Linear optical axis machining and feeding device
By designing a combination structure of placement slots on the support column, bottom support plate, and top pressure plate, and utilizing the cooperation of threaded rotating rod and variable frequency motor, a stable fixation of linear optical shafts of different specifications is achieved, solving the flexibility and adaptability problems of existing feeding devices and improving operating efficiency and safety.
Patent Information
- Application Number
- CN202520402332.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-10
- Publication Date
- 2026-02-03
- Estimated Expiration
- 2035-03-10
AI Technical Summary
Existing feeding devices lack flexibility and adaptability when fixing linear optical axes, making it difficult to meet the fixing requirements of linear optical axes of different specifications, resulting in increased operation difficulty and reduced versatility.
The design incorporates a combination structure of a placement groove on the support column, a bottom support plate, and a top pressure plate. The rotation of the threaded rotating rod enables the clamping and fixing of linear optical shafts of different specifications. Combined with a variable frequency motor driving the threaded rotating rod, the position of the support column and the clamping force are adjusted to ensure stability without damaging the surface of the optical shaft.
It enables the clamping and fixing of optical shafts of different specifications, ensuring stability without damaging the surface of the optical shaft, and improving the adaptability and safety performance of the feeding device.
Smart Images

Figure CN223863392U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of feeding device technology, specifically a linear optical axis processing feeding device. Background Technology
[0002] In the machining of linear optical axes, the feeding device is one of the key pieces of equipment, and its performance directly affects the machining efficiency and product quality.
[0003] Existing feeding devices often lack flexibility and adaptability when fixing linear optical shafts. Due to the varying specifications and dimensions of linear optical shafts, traditional fixing methods often fail to meet the fixing requirements of different specifications of linear optical shafts. This leads to the need for frequent replacement and adjustment of clamping mechanisms in practical applications, which not only increases the difficulty and time of operation, but also reduces the versatility and flexibility of the feeding device. Utility Model Content
[0004] The purpose of this invention is to provide a linear optical axis processing feeding device to solve the problem mentioned in the background art, which is that existing feeding devices often lack flexibility and adaptability when fixing linear optical axes. Because linear optical axes vary in specifications and dimensions, traditional fixing methods often cannot meet the fixing requirements of linear optical axes of different specifications. This leads to the need for frequent replacement and adjustment of the clamping mechanism in practical applications, which not only increases the difficulty of operation and working time, but also reduces the versatility and flexibility of the feeding device.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a linear optical axis processing feeding device, comprising a base, a support column provided on one side of the top of the base, a placement groove provided near the bottom of the support column, a bottom support plate fixedly connected to the bottom of the placement groove, a top pressure plate provided at the top of the placement groove, connecting rods fixedly connected to both sides of the top of the top pressure plate, the tops of the two connecting rods extending through to the outside of the support column and fixedly connected to a connecting plate, side end blocks fixedly connected to the top of both sides of the support column near the top, side rods fixedly connected to the top of the side end blocks, a top plate fixedly connected to the top of the two side rods, a variable frequency motor II fixedly mounted on the top of the top plate, a main shaft fixedly connected to the bottom output end of the variable frequency motor II, a concave circular plate fixedly connected to the bottom of the main shaft extending through to the outside of the top plate, a threaded rotating rod II fixedly connected to the center of the bottom of the concave circular plate, and the bottom of the threaded rotating rod II extending through to the outside of the connecting plate and rotatably connected to the top of the support column.
[0006] Compared with the prior art, the beneficial effects of this utility model are:
[0007] This linear optical axis processing feeding device, through its design of a placement groove on the support column and a combination structure of a bottom support plate and a top pressure plate, can easily adapt to linear optical axis bodies of different specifications. The top pressure plate is connected to a threaded rotating rod two via a connecting rod and a connecting plate. When the threaded rotating rod two rotates, the connecting plate and the connected top pressure plate move up and down, thereby achieving the clamping and fixing of linear optical axes of different heights. This design not only simplifies the fixing operation but also greatly improves the adaptability of the feeding device to linear optical axes of different specifications. The anti-slip pad at the bottom of the top pressure plate increases the friction between it and the linear optical axis body, effectively preventing the linear optical axis from sliding or loosening during processing. The sliding connection design of the concave circular plate and the annular groove at the bottom of the top plate not only ensures the stability of the main shaft and the second threaded rotating rod during rotation, but also prevents fixation failure due to vibration, thus enhancing the safety performance of the entire feeding device. The movable groove in the base is equipped with a first threaded rotating rod, which is threadedly connected to the threaded sleeve plate. By driving the first threaded rotating rod to rotate through the first frequency conversion motor, the position of the support column and the main body of the linear optical shaft placed on it can be precisely adjusted. At the same time, the threaded connection design between the threaded sleeve block in the center of the connecting plate and the second threaded rotating rod allows the pressure of the top pressure plate on the linear optical shaft to be precisely adjusted by rotating the second threaded rotating rod, ensuring that the fixation is both stable and does not damage the surface of the optical shaft. Attached Figure Description
[0008] Figure 1 This is a schematic diagram of the structure of this utility model;
[0009] Figure 2 This utility model Figure 1 A magnified view of part A in the diagram;
[0010] Figure 3 This utility model Figure 1 A magnified view of part B in the diagram;
[0011] Figure 4 This is a three-dimensional view of the top pressure plate of this utility model.
