A silo system with high reliability
By using intelligent control with adjustable cone angle and multi-parameter sensing, combined with an activation cone and vibration buffer system, the problem of poor adaptability of traditional silo devices to different materials is solved, realizing orderly material flow and stable equipment operation, and reducing maintenance costs.
Patent Information
- Application Number
- CN202511543593.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-28
- Publication Date
- 2026-01-27
- Estimated Expiration
- 2045-10-28
AI Technical Summary
Traditional silo devices cannot adapt to the flow requirements of materials with different characteristics, which can easily lead to blockages and residues. They also lack real-time sensing and dynamic adjustment capabilities, resulting in high equipment maintenance costs and low efficiency.
It adopts an adjustable cone angle mechanism, a multi-parameter sensing mechanism and intelligent control, combined with an activated cone mechanism and a multi-level vibration buffer system, to achieve precise material matching and orderly flow by real-time monitoring of material status and adjustment of cone angle and vibration frequency.
It significantly improves the adaptability and anti-clogging ability of the silo system to diverse materials, reduces blockage and residue problems, improves equipment operation stability and maintenance convenience, and reduces maintenance costs.
Smart Images

Figure CN121005289B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of silo system technology, and in particular to a highly reliable silo system. Background Technology
[0002] As core equipment for raw material storage and transfer, silos are widely used in industries such as building materials, chemicals, and metallurgy. Their operational stability directly affects the efficiency of subsequent production processes. Traditional silos mostly adopt a fixed structural design, using a conical discharge section to allow materials to fall naturally, supplemented by manual inspection or simple mechanical devices to assist in unloading. With the scaling up of industrial production and the diversification of material types (such as dry powders, moist granules, and sticky materials), higher requirements are placed on the anti-clogging capabilities, adaptability, and automation level of silos. There is an urgent need to build a highly reliable storage and transportation system that can adapt to complex working conditions through structural innovation and intelligent upgrades.
[0003] A prominent problem with existing silo systems is that the fixed cone angle of the discharge section cannot adapt to the flow requirements of materials with different properties, easily leading to blockages and residues. For dry, fine-particle materials, an excessively small cone angle causes material to accumulate on the silo wall, forming "bridging"; while for moist, sticky materials, an excessively large cone angle causes them to stagnate in the discharge section due to insufficient gravity, requiring frequent manual unblocking or strong vibration. This not only increases maintenance costs but also causes structural fatigue of the silo due to vibration and impact, shortening the equipment's lifespan. Furthermore, traditional silos lack real-time sensing of material conditions and cannot dynamically adjust the unloading strategy based on parameters such as humidity and pressure, further exacerbating the risk of blockages and efficiency losses. Summary of the Invention
[0004] The discharge section based on a fixed cone angle cannot adapt to the flow requirements of materials with different characteristics, and is prone to blockage and residue problems. This invention proposes a highly reliable silo system.
[0005] This invention proposes a highly reliable silo system, comprising a silo body, an equipment platform mounted on the bottom outer wall of the silo body, a movable connection mechanism between the equipment platform and the silo body, side plates fixedly connected to both sides of the top outer wall of the equipment platform, lifting blocks mounted on the outer walls of the side plates, a height adjustment mechanism between the lifting blocks and the side plates, a locking mechanism between the lifting blocks and the silo body, a horizontal plate fixedly connected to the top of the lifting blocks, a top box mounted on the top of the horizontal plate, an activation cone mechanism mounted at the bottom of the horizontal plate, an adjustable cone angle mechanism mounted on the bottom outer wall of the silo body, and a multi-parameter sensing mechanism mounted inside the silo body.
[0006] Preferably, the movable connection mechanism includes a first bracket and a second spring. The first bracket is fixedly connected to the four corners of the top outer wall of the equipment platform. The outer wall of the first bracket has multiple first movable grooves. The inner wall of the first movable groove is slidably connected to a first movable block. The two ends of the second spring are fixedly connected to the first movable block and the chamber body, respectively. A first vibration motor is fixedly connected to the four corners of the top outer wall of the chamber body.
