Circulating silica gel drying device for air drying in hollow glass bead production
By designing a flexible and detachable silica gel drying plate replacement structure and a hot air blower circulation component, the problem of inconvenient replacement of silica gel drying plates is solved, and the practicality and drying efficiency of the hollow glass microbead production device are improved.
Patent Information
- Application Number
- CN202422758175.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-12
- Publication Date
- 2025-09-09
- Estimated Expiration
- 2034-11-12
AI Technical Summary
In the existing circulating silica gel drying device for air drying in the production of hollow glass microspheres, the silica gel drying plates are fixed with bolts, which makes replacement inconvenient. If they are not replaced for a long time, the use effect is reduced, which reduces the practicality of the device.
A flexible and disassembled silica gel drying plate replacement structure was designed. By pulling the pulling block to drive the pull rod, rotating block, slider and other components, the silica gel drying plate can be quickly replaced. A hot air blower and circulation component are used to dry the hollow glass microbeads.
The rapid replacement of silica gel drying plates is achieved, which improves the practicality and drying efficiency of the device and ensures the efficient drying effect of hollow glass microspheres.
Smart Images

Figure CN223319457U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of hollow glass microsphere production, in particular to a circulating silica gel drying device for air drying in the production of hollow glass microspheres. Background Art
[0002] Hollow glass microspheres are a new type of lightweight material with multiple excellent properties. Their unique physical and chemical properties give them wide application potential in multiple industrial fields. Due to the special composition of hollow glass microspheres during production, they easily absorb moisture from the air, so they need to be dried multiple times during production.
[0003] In today's circulating silica gel drying devices for air drying of hollow glass microspheres, most silica gel drying plates are fixed with bolts, which makes replacement inconvenient. If the silica gel drying plates are not replaced for a long time, the effect will be reduced, thereby reducing the practicality of the device.
[0004] Therefore, for the existing circulating silica gel drying device for air drying of hollow glass microsphere production, most of the silica gel drying plates are fixed with bolts, which is inconvenient to replace. If the silica gel drying plates are not replaced for a long time, the use effect will be reduced, thereby reducing the practicality of the device. A circulating silica gel drying device for air drying of hollow glass microsphere production can be designed. Through flexible disassembly and assembly, the silica gel drying plates can be quickly replaced when they need to be replaced, thereby solving the problem that most of the silica gel drying plates are fixed with bolts, which is inconvenient to replace. If the silica gel drying plates are not replaced for a long time, the use effect will be reduced, thereby reducing the practicality of the device. Utility Model Content
[0005] In view of the shortcomings of the existing technology, the purpose of the present invention is to provide a circulating silica gel drying device for air drying of hollow glass microspheres. The circulating silica gel drying device for air drying of hollow glass microspheres is intended to solve the technical problem that most silica gel drying plates in the existing technology are fixed with bolts, which is inconvenient to replace. If the silica gel drying plates are not replaced for a long time, the use effect will be reduced, thereby reducing the practicality of the device.
[0006] The technical solution of the utility model is: a circulating silica gel drying device for air drying of hollow glass microbead production, comprising a box body, a support column, a first feed port, a first slide groove, a fixed frame, a silica gel drying plate, a fixed column, a slider, a rotating block, a pull rod, a card block, a second slide groove, a spring, a pulling block, a connecting rod, a pressure block, a guide groove, a drying group and a circulation component; a support column is provided at the lower end of the box body, and a first feed port is provided on one side of the box body; a first slide groove is provided inside the box body, a fixed frame is provided inside the first slide groove, a silica gel drying plate is provided inside the fixed frame, a fixed column is provided on one side of the box body, a slider is provided inside the fixed column, a rotating block is provided inside the slider, a pull rod is provided at the upper end of the rotating block, a card block is provided inside the pull rod, a second slide groove is provided inside the fixed column, a spring is provided at the upper end of the slider, a connecting rod is provided on one side of the slider, a pressure block is provided on one side of the connecting rod, a guide groove is provided on one side of the fixed column, and a drying component is provided on one side of the box body; a circulation component is provided on one side of the box body.
