An intelligent anti-blocking feeding silo
The air exhaust pipe collects drifting materials and dust, the electric heating plate heats the materials, the guide plate guides and the discharge barrel vibrates, solving the problems of drifting and blocking of materials in the feed silo, and achieving environmental protection and improvement of material utilization.
Patent Information
- Application Number
- CN202411104431.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-13
- Publication Date
- 2025-08-08
- Estimated Expiration
- 2044-08-13
AI Technical Summary
During the feeding process of the existing feeding silo, the materials are easily blocked due to the rotation and drift of the mixing rod, causing dust to pollute the environment and waste materials, and the materials are easily blocked.
The air pump pipe is used to pump the floating material and dust into the collection box, and the material is heated by the electric heating plate and directed through the guide plate. Combined with the vibration of the cutting barrel, it reduces floating and blockage.
Reduce the pollution to the environment caused by material drift, improve material utilization, and reduce the risk of material waste and blockage.
Smart Images

Figure CN118637216B_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the field of feeding silos, and particularly relates to an intelligent anti-blocking feeding silo. Background Art
[0002] Based on the existing technology, it is found that since the existing feeding silo, when feeding by wind, in order to avoid material blockage, the material in the feeding silo will be stirred by a stirring rod. Although this method can reduce the phenomenon of material blockage, when the stirring rod rotates to stir the material, the powder will float in the storage silo with the rotation of the stirring rod, causing dust. When it is necessary to add material to the storage silo during the feeding process, dust can easily float out from the feed port, thereby polluting the on-site working environment and causing waste of materials. Summary of the Invention
[0003] In order to overcome the disadvantages that small-volume materials and dust mixed in the materials are easily scattered in the storage bin as the stirring rod rotates, causing dust generation, the present invention provides an intelligent anti-blocking feeding bin.
[0004] The technical solution is as follows: an intelligent anti-blocking feeding silo, comprising a base, a bracket, a storage silo, a discharge barrel, a feeding pipe and a stirring mechanism; at least two brackets are fixedly connected to the base; all the brackets are fixedly connected to the storage silo, and the storage silo is provided with a feed port and an exhaust port, and a fan is installed in the exhaust port; a discharge barrel is slidably connected to the storage silo; the discharge barrel is connected to the feeding pipe; a stirring mechanism for stirring materials is installed in the storage silo; and the silo also includes a cylinder, a conduit, an exhaust pipe, an exhaust pipe and an electric Magnetic valve; a cylinder is fixedly connected to the unloading cylinder, and a cavity is formed between the cylinder and the storage bin; at least two conduits are fixedly connected to the cavity between the cylinder and the storage bin, and one end of the conduit passes through the storage bin; a plurality of exhaust pipes are fixedly connected to the cylinder, electric valves are provided in the exhaust pipes, and all the exhaust pipes are connected to the cavity between the cylinder and the storage bin; at least two exhaust pipes are fixedly connected to the cylinder; a solenoid valve is installed on each exhaust pipe, and all the exhaust pipes are connected to the cavity between the cylinder and the storage bin.
[0005] Preferably, the stirring mechanism includes a motor, a stirring rod, a spline shaft and an auger; the motor is installed on the upper outer wall of the storage bin; the stirring rod is fixedly connected to the motor output shaft, and the stirring rod penetrates into the storage bin; the stirring rod is rotatably connected to the storage bin; the lower part of the stirring rod is movably connected to the spline shaft; the lower end of the spline shaft is fixedly connected to the auger.
[0006] Preferably, electric heating plates are also included; at least four electric heating plates are fixedly connected in an annular manner with equal distances in the middle of the storage bin.
[0007] Preferably, it also includes a guide unit; the guide unit is connected to the stirring rod; the guide unit includes a sleeve, a connecting rod and a guide plate; the lower part of the stirring rod is rotatably connected to the sleeve; at least two connecting rods are fixed to the sleeve; each connecting rod is fixed to a guide plate at the lower part, and the guide plate is set to an inclined shape.
[0008] Preferably, a plurality of round rods are fixedly connected to one side of each guide plate away from the connecting rod, and the round rods on the same guide plate are gradually shortened from top to bottom for stirring materials.
