Drying and cooling device for producing self-adaptive granular gel
By designing a tumbling cooling device, which uses a rotating shaft to drive the drying drum to rotate and blow cold air, the problem of uneven cooling of adaptive particulate gel was solved, and rapid and uniform cooling was achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-18
- Publication Date
- 2026-03-24
AI Technical Summary
In the existing adaptive particulate gel production process, the drying and cooling device has a simple structure, which makes it difficult to cool the particulate gel evenly and results in a long cooling time.
Design a drying and cooling device that uses a tumbling cooling method, with a rotating shaft driving the drying drum to rotate, combined with a condenser and a fan blowing cold air, to achieve the self-movement and uniform cooling of the particulate gel.
It accelerates the cooling time, improves the cooling effect, ensures uniform cooling of the granular gel, and enhances the cooling efficiency of the device.
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Figure CN224034244U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of self -adaptive particle gel production, especially for producing self -adaptive particle gel's drying cooling device. BACKGROUND
[0002] Self -adaptive particle gel can be in water channel and meet water gel, force injection water diversion, improve the swept volume of water drive, and simultaneously due to self -adaptive particle gel has self -healing ability, can be second, third, multiple gel blocking after breaking through, realize that gel can move, reach the purpose of deep adjustment and drive.
[0003] Now self -adaptive particle gel needs to carry out drying cooling treatment to particle gel in the production process, however the drying cooling structure of most devices is relatively simple, and particle gel is mostly in the cooling operation in the static state, and it is difficult to guarantee that particle gel is cooled fully and uniformly, and it is often necessary to consume more cooling time.
[0004] Therefore, in view of the fact that the drying cooling device of the prior self -adaptive particle gel cannot cool particle gel fully and uniformly, and the processing time is long, a drying cooling device for producing self -adaptive particle gel can be designed, which drives particle gel to move continuously by tumbling cooling, fully blows cold air on the surface of the material, guarantees that the material is cooled fully and uniformly, speeds up the cooling time, and thus effectively enhances the cooling effect of the device. UTILITY MODEL CONTENTS
[0005] In order to overcome the problem that the drying cooling structure of most devices is relatively simple, and particle gel is mostly in the cooling operation in the static state, and it is difficult to guarantee that particle gel is cooled fully and uniformly, and it is often necessary to consume more cooling time.
[0006] The technical scheme of the utility model is as follows: a drying cooling device for producing self -adaptive particle gel, which comprises a protective shell, a support rod, a drying drum, a fan, a rotating shaft, a condenser, a cooling assembly, a feed inlet, a discharge outlet, a storage tank and a discharging assembly, the bottom surface of the protective shell is provided with the support rod, the inner side of the protective shell is provided with the rotating shaft, the outer side of the rotating shaft is provided with the drying drum, the inner side of the protective shell is provided with the condenser, the inner side of the two ends of the protective shell is provided with the fan, one side of the fan is provided with the cooling assembly, the top of the protective shell is provided with the feed inlet, the bottom surface of the protective shell is provided with the discharge outlet, the discharge outlet is provided below the storage tank, and one side of the drying drum is provided with the discharging assembly.
[0007] Preferably, the support rod is arranged to support and fix the protective shell, the blanking assembly is arranged to flexibly open and close the two ends of the drying roller, the particle gel is poured into the drying roller from the feeding port and discharged from the discharging port, so as to fall into the storage box for unified storage, the drying roller is rotated by rotating the rotating shaft, the particle gel is continuously rolled by rotating the drying roller, the fan is rotated by the cooling assembly, the air inside the protective shell is cooled by the condenser, so that the fan blows cold air to the drying roller, thereby realizing the continuous movement of the particle gel, fully blowing cold air on the surface of the material, ensuring that the material is fully and uniformly cooled, accelerating the cooling time, and enhancing the cooling effect of the device.
[0008] Preferably, the support rod is arranged to support and fix the protective shell, the blanking assembly is arranged to flexibly open and close the two ends of the drying roller, the particle gel is poured into the drying roller from the feeding port and discharged from the discharging port, so as to fall into the storage box for unified storage, the drying roller is rotated by rotating the rotating shaft, the particle gel is continuously rolled by rotating the drying roller, the fan is rotated by the cooling assembly, the air inside the protective shell is cooled by the condenser, so that the fan blows cold air to the drying roller, thereby realizing the continuous movement of the particle gel, fully blowing cold air on the surface of the material, ensuring that the material is fully and uniformly cooled, accelerating the cooling time, and enhancing the cooling effect of the device.