[0007] Preferably, a first spring is fixedly connected to each of the four corners of the outer wall of the chamber, a second bracket is fixedly connected to the bottom of the first spring, the bottom of the second bracket is fixedly connected to the equipment platform, a support leg is fixedly connected to each of the four corners of the bottom outer wall of the equipment platform, a shock-absorbing rubber pad is provided at the bottom of the support leg, and a third spring and a damper are fixedly connected between the shock-absorbing rubber pad and the support leg.
[0008] Preferably, the height adjustment mechanism includes a slider and a second motor. A groove is provided on the outer wall of the side plate. The slider and the groove are slidably connected. The second motor is fixedly connected to the top of the side plate. A threaded screw is fixedly connected to the bottom of the second motor. The slider and the threaded screw are threadedly connected. The slider and the lifting block are fixedly connected.
[0009] Preferably, the snap-fit mechanism includes a contact plate and a fifth spring, the lifting block is configured as a U-shape, the contact plate is located at the top and bottom of the inner wall of the lifting block respectively, the two ends of the fifth spring are fixedly connected to the contact plate and the inner wall of the lifting block respectively, and the edge of the compartment is located inside the lifting block.
[0010] Preferably, the activation cone mechanism includes a conical connector and a cone head. A rotating shaft is rotatably connected to the top box, and a third motor is fixedly connected to the top of the rotating shaft. The top of the conical connector is fixedly connected to the rotating shaft, and multiple sixth springs are fixedly connected between the conical connector and the cone head. The cone head and the conical connector are set in a conical shape, and a second vibration motor is fixedly connected to the bottom of the cone head.
[0011] Preferably, the rotating shaft is hollow, an air pump is fixedly connected to the outer wall of the top box, a through hole is opened on the outer wall of the rotating shaft and the through hole is located inside the top box, multiple spray pipes are fixedly connected to the outer wall of the rotating shaft and the spray pipes are located inside the silo, a liquid inlet pipe is fixedly connected to one side of the outer wall of the top box, and a liquid inlet valve is fixedly connected to the outer wall of the liquid inlet pipe.
[0012] Preferably, the adjustable cone angle mechanism includes an adjusting plate and a connecting plate. The adjusting plate is rotatably connected to both ends of the bottom outer wall of the silo body. Elastic seals are fixedly connected to both ends of the adjusting plate. Multiple fourth springs are fixedly connected between the adjusting plate and the connecting plate. A second movable groove is opened at the bottom of the connecting plate. A second movable block is slidably connected to the inner wall of the second movable groove. An electric push rod is rotatably connected to one end of the second movable block. The other end of the electric push rod is fixedly connected to the equipment platform.
[0013] Preferably, a fixing plate is fixedly connected to the outer wall of the elastic seal, and a guide roller is rotatably connected between the two sides of the fixing plate. A guide groove is opened on the outer wall of the guide roller, and a first motor is fixedly connected to one side of the guide roller. The first motor and the fixing plate are fixedly connected, and the guide roller is located between the adjusting plates.
[0014] Preferably, the multi-parameter sensing mechanism includes a pressure sensor, a humidity sensor, and a level sensor. The pressure sensor is fixedly connected to the adjustment plate and is evenly distributed inside the adjustment plate. The humidity sensor is fixedly connected to the inner wall of the silo and is located on the inner wall in the middle of the silo. The level sensor is fixedly connected to the outer wall at the bottom of the horizontal plate. An electrical control device is fixedly connected to the top of the equipment platform. The pressure sensor, humidity sensor, and level sensor are electrically connected to the electrical control device. A fuzzy logic algorithm module and a machine learning module are fixedly connected inside the electrical control device. The fuzzy logic algorithm module is used to generate cone angle adjustment commands based on real-time pressure and humidity data. The machine learning module is used to optimize vibration frequency parameters based on historical data.