[0007] Preferably, by pulling the pulling block, the pulling block drives the pulling rod, the pulling rod drives the rotating block, the rotating block drives the slider, the slider drives the connecting rod, the connecting rod drives the pressure block to move, the connecting rod slides along the inner side of the guide groove, the connecting rod drives the slider to rotate with the rotating block as the axis, the pulling rod drives the card block to slide out through the second slide groove, and then rotates the pulling block to make the card block rotate. When the hand is released, the card block is stuck on the surface of the fixed column, and then the silica gel drying plate is pulled out for replacement. After the replacement is completed, the pulling block is rotated to make the card block slide into the fixed column. At this time, the spring loses pressure to drive the slider to move, the slider drives the connecting rod, and the connecting rod drives the pressure block to press the fixed frame, thereby realizing quick replacement.
[0008] Preferably, the sliding block is rotatably connected to the rotating block, the connecting rod is located inside the guide groove, and the connecting rod is slidably connected to the guide groove.
[0009] Preferably, the drying component includes a hot air blower and an air blowing pipe; the hot air blower is provided on one side of the box body, and the air blowing pipe is provided on one side of the hot air blower.
[0010] Preferably, the drying component further includes an air supply pipe and an air suction hood; an air supply pipe is provided at the upper end of the hot air blower, and an air suction hood is provided on one side of the air supply pipe.
[0011] Preferably, the circulation component includes a circulation box, a first motor, a first rotating shaft and a spiral blade; a circulation box is provided on one side of the box body, a first motor is provided at the upper end of the circulation box, a first rotating shaft is provided at the output end of the first motor, and a spiral blade is provided on the outside of the first rotating shaft.
[0012] Preferably, the circulation component also includes a second feed port, a second discharge port, a first guide plate, a second guide plate and a first discharge port; a second feed port is opened on the inside of the box body, a second discharge port is opened on the inside of the box body, a first guide plate is provided on the inside of the box body, a second guide plate is provided on the inside of the box body, and a first discharge port is provided on one side of the second guide plate.
[0013] Preferably, the circulation component also includes a second motor, a second rotating shaft and a material separation plate; the second motor is provided on one side of the box body, the second rotating shaft is provided at the output end of the second motor, and the material separation plate is provided on the outside of the second rotating shaft.
[0014] Beneficial effects of the utility model:
[0015] 1. Compared with the traditional circulating silica gel drying device for air drying in the production of hollow glass microspheres, most silica gel drying plates are fixed with bolts, which is inconvenient to replace. If the silica gel drying plates are not replaced for a long time, the use effect will be reduced, thereby reducing the practicality of the device. This device uses flexible disassembly and assembly to quickly replace the silica gel drying plates when they need to be replaced, thereby solving the problem that most silica gel drying plates are fixed with bolts, which is inconvenient to replace. If the silica gel drying plates are not replaced for a long time, the use effect will be reduced, thereby reducing the practicality of the device. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 Shown is a schematic diagram of the three-dimensional structure of a circulating silica gel drying device for air drying in the production of hollow glass microspheres of the present invention;
[0017] Figure 2 Shown is a schematic diagram of the three-dimensional structure of the fixed components of the circulating silica gel drying device for air drying of hollow glass microsphere production of the present invention;
[0018] Figure 3 Shown is a schematic cross-sectional view of the fixed components of the circulating silica gel drying device for air drying of hollow glass microsphere production according to the present invention;
[0019] Figure 4 Shown is a schematic diagram of the three-dimensional structure of the drying component of the circulating silica gel drying device for air drying in the production of hollow glass microspheres of the present invention;
[0020] Figure 5 Shown is a schematic diagram of the cross-sectional structure of the circulation components of the circulating silica gel drying device for air drying in the production of hollow glass microspheres of the present invention.
