Milling cutter machine tool and using method thereof
By introducing an L-shaped support leg and support rod structure into the milling machine tool, combined with a telescopic cylinder and a motor-driven lead screw and gear transmission, the problems of single movement direction, low positioning accuracy and low degree of automation of traditional milling machine tools are solved. This enables precise and automated adjustment and efficient processing of workpieces, improving processing accuracy and efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-19
- Publication Date
- 2026-04-10
AI Technical Summary
Traditional milling machine tools have a single workpiece carrier movement direction, low positioning accuracy, cumbersome cutter head feeding method, easy vibration of support structure, low transmission efficiency, low degree of automation, and difficulty in meeting the multi-directional machining needs of complex workpieces.
A stable support system is constructed using L-shaped support legs and L-shaped support rods. Combined with telescopic cylinders, motor-driven lead screws, and gear meshing transmission, it achieves precise and automated adjustment of the workpiece in the lateral and longitudinal directions. The feed and rotation of the cutter head are highly coordinated, resulting in high transmission efficiency. The structure is compact and reasonable, facilitating assembly and maintenance.
It enables precise and automated adjustment of workpiece position, improves processing accuracy and efficiency, reduces the labor intensity of operators, extends the service life of machine tools, and is suitable for mass production scenarios.
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Figure CN121820740A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the field of milling cutter machine tools, in particular to a milling cutter machine tool and a using method thereof. BACKGROUND
[0002] The milling cutter machine tool is a core equipment for workpiece turning and milling and cutting in the field of mechanical processing, and is widely used in the production and processing of hardware parts, mechanical structural parts, molds and other products. Its machining precision, operation convenience and structural stability directly affect the workpiece quality and production efficiency.
[0003] With the continuous improvement of the product precision requirement of the manufacturing industry, the traditional milling cutter machine tool gradually exposes many deficiencies: Most of the workpiece bearing tables of the traditional machine tools can only realize single direction movement, or need to manually adjust the horizontal and vertical positions, which is complicated and has low positioning accuracy, and is difficult to meet the multi-directional machining requirements of complex workpieces.
[0004] The feeding mode of the tool head is mostly manually adjusted or simply mechanically driven, and the height adjustment precision is insufficient. Moreover, the coordination of the tool head rotation and feeding action is poor, which easily leads to high machining surface roughness and large size deviation.
[0005] The support structure of part of the machine tools is not reasonably designed, and vibration is easily generated during operation, affecting the machining stability. Meanwhile, the horizontal and vertical driving mechanisms mostly adopt belt transmission or indirect transmission of gear sets, which has low transmission efficiency and is easy to wear, and the precision obviously decays after long-term use.
[0006] The automation degree is low, and the workpiece position and tool head state need to be frequently adjusted manually, which not only increases the labor intensity of the operators, but also reduces the production efficiency, and is difficult to adapt to batch production scenes. Therefore, we propose a milling cutter machine tool and a using method thereof. SUMMARY
[0007] In view of the deficiencies of the prior art, the present application provides a milling cutter machine tool and a using method thereof, which solves the above problems.
[0008] To achieve the above purpose, the present application provides the following technical scheme: a milling cutter machine tool, comprising a strip-shaped plate, L-shaped support legs are fixedly installed at both ends of the strip-shaped plate, a mounting seat capable of moving longitudinally is arranged at the top of the strip-shaped plate, a horizontal driving structure is arranged on the mounting seat, a bearing table is arranged on the driving end of the horizontal driving structure, and a tool head structure capable of adjusting the height is arranged at the top of the bearing table.
[0009] Preferably, the L-shaped support leg on one side is fixedly installed with an L-shaped support rod at the top, the L-shaped support rod is fixedly installed with a telescopic cylinder at the top, the telescopic shaft of the telescopic cylinder penetrates through the end of the L-shaped support rod, and the lower end of the telescopic shaft of the telescopic cylinder is connected with the tool head structure.
[0010] Preferably, the tool head structure comprises a clamping end and a tool head, the clamping end is connected with the tool head, the clamping end is fixedly connected with the telescopic end of the telescopic cylinder, and the clamping end is used to drive the tool head to rotate.
[0011] Preferably, a rectangular groove is formed in the mounting seat, a rectangular connecting block is integrally formed at the position corresponding to the rectangular groove of the bearing table, the rectangular connecting block and the rectangular groove are slidably connected together, and the transverse moving structure is threadedly connected with the rectangular connecting block.
