Multifunctional dial plate daily tile pattern processing equipment
The multi-functional dial Geneva stripe processing equipment, which employs a marble frame, Y-axis, X-axis, Z-axis moving mechanism, and bidirectional rotary station, solves the problems of insufficient precision and flexibility of traditional equipment, and achieves efficient and precise dial Geneva stripe processing.
Patent Information
- Application Number
- CN202610137211.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-01-30
- Publication Date
- 2026-03-17
AI Technical Summary
Traditional dial Geneva stripe processing equipment suffers from problems such as difficulty in guaranteeing accuracy and consistency, and poor flexibility, making it difficult to achieve mass production with high precision and adapt to the processing needs of complex dial surfaces.
Employing a multi-functional dial Geneva stripe processing equipment, including a marble frame, Y-axis, X-axis, Z-axis moving mechanisms, and a bidirectional rotary station, combined with vacuum adsorption and internal clamping and external support positioning, a locking-type tool changer design, a fully sealed structure, and CNC system control, it supports efficient and precise machining of complex 3D curved surfaces.
It achieves high-precision and stable dial Geneva stripe processing, ensuring the long-term reliability and cleanliness of the equipment, improving processing efficiency and equipment utilization, and reducing failure rate and wear.
Smart Images

Figure CN121671204A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of dial Geneva stripe processing technology, specifically to a multifunctional dial Geneva stripe processing equipment. Background Technology
[0002] As a crucial component of a watch, the dial's surface decoration not only affects the product's aesthetics but also reflects the watchmaking craftsmanship and quality. Geneva stripes, a classic high-end dial texture, are widely used in mid-to-high-end watch dials due to their delicate parallel stripes and soft sheen. This texture places extremely high demands on the motion precision and stability of the machining equipment, as well as the tool's ability to control its posture.
[0003] Traditional Geneva stripe finishing on watch dials relies heavily on manual operation or general engraving equipment, which has the following significant drawbacks: Precision and consistency are difficult to guarantee: manual operation relies on the experience of technicians, resulting in poor consistency in processing depth and texture spacing, making it difficult to achieve high-precision mass production; although general CNC equipment has a certain degree of automation, its structural rigidity and vibration suppression capabilities are insufficient, and long-term processing can easily generate cumulative errors, affecting texture uniformity and smoothness.
[0004] Poor flexibility: Traditional equipment has a limited range of tool angle adjustment and is inconvenient to adjust, making it difficult to adapt to the processing of complex dial surfaces and multi-angle textures with different curvatures and design requirements, resulting in weak product adaptability.
[0005] To address the aforementioned issues, an improved multifunctional dial Geneva stripe processing device has been designed. Summary of the Invention
[0006] The purpose of this invention is to provide a multifunctional dial Geneva stripe processing device to solve the problems mentioned in the background art.
[0007] To achieve the above objectives, the present invention provides the following technical solution: A multi-functional dial Geneva stripe processing equipment includes a marble frame, a Y-axis moving mechanism, an X-axis moving mechanism, a Z-axis moving mechanism, a bidirectional rotary station, and an electrical control box. The marble frame includes a marble support plate, with a marble platform horizontally fixed to the upper end of the support plate. A marble upright plate is vertically fixed to one side of the upper end of the platform. The electrical control box is fixedly connected to the same side of the support plate, the platform, and the upright plate. The Y-axis moving mechanism is horizontally positioned on the upper end of the platform. The X-axis moving mechanism is horizontally positioned on the upper side wall of the upright plate near the center of the platform. The Z-axis moving mechanism is vertically positioned at the output end of the X-axis moving mechanism. The bidirectional rotary station is vertically positioned at the output end of the Z-axis moving mechanism.
[0008] As a further aspect of the present invention: the Y-axis moving mechanism includes a Y-axis linear moving module, which is horizontally fixedly connected to the upper end of the marble platform. The Y-axis linear moving module is perpendicular to the marble platform. The output ends of the Y-axis linear moving module are located on both sides. A dustproof cover is provided on the upper end of the Y-axis linear moving module. An installation frame is fitted onto the dustproof cover and the Y-axis linear moving module. The two opposing inner walls of the installation frame are fixedly connected to the output ends of the Y-axis linear moving module. A CNC rotary platform is horizontally fixedly connected to the upper end of the installation frame. A vacuum adsorption fixture for placing and fixing the dial is horizontally fixedly connected to the upper end of the CNC rotary platform.
