Damp-proof stock bin
By setting moisture-proof components and ventilation components in the silo, the problem of moisture inside the silo is solved, and the effective drying and preservation of grain is achieved.
Patent Information
- Application Number
- CN202421921604.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-08
- Publication Date
- 2025-06-10
- Estimated Expiration
- 2034-08-08
AI Technical Summary
In the prior art, the internal silo is not ventilated, which causes grain to be prone to moisture and cause grain damage.
A moisture-proof material silo is designed. By setting a storage tank at the top of the bin, inserting a medicine bucket with moisture-proof components, and installing a ventilation component in the feeding barrel, including a blower, a support plate and an exhaust hood, the ventilation and drying of the inside of the bin can be achieved.
It effectively prevents moisture inside the silo, protects the dryness of the grain, and extends the shelf life of the grain.
Smart Images

Figure CN222960398U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of silos, in particular to a moisture-proof silo. Background Art
[0002] In order to improve production efficiency, a preparatory silo is configured above the mixer so that there is always a batch of prepared materials waiting to be mixed, which can improve the production efficiency by 30%. Only in this way can the advantages of an efficient mixer be reflected. Secondly, materials will form an air arch and are not easy to discharge. A flow-aid air cushion or a vibration motor should be configured on the silo. For maintenance and sealing, pneumatic or manual valves should be configured at the silo opening. For smooth discharging, the cone angle of the silo should not be less than 60 degrees.
[0003] In the prior art, grains are put into the silo for storage. When the user directly puts grains into the silo barrel, the inside of the silo is not ventilated, and it is extremely easy for the silo to get damp, resulting in damage to the grains inside the silo barrel.
[0004] Therefore, the utility model provides a moisture-proof silo. Summary of the Utility Model
[0005] The purpose of the utility model is to solve the disadvantages existing in the prior art and provide a moisture-proof silo.
[0006] In order to achieve the above purpose, the utility model adopts the following technical scheme: a moisture-proof silo, including a silo barrel, a base is arranged at the bottom end of the silo barrel, and a support seat is installed at the bottom end of the base. A receiving groove is arranged at the top end of the silo barrel, and a moisture-proof component is installed in the middle of the receiving groove;
[0007] The moisture-proof component includes a medicine barrel and a threaded cap. The medicine barrel is installed in the middle of the receiving groove, and the threaded cap is connected to the top end of the medicine barrel;
[0008] A feeding barrel is arranged inside the silo barrel; and a ventilation component is inserted in the middle section of the feeding barrel. A closing cover is arranged at the top end of the silo barrel.
[0009] As a preferred implementation manner, the medicine barrel and the threaded cap are in threaded connection.
[0010] The technical effect of adopting the above further scheme is: the silo barrel and the ground can be separated through the base and the support seat, preventing the silo barrel from being too close to the ground and causing the bottom of the silo barrel to be affected by moisture. A receiving groove is arranged at the top end of the silo barrel, which is convenient for inserting the medicine barrel of the moisture-proof component into the receiving groove. The medicine barrel and the threaded cap can be rotated clockwise to open the medicine barrel.
[0011] As a preferred implementation manner, the medicine barrel is of a mesh structure.
[0012] The technical effects of adopting the above further solution are as follows: The desiccant is placed inside the desiccant barrel, and the desiccant placed inside the agent barrel is used to dry and protect the grain inside the bin barrel. Multiple groups of apertures are provided on the inner and outer surfaces of the agent barrel to facilitate the release of the desiccant. Conversely, the agent barrel and the threaded cap can be closed and locked counterclockwise.
[0013] As a preferred embodiment, the ventilation component includes a blower, a support plate, and an exhaust hood. The blower is inserted in the middle section of the feeding barrel, and a support plate is connected to the top end of the blower. The support plate and the blower are connected to an exhaust hood at the top end.
[0014] The technical effects of adopting the above further solution are as follows: The grain is put into the feeding barrel of the bin barrel, and multiple groups of holes are provided in the feeding barrel, enabling the desiccant inside the agent barrel to perform drying treatment on the grain at a close distance.
