Stock bin material taking equipment for preventing high-powder-content dolomite from caking

By designing the material collection equipment for dolomite, the design of the swing connection plate is used to solve the problem of dolomite agglomeration, the conveying efficiency is improved, and the agglomeration treatment effect is further improved through secondary treatment.

CN120117291AInactive Publication Date: 2025-06-10SINOHYDRO BEREAU 10 CO LTD

Patent Information

Application Number
CN202510608998.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-13
Publication Date
2025-06-10
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

During the storage process, the particles are dissolved and re-crystallized due to moisture, forming blocks, resulting in agglomeration, affecting subsequent use.

Method used

A silo material collection device for preventing high powder dolomite from agglomerating, including a hollow material collector, is designed, with inclined first and second connecting plates, and the connecting plate is pushed to swing through the moving component control rod, which drives the dolomite to shake and slide, and separate the agglomeration.

Benefits of technology

Effectively prevent dolomite from agglomerating, improve the transportation and transportation efficiency of dolomite, and further process the agglomerated dolomite through secondary jitter separation to improve the treatment effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention belongs to the technical field of material transportation, and particularly relates to stock bin material taking equipment for preventing high-powder-content dolomite from caking, the stock bin material taking equipment comprises a hollow material taking device, the bottom end of the material taking device is conical and is provided with an opening, the top end of the material taking device is provided with a feeding port, and the bottom of the material taking device is provided with a support set capable of enabling the material taking device to move; the moving assembly controls the ejector rod to move up and down repeatedly so that the ejector rod can push the first connecting plate to swing, the first connecting plate can drive the second connecting plate to swing synchronously through the connecting rope while swinging, and at the moment, dolomite falling onto the first connecting plate can shake and slide on the inclined first connecting plate; and the dolomite is continuously shaken until the dolomite falls onto the second connecting plate, so that the caked dolomite can be shaken away on the first connecting plate and the second connecting plate, and the problem that the dolomite is caked is solved. By means of the material taking equipment, the conveying and transporting efficiency of dolomite can be greatly improved.
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Description

Technical Field

[0001] The present invention belongs to the technical field of material transportation, and specifically relates to a bin reclaiming device for preventing high-powder dolomite from caking. Background Art

[0002] Dolomite is a common sedimentary rock mainly composed of calcium carbonate and magnesium carbonate, and is widely used in industries such as construction, metallurgy, and chemical engineering. Dolomite is usually stored in a bin. The bin can stack materials vertically, making full use of space, reducing the floor area, and at the same time protecting the dolomite from moisture, pollution or caking, and reducing breakage and loss caused by external forces. In addition, the bin design facilitates automatic reclaiming and conveying, improving production efficiency and management convenience, and is an indispensable storage solution in modern industrial production. However, the above technologies often have the following defects: When reclaiming and transporting dolomite in the bin, equipment such as a conveyor belt needs to be placed at the discharge port of the bin for reclaiming and transporting. However, there are a lot of dust on the surface of dolomite itself. During storage, it is inevitable that some dolomite will dissolve and recrystallize on the surface of the particles due to moisture, resulting in the particles sticking together to form lumps, thus causing the dolomite to cake and affecting subsequent use. Therefore, the present invention provides a bin reclaiming device for preventing high-powder dolomite from caking. Summary of the Invention

[0003] In order to make up for the deficiencies of the prior art and solve at least one of the technical problems proposed in the background art.

[0004] The technical solution adopted by the present invention to solve its technical problems is as follows: A bin reclaiming device for preventing high-powder dolomite from caking according to the present invention includes a hollow reclaiming device. The bottom end of the reclaiming device is conical and open. The top end of the reclaiming device is provided with a feed inlet, and a support group for moving the reclaiming device is arranged at the bottom of the reclaiming device. The inner wall of the reclaiming device is rotationally connected with a first connecting plate and a second connecting plate through a rotating shaft. The first connecting plate and the second connecting plate are inclined, and the first connecting plate is higher than the second connecting plate. A connecting rope is fixedly connected between the bottom surface of the first connecting plate and the second connecting plate. A fixing plate is fixedly connected to the inner wall of the reclaiming device, and a hollow column is fixedly connected to the top surface of the fixing plate. A push rod for pushing the first connecting plate is arranged in the hollow column, and a moving component for driving the push rod to move is arranged on the reclaiming device.