[0009] As a further embodiment of the present invention: the X-axis moving mechanism includes a fixed frame, which is horizontally fixedly connected to the upper end of the side wall of the marble upright slab near the center of the marble tabletop. One end of the fixed frame is horizontally fixedly connected to a motor. The output end of the motor is horizontally fixedly connected to a lead screw through the side wall of the fixed frame. The end of the lead screw away from the motor is rotatably connected to a first support seat, which is fixedly connected to the inner wall of the fixed frame. The side wall of the lead screw away from the first support seat is rotatably connected to a first fixed seat, which is fixedly connected to the inner wall of the fixed frame. The side wall of the lead screw is rotatably connected to an internally threaded sleeve by a thread. The side wall of the internally threaded sleeve is fixedly connected to a first mounting plate, which is connected to the inner wall of the fixed frame by a limiting slide rail.
[0010] As a further embodiment of the present invention: both ends of the first mounting plate are fixedly connected to a first bellows cover, the end of the first bellows cover away from the first mounting plate is fixedly connected to both ends of the fixed frame, and the first mounting plate, the first bellows cover and the open end of the fixed frame are in a sealed sliding connection.
[0011] As a further embodiment of the present invention: the Z-axis moving mechanism includes a Z-axis linear moving module, the Z-axis linear moving module is vertically fixedly connected to the side wall of the first mounting plate, and the output end of the Z-axis linear moving module is fixedly connected to a second mounting plate.
[0012] As a further embodiment of the present invention: a second bellows cover is fixedly connected to the upper end of the second mounting plate, and the end of the second bellows cover away from the second mounting plate is fixedly connected to the top of the Z-axis linear motion module. The second mounting plate and the second bellows cover are in a sealed sliding connection with the open end of the Z-axis linear motion module.
[0013] As a further embodiment of the present invention: the bidirectional rotary station includes a rotary seat, which is vertically mounted on the side wall of the second mounting plate away from the Z-axis linear motion module. The center of the rotary seat is rotatably connected to the second mounting plate. The rotary seat is provided with fastening screws for fixing the rotary seat to the second mounting plate. Two support plates are fixedly connected to one end of the rotary seat away from the Z-axis linear motion module. A second fixed seat is provided between the two support plates. Rotating rods are fixedly connected to both ends of the second fixed seat. The end of the rotating rod away from the second fixed seat is rotatably connected to the support plate. Fastening screws for fixing the second fixed seat to the support plate are provided on the support plate. An mounting base is fixedly connected inside the second fixed seat. An electric spindle is vertically fixedly connected inside the mounting base. An electric spindle air blowing device is vertically fixedly connected to the side wall of the second fixed seat. An adjustment component for adjusting the angle of the electric spindle is provided on the rotary seat.
[0014] As a further embodiment of the present invention: the adjustment component includes a first stop and a second stop, a second micrometer is mounted on the support plate, a first stop that cooperates with the second micrometer is fixedly connected to the side wall of the second fixed seat on one side of the measuring end of the second micrometer, the second stop is fixedly connected to the upper end of the rotating seat, and a second support seat is fixedly connected to the second mounting plates on both sides of the second stop, and a first micrometer that cooperates with the second stop is mounted on the second support seat, with the measuring end of the first micrometer facing the second stop.
[0015] As a further embodiment of the present invention: the bottom of the marble frame is provided with a waste collection system, including a pull-out waste box, a chip trough connected to the processing area, and a negative pressure chip suction port, wherein the negative pressure chip suction port is connected to an external centralized dust removal device through a pipeline.
[0016] As a further aspect of the present invention: the device is surrounded by a transparent safety protective cover, the protective cover is equipped with an inspection door with an interlocking function, and is connected to the safety circuit of the electrical control box.
[0017] Compared with the prior art, the beneficial effects of the present invention are: This invention uses a thickened marble worktable, which has a heavy and stable structure, and low vibration during processing, ensuring high precision and reliability in long-term production; a waste bin is provided at the bottom to facilitate the collection of waste generated during processing, making cleaning convenient and keeping the working environment clean.
[0018] It supports dual positioning methods of vacuum adsorption and internal clamping and external support, and is suitable for dials of different sizes and shapes. It can quickly load and unload materials and accurately position them. It adopts a locking nozzle tool changer design, which makes tool installation and replacement simple and significantly improves processing efficiency and equipment utilization.