[0015] As a preferred embodiment, the connection between the blower and the support plate is a welded connection, and several exhaust holes are provided at the upper end of the exhaust hood.
[0016] The technical effects of adopting the above further solution are as follows: The exhaust hood of the ventilation component is arranged in the middle of the feeding barrel. By turning on the blower, the extracted air enters the exhaust hood, and the gas is transported to the inside of the feeding barrel through the exhaust hood, enabling ventilation treatment inside the feeding barrel, greatly improving the air circulation inside the feeding barrel, and preventing moisture from occurring inside the feeding barrel.
[0017] As a preferred embodiment, the blower is connected to the exhaust hood.
[0018] The technical effects of adopting the above further solution are as follows: Multiple groups are provided on the inner wall of the feeding barrel, facilitating the transportation of the air from the exhaust hood to the inside of the feeding barrel for ventilation treatment.
[0019] As a preferred embodiment, the fit between the ventilation component and the feeding barrel is a tight fit.
[0020] The technical effects of adopting the above further solution are as follows: The blower is welded and installed at the bottom end of the feeding barrel through the support plate for installation.
[0021] Compared with the prior art, the advantages and positive effects of the present utility model are as follows.
[0022] A receiving groove is provided at the top of the bin barrel, facilitating the insertion of the medicine barrel of the moisture-proof component into the receiving groove. The medicine barrel and the threaded cap can be rotated clockwise to open the medicine barrel. The desiccant is placed inside the medicine barrel, and the desiccant placed inside the medicine barrel is used to dry and protect the grains inside the bin barrel. Multiple groups of apertures are provided on the inner and outer surfaces of the medicine barrel, facilitating the release of the desiccant. Conversely, the medicine barrel and the threaded cap can be rotated counterclockwise to close and lock the medicine barrel and the threaded cap, preventing moisture from occurring inside the bin barrel and affecting the preservation effect of the grains inside the bin barrel. Description of the Drawings
[0023] Figure 1 is a schematic structural diagram of the silo of the present utility model;
[0024] Figure 2 is an internal structural diagram of the silo of the present utility model;
[0025] Figure 3 For the present utility model Figure 2 is an enlarged structural diagram at A in;
[0026] Figure 4 is a partial enlarged structural diagram of the ventilation component of the present utility model.
[0027] Wherein: 1, bin barrel; 2, base; 3, support seat; 4, receiving groove; 5, moisture-proof component; 501, medicine barrel; 502, threaded cap; 6, feeding barrel; 7, ventilation component; 701, blower; 702, support plate; 703, exhaust hood; 8, closing cover. Detailed Embodiment
[0028] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments in the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.
[0029] Embodiment
[0030] As Figure 1 , Figure 2 , Figure 3 and Figure 4 shown, the present utility model provides a technical solution: a moisture-proof silo, including a bin barrel 1, a base 2 is provided at the bottom end of the bin barrel 1, and a support seat 3 is installed at the bottom end of the base 2. A receiving groove 4 is provided at the top end of the bin barrel 1, and a moisture-proof component 5 is installed in the middle of the receiving groove 4;
[0031] The moisture-proof component 5 includes a medicine barrel 501 and a screw cap 502. The medicine barrel 501 is installed in the middle of the storage groove 4, and the screw cap 502 is connected to the top end of the medicine barrel 501;
[0032] A feeding barrel 6 is arranged inside the bin barrel 1; a ventilation component 7 is inserted in the middle section of the feeding barrel 6, and a closing cover 8 is arranged at the top end of the bin barrel 1. Specifically, first, the bin barrel 1 can be separated from the ground through the base 2 and the support seat 3, preventing the bin barrel 1 from being too close to the ground, resulting in the bottom of the bin barrel 1 being affected by moisture. Through the storage groove 4 arranged at the top end of the bin barrel 1, it is convenient to insert the medicine barrel 501 of the moisture-proof component 5 into the storage groove 4. The medicine barrel 501 and the screw cap 502 can be rotated clockwise to open the medicine