[0005] Preferably, a collecting bin is fixedly connected to the side wall of the reclaiming device. A communicating feed groove is formed between the collecting bin and the inner wall of the reclaiming device. An elastic net is fixedly connected between the second connecting plate and the inner wall of the reclaiming device. The elastic net is flush with the feed groove, and a pair of rectangular grooves are formed on the second connecting plate.

[0006] Preferably, a hydraulic rod is fixedly connected to the bottom surface of the inner wall of the collection bin. A push plate is arranged at the output end of the hydraulic rod. A discharge chute is formed between the inner wall of the collection bin and the inner wall of the material taking device. A swing assembly for swinging the push plate is arranged in the collection bin.

[0007] Preferably, the swing assembly includes a spherical ball fixedly connected to the top end of the output end of the hydraulic rod. The surface of the spherical ball is movably connected with a connecting shell. The top end of the connecting shell is fixedly connected with a push plate. A first fixing block is fixedly connected to one side of the inner wall of the collection bin close to the feed chute. A second fixing block is fixedly connected to one side of the inner wall of the collection bin close to the discharge chute.

[0008] Preferably, the moving assembly includes an elastic ring fixedly connected to the bottom surface of the inner wall of the collection bin. The inside of the elastic ring is of a hollow structure. A pressing ring is fixedly connected to the output end of the hydraulic rod. The top rod is hermetically and slidably connected to the top end of the hollow column. A first spring is fixedly connected between the bottom surface of the top rod and the inner wall of the hollow column. A conduit is communicated between the elastic ring and the hollow column.

[0009] Preferably, a pair of rectangular plates corresponding to the rectangular grooves are fixedly connected to the inner wall of the collection bin. A group of dredging rods are fixedly connected to the bottom surface of the rectangular plates.

[0010] Preferably, a rectangular block is fixedly connected to the bottom surface of the first connecting plate. The top surface of the rectangular block is open. A moving groove corresponding to the open end of the rectangular block is formed in the bottom surface of the first connecting plate. A driving plate is arranged in the rectangular block. A plurality of push rods are fixedly connected to the top surface of the driving plate. The push rods extend to the top surface of the first connecting plate. A driving assembly for driving the driving plate is arranged in the material taking device.

[0011] Preferably, the driving assembly includes an elastic block fixedly connected to the inner wall of the material taking device. The inside of the elastic block is of a hollow structure, and the top surface of the elastic block is in contact with the first connecting plate. The driving plate is hermetically and slidably connected to the inner wall of the rectangular block and also hermetically and slidably connected to the inner wall of the moving groove. A group of second springs are fixedly connected between the bottom surface of the driving plate and the inner wall of the rectangular groove. A connecting pipe is communicated between the inside of the elastic block and the inside of the rectangular block.

[0012] Preferably, a hollow block is fixedly connected to the side wall of the material taking device. An air inlet groove is formed in one side of the hollow block close to the material taking device. A through groove communicated with the air inlet groove is formed in the side wall of the material taking device. A suction pump is communicated with the other side of the hollow block far from the material taking device. The suction end of the suction pump extends into the hollow block. A filter screen covering the suction end is fixedly connected to the inner wall of the hollow block. The bottom end of the hollow block is open, and a sealing plate for sealing it is arranged at the bottom end of the hollow block. The sealing plate is installed by screws.

[0013] Preferably, a set of first magnetic blocks are fixedly connected to the side of the filter net away from the suction pump. A connecting shaft is fixedly connected to the inner wall of the hollow block. The connecting shaft is located inside the filter net. A set of driving blades are fixedly connected to the surface of the connecting shaft. A second magnetic block is fixedly connected to the side of the driving blade away from the suction pump. The first magnetic block and the second magnetic block are arranged to repel each other.

[0014] The beneficial effects of the present invention are as follows: 1. In the present invention, the moving component controls the ejector rod to move up and down repeatedly, so that the ejector rod pushes the first connecting plate to swing. While the first connecting plate is swinging, it will drive the second connecting plate to swing synchronously through the connecting rope. At this time, the dolomite falling on the first connecting plate will vibrate, and will slide on the inclined first connecting plate until it falls on the second connecting plate and continues to vibrate until it finally falls from the material taking device onto the conveyor belt and is transported away. Thus, the caked dolomite can be shaken off on the first connecting plate and the second connecting plate to solve the problem of dolomite caking. Through this material taking device, the conveying and transportation efficiency of dolomite can be greatly improved.

