Powder storing and mixing steel platform
By introducing components such as a buffer silo, an electric activated hopper, a plow mixer, an electronic scale, an air classifier, and a circular vibrating screen into the powder storage and mixing steel platform, the problems of uneven mixing, low efficiency, and powder flying have been solved, achieving efficient and environmentally friendly powder processing.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SUPER POWER ROBOT (SHENZHEN) CO LTD
- Filing Date
- 2025-03-28
- Publication Date
- 2026-04-21
AI Technical Summary
Traditional steel platforms for storing and mixing powders suffer from problems such as uneven mixing, low efficiency, and high energy consumption. Furthermore, the mixing process can easily lead to powder flying and environmental pollution.
The turning and screening mechanism, consisting of components such as a large buffer hopper, an electric activated hopper, a plow mixer, an electronic scale, an air classifier, and a circular vibrating screen, enables automatic feeding, uniform mixing, and fine screening of powder materials, reducing dust leakage and blockage.
It achieves uniform mixing and efficient screening of powder materials, reduces energy consumption, minimizes powder loss and environmental pollution, and improves production efficiency and product quality.
Smart Images

Figure CN224141905U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of powder storage technology, and in particular to a powder storage and mixing steel platform. Background Technology
[0002] In industrial production, especially in fields involving powder handling, such as chemical, building materials, and pharmaceutical industries, there are strict requirements for the storage and mixing of powders. Powder storage and mixing steel platforms, as important facilities, are used to achieve safe storage, accurate metering, and uniform mixing of powders. In practical applications, powder storage and mixing steel platforms typically require the following technologies:
[0003] 1. The high-strength steel structure frame can withstand the weight of the powder and various forces generated during storage and mixing.
[0004] 2. Precise metering systems, such as weighing sensors and flow controllers, to accurately control the amount and ratio of powder input;
[0005] 3. The efficient mixing device ensures that the powder is fully and evenly mixed during the mixing process.
[0006] Traditional mixing methods often suffer from uneven mixing, low efficiency, and high energy consumption. Moreover, if the turning force is too large or uneven during the mixing process, it may cause powder to fly, resulting in environmental pollution and powder loss; if the turning force is too small, the ideal mixing effect cannot be achieved. Utility Model Content
[0007] To address the shortcomings of existing technologies, this utility model provides a steel platform for storing and mixing powders, which solves the problems of uneven mixing, low efficiency, and high energy consumption that often exist in traditional mixing methods. Moreover, during the mixing process, if the turning force is too large or uneven, it may cause powder to fly, resulting in environmental pollution and powder loss; if the turning force is too small, the ideal mixing effect cannot be achieved.
[0008] To achieve the above objectives, this utility model provides the following technical solution:
[0009] A powder storage and mixing steel platform includes a steel platform with a powder turning mechanism inside. The turning mechanism includes a large buffer hopper, an electrically activated hopper, a plow mixer, and an electronic scale. The steel platform also has a dust removal mechanism inside, which includes dust removal equipment. Additionally, the steel platform has a powder screening mechanism inside, which includes an air classifier and a circular vibrating screen.
[0010] Preferably, the buffer hopper is located inside the steel platform, and the electrically activated hopper is located at the bottom of the buffer hopper.
[0011] Preferably, the plow mixer is located at the bottom of the electrically activated hopper, and the electronic scale is installed at the bottom of the plow mixer.
[0012] Preferably, the dust removal equipment is fixedly installed inside the steel platform, and the dust removal equipment is located on the right side of the buffer silo.
[0013] Preferably, the airflow screen is positioned below the plow mixer, and the circular vibrating screen is positioned below the plow mixer.
[0014] Preferably, the circular vibrating screen is located to the right of the airflow screen, and a staircase for climbing is fixedly installed inside the steel platform.
[0015] Compared with the prior art, the present invention has the following beneficial effects:
[0016] 1. Start the buffer hopper. The buffer hopper will act as a gas conveying separator to suck up materials and store fine powders. The electric activated hopper will feed the powder from the buffer hopper into the plow mixer. The plow mixer will turn and mix the powder to ensure that it is evenly mixed inside the plow mixer. The plow mixer will then put the powder into the electronic scale. At this time, the electronic scale will record and feed back the weight information of the powder, thereby realizing the function of automatic feeding and automatic mixing.
[0017] II. Airflow screens enable fine sieving, showing significant effectiveness in sieving fine powders with particle sizes above 500 mesh. They offer high sieving speed and large throughput, meeting the needs of large-scale production. They are less prone to screen clogging issues with powders that are easily agglomerated, adhere, or subject to electrostatic adsorption, ensuring continuous and stable sieving. Operation is relatively quiet, with minimal dust leakage, making them environmentally friendly and pollution-free. Circular vibrating screens can efficiently classify and screen powders, featuring robust structure, stable operation, high sieving accuracy, large throughput, wide applicability, and simple operation and maintenance. They can accurately separate powders of different particle sizes with minimal impact on the physical properties of the powders. The combination of airflow screens and circular vibrating screens can improve sieving efficiency and accuracy, optimize the process flow, expand the range of applicable powders, reduce screen clogging, increase output and quality, reduce costs, and enhance system stability. Attached Figure Description
[0018] The above description is only an overview of the technical solution of this utility model. In order to better understand the technical means of this utility model and to implement it in accordance with the contents of the specification, the preferred embodiments of this utility model are described in detail below with reference to the accompanying drawings.