[0019] The X, Y, and Z axes adopt a fully sealed structure, which effectively isolates machining waste and coolant, protects transmission components such as lead screws and guide rails, reduces the failure rate, and extends the equipment life.
[0020] The integrated tool holder features bidirectional rotational fine-tuning along both the X and Z axes, supporting precise multi-angle adjustments of the tool. It boasts a compact structure and easy installation.
[0021] Equipped with a timed and quantitative automatic oil supply device, it continuously provides lubrication to the guide rail and lead screw, reducing wear and ensuring long-term operational stability; the whole machine is controlled by a CNC system and paired with a high-precision servo drive to achieve efficient and precise machining of complex 3D curved surfaces and textures.
[0022] The electric spindle is equipped with an air-blowing cleaning device to keep the tool area clean; each axis is equipped with a bellows cover and a dust cover to further ensure the convenience of equipment cleaning and maintenance. Attached Figure Description
[0023] Figure 1 This is a schematic diagram of the structure of the present invention.
[0024] Figure 2 This is a schematic diagram of the marble frame in this invention.
[0025] Figure 3 This is a schematic diagram of the Y-axis moving mechanism in this invention.
[0026] Figure 4 This is a schematic diagram of the X-axis moving mechanism in this invention.
[0027] Figure 5 This is a schematic diagram of the Z-axis moving mechanism in this invention.
[0028] Figure 6 This is a schematic diagram of the bidirectional rotating workstation in this invention.
[0029] The components include: 1. Marble frame; 11. Marble support plate; 12. Marble tabletop; 13. Marble upright plate; 2. Y-axis moving mechanism; 21. Y-axis linear moving module; 22. Dust cover; 23. Vacuum adsorption fixture; 24. CNC rotary platform; 25. Mounting frame; 3. X-axis moving mechanism; 31. Fixed frame; 32. First mounting plate; 33. First bellows cover; 34. Lead screw; 35. Motor; 36. First fixed seat; 37. First support seat; 4. Z-axis moving mechanism; 41. Z-axis linear moving module; 42. Second mounting plate; 43. First micrometer; 44. Second support base; 45. Second bellows cover; 5. Bidirectional rotary station; 51. Rotary seat; 52. First stop; 53. Support plate; 54. Rotating rod; 55. Second fixed seat; 56. Second stop; 57. Electric spindle; 58. Mounting seat; 59. Electric spindle air blowing device; 510. Second micrometer; 6. Electrical control box. Detailed Implementation
[0030] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0031] Please see Figures 1-6 In this embodiment of the invention, the multifunctional dial Geneva stripe processing equipment includes a marble frame 1, a Y-axis moving mechanism 2, an X-axis moving mechanism 3, a Z-axis moving mechanism 4, a bidirectional rotary station 5, and an electrical control box 6. The marble frame 1 includes a marble support plate 11, with a marble table 12 horizontally fixedly connected to the upper end of the marble support plate 11. A marble upright plate 13 is vertically fixedly connected to one side of the upper end of the marble table 12. The electrical control box 6 is fixedly connected to the same side of the marble support plate 11, the marble table 12, and the marble upright plate 13. The Y-axis moving mechanism 2 is horizontally arranged on the upper end of the marble table 12. The X-axis moving mechanism 3 is horizontally arranged on the upper end of the side wall of the marble upright plate 13 near the center of the marble table 12. The Z-axis moving mechanism 4 is vertically arranged at the output end of the X-axis moving mechanism 3. The bidirectional rotary station 5 is vertically arranged at the output end of the Z-axis moving mechanism 4.
[0032] The Y-axis moving mechanism 2 includes a Y-axis linear moving module 21, which is horizontally fixedly connected to the upper end of the marble platform 12. The Y-axis linear moving module 21 is perpendicular to the marble upright slab 13. The output ends of the Y-axis linear moving module 21 are located on both sides. A dustproof cover 22 is provided on the upper end of the Y-axis linear moving module 21. An installation frame 25 is fitted on the dustproof cover 22 and the Y-axis linear moving module 21. The two opposing inner walls of the installation frame 25 are fixedly connected to the output ends of the Y-axis linear moving module 21. A CNC rotary platform 24 is horizontally fixedly connected to the upper end of the installation frame 25. A vacuum adsorption fixture 23 for placing and fixing the dial is horizontally fixedly connected to the upper end of the CNC rotary platform 24.