[0015] Compared with the prior art, the present invention provides a highly reliable silo system with the following advantages:
[0016] 1. This highly reliable silo system achieves precise adaptation to materials with different characteristics through the deep collaboration of an adjustable cone angle mechanism, a multi-parameter sensing mechanism, and intelligent control. The adjusting plate can flexibly change the cone angle under the drive of an electric push rod, and the elastic seal ensures the sealing performance when the cone angle changes. The pressure sensor monitors the material pressure on the adjusting plate in real time, and the humidity sensor senses the humidity of the material in the silo. After the data is transmitted to the electrical control equipment, the fuzzy logic algorithm module quickly generates the cone angle adjustment command, so that the cone angle is dynamically matched with the particle size, humidity and other characteristics of the material. The guide roller's guide trough rotates under the drive of the first motor, further guiding the orderly flow of the material, greatly reducing problems such as bridging of dry powder and retention of damp material, and improving the system's adaptability and anti-clogging ability to diverse materials.
[0017] 2. This highly reliable silo system combines an activated cone mechanism with a multi-stage vibration buffer system to enhance material flowability and ensure stable equipment operation. The cone head generates high-frequency vibration under the drive of the second vibration motor, which, together with the elastic buffer of the sixth spring, forms "flexible vibration" to avoid damage to the silo body caused by rigid vibration. At the same time, it efficiently transmits vibration energy to the material, breaking the cohesion between materials. The rotating shaft drives the spray pipe to rotate and spray air or liquid. For sticky materials, a small amount of release agent can be sprayed to reduce adhesion. The first vibration motor transmits vibration to the silo wall through the second spring, loosening the attached material. The multi-stage buffer structure composed of the first spring, the third spring, and the damper can effectively absorb vibration energy, reduce the impact on the equipment platform and the ground, and balance the improvement of material flowability with the protection of the equipment structure.
[0018] 3. This highly reliable silo system significantly improves system reliability and maintenance convenience through intelligent adaptive control and modular adjustment structure. The machine learning module of the electrical control equipment continuously optimizes parameters such as vibration frequency and cone angle adjustment amplitude by accumulating historical operating data, making the system respond more accurately to material changes and reducing manual intervention costs. The second motor of the height adjustment mechanism drives the threaded screw to rotate, which drives the slider and lifting block to rise and fall. The position of the activation cone mechanism can be adjusted according to the material height in the silo to ensure that the vibration effect covers the material accumulation area. The fifth spring of the locking mechanism and the contact plate maintain a stable connection between the silo body and the lifting block during the lifting process. The modular component design allows the activation cone mechanism, adjustable cone angle mechanism and other components to be disassembled and repaired separately without overall shutdown, shortening maintenance time and reducing maintenance costs. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of the main structure of a highly reliable silo system proposed in this invention;
[0020] Figure 2 for Figure 1 Enlarged structural diagram at point A in the middle;
[0021] Figure 3 This is a schematic diagram of the bottom main structure of a highly reliable silo system proposed in this invention;
[0022] Figure 4 For Figure 3 Enlarged structural diagram at point B;
[0023] Figure 5 This is a cross-sectional structural diagram of a highly reliable silo system proposed in this invention;
[0024] Figure 6 This is a schematic diagram of the main structure of the side plate of a high-reliability silo system proposed in this invention;
[0025] Figure 7 This is a schematic diagram of the main structure of the rotating shaft of a high-reliability silo system proposed in this invention;
[0026] Figure 8 This is a schematic diagram of the bottom structure of the rotating shaft of a high-reliability silo system proposed in this invention.