[0021] Explanation of reference numerals: 1. housing; 2. support column; 301. first chute; 302. fixing frame; 303. silica gel drying plate; 304. fixing column; 305. slider; 306. rotating block; 307. pull rod; 308. clamping block; 309. second chute; 310. spring; 311. pulling block; 312. connecting rod; 313. pressing block; 314. guide groove; 401. hot air blower; 402 , air supply pipe; 403, suction hood; 404, air blowing pipe; 501, circulation box; 502, first motor; 503, first rotating shaft; 504, spiral blade; 505, second feed port; 506, second discharge port; 507, first guide plate; 508, second motor; 509, second rotating shaft; 510, dividing plate; 511, second guide plate; 512, first discharge port; 6, first feed port. DETAILED DESCRIPTION
[0022] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0023] See also Figure 1-Figure 3 、 Figure 5 , The utility model provides an embodiment: a circulating silica gel drying device for air drying of hollow glass microspheres production, including a box body 1, a support column 2, a first feed port 6, a first chute 301, a fixed frame 302, a silica gel drying plate 303, a fixed column 304, a slider 305, a rotating block 306, a pull rod 307, a clamping block 308, a second chute 309, a spring 310, a pulling block 311, a connecting rod 312, a pressing block 313, a guide groove 314, a drying group and a circulation component; the lower end of the box body 1 is provided with a support column 2, and one side of the box body 1 is provided with a first feed port 6; the inside of the box body 1 is provided with a first chute 301, the inside of the first chute 301 is provided with a fixed frame 302, and the inside of the fixed frame 302 is provided with a silica gel drying plate 303, the box A fixed column 304 is provided on one side of the body 1, a slider 305 is provided on the inner side of the fixed column 304, a rotating block 306 is provided on the inner side of the slider 305, a pull rod 307 is provided on the upper end of the rotating block 306, a clamping block 308 is provided on the inner side of the pull rod 307, a second sliding groove 309 is provided on the inner side of the fixed column 304, a spring 310 is provided on the upper end of the slider 305, a connecting rod 312 is provided on one side of the slider 305, a pressure block 313 is provided on one side of the connecting rod 312, a guide groove 314 is provided on one side of the fixed column 304, and a drying component is provided on one side of the box body 1; a circulation component is provided on one side of the box body 1, the slider 305 is rotatably connected to the rotating block 306, the connecting rod 312 is located on the inner side of the guide groove 314, and the connecting rod 312 is slidably connected to the guide groove 314.
[0024] See also Figure 4In this embodiment, the drying component includes a hot air blower 401 and an air blowing pipe 404; the hot air blower 401 is provided on one side of the box body 1, and the air blowing pipe 404 is provided on one side of the hot air blower 401. The drying component also includes an air supply pipe 402 and an air suction hood 403; the air supply pipe 402 is provided on the upper end of the hot air blower 401, and the air suction hood 403 is provided on one side of the air supply pipe 402. By starting the hot air blower 401, the hot air blower 401 blows hot air into the box body 1 through the air blowing pipe 404 to dry the hollow glass beads. The moisture rises with the air, and the moisture in the air is absorbed by the silica gel drying plate 303, and the dry air is discharged into the hot air blower 401 again through the air supply pipe 402.
[0025] See also Figure 5 , in this embodiment, the circulation component includes a circulation box 501, a first motor 502, a first rotating shaft 503 and a spiral blade 504; a circulation box 501 is provided on one side of the box body 1, and the first motor 502 is provided on the upper end of the circulation box 501, and the first rotating shaft 503 is provided on the output end of the first motor 502, and a spiral blade 504 is provided on the outside of the first rotating shaft 503, and the circulation component also includes a second feed port 505, a second discharge port 506, a first guide plate 507, a second guide plate 511 and a first discharge port 512; a second feed port 505 is provided on the inside of the box body 1, a second discharge port 506 is provided on the inside of the box body 1, a first guide plate 507 is provided on the inside of the box body 1, a second guide plate 511 is provided on the inside of the box body 1, and a first discharge port 512 is provided on one side of the second guide plate 511, and the circulation component also includes a second motor 508, a second rotating shaft 509 and a dividing plate 510; box A second motor 508 is provided on one side of the body 1, and a second rotating shaft 509 is provided at the output end of the second motor 508. A dividing plate 510 is provided on the outside of the second rotating shaft 509. The hollow glass beads enter the circulation box 501 from the second feed port 505 through the first guide plate 507, and the first motor 502 is started. The first motor 502 drives the first rotating shaft 503, and the first rotating shaft 503 rotates on the moving spiral blade 504, so that the hollow glass beads rise, and are discharged into the box body 1 through the second discharge port 506 to realize circulation. After the hollow glass beads are dried, the second motor 508 is started, and the second motor 508 drives the second rotating shaft 509. The second rotating shaft 509 drives the dividing plate 510 to rotate above the first guide plate 507. The hollow glass beads falling from the second discharge port 506 pass through the dividing plate 510, enter the second guide plate 511, and are discharged through the first discharge port 512.