[0009] Preferably, with the front side of the lower barrel as a reference, all the round rods on the same guide plate are symmetrically distributed in two rows, and a gap is left between the two rows of round rods, and the gap is aligned with the exhaust pipe to facilitate the flow of smaller volume materials.
[0010] Preferably, a vibration unit is also included; the vibration unit is connected to the discharge barrel; the vibration unit includes an elastic part, a fixed plate, a driving part, a disc, a rotating ring, a tray and a connecting shaft; a plurality of elastic parts are fixed to the upper surface of the discharge barrel; all elastic parts are fixed to the storage bin; at least two fixed plates are fixed to the middle of the outer wall of the discharge barrel; a driving part is installed on each fixed plate, and the driving part is a vibration motor; a disc is fixed to the inner wall of the discharge barrel; a rotating ring is rotatably connected to the inner wall of the discharge barrel and is located below the disc; a tray is fixed to the spline shaft, and the tray is located above the disc; a connecting shaft is fixed to the spline shaft; the connecting shaft is fixed to the rotating ring.
[0011] Preferably, the upper surface of the disc is arranged to be recessed toward the center of the lower barrel for guiding the material.
[0012] Preferably, a plurality of protrusions I are fixed in an annular manner at equal intervals on the lower surface of the disc, and a plurality of protrusions II are fixed in an annular manner at equal intervals on the upper surface of the rotating ring, which are used to squeeze the disc and cause it to vibrate; the disc is made of rubber, and an annular groove is opened on the upper part of the disc to facilitate the vibration of the disc.
[0013] Preferably, the upper surface of the tray is arranged to be inclined for guiding the material.
[0014] The advantages and positive effects of the present invention are:
[0015] (1) Through all the suction pipes, the small-volume materials and dust mixed in the materials floating in the storage bin are sucked, and the small-volume materials and dust are sent into the peripheral collection box. Then the pump in the peripheral collection box is controlled to start blowing air, thereby blowing the materials in the collection box so that the materials are mixed into the storage bin again and are located below the storage bin, thereby reducing the phenomenon of small-volume materials floating again, thereby reducing the pollution caused to the on-site working environment, reducing material waste, and improving material utilization;
[0016] (2) The electric heating plate is powered on to increase the temperature in the storage bin, thereby heating the material in the storage bin. The stirring rod is continuously rotated to stir the material, making the material heated more evenly. The fan installed in the exhaust port is controlled to start and discharge the hot air in the storage bin, thereby drying the material in the storage bin and further reducing the phenomenon of material blockage.
[0017] (3) The gap between the two rows of round rods on each guide plate is used to guide the smaller materials, so that the smaller materials are mixed with the materials in the storage bin and the discharge barrel, and are covered by the materials in the storage bin and the discharge barrel, so that the smaller materials quickly enter the bottom of the storage bin, so that the smaller materials are transported to the discharge barrel and the feed pipe more quickly, thereby improving material utilization and reducing material waste;
[0018] (4) The middle opening of the disc is opened and closed reciprocatingly by the vibration of the discharge barrel, so that the material flows out more evenly during the feeding process, and the problem of material blockage is further reduced. The disc blocks the gas blown out of the exhaust pipe, so that the gas blows to the upper surface of the disc, thereby blowing the material adhered to the upper surface of the disc, thereby reducing the phenomenon of material adhering to the upper surface of the disc. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 This is a schematic diagram of the three-dimensional structure of the intelligent anti-blocking feeding bin of the present invention;
[0020] Figure 2 This is a cross-sectional view of the intelligent anti-blocking feeding silo base, storage silo, discharge barrel and feeding pipe of the present invention;
[0021] Figure 3 This is a cross-sectional view of the cylinder of the intelligent anti-blocking feeding silo of the present invention;
[0022] Figure 4 This is a schematic diagram of the installation position of the exhaust pipe of the intelligent anti-blocking feeding silo of the present invention;
[0023] Figure 5 This is a schematic diagram of the three-dimensional structure of the intelligent anti-blocking feeding bin diversion unit of the present invention;
[0024] Figure 6 This is a schematic diagram of the three-dimensional structure of the installation position of the round rod of the intelligent anti-blocking feeding silo of the present invention;
[0025] Figure 7 This is a schematic diagram of the three-dimensional structure of the vibration unit of the intelligent anti-blocking feeding silo of the present invention;
[0026] Figure 8 This is a cross-sectional view of the disc and rotating ring of the intelligent anti-blocking feeding bin of the present invention;
[0027] Figure 9 This is a schematic diagram of the installation positions of the convex blocks I and II of the intelligent anti-blocking feeding bin of the present invention.
