Tubular cooling device for glass powder material
By designing a tubular cooling device that includes a base plate, side plates, rectangular plates, and gears, the glass powder material is dispersed by rotation and linear motion, and rapidly cooled by coolant. This solves the problems of dust pollution and long cooling time of traditional cooling devices, and achieves a highly efficient cooling and discharge process.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-18
- Publication Date
- 2026-04-03
AI Technical Summary
Traditional air-cooling devices are prone to causing dust pollution and wasting costs when cooling glass powder materials, while water-cooling devices generally have a lower degree of material dispersion, longer cooling time, and slower material discharge.
A tubular cooling device was designed, comprising a base plate, side plates, rectangular plates, a cooling box, a rotary motor with a brake, a cylinder, an adjusting shaft, and a gear assembly. The device disperses materials through rotation and linear motion, and combines this with rapid cooling by coolant to improve material dispersion and discharge efficiency.
This process effectively disperses the materials, shortens the cooling time, improves cooling efficiency and discharge speed, and enhances the overall working efficiency of the equipment.
Smart Images

Figure CN224080521U_ABST
Abstract
Description
Technical Field
[0001] This utility model is a tubular cooling device for glass powder materials, belonging to the technical field of glass powder material cooling equipment. Background Technology
[0002] Reflective glass beads require cooling in many stages of production, especially in the later stages. When the glass beads have formed into extremely small particles, using traditional air-cooling devices can easily cause dust pollution, which not only pollutes the environment but also wastes resources. Therefore, water cooling is generally used for cooling.
[0003] Patent No. CN215002539U mentions a tubular cooling device for glass powder. It uses a power component to drive the glass powder from the inlet to the outlet of a spiral cooling cylinder. The spiral cooling cylinder is made of a thermally conductive material. A first cooling element cools the upper end of the spiral cooling cylinder, and a second cooling element cools the lower end. The glass powder transfers heat to the spiral cooling cylinder, and the first and second cooling elements cool the upper and lower ends, thus achieving the purpose of cooling the glass powder. Simultaneously cooling the upper and lower ends of the spiral cooling cylinder improves the cooling efficiency. However, this device only moderately disrupts the material, the waiting time for the material to fully cool is too long, and the discharge is not rapid enough. There is an urgent need for a tubular cooling device for glass powder to solve these problems. Utility Model Content
[0004] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide a tubular cooling device for glass powder materials to solve the problems mentioned in the background art. This utility model has a reasonable structure and good practicality. It can fully disperse the material, improve the disorder of the material, and thus shorten the waiting time for the material to cool down fully. Moreover, the material is discharged quickly, which further improves the overall working efficiency of the device.
[0005] To achieve the above objectives, this utility model employs the following technical solution: a tubular cooling device for glass powder materials, comprising a base plate, side plates, and a rectangular plate. A cooling box is installed above the base plate. A flange is bolted to the rear side of the side plate. A rotary motor with a brake is installed behind the flange. A fourth gear is installed on the motor shaft end of the rotary motor with a brake. An adjusting shaft is rotatably mounted through the rear side of the side plate. A third gear is installed at the rear end of the adjusting shaft, and the third gear meshes with the fourth gear. A cylinder is installed below the rectangular plate. A hollow rectangular block is installed on the cylinder shaft end. A circular box is rotatably mounted inside the hollow rectangular block. A second gear is fixedly sleeved on the left end of the circular box. An mounting plate is installed on the upper left end of the hollow rectangular block. A waterproof motor with a brake is installed on the left side of the mounting plate. A first gear is installed on the motor shaft end of the waterproof motor with a brake, and the first gear meshes with the second gear.
[0006] Furthermore, a sealing plug is movably inserted into the left end of the circular box.
[0007] Furthermore, the rectangular plate is connected to the front end of the adjusting shaft.
[0008] Furthermore, an extension plate is installed at the rear end of the base plate, a linear motor is installed above the extension plate, and the side plate is connected to the moving end of the linear motor.
[0009] Furthermore, a liquid outlet pipe is connected to the right side of the cooling tank, and a liquid outlet valve is connected to the right end of the liquid outlet pipe.
[0010] Furthermore, each of the i corners below the base plate is equipped with a column, and each of the columns is equipped with a lockable caster wheel.
