A storage and transfer device for optical axis processing
Patent Information
- Application Number
- CN202522324080.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-03
- Publication Date
- 2026-08-21
- Estimated Expiration
- 2035-11-03
AI Technical Summary
圆柱体形状的光轴原料可以放置在对应的一组承载杆上,承载杆顶端的限位勾会对原料起到支撑和限位的作用,但是光轴原料暴露在环境中且未得到有效固定,光轴原料容易受外力影响产生滑落,多个光轴原料相互堆积,多个光轴原料之间容易发生磕碰和摩擦
通过第二箱体放置到第一箱体顶部,多个定位块分别置入到多个第一定位槽中,在第二箱体顶部继续增加多个另外的第二箱体,多个定位块分别置入到多个第二定位槽中,实现多个第二箱体的设置安装,第一箱体和多个第二箱体内部分别设置内座,不同的内座分别设置不同孔径的内孔,不同尺寸规格的光轴分别插接到多个内孔中,所有光轴得到有效放置存储,作业人员握住其中一个辅助杆,方便推动或拉动装置整体,多个移动轮发生滚动,装置整体和所有光轴得到移动转移,多个光轴有效固定放置增强防护,相互分隔减少相互影响,分类放置方便管理。
Smart Images

Figure CN224660817U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of optical axis production and processing technology, and in particular to a storage and transfer device for optical axis processing. Background Technology
[0002] Linear optical axes are products that function as sliding bearings, enabling linear motion. They are made from cylindrical raw materials through multiple processes including straightening, heat treatment, and grinding. After initial processing, these linear optical axes typically require further machining. Utility model patent application number CN201620206937.9 discloses a movable multi-raw material mixing and storage rack, comprising a horizontally positioned base and a set of support columns fixed to the base and positioned vertically. Multiple casters are located at the bottom of the base. The support columns are arranged parallel to each other in the same plane. Multiple load-bearing rods are correspondingly arranged on both sides of each support column. These load-bearing rods are parallel to each other and perpendicular to the plane shared by the support columns. A distance is left between the lower end of the load-bearing rod and the base. Adjacent support columns are fixedly connected by connecting rods. Two connecting rods are used between adjacent support columns, and these connecting rods cross and are fixed together. The top ends of each load-bearing rod are bent upwards to form limiting hooks. The cylindrical optical axis material can be placed on a corresponding set of support rods. The limiting hooks at the top of the support rods will support and limit the material. However, the optical axis material is exposed to the environment and is not effectively fixed. The optical axis material is easily affected by external forces and will slip. Multiple optical axis materials will pile up and are prone to collision and friction between them. Utility Model Content
[0003] This invention aims to solve the problems existing in the prior art by providing a storage and transfer device for optical axis processing, which can effectively fix and place multiple optical axes to enhance protection, separate them to reduce mutual influence, and classify them for convenient management.
[0004] The technical solution adopted by this utility model to solve its technical problem is as follows: This storage and transfer device for optical axis processing includes a base plate, a first box, and a second box. The first box is installed on the top of the base plate, and the second box is installed on the top of the first box. There are multiple second boxes. The first box has an inner groove inside, and an inner seat is installed inside the inner groove. The inner seat is made of EPE pearl cotton material, and an inner hole is opened inside the inner hole. Optical axes are inserted into the inner hole. There are multiple inner holes and optical axes. The second box also has an inner seat and multiple optical axes. The bottom of the base plate is provided with moving wheels, and two baffles are fixedly connected to the top of the base plate. The first box is located between the two baffles. The top of the first box has a first positioning groove. The bottom of the second box is fixedly connected with a positioning block, which is placed into the first positioning groove. There are multiple positioning blocks and first positioning grooves. The top of the second box has a second positioning groove. The dimensions are the same as the first positioning slot. There are multiple second positioning slots. An auxiliary rod is fixedly connected to the side of the second housing. The second housing is placed on top of the first housing. Multiple positioning blocks are respectively placed into multiple first positioning slots. Multiple additional second housings are added on top of the second housing. Multiple positioning blocks are respectively placed into multiple second positioning slots to realize the installation of multiple second housings. The first housing and multiple second housings are respectively provided with inner seats. Different inner seats are provided with inner holes of different diameters. Optical shafts of different sizes and specifications are respectively inserted into multiple inner holes. All optical shafts are effectively placed and stored. The operator holds one of the auxiliary rods to push or pull the whole device. Multiple moving wheels roll, and the whole device and all optical shafts are moved and transferred. Multiple optical shafts are effectively fixed and placed to enhance protection. They are separated to reduce mutual interference. Categorized placement facilitates management.
