Glass optical filter liquid supply device capable of efficiently and uniformly distributing polishing liquid
By combining components such as a trolley, electric pump, and servo motor, the glass filter liquid supply device can be easily moved and its angle adjusted, solving the problem of uneven spraying in existing devices, improving spraying efficiency and uniformity, and reducing production costs.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-10
- Publication Date
- 2026-04-07
AI Technical Summary
Existing glass filter liquid supply devices are not convenient for easy reciprocating movement for spraying or multi-stage angle adjustment for spraying, which affects the spraying range and uniformity, resulting in low spraying efficiency.
The device employs a combination of components such as a trolley, electric pump, servo motor, synchronous pulley assembly, reciprocating threaded rod, stepper motor, and frequency converter motor to achieve convenient reciprocating movement and multi-level angle adjustment of the glass filter liquid supply device. The servo motor drives the synchronous pulley assembly to move the reciprocating threaded rod, while the stepper motor and frequency converter motor drive the nozzle to adjust the angle, ensuring uniform distribution of the polishing liquid.
It enables convenient reciprocating movement and multi-level angle adjustment of the glass filter liquid supply device, improves the spraying range and uniformity, enhances spraying efficiency, reduces polishing liquid waste and equipment load, and lowers production costs.
Smart Images

Figure CN224088794U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of glass filter liquid supply devices, specifically a glass filter liquid supply device that efficiently and uniformly distributes polishing liquid. Background Technology
[0002] Glass filters are filters made of colored glass. After coloring, they have stable performance and good optical properties. Glass filters have important applications in many fields such as medicine, energy, optical systems, electronic products and instruments, and photographic equipment. In the manufacturing process of glass filters, polishing fluid plays a key role. Polishing fluid removes the tiny protrusions and defects on the surface of the workpiece, making the surface as smooth as a mirror, meeting the requirements of high precision. Polishing fluid can effectively remove impurities and tiny defects on the glass surface, improve the surface flatness and smoothness. By precisely controlling the composition and operating conditions of polishing fluid, the optical performance of the filter, such as transmittance, reflectance, and extinction ratio, can be significantly improved.
[0003] This device ensures that the polishing slurry is evenly distributed on the filter surface by efficiently and uniformly distributing it, thereby avoiding over- or under-polishing in certain areas and improving polishing quality and efficiency. The efficient and uniform distribution of the polishing slurry can minimize waste and reduce production costs. At the same time, uniform distribution also helps to reduce the amount of polishing slurry used, thus mitigating the environmental impact. The uniformly distributed polishing slurry can reduce the workload of the polishing equipment, extend its service life, and reduce maintenance costs. By precisely controlling the supply and distribution of the polishing slurry, production efficiency can be significantly improved, while reducing the scrap rate caused by uneven polishing and increasing the yield rate.
[0004] Existing glass filter liquid supply devices of this type are generally not conducive to convenient reciprocating movement for spraying, nor to convenient multi-stage angle adjustment for spraying, which greatly affects the spraying range and uniformity, and thus the spraying efficiency of the glass filter liquid supply device. Utility Model Content
[0005] The purpose of this invention is to provide a glass filter liquid supply device that provides efficient and uniform distribution of polishing liquid, thereby solving the problems mentioned in the background art, such as the inconvenience of conveniently moving the glass filter liquid supply device back and forth for spraying, and the inconvenience of conveniently adjusting the angle for spraying in multiple stages, which affects the spraying range and uniformity, and thus affects the spraying efficiency of the glass filter liquid supply device.
