A glass fiber raw material separation device

By designing a glass fiber raw material separation device including a liquid recovery box, a precipitation box and a vibrating gas screening device, the problems of quartz sand raw material loss and impurity siltation in the prior art are solved, and efficient separation and cleaning effects are achieved.

CN118237156BActive Publication Date: 2025-05-16NANTONG KETSEN NEW MATERIAL TECH CO LTD
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Patent Information

Application Number
CN202410380965.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-03-31
Publication Date
2025-05-16
Estimated Expiration
2044-03-31

AI Technical Summary

Technical Problem

When the existing glass fiber raw material separation device uses water flow to rinse, the smaller volume of quartz stone sand and soil raw materials are washed away with the wastewater, causing raw material loss, and the broken sand at the bottom is not easily removed.

Method used

A separation device including a support frame, a liquid recovery box, a precipitation box, a liquid exchange tank and a vibrating gas screening device is designed. Clean water is pumped into the liquid exchange tank through the liquid pump. The water flows through the vibrating plate to the quartz sand and soil raw material above the vibration plate. The quartz sand precipitates at the bottom, and the soil and fine sand are bubbled to the top by the water flow bubbles and discharged through the overflow tank on the side to reduce the loss of quartz sand.

Benefits of technology

It effectively reduces the loss of quartz sand during the separation and cleaning process, ensures the quality and quantity of quartz sand, avoids the accumulation of broken sand in soil, and improves the purity of glass fiber raw materials.

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Abstract

The invention discloses a glass fiber raw material separation device and a use method thereof, belonging to the technical field of separation devices. The invention discloses a glass fiber raw material separation device and a use method thereof, comprising a supporting frame, a liquid recovery box is fixedly installed on one side of the supporting frame, a vibrating gas screening device is provided, a liquid pump pumps clean water into a liquid exchange tank, and water flows through a vibrating plate to flow out to a quartz sand raw material above, the mass of the quartz sand raw material is greater than that of mud and fine sand, and the quartz sand is precipitated at the bottom, and bubbles are injected upward through an undercurrent overflowed by the clean water and a bottom bubble generating element, so that the sand and fine sand are rolled to the top by the water flow bubbles and discharged through an overflow trough on the side, thereby effectively reducing the loss of quartz sand during separation and cleaning, and a lifting structure is provided, so that the quartz sand raw material at the bottom can be regularly turned over to avoid mud and sand from accumulating at the bottom, resulting in unclean separation of impurities in the quartz sand in the glass fiber raw material.
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Description

Technical Field

[0001] The present invention relates to the technical field of separation devices, and more specifically, to a glass fiber raw material separation device. Background Art

[0002] Glass fiber raw materials mainly refer to various minerals and chemical raw materials used to produce glass fiber. Depending on the type of glass fiber and performance requirements, the composition and ratio of glass fiber raw materials will vary. Quartz sand is one of the main raw materials for producing glass fiber, and its main component is silicon dioxide (SiO2). Quartz sand has good insulation, heat resistance and corrosion resistance, which helps to improve the performance of glass fiber.

[0003] The quartz sand in the glass fiber raw material is made by grinding large pieces of quartz stone. Since the quartz stone raw material contains some impurities such as soil and sand, it is necessary to wash the quartz sand raw material with water to separate the impurities such as soil and sand, and screen out the quartz raw material, so as to facilitate the subsequent preparation of glass fiber. When using water to wash, the smaller volume of quartz sand raw material is washed away with the wastewater, resulting in a large loss of raw materials, and the soil and sand at the bottom of the quartz sand raw material is not easy to be washed away. Summary of the invention

[0004] The object of the present invention is to provide a glass fiber raw material separation device to solve the problems raised in the above background technology.

