rod (16) passes through the slide groove (21), and the second connecting rod (19) passes through the slide groove (21), the first connecting rod (16) is slidably connected to the slide groove (21), and the second connecting rod (19) is slidably connected to the slide groove (21).
Citation Information
Patent Citations
Central machining machine tool
CN205968466U