[0011] The beneficial effects of this utility model are as follows: The tubular cooling device for glass powder materials of this utility model, due to the addition of a base plate, column, linear motor, cylinder, adjusting shaft, first gear, second gear, third gear, waterproof motor with brake, rotary motor with brake, flange, and sealing plug, has shown through our design improvements and actual use that the device has a reasonable structure, good practicality, can fully disperse the material, improve the material disorder, thereby shortening the waiting time for the material to cool down sufficiently, and the material discharge is rapid, thus further improving the overall working efficiency of the device. Attached Figure Description
[0012] Other features, objects, and advantages of this invention will become more apparent from the following detailed description of non-limiting embodiments with reference to the accompanying drawings:
[0013] Figure 1 This is a three-dimensional schematic diagram of the overall structure of the tubular cooling device for glass powder materials according to the present invention from a first angle.
[0014] Figure 2 This is a two-dimensional schematic diagram of the overall structure of the tubular cooling device for glass powder materials according to the present invention from a second angle.
[0015] Figure 3 This is a three-dimensional schematic diagram of the side plate structure of the tubular cooling device for glass powder materials according to this utility model.
[0016] Figure 4 This is a three-dimensional schematic diagram of the hollow rectangular block structure of the tubular cooling device for glass powder materials according to this utility model.
[0017] In the diagram: 1-Base plate, 2-Column, 3-Lockable caster wheel, 4-Discharge valve, 5-Discharge pipe, 6-Cooling tank, 7-Extension plate, 8-Linear motor, 9-Side plate, 10-Adjusting shaft, 11-Rectangular plate, 12-Cylinder, 13-Mounting plate, 14-Waterproof motor with brake, 15-First gear, 16-Hollow rectangular block, 17-Round box, 18-Sealing plug, 19-Second gear, 20-Third gear, 21-Fourth gear, 22-Rotary motor with brake, 23-Flange. Detailed Implementation
[0018] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.
[0019] Please see Figures 1-4 This utility model provides a technical solution: a tubular cooling device for glass powder, including a base plate 1, a side plate 9, and a rectangular plate 11. A cooling box 6 is installed above the base plate 1. A flange 23 is bolted to the rear side of the side plate 9. A rotary motor 22 with a brake is installed behind the flange 23. A fourth gear 21 is installed on the motor shaft end of the rotary motor 22. An adjusting shaft 10 is rotatably installed through the rear side of the side plate 9. A third gear 20 is installed at the rear end of the adjusting shaft 10. The third gear 20 meshes with the fourth gear 21. A cylinder is installed below the rectangular plate 11. 12. A hollow rectangular block 16 is installed on the shaft end of cylinder 12. A circular box 17 is rotatably installed inside the hollow rectangular block 16. A second gear 19 is fixedly sleeved on the left end of the circular box 17. An installation plate 13 is installed on the upper left end of the hollow rectangular block 16. A waterproof motor 14 with a brake is installed on the left side of the installation plate 13. A first gear 15 is installed on the shaft end of the waterproof motor 14 with a brake. The first gear 15 and the second gear 19 are meshed and connected. This design solves the problems of the original device having a generally poor degree of material disturbance, a long waiting time for the material to cool down sufficiently, and insufficient material discharge speed.
[0020] As the first embodiment of this utility model: a sealing plug 18 is movably inserted into the left end of the circular box 17. By movably inserting the sealing plug 18 into the left end of the circular box 17, it is easy to seal the inside of the circular box 17 and prevent coolant from entering the inside of the circular box 17. The rectangular plate 11 is connected to the front end of the adjusting shaft 10. An extension plate 7 is installed at the rear end of the base plate 1. A linear motor 8 is installed above the extension plate 7. The side plate 9 is connected to the moving end of the linear motor 8. By connecting the side plate 9 to the moving end of the linear motor 8, it is easy for the linear motor 8 to drive the side plate 9 to make reciprocating linear motion, thereby fully dispersing the material inside the circular box 17. A liquid outlet pipe 5 is connected to the right side of the cooling tank 6. A liquid outlet valve 4 is connected to the right end of the liquid outlet pipe 5. The cooperation between the liquid outlet pipe 5 and the liquid outlet valve 4 facilitates the discharge of coolant. Columns 2 are installed at multiple corners below the base plate 1. Lockable universal wheels 3 are installed below the multiple columns 2. The multiple lockable universal wheels 3 can improve the mobility of the device.