[0005] To further improve the design, an auxiliary rod is installed on each of the left and right sides of the second housing, and an auxiliary rod is also installed on each of the left and right sides of the first housing. The auxiliary rods provide effective force, and the auxiliary rods on both sides of the housing facilitate the operation of workers in different positions.
[0006] Further improvements include the first positioning groove, the positioning block, and the second positioning groove being circular structures. The top of the first positioning groove is provided with a first chamfer, and the second positioning groove is also provided with a first chamfer. The bottom of the positioning block is provided with a second chamfer. The first and second chamfers reduce obstruction and alignment adjustments, allowing the positioning block to quickly reach the inside of the first and second positioning grooves, saving time and improving work efficiency.
[0007] Further improvements include a first rounded corner on the top side of the second housing, a first rounded corner on the bottom side of the second housing, and first rounded corners on the top and bottom of the first housing. A second rounded corner is provided on the side of the auxiliary rod, a third rounded corner is provided on the side of the stop bar, and a third chamfer is provided on the inside of the stop bar. The first, second, and third rounded corners reduce the sharp edges of multiple structures, reducing accidental injuries to workers. The third chamfer reduces obstruction, making it easier for the bottom of the first housing to be quickly inserted between the two stop bars.
[0008] To further improve the design, a fourth chamfer is provided on the side of the inner groove, and a fifth chamfer is provided on the side of the inner hole. The fourth and fifth chamfers reduce obstruction and facilitate the quick insertion of the optical axis into the inner hole, saving manpower and improving work efficiency.
[0009] Further improvements include a first bolt at the bottom of the base plate, a mounting hole at the bottom of the base plate, a threaded groove at the bottom of the first housing, the first bolt passing through the mounting hole and threaded into the threaded groove, a second bolt on the side of the baffle, a first threaded hole inside the baffle, and a fixing groove on the side of the first housing, with the second bolt connecting to the first threaded hole and reaching the fixing groove. There are multiple first bolts, mounting holes, threaded grooves, second bolts, first threaded holes, and fixing grooves. The first housing is fixed using these components to prevent it from detaching from the base plate and to improve its stability.
[0010] To further improve the design, the bottom of the second housing has a connecting hole that connects to the interior of the inner groove. The top of the first housing has a second threaded hole, and a third bolt is installed inside the connecting hole. The third bolt is threadedly connected to the second threaded hole. The top of the second housing also has a third threaded hole. There are multiple connecting holes, second threaded holes, third bolts, and third threaded holes. The second housing is fixed using these connecting holes, second threaded holes, third bolts, and third threaded holes to prevent the multiple second housings from detaching from each other and to prevent the second housing from detaching from the first housing, thereby further improving the overall stability of the device.
[0011] Further improvements include a display board installed on the side of the second housing, with a slot inside the display board for inserting a data card. A display board is also installed on the side of the first housing, with the data card displaying optical axis product information, making it convenient for operators to view and quickly obtain relevant information. The data card can be easily removed from the slot for replacement and setup.
[0012] Further improvements include a display board made of steel, with multiple magnets fixedly connected to the side of the second housing. The back of the display board is attracted to these magnets, and multiple magnets are also connected to the side of the first housing. This makes the display board easy to install and remove, further enhancing its flexibility and versatility.
[0013] The beneficial effects of this utility model are: The second housing is placed on top of the first housing, and multiple positioning blocks are respectively placed into multiple first positioning slots. Multiple additional second housings are added on top of the second housing, and multiple positioning blocks are respectively placed into multiple second positioning slots to realize the installation of multiple second housings. The first housing and multiple second housings are respectively provided with inner seats, and different inner seats are provided with inner holes of different diameters. Optical shafts of different sizes and specifications are respectively inserted into multiple inner holes, and all optical shafts are effectively placed and stored. The operator holds one of the auxiliary rods to easily push or pull the whole device. Multiple moving wheels roll, and the whole device and all optical shafts are moved and transferred. Multiple optical shafts are effectively fixed and placed to enhance protection, separated from each other to reduce mutual interference, and classified placement for easy management.
[0014] The first and second chamfers reduce obstruction and alignment adjustments, allowing the positioning block to quickly reach the first and second positioning slots, saving time and improving work efficiency. The first, second, and third rounded corners reduce sharp edges and corners of multiple structures, reducing accidental injuries to workers. The third chamfer reduces obstruction, facilitating the quick insertion of the bottom of the first housing between the two stop bars. The fourth and fifth chamfers reduce obstruction, facilitating the quick insertion of the optical axis into the inner hole, saving manpower and improving work efficiency.