[0012] Preferably, the transverse moving structure comprises a lead screw and a motor one, the lead screw is rotatably installed in the rectangular groove, the motor one is fixedly installed on one side wall surface of the mounting seat, the rotating shaft of the motor one is fixedly connected with the lead screw, and the lead screw is threadedly connected with the rectangular connecting block.
[0013] Preferably, L-shaped sliding seats are fixedly installed on both sides of the mounting seat, and a motor structure is arranged on one of the L-shaped sliding seats, and the motor structure is used to drive the mounting seat to move longitudinally.
[0014] Preferably, a strip-shaped groove is formed in the surface of the strip-shaped plate, and a sliding block is integrally formed at the position corresponding to the strip-shaped groove of the L-shaped sliding seat, and the sliding block and the strip-shaped groove are slidably connected together.
[0015] Preferably, the motor structure comprises a motor two and a gear, a through-type rectangular opening is formed in the strip-shaped plate, a plurality of groups of teeth are integrally formed at equal intervals on the inner walls of both sides of the rectangular opening, the motor two is fixedly installed on the L-shaped sliding seat, the rotating shaft of the motor two penetrates through the L-shaped sliding seat, the gear is fixedly installed on the rotating shaft of the motor two, and the gear is meshed with the teeth.
[0016] A use method of the milling cutter machine tool, comprising the following steps: First step: placing a workpiece to be machined on the surface of the bearing table, and then fixing it; Second step: starting the telescopic cylinder, extending the telescopic shaft downward, then moving the clamping end and the tool head, then rotating the tool head driven by the clamping end, and then machining the workpiece by the tool head contacting the surface of the workpiece; Third step: starting the motor two, rotating the gear, then driving the mounting seat to move longitudinally under the meshing action, driving the bearing table to move longitudinally, adjusting the longitudinal position of the workpiece, and adjusting the longitudinal milling position of the tool head on the workpiece; Fourth step: starting the motor one, rotating the lead screw, then driving the rectangular connecting block to move transversely, synchronously driving the bearing table to move transversely, driving the workpiece to move transversely in the synchronous movement process, adjusting the transverse position of the workpiece, and adjusting the transverse milling position of the tool head on the workpiece.
[0017] Compared with the prior art, the present application provides a milling cutter machine tool and a method for using the same, which has the following beneficial effects: Firstly, the present application realizes precise and automatic adjustment of the transverse and longitudinal positions of the workpiece, effectively solving the problems of single moving direction and complicated manual adjustment of traditional machine tools. With the meshing transmission of the motor-driven gear and the tooth, and the guiding action of the sliding block and the strip-shaped groove, the longitudinal movement of the mounting seat driving the carrier table is stable and accurately positioned. At the same time, through the threaded transmission of the motor-driven screw and the rectangular connecting block, combined with the limiting and guiding of the rectangular groove, the transverse movement precision of the carrier table is guaranteed. The double-precision movement adjustment does not require frequent manual intervention, which not only reduces the labor intensity of the operator, but also greatly improves the adjustment efficiency of the workpiece processing position, and can meet the multi-directional processing needs of complex workpieces.
[0018] Secondly, the feeding and rotating actions of the tool head are highly coordinated, and the processing quality is significantly improved. The stable longitudinal feeding power is provided by the telescopic cylinder to ensure the precise and controllable travel of the tool head close to or away from the workpiece, and the high-speed rotation of the tool head is driven by the clamping end, so that the cutting state of the tool head and the workpiece is stable when they are in contact, effectively reducing the roughness of the processed surface and the dimensional deviation, and greatly improving the processing precision and the finished product qualification rate of the workpiece.
[0019] Thirdly, the structure is stable, the transmission is reliable, and the service life is long. The overall L-shaped support leg and L-shaped support rod are used to build a stable support system, which can effectively suppress the vibration during processing and provide a stable foundation for precise processing. The transverse and longitudinal transmissions respectively adopt screw thread transmission and gear tooth meshing transmission, which has high transmission efficiency and small wear. Compared with the traditional belt transmission or indirect gear set transmission, the transmission loss is reduced, the precision decay risk after long-term use is reduced, and the overall service life of the machine tool is prolonged.
[0020] Fourthly, the overall structure design is compact and reasonable, and the assembly and maintenance are convenient. The connection logic between the components is clear, and the modular design of the mounting seat, carrier table, and driving structure facilitates assembly and later maintenance, reducing equipment maintenance costs. At the same time, the compact structure layout saves installation space, adapts to the production site needs of different scales, and improves the practicality and applicability of the equipment.