[0005] A glass fiber raw material separation device comprises a support frame, a liquid recovery box is fixedly installed on one side of the support frame, a sedimentation box is welded on the middle part of the upper side of the support frame, an electric flip plate is rotatably installed on the side of the sedimentation box close to the liquid recovery box, a liquid exchange tank is welded on the middle part of the lower side of the sedimentation box, a feeding device is welded on the side of the sedimentation box away from the liquid recovery box, an overflow device is arranged on the upper side of the sedimentation box, and three square through grooves are equidistantly opened on the bottom of the inner cavity of the sedimentation box, and a vibrating gas screening device is arranged inside the square through grooves;

[0006] A servo motor is fixedly installed with bolts on one side of the liquid exchange tank away from the liquid recovery tank. The output end of the servo motor penetrates the side wall of the liquid exchange tank and is fixedly installed with an adjusting screw. The adjusting screw is located at the position of the vibrating gas screening device and is fixedly installed with a lifting structure.

[0007] By adopting the above technical scheme, when the quartz sand raw material enters the sedimentation box, the liquid pump pumps clean water into the liquid exchange tank, and the water flows through the vibration plate to the quartz sand raw material above. The mass of the quartz sand raw material is greater than that of soil and fine sand. Therefore, when the water flow is appropriate, the quartz sand is retained at the bottom, and the clean water overflows upward and the bottom bubble generating element injects bubbles upward. The sand and fine sand are rolled to the top by the water bubbles and discharged through the overflow trough on the side, which effectively reduces the loss of quartz sand during the separation and cleaning process.

[0008] Furthermore, the feeding device includes a feeding box welded to the side of the sedimentation box. A rotating wheel is rotatably installed in the middle of the feeding box, and a stepper motor is fixedly installed on the rear side wall of the feeding box at a horizontal position of the rotating wheel by bolts. The bottom of the inner cavity of the feeding box is an inclined slope structure, a liquid pump is fixedly installed at the lower front side of the feeding box, and an air pump is fixedly installed at the upper front side of the feeding box.

[0009] By adopting the above technical solution, the operator pours the quartz raw material into the feed box, and the stepper motor drives the wheel to rotate. When the wheel rotates, the raw material will be turned over in batches and poured into the sedimentation box to remove impurities.

[0010] Furthermore, the overflow device includes an overflow plate welded to the upper edge of the sedimentation box, a plurality of overflow grooves are equidistantly provided on the bottom side of the overflow plate, and a waste liquid recovery pipe is provided on the front side of the overflow plate at the position of the overflow groove.

[0011] By adopting the above technical solution, when the waste liquid level gradually rises until it reaches the overflow tank position, the waste liquid will be discharged from the waste liquid recovery pipe position, thereby effectively reducing internal impurities.

[0012] Furthermore, the vibrating gas screening device includes a screening base fixedly mounted on the upper side of a sedimentation box, a partition piece is welded on the upper surface of the screening base near the position of the liquid recovery box, a vibration plate is arranged on the lower side of the screening base, an isolation screen is fixedly mounted on the upper end of the vibration plate, a square through groove is opened in the middle of the vibration plate, an arc-shaped piece is fixedly mounted on the lower end of the vibration plate near the position of the liquid recovery box, a high-frequency vibration piece is arranged on the inner side of the middle part of the arc-shaped piece, a bubble generating piece is arranged on the lower side of the vibration plate, a gas diversion pipe is arranged on the front side of the bubble generating piece, the bubble generating piece and the vibration plate are connected through a vibration device, the middle part of the bubble generating piece is a square cavity structure, a gas generating frame is arranged inside the cavity, a protective screen is arranged on the upper side of the cavity structure of the bubble generating piece, and the side of the bubble generating piece close to the liquid recovery box is rotatably connected to the inner cavity side wall of the sedimentation box through a rotating shaft.

[0013] By adopting the above technical solution, fine bubbles are formed on the upper side of the protective screen. At the same time, the quartz sand raw material vibrates on the isolation screen, which can make the quartz sand raw material vibrate, so that the internal sand falls off, rises along the upward water flow, and is recovered.

