Vermiculite processing production device

By designing a vermiculite processing and production device containing wave filter sponges and filter balls, the problem of sand removal difficulties in vermiculite production is solved, efficient screening and drying is achieved, and production efficiency is improved.

CN120228035APending Publication Date: 2025-07-01DONGGUAN GAOZHUO INTELLIGENT TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510545887.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-28
Publication Date
2025-07-01

AI Technical Summary

Technical Problem

During the existing vermiculite production process, it is difficult to effectively remove the sand doped in the raw materials, resulting in low screening efficiency and long pre-production preparation time, which affects production efficiency.

Method used

A vermiculite processing and production device is designed, including a wave filter sponge, an elastic connecting piece, a wave pumping plate, a filter ball and a drying mechanism. Through the action of airflow and magnetic force, the vermiculite raw materials can move smoothly and dry quickly during the filtration process, preventing sand from clogging pores and improving screening efficiency.

Benefits of technology

It realizes efficient screening and drying of vermiculite raw materials, reduces pre-production preparation time and improves production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a vermiculite processing production device, and relates to the technical field of vermiculite production. The vermiculite processing and producing device comprises a base, a shell, an air supply device, a filtering mechanism, a feeding box, a drying mechanism, a second air supply device and a driving device, the shell is fixedly connected to the top end of the base, the air supply device is fixedly connected to the bottom end of the right side of the shell, the filtering mechanism is fixedly connected into the shell, and the feeding box is fixedly connected to the left side of the shell; a drying mechanism is arranged below the left side of the feeding box, a second air supply device is fixedly arranged on the front side of the filtering mechanism, and a driving device is fixedly connected to the rear side of the drying mechanism; and through the filtering mechanism, the situation that too much sand is accumulated in the upper surface layer of the wave filtering sponge, pores in the surface of the wave filtering sponge are blocked, and the filtering effect on the sand in the vermiculite raw material is affected is prevented. The problem that the vermiculite production efficiency is affected due to the fact that the preparation time needed in the earlier stage of vermiculite production is long is solved.
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Description

Technical Field

[0001] The present invention relates to the technical field of vermiculite production, and particularly to a vermiculite processing and production device. Background Art

[0002] Vermiculite is a natural, inorganic, non-toxic mineral that expands under high-temperature action. It is a relatively rare mineral, belonging to silicate, and is also a commonly used material in building sound-absorbing materials.

[0003] During the production of vermiculite, the vermiculite raw materials need to be screened and dried before being calcined. However, since a large amount of sand and soil is doped in the vermiculite raw materials, after screening the vermiculite raw materials, some sand still cannot be removed and remains doped in the vermiculite raw materials. When screening the remaining sand in the vermiculite raw materials, the method of wind blowing is generally used for screening, but the method of wind blowing occupies a large area and has low efficiency. In addition, the vermiculite raw materials need to be dried before being calcined, so the pre-production preparation time of vermiculite is relatively long, which affects the production efficiency of vermiculite. Summary of the Invention

[0004] (I) Technical Problems to be Solved In view of the deficiencies of the prior art, the present invention provides a vermiculite processing and production device, which solves the problem that the pre-production preparation time required for vermiculite is relatively long, affecting the production efficiency of vermiculite.

[0005] (II) Technical Solutions To achieve the above objectives, the present invention is realized through the following technical solutions: A vermiculite processing and production device includes a base, a housing, a gas supply device, a filtering mechanism, a feeding box, a drying mechanism, a second gas supply device, and a driving device. The top end of the base is fixedly connected to the housing. The right bottom end of the housing is fixedly connected to the gas supply device. The filtering mechanism is fixedly connected inside the housing. The feeding box is fixedly connected to the left side of the housing. The drying mechanism is provided below the left side of the feeding box. The second gas supply device is fixedly provided on the front side of the filtering mechanism. The driving device is fixedly connected to the rear side of the drying mechanism.