[0015] 2. When the dolomite slides on the second connecting plate in the present invention, it will pass through the rectangular groove. At this time, the dolomite can fall from the rectangular groove, and then fall from the material taking device onto the conveyor belt. Part of the dolomite that still has caking will continue to slide on the second connecting plate, and then enter the collection bin through the feed slot, waiting to be put into the material taking device from the feed port again for separation later, thereby further improving the effect of treating caked dolomite. Description of the Drawings

[0016] The present invention will be further described below with reference to the drawings.

[0017] Figure 1 is the three-dimensional view of the material taking device in the present invention; Figure 2 is the internal structure schematic diagram of the material taking device and the collection bin in the present invention; Figure 3 is Figure 2 the enlarged view of A in Figure 4 is Figure 2 the side view of Figure 5 is Figure 4 the enlarged view of B in Figure 6 is the structure schematic diagram of the material taking device and the hollow block in the present invention; Figure 7 is the internal structure schematic diagram of the material taking device in the present invention.

[0018] In the figure: 1, material picker; 2, feed inlet; 3, first connecting plate; 4, second connecting plate; 5, connecting rope; 6, bracket group; 7, hollow column; 8, push rod; 9, fixed plate; 10, rectangular groove; 11, elastic net; 12, feed trough; 13, collecting bin; 14, hydraulic rod; 15, push plate; 16, discharge trough; 17, first fixed block; 18, second fixed block; 19, connecting shell; 20, sphere; 21, elastic ring; 22, pressure ring; 23, conduit; 24, rectangular plate; 25, dredging rod; 26, driving plate; 27, rectangular block; 28, push rod; 29, elastic block; 30, connecting pipe; 31, hollow block; 32, suction pump; 33, air inlet groove; 34, filter net; 35, connecting shaft; 36, driving leaf; 37, first magnetic block; 38, second magnetic block. DETAILED DESCRIPTION

[0019] In order to make the technical means, creative features, objectives and effects achieved by the present invention easy to understand, the present invention is further explained below in conjunction with specific implementation methods.

[0020] Embodiment 1: Figures 1 to 4 As shown, a silo reclaiming device for preventing high-powder dolomite from agglomerating according to an embodiment of the present invention comprises a hollow reclaimer 1, the bottom end of the reclaimer 1 is conical and has an opening, a feed port 2 is provided at the top of the reclaimer 1, and a bracket group 6 for enabling the reclaimer 1 to move is provided at the bottom; the inner wall of the reclaimer 1 is rotatably connected with a first connecting plate 3 and a second connecting plate 4 through a rotating shaft, the first connecting plate 3 and the second connecting plate 4 are tilted, and the first connecting plate 3 is higher than the second connecting plate 4, and a connecting rope 5 is fixedly connected between the bottom surface of the first connecting plate 3 and the second connecting plate 4; the inner wall of the reclaimer 1 is fixedly connected with a fixing plate 9, the top surface of the fixing plate 9 is fixedly connected with a hollow column 7, a top rod 8 for pushing the first connecting plate 3 is provided in the hollow column 7, and a moving component for driving the top rod 8 to move is provided on the reclaimer 1; When this application needs to extract dolomite from the silo, the extractor 1 can be placed under the silo, and then the conveyor belt can be assembled under the extractor 1. After that, the dolomite can be extracted by means of the extractor 1. First, let the dolomite discharge from the discharge port of the silo. At this time, the dolomite will enter the first connecting plate 3 in the extractor 1 from the feed port 2. The lifting rod 8 is controlled by the moving assembly to move up and down repeatedly, so that the lifting rod 8 pushes the first connecting plate 3 to swing. While the first connecting plate 3 is swinging, it will drive the second connecting plate 4 to swing synchronously through the connecting rope 5. At this time, the dolomite falling on the first connecting plate 3 will vibrate and slide on the inclined first connecting plate 3 until it falls on the second connecting plate 4 and continues to vibrate until it finally falls from the extractor 1 onto the conveyor belt and is transported away. Thus, the caked dolomite can be shaken off on the first connecting plate 3 and the second connecting plate 4 to solve the problem of caking of dolomite.