[0006] To achieve the above objectives, this utility model provides the following technical solution: a glass filter liquid supply device for efficiently and uniformly distributing polishing fluid, comprising a trolley and an electric pump. The electric pump is mounted on the top of the trolley, and a water tank is mounted on the top of the trolley outside the electric pump. A flexible hose is installed at the output end of the electric pump. A U-shaped frame is provided on the outside of the trolley, a longitudinal support is mounted on the side wall of the U-shaped frame, a T-shaped plate is provided on the outside of the longitudinal support, an L-shaped column is provided on the outside of the T-shaped plate, a support block is mounted on the side wall of the L-shaped column, a support column is provided on the outside of the support block, and a nozzle body is provided on the outside of the support column. The end of the hose furthest from the electric pump is connected to the nozzle body. A servo motor is installed at the top of the U-shaped frame. A synchronous pulley assembly is provided on the outside of the U-shaped frame. The output end of the servo motor is connected to the synchronous pulley assembly. A reciprocating threaded rod is movably installed inside the longitudinal support. The reciprocating threaded rod extends through the longitudinal support to its outside. The side of the synchronous pulley assembly furthest from the servo motor is connected to the surface of the reciprocating threaded rod on the outside of the longitudinal support. A reciprocating threaded block is fitted onto the surface of the reciprocating threaded rod inside the longitudinal support. The reciprocating threaded rod and the reciprocating threaded block are threadedly connected. The reciprocating threaded block is connected to the T-shaped plate.
[0007] Preferably, a stepper motor is installed at the top of the T-shaped plate, a second rotating shaft is installed at the output end of the stepper motor, a first pinion is fitted on the surface of the second rotating shaft, and a first bearing seat is movably installed inside the T-shaped plate.
[0008] Preferably, the first bearing housing extends through the T-shaped plate to its outside, and the L-shaped column extends through the first bearing housing to its outside and is movably connected to it. A first large gear is installed at the end of the L-shaped column away from the support block, and the first large gear meshes with the first small gear.
[0009] Preferably, a power motor is installed on the side wall of the support block, and a first rotating shaft is installed at the output end of the power motor.
[0010] Preferably, a second pinion is fitted onto the surface of the first rotating shaft, and a second bearing seat is movably mounted inside the support block.
[0011] Preferably, the second bearing housing extends through the support block to its outside, and the support column extends through the second bearing housing to its outside and is movably connected to it.
[0012] Preferably, a second large gear is fitted onto the surface of the outer support column of the second bearing housing, and the second large gear meshes with the second small gear.
[0013] Preferably, a variable frequency motor is installed at the end of the support column away from the second bearing seat, and the output end of the variable frequency motor is connected to the nozzle body.
[0014] Compared with the prior art, the beneficial effects of this utility model are: the glass filter liquid supply device not only realizes the convenient reciprocating movement of the glass filter liquid supply device for spraying, and facilitates convenient multi-level adjustment of the spraying angle, but also increases the spraying range and spraying uniformity, and improves the spraying efficiency of the glass filter liquid supply device.
[0015] (1) When using a glass filter liquid supply device with high efficiency and uniform distribution of polishing liquid, turn on the electric pump to draw the liquid inside the water tank into the inside of the hose, and then transport the liquid to the nozzle body through the hose. The servo motor drives the synchronous belt pulley assembly to rotate, the synchronous belt pulley assembly drives the reciprocating threaded rod to rotate, the reciprocating threaded rod drives the reciprocating threaded block to move back and forth, and the reciprocating threaded block drives the T-shaped plate, L-shaped column, support block, support column and nozzle body to move back and forth to a certain position for spraying. This realizes the convenient reciprocating movement position of the glass filter liquid supply device for spraying, and improves the uniformity of the liquid sprayed by the glass filter liquid supply device.
[0016] (2) The stepper motor drives the second rotating shaft to rotate, the first small gear drives the first large gear to rotate, the first large gear drives the L-shaped column to rotate, the L-shaped column drives the support block, support column and nozzle body to rotate at a certain angle, the power motor drives the first rotating shaft to rotate, the first rotating shaft drives the second small gear to rotate, the second small gear drives the second large gear to rotate, the second large gear drives the support column to rotate, the support column drives the frequency conversion motor and nozzle body to rotate, the frequency conversion motor drives the nozzle body to rotate, thus realizing convenient multi-level angle adjustment for spraying of the glass filter liquid supply device, increasing the spraying range and spraying uniformity, and improving the spraying efficiency of the glass filter liquid supply device. Attached Figure Description
[0017] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0018] Figure 2 This is a front view structural diagram of the present utility model;
[0019] Figure 3 This is a three-dimensional structural diagram of the U-shaped frame of this utility model;
[0020] Figure 4 This is a three-dimensional structural diagram of the support block of this utility model;
[0021] Figure 5 This is a three-dimensional structural diagram of the T-shaped plate of this utility model;
[0022] Figure 6 This is a three-dimensional structural diagram of the support column of this utility model.