[0026] When replacing the silica gel drying plate 303, by pulling the pulling block 311, the pulling block 311 drives the pulling rod 307, the pulling rod 307 drives the rotating block 306, the rotating block 306 drives the slider 305, the slider 305 drives the connecting rod 312, the connecting rod 312 drives the pressing block 313 to move, the connecting rod 312 slides along the inner side of the guide groove 314, the connecting rod 312 drives the slider 305 to rotate with the rotating block 306 as the axis, and the pulling rod 307 drives the blocking block 308 through the second The slide slot 309 slides out, and the pulling block 311 is rotated to rotate the card block 308. When the card block 308 is released, it is stuck on the surface of the fixed column 304. Then the silica gel drying plate 303 is pulled out for replacement. After the replacement is completed, the pulling block 311 is rotated to make the card block 308 slide into the fixed column 304. At this time, the spring 310 loses pressure and drives the slider 305 to move. The slider 305 drives the connecting rod 312, and the connecting rod 312 drives the pressing block 313 to press the fixing frame 302 for fixation.
[0027] During the drying process, the hollow glass beads are poured into the box body 1 through the first feed port 6, and the hollow glass beads are allowed to enter the circulation box 501 from the second feed port 505 through the first guide plate 507. The first motor 502 is started, and the first motor 502 drives the first rotating shaft 503. The first rotating shaft 503 rotates on the moving spiral blade 504 to make the hollow glass beads rise, and the hollow glass beads are discharged into the box body 1 through the second discharge port 506. By starting the hot air blower 401, the hot air blower 401 blows hot air to the box body 1 through the blowing pipe 404, and the hollow glass beads are dried. The microbeads are blown dry, and the moisture rises with the air. The moisture in the air is absorbed by the silica gel drying plate 303, and the dry air is discharged into the hot air blower 401 again through the air pipe 402 to achieve circulation. After the hollow glass microbeads are dried, the second motor 508 is started, and the second motor 508 drives the second rotating shaft 509, and the second rotating shaft 509 drives the dividing plate 510 to rotate above the first guide plate 507. The hollow glass microbeads falling from the second discharge port 506 pass through the dividing plate 510, enter the second guide plate 511, and are then discharged through the first discharge port 512.
[0028] Through the above steps, by pulling the pulling block 311, the pulling block 311 drives the pulling rod 307, the pulling rod 307 drives the rotating block 306, the rotating block 306 drives the slider 305, the slider 305 drives the connecting rod 312, the connecting rod 312 drives the pressing block 313 to move, the connecting rod 312 slides along the inner side of the guide groove 314, the connecting rod 312 drives the slider 305 to rotate with the rotating block 306 as the axis, and the pulling rod 307 drives the card block 308 through the second sliding groove 309 Slide it out, rotate the pulling block 311 to rotate the card block 308, let go of the card block 308 at this time, it is stuck on the surface of the fixed column 304, and then pull out the silica gel drying plate 303 for replacement. After the replacement is completed, rotate the pulling block 311 to make the card block 308 slide into the fixed column 304. At this time, the spring 310 loses pressure and drives the slider 305 to move, the slider 305 drives the connecting rod 312, and the connecting rod 312 drives the pressure block 313 to press the fixing frame 302, so as to achieve quick replacement.