[0014] Furthermore, the vibration device includes a first elastic ring fixedly welded on the lower surface of the vibration plate at the front and rear sides of the arc-shaped part, and a second elastic ring is welded on the upper surface of the bubble generating part at a corresponding position of the first elastic ring, and a floating part is arranged between the first elastic ring and the second elastic ring.

[0015] Furthermore, the lifting structure includes an adjusting inner cylinder equidistantly fixed on the outer wall of the adjusting screw rod, a limiting ring is welded on the outer wall of the adjusting inner cylinder close to the liquid recovery tank, a limiting cylinder sleeve is welded on the outer wall of the adjusting inner cylinder away from the liquid recovery tank, a limiting groove is provided on the outer wall of the adjusting inner cylinder, the adjusting inner cylinder is sleeved with an adjusting outer cylinder located on the outer side of the limiting groove, a lifting triangle is welded on the upper end of the adjusting outer cylinder, a stabilizing plate is welded on the front and rear side walls of the adjusting outer cylinder, a sliding part corresponding to the limiting groove is welded on the top wall of the inner cavity of the adjusting outer cylinder, a spring support ring is welded on one side of the inner cavity of the adjusting outer cylinder close to the limiting ring, a reset spring is arranged between the spring support ring and the limiting ring, and a rectangular groove is provided on the middle part of the upper side of the adjusting inner cylinder located at the limiting groove.

[0016] By adopting the above technical solution, when the adjusting screw drives the adjusting inner cylinder to rotate, the lifting triangle moves toward the limit ring through the sliding member, and the reset spring is compressed at the same time. When the adjusting outer cylinder rotates to one end of the limit groove, the sliding member moves to the rectangular slot position in the middle of the upper side of the limit groove, and returns to its original position under the action of the reset spring. At this time, the lifting triangle is reset.

[0017] Furthermore, a protective plate is welded to the rear edge of the upper end of the sedimentation box, a second drive motor group is arranged in the middle of the rear side of the sedimentation box, and a micro drive motor corresponding to the discharge drum is arranged inside the second drive motor group.

[0018] By adopting the above technical solution, the micro drive motor can drive the discharging drum to rotate, thereby moving the material inside to facilitate sedimentation and screening.

[0019] Furthermore, a discharge plate is welded to the middle part of the upper side of the liquid recovery box, a metal sieve plate is fixedly installed in the middle part of the discharge plate, an isolation plate is welded to the upper edge of the liquid recovery box, a synchronous brush head is welded to the middle part of the upper side of the isolation plate, a spray pipe is fixedly installed on the side wall of the inner cavity of the isolation plate away from the supporting frame, a first drive motor group is fixedly installed on the rear side of the isolation plate, and a drive motor corresponding to the synchronous brush head is arranged inside the first drive motor group.

[0020] By adopting the above technical solution, the quartz sand and gravel after cleaning and screening are separated from the cleaning liquid, and then sprayed and cleaned by the spray pipe, and then the next processing can be carried out.

[0021] Compared with the prior art, the advantages of the present invention are:

[0022] 1. In the present invention, a vibrating gas screening device is provided. When the quartz sand raw material enters the sedimentation box, the liquid pump pumps clean water into the liquid exchange tank, and the water flows through the vibration plate to the quartz sand raw material above. The mass of the quartz sand raw material is greater than that of soil and fine sand. The quartz sand is precipitated at the bottom. The undercurrent overflowing from the clean water and the bottom bubble generating element inject bubbles upward, so that the sand and fine sand are rolled to the top by the water bubbles and discharged through the overflow trough on the side, which effectively reduces the loss of quartz sand during the separation and cleaning process.