[0006] Preferably, a guide piece is fixedly connected to the left side of the feeding box. The front side and the rear side of the gas supply device are fixedly connected to a conduit. The middle part on the right side inside the housing is fixedly connected to a guide plate. One side of the second gas supply device close to the drying mechanism is fixedly connected to an intake pipe. The other end of the intake pipe is fixedly connected to an intake ring. One side of the driving device close to the drying mechanism is fixed. An automatic opening and closing plate is provided on the left side of the housing.

[0007] Preferably, the filtering mechanism includes a wavy filtering sponge disposed inside the housing. Elastic connecting pieces are fixedly connected to both sides of the wavy filtering sponge. Wavy air extraction plates are evenly and fixedly connected to the bottom end of the wavy filtering sponge. There is a certain interval between the wavy air extraction plates. Connecting pipes are fixedly connected between both sides of the wavy air extraction plates. A straight pipe is fixedly connected to one side of the connecting pipe away from the wavy air extraction plates. A pushing strip is disposed between the intervals of the wavy air extraction plates. A magnetic sliding strip is fixedly connected to the bottom end of the pushing strip. Sliding frames are slidably connected to both sides of the magnetic sliding strip. The bottom ends of the sliding frames are fixedly connected to the inner bottom end of the housing. Elastic bases are fixedly connected to the four corners of the bottom end of the wavy air extraction plates. The bottom ends of the elastic bases are fixedly connected to the inner bottom end of the housing. An automatic opening and closing plate is provided on the left side of the housing.

[0008] Preferably, the filtering mechanism further includes an elastic swing pipe disposed above the middle of the inner bottom end of the housing. The elastic swing pipe is fixedly connected to the air supply device. One end of the elastic swing pipe away from the air supply device is fixedly connected to the bottom end of the wavy air extraction plate. A cushion strip is provided at the bottom end of the one end of the elastic swing pipe away from the air supply device. The bottom end of the cushion strip is fixedly connected to the inner bottom end of the housing. A hose is fixedly connected to the one end of the elastic swing pipe away from the air supply device. The other end of the hose is fixedly connected to a fixing ring. A circular pipe is rotatably connected to the middle of the fixing ring. Magnetic blocks are evenly provided on the outer side of the circular pipe. A rotating fan blade is fixedly connected inside the circular pipe.

[0009] Preferably, the straight pipe is fixedly connected to the conduit. The fixing ring on the one end of the circular pipe away from the air supply device is communicated with the circular pipe. The magnetic blocks are not on the same straight line, and the magnetic blocks are staggered from each other, so that the top end of the wavy filtering sponge can continuously bulge during the rotation of the magnetic blocks, enabling the vermiculite raw material to smoothly move on the surface of the wavy filtering sponge. The magnetic blocks and the magnetic sliding strip have the same magnetic property. The inner wall of the elastic swing pipe is a zigzag inner wall. Circular openings are evenly provided at the top end of the wavy air extraction plate, accelerating the air flow speed at the top end of the wavy filtering sponge and improving the drying efficiency of the vermiculite raw material.

[0010] Preferably, the drying mechanism includes a filtering ball disposed between the second air supply device and the driving device. Fixing frames are provided on the front and rear sides of the filtering ball. Fixing blocks are evenly and fixedly connected to the top and bottom of the middle of the fixing frames. Impact balls are rotatably connected to one ends of the fixing blocks close to the middle of the filtering ball through torsion springs. Second magnetic blocks are fixedly connected to the middle of the impact balls. Third magnetic blocks are evenly and fixedly connected to both sides of the outer side of the middle of the filtering ball. An air outlet cylinder is provided inside the filtering ball. Fixing springs are evenly and fixedly connected to both sides of the middle of the surface of the air outlet cylinder. Elastic air pipes are provided at the top ends of the fixing springs. The bottom ends of the elastic air pipes are fixedly connected to the air outlet cylinder. Rubber blocks are evenly and fixedly connected to the outer sides of the parts of the elastic air pipes above the fixing springs. A plurality of arc-shaped baffles are evenly and fixedly connected to the inner side of the filtering ball near the bottom end.

