Cutter tower of inclined tooth turning numerical control lathe
Through the coordinated design of components such as the rotating ring, positioning block, toggle rod, arc groove and air jet hole, the problem that the turret of the helical gear turning CNC lathe cannot lock workpieces of different specifications and shapes is solved, effective position adjustment and ventilation are achieved, the locking and fixing efficiency and flexibility are improved, and the workpiece processing efficiency and usability are improved.
Patent Information
- Application Number
- CN202422648781.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-31
- Publication Date
- 2025-09-19
- Estimated Expiration
- 2034-10-31
AI Technical Summary
The existing helical gear turning CNC lathe turret cannot effectively adjust its position when locking, resulting in the inability to lock workpieces of different specifications and shapes, reducing the locking efficiency and flexibility, and unable to perform effective position movement and ventilation, affecting processing efficiency and usability.
The coordinated design of the rotating ring, positioning block, toggle rod, arc groove and air jet hole realizes position adjustment and effective ventilation during locking. The servo motor and electric push rod are driven to realize locking and fixing and auxiliary cooling or blowing of waste chips, which improves the locking and fixing efficiency and flexibility of the workpiece, improves the processing efficiency and usability of the workpiece during processing.
It realizes effective locking and fixing of workpieces of different specifications and shapes, improves the locking and fixing efficiency and flexibility, improves the flexibility, improves the processing efficiency and flexibility of the workpiece during the processing, improves the flexibility of the process, and improves the processing efficiency and usability of the workpiece.
Smart Images

Figure CN223352973U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of an inclined gear turning CNC lathe, in particular to a tool turret of an inclined gear turning CNC lathe. Background Art
[0002] An inclined gear turning CNC lathe, also known as an inclined bed CNC lathe, is a high-precision, high-efficiency automated machine tool. Its main feature lies in the inclined bed design, typically at an angle of 30°, 45°, or 60°. The tool turret is one of the main components of an inclined gear turning CNC lathe, and its main functions include tool position indexing. However, existing inclined gear turning CNC lathe turrets cannot effectively adjust their position during locking, making it impossible to lock workpieces of different specifications and shapes, reducing their locking and fixing efficiency. Furthermore, they cannot be effectively moved or ventilated, reducing their flexibility. This makes it impossible to provide auxiliary cooling or blow away waste chips during workpiece machining, reducing their efficiency and usability. Therefore, we have proposed an inclined gear turning CNC lathe tool turret. Utility Model Content
[0003] The purpose of the present utility model is to solve at least one of the technical problems existing in the prior art, and to provide a turret for an inclined gear-cutting CNC lathe, which can effectively adjust its position when locking, so that it can lock workpieces of different specifications and shapes, thereby improving its locking and fixing efficiency, and can effectively move its position and ventilate, thereby improving its flexibility, so that it can perform auxiliary cooling or blow away waste chips during the workpiece processing process, thereby improving its use efficiency and usability.
[0004] To achieve the above-mentioned purpose, a turret for an inclined gear-cutting CNC lathe is provided, comprising: a tower, a shell is provided on the left side of the tower, the left side of the shell is connected to a box body by bolts, and the right sides of the shell and the box body are both opened, a round block is slidably connected near the left side of the shell, and the right side of the round block is connected to docking rods by bolts near the top and bottom, the right ends of the two docking rods are connected to the left side wall of the tower by bolts, an electric push rod is movably connected to the left inner wall of the box body by a bearing, and a round hole is provided on the left outer wall of the shell, and the right end of the electric push rod passes through the round hole and is connected to the left side wall of the round block.
[0005] According to the described helical gear cutting CNC lathe turret, the left outer wall of the box body is connected to the rotating motor via bolts, and the left end of the electric push rod passes through the inner ring of the bearing and is connected to the output shaft of the rotating motor.