[0019] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0020] Figure 2For the present utility model Figure 1 A magnified structural diagram is shown in section A.
[0021] Figure 3 For the present utility model Figure 1 The enlarged structural diagram is shown in section B.
[0022] Legend: 11. Steel platform; 12. Staircase; 13. Buffer silo; 14. Electric activated hopper; 15. Dust removal equipment; 16. Plow mixer; 17. Electronic scale; 18. Air classifier; 19. Circular vibrating screen. Detailed Implementation
[0023] This application provides a powder storage and mixing steel platform, effectively solving the problems of uneven mixing, low efficiency, and high energy consumption often found in traditional mixing methods. Furthermore, during the mixing process, excessive or uneven turning force can cause powder to fly, resulting in environmental pollution and powder loss; conversely, insufficient turning force cannot achieve the desired mixing effect. The system activates a large buffer silo, which acts as a gas conveying separator to draw in material and stores fine powder. An electrically activated hopper feeds the powder from the buffer silo into a plow mixer, which agitates and mixes the powder to ensure uniform mixing. The plow mixer then transfers the powder to an electronic scale, which records and displays the powder weight information, thus achieving automatic feeding and mixing. The system also features an activated buffer silo that acts as a gas conveying separator to draw in material and stores fine powder. An electrically activated hopper feeds the powder from the buffer silo into the plow mixer. Internally, the plow mixer tumbles and mixes the powder, ensuring uniform mixing. The powder is then transferred to an electronic scale. The air classifier enables fine sieving, showing significant effectiveness for fine powders with a particle size of 500 mesh or larger. It boasts high sieving speed and large throughput, meeting the needs of large-scale production. It is less prone to screen clogging for powders that are prone to agglomeration, adhesion, or electrostatic adsorption, ensuring continuous and stable sieving. It operates with relatively low noise and minimal dust leakage, making it environmentally friendly and pollution-free. The circular vibrating screen efficiently grades and screens powders, featuring robust structure, stable operation, high sieving accuracy, large throughput, wide applicability, and simple operation and maintenance. It accurately separates powders of different particle sizes with minimal impact on their physical properties. The combination of the air classifier and the circular vibrating screen improves sieving efficiency and accuracy, optimizes the process flow, expands the range of applicable powders, reduces screen clogging, increases output and quality, lowers costs, and enhances system stability.
[0024] Example
[0025] like Figure 1 , Figure 2 and Figure 3As shown, the technical solution in this application embodiment effectively solves the problems of uneven mixing, low efficiency, and high energy consumption often found in traditional mixing methods. Furthermore, during the mixing process, if the turning force is too large or uneven, it may cause powder to fly, resulting in environmental pollution and powder loss; if the turning force is too small, the ideal mixing effect cannot be achieved. The overall concept is as follows: A powder storage and mixing steel platform includes a steel platform 11. The steel platform 11 is internally equipped with a powder turning mechanism, which includes a large buffer hopper 13, an electrically activated hopper 14, a plow-type mixer 16, and an electronic scale 17. The steel platform 11 is internally equipped with a dust removal mechanism to reduce dust, which includes a dust removal device 15. The steel platform 11 is internally equipped with a powder screening mechanism, which includes an air classifier 18 and a circular vibrating screen 19. A large buffer hopper 13 is located inside the steel platform 11. An electrically activated hopper 14 is located at the bottom of the large buffer hopper 13. A plow mixer 16 is located at the bottom of the electrically activated hopper 14. An electronic scale 17 is located at the bottom of the plow mixer 16. A dust removal device 15 is fixedly installed inside the steel platform 11, located on the right side of the large buffer hopper 13. When the large buffer hopper 13 is started, it will act as a gas conveying separator to suck up material and store fine powder. The electrically activated hopper 14 feeds the powder from the large buffer hopper 13 into the plow mixer 16. The plow mixer 16 turns and mixes the powder, making it evenly mixed inside the plow mixer 16. The plow mixer 16 then puts the powder into the electronic scale 17, which records and feeds back the powder weight information, thus realizing the function of automatic feeding and automatic mixing.
[0026] The air classifier 18 is positioned below the plow mixer 16, and the circular vibrating screen 19 is positioned below the plow mixer 16. The air classifier 18 can achieve fine screening, with significant effect on screening fine powders with a particle size of 500 mesh or larger. It has a fast screening speed and large processing capacity, which can meet the needs of large-scale production. It is not prone to screen clogging problems for powders that are prone to agglomeration, adhesion, or electrostatic adsorption, ensuring screening continuity and stability. It has relatively low noise during operation, less dust leakage, and is environmentally friendly and pollution-free. The circular vibrating screen 19 can efficiently classify and screen powders. It has the advantages of robust structure, stable operation, high screening accuracy, large processing capacity, wide applicability, and simple operation and maintenance. It can accurately separate powders of different particle sizes and has little impact on the physical properties of the powders.