[0021] As a second embodiment of this utility model: In use, first move the device to a suitable location, then lock the multiple locking casters 3 in sequence, then connect the device to an external power source, and then start the rotary motor 22 with a brake, which drives the fourth gear 21 to rotate, which in turn drives the third gear 20 to rotate. The third gear 20 drives the adjusting shaft 10 to rotate, thereby driving the circular box 17 to rotate. Adjust the angle of the circular box 17 so that the circular box 17 is in an inclined state, then pull out the sealing plug 18, add material into the circular box 17, and the material falls to the bottom of the circular box 17 under the action of gravity. After adding, reset the sealing plug 18, then adjust the circular box 17 to a horizontal position, and then add coolant into the cooling tank 6. The cylinder 12 is started, which moves the hollow rectangular block 16 downward, immersing the circular box 17 in the coolant. Then, the waterproof motor 14 with a brake is started, and the first gear 15 drives the second gear 19 to rotate, which in turn makes the circular box 17 rotate, thus initially breaking up the material. Next, the linear motor 8 is started, which causes the moving end of the linear motor 8 to drive the side plate 9 to reciprocate linearly, which in turn drives the circular box 17 to reciprocate linearly. Under the action of inertia, the material is more thoroughly broken up, improving the cooling efficiency. After cooling is completed, the moving end of the linear motor 8 is adjusted to the leftmost position, and the angle of the circular box 17 is adjusted so that the sealing plug 18 is offset downward. The sealing plug 18 is then pulled out, and the material is poured into an external receiving container.
[0022] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. It will be apparent to those skilled in the art that this utility model is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or basic characteristics of this utility model. Therefore, the embodiments should be considered exemplary and non-limiting in all respects. The scope of this utility model is defined by the appended claims rather than the foregoing description, and thus all variations falling within the meaning and scope of equivalents of the claims are intended to be included within this utility model. No reference numerals in the claims should be construed as limiting the scope of the claims.
[0023] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. A tubular cooling device for glass powdery material comprising a bottom plate (1), side plates (9) and rectangular plates (11), characterized in that: The bottom plate (1) is provided with a cooling box (6) above, the side plate (9) is provided with a flange plate (23) behind through bolt installation, the flange plate (23) is provided with a rotary motor (22) with brake behind, the rotary motor (22) is provided with a fourth gear (21) on the motor shaft end, the side plate (9) is provided with an adjusting shaft (10) through and rotatably installed behind, the adjusting shaft (10) is provided with a third gear (20) on the rear end, the third gear (20) is meshed with the fourth gear (21). The rectangular plate (11) is provided with a cylinder (12) below, the cylinder (12) is provided with a hollow rectangular block (16) on the shaft end, the hollow rectangular block (16) is rotatably provided with a circular box (17) inside, the circular box (17) is fixedly sleeved with a second gear (19) on the left end, the hollow rectangular block (16) is provided with a mounting plate (13) on the left end above, the mounting plate (13) is provided with a waterproof motor (14) with brake on the left side, the waterproof motor (14) is provided with a first gear (15) on the motor shaft end, the first gear (15) is meshed with the second gear (19).
2. A glass powder material tube cooling device according to claim 1, characterized in that: The circular box (17) is movably inserted with a sealing plug (18) on the left end.
3. The apparatus for tubular cooling of a glass pulverulent mass according to claim 1, characterized in that: The rectangular plate (11) is connected with the adjusting shaft (10) on the front end.
4. The apparatus for tubular cooling of a glass pulverulent mass according to claim 1, characterized in that: The bottom plate (1) is provided with an extension plate (7) on the rear end, the extension plate (7) is provided with a linear motor (8) above, the side plate (9) is connected with the moving end of the linear motor (8).
5. The apparatus for tubular cooling of a glass pulverulent mass according to claim 1, characterized in that: The cooling box (6) is provided with a liquid outlet pipe (5) on the right side, the liquid outlet pipe (5) is provided with a liquid outlet valve (4) on the right end.
6. The apparatus for tubular cooling of a glass pulverulent mass according to claim 1, characterized in that: The bottom plate (1) is provided with a plurality of stand columns (2) on the lower corners, respectively, a plurality of the stand columns (2) are provided with a locking type universal wheel (3) below, respectively.
Citation Information
Patent Citations
Tubular cooling device for glass powder material
CN215002539U