[0023] In the diagram: 1. Trolley; 2. Electric pump; 3. Water tank; 4. Hose; 5. U-shaped frame; 6. Longitudinal support; 7. T-shaped plate; 8. L-shaped column; 9. Support block; 10. Support column; 11. Nozzle body; 12. Servo motor; 13. Synchronous belt pulley assembly; 14. Reciprocating threaded rod; 15. Reciprocating threaded block; 16. First bearing seat; 17. Stepper motor; 18. First pinion; 19. First gear; 20. Power motor; 21. Second pinion; 22. Second bearing seat; 23. Second gear; 24. First rotating shaft; 25. Second rotating shaft; 26. Variable frequency motor. Detailed Implementation
[0024] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the scope of protection of the present utility model.
[0025] Please see Figure 1-6 This utility model provides an embodiment of a glass filter liquid supply device for efficiently and uniformly distributing polishing liquid, comprising a trolley 1 and an electric pump 2. The electric pump 2 is installed at the top of the trolley 1, and a water tank 3 is installed at the top of the trolley 1 outside the electric pump 2. A hose 4 is installed at the output end of the electric pump 2. A U-shaped frame 5 is provided outside the trolley 1, a longitudinal support 6 is installed on the side wall of the U-shaped frame 5, a T-shaped plate 7 is provided outside the longitudinal support 6, an L-shaped column 8 is provided outside the T-shaped plate 7, a support block 9 is installed on the side wall of the L-shaped column 8, a support column 10 is provided outside the support block 9, and a nozzle body 11 is provided outside the support column 10. The hose 4 is located away from the electric pump 2. The end is connected to the nozzle body 11. A servo motor 12 is installed at the top of the U-shaped frame 5. A synchronous pulley assembly 13 is provided on the outside of the U-shaped frame 5. The output end of the servo motor 12 is connected to the synchronous pulley assembly 13. A reciprocating threaded rod 14 is movably installed inside the longitudinal support 6. The reciprocating threaded rod 14 extends through the longitudinal support 6 to its outside. The side of the synchronous pulley assembly 13 away from the servo motor 12 is connected to the surface of the reciprocating threaded rod 14 on the outside of the longitudinal support 6. A reciprocating threaded block 15 is fitted on the surface of the reciprocating threaded rod 14 inside the longitudinal support 6. The reciprocating threaded rod 14 and the reciprocating threaded block 15 are threadedly connected. The reciprocating threaded block 15 is connected to the T-shaped plate 7.
[0026] When using a glass filter liquid supply device with efficient and uniformly distributed polishing fluid, turn on the electric pump 2 to draw the liquid from the water tank 3 into the hose 4. The liquid is then transported to the nozzle body 11 through the hose 4 and sprayed through the nozzle body 11. Turn on the servo motor 12. With the support of the U-shaped frame 5, the servo motor 12 drives the synchronous pulley assembly 13 to rotate. The synchronous pulley assembly 13 drives the reciprocating threaded rod 14 to rotate. With the threaded connection between the reciprocating threaded rod 14 and the reciprocating threaded block 15, the reciprocating threaded rod 14 drives the reciprocating threaded block 15 to move back and forth. The reciprocating threaded block 15 drives the T-shaped plate 7, L-shaped column 8, support block 9, support column 10, and nozzle body 11 to move back and forth to a certain position for spraying. This facilitates convenient reciprocating movement for spraying and improves the uniformity of the liquid sprayed by the glass filter liquid supply device.