[0028] Explanation of the accompanying drawings: 1-base, 2-bracket, 3-storage bin, 31-feed port, 32-exhaust port, 4-discharge barrel, 5-conveying pipe, 6-motor, 61-stirring rod, 62-spline shaft, 63-auger, 201-cylinder, 202-conduit, 203-exhaust pipe, 204-exhaust pipe, 205-solenoid valve, 206-electric heating plate, 301-sleeve, 302-connecting rod, 303-guide plate, 3031-round rod, 41-elastic part, 401-fixed plate, 402-driving part, 403-disc, 4031-bump I, 404-rotating ring, 4041-bump II, 405-tray, 406-connecting shaft. DETAILED DESCRIPTION
[0029] The present invention will be further described below with reference to the accompanying drawings and examples.
[0030] Example 1:
[0031] An intelligent anti-blocking feeding silo, based on Figure 1-4 As shown, it includes a base 1, a bracket 2, a storage bin 3, a discharge barrel 4, a feeding pipe 5 and a stirring mechanism; two brackets 2 are fixedly connected to the outside of the base 1; the upper part of all the brackets 2 is commonly fixedly connected to the storage bin 3, and the storage bin 3 is provided with a feed port 31 and an exhaust port 32, and a fan is installed in the exhaust port 32; the lower part of the storage bin 3 is slidably connected to the discharge barrel 4; the lower part of the discharge barrel 4 is fixedly connected and communicated with the feeding pipe 5; the storage bin 3 is installed with a stirring mechanism for stirring materials;
[0032] It also includes a cylinder 201, a conduit 202, an exhaust pipe 203, an exhaust pipe 204 and a solenoid valve 205; the cylinder 201 is fixedly connected to the inner wall of the unloading cylinder 4, and a cavity is formed between the cylinder 201 and the storage bin 3; two conduits 202 are fixedly connected to the cavity between the cylinder 201 and the storage bin 3, and one end of the conduit 202 passes through the storage bin 3; a plurality of exhaust pipes 203 are fixedly connected to the upper part of the cylinder 201 in an equidistant ring, and an electric valve is provided in the exhaust pipe 203, and all the exhaust pipes 203 are connected to the cavity between the cylinder 201 and the storage bin 3; two exhaust pipes 204 are fixedly connected to the lower part of the cylinder 201 in an equidistant ring; a solenoid valve 205 is installed on each exhaust pipe 204, and all the exhaust pipes 204 are connected to the cavity between the cylinder 201 and the storage bin 3.
[0033] The stirring mechanism includes a motor 6, a stirring rod 61, a spline shaft 62 and an agitator 63; the motor 6 is installed on the upper part of the outer wall of the storage bin 3; the output shaft of the motor 6 is fixedly connected to the stirring rod 61, and the stirring rod 61 penetrates into the storage bin 3; the stirring rod 61 is rotatably connected to the storage bin 3; the lower part of the stirring rod 61 is movably connected to the spline shaft 62; the lower end of the spline shaft 62 is fixedly connected to the agitator 63.
[0034] It also includes an electric heating plate 206; four electric heating plates 206 are fixedly connected in an annular manner with equal distances in the middle of the storage bin 3.