[0021] A collecting bin 13 is fixedly connected to the side wall of the extractor 1. A communicating feed groove 12 is formed between the inner wall of the collecting bin 13 and the inner wall of the extractor 1. An elastic net 11 is fixedly connected between the second connecting plate 4 and the inner wall of the extractor 1. The elastic net 11 is flush with the feed groove 12. A pair of rectangular grooves 10 are formed in the second connecting plate 4. When the dolomite in this application slides on the second connecting plate 4, it will pass through the rectangular grooves 10. At this time, the dolomite can fall from the rectangular grooves 10 and then fall from the extractor 1 onto the conveyor belt. Some dolomite that still has caking will continue to slide on the second connecting plate 4 and then enter the collecting bin 13 from the feed groove 12, waiting to be put into the extractor 1 from the feed port 2 again for separation later, so as to further improve the effect of treating caked dolomite.

[0022] A hydraulic rod 14 is fixedly connected to the bottom surface of the inner wall of the collecting bin 13. A push plate 15 is arranged at the output end of the hydraulic rod 14. A discharge groove 16 is formed between the inner wall of the collecting bin 13 and the inner wall of the extractor 1. A swinging assembly for swinging the push plate 15 is arranged in the collecting bin 13. In this application, the initial state of the push plate 15 is inclined to the side away from the feed groove 12. The dolomite entering the collecting bin 13 from the feed groove 12 can fall on the push plate 15. Then, when this part of the caked dolomite needs to be processed again, the output end of the hydraulic rod 14 can be controlled to rise, so that the output end of the hydraulic rod 14 pushes the push plate 15. During the rising process of the push plate 15, the push plate 15 can swing by means of the swinging assembly, so that the push plate 15 is inclined to the side close to the discharge groove. Then, when the inclined side of the push plate 15 moves to the discharge groove 16, the caked dolomite can be discharged from the discharge groove 16 onto the first connecting plate 3 for shaking and separating again. Through the above mechanism, the effect of automatically performing secondary shaking and separating on the caked dolomite is achieved.

[0023] The swinging assembly includes a spherical ball 20 fixedly connected to the top end of the output end of the hydraulic rod 14. The surface of the spherical ball 20 is movably connected to a connecting shell 19. The top end of the connecting shell 19 is fixedly connected to a pushing plate 15. On one side of the inner wall of the collecting bin 13 close to the feeding chute 12, a first fixing block 17 is fixedly connected. On one side of the inner wall of the collecting bin 13 close to the discharging chute 16, a second fixing block 18 is fixedly connected; when the pushing plate 15 in this application moves upward, the pushing plate 15 will pass by the second fixing block 18. At this time, the pushing plate 15 will be pushed by the second fixing block 18, causing the pushing plate 15 to rotate and tilt towards the side close to the discharging chute 16, and then continue to rise until the inclined side of the pushing plate 15 aligns with the discharging chute 16. At this time, the dolomite on the pushing plate 15 can be discharged from the discharging chute 16. When the pushing plate 15 moves downward, the pushing plate 15 will be pushed by the first fixing block 17, causing the pushing plate 15 to tilt away from the feeding chute 12, and then the pushing plate 15 continues to move downward, making the higher side of the pushing plate 15 align with the feeding chute 12 to facilitate the dolomite to fall onto the pushing plate 15.

[0024] The moving assembly includes an elastic ring 21 fixedly connected to the bottom surface of the inner wall of the collecting bin 13. The inside of the elastic ring 21 is a hollow structure. The output end of the hydraulic rod 14 is fixedly connected to a pressing ring 22. The top rod 8 is hermetically and slidably connected to the top end of the hollow column 7. A first spring is fixedly connected between the bottom surface of the top rod 8 and the inner wall of the hollow column 7. A conduit 23 is communicated between the elastic ring 21 and the hollow column 7; when this application needs the first connecting plate 3 and the second connecting plate 4 to swing, the output end of the hydraulic rod 14 can be repeatedly moved up and down, so that the pressing ring 22 moves up and down to repeatedly squeeze the elastic ring 21. When the elastic ring 21 is squeezed, the gas in the elastic ring 21 will enter the hollow column 7 through the conduit 23. At this time, the gas will push the top rod 8, causing the top rod 8 to push the first connecting plate 3 to rotate upward. When the elastic ring 21 is not squeezed by the pressing ring 22, the top rod 8 will lose the force to push the first connecting plate 3. At this time, the first connecting plate 3 will rotate downward. While the first connecting plate 3 rotates, it will drive the second connecting plate 4 to rotate synchronously. In this way, the first connecting plate 3 and the second connecting plate 4 can be repeatedly swung to process the agglomerated dolomite.

