Drying device for production of superfine glass fiber partition plate

By designing a drying device for the production of ultrafine fiberglass partitions with fan blades and guide plates, the problem of air flow in the existing drying box is solved, and uniform drying and efficiency improvement of the fiberglass partitions are achieved.

CN222938193UActive Publication Date: 2025-06-03GANZHOU GAOQIANG COMPOSITE MATERIALS CO LTD
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Patent Information

Application Number
CN202421681143.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-16
Publication Date
2025-06-03
Estimated Expiration
2034-07-16

AI Technical Summary

Technical Problem

The air flow in the existing drying box does not flow, resulting in uneven heating of the glass fiber partition, long drying time and low efficiency.

Method used

A drying device for the production of ultrafine fiberglass partitions is designed. The fan blades are rotated through motor B, combined with the heating pipe to generate heat to form a downward flowing hot air flow, and the guide plate is guided to the air to achieve full drying of the fiberglass partitions.

Benefits of technology

The drying efficiency is improved through air flow, ensuring uniform heating of the fiberglass partition, shortening the drying time and improving product quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of drying, in particular to a drying device for production of superfine glass fiber partition plates, which comprises a support seat, a shell, a motor A, a belt pulley set, a material shelf, a motor B, fan blades and a heating pipe, the shell is fixedly connected onto the support seat, the motor A is fixedly connected onto the right side of the top of the support seat, and the belt pulley set is arranged on the support seat. The belt pulley set is composed of a belt pulley and a belt, an output shaft of the motor A is fixedly connected with the belt pulley of the belt pulley set, a material frame is fixedly connected to the belt, openings are formed in the left side and the right side of the shell, and the belt penetrates through the openings. According to the drying device, the fan blades are driven to rotate through the motor B, the heating pipe generates heat, in this way, the heat can be blown downwards through air, hot airflow flowing downwards is formed, the hot airflow is guided through the guide plate, the hot airflow can comprehensively dry the glass fiber partition plate, and therefore the drying efficiency is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of drying, in particular to a drying device for producing ultra-fine glass fiber partitions. Background Art

[0002] Glass fiber is an excellent inorganic non-metallic material with good insulation, high heat resistance, good corrosion resistance, high mechanical strength, etc. Its production involves multiple steps, including fiber preparation, forming, curing, drying, etc. Drying is a key link, directly affecting the quality and service performance of the partition.

[0003] However, when drying the glass fiber partition with the existing technology, the glass fiber partition is put into the drying box for drying. The air flow in the drying box does not flow, resulting in uneven heating, a long drying time, and low drying efficiency. Summary of the Utility Model

[0004] In order to overcome the disadvantages of non-flowing air in the existing drying box and low drying efficiency, the technical problem is: to provide a drying device for producing ultra-fine glass fiber partitions that can improve the drying efficiency by air flow.

[0005] The technical solution of the utility model is: a drying device for producing ultra-fine glass fiber partitions, including a support base, a housing, a motor A, a pulley group, a material rack, a motor B, a fan blade, and a heating pipe. The support base is fixedly connected with the housing. The right side of the top of the support base is fixedly connected with the motor A. A pulley group is arranged on the support base. The pulley group is composed of a pulley and a belt. The output shaft of the motor A is fixedly connected with the pulley of the pulley group. The material rack is fixedly connected to the belt. Openings are provided on both the left and right sides of the housing, and the belt passes through the openings. An air inlet is provided on the top of the housing, and a ventilation opening is provided inside the housing. A motor B is fixedly connected inside the housing, and the output shaft of the motor B is fixedly connected with the fan blade. Heating pipes are symmetrically and fixedly connected to the upper and lower parts inside the housing, and the belt passes between the two heating pipes.

[0006] Furthermore, it further includes a guide plate. The guide plate is fixedly connected inside the housing. The guide plate is located below the fan blade and can guide the air.