[0009] Preferably, the cooling assembly comprises a rotating motor and a through hole, the outer side of the protective shell is provided with the rotating motor, and the outer side of the drying roller is provided with the through hole.
[0010] Preferably, the cooling assembly further comprises a first motor and a ventilation groove, the outer side of the protective shell is provided with the first motor, and the two ends of the protective shell are provided with the ventilation groove.
[0011] Preferably, the output end of the rotating motor is connected with the rotating shaft, the through hole is provided with a plurality of groups, the diameter of the through hole is smaller than the diameter of the particle gel, the first motor is provided with two groups, the output end of the first motor is connected with the fan, and the ventilation groove is provided with a plurality of groups.
[0012] Preferably, the blanking assembly comprises a fixed frame, a bidirectional screw rod and a second motor, the outer sides of the two ends of the drying roller are provided with the fixed frame, the inner side of the fixed frame is provided with the bidirectional screw rod, the outer side of the fixed frame is provided with the second motor, and the output end of the second motor is connected with the bidirectional screw rod.
[0013] Preferably, the blanking assembly further comprises a guide rail, a connecting block and a baffle, the inner side of the fixed frame is provided with the guide rail, the guide rail is symmetrically arranged with the bidirectional screw rod, the outer side of the bidirectional screw rod is provided with the connecting block, the connecting block is symmetrically provided with a connecting block, the connecting block is slidably connected with the guide rail, one side of the connecting block is provided with the baffle, and the baffle is arranged between the two connecting blocks.
[0014] The utility model discloses the beneficial effect:
[0015] During the drying and cooling operation, the particle gel is poured into the drying drum from the feeding port, the drying drum is rotated by rotating the rotating shaft, the particle gel is constantly tumbled by rotating the drying drum, the air inside the protective shell is cooled by the condenser, the fan blows cold air to the drying drum, and the cooled particle gel is discharged from the discharge port and falls into the storage box for unified storage, so that the problem that the drying and cooling structure of most devices is relatively simple, the particle gel is mostly in a static state for cooling operation, and it is difficult to ensure that the particle gel is fully and uniformly cooled, and a large amount of cooling time is often consumed is solved, and the cooling effect of the device is enhanced. BRIEF DESCRIPTION OF DRAWINGS
[0016] Figure 1 A three-dimensional structure schematic view of a drying and cooling device for producing self-adaptive particle gel is shown.
[0017] Figure 2 A three-dimensional structure schematic view of a drying and cooling device for producing self-adaptive particle gel is shown.
[0018] Figure 3 A three-dimensional structure schematic view of a drying and cooling device for producing self-adaptive particle gel is shown.
[0019] Figure 4 A three-dimensional structure schematic view of a drying and cooling device for producing self-adaptive particle gel is shown.
[0020] Figure 5 A three-dimensional structure schematic view of a drying and cooling device for producing self-adaptive particle gel is shown.
[0021] Reference signs: 1, protective shell; 101, support rod; 2, rotating shaft; 3, drying drum; 301, condenser; 302, fan; 303, rotating motor; 304, through hole; 305, first motor; 306, ventilation slot; 4, feeding port; 5, discharge port; 501, storage box; 502, fixed frame; 503, bidirectional screw rod; 504, second motor; 505, guide rail; 506, connecting block; 507, baffle. DETAILED DESCRIPTION
[0022] The utility model will be further explained in connection with the drawings and examples.
[0023] Please refer to Figures 1-5The utility model provides a kind of drying cooling device for producing self-adapting granular gel, including protective housing 1, support rod 101, drying cylinder 3, fan 302, shaft 2, condenser 301, cooling assembly, feed inlet 4, discharge port 5, storage tank 501 and discharging assembly, the bottom of protective housing 1 is provided with support rod 101, support rod 101 is provided with multiple groups, support rod 101 is arranged at the bottom of the four corners of protective housing 1, the inside of protective housing 1 is provided with shaft 2, shaft 2 is rotatably connected with protective housing 1, the outside of shaft 2 is provided with drying cylinder 3, the inside of protective housing 1 is provided with condenser 301, condenser 301 is provided with two groups symmetrically, condenser 301 is symmetrically arranged at the two sides of drying cylinder 3, the inside of both ends of protective housing 1 is provided with fan 302, fan 302 is arranged at one side of condenser 301, one side of fan 302 is provided with cooling assembly, feed inlet 4 is formed in the top of protective housing 1, discharge port 5 is formed in the bottom of protective housing 1, storage tank 501 is arranged below discharge port 5, discharging assembly is arranged at one side of drying cylinder 3.