[0027] A stepper motor 17 is installed at the top of the T-shaped plate 7. A second rotating shaft 25 is installed at the output end of the stepper motor 17. A first pinion 18 is fitted on the surface of the second rotating shaft 25. A first bearing seat 16 is movably installed inside the T-shaped plate 7.
[0028] The first bearing housing 16 extends through the T-shaped plate 7 to its outside, and the L-shaped column 8 extends through the first bearing housing 16 to its outside and is movably connected to it. The first large gear 19 is installed at the end of the L-shaped column 8 away from the support block 9, and the first large gear 19 meshes with the first small gear 18.
[0029] A power motor 20 is installed on the side wall of the support block 9. A first rotating shaft 24 is installed at the output end of the power motor 20. A second pinion 21 is fitted on the surface of the first rotating shaft 24. A second bearing seat 22 is movably installed inside the support block 9.
[0030] The second bearing housing 22 extends through the support block 9 to its outside, and the support column 10 extends through the second bearing housing 22 to its outside and is movably connected to it. The surface of the support column 10 outside the second bearing housing 22 is fitted with a second large gear 23, which meshes with the second small gear 21.
[0031] A variable frequency motor 26 is installed at the end of the support column 10 away from the second bearing seat 22, and the output end of the variable frequency motor 26 is connected to the nozzle body 11.
[0032] When the nozzle body 11 needs to be angled for spraying, the stepper motor 17 is turned on. Supported by the T-shaped plate 7, the stepper motor 17 drives the second rotating shaft 25 to rotate. The second rotating shaft 25 drives the first pinion 18 to rotate. With the first pinion 18 meshing with the first large gear 19, the first pinion 18 drives the first large gear 19 to rotate. Supported by the first bearing seat 16, the first large gear 19 drives the L-shaped column 8 to rotate. The L-shaped column 8 drives the support block 9, support column 10, and nozzle body 11 to rotate at a certain angle. The power motor 20 is then turned on. Supported by the support block 9, the power motor 20 drives the first rotating shaft 24 to rotate. 4 drives the second small gear 21 to rotate. Under the meshing of the second small gear 21 and the second large gear 23, the second small gear 21 drives the second large gear 23 to rotate. Under the support of the second bearing seat 22, the second large gear 23 drives the support column 10 to rotate. The support column 10 drives the variable frequency motor 26 and the nozzle body 11 to rotate. When the variable frequency motor 26 is turned on, under the support of the support column 10, the variable frequency motor 26 drives the nozzle body 11 to rotate. This facilitates convenient multi-level adjustment of the spray angle, realizes convenient multi-level adjustment of the spray angle of the glass filter liquid supply device, increases the spray range and spray uniformity, and improves the spray efficiency of the glass filter liquid supply device.
[0033] Working principle: When using a glass filter supply device with a high-efficiency and uniformly distributed polishing slurry, the electric pump 2 is turned on, drawing the liquid from the water tank 3 into the hose 4. The liquid is then transported through the hose 4 to the nozzle body 11 for spraying. The servo motor 12 drives the synchronous pulley assembly 13 to rotate, which in turn drives the reciprocating threaded rod 14 to rotate. The reciprocating threaded rod 14 drives the reciprocating threaded block 15 to move back and forth. The reciprocating threaded block 15 then drives the T-shaped plate 7, L-shaped column 8, support block 9, support column 10, and nozzle body 11 to move back and forth to a certain position for spraying. When the nozzle body 11 needs angle adjustment for spraying, the stepper motor 17 drives the second rotating shaft 25 to rotate. The moving shaft 25 drives the first small gear 18 to rotate, the first small gear 18 drives the first large gear 19 to rotate, the first large gear 19 drives the L-shaped column 8 to rotate, the L-shaped column 8 drives the support block 9, the support column 10, and the nozzle body 11 to rotate at a certain angle, the power motor 20 drives the first rotating shaft 24 to rotate, the first rotating shaft 24 drives the second small gear 21 to rotate, the second small gear 21 drives the second large gear 23 to rotate, under the support of the second bearing seat 22, the second large gear 23 drives the support column 10 to rotate, the support column 10 drives the frequency conversion motor 26 and the nozzle body 11 to rotate, the frequency conversion motor 26 drives the nozzle body 11 to rotate, thus completing the operation of the glass filter liquid supply device.