[0035] When feeding: pre-connect the external collection box to the two conduits 202, and the external collection box is provided with a pump, the feed port 31 of the pump is connected to the two conduits 202, the external fan is connected to the feed pipe 5, and then the granular material is poured into the storage bin 3 and the discharge barrel 4. The granular material is biomass fuel. Biomass fuel is easily bumped during production and transportation, which results in the generation of some small-volume fragments in the biomass fuel, and the biomass fuel is easily mixed with dust. For the convenience of describing the small-volume biomass fuel, it is hereinafter referred to as For materials with smaller volume, when feeding, the materials flow into the feeding pipe 5 through the discharge barrel 4, and then the external fan is controlled to start to supply air to the feeding pipe 5, so that the materials in the feeding pipe 5 are blown by the wind, and the materials are blown into the feeding pipe 5. At the same time, in order to avoid material blockage, the motor 6 is controlled to start, and the output shaft of the motor 6 rotates to drive the stirring rod 61 to rotate, and the rotation of the stirring rod 61 drives the spline shaft 62 to rotate, and the rotation of the spline shaft 62 drives the auger 63 to rotate, so that the stirring rod 61 and the auger 63 rotate synchronously to stir the materials, thereby avoiding the problem of material blockage.
[0036] And because when the stirring rod 61 and the agitator 63 rotate to stir the materials, the smaller materials and the dust mixed in the materials are very likely to be scattered in the storage bin 3 with the stirring, causing dust. Then, when materials are added to the storage bin 3 during the feeding process, the dust is very likely to be scattered out from the feed port 31, thereby polluting the on-site working environment and causing waste of materials. By controlling the start of the external pump to suck, and controlling the start of the solenoid valve 205 on the exhaust pipe 204, the exhaust pipe 204 is blocked, and then a negative pressure is generated in the cavity between the cylinder 201 and the storage bin 3 through the two conduits 202, thereby sucking the smaller materials and the dust mixed in the materials scattered in the storage bin 3 through all the suction pipes 203. Mixed dust, at this time, smaller materials and dust mixed in the materials will enter the external collection box through the two conduits 202, and then the pump in the external collection box is controlled to start blowing, and the electric valve in the exhaust pipe 203 is controlled to operate to block the exhaust pipe 203. At this time, the solenoid valve 205 on the exhaust pipe 204 is in the open state, and the gas is blown to the bottom of the storage bin 3 through the exhaust pipe 204, that is, blown into the lower barrel 4, so that the smaller materials are mixed into the storage bin 3 again and are located below the storage bin 3, thereby reducing the phenomenon of smaller materials floating again, thereby reducing the pollution caused to the on-site working environment, reducing material waste, and improving material utilization.
[0037] At the same time, since the material is easily affected by moisture during long-term storage, the material may clump, increasing the possibility of blockage. When the material is poured into the storage bin 3 and the discharge barrel 4, all the electric heating plates 206 are controlled to be energized to increase the temperature in the storage bin 3. At this time, all the exhaust pipes 203 are in a blocked state, and all the conduits 202 no longer inhale air, thereby heating the material in the storage bin 3 through the electric heating plates 206. At the same time, the motor 6 is controlled to start, and the output shaft of the motor 6 rotates to drive the stirring rod 61 to rotate continuously, thereby stirring the material, making the material heated more evenly, and controlling the fan in the exhaust port 32 to start to discharge the hot air in the storage bin 3, thereby drying the material in the storage bin 3, thereby further reducing the phenomenon of material blockage.
[0038] It should be noted that when all the electric heating plates 206 are heating the materials in the storage bin 3 and the discharge barrel 4, the heating time of the materials is shorter than the feeding time of the materials, and then when the fan provided in the exhaust port 32 discharges the hot air in the storage bin 3, the fan's running time is shorter, so that when the fan sucks the hot air in the storage bin 3, less smaller materials are discharged through the fan, and when the materials are fed for a long time, the motor 6 starts, and the output shaft of the motor 6 rotates to drive the stirring rod 61 to rotate continuously, thereby causing more smaller materials to float in the storage bin 3. At this time, the smaller materials floating in the storage bin 3 are sucked through multiple exhaust pipes 203, and the fan provided in the exhaust port 32 stops operating, thereby avoiding the discharge of more smaller materials, causing waste of materials and pollution of the on-site working environment.