[0007] Further, it further includes a feeding box, baffle A, baffle B, waist-shaped orifice plate, support rod, torsion spring A, gear, rack A, rack B, limit block, trigger plate and torsion spring B. A feeding box is fixedly connected to the support base. The feeding box is located on the right side of the housing. Baffle A is slidably connected to both the left and right sides of the support base. Baffle B is slidably connected to both the left and right sides of the support base. Baffle B is located below baffle A. A waist-shaped orifice plate is slidably sleeved between baffle A and baffle B. One end of a support rod is fixedly connected to both the left and right sides of the feeding box. The middle of the waist-shaped orifice plate is rotatably connected to the other end of the support rod. There is a torsion spring A between the support rod and the waist-shaped orifice plate. A gear is rotatably connected to the feeding box. Rack B is fixedly connected to the left baffle B. Rack A is fixedly connected to the right baffle B. Rack A and rack B are meshed with the gear. A limit block is fixedly connected to rack B. A trigger plate is rotatably connected to the limit block. There is a torsion spring B between the trigger plate and the limit block.

[0008] Further, it further includes a water absorption roller. A water absorption roller is slidably connected to the right side of the housing. A return spring is connected between the water absorption roller and the housing.

[0009] Further, it further includes a cover plate. Cover plates are rotatably connected to the openings on both the left and right sides of the housing.

[0010] Further, it further includes a collection box. A collection box is fixedly connected to the left side of the top of the support base.

[0011] The beneficial effects are as follows: In the present utility model, motor B drives the fan blade to rotate, and the heating tube generates heat. In this way, the heat can be blown downward by the wind to form a downward flowing hot air current, and the guide plate guides the hot air current, so that the hot air current can fully dry the fiberglass partition board, thereby improving the drying efficiency; through the cooperation of the material rack and the trigger plate, when each material rack moves to the lower part of the feeding box, a fiberglass partition board can fall into the material rack for feeding, making the feeding automatic, and further improving the drying efficiency. Description of the Drawings

[0012] Figure 1 It is a structural schematic diagram of the present utility model.

[0013] Figure 2 It is a three-dimensional structural schematic diagram of motor B, fan blade and guide plate of the present utility model.

[0014] Figure 3 It is a three-dimensional structural schematic diagram of the feeding box, baffle A and baffle B of the present utility model.

[0015] Figure 4 It is a three-dimensional structural schematic diagram of the water roller, cover plate and housing of the present utility model.

[0016] Names and serial numbers of components in the figure: 1 - support base, 2 - outer shell, 3 - motor A, 4 - pulley set, 5 - material rack, 6 - motor B, 7 - fan blade, 8 - guide plate, 9 - heating tube, 10 - feeding box, 11 - baffle A, 12 - baffle B, 121 - kidney-shaped orifice plate, 122 - support rod, 123 - torsion spring A, 13 - gear, 131 - rack A, 132 - rack B, 14 - limit block, 141 - trigger plate, 142 - torsion spring B, 15 - water absorption roller, 16 - cover plate, 17 - collection box. Detailed implementation manners

[0017] The preferred technical solutions of the present utility model will be described in detail below with reference to the accompanying drawings.

[0018] A drying device for producing ultra-fine glass fiber partitions, as Figure 1-2 shown, includes a support base 1, an outer shell 2, a motor A 3, a pulley set 4, a material rack 5, a motor B 6, a fan blade 7, a guide plate 8 and a heating tube 9. The middle part of the support base 1 is fixedly connected with the outer shell 2. The right side of the top of the support base 1 is fixedly connected with the motor A 3 by bolts. A pulley set 4 is arranged on the support base 1. The pulley set 4 is composed of a pulley and a belt. The output shaft of the motor A 3 is fixedly connected with the pulley of the pulley set 4. A material rack 5 is fixedly connected to the belt. Openings are provided on both the left and right sides of the outer shell 2, and the belt passes through the openings. An air inlet is provided at the top of the outer shell 2, and a ventilation opening is provided inside the outer shell 2. A motor B 6 is fixedly connected inside the outer shell 2, and the output shaft of the motor B 6 is fixedly connected with the fan blade 7. A guide plate 8 is fixedly connected inside the outer shell 2. The guide plate 8 is located below the fan blade 7, and the guide plate 8 can direct the air flow. Heating tubes 9 are symmetrically and fixedly connected up and down inside the outer shell 2, and the belt passes between the two heating tubes 9.