[0027] In the diagram: 1. Chamber body, 2. Side plate, 3. Horizontal plate, 4. First support, 5. Equipment platform, 6. Leg, 7. Shock-absorbing pad, 8. Second support, 9. First spring, 10. First movable block, 11. First movable groove, 12. First vibration motor, 13. Second spring, 14. Elastic seal, 15. Third spring, 16. Damper, 17. Fixed plate, 18. First motor, 19. Adjusting plate, 20. Fourth spring, 21. Second movable groove, 22. Second movable block, 23. Electric push rod, 24. Connecting plate, 25. Electric... Control equipment, 26 humidity sensor, 27 pressure sensor, 28 guide roller, 29 guide chute, 30 material level sensor, 31 second motor, 32 slide chute, 33 slider, 34 lifting block, 35 contact plate, 36 fifth spring, 37 threaded screw, 38 third motor, 39 liquid inlet valve, 40 liquid inlet pipe, 41 rotating shaft, 42 cone head, 43 sixth spring, 44 conical connector, 45 spray pipe, 46 through hole, 47 second vibration motor, 48 air pump, 49 top box. Detailed Implementation
[0028] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0029] Reference Figure 1-8 A highly reliable silo system includes a silo body 1. A device platform 5 is mounted on the bottom outer wall of the silo body 1. A movable connection mechanism connects the device platform 5 and the silo body 1. Side plates 2 are fixedly connected to both sides of the top outer wall of the device platform 5. Lifting blocks 34 are mounted on the outer walls of the side plates 2. A height adjustment mechanism connects the lifting blocks 34 and the side plates 2. A locking mechanism connects the lifting blocks 34 and the silo body 1. A horizontal plate 3 is fixedly connected to the top of the lifting blocks 34. A top box 49 is mounted on the top of the horizontal plate 3. An activated cone mechanism is mounted at the bottom of the horizontal plate 3. An adjustable cone angle mechanism is mounted on the bottom outer wall of the silo body 1. A multi-parameter sensing mechanism is installed inside the silo body 1. The depth is controlled by the adjustable cone angle mechanism, the multi-parameter sensing mechanism, and intelligent control. The system works in synergy to achieve precise adaptation to materials with different characteristics. The adjusting plate 19 can flexibly change its cone angle under the drive of the electric push rod 23. The elastic seal 14 ensures the sealing performance when the cone angle changes. The pressure sensor 27 monitors the material pressure on the adjusting plate 19 in real time, and the humidity sensor 26 senses the humidity of the material in the bin. After the data is transmitted to the electrical control equipment 25, the fuzzy logic algorithm module quickly generates the cone angle adjustment command, so that the cone angle is dynamically matched with the particle size, humidity and other characteristics of the material. The guide trough 29 of the guide roller 28 rotates under the drive of the first motor 18, further guiding the orderly flow of the material, greatly reducing the problems of dry powder bridging and wet material retention, and improving the system's adaptability and anti-clogging ability to diverse materials.
[0030] In this invention, the movable connection mechanism includes a first bracket 4 and a second spring 13. The first bracket 4 is fixedly connected to the four corners of the top outer wall of the equipment platform 5. The outer wall of the first bracket 4 has multiple first movable grooves 11. A first movable block 10 is slidably connected to the inner wall of each first movable groove 11. The two ends of the second spring 13 are fixedly connected to the first movable block 10 and the chamber 1, respectively. A first vibration motor 12 is fixedly connected to each of the four corners of the top outer wall of the chamber 1. A first spring 9 is fixedly connected to each of the four corners of the outer wall of the chamber 1. A second bracket 8 is fixedly connected to the bottom of the first spring 9. The bottom of the second support 8 is fixedly connected to the equipment platform 5. The four corners of the bottom outer wall of the equipment platform 5 are fixedly connected to the support legs 6. The bottom of the support legs 6 is provided with shock-absorbing rubber pads 7. The shock-absorbing rubber pads 7 and the support legs 6 are fixedly connected to the third spring 15 and the damper 16. The first vibration motor 12 transmits the vibration to the wall of the silo 1 through the second spring 13, which loosens the attached material. The multi-stage buffer structure composed of the first spring 9, the third spring 15 and the damper 16 can effectively absorb the vibration energy, reduce the impact on the equipment platform 5 and the ground, and take into account both the improvement of material flowability and the protection of the equipment structure.
[0031] The height adjustment mechanism includes a slider 33 and a second motor 31. A groove 32 is provided on the outer wall of the side plate 2. The slider 33 and the groove 32 are slidably connected. The second motor 31 is fixedly connected to the top of the side plate 2. A threaded screw 37 is fixedly connected to the bottom of the second motor 31. The slider 33 and the threaded screw 37 are threadedly connected. The slider 33 and the lifting block 34 are fixedly connected. The locking mechanism includes a contact plate 35 and a fifth spring 36. The lifting block 34 is U-shaped. The contact plate 35 is located at the top and bottom of the inner wall of the lifting block 34. The two ends of the fifth spring 36 are fixedly connected to the contact plate 35 and the inner wall of the lifting block 34, respectively. The edge of the silo 1 is located inside the lifting block 34. The second motor 31 of the height adjustment mechanism drives the threaded screw 37 to rotate, which drives the slider 33 and the lifting block 34 to rise and fall. The position of the activation cone mechanism can be adjusted according to the height of the material in the silo to ensure that the vibration effect covers the material accumulation area. The fifth spring 36 and the contact plate 35 of the locking mechanism always maintain a stable connection between the silo 1 and the lifting block 34 during the lifting process.