[0015] The first housing is fixed by first bolts, mounting holes, threaded grooves, second bolts, first threaded holes, and fixing grooves to prevent the first housing from detaching from the base plate and improve the stability of the first housing. The second housing is fixed by connecting holes, second threaded holes, third bolts, and third threaded holes to prevent multiple second housings from detaching from each other and to prevent the second housing from detaching from the first housing, further improving the overall stability of the device.
[0016] The optical axis product information is displayed on the data card, making it convenient for operators to view and quickly obtain relevant information. The data card can be easily removed from the slot for replacement and settings. The display board is easy to install and remove, further improving flexibility and versatility. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the structure of this utility model; Figure 2 For the present utility model Figure 1 Enlarged view of point A in the middle; Figure 3 For the present utility model Figure 1 Enlarged view at point B in the middle; Figure 4 This is a diagram showing the first movable part of the third bolt of this utility model; Figure 5 This is a diagram showing the second movable part of the third bolt of this utility model; Figure 6 This is a right view of the structure of this utility model; Figure 7 For the present utility model Figure 6 Enlarged view at point C; Figure 8 This is a diagram showing the movement of the second bolt of this utility model; Figure 9 This is a diagram showing the movement of the first bolt of this utility model; Figure 10 This is a top view of the first housing of this utility model; Figure 11 This is a front view of the second housing of this utility model.
[0018] Explanation of reference numerals in the attached drawings: 1. Base plate; 2. First housing; 3. Second housing; 4. Inner groove; 5. Inner seat; 6. Inner hole; 7. Optical axis; 8. Moving wheel; 9. Stop bar; 10. First positioning groove; 11. Positioning block; 12. Second positioning groove; 13. Auxiliary rod; 14. First chamfer; 15. Second chamfer; 16. First rounded corner; 17. Second rounded corner; 18. Third rounded corner; 19. Third chamfer; 20. Fourth chamfer; 21. Fifth chamfer; 22. First bolt; 23. Mounting hole; 24. Threaded groove; 25. Second bolt; 26. First threaded hole; 27. Fixing groove; 28. Connecting hole; 29. Second threaded hole; 30. Third bolt; 31. Third threaded hole; 32. Display board; 33. Slot; 34. Data card; 35. Magnet block. Detailed Implementation
[0019] The following is in conjunction with the appendix Figure 1-11 Further explanation of this embodiment: like Figure 1 , Figure 2 , Figure 3 , Figure 6 , Figure 7 , Figure 8 , Figure 10 and Figure 11As shown: This embodiment discloses a storage and transfer device for optical axis processing, including a base plate 1, a first box 2, and a second box 3. The first box 2 is installed on top of the base plate 1, and the second box 3 is installed on top of the first box 2. There are multiple second boxes 3. The first box 2 has an inner groove 4 inside, and an inner seat 5 is installed inside the inner groove 4. The inner seat 5 is made of EPE pearl cotton material, and an inner hole 6 is opened inside the inner hole 6. An optical axis 7 is inserted into the inner hole 6. There are multiple inner holes 6 and optical axes 7. The second box 3 also has an inner seat 5 and multiple optical axes 7. The bottom of the base plate 1 is provided with casters 8, and the top of the base plate 1 is fixedly connected with a baffle 9. The baffle 9 has There are two boxes. The first box 2 is located between two baffles 9. The top of the first box 2 has a first positioning groove 10. The bottom of the second box 3 is fixedly connected to a positioning block 11. The positioning block 11 is inserted into the first positioning groove 10. There are multiple positioning blocks 11 and first positioning grooves 10. The top of the second box 3 has a second positioning groove 12. The size of the second positioning groove 12 is the same as that of the first positioning groove 10. There are multiple second positioning grooves 12. The side of the second box 3 is fixedly connected to an auxiliary rod 13. An auxiliary rod 13 is set on each of the left and right sides of the second box 3. An auxiliary rod 13 is also set on each of the left and right sides of the first box 2.
[0020] like Figure 2 , Figure 3 , Figure 7 , Figure 8 , Figure 10 and Figure 11 As shown: the first positioning groove 10, the positioning block 11 and the second positioning groove 12 are circular structures. The top of the first positioning groove 10 is provided with a first chamfer 14, the second positioning groove 12 is also provided with a first chamfer 14, the bottom of the positioning block 11 is provided with a second chamfer 15, the top side of the second housing 3 is provided with a first rounded corner 16, the bottom side of the second housing 3 is also provided with a first rounded corner 16, the top and bottom of the first housing 2 are also provided with a first rounded corner 16, the side of the auxiliary rod 13 is provided with a second rounded corner 17, the side of the baffle 9 is provided with a third rounded corner 18, the inner side of the baffle 9 is provided with a third chamfer 19, the side of the inner groove 4 is provided with a fourth chamfer 20, and the side of the inner hole 6 is provided with a fifth chamfer 21.