[0033] The X-axis moving mechanism 3 includes a fixed frame 31, which is horizontally fixed to the upper side wall of the marble slab 13 near the center of the marble countertop 12. A motor 35 is horizontally fixed to one end of the fixed frame 31. A lead screw 34 is horizontally fixed to the output end of the motor 35, passing through the side wall of the fixed frame 31. A first support seat 37 is rotatably connected to the end of the lead screw 34 away from the motor 35. The first support seat 37 is fixedly connected to the inner wall of the fixed frame 31. A first fixed seat 36 is rotatably connected to the side wall of the end of the lead screw 34 away from the first support seat 37. The first fixed seat 36 is fixedly connected to the inner wall of the fixed frame 31. The side wall of the lead screw 34 is connected to an internal threaded sleeve by a threaded rotation. The side wall of the internal threaded sleeve is fixedly connected to a first mounting plate 32. The first mounting plate 32 is connected to the inner wall of the fixed frame 31 by a limiting slide rail. Both ends of the first mounting plate 32 are fixedly connected to a first bellows cover 33. The end of the first bellows cover 33 away from the first mounting plate 32 is fixedly connected to both ends of the fixed frame 31. The first mounting plate 32, the first bellows cover 33 and the open end of the fixed frame 31 are sealed and slidably connected.
[0034] The Z-axis moving mechanism 4 includes a Z-axis linear moving module 41, which is vertically fixed to the side wall of the first mounting plate 32. The output end of the Z-axis linear moving module 41 is fixedly connected to a second mounting plate 42. The upper end of the second mounting plate 42 is fixedly connected to a second bellows cover 45. The end of the second bellows cover 45 away from the second mounting plate 42 is fixedly connected to the top of the Z-axis linear moving module 41. The second mounting plate 42 and the second bellows cover 45 are slidably and sealingly connected to the open end of the Z-axis linear moving module 41.
[0035] The bidirectional rotary workstation 5 includes a rotary seat 51, which is vertically mounted on the side wall of the second mounting plate 42 away from the Z-axis linear motion module 41. The center of the rotary seat 51 is rotatably connected to the second mounting plate 42. The rotary seat 51 is provided with fastening screws for fixing the rotary seat 51 to the second mounting plate 42. Two support plates 53 are fixedly connected to one end of the rotary seat 51 away from the Z-axis linear motion module 41. A second fixed seat 55 is provided between the two support plates 53. A rotating rod 54 is fixedly connected to one end of the second fixed seat 55. The end of the rotating rod 54 away from the second fixed seat 55 is rotatably connected to the support plate 53. The support plate 53 is provided with fastening screws for fixing the second fixed seat 55 to the support plate 53. A mounting base 58 is fixedly connected inside the second fixed seat 55. An electric spindle 57 is vertically fixedly connected inside the mounting base 58. An electric spindle air blowing device 59 is vertically fixedly connected to the side wall of the second fixed seat 55. An adjustment component for adjusting the angle of the electric spindle 57 is provided on the rotating seat 51.
[0036] The adjustment assembly includes a first stop 52 and a second stop 56. A second micrometer 510 is mounted on the support plate 53. A first stop 52 that works in conjunction with the second micrometer 510 is fixedly connected to the side wall of the second fixed base 55 on one side of the measuring end of the second micrometer 510. The second stop 56 is fixedly connected to the upper end of the rotating base 51. A second support base 44 is fixedly connected to the second mounting plates 42 on both sides of the second stop 56. A first micrometer 43 that works in conjunction with the second stop 56 is mounted on the second support base 44. The measuring end of the first micrometer 43 is directly opposite the second stop 56.
[0037] Working principle of multi-functional dial Geneva stripe processing equipment: When in use, place the dial on the vacuum adsorption fixture 23, and then start the vacuum adsorption fixture 23 to adsorb and fix the dial.
[0038] During processing, the Y-axis linear motion module 21 is activated, and the output end of the Y-axis linear motion module 21 drives the mounting frame 25, CNC rotary platform 24, vacuum adsorption fixture 23, and dial to move along the Y-axis direction; the CNC rotary platform 24 is activated, and the output end of the CNC rotary platform 24 drives the vacuum adsorption fixture 23 and dial to rotate; the dial can be moved and adjusted in the above way.