barrel 501, and the desiccant is placed inside the medicine barrel 501. The desiccant placed inside the medicine barrel 501 is used to dry and protect the grains inside the bin barrel 1. Multiple groups of apertures are provided on the inner and outer surfaces of the medicine barrel 501, facilitating the release of the desiccant. Conversely, the medicine barrel 501 and the screw cap 502 can be rotated counterclockwise to close and lock the medicine barrel 501 and the screw cap 502. The grains are put into the feeding barrel 6 of the bin barrel 1. Multiple groups of holes are provided in the feeding barrel 6, enabling the desiccant inside the medicine barrel 501 to perform drying treatment on the grains at a short distance. The exhaust hood 703 of the ventilation component 7 is arranged in the middle of the feeding barrel 6. By turning on the blower 701, the extracted air enters the exhaust hood 703, and the gas is transported to the inside of the feeding barrel 6 through the exhaust hood 703, enabling ventilation treatment inside the feeding barrel 6, greatly improving the air circulation inside the feeding barrel 6 and preventing moisture from occurring inside the feeding barrel 6. Multiple groups of holes are provided on the inner wall of the feeding barrel 6, facilitating the wind from the exhaust hood 703 to be transported to the inside of the feeding barrel 6 for ventilation treatment. The blower 701 is welded and installed at the bottom end of the feeding barrel 6 through the support plate 702 for installation. Finally, the closing cover 8 is clamped and installed at the top end of the bin barrel 1. Through this technical solution, the problem that the grains placed inside the bin barrel 1 are damaged due to moisture when the grains are placed is solved. It is realized that the bin barrel 1 can be separated from the ground through the base 2 and the support seat 3, preventing the bin barrel 1 from being too close to the ground, resulting in the bottom of the bin barrel 1 being affected by moisture. Through the storage groove 4 arranged at the top end of the bin barrel 1, it is convenient to insert the medicine barrel 501 of the moisture-proof component 5 into the storage groove 4. The medicine barrel 501 and the screw cap 502 can be rotated clockwise to open the medicine barrel 501, and the desiccant is placed inside the medicine barrel 501. The desiccant placed inside the medicine barrel 501 is used to dry and protect the grains inside the bin barrel 1. Multiple groups of apertures are provided on the inner and outer surfaces of the medicine barrel 501, facilitating the release of the desiccant. Conversely, the medicine barrel 501 and the screw cap 502 can be rotated counterclockwise to close and lock the medicine barrel 501 and the screw cap 502.
[0033] Further, as Figure 1As shown: It also includes a closed cover 8 provided at the top of the bin 1. The advantage of this technical solution is that finally, the closed cover 8 is snapped onto the top of the bin 1 for installation.
[0034] In the above solution, there is also a problem that it is not convenient to ventilate the grains inside the bin 1 and the feeding bucket 6. For example Figure 2 and Figure 4 As shown: In this solution, the ventilation component 7 includes a blower 701, a support disk 702, and an exhaust hood 703. The blower 701 is inserted in the middle section of the feeding bucket 6, and the top of the blower 701 is connected to the support disk 702. The support disk 702 and the top of the blower 701 are connected to the exhaust hood 703. Grains are put into the feeding bucket 6 of the bin 1. Multiple groups of holes are provided in the feeding bucket 6, which can enable the desiccant inside the chemical agent bucket 501 to perform drying treatment on the grains at a short distance. The exhaust hood 703 of the ventilation component 7 is arranged in the middle of the feeding bucket 6. By turning on the blower 701, the extracted air enters the exhaust hood 703, and the gas is transported to the inside of the feeding bucket 6 through the exhaust hood 703, so that ventilation treatment is carried out inside the feeding bucket 6, greatly improving the air circulation inside the feeding bucket 6 and avoiding the appearance of moisture inside the feeding bucket 6. Multiple groups of holes are provided on the inner wall of the feeding bucket 6, which is convenient for transporting the air from the exhaust hood 703 to the inside of the feeding bucket 6 for ventilation treatment. The blower 701 is welded and installed at the bottom of the feeding bucket 6 through the support disk 702 for installation treatment.