[0021] Fifthly, the degree of automation is high, and it is suitable for batch production scenes. Through the coordinated driving of the motor and the cylinder, the automation linkage of workpiece positioning, tool head feeding, and cutting is realized, reducing the manual operation link and improving the processing efficiency per unit time, which can meet the needs of batch production in the manufacturing industry, and provide strong support for enterprises to reduce production costs and improve production efficiency. BRIEF DESCRIPTION OF DRAWINGS
[0022] Figure 1A schematic view of the structure of the present application; Figure 2 A schematic view of the structure of the present application; Figure 1 A schematic view of the structure of the present application; Figure 3 A schematic view of the structure of the present application; Figure 1 A schematic view of the structure of the present application; Figure 4 A schematic view of the structure of the present application; Figure 5 A schematic view of the structure of the present application; Figure 4 A schematic view of the structure of the present application; Figure 6 A schematic view of the structure of the present application; Figure 5 A schematic view of the structure of the present application.
[0023] In the figure: 1, strip plate; 2, L-shaped support leg; 3, L-shaped support rod; 4, telescopic cylinder; 5, clamping end; 6, cutter head; 7, bearing table; 8, motor one; 9, strip-shaped groove; 10, sliding block; 11, L-shaped slide; 12, mounting seat; 13, screw rod; 14, rectangular connecting block; 15, motor two; 16, tooth; 17, gear. DETAILED DESCRIPTION
[0024] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.
[0025] Please refer to Figures 1-6 A milling cutter machine tool, the structure is as follows: Strip plate 1 The strip plate 1 is the basic bearing component of the milling cutter machine tool, and the two ends are fixedly installed with L-shaped support legs 2, and the top is loaded with a longitudinally movable mounting seat 12. The surface is provided with a strip-shaped groove 9 for guiding the movement of the mounting seat 12, and a through-type rectangular opening is also provided, and a plurality of tooth gears 16 are integrally formed on the inner walls of the two sides of the rectangular opening at equal intervals, thereby providing a transmission basis for the longitudinal driving of the mounting seat 12.
[0026] L-shaped support leg 2 The L-shaped support leg 2 is provided with two groups, which are fixed at the two ends of the strip plate 1 and have an overall L-shaped structure. The core function is to support the strip plate 1 and all the associated structures on the upper part, and the top of the L-shaped support leg 2 on one side is also fixedly installed with an L-shaped support rod 3, thereby providing a support carrier for the installation of the cutter head structure.
[0027] L-shaped support rod 3 L-shaped support rod 3 is fixedly installed at the top of one side L-shaped support leg 2, and the overall layout is L-shaped. Its top is specially fixedly installed with telescopic cylinder 4, and the telescopic shaft of telescopic cylinder 4 can extend downward through the end of L-shaped support rod 3, and the core function is to provide stable mounting support for telescopic cylinder 4 and ensure the driving accuracy of the upper and lower of the tool head structure.
[0028] Telescopic cylinder 4 Telescopic cylinder 4 is fixedly installed at the top of L-shaped support rod 3, and the lower end of the telescopic shaft is fixedly connected with clamping end head 5. Its core function is to drive clamping end head 5 and tool head 6 to move up and down synchronously through the up and down telescopic movement of the telescopic shaft, so as to realize that tool head 6 is close to or away from the workpiece on the bearing table 7, and provide longitudinal feeding power for the machining operation.
[0029] Clamping end head 5 Clamping end head 5 is fixedly connected with the telescopic end of telescopic cylinder 4 at one end, and is connected with tool head 6 at the other end. It has dual functions, one is to clamp and fix tool head 6 to ensure that tool head 6 does not deviate during machining; the other is to drive tool head 6 to rotate to provide rotary cutting power for tool head 6 to machine the workpiece.
[0030] Tool head 6 Tool head 6 is connected with clamping end head 5 and is the core component of the machine tool to directly machine the workpiece. Under the drive of clamping end head 5, tool head 6 will rotate at high speed, and when telescopic cylinder 4 drives it to move downward to contact the surface of the workpiece, the workpiece is machined by rotary cutting, and the preset machining requirement is completed.
[0031] Bearing table 7 The top of bearing table 7 is used for placing and fixing the workpiece to be machined and is the bearing carrier of the workpiece. Its bottom is integrally formed with a rectangular connecting block 14 at the position of the rectangular groove corresponding to the mounting seat 12. The rectangular connecting block 14 is slidably connected with the rectangular groove and is screw-connected with the lead screw 13, so that the bearing table 7 can move longitudinally with the mounting seat 12 and can move laterally under the drive of the lead screw 13, thereby realizing flexible adjustment of the machining position of the workpiece.