[0039] When the motor 35 is started, the output end of the motor 35 drives the lead screw 34 to rotate. Under the action of the thread, the lead screw 34 drives the internal threaded sleeve, the first mounting plate 32, the Z-axis linear movement module 41, the second mounting plate 42, the rotary seat 51, the support plate 53, the second fixed seat 55, the mounting seat 58, and the electric spindle 57 to move along the X-axis direction. Through the above method, the electric spindle 57 can be moved and adjusted within a large range.
[0040] Loosen the fastening screws to rotate the rotating seat 51. The rotating seat 51 drives the support plate 53, the second fixed seat 55, the mounting seat 58, and the electric spindle 57 to rotate. At the same time, adjust the first micrometer 43 and measure with the cooperation of the second stop 56 to adjust the position of the electric spindle 57. After adjustment, fix the rotating seat 51 back onto the second mounting plate 42. Loosen the fastening screws to rotate the second fixed seat 55. The second fixed seat 55 drives the mounting seat 58 and the electric spindle 57 to rotate. At the same time, adjust the second micrometer 510 and measure with the cooperation of the first stop 52 to adjust the position of the electric spindle 57. After adjustment, fix the second fixed seat 55 back onto the support plate 53. The electric spindle 57 is fine-tuned in the above manner.
[0041] After the electric spindle 57 is adjusted, the Z-axis linear motion module 41 is started. The output end of the Z-axis linear motion module 41 drives the second mounting plate 42, the rotary seat 51, the support plate 53, the second fixed seat 55, the mounting seat 58, and the electric spindle 57 to move along the Z-axis. At the same time, the electric spindle 57 is moved along the X-axis and Y-axis so that the electric spindle 57 can process the dial on the vacuum adsorption fixture 23.
[0042] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the present invention can be implemented in other specific forms without departing from the spirit or essential characteristics of the present invention.
Claims
1. A multifunctional watch dial Geneva processing equipment, comprising a marble frame (1), a Y-axis moving mechanism (2), an X-axis moving mechanism (3), a Z-axis moving mechanism (4), a two-way rotating work station (5) and an electric control box (6), characterized in that, The marble rack (1) comprises a marble support plate (11), the upper end of the marble support plate (11) is fixedly connected with a marble table plate (12), one side of the upper end of the marble table plate (12) is fixedly connected with a marble vertical plate (13), the electric control box (6) is fixedly connected on the same side of the marble support plate (11), the marble table plate (12) and the marble vertical plate (13), the Y-axis moving mechanism (2) is horizontally arranged on the upper end of the marble table plate (12), the X-axis moving mechanism (3) is horizontally arranged on the upper end of the side wall of the marble vertical plate (13) close to the center of the marble table plate (12), the Z-axis moving mechanism (4) is vertically arranged on the output end of the X-axis moving mechanism (3), and the bidirectional rotating station (5) is vertically arranged on the output end of the Z-axis moving mechanism (4).
2. The multi-functional watch dial Geneva processing apparatus according to claim 1, wherein The Y-axis moving mechanism (2) comprises a Y-axis linear moving module (21), the Y-axis linear moving module (21) is fixedly connected horizontally on the upper end of the marble table plate (12), the Y-axis linear moving module (21) is perpendicular to the marble vertical plate (13), the output end of the Y-axis linear moving module (21) is arranged on both sides, the upper end cover of the Y-axis linear moving module (21) is provided with a dust cover plate (22), the dust cover plate (22) and the Y-axis linear moving module (21) are sleeved with a mounting frame (25), the two opposite inner walls of the mounting frame (25) are fixedly connected with the output end of the Y-axis linear moving module (21), the upper end of the mounting frame (25) is fixedly connected with a numerical control rotating platform (24), and the upper end of the numerical control rotating platform (24) is fixedly connected with a vacuum adsorption jig (23) used for placing a fixed dial plate.