[0012] In the diagram: 1. Base; 2. Movable groove; 3. Threaded rotating rod one; 4. Threaded sleeve plate; 5. Variable frequency motor one; 6. Support column; 7. Placement groove; 8. Bottom support plate; 9. Auxiliary support plate; 10. Linear optical axis body; 11. Top pressure plate; 12. Connecting rod; 13. Connecting plate; 14. Side end block; 15. Side rod; 16. Top plate; 17. Variable frequency motor two; 18. Main shaft; 19. Concave circular plate; 20. Threaded rotating rod two; 21. Threaded sleeve block; 22. Anti-slip pad; 23. Annular slide groove. Detailed Implementation
[0013] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0014] Please see Figure 1-4 This utility model provides a technical solution: a linear optical axis processing feeding device, including a base 1, a support column 6 provided on one side of the top of the base 1, a placement groove 7 opened near the bottom of the support column 6, a bottom support plate 8 fixedly connected to the bottom of the placement groove 7, a top pressure plate 11 provided on the top of the placement groove 7, and connecting rods 12 fixedly connected to both sides of the top of the top pressure plate 11. The tops of the two connecting rods 12 extend through the outside of the support column 6 and are fixedly connected to connecting plates 13. The top positions of both sides of the support column 6 are fixedly connected to... There is a side end block 14, and a side rod 15 is fixedly connected to the top of the side end block 14. A top plate 16 is fixedly connected to the top of the two side rods 15. A variable frequency motor 17 is fixedly installed on the top of the top plate 16. A main shaft 18 is fixedly connected to the output end of the bottom of the variable frequency motor 17. The bottom of the main shaft 18 extends through to the outside of the top plate 16 and is fixedly connected to a concave circular plate 19. A threaded rotating rod 20 is fixedly connected to the center of the bottom of the concave circular plate 19. The bottom of the threaded rotating rod 20 extends through to the outside of the connecting plate 13 and is rotatably connected to the top of the support column 6.
[0015] A movable groove 2 is provided on one side of the base 1. A threaded rotating rod 3 is rotatably connected inside the movable groove 2. A threaded sleeve 4 is threadedly connected on one side of the threaded rotating rod 3. The top of the threaded sleeve 4 extends through to the outside of the base 1 and is fixedly connected to the bottom of the support column 6.
[0016] A threaded sleeve 21 is fixedly connected to the center of the connecting plate 13. The threaded sleeve 21 is sleeved and threadedly connected to the threaded rotating rod 20.
[0017] An annular groove 23 is provided at the center of the bottom of the top plate 16, and the outer side of the top of the concave circular plate 19 extends into the interior of the annular groove 23 and is slidably connected to the annular groove 23.
[0018] A variable frequency motor 5 is fixedly installed on one side of the base 1. The output end of the variable frequency motor 5 extends through the interior of the movable groove 2 and is fixedly connected to one side of the threaded rotating rod 3.
[0019] An auxiliary support plate 9 is fixedly connected to the other side of the top of the base 1. A linear optical axis body 10 is placed on the top of the auxiliary support plate 9 and the bottom support plate 8. An anti-slip pad 22 is fixedly connected to the center of the bottom of the top pressure plate 11. The bottom of the anti-slip pad 22 is in contact with the top of the linear optical axis body 10.
[0020] Working principle: In the initial state, the linear optical axis body 10 is placed on top of the auxiliary support plate 9 and the bottom support plate 8. At this time, the top pressure plate 11 is located above the placement groove 7, and the anti-slip pad 22 at its bottom maintains a certain distance from the linear optical axis body 10 without applying pressure. When it is necessary to fix the linear optical axis body 10 for processing, the variable frequency motor 17 is started. The variable frequency motor 17 drives the spindle 18 to rotate, which in turn drives the concave circular plate 19 and the threaded rotating rod 20 at its bottom to rotate. Since the threaded rotating rod 20 is threadedly connected to the threaded sleeve 21 at the center of the connecting plate 13, when the threaded rotating rod 20 rotates, it will drive the connecting plate 13 and the connected top pressure plate 11 to move downward until the anti-slip pad 22 is in close contact. The top of the linear optical axis body 10 is pressed down, which achieves a stable fixation of the linear optical axis. After the linear optical axis is pressed down, in order to send it into the processing area, it is necessary to adjust the position of the support column 6 and the linear optical axis body 10 on it. At this time, the variable frequency motor 5 is started, and the variable frequency motor 5 drives the threaded rotating rod 3 to rotate. Since the threaded rotating rod 3 is threadedly connected to the threaded sleeve plate 4, and the top of the threaded sleeve plate 4 is fixedly connected to the bottom of the support column 6, the rotation of the threaded rotating rod 3 will drive the threaded sleeve plate 4 and the support column 6 to move left and right along the movable groove 2. By precisely controlling the rotation direction and speed of the variable frequency motor 5, the precise position adjustment of the support column 6 and the linear optical axis body 10 on it can be achieved, in preparation for the feeding process.