[0011] Preferably, the intake ring is fixedly connected between the filter balls and the air outlet cylinder. The air outlet cylinder and the intake ring are in communication. A plurality of circular air outlet holes are evenly arranged on the surface of the rubber block. A small rotating fan blade is fixedly connected to the inner bottom end of the elastic air pipe. A feed port is provided at the top of the filter ball to facilitate the entry and exit of vermiculite raw materials. The second magnetic block and the third magnetic block have the same magnetic property. Circular sieve holes are evenly formed on the surface of the filter ball. The rotating shaft passes through the filter ball and is fixedly connected therebetween. The rotating shaft passes through the air outlet cylinder and is rotatably connected to the air outlet cylinder.

[0012] (3) Beneficial effects (1) In the present invention, by providing the wavy filter sponge, elastic connecting piece, wavy air extraction plate, connecting pipe, straight pipe, pushing strip, magnetic sliding strip, sliding frame, elastic base, elastic swinging pipe, hose, fixing ring, and circular pipe in the filtering mechanism, the wavy filter sponge can continuously shake under the action of air flow to clean the sand in the vermiculite raw material passing above it, and under the action of magnetic force, the surface of the wavy filter sponge can continuously bulge so that the vermiculite raw material can smoothly move on the surface of the wavy filter sponge without being affected by the air flow, preventing the vermiculite raw material from being unable to smoothly move on the surface of the wavy filter sponge under the influence of the air flow and affecting the screening efficiency of the vermiculite raw material. At the same time, under the action of the air flow, the air flow velocity on the surface of the vermiculite raw material is increased to initially dry the vermiculite raw material and improve the drying efficiency of the vermiculite raw material.

[0013] (2) In the present invention, by providing the wavy filter sponge, elastic connecting piece, elastic swinging pipe, and hose in the filtering mechanism, while the wavy filter sponge can continuously shake under the action of air flow, the sand entering the wavy filter sponge can quickly settle to the inner bottom end of the wavy filter sponge, preventing excessive sand accumulation on the upper surface layer of the wavy filter sponge from blocking the pores on the surface of the wavy filter sponge and affecting the filtering effect of the sand in the vermiculite raw material.

[0014] (3) In the present invention, by providing the filter ball, fixing frame, fixing block, impact ball, second magnetic block, and third magnetic block in the drying mechanism, the impact ball can continuously knock on the filter ball under the action of magnetic force, so that while screening the vermiculite raw material in the filter ball, it can also prevent the vermiculite raw material from getting stuck in the sieve mesh on the surface of the filter ball and blocking the sieve mesh on the surface of the filter ball, affecting the screening effect of the smaller vermiculite raw material.

[0015] (4)In the present invention, through the air outlet cylinder, fixed spring, elastic air pipe, rubber block, arc-shaped baffle arranged in the drying mechanism, under the action of the early air flow, when the vermiculite raw material passes between the elastic air pipes, the elastic air pipes can continuously impact the vermiculite raw material to slow down the falling speed of the vermiculite raw material, and at the same time, cooperate with the air ejected through the rubber block to blow and dry the vermiculite between the elastic air pipes, accelerating the drying speed of the vermiculite. Through the cooperation between the drying mechanism and the filtering mechanism, the vermiculite raw material can be quickly dried and screened, reducing the time required for the preliminary preparation of vermiculite production and accelerating the production efficiency of vermiculite. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 is a schematic structural diagram of the present invention; Figure 2 is a schematic structural diagram of the filtering mechanism of the present invention; Figure 3 is a schematic structural diagram of the wave air extraction plate of the present invention; Figure 4 is a schematic structural diagram of the circular tube of the present invention; Figure 5 is a sectional view of the upper part of the elastic swing tube of the present invention; Figure 6 is a sectional view of the side of the circular tube of the present invention; Figure 7 is a schematic structural diagram of the drying mechanism of the present invention; Figure 8 is a schematic internal structure diagram of the filtering ball of the present invention; Figure 9 For the present invention Figure 8 is an enlarged view of the structure at A in