[0023] 2. In the present invention, a lifting structure is provided. As the adjusting screw rod rotates, the lifting triangle can push the bubble generating part to rise and fall, thereby regularly pushing the vibration plate to rise and fall. In conjunction with the high-frequency vibration part, the quartz sand raw material at the bottom can be regularly turned over to prevent the accumulation of soil and sand at the bottom, resulting in unclean separation of impurities in the quartz sand in the glass fiber raw material. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0025] Figure 2 It is a schematic diagram of the rear structure of the overall structure of the present invention;

[0026] Figure 3 It is an overall cross-sectional view of the present invention;

[0027] Figure 4 For the present invention Figure 3 Schematic diagram of the structure at position A;

[0028] Figure 5 It is a structural schematic diagram of the screening base of the present invention;

[0029] Figure 6 It is a structural schematic diagram of the adjusting screw rod of the present invention;

[0030] Figure 7 is a cross-sectional view of the screening base of the present invention;

[0031] Figure 8 This is a structural exploded view of the adjusting outer cylinder of the present invention;

[0032] Fig. 9 It is a cross-sectional view of the adjusting outer cylinder of the present invention.

[0033] Explanation of the numbers in the figure: 1. Synchronous brush head; 2. Spray pipe; 3. First drive motor group; 4. Liquid recovery box; 401. Isolation plate; 5. Support frame; 6. Overflow plate; 601. Overflow trough; 7. Waste liquid recovery pipe; 8. Protective plate; 9. Feed box; 901. Rotor; 10. Liquid pump; 11. Air pump; 12. Sedimentation box; 1201. Electric flip plate; 13. Liquid exchange tank; 14. Stepper motor; 15. Second drive motor group; 16. Discharge drum; 17. Discharge plate; 1701. Metal sieve plate; 18. Servo motor; 19. Adjustment outer cylinder; 1901. Lifting triangle; 1902, stabilizing plate; 1903, reset spring; 1904, sliding part; 1905, spring support ring; 20, adjusting screw; 21, vibration plate; 2101, isolation screen; 22, limiting ring; 23, bubble generating part; 2301, protection screen; 2302, gas diversion pipe; 24, screening base; 2401, partition; 25, first elastic ring; 26, second elastic ring; 27, arc part; 28, high-frequency vibration part; 29, floating part; 30, gas generating frame; 31, adjusting inner cylinder; 3101, limiting cylinder sleeve; 3102, limiting groove. DETAILED DESCRIPTION

[0034] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0035] like Figure 1-Figure 9 As shown, the embodiment of the present invention provides: comprising a support frame 5, a liquid recovery tank 4 is fixedly installed on one side of the support frame 5, a sedimentation tank 12 is welded on the middle part of the upper side of the support frame 5, an electric flip plate 1201 is rotatably installed on the side of the sedimentation tank 12 close to the liquid recovery tank 4, a liquid exchange tank 13 is welded on the middle part of the lower side of the sedimentation tank 12, a feeding device is welded on the side of the sedimentation tank 12 away from the liquid recovery tank 4, an overflow device is arranged on the upper side of the sedimentation tank 12, the overflow device comprises an overflow plate 6 welded on the upper edge of the sedimentation tank 12, a plurality of overflow grooves 601 are equidistantly provided on the bottom side of the overflow plate 6, a waste liquid recovery pipe 7 is arranged on the front side of the overflow plate 6 at the position of the overflow groove 601, when the waste liquid level gradually rises until it rises to the position of the overflow groove 601, the waste liquid will be discharged from the position of the waste liquid recovery pipe 7, thereby effectively reducing internal impurities;