[0039] Example 2:
[0040] On the basis of Example 1, according to Figure 5-6 As shown, it also includes a guide unit; the guide unit is connected to the stirring rod 61; the guide unit includes a sleeve 301, a connecting rod 302 and a guide plate 303; the lower part of the stirring rod 61 is rotatably connected to the sleeve 301; two connecting rods 302 are fixed to the sleeve 301; each connecting rod 302 is fixed to a guide plate 303 at the lower part, and the guide plate 303 is set to an inclined shape.
[0041] A plurality of round rods 3031 are fixedly connected to one side of each guide plate 303 away from the connecting rod 302 , and the round rods 3031 on the same guide plate 303 are gradually shortened from top to bottom for stirring materials.
[0042] Taking the front side of the lower barrel 4 as a reference, all the round rods 3031 on the same guide plate 303 are symmetrically distributed in two rows, and a gap is left between the two rows of round rods 3031. The gap is aligned with the exhaust pipe 204 to facilitate the flow of smaller volume materials.
[0043] When guiding the smaller materials: when the smaller materials are blown to the bottom of the storage bin 3 through the exhaust pipe 204, the smaller materials will hit the materials in the storage bin 3, causing the smaller materials to be easily scattered in the storage bin 3 again, resulting in material waste. When the materials are poured into the storage bin 3 and the discharge barrel 4, all the round rods 3031 on each guide plate 303 block the materials, so that there is a gap between the two rows of round rods 3031 on the same guide plate 303, and then when the smaller materials pass through the exhaust pipe When 204 blows toward the bottom of the storage bin 3, the gap between the two rows of round rods 3031 on each guide plate 303 is used to guide the smaller material, so that the smaller material is mixed with the material in the storage bin 3 and the discharge barrel 4, and is covered by the material in the storage bin 3 and the discharge barrel 4, so that the smaller material quickly enters the bottom of the storage bin 3 without being lifted up again, so that the smaller material is transported to the discharge barrel 4 and the delivery pipe 5 faster, thereby improving material utilization and reducing material waste.
[0044] And since the two guide plates 303 are both set to an inclined shape, when the exhaust pipe 204 blows the smaller material into the lower barrel 4, the gas blown in through the exhaust pipe 204 will be compressed by the guide plate 303, and the flow rate of the gas will increase, so that the smaller material can quickly enter the lower barrel 4 and mix with the material in the lower barrel 4.
[0045] Example 3:
[0046] On the basis of the second embodiment, according to Figure 7-9 As shown, it also includes a vibration unit; the discharge barrel 4 is connected to the vibration unit; the vibration unit includes an elastic member 41, a fixed plate 401, a driving member 402, a disc 403, a rotating ring 404, a tray 405 and a connecting shaft 406; a plurality of elastic members 41 are fixedly connected to the upper surface of the discharge barrel 4 in an annular manner at equal intervals; all elastic members 41 are fixedly connected to the storage bin 3; two fixed plates 401 are fixedly connected to the middle of the outer wall of the discharge barrel 4; a driving member 402 is installed on each fixed plate 401, and the driving member 402 is a vibration motor 6; a disc 403 is fixedly connected to the inner wall of the discharge barrel 4; a rotating ring 404 is rotatably connected to the inner wall of the discharge barrel 4 and is located below the disc 403; a tray 405 is fixedly connected to the spline shaft 62, and the tray 405 is located above the disc 403; a connecting shaft 406 is fixedly connected to the spline shaft 62; the connecting shaft 406 is fixedly connected to the rotating ring 404.
[0047] The upper surface of the disc 403 is arranged to be recessed toward the center of the lower barrel 4 for guiding the material.
[0048] A plurality of protrusions I 4031 are fixedly connected in an annular manner at equal intervals to the lower surface of the disc 403, and a plurality of protrusions II 4041 are fixedly connected in an annular manner at equal intervals to the upper surface of the rotating ring 404, which are used to squeeze the disc 403 and cause it to vibrate. The disc 403 is made of rubber and has an annular groove on its upper portion to facilitate vibration of the disc 403.
[0049] The upper surface of the tray 405 is arranged to be inclined for guiding the material.