[0006] According to the described turret of the oblique gear cutting CNC lathe, a mounting groove is provided on the left inner wall of the tower, and a rotating ring is connected to the mounting groove near the right side through a bearing sleeve, the left side of the rotating ring is connected to an outer circular cover by bolts, and the right side of the outer circular cover is open, the left outer wall of the outer circular cover is connected to a docking shaft by bolts, and the left end of the docking shaft is movably connected to the right side wall of the circular block through a bearing, a number of evenly distributed positioning blocks are fitted on the right side of the rotating ring, and a toggle rod is connected to the left side of the positioning block by bolts, an arc groove matching the toggle rod is provided on the right side of the rotating ring, a slider is connected to the left side of the positioning block by bolts, and a sliding groove matching the slider is provided on the left inner wall of the tower.
[0007] According to the described helical gear cutting CNC lathe turret, a groove is provided on the round block, and a servo motor is connected to the groove via bolts, and the left end of the docking shaft passes through the inner ring of the bearing and is connected to the output shaft of the servo motor.
[0008] According to the described turret of the helical gear-cutting CNC lathe, a moving block is provided inside the rotating ring, the left side of the moving block is connected to the inner circular cover by bolts, the left inner wall of the outer circular cover is connected to the electric cylinder by bolts, and the right end of the push rod on the electric cylinder is connected to the left outer wall of the inner circular cover by bolts.
[0009] According to the described turret of the bevel gear cutting CNC lathe, an air guide groove is provided on the moving block, and a number of evenly distributed air injection holes matching the air guide groove are provided at the edge of the moving block. A hair dryer is connected to the left inner wall of the inner circular cover by bolts, and the right air outlet of the hair dryer is communicated with the interior of the air guide groove.
[0010] According to the described turret of the inclined gear-cutting CNC lathe, the bottoms of the shell and the box body are connected to mounting plates by bolts, and sliding blocks are installed at the bottom of the mounting plates near the left and right sides.
[0011] The above scheme has at least one of the following beneficial effects: this technical scheme enables effective position adjustment during locking through the mutual cooperation between components such as the rotating ring, the positioning block, the toggle rod, the arc groove and the air jet hole, so that it can lock workpieces of different specifications and shapes, thereby improving its locking and fixing efficiency, and can perform effective position movement and ventilation, thereby improving its flexibility, so that it can perform auxiliary cooling or blow away waste chips during the workpiece processing process, thereby improving its use efficiency and usability.
[0012] Additional aspects and advantages of the present invention will be given in part in the following description and will become apparent from the following description or learned through practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS
[0013] The present invention will be further described below with reference to the accompanying drawings and embodiments;
[0014] Figure 1 This is a main perspective view of the present utility model;
[0015] Figure 2 for Figure 1 Schematic diagram of the local cross-section structure;
[0016] Figure 3 for Figure 1 Partial side view of the middle rotating ring and positioning block;
[0017] Figure 4 for Figure 1 A partial three-dimensional view of the inner and outer circular covers and other components.
[0018] Legend:
[0019] 1. Tower; 2. Moving block; 3. Shell; 4. Box body; 5. Rotating motor; 6. Mounting plate; 7. Sliding block; 8. Mounting slot; 9. Rotating ring; 10. Air guide slot; 11. Jet hole; 12. Positioning block; 13. Blower; 14. Electric cylinder; 15. Inner circular cover; 16. Outer circular cover; 17. Round block; 18. Docking shaft; 19. Docking rod; 20. Groove; 21. Electric push rod; 22. Servo motor; 23. Arc slot; 24. Toggle lever. DETAILED DESCRIPTION
[0020] This section will describe in detail the specific embodiments of the present invention. The preferred embodiments of the present invention are shown in the accompanying drawings. The purpose of the accompanying drawings is to supplement the description of the text part of the specification with graphics, so that people can intuitively and vividly understand each technical feature and overall technical solution of the present invention, but it cannot be understood as a limitation on the scope of protection of the present invention.