[0021] like Figure 2 , Figure 4 , Figure 5 , Figure 6 , Figure 7 , Figure 8 , Figure 9 and Figure 10As shown: A first bolt 22 is provided at the bottom of the base plate 1, and a mounting hole 23 is provided at the bottom of the base plate 1. A threaded groove 24 is provided at the bottom of the first housing 2. The first bolt 22 passes through the mounting hole 23 and is threaded into the threaded groove 24. A second bolt 25 is provided on the side of the baffle 9, and a first threaded hole 26 is provided inside the baffle 9. A fixing groove 27 is provided on the side of the first housing 2. The second bolt 25 is connected to the first threaded hole 26 and reaches into the fixing groove 27. There are multiple first bolts 22, mounting holes 23, threaded grooves 24, second bolts 25, first threaded holes 26, and fixing grooves 27. A connecting hole 28 is provided at the bottom of the second housing 3, and the connecting hole 28 connects to the inside of the inner groove 4. A second threaded hole 29 is provided at the top of the first housing 2. A third bolt 30 is provided inside the connecting hole 28 and is threaded into the second threaded hole 29. A third threaded hole 31 is provided at the top of the second housing 3. There are multiple connecting holes 28, second threaded holes 29, third bolts 30, and third threaded holes 31.
[0022] like Figure 1 , Figure 3 , Figure 6 , Figure 10 and Figure 11 As shown: A display board 32 is installed on the side of the second box 3. The display board 32 has a slot 33 inside, and a data card 34 is inserted into the slot 33. A display board 32 is also installed on the side of the first box 2. The display board 32 is made of steel metal material. A magnet block 35 is fixedly connected to the side of the second box 3. There are multiple magnet blocks 35. The back of the display board 32 is attracted to the multiple magnet blocks 35. Multiple magnet blocks 35 are also connected to the side of the first box 2.
[0023] In use, the operator holds the auxiliary rod 13 on the side of the first housing 2 and moves it. The first housing 2 is placed on top of the base plate 1, between the two retaining bars 9. Multiple first bolts 22 and multiple second bolts 25 are then obtained. The first bolts 22 pass through the mounting holes 23 and are threaded into the threaded grooves 24. The second bolts 25 connect to the first threaded holes 26 and reach the fixing grooves 27. All the first bolts 22 and second bolts 25 are tightened, and the first housing 2 is installed and further... To fix the second housing 3, the operator holds the auxiliary rod 13 on the side and places the second housing 3 on top of the first housing 2. Multiple positioning blocks 11 are respectively inserted into multiple first positioning slots 10. Multiple additional second housings 3 are added on top of the first housing 3, with multiple positioning blocks 11 respectively inserted into multiple second positioning slots 12, thus completing the installation of multiple second housings 3. Multiple third bolts 30 are then obtained. The third bolts 30 pass through the connecting hole 28 and connect to the inside of the second threaded hole 29. Tighten all third bolts 30 inside the third threaded hole 31 to prevent the multiple second housings 3 from detaching from each other and to prevent the second housings 3 from detaching from the first housing 2, thereby further improving the overall stability of the device. The first housing 2 and the multiple second housings 3 are respectively provided with inner seats 5, and different inner seats 5 are respectively provided with inner holes 6 of different diameters. Optical shafts 7 of different sizes and specifications are respectively inserted into the multiple inner holes 6, and all optical shafts 7 are effectively placed and stored. Insert the data card 34 of the corresponding optical shaft 7 product information into the slot 33 of the display plate 32, and place the corresponding display plate 32 close to the side of the first housing 2 or the second housing 3. The back of the display plate 32 is attracted to the multiple magnets 35, and the display plate 32 is quickly installed. Refer to this operation to set up and install multiple data cards 34 and multiple display plates 32. The operator holds one of the auxiliary rods 13 to push or pull the whole device. Multiple moving wheels 8 roll, and the whole device and all optical shafts 7 are moved and transferred. Multiple optical shafts 7 are effectively fixed and placed to enhance protection, separated from each other to reduce mutual influence, and classified placement for easy management.
[0024] Although the present invention has been illustrated and described with reference to preferred embodiments, those skilled in the art should understand that various changes in form and detail are possible within the scope of the claims.