[0050] The elastic member 41 is a spring.
[0051] During the vibration feeding process: the discharge barrel 4 is divided into two layers distributed up and down by the setting of the disc 403, and then when the material is poured into the storage bin 3 and the discharge barrel 4, the material will be carried by the disc 403, and will not flow directly into the lower part of the inner wall of the discharge barrel 4 and the feeding pipe 5, thereby reducing the pressure of the material on the lower part of the inner wall of the discharge barrel 4 and the feeding pipe 5, and reducing the probability of material blockage. In order to make the material more uniform and fast during the feeding process, the two driving parts 402 are controlled to start, so that the discharge barrel 4 vibrates and all the elastic parts 41 are compressed, so that the discharge barrel 4 moves up and down. The lower barrel 4 vibrates back and forth, and the lower barrel 4 moves back and forth up and down during the vibration process. The upper movement of the lower barrel 4 drives the disc 403 to move. When the disc 403 moves and touches the tray 405, the middle opening of the disc 403 is blocked by the tray 405, so that the material stops being transported downward. When the lower barrel 4 moves downward, the disc 403 moves away from the tray 405. At this time, the material will flow out through the middle opening of the disc 403 again, so that the vibration of the lower barrel 4 causes the middle opening of the disc 403 to open and close reciprocatingly, so that the material flows out intermittently during the feeding process, further reducing the problem of material blockage.
[0052] At the same time, when the material is accumulated on the upper surface of the disc 403, the damp material is easy to adhere to the upper surface of the disc 403, thereby causing the material to remain on the upper surface of the disc 403. At this time, the disc 403 blocks the gas blown out of the exhaust pipe 204, so that the gas is blown to the upper surface of the disc 403, thereby blowing the material adhered to the upper surface of the disc 403, and the blocking effect of the disc 403 causes part of the gas to be blown to part of the material located in the central area, thereby cooperating with the stirring rod 61 and the electric heating plate 206 to dry part of the material in the central area, thereby improving the drying effect of the material in the storage bin 3. When the spline shaft 62 rotates, the spline shaft 62 drives the connecting shaft 406 to rotate, the connecting shaft 406 drives the rotating ring 404 to rotate, and the rotating ring 404 drives all the protrusions II 4041 to rotate, so that the protrusions II 4041 rotate to touch the protrusions I 4031 and squeeze the protrusions I 4031, so that the disc 403 moves upward. When the protrusions II 4041 rotate and disengage from the protrusions I 4031, the disc 403 is reset by the gravity of the material, so that the disc 403 reciprocates up and down to generate vibration, thereby reducing the phenomenon of material adhesion on the upper surface of the disc 403.
[0053] The embodiments of the present invention are described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Various changes can be made within the scope of knowledge of those skilled in the art without departing from the spirit of the present invention.
Claims
1. An intelligent anti-blocking feeding silo, comprising a base (1), a bracket (2), a storage silo (3), a discharge barrel (4), a feeding pipe (5) and a stirring mechanism; at least two brackets (2) are fixedly connected to the base (1); all the brackets (2) are commonly fixedly connected to the storage silo (3), and the storage silo (3) is provided with a feed port (31) and an exhaust port (32), and a fan is installed in the exhaust port (32); a discharge barrel (4) is slidably connected to the storage silo (3); the discharge barrel (4) is connected to the feeding pipe (5); a stirring mechanism for stirring materials is installed in the storage silo (3); the characteristics are: The device further comprises a cylinder (201), a conduit (202), an air extraction pipe (203), an exhaust pipe (204) and a solenoid valve (205); the lower cylinder (4) is fixedly connected to the cylinder (201), and a cavity is formed between the cylinder (201) and the storage bin (3); at least two conduits (202) are fixedly connected in the cavity between the cylinder (201) and the storage bin (3), and one end of the conduit (202) passes through the storage bin (3); the cylinder (201) A plurality of air extraction pipes (203) are fixedly connected to the cylinder (201), electric valves are provided in the air extraction pipes (203), and all the air extraction pipes (203) are connected to the cavity between the cylinder (201) and the storage bin (3); at least two exhaust pipes (204) are fixedly connected to the cylinder (201); a solenoid valve (205) is installed on each exhaust pipe (204), and all the exhaust pipes (204) are connected to the cavity between the cylinder (201) and the storage bin (3); The stirring mechanism comprises a motor (6), a stirring rod (61), a spline shaft (62) and an agitator (63); the motor (6) is mounted on the upper portion of the outer wall of the storage bin (3); the output shaft of the motor (6) is fixedly connected to the stirring rod (61), and the stirring rod (61) penetrates into the storage bin (3); the stirring rod (61) is rotatably connected to the storage bin (3); the lower portion of the stirring rod (61) is movably connected to the spline shaft (62); the lower end of the spline shaft (62) is fixedly connected to the agitator (63); The invention also includes a flow guide unit; the flow guide unit is connected to the stirring rod (61); the flow guide unit includes a sleeve (301), a connecting rod (302) and a guide plate (303); the lower part of the stirring rod (61) is rotatably connected to the sleeve (301); at least two connecting rods (302) are fixed to the sleeve (301); the lower part of each connecting rod (302) is fixed to a guide plate (303), and the guide plate (303) is arranged in an inclined shape.