[0017] Among them, base 1, outer shell 2, guide plate 201, air supply device 3, conduit 301, filtering mechanism 4, wave filtering sponge 401, elastic connecting piece 402, wave air extraction plate 403, connecting pipe 404, straight pipe 405, pushing bar 406, magnetic sliding bar 407, sliding frame 408, elastic base 409, elastic swing tube 410, hose 411, fixing ring 412, circular tube 413, magnetic block 414, cushion strip 415, rotating fan blade 416, feeding box 5, guide piece 501, drying mechanism 6, filtering ball 601, fixing frame 602, fixing block 603, impact ball 604, second magnetic block 605, third magnetic block 606, air outlet cylinder 607, fixed spring 608, elastic air pipe 609, rubber block 610, arc-shaped baffle 611, second air supply device 7, air inlet pipe 701, air inlet ring 702, driving device 8, rotating shaft 801. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0018] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0019] As Figures 1-9 shown, an apparatus for processing and producing vermiculite according to an embodiment of the present invention includes a base 1, a housing 2, a gas supply device 3, a filtering mechanism 4, a feeding box 5, a drying mechanism 6, a second gas supply device 7, and a driving device 8. The top end of the base 1 is fixedly connected to the housing 2. The bottom end of the right side of the housing 2 is fixedly connected to the gas supply device 3. The filtering mechanism 4 is fixedly connected inside the housing 2. The feeding box 5 is fixedly connected to the left side of the housing 2. A drying mechanism 6 is provided below the left side of the feeding box 5. A second gas supply device 7 is fixedly provided on the front side of the filtering mechanism 4. The driving device 8 is fixedly connected to the rear side of the drying mechanism 6. A guide piece 501 is fixedly connected to the left side of the feeding box 5. A conduit 301 is fixedly connected to the front side and the rear side of the gas supply device 3. A guide plate 201 is fixedly connected to the middle of the right side inside the housing 2. An intake pipe 701 is fixedly connected to the side of the second gas supply device 7 close to the drying mechanism 6. The other end of the intake pipe 701 is fixedly connected to an intake ring 702. The driving device 8 is fixed to the side close to the drying mechanism 6. An automatic opening and closing plate is provided on the left side of the housing 2.

[0020] The filtering mechanism 4 includes a corrugated filtering sponge 401 disposed inside the housing 2. Elastic connecting pieces 402 are fixedly connected to both sides of the corrugated filtering sponge 401. Corrugated air extraction plates 403 are evenly and fixedly connected to the bottom end of the corrugated filtering sponge 401. There is a certain interval between the corrugated air extraction plates 403. Connecting pipes 404 are fixedly connected between both sides of the corrugated air extraction plates 403. A straight pipe 405 is fixedly connected to one side of the connecting pipe 404 away from the corrugated air extraction plates 403. A push bar 406 is provided between the intervals of the corrugated air extraction plates 403. A magnetic sliding bar 407 is fixedly connected to the bottom end of the push bar 406. Sliding frames 408 are slidably connected to both sides of the magnetic sliding bar 407. The bottom ends of the sliding frames 408 are fixedly connected to the inner bottom end of the housing 2. Elastic bases 409 are fixedly connected to the four corners of the bottom end of the corrugated air extraction plates 403. The bottom ends of the elastic bases 409 are fixedly connected to the inner bottom end of the housing 2. An automatic opening and closing plate is provided on the left side of the housing 2. The filtering mechanism 4 further includes an elastic swing pipe 410 disposed above the middle of the inner bottom end of the housing 2. The elastic swing pipe 410 is fixedly connected to the air supply device 3. One end of the elastic swing pipe 410 away from the air supply device 3 is fixedly connected to the bottom end of the corrugated air extraction plates 403. A cushion strip 415 is provided at the bottom end of one end of the elastic swing pipe 410 away from the air supply device 3. The bottom end of the cushion strip 415 is fixedly connected to the inner bottom end of the housing 2. A flexible pipe 411 is fixedly connected to one end of the elastic swing pipe 410 away from the air supply device 3. The other end of the flexible pipe 411 is fixedly connected to a fixing ring 412. A circular pipe 413 is rotatably connected to the middle of the fixing ring 412. Magnetic blocks 414 are evenly provided on the outer side of the circular pipe 413. A rotating fan blade 416 is fixedly connected inside the circular pipe 413. The straight pipe 405 is fixedly connected to the conduit 301. The fixing ring 412 on one end of the circular pipe 413 away from the air supply device 3 is communicated with the circular pipe 413. The magnetic blocks 414 are not on the same straight line. The magnetic blocks 414 are staggered from each other. The magnetic blocks 414 and the magnetic sliding bar 407 have the same magnetism. The inner wall of the elastic swing pipe 410 is a zigzag inner wall. Circular openings are evenly provided at the top end of the corrugated air extraction plates 403.