[0036] The bottom of the inner cavity of the sedimentation box 12 is equidistantly provided with three square through grooves, and a vibrating gas screening device is arranged inside the square through grooves. The vibrating gas screening device comprises a screening base 24 fixedly installed on the upper side of the sedimentation box 12, and a partition 2401 is welded on the upper surface of the screening base 24 near the position of the liquid recovery tank 4, and a vibration plate 21 is arranged on the lower side of the screening base 24, and an isolation screen 2101 is fixedly installed on the upper end of the vibration plate 21, and a square through groove is opened in the middle of the vibration plate 21, and the lower end of the vibration plate 21 is near the liquid recovery tank 4. The box 4 is fixedly mounted with an arc-shaped member 27, a high-frequency vibration member 28 is arranged inside the middle of the arc-shaped member 27, a bubble generating member 23 is arranged on the lower side of the vibration plate 21, a gas shunt pipe 2302 is arranged on the front side of the bubble generating member 23, the bubble generating member 23 and the vibration plate 21 are connected by a vibration device, the vibration device includes a first elastic ring 25 fixedly welded on the lower surface of the vibration plate 21 at the front and rear sides of the arc-shaped member 27, and a second elastic ring 26 is welded on the upper surface of the bubble generating member 23 at the corresponding position of the first elastic ring 25 A floating member 29 is provided between the first elastic ring 25 and the second elastic ring 26. The middle part of the bubble generating member 23 is a square cavity structure, and a gas generating frame 30 is provided inside the cavity. A protective mesh plate 2301 is provided on the upper side of the cavity structure of the bubble generating member 23. The side of the bubble generating member 23 close to the liquid recovery tank 4 is rotatably connected to the inner cavity side wall of the sedimentation tank 12 through a rotating shaft. When the quartz sand raw material enters the sedimentation tank 12, the liquid pump 10 pumps clean water into the liquid exchange tank 13, and the water flows through the vibration plate 21. The quartz sand raw material flows upward. The mass of the quartz sand raw material is greater than that of the soil and fine sand. The quartz sand is at the bottom. Through the overflow of clean water and the upward injection of bubbles by the bottom bubble generating member 23, the sand and fine sand are rolled to the top by the water bubbles and discharged through the overflow groove 601 on the side, effectively reducing the loss of quartz sand during the separation and cleaning process. The protective screen 2301 forms fine bubbles on the upper side. The quartz sand raw material vibrates on the isolation screen 2101. The bubbles can make the impurities in the quartz sand raw material rise along the upward water flow and be recovered.

[0037] A servo motor 18 is fixedly installed on one side of the liquid exchange tank 13 away from the liquid recovery tank 4 by bolts, and an adjusting screw 20 is fixedly installed on the output end of the servo motor 18 through the side wall of the liquid exchange tank 13, and a lifting structure is fixedly installed on the adjusting screw 20 at the position of the vibrating gas screening device;

[0038] The feeding device includes a feeding box 9 welded to the side of the sedimentation box 12. A rotating wheel 901 is rotatably installed in the middle of the feeding box 9. A stepper motor 14 is fixedly installed by bolts on the rear side wall of the feeding box 9 at the horizontal position of the rotating wheel 901. The bottom of the inner cavity of the feeding box 9 is an inclined slope structure. A liquid pump 10 is fixedly installed at the lower front side of the feeding box 9. An air pump 11 is fixedly installed at the upper front side of the feeding box 9. The operator pours the quartz raw material into the feeding box 9, and the stepper motor 14 drives the rotating wheel 901 to rotate. When the rotating wheel 901 rotates, the raw material will be turned over in batches and poured into the sedimentation box 12 to remove impurities.