2. The intelligent anti-blocking feeding silo according to claim 1, characterized in that: It also includes electric heating plates (206); at least four electric heating plates (206) are fixedly connected to the middle of the storage bin (3) in an annular manner with equal spacing.
3. The intelligent anti-blocking feeding silo according to claim 1, characterized in that: A plurality of round rods (3031) are fixedly connected to one side of each guide plate (303) away from the connecting rod (302), and the round rods (3031) on the same guide plate (303) are gradually shortened from top to bottom and are used for stirring materials.
4. The intelligent anti-blocking feeding silo according to claim 1, characterized in that: With the front side of the lower barrel (4) as a reference, all the round rods (3031) on the same guide plate (303) are symmetrically distributed in two rows, and a gap is left between the two rows of round rods (3031), and the gap is aligned with the exhaust pipe (204).
5. The intelligent anti-blocking feeding silo according to claim 1, characterized in that: The material discharging barrel (4) is connected to the vibration unit; the vibration unit includes an elastic member (41), a fixed plate (401), a driving member (402), a disc (403), a rotating ring (404), a tray (405) and a connecting shaft (406); a plurality of elastic members (41) are fixedly connected to the upper surface of the material discharging barrel (4); all elastic members (41) are fixedly connected to the material storage bin (3); at least two fixed plates (401) are fixedly connected to the middle of the outer wall of the material discharging barrel (4); each fixed plate (401) is fixedly connected to the material storage bin (3); 1) are both provided with a driving member (402), the driving member (402) being a vibration motor (6); a disc (403) is fixedly connected to the inner wall of the discharge barrel (4); a rotating ring (404) is rotatably connected to the inner wall of the discharge barrel (4) and located below the disc (403); a tray (405) is fixedly connected to the spline shaft (62), and the tray (405) is located above the disc (403); a connecting shaft (406) is fixedly connected to the spline shaft (62); and the connecting shaft (406) is fixedly connected to the rotating ring (404).
6. The intelligent anti-blocking feeding silo according to claim 5, characterized in that: The upper surface of the disc (403) is arranged to be recessed toward the center of the lower barrel (4) for guiding the material.
7. The intelligent anti-blocking feeding silo according to claim 5, characterized in that: The lower surface of the disc (403) is fixedly connected to a plurality of convex blocks I (4031) at equal intervals in an annular manner, and the upper surface of the rotating ring (404) is fixedly connected to a plurality of convex blocks II (4041) at equal intervals in an annular manner, which are used to squeeze the disc (403) and cause the disc (403) to vibrate. The disc (403) is made of rubber, and an annular groove is provided on the upper part of the disc (403) to facilitate the vibration of the disc (403).
8. The intelligent anti-blocking feeding silo according to claim 5, characterized in that: The upper surface of the tray (405) is arranged to be inclined for guiding the material.
Citation Information
Patent Citations
Industrial flue gas desulfurization and denitrification agent storing and conveying device
CN112320112A