[0021] Reference Figures 1 to 4 The tool turret of the inclined gear-cutting CNC lathe of the present invention comprises a tower 1, a shell 3 is provided on the left side of the tower 1, and the left side of the shell 3 is connected to the box body 4 by bolts, and the right sides of the shell 3 and the box body 4 are both opened, and the bottoms of the shell 3 and the box body 4 are connected to the mounting plates 6 by bolts. The bottoms of the mounting plates 6 are installed with sliding blocks 7 near the left and right sides, and a round block 17 is slidably connected to the left side of the shell 3. The right side of the round block 17 is connected to the docking rod 19 by bolts near the top and bottom, and the right ends of the two docking rods 19 are connected to the left side wall of the tower 1 by bolts, and an electric push rod 21 is movably connected to the left inner wall of the box body 4 through a bearing, and a circular hole is opened on the left outer wall of the shell 3, and the right end of the electric push rod 21 is connected to the left side wall of the round block 17 through the circular hole.
[0022] The left outer wall of the box body 4 is connected to the rotating motor 5 through bolts, and the left end of the electric push rod 21 passes through the inner ring of the bearing and is connected to the output shaft of the rotating motor 5.
[0023] A mounting groove 8 is provided on the left inner wall of the tower 1, and a rotating ring 9 is connected with a bearing sleeve near the right side of the mounting groove 8. The left side of the rotating ring 9 is connected to the outer circular cover 16 by bolts, and the right side of the outer circular cover 16 is opened. The left outer wall of the outer circular cover 16 is connected to the docking shaft 18 by bolts, and the left end of the docking shaft 18 is movably connected to the right side wall of the round block 17 through a bearing. A number of evenly distributed positioning blocks 12 are fitted on the right side of the rotating ring 9, and the left side of the positioning block 12 is connected to a toggle rod 24 by bolts. An arc groove 23 matching the toggle rod 24 is provided on the right side of the rotating ring 9, a slider is connected to the left side of the positioning block 12 by bolts, and a slide groove matching the slider is provided on the left inner wall of the tower 1. A groove 20 is provided on the round block 17, and a servo motor 22 is connected to the groove 20 by bolts. The left end of the docking shaft 18 passes through the inner ring of the bearing and is connected to the output shaft of the servo motor 22. This structure enables effective position adjustment during locking, thereby enabling it to lock workpieces of different specifications and shapes, thereby improving its locking and fixing efficiency.
[0024] A moving block 2 is sleeved within the rotating ring 9. The left side of the moving block 2 is bolted to an inner circular cover 15. The left inner wall of the outer circular cover 16 is bolted to an electric cylinder 14. The right end of the push rod on the electric cylinder 14 is bolted to the left outer wall of the inner circular cover 15. An air guide groove 10 is provided on the moving block 2, and a plurality of evenly distributed air injection holes 11 matching the air guide groove 10 are provided at the edge of the moving block 2. A blower 13 is bolted to the left inner wall of the inner circular cover 15, and the right air outlet of the blower 13 is connected to the interior of the air guide groove 10. This structure enables effective position movement and ventilation, improves its flexibility, enables auxiliary cooling or blowing of waste chips during workpiece processing, and improves its efficiency and usability.
[0025] Working principle: When in use, this technical solution is first installed on the guide rail of the helical gear cutting CNC lathe through two sliding blocks 7, and the servo motor 22 drives the rotating ring 9 to rotate forward or reverse through the docking shaft 18 and the outer circular cover 16, so that the arc groove 23 squeezes the toggle rod 24, so that several toggle rods 24 drive several positioning blocks 12 to close or move away, so that it can effectively adjust the position when locking, so that it can lock workpieces of different specifications and shapes, improving its locking and fixing efficiency. The extension and retraction of the electric push rod 21 can drive the round block 17 to slide to the right or left in the shell 3, and the round block 17 drives the docking rod 19 to move. The tower 1 moves to the right or left side to adjust the left and right positions of the tower 1, and the rotating motor 5 drives the tower 1 to rotate through the electric push rod 21, the round block 17 and the docking rod 19 to realize the tool position indexing, and the push rod on the electric cylinder 14 can be extended and retracted to drive the moving block 2 to the right or left side through the inner round cover 15, which can realize the auxiliary clamping or pushing function, and the blower 13 guides the wind into the air guide groove 10 and sprays it out from the air jet hole 11, so that it can perform effective position movement and ventilation, improve its flexibility, and enable it to perform auxiliary cooling or blow away waste chips during the workpiece processing, thereby improving its use efficiency and usability.