[0021] The drying mechanism 6 includes a filtering ball 601 disposed between the second air supply device 7 and the driving device 8. A fixing frame 602 is provided on the front side and the rear side of the filtering ball 601. At the top and bottom of the middle part of the fixing frame 602, fixing blocks 603 are evenly and fixedly connected. One end of the fixing block 603 close to the middle part of the filtering ball 601 is rotatably connected with an impact ball 604 through a torsion spring. A second magnetic block 605 is fixedly connected to the middle part of the impact ball 604. On both sides of the outer side of the middle part of the filtering ball 601, third magnetic blocks 606 are evenly and fixedly connected. An air outlet cylinder 607 is provided inside the filtering ball 601. Fixing springs 608 are evenly and fixedly connected to both sides of the middle part of the surface of the air outlet cylinder 607. An elastic air pipe 609 is provided at the top of the fixing spring 608. The bottom end of the elastic air pipe 609 is fixedly connected to the air outlet cylinder 607. Rubber blocks 610 are evenly and fixedly connected to the outer side of the part of the elastic air pipe 609 above the fixing spring 608. A plurality of arc-shaped baffles 611 are evenly and fixedly connected to the inner side of the filtering ball 601 near the bottom end. The air inlet ring 702 passes through the filtering ball 601 and is fixedly connected to the air outlet cylinder 607. The air outlet cylinder 607 and the air inlet ring 702 are communicated. A plurality of circular air outlet openings are evenly provided on the surface of the rubber block 610. A small rotating fan blade 416 is fixedly connected to the inner bottom end of the elastic air pipe 609. A feed inlet is provided at the top of the filtering ball 601. The second magnetic block 605 and the third magnetic block 606 have the same magnetic property. Circular sieve holes are evenly formed on the surface of the filtering ball 601. The rotating shaft 801 passes through the filtering ball 601 and is fixedly connected therebetween. The rotating shaft 801 passes through the air outlet cylinder 607 and is rotatably connected to the air outlet cylinder 607.