Claims
1. A glass filter liquid supply device for efficiently and uniformly distributing polishing slurry, characterized in that: The device includes a trolley (1) and an electric pump (2). The electric pump (2) is installed on the top of the trolley (1). A water tank (3) is installed on the top of the trolley (1) outside the electric pump (2). A hose (4) is installed at the output end of the electric pump (2). A U-shaped frame (5) is provided on the outside of the trolley (1). A longitudinal support (6) is installed on the side wall of the U-shaped frame (5). A T-shaped plate (7) is provided on the outside of the longitudinal support (6). An L-shaped column (8) is provided on the outside of the T-shaped plate (7). A support block (9) is installed on the side wall of the L-shaped column (8). A support column (10) is provided on the outside of the support block (9). A nozzle body (11) is provided on the outside of the support column (10). The end of the hose (4) away from the electric pump (2) is connected to the nozzle body (11). A servo motor (12) is installed at the top of the U-shaped frame (5). A synchronous pulley assembly (13) is provided on the outside of the U-shaped frame (5). The output end of the servo motor (12) is connected to the synchronous pulley assembly (13). A reciprocating threaded rod (14) is movably installed inside the longitudinal support (6). The reciprocating threaded rod (14) extends through the longitudinal support (6) to its outside. The side of the synchronous pulley assembly (13) away from the servo motor (12) is connected to the surface of the reciprocating threaded rod (14) outside the longitudinal support (6). A reciprocating threaded block (15) is fitted on the surface of the reciprocating threaded rod (14) inside the longitudinal support (6). The reciprocating threaded rod (14) and the reciprocating threaded block (15) are threadedly connected. The reciprocating threaded block (15) is connected to the T-shaped plate (7).
2. The glass filter liquid supply device for high-efficiency and uniform distribution of polishing slurry according to claim 1, characterized in that: A stepper motor (17) is installed at the top of the T-shaped plate (7), and a second rotating shaft (25) is installed at the output end of the stepper motor (17). A first pinion (18) is fitted on the surface of the second rotating shaft (25), and a first bearing seat (16) is movably installed inside the T-shaped plate (7).
3. The glass filter liquid supply device for high-efficiency and uniform distribution of polishing slurry according to claim 2, characterized in that: The first bearing seat (16) extends through the T-shaped plate (7) to its outside, and the L-shaped column (8) extends through the first bearing seat (16) to its outside and is movably connected to it. The first large gear (19) is installed at the end of the L-shaped column (8) away from the support block (9), and the first large gear (19) meshes with the first small gear (18).
4. The glass filter liquid supply device for high-efficiency and uniform distribution of polishing slurry according to claim 1, characterized in that: A power motor (20) is installed on the side wall of the support block (9), and a first rotating shaft (24) is installed at the output end of the power motor (20).
5. The glass filter liquid supply device for efficient and uniform distribution of polishing slurry according to claim 4, characterized in that: The surface of the first rotating shaft (24) is fitted with a second pinion (21), and the support block (9) is movably fitted with a second bearing seat (22).
6. The glass filter liquid supply device for high-efficiency and uniform distribution of polishing slurry according to claim 5, characterized in that: The second bearing housing (22) extends through the support block (9) to its outside, and the support column (10) extends through the second bearing housing (22) to its outside and is movably connected to it.
7. The glass filter liquid supply device for high-efficiency and uniform distribution of polishing slurry according to claim 6, characterized in that: The surface of the outer support column (10) of the second bearing housing (22) is fitted with a second large gear (23), which meshes with the second small gear (21).
8. The glass filter supply device for high-efficiency and uniform distribution of polishing slurry according to claim 1, characterized in that: A variable frequency motor (26) is installed at one end of the support column (10) away from the second bearing seat (22), and the output end of the variable frequency motor (26) is connected to the nozzle body (11).