[0019] As Figure 1 and Figure 3As shown in the figure, it further includes a feeding box 10, a baffle A 11, a baffle B 12, an oblong hole plate 121, a support rod 122, a torsion spring A 123, a gear 13, a rack A 131, a rack B 132, a limit block 14, a trigger plate 141 and a torsion spring B 142. A feeding box 10 is fixedly connected to the support base 1. The feeding box 10 is located on the right side of the outer shell 2. The baffle A 11 is slidably connected to both the left and right sides of the support base 1. The baffle B 12 is slidably connected to both the left and right sides of the support base 1. The baffle B 12 is located below the baffle A 11. An oblong hole plate 121 is slidably sleeved between the baffle A 11 and the baffle B 12. One end of a support rod 122 is fixedly connected to both the left and right sides of the feeding box 10. The middle part of the oblong hole plate 121 is rotatably connected to the other end of the support rod 122. There is a torsion spring A 123 between the support rod 122 and the oblong hole plate 121. A gear 13 is rotatably connected to the feeding box 10. A rack B 132 is fixedly connected to the left baffle B 12. A rack A 131 is fixedly connected to the right baffle B 12. The rack A 131 and the rack B 132 are meshed with the gear 13. A limit block 14 is fixedly connected to the rack B 132. A trigger plate 141 is rotatably connected to the limit block 14. There is a torsion spring B 142 between the trigger plate 141 and the limit block 14.

[0020] When it is necessary to dry the glass fiber partition board, an appropriate amount of glass fiber partition board is placed in the feeding box 10. The baffle B 12 resists the glass fiber partition board. The motor A 3, the motor B 6 and the heating tube 9 are started. The motor A 3 drives the pulley group 4 to rotate, and the material rack 5 moves accordingly. The motor B 6 drives the fan blade 7 to rotate. The heating tube 9 works to generate heat, so that a hot air flow is formed inside the outer shell 2. When the pulley group 4 drives the material rack 5 to pass below the feeding box 10, the material rack 5 contacts the trigger plate 141. The trigger plate 141 drives the rack B 132 to move leftward. The rack B 132 drives the gear 13 to rotate clockwise when moving leftward. When the gear 13 rotates clockwise, the rack A 131 moves rightward, so that the two baffle B 12s move outward synchronously. The baffle A 11 moves inward synchronously under the drive of the oblong hole plate 121. The lowermost glass fiber partition board falls onto the material rack 5, and the other glass fiber partition boards will be blocked by the baffle A 11. At this time, the torsion spring A 123 is in a deformed state. When the material rack 5 passes by the feeding box 10 and disengages from the trigger plate 141, the torsion spring A 123 resets and drives the oblong hole plate 121 to reverse and reset, so that the baffle B 12s on both sides move inward. At the same time, the rack A 131 and the rack B 132 also move back to their original positions, while the baffle A 11 moves outward and resets and no longer blocks the glass fiber partition board. The glass fiber partition board moves downward and is blocked by the baffle B 12. In this way, every time the material rack 5 passes below the feeding box 10, one glass fiber partition board will fall onto the material rack 5. Then, the glass fiber partition board is driven by the two belts and the material rack 5 to move into the outer shell 2, and the hot air flow fully dries the glass limit plate.

[0021] As shown Figure 4 in the figure, it further includes a water absorption roller 15. The water absorption roller 15 is symmetrically and slidably connected to the upper and lower sides of the right side of the outer shell 2. A return spring is connected between the water absorption roller 15 and the outer shell 2. When the glass fiber partition moves into contact with the water absorption roller 15, the water absorption roller 15 can remove impurities or residues on the surface of the glass fiber partition and the excess water thereon.

[0022] As shown Figure 4 in the figure, it further includes a cover plate 16. The cover plate 16 is rotatably connected to the openings on the left and right sides of the outer shell 2. The cover plate 16 can block the openings to prevent the hot air inside the outer shell 2 from overflowing from the openings.

[0023] As shown Figure 4 in the figure, it further includes a collection box 17. The collection box 17 is fixedly connected to the left side of the top of the support base 1. The material rack 5 drives the dried glass fiber partition to move out from the opening on the left side of the outer shell 2. The glass fiber partition continues to move leftward to the collection box 17, and the collection box 17 can collect the dried glass fiber partition.