[0029] The embodiments of the present invention are described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Various changes can be made within the scope of knowledge possessed by those skilled in the art without departing from the purpose of the present invention.
Claims
1. A circulating silica gel drying device for air drying of hollow glass microspheres, comprising a housing (1), a support column (2), and a first feed port (6); characterized in that: The box body (1) further comprises a first chute (301), a fixing frame (302), a silica gel drying plate (303), a fixing column (304), a slider (305), a rotating block (306), a pull rod (307), a clamping block (308), a second chute (309), a spring (310), a pulling block (311), a connecting rod (312), a pressing block (313), a guide groove (314), a drying group and a circulation component; a support column (2) is provided at the lower end of the box body (1), and a first feed port (6) is provided on one side of the box body (1); a first chute (301) is provided on the inner side of the box body (1), a fixing frame (302) is provided on the inner side of the first chute (301), and a silica gel drying plate (303) is provided on the inner side of the fixing frame (302) A fixed column (304) is provided on one side of the box body (1), a slider (305) is provided on the inner side of the fixed column (304), a rotating block (306) is provided on the inner side of the slider (305), a pull rod (307) is provided on the upper end of the rotating block (306), a clamping block (308) is provided on the inner side of the pull rod (307), a second sliding groove (309) is provided on the inner side of the fixed column (304), a spring (310) is provided on the upper end of the slider (305), a connecting rod (312) is provided on one side of the slider (305), a pressing block (313) is provided on one side of the connecting rod (312), a guide groove (314) is provided on one side of the fixed column (304), a drying component is provided on one side of the box body (1); and a circulation component is provided on one side of the box body (1).
2. The circulating silica gel drying device for air drying of hollow glass microspheres according to claim 1, characterized in that: The slider (305) is rotatably connected to the rotating block (306), the connecting rod (312) is located inside the guide groove (314), and the connecting rod (312) is slidably connected to the guide groove (314).
3. The circulating silica gel drying device for air drying of hollow glass microspheres according to claim 1, characterized in that: The drying component comprises a hot air blower (401) and an air blowing pipe (404); the hot air blower (401) is arranged on one side of the box body (1), and the air blowing pipe (404) is arranged on one side of the hot air blower (401).
4. The circulating silica gel drying device for air drying of hollow glass microspheres according to claim 3, characterized in that: The drying component further comprises an air supply pipe (402) and an air suction hood (403); the air supply pipe (402) is provided at the upper end of the hot air blower (401), and the air suction hood (403) is provided on one side of the air supply pipe (402).
5. The circulating silica gel drying device for air drying of hollow glass microspheres according to claim 1, characterized in that: The circulation component comprises a circulation box (501), a first motor (502), a first rotating shaft (503) and a spiral blade (504); the circulation box (501) is arranged on one side of the box body (1); the first motor (502) is arranged on the upper end of the circulation box (501); the first rotating shaft (503) is arranged on the output end of the first motor (502); and the spiral blade (504) is arranged on the outer side of the first rotating shaft (503).
6. The circulating silica gel drying device for air drying in the production of hollow glass microspheres according to claim 5, characterized in that: The circulation component further comprises a second feed port (505), a second discharge port (506), a first guide plate (507), a second guide plate (511) and a first discharge port (512); the second feed port (505) is provided on the inner side of the box body (1), the second discharge port (506) is provided on the inner side of the box body (1), the first guide plate (507) is provided on the inner side of the box body (1), the second guide plate (511) is provided on the inner side of the box body (1), and the first discharge port (512) is provided on one side of the second guide plate (511).
7. The circulating silica gel drying device for air drying in the production of hollow glass microspheres according to claim 5, characterized in that: The circulation component further comprises a second motor (508), a second rotating shaft (509) and a material separation plate (510); the second motor (508) is arranged on one side of the box body (1), the second rotating shaft (509) is arranged at the output end of the second motor (508), and the material separation plate (510) is arranged outside the second rotating shaft (509).