[0032] Motor 8 Motor 8 is fixedly installed on one side wall of mounting seat 12, and the rotating shaft is fixedly connected with lead screw 13. It is the power source for the lateral movement of bearing table 7, and after being started, it will drive lead screw 13 to rotate, drive rectangular connecting block 14 and bearing table 7 to move synchronously laterally through the screw transmission, and adjust the lateral machining position of the workpiece.
[0033] Strip-shaped groove 9 The strip-shaped slot 9 is arranged on the surface of the strip-shaped plate 1 and corresponds to the sliding block 10 of the L-shaped slide 11. The core function of the strip-shaped slot 9 is to provide a sliding track for the sliding block 10, and through the sliding connection with the sliding block 10, the longitudinal movement of the mounting seat 12 is accurately guided, so that the mounting seat 12 does not deviate during movement and the movement is stable.
[0034] The sliding block 10 The sliding block 10 is integrally formed at the position corresponding to the strip-shaped slot 9 of the L-shaped slide 11 and is in sliding connection with the strip-shaped slot 9. It is a connecting and guiding component of the mounting seat 12 and the strip-shaped plate 1, and cooperates with the strip-shaped slot 9 to realize the longitudinal stable movement of the mounting seat 12, so as to ensure the accuracy of the mounting seat 12 when driving the bearing table 7 to adjust the longitudinal position.
[0035] The L-shaped slide 11 The L-shaped slide 11 has two groups and is fixedly installed on the two sides of the mounting seat 12, and the bottom is integrally formed with the sliding block 10. The L-shaped slide 11 on one side is fixedly installed with the motor 15, and the core function is to connect the mounting seat 12 and the strip-shaped plate 1, to provide support for the mounting seat 12, and to bear the motor 15 and transmit the longitudinal driving power.
[0036] The mounting seat 12 The mounting seat 12 is a middle bearing and transmission component of the machine tool, and a rectangular recess is arranged on the top, the screw rod 13 is rotatably installed in the rectangular recess, and the L-shaped slide 11 is fixed on the two sides. It can move longitudinally under the driving of the motor 15, and bear the bearing table 7 and the horizontal driving structure (motor 8, screw rod 13), so as to realize the longitudinal position adjustment of the bearing table 7 and the horizontal movement driving.
[0037] The screw rod 13 The screw rod 13 is rotatably installed in the rectangular recess of the mounting seat 12, one end is fixedly connected with the rotating shaft of the motor 8, and the other end is screw-connected with the rectangular connecting block 14. It is a core component of horizontal transmission, rotates under the driving of the motor 8, and through the cooperation with the rectangular connecting block 14, converts the rotary motion into horizontal linear motion, and drives the bearing table 7 to move horizontally.
[0038] The rectangular connecting block 14 The rectangular connecting block 14 is integrally formed on the bottom of the bearing table 7, is in sliding connection with the rectangular recess of the mounting seat 12, and is screw-connected with the screw rod 13. The core function of the rectangular connecting block 14 is to connect the bearing table 7 and the screw rod 13, to transmit the rotary power of the screw rod 13, to drive the bearing table 7 to move horizontally along the rectangular recess, and to ensure the accurate adjustment of the horizontal machining position of the workpiece.
[0039] Motor two 15 Motor two 15 is fixedly installed on one side L-shaped sliding seat 11, the rotating shaft passes through L-shaped sliding seat 11 and fixedly installs gear 17. It is the power source of the longitudinal movement of mounting seat 12, and drives gear 17 to rotate after starting, and drives L-shaped sliding seat 11 and mounting seat 12 to move longitudinally through the meshing transmission of gear 17 and gear teeth 16.
[0040] Gear teeth 16 Gear teeth 16 are integrally formed on the inner walls of the two sides of the rectangular opening of the strip-shaped plate 1 at equal intervals and are meshed with gear 17. It is the meshing basis of longitudinal transmission, and the rotating power of motor two 15 is converted into the longitudinal linear motion of mounting seat 12 through the interdental cooperation with gear 17, thereby providing transmission support for the longitudinal movement of mounting seat 12.
[0041] Gear 17 Gear 17 is fixedly installed on the rotating shaft of motor two 15 and is meshed with gear teeth 16 of the strip-shaped plate 1. Its core function is to transmit the rotating power of motor two 15, drive L-shaped sliding seat 11 and mounting seat 12 to move longitudinally along the strip-shaped groove 9 through the meshing action with gear teeth 16, and realize the adjustment of the longitudinal machining position of the workpiece.