[0025] A pair of rectangular plates 24 corresponding to the rectangular grooves 10 are fixedly connected to the inner wall of the collection bin 13, and a group of dredging rods 25 are fixedly connected to the bottom surface of the rectangular plates 24. When dolomite enters and exits through the rectangular grooves 10 in this application, in order to prevent the rectangular grooves 10 from being blocked, the output end of the hydraulic rod 14 can be moved downward to the maximum stroke, so that the elastic ring 21 is squeezed to the limit by the pressing ring 22. At this time, the gas in the elastic ring 21 will enter the hollow column 7 through the conduit 23, so that the ejector rod 8 moves upward to the maximum stroke to push the first connecting plate 3. At this time, the second connecting plate 4 will be pulled, and the dredging rod 25 on the rectangular plate 24 at this time will be inserted into the rectangular groove 10 to dredge the dolomite stuck in the rectangular groove 10, thereby ensuring the smoothness of the rectangular groove 10.

[0026] A rectangular block 27 is fixedly connected to the bottom surface of the first connecting plate 3. The top surface of the rectangular block 27 is open. A moving groove corresponding to the open end of the rectangular block 27 is opened on the bottom surface of the first connecting plate 3. A driving plate 26 is arranged in the rectangular block 27. A plurality of push rods 28 are fixedly connected to the top surface of the driving plate 26. The push rods 28 extend to the top surface of the first connecting plate 3. A driving component for driving the driving plate 26 is arranged in the material taking device 1. During the swinging process of the first connecting plate 3 in this application, the driving component can be used to drive the driving plate 26 to move up and down. When the driving plate 26 moves upward, it will drive the push rods 28 to push the dolomite on the first connecting plate 3, so that the agglomerated dolomite can be pushed apart. At the same time, the dolomite can also be pushed and thrown higher, so that the dolomite will receive a greater impact force when it falls on the first connecting plate 3, further improving the treatment effect on the agglomerated dolomite.

[0027] The driving component includes an elastic block 29 fixedly connected to the inner wall of the material taking device 1. The inside of the elastic block 29 is a hollow structure, and the top surface of the elastic block 29 is in contact with the first connecting plate 3. The driving plate 26 is hermetically slidable with the inner wall of the rectangular block 27, and the driving plate 26 is also hermetically slidably connected with the inner wall of the moving groove. A group of second springs are fixedly connected between the bottom surface of the driving plate 26 and the inner wall of the rectangular groove 10. A connecting pipe 30 is communicated between the inside of the elastic block 29 and the inside of the rectangular block 27. When the first connecting plate 3 swings downward in this application, it will squeeze the elastic block 29. At this time, the gas in the elastic block 29 will enter the rectangular block 27 through the connecting pipe 30, so that the gas pushes the driving plate 26 upward to let the push rods 28 push the dolomite on the first connecting plate 3. When the first connecting plate 3 moves upward, the elastic block 29 is no longer squeezed. At this time, the elastic block 29 will recover, and at the same time, the driving plate 26 will also be reset under the pulling of the second spring.

[0028] Embodiment 2: As Figures 5 to 7As shown, compared with the first comparative example, another implementation manner of the present invention is as follows: A hollow block 31 is fixedly connected to the side wall of the material extractor 1. An air inlet groove 33 is formed on the side of the hollow block 31 close to the material extractor 1. A through groove communicating with the air inlet groove 33 is formed on the side wall of the material extractor 1. A suction pump 32 is communicated with the side of the hollow block 31 away from the material extractor 1. The suction end of the suction pump 32 extends into the hollow block 31. A filter screen 34 covering the suction end is fixedly connected to the inner wall of the hollow block 31. The bottom end of the hollow block 31 is open, and a sealing plate for sealing it is arranged at the bottom end of the hollow block 31. The sealing plate is installed by screws; when the dolomite in the material extractor 1 of this application shakes, the dust on its surface will also be shaken off. At this time, a large amount of dust will be generated in the material extractor 1. At this time, the suction pump 32 can be used to generate suction force, so that the dust in the material extractor 1 can be sucked into the hollow block 31 from the air inlet groove 33 for storage in the hollow block 31, which is convenient for subsequent centralized treatment.