[0039] The lifting structure includes an adjusting inner cylinder 31 which is equidistantly fixedly installed on the outer wall of the adjusting screw rod 20, a limiting ring 22 is welded on the outer wall of the adjusting inner cylinder 31 close to the liquid recovery tank 4, a limiting cylinder sleeve 3101 is welded on the outer wall of the adjusting inner cylinder 31 away from the liquid recovery tank 4, a limiting groove 3102 is arranged on the outer wall of the adjusting inner cylinder 31, an adjusting outer cylinder 19 is sleeved on the outer side of the limiting groove 3102 of the adjusting inner cylinder 31, a lifting triangle 1901 is welded on the upper end of the adjusting outer cylinder 19, a stabilizing plate 1902 is welded on the front and rear side walls of the adjusting outer cylinder 19, a sliding member 1904 corresponding to the limiting groove 3102 is welded on the top wall of the inner cavity of the adjusting outer cylinder 19, and the inner cavity of the adjusting outer cylinder 19 close to the limiting groove 3102 is provided with a lifting triangle 1901, a stabilizing plate 1902 is welded on the front and rear side walls of the adjusting outer cylinder 19, a sliding member 1904 corresponding to the limiting groove 3102 is welded on the top wall of the inner cavity of the adjusting outer cylinder 19 A spring support ring 1905 is welded on one side of the positioning ring 22, and a reset spring 1903 is arranged between the spring support ring 1905 and the limiting ring 22. The adjusting inner cylinder 31 is provided with a rectangular slot in the middle of the upper side of the limiting groove 3102. When the adjusting screw rod 20 drives the adjusting inner cylinder 31 to rotate, the lifting triangle 1901 moves toward the limiting ring 22 through the sliding member 1904, and the reset spring 1903 is compressed at the same time. When the adjusting outer cylinder 19 rotates to one end of the limiting groove 3102, the sliding member 1904 moves to the rectangular slot position in the middle of the upper side of the limiting groove 3102, and returns to its original position under the action of the reset spring 1903. At this time, the lifting triangle 1901 is reset.

[0040] A protective plate 8 is welded to the rear edge of the upper end of the sedimentation box 12, and a second drive motor group 15 is arranged in the middle of the rear side of the sedimentation box 12. A micro drive motor corresponding to the discharge drum 16 is arranged inside the second drive motor group 15. The micro drive motor can drive the discharge drum 16 to rotate, so that the material inside can be moved, which is convenient for sedimentation and screening;

[0041] A discharge plate 17 is welded to the middle part of the upper side of the liquid recovery box 4, and a metal sieve plate 1701 is fixedly installed in the middle part of the discharge plate 17. An isolation plate 401 is welded to the upper edge of the liquid recovery box 4, and a synchronous brush head 1 is welded to the middle part of the upper side of the isolation plate 401. A spray pipe 2 is fixedly installed on the side wall of the inner cavity of the isolation plate 401 away from the supporting frame 5. A first drive motor group 3 is fixedly installed on the rear side of the isolation plate 401, and a drive motor corresponding to the synchronous brush head 1 is arranged inside the first drive motor group 3. The quartz sand and gravel after cleaning and screening are separated from the cleaning liquid and sprayed and cleaned by the spray pipe 2 before the next processing.

[0042] Working principle of the present invention: the operator pours the quartz sand raw material into the feed box 9, the quartz sand raw material will be transported to the sedimentation box 12 through the impeller 901, the discharge drum 16 rotates slowly, and the accumulated quartz sand raw material will be slowly pushed toward the liquid recovery box 4, the bottom wall of the inner cavity of the sedimentation box 12 is an inclined slope structure toward the liquid recovery box 4, the liquid pump 10 is connected to the cleaning pipeline, the liquid pump 10 injects clean water into the liquid exchange tank 13, the water flows through the three square grooves at the bottom of the inner cavity of the sedimentation box 12 and overflows upward, when the water overflows upward, there will be an upward undercurrent inside the water body, because the quality of quartz sand is higher than that of soil and fine sand, so it is mixed in The soil and fine sand inside the quartz sand raw material will float upward under the action of the water flow, and the quartz sand will be at the bottom of the sedimentation box 12. When the liquid level inside the sedimentation box 12 gradually rises, the liquid on the top will overflow from the overflow tank 601, and then be discharged from the waste liquid recovery pipe 7. The soil and fine sand are turbulent to the upper layer by the internal water flow and discharged. At the same time, the air pump 11 is connected to the bubble generating part 23 through the arc part 27. The air pump 11 pumps air into the bubble generating part 23, and the gas will be divided into small bubbles by the gas generating frame 30, and float upward from the protective mesh plate 2301, thereby increasing the floating efficiency of the internal soil and fine sand. A high The adjusting screw 20 drives the adjusting inner cylinder 31 to rotate, and the adjusting outer cylinder 19 moves horizontally toward the position of the limiting ring 22 during the rotation of the limiting groove 3102. The end of the bubble generating member 23 close to the liquid recovery tank 4 is fixed to the side wall of the inner cavity of the sedimentation tank 12 through the rotating shaft. When the lifting triangle 1901 moves toward the liquid recovery tank 4, the lifting triangle 1901 lifts the bubble generating member 23 together with one end of the vibration plate 21 upward. When the adjusting outer cylinder 19 rotates to one end of the limiting groove 3102, the sliding member 1904 moves to the rectangular slotted position in the middle of the upper side of the limiting groove 3102. Under the action of the reset spring 1903, the bubble generating member 23 is lifted upward. The quartz sand moves toward the liquid recovery tank 4, and because the high-frequency vibrator 28 vibrates the vibrating plate 21, the upper layer of the stacked quartz sand is offset, and the small bubbles generated by the gas generating frame 30 move the stacked quartz sand toward the liquid recovery tank 4 while turning it over to prevent soil and sand from accumulating at the bottom. The quartz sand that has been turned over many times accumulates on one side of the bottom of the sedimentation box 12 close to the liquid recovery tank 4, and then the electric flip plate 1201 is opened, and the separated quartz sand raw materials enter the position of the discharge plate 17, and then are discharged, which is convenient for the subsequent production and processing of glass fiber.