[0042] The structure is connected as follows: it comprises a strip-shaped plate 1, L-shaped support legs 2 are fixedly installed at both ends of the strip-shaped plate 1, a mounting seat 12 capable of moving longitudinally is arranged at the top of the strip-shaped plate 1, a horizontal driving structure is arranged on the driving end of the horizontal driving structure, a bearing table 7 is arranged at the top of the bearing table 7, a tool bit structure with adjustable height is arranged at the top of the bearing table 7, when machining is needed, the workpiece to be machined is placed on the surface of the bearing table 7, then the mounting seat 12 moves longitudinally, then the bearing table 7 on it moves horizontally, then the workpiece on the bearing table 7 is driven to move synchronously, then the tool bit structure extends downward, and then the workpiece on the surface of the bearing table 7 is worked.
[0043] Further, the top of one side L-shaped support leg 2 is fixedly installed with an L-shaped support rod 3, the top of the L-shaped support rod 3 is fixedly installed with a telescopic cylinder 4, the telescopic shaft of the telescopic cylinder 4 passes through the end of the L-shaped support rod 3, and the lower end of the telescopic shaft of the telescopic cylinder 4 is connected with the tool bit structure.
[0044] Further, the tool bit structure comprises a clamping end head 5 and a tool bit 6, the clamping end head 5 is connected with the tool bit 6, the clamping end head 5 is fixedly connected with the telescopic end of the telescopic cylinder 4, and the clamping end head 5 is used to drive the tool bit 6 to rotate.
[0045] Furthermore, a rectangular groove is provided on the mounting base 12, and a rectangular connecting block 14 is integrally formed at the position of the bearing platform 7 corresponding to the rectangular groove. The rectangular connecting block 14 is slidably engaged with the rectangular groove, and the lateral movement structure is threadedly connected to the rectangular connecting block 14.
[0046] Furthermore, the lateral movement structure includes a lead screw 13 and a motor 8. The lead screw 13 is rotatably mounted inside the rectangular groove, and the motor 8 is fixedly mounted on one side wall of the mounting base 12. The rotation shaft of the motor 8 is fixedly connected to the lead screw 13, and the lead screw 13 is threadedly connected to the rectangular connecting block 14. When the bearing platform 7 needs to move laterally, the motor 8 starts, drives the lead screw 13 to rotate, and then drives the rectangular connecting block 14 to move laterally, which in turn drives the bearing platform 7 to move laterally.
[0047] Furthermore, L-shaped slides 11 are fixedly installed on both sides of the mounting base 12, and a motor structure is provided on one of the L-shaped slides 11. The motor structure is used to drive the mounting base 12 to move longitudinally.
[0048] Furthermore, a strip groove 9 is formed on the surface of the strip plate 1, and a slider 10 is integrally formed at the position of the L-shaped slide block 11 corresponding to the position of the strip groove 9. The slider 10 is slidably engaged with the strip groove 9.
[0049] Furthermore, the motor structure includes a second motor 15 and a gear 17. A through rectangular opening is provided on the strip plate 1. Multiple sets of teeth 16 are integrally formed at equal intervals on the inner walls of both sides of the rectangular opening. The second motor 15 is fixedly installed on the L-shaped slide 11. The rotation shaft of the second motor 15 passes through the L-shaped slide 11. The gear 17 is fixedly installed on the rotation shaft of the second motor 15. The gear 17 meshes with the teeth 16.
[0050] A method of using a milling cutter machine includes the following steps: Step 1: Place the workpiece to be processed onto the surface of the support table 7, and then fix it in place; Step 2: The telescopic cylinder 4 is activated, and its telescopic shaft extends downward. Then the clamping end 5 and the cutter head 6 move together. Then the clamping end 5 drives the cutter head 6 to rotate, and the cutter head 6 contacts the surface of the workpiece to process the workpiece. Step 3: Motor 2 15 starts, driving gear 17 to rotate. Then, under the action of meshing, it drives mounting base 12 to move longitudinally, driving bearing platform 7 to move longitudinally, adjusting the longitudinal position of the workpiece, and adjusting the longitudinal milling position of the cutter head 6 on the workpiece. Step 4: Start motor 8, drive lead screw 13 to rotate, then drive rectangular connecting block 14 to move laterally, synchronously drive bearing platform 7 to move laterally, during the synchronous movement, drive workpiece to move laterally, adjust the lateral position of workpiece, and adjust the milling position of cutter head 6 on workpiece.