[0027] The circular vibrating screen 19 is located to the right of the airflow screen 18. The steel platform 11 has a ladder 12 fixedly installed inside, which facilitates personnel to operate, inspect and maintain the device at different heights, thereby improving work efficiency.
[0028] To address the problems existing in the prior art, this utility model provides a powder storage and mixing steel platform. The large buffer silo 13 is activated, acting as a gas conveying separator to draw in material and store fine powder. An electrically activated hopper 14 feeds the powder from the large buffer silo 13 into a plow mixer 16, which agitates and mixes the powder, ensuring uniform mixing. The plow mixer 16 then transfers the powder into an electronic scale 17, which records and feeds back the powder weight information, thus achieving automatic feeding and mixing. An air classifier 18 enables fine sieving, showing significant effectiveness in sieving fine powders with a particle size of 500 mesh or larger, with high sieving speed and large processing capacity. Large-scale production capacity is ensured, and screen clogging is less likely to occur with powders that are prone to agglomeration, adhesion, or electrostatic adsorption, guaranteeing continuous and stable screening. Operation is relatively quiet with minimal dust leakage, making it environmentally friendly and pollution-free. The circular vibrating screen 19 can efficiently classify and screen powders, featuring robust structure, stable operation, high screening accuracy, large throughput, wide applicability, and simple operation and maintenance. It can accurately separate powders of different particle sizes with minimal impact on the physical properties of the powders. The combination of the airflow screen 18 and the circular vibrating screen 19 improves screening efficiency and accuracy, optimizes the process flow, expands the range of applicable powders, reduces screen clogging, increases output and quality, reduces costs, and enhances system stability.
[0029] Working principle:
[0030] The first step is to start the buffer hopper 13. The buffer hopper 13 will act as a gas conveying separator to suck up materials and store fine powder. The electric activated hopper 14 will put the powder from the buffer hopper 13 into the plow mixer 16. The plow mixer 16 will turn and mix the powder to make it evenly mixed inside the plow mixer 16. The plow mixer 16 will then put the powder into the electronic scale 17. At this time, the electronic scale 17 will record and feed back the powder weight information, thereby realizing the function of automatic feeding and automatic mixing.
[0031] The second step involves the air classifier 18, which enables fine sieving, particularly effective for fine powders with a particle size of 500 mesh or larger. It boasts high sieving speed and large throughput, meeting the demands of large-scale production. It is less prone to screen clogging issues with powders that are prone to agglomeration, adhesion, or electrostatic adsorption, ensuring continuous and stable sieving. The air classifier operates with relatively low noise and minimal dust leakage, making it environmentally friendly and pollution-free. The circular vibrating screen 19 efficiently grades and screens powders, featuring robust structure, stable operation, high sieving accuracy, large throughput, wide applicability, and simple operation and maintenance. It accurately separates powders of different particle sizes with minimal impact on their physical properties. The combination of the air classifier 18 and the circular vibrating screen 19 improves sieving efficiency and accuracy, optimizes the process flow, expands the range of applicable powders, reduces screen clogging, increases output and quality, lowers costs, and enhances system stability.
[0032] Finally, it should be noted that the above embodiments are merely examples for clearly illustrating the present invention and are not intended to limit the implementation. Those skilled in the art can make other variations or modifications based on the above description. It is neither necessary nor possible to exhaustively list all possible implementations. However, obvious variations or modifications derived therefrom are still within the protection scope of this invention.
Claims
1. A powder storage and mixing steel platform comprising a steel platform (11), characterized in that, The steel platform (11) is equipped with a mixing powder turning mechanism, which includes a buffer hopper (13), an electric activated hopper (14), a plow mixer (16), and an electronic scale (17). The steel platform (11) is also equipped with a dust removal mechanism to reduce dust, which includes a dust removal device (15). The steel platform (11) is equipped with a powder screening mechanism, which includes an airflow screen (18) and a circular vibrating screen (19).
2. A powder storage and mixing steel platform as claimed in claim 1, characterized in that, The large buffer hopper (13) is located inside the steel platform (11); The electric activated hopper (14) is located at the bottom of the buffer hopper (13).
3. A powder storage and mixing steel platform as claimed in claim 2, wherein, The plow mixer (16) is located at the bottom of the electrically activated hopper (14); The electronic scale (17) is located at the bottom of the plow mixer (16).
4. A powder storage and mixing steel platform as claimed in claim 2, wherein, The dust removal equipment (15) is fixedly installed inside the steel platform (11); The dust removal device (15) is located on the right side of the buffer silo (13).
5. A powder storage and mixing platform as claimed in claim 3, wherein, The airflow screen (18) is located below the plow mixer (16); The circular vibrating screen (19) is located below the plow mixer (16).
6. A powder storage and mixing steel platform as claimed in claim 5, characterized in that The circular vibrating screen (19) is located to the right of the airflow screen (18); The steel platform (11) is equipped with a staircase (12) for climbing.