[0029] A group of first magnetic blocks 37 are fixedly connected to the side of the filter screen 34 away from the suction pump 32. A connecting shaft 35 is fixedly connected to the inner wall of the hollow block 31. The connecting shaft 35 is located inside the filter screen 34. A group of driving blades 36 are fixedly connected to the surface of the connecting shaft 35. A second magnetic block 38 is fixedly connected to the side of the driving blade 36 away from the suction pump 32. The first magnetic block 37 and the second magnetic block 38 are arranged to repel each other; when the suction pump 32 in this application sucks air, the driving blade 36 will rotate driven by the airflow. At this time, the second magnetic block 38 will intermittently pass by the first magnetic block 37, so that the first magnetic block 37 drives the filter screen 34 to shake, so as to shake off the dust adsorbed on the filter screen 34 and prevent the filter screen 34 from being blocked, affecting the suction effect of the suction pump 32.

[0030] Working principle: Place the material picker 1 under the silo, then assemble the conveyor belt under the material picker 1. After that, the dolomite can be picked up by the material picker 1. First, let the dolomite discharge from the discharge port of the silo. At this time, the dolomite will enter the first connecting plate 3 inside the material picker 1 from the feed port 2. The lifting rod 8 is controlled by the moving component to move up and down repeatedly, so that the lifting rod 8 pushes the first connecting plate 3 to swing. While the first connecting plate 3 is swinging, it will drive the second connecting plate 4 to swing synchronously through the connecting rope 5. At this time, the dolomite falling on the first connecting plate 3 will vibrate and slide on the inclined first connecting plate 3 until it falls on the second connecting plate 4 and continues to vibrate until it finally falls from the material picker 1 onto the conveyor belt and is transported away. Thus, the caked dolomite can be shaken off on the first connecting plate 3 and the second connecting plate 4 to solve the problem of dolomite caking. When the dolomite slides on the second connecting plate 4, it will pass through the rectangular groove 10. At this time, the dolomite can fall from the rectangular groove 10 and then fall from the material picker 1 onto the conveyor belt. Some dolomite that still has caking will continue to slide on the second connecting plate 4 and then enter the collection bin 13 from the feed groove 12, waiting to be put into the material picker 1 from the feed port 2 again for separation later, so as to further improve the effect of treating caked dolomite. In the present application, the initial state of the push plate 15 is inclined away from the feed groove 12. The dolomite entering the collection bin 13 from the feed groove 12 can fall on the push plate 15. Then, when this part of the caked dolomite needs to be processed again, the output end of the hydraulic rod 14 can be controlled to rise, so that the output end of the hydraulic rod 14 pushes the push plate 15. During the rising process of the push plate 15, the push plate 15 can swing by means of the swinging component, making the push plate 15 inclined towards the side close to the discharge groove. Then, when the inclined side of the push plate 15 moves to the discharge groove 16, the caked dolomite can be discharged from the discharge groove 16 onto the first connecting plate 3 for shaking and separating again. Through the above mechanism, the effect of automatically performing secondary shaking and separating on the caked dolomite is achieved. When the push plate 15 in the present application moves upward, the push plate 15 will pass through the second fixing block 18. At this time, the push plate 15 will be pushed by the second fixing block 18, making the push plate 15 rotate and incline towards the side close to the discharge groove 16. Then, it continues to rise until the inclined side of the push plate 15 aligns with the discharge groove 16. At this time, the dolomite on the push plate 15 can be discharged from the discharge groove 16. When the push plate 15 moves downward, the push plate 15 will be pushed by the first fixing block 17, making the push plate 15 inclined away from the feed groove 12. Then, the push plate 15 continues to move downward, making the higher side of the push plate 15 align with the feed groove 12 to facilitate the dolomite to fall on the push plate 15. When the first connecting plate 3 and the second connecting plate 4 need to swing in this application, the output end of the hydraulic rod 14 can move up and down repeatedly, so that the pressing ring 22 moves up and down to repeatedly squeeze the elastic ring 21. When the elastic ring 21 is squeezed, the gas in the elastic ring 21 will enter the hollow column 7 through the conduit 23. At this time, the gas will push the ejector rod 8, causing the ejector rod 8 to push the first connecting plate 3 to rotate upward. When the elastic ring 21 is not squeezed by the pressing ring 22, the ejector rod 8 will lose the force to push the first connecting plate 3. At this time, the first connecting plate 3 will rotate downward. While the first connecting plate 3 rotates, it will drive the second connecting plate 4 to rotate synchronously. In this way, the first connecting plate 3 and the second connecting plate 4 can swing repeatedly to process the agglomerated dolomite. When the dolomite enters and exits through the rectangular groove 10 in this application, to prevent the rectangular groove 10 from being blocked, the output end of the hydraulic rod 14 can be moved downward to the maximum stroke, so that the elastic ring 21 is squeezed to the limit by the pressing ring 22. At this time, the gas in the elastic ring 21 will enter the hollow column 7 through the conduit 23, causing the ejector rod 8 to move upward to the maximum stroke to push the first connecting plate 3. At this time, the second connecting plate 4 will be pulled, and the dredging rod 25 on the rectangular plate 24 at this time will insert into the rectangular groove 10 to dredge the dolomite stuck in the rectangular groove 10, so as to ensure the smoothness of the rectangular groove 10. During the swinging process of the first connecting plate 3, the driving component can be used to drive the driving plate 26 to move up and down. When the driving plate 26 moves upward, it will drive the push rod 28 to push the dolomite on the first connecting plate 3, so that the agglomerated dolomite can be pushed apart. At the same time, the dolomite can also be pushed and thrown higher, so that when the dolomite falls on the first connecting plate 3, it will receive a greater impact force, further improving the effect of processing the agglomerated dolomite.