[0035] Working principle:
[0036] For example Figures 1 - 4 As shown:
[0037] First, the storage barrel 1 can be separated from the ground through the base 2 and the support base 3, preventing the storage barrel 1 from being too close to the ground, which may cause the bottom of the storage barrel 1 to be affected by moisture. There is a receiving groove 4 provided at the top of the storage barrel 1, which facilitates the insertion of the medicine barrel 501 of the moisture-proof component 5 into the receiving groove 4. The medicine barrel 501 and the threaded cap 502 can be rotated clockwise to open the medicine barrel 501, and desiccant is placed inside the medicine barrel 501. The desiccant placed inside the medicine barrel 501 is used to protect the grains inside the storage barrel 1 from moisture. Multiple groups of apertures are provided on the inner and outer surfaces of the medicine barrel 501 to facilitate the release of the desiccant. Conversely, the medicine barrel 501 and the threaded cap 502 can be rotated counterclockwise to close and lock the medicine barrel 501 and the threaded cap 502. Grains are put into the feeding barrel 6 of the storage barrel 1. Multiple groups of holes are provided in the feeding barrel 6, enabling the desiccant inside the medicine barrel 501 to perform moisture-drying treatment on the grains at a close distance. The exhaust hood 703 of the ventilation component 7 is arranged in the middle of the feeding barrel 6. By turning on the blower 701, the extracted air enters the exhaust hood 703, and the gas is transported into the feeding barrel 6 through the exhaust hood 703, ventilating the inside of the feeding barrel 6, greatly improving the air circulation inside the feeding barrel 6 and preventing moisture from occurring inside the feeding barrel 6. Multiple groups of holes are provided on the inner wall of the feeding barrel 6 to facilitate the transportation of the air from the exhaust hood 703 into the feeding barrel 6 for ventilation. The blower 701 is welded and installed at the bottom of the feeding barrel 6 through the support plate 702. Finally, the sealing cover 8 is snap-fitted onto the top of the storage barrel 1 for installation.
[0038] The above is only the preferred embodiment of the present invention, and it is not intended to limit the present invention in other forms. Any person skilled in the relevant art may use the disclosed technical content to make changes or modifications into equivalent embodiments with equivalent changes and apply them to other fields. However, as long as it does not depart from the technical solution content of the present invention, any simple modification, equivalent change, and modification made to the above embodiments based on the technical essence of the present invention still fall within the protection scope of the technical solution of the present invention.
Claims
1. A moisture-proof silo, comprising a silo barrel (1), characterized in that: The bottom end of the bin barrel (1) is provided with a base (2), and the bottom end of the base (2) is installed with a support seat (3); the top end of the bin barrel (1) is provided with a storage groove (4), and the middle part of the storage groove (4) is installed with a moisture-proof component (5); The moisture-proof component (5) comprises a medicine barrel (501) and a threaded cover (502); the medicine barrel (501) is installed in the middle of the storage slot (4), and the top of the medicine barrel (501) is connected to the threaded cover (502); A feeding bucket (6) is arranged inside the bin barrel (1); a ventilation component (7) is inserted in the middle section of the feeding bucket (6); and a closing cover (8) is arranged at the top end of the bin barrel (1).
2. A moisture-proof silo according to claim 1, characterized in that: The medicine barrel (501) and the threaded cover (502) are threadedly connected.
3. A moisture-proof silo according to claim 1, characterized in that: The medicine barrel (501) is a mesh structure.
4. A moisture-proof silo according to claim 1, characterized in that: The ventilation assembly (7) comprises a blower (701), a support plate (702) and an exhaust hood (703); the blower (701) is inserted into the middle section of the feeding bucket (6), the top end of the blower (701) is connected to the support plate (702), and the support plate (702) and the top end of the blower (701) are connected to the exhaust hood (703).
5. A moisture-proof silo according to claim 4, characterized in that: The blower (701) and the support plate (702) are connected by welding, and a plurality of exhaust holes are provided at the upper end of the exhaust cover (703).
6. A moisture-proof silo according to claim 4, characterized in that: The blower (701) is connected to the exhaust hood (703).
7. A moisture-proof silo according to claim 1, characterized in that: The ventilation component (7) and the feeding bucket (6) are tightly fitted.