[0043] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments. The above embodiments and descriptions are only preferred examples of the present invention and are not intended to limit the present invention. Without departing from the spirit and scope of the present invention, the present invention may have various changes and improvements, which fall within the scope of the present invention. The scope of protection of the present invention is defined by the attached claims and their equivalents.

Claims

1. A glass fiber raw material separation device, comprising a support frame (5), characterized in that: A liquid recovery tank (4) is fixedly mounted on one side of the support frame (5); a sedimentation tank (12) is welded to the middle of the upper side of the support frame (5); an electric flip plate (1201) is rotatably mounted on the side of the sedimentation tank (12) close to the liquid recovery tank (4); a liquid exchange tank (13) is welded to the middle of the lower side of the sedimentation tank (12); a feeding device is welded to the side of the sedimentation tank (12) away from the liquid recovery tank (4); and the sedimentation tank (12) is provided with a plurality of liquid exchange tanks (13) and a plurality of liquid exchange tanks (13) arranged on the lower side of the sedimentation tank (12). ) is provided on the upper side of the sedimentation box (12); three square through grooves are equidistantly provided at the bottom of the inner cavity of the sedimentation box (12); a vibrating gas screening device is provided inside the square through grooves; the vibrating gas screening device comprises a screening base (24) fixedly mounted on the upper side of the sedimentation box (12); a partition (2401) is welded to the upper surface of the screening base (24) near the liquid recovery box (4); a vibrating plate (21) is provided on the lower side of the screening base (24); An isolation mesh plate (2101) is fixedly installed on the upper end of the vibration plate (21), a square through groove is opened in the middle of the vibration plate (21), an arc-shaped member (27) is fixedly installed at the lower end of the vibration plate (21) near the liquid recovery tank (4), a high-frequency vibration member (28) is arranged on the inner side of the middle part of the arc-shaped member (27), a bubble generating member (23) is arranged on the lower side of the vibration plate (21), and a gas diversion pipe is arranged on the front side of the bubble generating member (23). (2302), the bubble generating member (23) and the vibration plate (21) are connected via a vibration device, the middle portion of the bubble generating member (23) is a square cavity structure, a gas generating frame (30) is arranged inside the cavity, a protective mesh plate (2301) is arranged on the upper side of the cavity structure of the bubble generating member (23), and the side of the bubble generating member (23) close to the liquid recovery tank (4) is rotatably connected to the inner cavity side wall of the sedimentation tank (12) via a rotating shaft; A servo motor (18) is fixedly mounted on a side of the liquid exchange tank (13) away from the liquid recovery tank (4) by means of bolts; an adjusting screw (20) is fixedly mounted on the output end of the servo motor (18) through the side wall of the liquid exchange tank (13); a lifting structure is fixedly mounted on the adjusting screw (20) at a position where the adjusting screw (20) is located at the vibrating gas screening device; the lifting structure comprises an adjusting inner cylinder (31) fixedly mounted on the outer wall of the adjusting screw (20) at equal distances; a limiting ring (22) is welded to the outer wall of the adjusting inner cylinder (31) on a side close to the liquid recovery tank (4); a limiting cylinder sleeve (3101) is welded to the outer wall of the adjusting inner cylinder (31) away from the liquid recovery tank (4); and a limiting groove (3101) is provided on the outer wall of the adjusting inner cylinder (31). 2), the adjusting inner cylinder (31) is located outside the limiting groove (3102) and is sleeved with an adjusting outer cylinder (19); a lifting triangle (1901) is welded on the upper end of the adjusting outer cylinder (19); stabilizing plates (1902) are welded on the front and rear side walls of the adjusting outer cylinder (19); a sliding member (1904) corresponding to the limiting groove (3102) is welded on the top wall of the inner cavity of the adjusting outer cylinder (19); a spring support ring (1905) is welded on one side of the inner cavity of the adjusting outer cylinder (19) close to the limiting ring (22); a return spring (1903) is arranged between the spring support ring (1905) and the limiting ring (22); and a rectangular slot is opened in the middle of the upper side of the adjusting inner cylinder (31) located on the limiting groove (3102).