[0032] The activated cone mechanism includes a conical connector 44 and a cone head 42. The top box 49 is rotatably connected to a rotating shaft 41. A third motor 38 is fixedly connected to the top of the rotating shaft 41. The top of the conical connector 44 is fixedly connected to the rotating shaft 41. Multiple sixth springs 43 are fixedly connected between the conical connector 44 and the cone head 42. The cone head 42 and the conical connector 44 are set in a conical shape. A second vibration motor 47 is fixedly connected to the bottom of the cone head 42. By combining the activated cone mechanism with a multi-stage vibration buffer system, the material flowability is enhanced and the equipment operation is ensured to be stable. The cone head 42 generates high-frequency vibration under the drive of the second vibration motor 47. With the elastic buffer of the sixth spring 43, "flexible vibration" is formed to avoid damage to the silo 1 by rigid vibration. At the same time, the vibration energy is efficiently transferred to the material to break the cohesion between the materials.
[0033] The rotating shaft 41 is hollow. An air pump 48 is fixedly connected to the outer wall of the top box 49. A through hole 46 is opened on the outer wall of the rotating shaft 41. The through hole 46 is located inside the top box 49. Multiple spray pipes 45 are fixedly connected to the outer wall of the rotating shaft 41. The spray pipes 45 are located inside the hopper 1. A liquid inlet pipe 40 is fixedly connected to one side of the outer wall of the top box 49. A liquid inlet valve 39 is fixedly connected to the outer wall of the liquid inlet pipe 40. The rotating shaft 41 drives the spray pipes 45 to rotate and spray air or liquid. For sticky materials, a small amount of release agent can be sprayed to reduce adhesion.
[0034] The adjustable cone angle mechanism includes an adjusting plate 19 and a connecting plate 24. The adjusting plate 19 is rotatably connected to both ends of the bottom outer wall of the chamber 1. Elastic seals 14 are fixedly connected to both ends of the adjusting plate 19. Multiple fourth springs 20 are fixedly connected between the adjusting plate 19 and the connecting plate 24. A second movable groove 21 is opened at the bottom of the connecting plate 24. A second movable block 22 is slidably connected to the inner wall of the second movable groove 21. An electric push rod 23 is rotatably connected to one end of the second movable block 22. The other end of the electric push rod 23 is fixedly connected to the equipment platform 5. The adjusting plate 19 can flexibly change the cone angle under the drive of the electric push rod 23, and the elastic seals 14 ensure the sealing when the cone angle changes.
[0035] A fixed plate 17 is fixedly connected to the outer wall of the elastic seal 14. A guide roller 28 is rotatably connected between the two sides of the fixed plate 17. A guide groove 29 is opened on the outer wall of the guide roller 28. A first motor 18 is fixedly connected to one side of the guide roller 28. The first motor 18 and the fixed plate 17 are fixedly connected. The guide roller 28 is located between the adjusting plates 19. The guide groove 29 of the guide roller 28 rotates under the drive of the first motor 18, further guiding the orderly flow of materials and greatly reducing problems such as bridging of dry powder and retention of wet materials.
[0036] The multi-parameter sensing mechanism includes a pressure sensor 27, a humidity sensor 26, and a level sensor 30. The pressure sensor 27 is fixedly connected to the regulating plate 19 and is evenly distributed inside the regulating plate 19. The humidity sensor 26 is fixedly connected to the inner wall of the silo 1 and is located on the inner wall in the middle of the silo 1. The level sensor 30 is fixedly connected to the outer wall at the bottom of the horizontal plate 3. An electrical control device 25 is fixedly connected to the top of the equipment platform 5. The pressure sensor 27, humidity sensor 26, and level sensor 30 are electrically connected to the electrical control device 25. A fuzzy logic algorithm module and a machine learning module are fixedly connected inside the electrical control device 25. The fuzzy logic algorithm module is used to generate cone angle adjustment commands based on real-time pressure and humidity data. The pressure sensor 27 monitors the material pressure on the regulating plate 19 in real time, and the humidity sensor 26 senses the humidity of the material in the silo. After the data is transmitted to the electrical control device 25, the fuzzy logic algorithm module quickly generates cone angle adjustment commands to dynamically match the cone angle with the particle size, humidity, and other characteristics of the material.