[0051] While embodiments of the application have been shown and described, it is to be understood that the application is not limited to the details of the embodiments described, since numerous changes, modifications, substitutions and variations can be made thereto without departing from the spirit and scope of the application as defined by the appended claims and their equivalents.
Claims
1. A milling cutter machine tool, comprising a strip plate (1), characterized in that, Both ends of the strip plate (1) are fixedly installed with L-shaped support legs (2). The top of the strip plate (1) is provided with a mounting seat (12) that can move longitudinally. The mounting seat (12) is provided with a transverse drive structure. The drive end of the transverse drive structure is provided with a bearing platform (7). The top of the bearing platform (7) is provided with a blade head structure that can be adjusted in height.
2. A milling cutter machine tool according to claim 1, characterized in that: One of the L-shaped support legs (2) has an L-shaped support rod (3) fixedly installed on its top. A telescopic cylinder (4) is fixedly installed on the top of the L-shaped support rod (3). The telescopic shaft of the telescopic cylinder (4) passes through the end of the L-shaped support rod (3). The lower end of the telescopic shaft of the telescopic cylinder (4) is connected to the cutter head structure.
3. A milling cutter machine tool according to claim 2, characterized in that: The cutter head structure includes a clamping end (5) and a cutter head (6). The clamping end (5) is connected to the cutter head (6). The clamping end (5) is fixedly connected to the telescopic end of the telescopic cylinder (4). The clamping end (5) is used to drive the cutter head (6) to rotate.
4. A milling cutter machine tool according to claim 1, characterized in that: A rectangular groove is provided on the mounting base (12), and a rectangular connecting block (14) is integrally formed on the bearing platform (7) at the position corresponding to the rectangular groove. The rectangular connecting block (14) is slidably engaged with the rectangular groove, and the lateral moving structure is threadedly connected to the rectangular connecting block (14).
5. A milling cutter machine tool according to claim 4, characterized in that: The lateral movement structure includes a lead screw (13) and a motor (8). The lead screw (13) is rotatably installed inside the rectangular groove. The motor (8) is fixedly installed on one side wall of the mounting base (12). The rotation shaft of the motor (8) is fixedly connected to the lead screw (13). The lead screw (13) is threadedly connected to the rectangular connecting block (14).
6. A milling cutter machine tool according to claim 1, characterized in that: Both sides of the mounting base (12) are fixedly mounted with L-shaped slides (11), and one of the L-shaped slides (11) is provided with a motor structure, which is used to drive the mounting base (12) to move longitudinally.
7. A milling cutter machine tool according to claim 6, characterized in that: The surface of the strip plate (1) is provided with a strip groove (9), and the L-shaped slide block (11) is integrally formed with a slider (10) at the position corresponding to the strip groove (9). The slider (10) is slidably engaged with the strip groove (9).
8. A milling cutter machine tool according to claim 6, characterized in that: The motor structure includes a second motor (15) and a gear (17). A through rectangular opening is provided on the strip plate (1). Multiple sets of teeth (16) are integrally formed on both sides of the inner wall of the rectangular opening at equal intervals. The second motor (15) is fixedly installed on the L-shaped slide (11). The rotation shaft of the second motor (15) passes through the L-shaped slide (11). The gear (17) is fixedly installed on the rotation shaft of the second motor (15). The gear (17) meshes with the teeth (16).
9. A method of using a milling cutter machine tool, characterized in that, Includes the following steps: Step 1: Place the workpiece to be processed onto the surface of the support table (7) and then fix it in place; Step 2: The telescopic cylinder (4) is started, and its telescopic shaft extends downward. Then the clamping end (5) and the cutter head (6) move together. Then the clamping end (5) drives the cutter head (6) to rotate. The cutter head (6) contacts the surface of the workpiece and processes the workpiece. Step 3: Motor 2 (15) starts, drives gear (17) to rotate, and then under the action of meshing, drives mounting base (12) to move longitudinally, drives bearing platform (7) to move longitudinally, adjusts the longitudinal position of workpiece, and adjusts the longitudinal milling position of cutter head (6) on workpiece. Step 4: Start motor 1 (8) to drive the lead screw (13) to rotate, and then drive the rectangular connecting block (14) to move laterally, and simultaneously drive the bearing platform (7) to move laterally. During the synchronous movement, drive the workpiece to move laterally, adjust the lateral position of the workpiece, and adjust the milling position of the cutter head (6) on the workpiece.