3. The multi-functional watch dial Geneva processing apparatus according to claim 1, wherein The X-axis moving mechanism (3) comprises a fixed frame (31), the fixed frame (31) is fixedly connected horizontally on the upper end of the side wall of the marble vertical plate (13) close to the center of the marble table plate (12), one end of the fixed frame (31) is fixedly connected with a motor (35), the output end of the motor (35) is fixedly connected with a lead screw (34) through the side wall of the fixed frame (31), the end, away from the motor (35), of the lead screw (34) is rotatably connected with a first support base (37), the first support base (37) is fixedly connected to the inner wall of the fixed frame (31), the side wall, away from the first support base (37), of the end of the lead screw (34) is rotatably connected with a first fixed seat (36), the first fixed seat (36) is fixedly connected to the inner wall of the fixed frame (31), and the side wall of the lead screw (34) is rotatably connected with a female threaded sleeve through threads, the first mounting plate (32) is fixedly connected to the side wall of the female threaded sleeve, and the first mounting plate (32) is connected to the inner wall of the fixed frame (31) through a limiting sliding rail.
4. The multi-functional watch dial Geneva processing apparatus according to claim 3, wherein Both ends of the first mounting plate (32) are fixedly connected with first organ protection cover (33), one end of the first organ protection cover (33) is fixedly connected with the both ends of the fixed frame (31) away from the first mounting plate (32), the first mounting plate (32), the first organ protection cover (33) and the open end of the fixed frame (31) are sealingly and slidably connected.
5. The multi-functional watch dial Geneva processing apparatus according to claim 3, wherein The Z-axis moving mechanism (4) comprises a Z-axis linear moving module (41), the Z-axis linear moving module (41) is fixedly connected on the side wall of the first mounting plate (32) vertically, and the output end of the Z-axis linear moving module (41) is fixedly connected with the second mounting plate (42).
6. The multi-functional watch dial Geneva processing apparatus according to claim 5, wherein The upper end of the second mounting plate (42) is fixedly connected with the second organ protection cover (45), one end of the second organ protection cover (45) is fixedly connected with the top of the Z-axis linear moving module (41) away from the second mounting plate (42), and the second mounting plate (42) and the second organ protection cover (45) are sealingly and slidably connected with the open end of the Z-axis linear moving module (41).
7. The multi-functional watch dial Geneva processing apparatus according to claim 5, wherein The bidirectional rotating station (5) comprises a rotating seat (51), the rotating seat (51) is vertically arranged on the side wall of the second mounting plate (42) away from the Z-axis linear moving module (41), the center position of the rotating seat (51) is rotatably connected with the second mounting plate (42), the rotating seat (51) is provided with fastening screws for fixing the rotating seat (51) on the second mounting plate (42), one end of the rotating seat (51) away from the Z-axis linear moving module (41) is fixedly connected with two supporting plates (53), a second fixing seat (55) is arranged between the two supporting plates (53), both ends of the second fixing seat (55) are fixedly connected with rotating rods (54), one end of the rotating rod (54) away from the second fixing seat (55) is rotatably connected with the supporting plate (53), the supporting plate (53) is provided with fastening screws for fixing the second fixing seat (55) on the supporting plate (53), the second fixing seat (55) is fixedly connected with a mounting seat (58) inside, the mounting seat (58) is vertically fixedly connected with an electric spindle (57) inside, the side wall of the second fixing seat (55) is vertically fixedly connected with an electric spindle blowing device (59), and the rotating seat (51) is provided with an adjusting assembly for adjusting the angle of the electric spindle (57).
8. The multi-functional watch dial Geneva processing apparatus according to claim 7, wherein The adjusting assembly comprises a first stop block (52) and a second stop block (56), the second supporting plate (53) is provided with a second micrometer (510), the side wall of the second fixing seat (55) on the measuring end of the second micrometer (510) is fixedly connected with the first stop block (52) used in cooperation with the second micrometer (510), the second stop block (56) is fixedly connected with the upper end of the rotating seat (51), the second stop block (56) is fixedly connected with a second supporting seat (44) on both sides of the second mounting plate (42), the second supporting seat (44) is provided with a first micrometer (43) used in cooperation with the second stop block (56), and the measuring end of the first micrometer (43) faces the second stop block (56).
9. The multi-functional watch dial Geneva processing apparatus according to claim 1, wherein, The marble rack (1) is provided with a waste collecting system at the bottom, including a pullable waste box, a falling chip groove communicated with the processing area and a negative pressure chip suction port, and the negative pressure chip suction port is connected to an external centralized dust removal equipment through a pipeline.
10. The multi-functional watch dial Geneva processing apparatus according to claim 1, wherein The whole device is provided with a transparent safety protective cover, the protective cover is provided with an inspection door with interlocking function, and is connected with a safety loop of an electric control box (6).