[0037] In use, the pressure sensor 27, humidity sensor 26, and level sensor 30 of the multi-parameter sensing mechanism continuously collect material pressure, humidity, and level data, which are transmitted to the electrical control device 25 in real time. The fuzzy logic algorithm module of the electrical control device 25 generates control commands based on the data. The electric push rod 23 of the adjustable cone angle mechanism drives the second movable block 22 to slide in the second movable groove 21, causing the connecting plate 24 and the adjusting plate 19 to rotate, changing the cone angle to adapt to the material characteristics. At the same time, the first motor 18 drives the guide roller 28 to rotate, and the guide groove 29 guides the material to move towards the discharge port. The third motor 38 of the activated cone mechanism drives the rotating shaft 41 to rotate, and the cone head 42 is connected to the second vibration motor 47 and the sixth spring. High-frequency vibration occurs under the action of spring 43. Air pump 48 supplies air to the rotating shaft 41 through through hole 46 and sprays it out through spray pipe 45 to assist in fluidization of materials. If necessary, liquid can be injected through liquid inlet pipe 40 to reduce the adhesion of viscous materials. The first vibration motor 12 drives the bin 1 to vibrate. With the cooperation of the second spring 13 and the sliding of the first movable block 10, the material on the bin wall is loosened. The first spring 9, the third spring 15 and the damper 16 buffer the vibration impact. The height adjustment mechanism can adjust the height of the horizontal plate 3 through the second motor 31 so that the activation cone mechanism can adapt to different material levels. The contact plate 35 of the locking mechanism and the fifth spring 36 ensure the stable connection between bin 1 and lifting block 34, and finally realize the stable conveying of materials under intelligent control.
[0038] The above are merely preferred embodiments of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A highly reliable silo system, comprising a silo body (1), characterized in that, The bottom outer wall of the silo (1) is provided with an equipment platform (5). A movable connection mechanism is provided between the equipment platform (5) and the silo (1). Side plates (2) are fixedly connected to both sides of the top outer wall of the equipment platform (5). A lifting block (34) is provided on the outer wall of the side plate (2). A height adjustment mechanism is provided between the lifting block (34) and the side plate (2). A snap-fit mechanism is provided between the lifting block (34) and the silo (1). A horizontal plate (3) is fixedly connected to the top of the lifting block (34). A top box (49) is provided on the top of the horizontal plate (3). An activation cone mechanism is provided at the bottom of the horizontal plate (3). The bottom outer wall of the silo (1) is provided with a movable connection mechanism. The adjustable cone angle mechanism includes an adjusting plate (19) and a connecting plate (24). The adjusting plate (19) is rotatably connected to both ends of the bottom outer wall of the chamber (1). Elastic seals (14) are fixedly connected to both ends of the adjusting plate (19). Multiple fourth springs (20) are fixedly connected between the adjusting plate (19) and the connecting plate (24). A second movable groove (21) is opened at the bottom of the connecting plate (24). A second movable block (22) is slidably connected to the inner wall of the second movable groove (21). An electric push rod (23) is rotatably connected to one end of the second movable block (22). 3) The other end is fixedly connected to the equipment platform (5). A fixed plate (17) is fixedly connected to the outer wall of the elastic seal (14). A guide roller (28) is rotatably connected between the two sides of the fixed plate (17). A guide groove (29) is opened on the outer wall of the guide roller (28). A first motor (18) is fixedly connected to one side of the guide roller (28). The first motor (18) and the fixed plate (17) are fixedly connected. The guide roller (28) is located between the adjustment plates (19). The multi-parameter sensing mechanism includes a pressure sensor (27), a humidity sensor (26), and a material level sensor (30). The pressure sensor (27) and the adjustment plate (19) are fixedly connected and evenly distributed. Inside the regulating plate (19), the humidity sensor (26) is fixedly connected to the inner wall of the silo (1) and is located in the middle inner wall of the silo (1). The material level sensor (30) is fixedly connected to the bottom outer wall of the horizontal plate (3). The top of the equipment platform (5) is fixedly connected to the electrical control device (25). The pressure sensor (27), humidity sensor (26) and material level sensor (30) are electrically connected to the electrical control device (25) respectively. The electrical control device (25) is fixedly connected to a fuzzy logic algorithm module and a machine learning module. The fuzzy logic algorithm module is used to generate cone angle adjustment instructions based on real-time pressure and humidity data. The machine learning module is used to optimize vibration frequency parameters based on historical data.