[0026] The embodiments of the present invention are described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Various changes can be made within the scope of knowledge possessed by ordinary technicians in the technical field without departing from the purpose of the present invention.
Claims
1. The turret of the inclined gear cutting CNC lathe is characterized by: include: A tower (1) is provided with a shell (3) on the left side of the tower (1), the left side of the shell (3) is connected to a box body (4) by bolts, and the right sides of the shell (3) and the box body (4) are both opened, a round block (17) is slidably connected near the left side of the shell (3), and the right side of the round block (17) near the top and bottom are connected to docking rods (19) by bolts, and the right ends of the two docking rods (19) are connected to the left side wall of the tower (1) by bolts, and an electric push rod (21) is movably connected to the left inner wall of the box body (4) by a bearing, and a round hole is opened on the left outer wall of the shell (3), and the right end of the electric push rod (21) passes through the round hole and is connected to the left side wall of the round block (17).
2. The turret of the inclined gear cutting CNC lathe according to claim 1, characterized in that: The left outer wall of the box body (4) is connected to a rotating motor (5) via bolts, and the left end of the electric push rod (21) passes through the inner ring of the bearing and is connected to the output shaft of the rotating motor (5).
3. The turret of the inclined gear cutting CNC lathe according to claim 2, characterized in that: The left inner wall of the tower (1) is provided with a mounting groove (8), and a rotating ring (9) is sleeved near the right side of the mounting groove (8) through a bearing. The left side of the rotating ring (9) is connected to an outer circular cover (16) through bolts, and the right side of the outer circular cover (16) is open. The left outer wall of the outer circular cover (16) is connected to a docking shaft (18) through bolts, and the left end of the docking shaft (18) is movably connected to the right side wall of the round block (17) through a bearing. The right side of the rotating ring (9) is fitted with a plurality of evenly distributed positioning blocks (12), and the left side of the positioning block (12) is connected to a toggle rod (24) through bolts. The right side of the rotating ring (9) is provided with an arc groove (23) matching the toggle rod (24). The left side of the positioning block (12) is connected to a slider through bolts, and a sliding groove matching the slider is provided on the left inner wall of the tower (1).
4. The turret of the inclined gear cutting CNC lathe according to claim 3, characterized in that: A groove (20) is provided on the round block (17), and a servo motor (22) is connected to the groove (20) via bolts. The left end of the docking shaft (18) passes through the inner ring of the bearing and is connected to the output shaft of the servo motor (22).
5. The turret of the inclined gear cutting CNC lathe according to claim 4, characterized in that: A moving block (2) is sleeved inside the rotating ring (9), the left side of the moving block (2) is connected to an inner circular cover (15) by bolts, the left inner wall of the outer circular cover (16) is connected to an electric cylinder (14) by bolts, and the right end of a push rod on the electric cylinder (14) is connected to the left outer wall of the inner circular cover (15) by bolts.
6. The turret of the inclined gear cutting CNC lathe according to claim 5, characterized in that: An air guide groove (10) is provided on the moving block (2), and a plurality of air jet holes (11) are evenly distributed and matched with the air guide groove (10) are provided at the edge of the moving block (2). A blower (13) is connected to the left inner wall of the inner circular cover (15) by bolts, and the right air outlet of the blower (13) is connected to the inside of the air guide groove (10).
7. The turret of the inclined gear cutting CNC lathe according to claim 6, characterized in that: The bottoms of the housing (3) and the box body (4) are connected to a mounting plate (6) via bolts, and sliding blocks (7) are installed on the bottom of the mounting plate (6) near the left and right sides.