[0022] During use, start the air supply device 3 to fill air into the elastic swing tube 410. The air entering the elastic swing tube 410 impacts the zigzag inner wall of the elastic swing tube 410, causing the end of the elastic swing tube 410 away from the air supply device 3 to continuously swing, driving the wave air extraction plate 403 to continuously shake. As a result, the wave filter sponge 401 continuously shakes with the wave air extraction plate 403. Pour the vermiculite raw material from the right top end of the outer shell 2 and place it above the wave filter sponge 401. The vermiculite raw material moves along the surface of the wave filter sponge 401 to the left side of the wave filter sponge 401 for filtering. When the vermiculite raw material moves along the surface of the wave filter sponge 401 and shakes with the wave filter sponge 401 to the left side of the outer shell 2, the air filled into the elastic swing tube 410 enters the fixing ring 412 through the hose 411, and enters the circular tube 413 through the fixing ring 412 to push the rotating fan blade 416 to rotate. The rotation of the rotating fan blade 416 drives the circular tube 413 to rotate, and the rotation of the circular tube 413 drives the magnetic block 414 to rotate. When the magnetic block 414 rotates with the circular tube 413 and passes through the bottom end of the magnetic sliding strip 407, the magnetic sliding strip 407 is pushed upward by the mutual repulsion between the magnetic forces, and the magnetic sliding strip 407 pushes the push bar 406 upward. The upward movement of the push bar 406 pushes the wave filter sponge 401 to bulge upward. Since the magnetic blocks 414 are distributed on the outer side of the fixing ring 412 and are staggered from each other, the magnetic blocks 414 can push the push bar 406 to rise one by one during the rotation of the circular tube 413, making the wave filter sponge 401 bulge in a wave shape. At the same time, under the action of the air supply device 3, the air in the wave air extraction plate 403 is pumped into the air extraction device through the connecting pipe 404, the straight pipe 405 and the conduit 301, forming a negative pressure at the circular opening on the wave air extraction plate 403. As a result, the air in the wave filter sponge 401 is pumped into the wave air extraction plate 403 to adsorb the smaller sand in the vermiculite raw material moving on the surface of the wave filter sponge 401. At the same time, with the cooperation of the wave-shaped bulge of the wave filter sponge 401, the vermiculite raw material can smoothly move on the surface of the wave filter sponge 401, preventing the vermiculite raw material from being affected by the air flow and unable to move smoothly on the surface of the wave filter sponge 401, which affects the filtering efficiency of the vermiculite raw material. And under the shaking of the wave filter sponge 401, the smaller sand inhaled into the wave filter sponge 401 can quickly settle to the bottom end of the wave filter sponge 401, preventing the sand from accumulating on the surface of the wave filter sponge 401 and affecting the filtering effect of the sand in the vermiculite raw material.

[0023] After the filtration of the vermiculite raw material is completed, the automatic opening and closing plate on the left side of the outer shell 2 is started to allow the vermiculite raw material to enter the feeding box 5. At the same time, the feeding port provided on the filtration ball 601 is opened, and the vermiculite raw material entering the feeding box 5 is discharged through the guiding piece 501 and enters the filtration ball 601 through the feeding port on the filtration ball 601. After closing the feeding port, the driving device 8 is started to drive the rotation of the rotating shaft 801. The rotation of the rotating shaft 801 drives the rotation of the filtration ball 601. During the rotation of the filtration ball 601, the second air supply device 7 is started to inject air into the air outlet cylinder 607 through the air inlet pipe 701 and the air inlet ring 702. The air entering the air outlet cylinder 607 is ejected through the elastic air pipe 609. When the air flow enters the elastic air pipe 609, it pushes the rotating fan blade 416 provided in the elastic air pipe 609 to rotate, so that the elastic air pipe 609 rotates accordingly. Since the elastic air pipe 609 has a certain elasticity, the elastic air pipe 609 can continuously swing during the rotation process. During the rotation of the filtration ball 601, the vermiculite raw material in the filtration ball 601 is driven by the arc-shaped baffle 611, so that the vermiculite raw material enters between the arc-shaped baffles 611. As the filtration ball 601 rotates, the vermiculite raw material between the arc-shaped baffles 611 is driven to move to the upper left of the air outlet cylinder 607. When the filtration ball 601 rotates a certain angle, the vermiculite raw material between the arc-shaped baffles 611 falls out and lands on the top of the air outlet cylinder 607. The vermiculite raw material landing on the top of the air outlet cylinder 607 passes through between the elastic air pipes 609 and finally falls back into the bottom of the filtration ball 601. During the process of the vermiculite raw material passing through between the elastic air pipes 609, the continuous swinging of the elastic air pipes 609 impacts the vermiculite raw material to extend the time for the vermiculite raw material to pass through between the elastic air pipes 609, and the air ejected from the rubber block 610 blows the vermiculite raw material between the elastic air pipes 609 to dry it, accelerating the drying speed of the vermiculite raw material. When the vermiculite raw material passes through the elastic air pipe 609 and falls back to the bottom of the filtration ball 601, the continuous rotation of the filtration ball 601 drives the third magnetic block 606 to rotate, so that when the third magnetic block 606 moves below the second magnetic block 605, it pushes the impact ball 604 to move upward. When the third magnetic block 606 moves away from the second magnetic block 605, the impact ball 604 quickly resets under the action of the torsion spring and impacts the corrugated filter sponge 401, causing the filtration ball 601 to jolt, so that the vermiculite raw material falling back to the bottom of the filtration ball 601 bounces up to screen the vermiculite raw material that does not meet the size requirements in the vermiculite raw material, so that the vermiculite raw material that does not meet the size requirements is discharged through the screen on the surface of the filtration ball 601. And when the part of the filtration ball 601 fixedly connected to the arc-shaped baffle 611 passes under the bottom end of the impact ball 604 placed above the filtration ball 601, the impact ball 604 impacts the filtration ball 601 to shake out the vermiculite raw material stuck in the screen of the filtration ball 601, preventing the vermiculite raw material from being stuck in the screen of the filtration ball 601 and affecting the screening effect of the vermiculite raw material.After the screening and drying of the vermiculite raw material are completed, open the feed inlet provided on the filter ball 601 and rotate the filter ball 601 through the driving device 8 so that the feed inlet is at the bottom end of the filter ball 601, then the vermiculite raw material can be discharged.