[0031] The above front, back, left, right, up, and down are all based on the Figure 1 description in the attached drawings of the specification. Taking the perspective of the observer as the standard, the side of the device facing the observer is defined as the front, and the left side of the observer is defined as the left, and so on.

[0032] In the description of the present invention, it should be understood that the orientation or positional relationships indicated by the terms "center", "longitudinal", "transverse", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. are based on the orientation or positional relationships shown in the drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as limiting the protection scope of the present invention.

[0033] The foregoing has shown and described 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, and what is described in the above embodiments and the specification is only to illustrate the principles of the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements fall within the scope of the present invention claimed. The scope of the present invention claimed is defined by the appended claims and their equivalents.

Claims

1. A silo reclaiming device for preventing high-powder dolomite from agglomerating, comprising a hollow reclaimer (1), the bottom end of the reclaimer (1) being conical and open, a feed inlet (2) being provided at the top end of the reclaimer (1), and a bracket group (6) being provided at the bottom of the reclaimer (1) to enable the reclaimer (1) to move; Features: The inner wall of the material extractor (1) is rotatably connected to a first connecting plate (3) and a second connecting plate (4) via a rotating shaft; the first connecting plate (3) and the second connecting plate (4) are arranged obliquely, and the first connecting plate (3) is higher than the second connecting plate (4); a connecting rope (5) is fixedly connected between the bottom surface of the first connecting plate (3) and the second connecting plate (4); The inner wall of the material extractor (1) is fixedly connected to a fixed plate (9), the top surface of the fixed plate (9) is fixedly connected to a hollow column (7), a push rod (8) for pushing the first connecting plate (3) is arranged in the hollow column (7), and a moving component for driving the push rod (8) to move is arranged on the material extractor (1).

2. The silo reclaiming equipment for preventing high-powder dolomite from agglomerating according to claim 1, characterized in that: A collecting bin (13) is fixedly connected to the side wall of the material picker (1), a connecting feed trough (12) is provided between the collecting bin (13) and the inner wall of the material picker (1), an elastic net (11) is fixedly connected between the second connecting plate (4) and the inner wall of the material picker (1), the elastic net (11) is flush with the feed trough (12), and a pair of rectangular grooves (10) are provided on the second connecting plate (4).

3. The silo reclaiming equipment for preventing high-powder dolomite from agglomerating according to claim 2 is characterized in that: A hydraulic rod (14) is fixedly connected to the bottom surface of the inner wall of the collecting bin (13), a push plate (15) is provided at the output end of the hydraulic rod (14), a discharge trough (16) is provided between the collecting bin (13) and the inner wall of the material extractor (1), and a swinging assembly for allowing the push plate (15) to swing is provided in the collecting bin (13).