Claims
1. A storage and transfer device for optical axis processing, comprising a base plate (1), a first housing (2), and a second housing (3), characterized in that: The first box (2) is installed on the top of the base plate (1), and the second box (3) is installed on the top of the first box (2). There are multiple second boxes (3). The first box (2) has an inner groove (4) inside, and an inner seat (5) is installed inside the inner groove (4). The inner seat (5) is made of EPE pearl cotton material. An inner hole (6) is opened inside the inner seat (5). An optical axis (7) is inserted into the inner hole (6). There are multiple inner holes (6) and optical axes (7). The second box (3) is also provided with an inner seat (5) and multiple optical axes (7). The bottom of the base plate (1) is provided with a moving wheel (8), and a baffle is fixedly connected to the top of the base plate (1). (9) There are two baffles (9). The first box (2) is between the two baffles (9). The top of the first box (2) is provided with a first positioning groove (10). The bottom of the second box (3) is fixedly connected with a positioning block (11). The positioning block (11) is placed inside the first positioning groove (10). There are multiple positioning blocks (11) and the first positioning groove (10). The top of the second box (3) is provided with a second positioning groove (12). The size of the second positioning groove (12) is the same as the size of the first positioning groove (10). There are multiple second positioning grooves (12). The side of the second box (3) is fixedly connected with an auxiliary rod (13).
2. The storage and transfer device for optical axis processing according to claim 1, characterized in that: An auxiliary rod (13) is provided on the left and right sides of the second box (3), and an auxiliary rod (13) is also provided on the left and right sides of the first box (2).
3. The storage and transfer device for optical axis processing according to claim 1, characterized in that: The first positioning groove (10), the positioning block (11), and the second positioning groove (12) are circular structures. The top of the first positioning groove (10) is provided with a first chamfer (14), the second positioning groove (12) is also provided with a first chamfer (14), and the bottom of the positioning block (11) is provided with a second chamfer (15).
4. The storage and transfer device for optical axis processing according to claim 1, characterized in that: The second box (3) has a first rounded corner (16) on the top side, and the second box (3) also has a first rounded corner (16) on the bottom side. The first box (2) also has a first rounded corner (16) on the top and bottom. The auxiliary rod (13) has a second rounded corner (17) on the side, the baffle (9) has a third rounded corner (18) on the side, and the baffle (9) has a third chamfer (19) on the inside side.
5. The storage and transfer device for optical axis processing according to claim 1, characterized in that: The inner groove (4) has a fourth chamfer (20) on its side and the inner hole (6) has a fifth chamfer (21) on its side.
6. The storage and transfer device for optical axis processing according to claim 1, characterized in that: The bottom of the base plate (1) is provided with a first bolt (22), and the bottom of the base plate (1) is provided with an installation hole (23). The bottom of the first housing (2) is provided with a threaded groove (24). The first bolt (22) passes through the installation hole (23) and is threaded into the inside of the threaded groove (24). The side of the baffle (9) is provided with a second bolt (25). The inside of the baffle (9) is provided with a first threaded hole (26). The side of the first housing (2) is provided with a fixing groove (27). The second bolt (25) is connected to the first threaded hole (26) and reaches the inside of the fixing groove (27). There are multiple first bolts (22), installation holes (23), threaded grooves (24), second bolts (25), first threaded holes (26) and fixing grooves (27).
7. The storage and transfer device for optical axis processing according to claim 1, characterized in that: The second box (3) has a connecting hole (28) at the bottom, which connects to the inside of the inner groove (4). The first box (2) has a second threaded hole (29) at the top. A third bolt (30) is installed inside the connecting hole (28). The third bolt (30) is threadedly connected to the second threaded hole (29). The second box (3) has a third threaded hole (31) at the top. There are multiple connecting holes (28), second threaded holes (29), third bolts (30) and third threaded holes (31).
8. The storage and transfer device for optical axis processing according to claim 1, characterized in that: The second box (3) has a display board (32) installed on its side. The display board (32) has a slot (33) inside. A data card (34) is inserted into the slot (33). The first box (2) also has a display board (32) installed on its side.
9. A storage and transfer device for optical axis processing according to claim 8, characterized in that: The display board (32) is made of steel metal material. The second box (3) is fixedly connected to a magnet (35) on the side. There are multiple magnets (35). The back of the display board (32) is attracted to multiple magnets (35). Multiple magnets (35) are also connected to the side of the first box (2).
Citation Information
Patent Citations
Movable many raw materialss mix stores frame
CN205568351U