Claims

1. A vermiculite processing and production device, comprising a base (1), a housing (2), an air supply device (3), a filtering mechanism (4), a feed box (5), a drying mechanism (6), a second air supply device (7), and a driving device (8), characterized in that: The top of the base (1) is fixedly connected to a housing (2), the bottom right end of the housing (2) is fixedly connected to an air supply device (3), the inside of the housing (2) is fixedly connected to a filter mechanism (4), the left side of the housing (2) is fixedly connected to a feed box (5), a drying mechanism (6) is provided below the left side of the feed box (5), a second air supply device (7) is fixedly provided on the front side of the filter mechanism (4), and a driving device (8) is fixedly connected to the rear side of the drying mechanism (6).

2. The vermiculite processing and production device according to claim 1, characterized in that: The left side of the feed box (5) is fixedly connected to a guide vane (501); the front and rear sides of the air supply device (3) are fixedly connected to a guide tube (301); the middle part of the right side of the housing (2) is fixedly connected to a guide plate (201); the side of the second air supply device (7) close to the drying mechanism (6) is fixedly connected to an air intake pipe (701); the other end of the air intake pipe (701) is fixedly connected to an air intake ring (702); the driving device (8) is fixedly connected to the side close to the drying mechanism (6); and an automatic opening and closing plate is provided on the left side of the housing (2).

3. The vermiculite processing and production device according to claim 1, characterized in that: The filtering mechanism (4) comprises a wave filtering sponge (401) arranged in the housing (2), elastic connecting sheets (402) being fixedly connected to both sides of the wave filtering sponge (401), wave suction plates (403) being evenly fixedly connected to the bottom end of the wave filtering sponge (401), a certain interval being left between the wave suction plates (403), connecting pipes (404) being fixedly connected between both sides of the wave suction plates (403), and a straight pipe (405) being fixedly connected to the side of the connecting pipe (404) away from the wave suction plate (403). ), a push bar (406) is provided between the intervals of the wave exhaust plate (403), the bottom end of the push bar (406) is fixedly connected to a magnetic sliding bar (407), both sides of the magnetic sliding bar (407) are slidably connected to sliding frames (408), the bottom end of the sliding frame (408) is fixedly connected to the inner bottom end of the shell (2), the four corners of the bottom end of the wave exhaust plate (403) are fixedly connected to elastic bases (409), the bottom end of the elastic base (409) is fixedly connected to the inner bottom end of the shell (2), and an automatic opening and closing plate is provided on the left side of the shell (2).