4. The silo reclaiming equipment for preventing high-powder dolomite from agglomerating according to claim 3 is characterized in that: The swing assembly comprises a spherical ball (20) fixedly connected to the top end of the output end of the hydraulic rod (14); a connecting shell (19) is movably connected to the surface of the spherical ball (20); a push plate (15) is fixedly connected to the top end of the connecting shell (19); a first fixing block (17) is fixedly connected to the side of the inner wall of the collecting bin (13) close to the feed trough (12); and a second fixing block (18) is fixedly connected to the side of the inner wall of the collecting bin (13) close to the discharge trough (16).

5. The silo reclaiming equipment for preventing high-powder dolomite from agglomerating according to claim 4, characterized in that: The moving assembly comprises an elastic ring (21) fixedly connected to the bottom surface of the inner wall of the collection bin (13); the interior of the elastic ring (21) is a hollow structure; the output end of the hydraulic rod (14) is fixedly connected to a pressure ring (22); the push rod (8) is sealingly slidably connected to the top end of the hollow column (7); a first spring is fixedly connected between the bottom surface of the push rod (8) and the inner wall of the hollow column (7); and a conduit (23) is connected between the elastic ring (21) and the hollow column (7).

6. The silo reclaiming equipment for preventing high-powder dolomite from agglomerating according to claim 5, characterized in that: A pair of rectangular plates (24) corresponding to the rectangular grooves (10) are fixedly connected to the inner wall of the collection bin (13), and a group of dredging rods (25) are fixedly connected to the bottom surface of the rectangular plates (24).

7. The silo reclaiming equipment for preventing high-powder dolomite from agglomerating according to claim 2, characterized in that: A rectangular block (27) is fixedly connected to the bottom surface of the first connecting plate (3), the top surface of the rectangular block (27) is opened, and a movable groove corresponding to the open end of the rectangular block (27) is opened on the bottom surface of the first connecting plate (3). A driving plate (26) is arranged in the rectangular block (27), and a plurality of push rods (28) are fixedly connected to the top surface of the driving plate (26). The push rods (28) extend to the top surface of the first connecting plate (3), and a driving component for driving the driving plate (26) is arranged in the material extractor (1).

8. The silo reclaiming equipment for preventing high-powder dolomite from agglomerating according to claim 7, characterized in that: The driving assembly comprises an elastic block (29) fixedly connected to the inner wall of the material extractor (1), the interior of the elastic block (29) is a hollow structure, and the top surface of the elastic block (29) is in contact with the first connecting plate (3), the driving plate (26) is sealingly slidable with the inner wall of the rectangular block (27), and the driving plate (26) is also sealingly slidably connected with the inner wall of the movable groove, a group of second springs are fixedly connected between the bottom surface of the driving plate (26) and the inner wall of the rectangular groove (10), and a connecting pipe (30) is connected between the elastic block (29) and the interior of the rectangular block (27).

9. The silo reclaiming equipment for preventing high-powder dolomite from agglomerating according to claim 1, characterized in that: The side wall of the material picker (1) is fixedly connected to a hollow block (31), a side of the hollow block (31) close to the material picker (1) is provided with an air inlet groove (33), a side of the material picker (1) is provided with a through groove connected to the air inlet groove (33), a side of the hollow block (31) away from the material picker (1) is connected to an air suction pump (32), an air suction end of the air suction pump (32) extends into the hollow block (31), an inner wall of the hollow block (31) is fixedly connected to a filter screen (34) covering the air suction end, the bottom end of the hollow block (31) is open, and a sealing plate for sealing the hollow block (31) is provided at the bottom end, and the sealing plate is installed by screws.

10. A silo reclaiming device for preventing high-powder dolomite from agglomerating according to claim 9, characterized in that: A group of first magnetic blocks (37) are fixedly connected to the side of the filter screen (34) away from the air pump (32); a connecting shaft (35) is fixedly connected to the inner wall of the hollow block (31); the connecting shaft (35) is located in the filter screen (34); a group of driving blades (36) are fixedly connected to the surface of the connecting shaft (35); a second magnetic block (38) is fixedly connected to the side of the driving blade (36) away from the air pump (32); and the first magnetic block (37) and the second magnetic block (38) are arranged to repel each other.

Citation Information

Patent Citations

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    CN113171976A

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