2. The highly reliable silo system according to claim 1, characterized in that, The movable connection mechanism includes a first bracket (4) and a second spring (13). The first bracket (4) is fixedly connected to the four corners of the top outer wall of the equipment platform (5). The outer wall of the first bracket (4) is provided with a plurality of first movable grooves (11). The inner wall of the first movable groove (11) is slidably connected to a first movable block (10). The two ends of the second spring (13) are fixedly connected to the first movable block (10) and the chamber (1) respectively. The four corners of the top outer wall of the chamber (1) are all fixedly connected to a first vibration motor (12).
3. The highly reliable silo system according to claim 1, characterized in that, The outer wall of the chamber (1) is fixedly connected to the four corners of the first spring (9), the bottom of the first spring (9) is fixedly connected to the second bracket (8), the bottom of the second bracket (8) is fixedly connected to the equipment platform (5), the bottom of the equipment platform (5) is fixedly connected to the four corners of the outer wall of the bottom of the equipment platform (5), the bottom of the support (6) is provided with shock-absorbing rubber pads (7), and the shock-absorbing rubber pads (7) and the support (6) are fixedly connected to the third spring (15) and the damper (16).
4. A highly reliable silo system according to claim 1, characterized in that, The height adjustment mechanism includes a slider (33) and a second motor (31). A groove (32) is provided on the outer wall of the side plate (2). The slider (33) and the groove (32) are slidably connected. The second motor (31) is fixedly connected to the top of the side plate (2). A threaded screw (37) is fixedly connected to the bottom of the second motor (31). The slider (33) and the threaded screw (37) are threadedly connected. The slider (33) and the lifting block (34) are fixedly connected.
5. A highly reliable silo system according to claim 4, characterized in that, The snap-fit mechanism includes a contact plate (35) and a fifth spring (36). The lifting block (34) is U-shaped. The contact plate (35) is located at the top and bottom of the inner wall of the lifting block (34). The two ends of the fifth spring (36) are fixedly connected to the contact plate (35) and the inner wall of the lifting block (34) respectively. The edge of the hopper (1) is located inside the lifting block (34).
6. A highly reliable silo system according to claim 1, characterized in that, The activated cone mechanism includes a conical connector (44) and a cone head (42). The top box (49) is rotatably connected to a rotating shaft (41). A third motor (38) is fixedly connected to the top of the rotating shaft (41). The top of the conical connector (44) is fixedly connected to the rotating shaft (41). Multiple sixth springs (43) are fixedly connected between the conical connector (44) and the cone head (42). The cone head (42) and the conical connector (44) are set in a conical shape. A second vibration motor (47) is fixedly connected to the bottom of the cone head (42).
7. A highly reliable silo system according to claim 6, characterized in that, The rotating shaft (41) is hollow, and an air pump (48) is fixedly connected to the outer wall of the top box (49). A through hole (46) is opened on the outer wall of the rotating shaft (41). The through hole (46) is located inside the top box (49). Multiple spray pipes (45) are fixedly connected to the outer wall of the rotating shaft (41). The spray pipes (45) are located inside the silo (1). An inlet pipe (40) is fixedly connected to the outer wall of one side of the top box (49). An inlet valve (39) is fixedly connected to the outer wall of the inlet pipe (40).
Citation Information
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