4. The vermiculite processing and production device according to claim 3, characterized in that: The filtering mechanism (4) further comprises an elastic swinging tube (410) arranged above the middle of the inner bottom end of the outer shell (2); the elastic swinging tube (410) is fixedly connected to the air supply device (3); the top end of the elastic swinging tube (410) away from the air supply device (3) is fixedly connected to the bottom end of the wave suction plate (403); a cushion strip (415) is provided at the bottom end of the elastic swinging tube (410) away from the air supply device (3); the bottom end of the cushion strip (415) is fixedly connected to the inner bottom end of the outer shell (2); the end of the elastic swinging tube (410) away from the air supply device (3) is fixedly connected to a hose (411); the other end of the hose (411) is fixedly connected to a fixing ring (412); the middle part of the fixing ring (412) is rotatably connected to a circular tube (413); magnetic blocks (414) are evenly provided on the outer side of the circular tube (413); and a rotating fan blade (416) is fixedly connected inside the circular tube (413).

5. The vermiculite processing and production device according to claim 3, characterized in that: The straight tube (405) is fixedly connected to the conduit (301); a fixed ring (412) on one end of the circular tube (413) away from the air supply device (3) is connected to the circular tube (413); the magnetic blocks (414) are not on the same straight line; the magnetic blocks (414) are staggered with each other; the magnetic blocks (414) and the magnetic sliding bar (407) have the same magnetic properties; the inner wall of the elastic swing tube (410) is a zigzag inner wall; and circular openings are evenly arranged at the top of the wave suction plate (403).

6. The vermiculite processing and production device according to claim 1, characterized in that: The drying mechanism (6) comprises a filter ball (601) arranged between a second air supply device (7) and a driving device (8); a fixing frame (602) is arranged on the front side and the rear of the filter ball (601); a fixing block (603) is evenly fixedly connected to the top and bottom ends of the middle part of the fixing frame (602); an impact ball (604) is rotatably connected to one end of the fixing block (603) close to the middle part of the filter ball (601) via a torsion spring; a second magnetic block (605) is fixedly connected to the middle part of the impact ball (604); and second magnetic blocks (605) are evenly fixedly connected to the outer sides of the middle part of the filter ball (601). Three magnetic blocks (606), a punching bag (607) is arranged inside the filter ball (601), fixed springs (608) are evenly fixedly connected to both sides of the middle of the surface of the punching bag (607), an elastic air tube (609) is arranged at the top of the fixed spring (608), the bottom of the elastic air tube (609) is fixedly connected to the punching bag (607), a rubber block (610) is evenly fixedly connected to the outer side of the elastic air tube (609) above the fixed spring (608), and a plurality of arc-shaped baffles (611) are evenly fixedly connected to the inner side of the filter ball (601) near the bottom.

7. The vermiculite processing and production device according to claim 6, characterized in that: The air inlet ring (702) passes through the filter ball (601) and is fixedly connected to the air outlet cylinder (607). The air outlet cylinder (607) and the air inlet ring (702) are connected. A plurality of circular air outlets are evenly arranged on the surface of the rubber block (610). A small rotating fan blade (416) is fixedly connected to the inner bottom end of the elastic air pipe (609). A feed inlet is arranged on the top of the filter ball (601). The second magnetic block (605) and the third magnetic block (606) have the same magnetic properties. Circular sieve holes are evenly arranged on the surface of the filter ball (601). The rotating shaft (801) passes through the filter ball (601) and is fixedly connected to the filter ball (601). The rotating shaft (801) passes through the air outlet cylinder (607) and is rotatably connected to the air outlet cylinder (607).