[0024] Please refer to Figures 2-5 In the embodiment, cooling assembly includes rotating motor 303, through hole 304, first motor 305 and ventilation groove 306, the outside of protective housing 1 is provided with rotating motor 303, the output end of rotating motor 303 is connected with shaft 2, the outside of drying cylinder 3 is provided with through hole 304, through hole 304 is provided with multiple groups, the diameter of through hole 304 is smaller than the diameter of granular gel, the outside of protective housing 1 is provided with first motor 305, first motor 305 is provided with two groups symmetrically, the output end of first motor 305 is connected with fan 302, ventilation groove 306 is formed in both ends of protective housing 1, ventilation groove 306 is provided with multiple groups, shaft 2 is rotated by rotating motor 303, drying cylinder 3 is continuously rolled by rotating shaft 2, cold air is ensured to be blown into drying cylinder 3 by through hole 304, fan 302 is rotated by first motor 305, and airflow in protective housing 1 is ensured to be stable by ventilation groove 306;
[0025] The blanking assembly comprises a fixed frame 502, a bidirectional screw rod 503, a second motor 504, a guide rail 505, a connecting block 506 and a baffle 507. The outer sides of the drying roller 3 are provided with the fixed frame 502. The inner side of the fixed frame 502 is provided with the bidirectional screw rod 503. The outer side of the fixed frame 502 is provided with the second motor 504. The output end of the second motor 504 is connected with the bidirectional screw rod 503. The inner side of the fixed frame 502 is provided with the guide rail 505. The guide rail 505 is positionally symmetrical with the bidirectional screw rod 503. The outer side of the bidirectional screw rod 503 is provided with the connecting block 506. The connecting block 506 is symmetrically provided with a connecting block. The connecting block 506 is slidably connected with the guide rail 505. One side of the connecting block 506 is provided with the baffle 507. The baffle 507 is arranged between the two groups of connecting blocks 506. The position of the bidirectional screw rod 503 is fixed through the fixed frame 502. The bidirectional screw rod 503 is driven to rotate by the second motor 504. The distance between the two groups of connecting blocks 506 is adjusted by rotating the bidirectional screw rod 503. The baffle 507 is fixed by the connecting block 506. The other two groups of connecting blocks 506 are driven to slide along the guide rail 505 synchronously by moving the baffle 507. The stable displacement of the baffle 507 is guaranteed through the guide rail 505. The two groups of baffles 507 are flexibly opened and closed to dry the two ends of the drying roller 3.
[0026] Before the cooling operation, the protective shell 1 is supported by the supporting rod 101. One of the second motors 504 drives the bidirectional screw rod 503 in the fixed frame 502 to rotate. The bidirectional screw rod 503 at the top of the drying roller 3 drives the connecting block 506 to slide along the guide rail 505, so as to pull apart the distance between the two groups of baffles 507 at the top of the drying roller 3. The particle gel to be cooled is poured into the drying roller 3 from the feeding port 4. Then, the two groups of baffles 507 at the top of the drying roller 3 are combined.
[0027] During the cooling operation, the rotating motor 303 drives the rotating shaft 2 to rotate. The rotating shaft 2 drives the drying roller 3 to continuously overturn. The condenser 301 is started. The fan 302 is driven by the first motor 305 to blow cold air to the drying roller 3. The cold air passes through the through hole 304 and enters the inside of the drying roller 3. The airflow in the inside of the protective shell 1 is stabilized by the ventilation groove 306.
[0028] After the cooling operation, the rotating motor 303 controls the rotating shaft 2 to stop rotating. The fixed frame 502 moves to the two ends of the protective shell 1. The bidirectional screw rod 503 is rotated to open the two groups of baffles 507 at the bottom of the drying roller 3. The particle gel in the drying roller 3 falls from the discharging port 5 to the storage box 501.