2. A glass fiber raw material separation device according to claim 1, characterized in that: The feeding device comprises a feeding box (9) welded to the side of a sedimentation box (12); a rotating wheel (901) is rotatably mounted in the middle of the feeding box (9); a stepping motor (14) is fixedly mounted on the rear side wall of the feeding box (9) at a horizontal position of the rotating wheel (901) by bolts; the bottom of the inner cavity of the feeding box (9) is an inclined slope structure; a liquid pump (10) is fixedly mounted at the lower front side of the feeding box (9); and an air pump (11) is fixedly mounted at the upper front side of the feeding box (9).

3. The glass fiber raw material separation device according to claim 1, characterized in that: The overflow device comprises an overflow plate (6) welded to the upper edge of the sedimentation box (12), a plurality of overflow grooves (601) are equidistantly provided on the bottom side of the overflow plate (6), and a waste liquid recovery pipe (7) is provided on the front side of the overflow plate (6) at the position of the overflow groove (601).

4. The glass fiber raw material separation device according to claim 1, characterized in that: The vibration device comprises a first elastic ring (25) fixedly welded to the lower surface of the vibration plate (21) at the front and rear sides of the arc-shaped member (27); a second elastic ring (26) is welded to the upper surface of the bubble generating member (23) at a position corresponding to the first elastic ring (25); and a floating member (29) is provided between the first elastic ring (25) and the second elastic ring (26).

5. A glass fiber raw material separation device according to claim 4, characterized in that: A protective plate (8) is welded to the rear edge of the upper end of the sedimentation box (12), a second drive motor group (15) is arranged in the middle of the rear side of the sedimentation box (12), and a micro drive motor corresponding to the discharge drum (16) is arranged inside the second drive motor group (15).

6. The glass fiber raw material separation device according to claim 1, characterized in that: A discharge plate (17) is welded to the middle of the upper side of the liquid recovery box (4), a metal sieve plate (1701) is fixedly installed in the middle of the discharge plate (17), an isolation plate (401) is welded to the upper edge of the liquid recovery box (4), a synchronous brush head (1) is welded to the middle of the upper side of the isolation plate (401), a spray pipe (2) is fixedly installed on the side wall of the inner cavity of the isolation plate (401) away from the support frame (5), and a first drive motor group (3) is fixedly installed on the rear side of the isolation plate (401), and a drive motor corresponding to the synchronous brush head (1) is arranged inside the first drive motor group (3).

Citation Information

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