[0024] Although the present invention has been described with reference to exemplary embodiments, it should be understood that the present invention is not limited to the disclosed exemplary embodiments. The scope of the following claims should be given the broadest interpretation so as to cover all modifications and equivalent structures and functions.

Claims

1. A drying device for producing ultra-fine glass fiber separators, characterized in that: The invention comprises a support base (1), a shell (2), a motor A (3), a pulley group (4), a material rack (5), a motor B (6), a fan blade (7) and a heating tube (9), wherein the shell (2) is fixedly connected to the support base (1), the motor A (3) is fixedly connected to the right side of the top of the support base (1), the support base (1) is provided with a pulley group (4), the pulley group (4) is composed of a pulley and a belt, the output shaft of the motor A (3) is fixedly connected to the pulley of the pulley group (4), the material rack (5) is fixedly connected to the belt, the shell (2) has openings on both left and right sides, the belt passes through the openings, the top of the shell (2) has an air inlet, the shell (2) has a ventilating port, the shell (2) has a motor B (6) fixedly connected inside the shell (2), the output shaft of the motor B (6) is fixedly connected to the fan blade (7), the shell (2) has a heating tube (9) fixedly connected to the inside of the shell (2) symmetrically, and the belt passes between the two heating tubes (9).

2. A drying device for producing ultra-fine glass fiber separators according to claim 1, characterized in that: It also includes a guide plate (8), which is fixedly connected to the inside of the housing (2), and is located below the fan blades (7). The guide plate (8) can guide the wind.

3. A drying device for producing ultra-fine glass fiber separators according to claim 2, characterized in that: The invention also comprises a discharge box (10), a baffle A (11), a baffle B (12), a waist-shaped orifice plate (121), a support rod (122), a torsion spring A (123), a gear (13), a rack A (131), a rack B (132), a limit block (14), a trigger plate (141) and a torsion spring B (142); the discharge box (10) is fixedly connected to the support seat (1); the discharge box (10) is located on the right side of the shell (2); the left and right sides of the support seat (1) are slidably connected with the baffle A (11); the left and right sides of the support seat (1) are slidably connected with the baffle B (12); the baffle B (12) is located below the baffle A (11); a waist-shaped orifice plate (121) is slidably sleeved between the baffle A (11) and the baffle B (12); the discharge box (10) is fixedly connected to the support seat (1); the discharge box (10) is located on the right side of the shell (2); the baffle A (11) is slidably connected with the baffle B (12); the baffle B (12) is located below the baffle A (11); the baffle A (11) and the baffle B (12) are slidably sleeved with the waist-shaped orifice plate (121); 0) One end of a support rod (122) is fixedly connected to both left and right sides, the middle part of the waist-shaped orifice plate (121) is rotatably connected to the other end of the support rod (122), a torsion spring A (123) is provided between the support rod (122) and the waist-shaped orifice plate (121), a gear (13) is rotatably connected to the discharge box (10), a rack B (132) is fixedly connected to the baffle plate B (12) on the left side, a rack A (131) is fixedly connected to the baffle plate B (12) on the right side, the rack A (131) and the rack B (132) are meshed with the gear (13), a limit block (14) is fixedly connected to the rack B (132), a trigger plate (141) is rotatably connected to the limit block (14), and a torsion spring B (142) is provided between the trigger plate (141) and the limit block (14).

4. A drying device for producing ultra-fine glass fiber separators according to claim 3, characterized in that: It also comprises a water-absorbing roller (15), the right side of the outer shell (2) is slidably connected with the water-absorbing roller (15), and a return spring is connected between the water-absorbing roller (15) and the outer shell (2).

5. A drying device for producing ultra-fine glass fiber separators according to claim 4, characterized in that: It also includes a cover plate (16), and the cover plates (16) are rotatably connected to the openings on the left and right sides of the housing (2).

6. A drying device for producing ultra-fine glass fiber separators according to claim 5, characterized in that: It also includes a collection box (17), and the collection box (17) is fixedly connected to the left side of the top of the support base (1).