[0029] Through the above steps, the protective shell 1 is supported and fixed by setting the supporting rod 101, the two ends of the drying roller 3 are flexibly opened and closed by the blanking assembly, the particle gel is poured into the drying roller 3 from the feeding port 4, and is discharged from the discharging port 5, so as to fall into the storage box 501 for unified storage, the drying roller 3 is rotated by rotating the rotating shaft 2, the particle gel is continuously tumbled by rotating the drying roller 3, the fan 302 is controlled to rotate by the cooling assembly, the air inside the protective shell 1 is cooled by the condenser 301, so that the fan 302 blows cold air to the drying roller 3, so as to continuously move the particle gel, the cold air is fully blown to the surface of the material, the material is fully and uniformly cooled, and the cooling time is accelerated.
[0030] The embodiments of the utility model are described in detail in combination with the drawings above, but the utility model is not limited to the above-mentioned embodiments, and various changes can be made within the knowledge range possessed by the person skilled in the art without departing from the purpose of the utility model.
Claims
1. A drying and cooling apparatus for producing adaptive particulate gels, comprising a protective shell (1), a support rod (101), a drying drum (3), and a fan (302), characterized in that: It also includes a rotating shaft (2), a condenser (301), a cooling assembly, a feed inlet (4), a discharge outlet (5), a storage tank (501), and a feeding assembly. A support rod (101) is provided on the bottom surface of the protective shell (1). A rotating shaft (2) is provided on the inner side of the protective shell (1). A drying drum (3) is provided on the outer side of the rotating shaft (2). A condenser (301) is provided on the inner side of the protective shell (1). A fan (302) is provided on the inner side of both ends of the protective shell (1). A cooling assembly is provided on one side of the fan (302). A feed inlet (4) is provided on the top of the protective shell (1). A discharge outlet (5) is provided on the bottom surface of the protective shell (1). A storage tank (501) is provided below the discharge outlet (5). A feeding assembly is provided on one side of the drying drum (3).
2. The drying and cooling apparatus for producing adaptive particulate gel according to claim 1, characterized in that: Multiple sets of support rods (101) are provided. The support rods (101) are located at the four corners of the bottom surface of the protective shell (1). The rotating shaft (2) is rotatably connected to the protective shell (1). Two sets of condensers (301) are symmetrically provided. The condensers (301) are symmetrically provided on both sides of the drying drum (3). The fan (302) is located on one side of the condenser (301).
3. The drying and cooling apparatus for producing adaptive particulate gel according to claim 1, characterized in that: The cooling assembly includes a rotating motor (303) and a through hole (304). The rotating motor (303) is provided on the outside of the protective housing (1), and the through hole (304) is provided on the outside of the drying drum (3).
4. The drying and cooling apparatus for producing adaptive particulate gel according to claim 3, characterized in that: The cooling assembly also includes a first motor (305) and a ventilation slot (306). The first motor (305) is provided on the outside of the protective housing (1), and ventilation slots (306) are provided at both ends of the protective housing (1).
5. The drying and cooling apparatus for producing adaptive particulate gel according to claim 4, characterized in that: The output end of the rotating motor (303) is connected to the rotating shaft (2). Multiple sets of through holes (304) are provided. The diameter of the through holes (304) is smaller than the diameter of the granular gel. Two sets of first motors (305) are symmetrically arranged. The output end of the first motor (305) is connected to the fan (302). Multiple sets of ventilation slots (306) are provided.
6. The drying and cooling apparatus for producing adaptive particulate gel according to claim 4, characterized in that: The feeding assembly includes a fixed frame (502), a bidirectional lead screw (503), and a second motor (504). The fixed frame (502) is provided at both ends of the outer side of the drying drum (3), the bidirectional lead screw (503) is provided on the inner side of the fixed frame (502), and the second motor (504) is provided on the outer side of the fixed frame (502). The output end of the second motor (504) is connected to the bidirectional lead screw (503).
7. The drying and cooling apparatus for producing adaptive particulate gel according to claim 6, characterized in that: The feeding assembly also includes a guide rail (505), a connecting block (506), and a baffle (507). The guide rail (505) is provided on the inner side of the fixed frame (502). The guide rail (505) and the bidirectional lead screw (503) are symmetrically positioned. The connecting block (506) is provided on the outer side of the bidirectional lead screw (503). The connecting block (506) is symmetrically provided with connecting parts. The connecting block (506) and the guide rail (505) are slidably connected to each other. A baffle (507) is provided on one side of the connecting block (506). The baffle (507) is located between the two sets of connecting blocks (506).