[0021] In summary, this linear optical axis processing feeding device, through the design of the placement groove 7 on the support column 6 and the combined structure of the bottom support plate 8 and the top pressure plate 11, can easily adapt to linear optical axis bodies 10 of different specifications. The top pressure plate 11 is connected to the threaded rotating rod 20 through the connecting rod 12 and the connecting plate 13. When the threaded rotating rod 20 rotates, the connecting plate 13 and the connected top pressure plate 11 will move up and down, thereby achieving the pressing and fixing of linear optical axes of different heights. This design not only simplifies the fixing operation, but also greatly improves the adaptability of the feeding device to linear optical axes of different specifications. The anti-slip pad 22 set at the bottom of the top pressure plate 11 increases the friction between it and the linear optical axis body 10, effectively preventing the linear optical axis from sliding or loosening during processing. Furthermore, the sliding connection design of the concave circular plate 19 and the annular groove 23 at the bottom of the top plate 16 not only ensures the stability of the main shaft 18 and the threaded rotating rod 20 during rotation, but also prevents fixation failure due to vibration, thus enhancing the safety performance of the entire feeding device. The movable groove 2 in the base 1 is equipped with a threaded rotating rod 3, which is threadedly connected to the threaded sleeve plate 4. By driving the threaded rotating rod 3 to rotate through the variable frequency motor 5, the position of the support column 6 and the linear optical shaft body 10 placed on it can be precisely adjusted. At the same time, the threaded connection design of the threaded sleeve block 21 in the center of the connecting plate 13 and the threaded rotating rod 20 allows the pressure of the top pressure plate 11 on the linear optical shaft to be precisely adjusted by rotating the threaded rotating rod 20, ensuring that the fixation is both stable and does not damage the surface of the optical shaft.
[0022] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0023] All electrical components mentioned in this article are connected to an external main controller and 220V AC mains power, and the main controller can be a conventional known device such as a computer that can control it.
[0024] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A linear optical axis machining feeding device, comprising a base (1), characterized in that: A support column (6) is provided on one side of the top of the base (1). A placement groove (7) is provided at the bottom of the support column (6). A bottom support plate (8) is fixedly connected to the bottom of the placement groove (7). A top pressure plate (11) is provided at the top of the placement groove (7). Connecting rods (12) are fixedly connected to both sides of the top of the top pressure plate (11). The tops of the two connecting rods (12) extend to the outside of the support column (6) and are fixedly connected to a connecting plate (13). Side end blocks (14) are fixedly connected to the top of both sides of the support column (6). The top of the side end blocks (14) The top of the two side rods (15) is fixedly connected to the top of the two side rods (15). The top of the top plate (16) is fixedly installed with a variable frequency motor (17). The output end of the bottom of the variable frequency motor (17) is fixedly connected to a main shaft (18). The bottom of the main shaft (18) extends through to the outside of the top plate (16) and is fixedly connected to a concave circular plate (19). The center of the bottom of the concave circular plate (19) is fixedly connected to a threaded rotating rod (20). The bottom of the threaded rotating rod (20) extends through to the outside of the connecting plate (13) and is rotatably connected to the top of the support column (6).
2. The linear optical axis processing feeding device according to claim 1, characterized in that: An movable groove (2) is provided on one side of the base (1). A threaded rotating rod (3) is rotatably connected inside the movable groove (2). A threaded sleeve plate (4) is threadedly connected on one side of the threaded rotating rod (3). The top of the threaded sleeve plate (4) extends through to the outside of the base (1) and is fixedly connected to the bottom of the support column (6).
3. The linear optical axis processing feeding device according to claim 1, characterized in that: The connecting plate (13) is fixedly connected to a threaded sleeve (21) at its center. The threaded sleeve (21) is sleeved and threadedly connected to the threaded rotating rod (20).
4. The linear optical axis processing feeding device according to claim 1, characterized in that: An annular groove (23) is provided at the center of the bottom of the top plate (16), and the outer side of the top of the concave circular plate (19) extends into the interior of the annular groove (23) and is slidably connected to the annular groove (23).
5. The linear optical axis processing feeding device according to claim 1, characterized in that: A variable frequency motor (5) is fixedly installed on one side of the base (1). The output end of the variable frequency motor (5) extends through the interior of the movable groove (2) and is fixedly connected to one side of the threaded rotating rod (3).
6. The linear optical axis processing feeding device according to claim 1, characterized in that: An auxiliary support plate (9) is fixedly connected to the other side of the top of the base (1). A linear optical axis body (10) is placed on the top of the auxiliary support plate (9) and the bottom support plate (8). An anti-slip pad (22) is fixedly connected to the center of the bottom of the top pressure plate (11). The bottom of the anti-slip pad (22) is in contact with the top of the linear optical axis body (10).