Efficient production system for calcium-based adsorbent

By designing a high-efficiency production system for calcium-based adsorbents, using starch as a binder and vacuum loading technology and other measures, the problems of complex and high energy consumption of calcium-based adsorbent preparation process are solved, and an efficient and low-cost production process is achieved.

CN120079362APending Publication Date: 2025-06-03GUIZHOU XINCHUAN ENERGY SAVING & ENVIRONMENTAL PROTECTION CO LTD
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Patent Information

Application Number
CN202510414111.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-03
Publication Date
2025-06-03

AI Technical Summary

Technical Problem

The preparation process of calcium-based adsorbents is complex and requires high energy consumption and high technical support, resulting in increased production costs and operational difficulties.

Method used

A calcium-based adsorbent efficient production system was designed, including raw material conveying module, preparation module and processing module. Using starch as a binder, vacuum loading technology and electric vibrators were used to simplify the process flow and improve production efficiency.

Benefits of technology

It realizes efficient production of calcium-based adsorbents, reduces energy consumption and material losses, simplifies the process flow, improves production efficiency, the mechanical strength and specific surface area of ​​the product, and is suitable for a variety of flue gas treatment processes.

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Abstract

The invention relates to the technical field of calcium-based adsorbent production, and discloses a calcium-based adsorbent efficient production system which comprises a raw material conveying module, a preparation module and a processing module, the raw material conveying module is used for conveying raw materials needed for preparing a calcium-based adsorbent to the preparation module; the preparation module is used for mixing the raw materials and obtaining the calcium-based adsorbent; the processing module is used for processing the strip-shaped calcium-based adsorbent and then drying the strip-shaped calcium-based adsorbent; the raw material conveying module comprises a first storage tank, a first electric vibrator, a first screw feeder, a vacuum feeder, a second storage tank, a third storage tank, a third electric vibrator and a second screw feeder; the raw materials, namely the quick lime and the fly ash, are common industrial byproducts, the quick lime is widely applied to construction and chemical engineering, the fly ash is common waste of a coal-fired power plant, and the raw materials are relatively easy to obtain and low in price.
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Description

Technical Field

[0001] The present invention relates to the technical field of calcium-based adsorbent production, and specifically to a high-efficiency production system for calcium-based adsorbents. Background Art

[0002] Calcium-based adsorbents have received high attention in environmental governance and industrial processes due to their excellent adsorption performance and wide application potential. This kind of adsorbent mainly utilizes the chemical properties of calcium compounds (such as calcium oxide or calcium hydroxide) to achieve efficient capture and removal of gaseous pollutants in coal-fired power plants. Calcium-based adsorbents are rich in resources, low in cost, and easy to operate, and are widely used in coal-fired power plants. On the basis of reducing gaseous pollutant emissions, they can also be used as by-products to produce gypsum, calcium chloride, etc., and have good potential for resource recycling.

[0003] Calcium-based adsorbents play an important role in industrial applications, especially in the field of environmental governance. However, the development of its preparation process and production line faces some challenges. Although calcium source raw materials are relatively abundant, the production of high-purity calcium oxide or other calcium compounds still involves high-energy-consuming processes. The purity of raw materials and the impurity removal process directly affect the performance and production cost of the adsorbent. In addition, the preparation of the adsorbent requires precise control of process parameters such as heat treatment, granulation, and activation. The complexity of the process requires high-level technical and equipment support for the production line, increasing capital investment and operation difficulty. Therefore, a high-efficiency production system for calcium-based adsorbents is proposed. Summary of the Invention

[0004] The purpose of the present invention is to provide a high-efficiency production system for calcium-based adsorbents to solve the problems raised in the above background art.

[0005] To achieve the above purpose, the present invention provides the following technical solution: A high-efficiency production system for calcium-based adsorbents, including a raw material conveying module, a preparation module, and a processing module; The raw material conveying module is used to convey the raw materials required for preparing calcium-based adsorbents to the preparation module; The preparation module is used to mix the raw materials and obtain calcium-based adsorbents; The processing module is used to process and dry the strip-shaped calcium-based adsorbents; The raw material conveying module includes a first storage tank, a first electric vibrator, a first screw feeder, a vacuum feeder, a second storage tank, a third storage tank, a third electric vibrator, and a second screw feeder; The first storage tank is used to store quicklime raw materials; The first electric vibrator is used to promote the loosening of the raw materials inside the first storage tank; The first screw feeder is used to convey the raw materials in the first storage tank to the next process; The vacuum feeding machine is used to convey starch to the inside of the second storage tank; The second storage tank is used to store starch raw materials; The third storage tank is used to store fly ash raw materials; The third electric vibrator is used to promote the loosening of the raw materials inside the third storage tank; The second screw feeder is used to convey the raw materials in the third storage tank to the next process.

[0006] Preferably, on one side of the first electric vibrator is installed on the outside of the first storage tank, on one side of the third electric vibrator is installed on the outside of the third storage tank, and the discharge end of the vacuum feeding machine is communicated with the feeding end of the second storage tank.

[0007] Preferably, the discharge end of the first storage tank is communicated with the feeding end of the first screw feeder, and the discharge end of the third storage tank is communicated with the feeding end of the second screw feeder.

[0008] Preferably, a PLC controller, a pneumatic vibrator and a solenoid valve are provided on one side of the second storage tank; The signal output end of the solenoid valve is connected to the input end of the pneumatic vibrator, and one side of the pneumatic vibrator is installed on the outside of the second storage tank.

[0009] Preferably, the preparation module includes a mixing bin and a second electric vibrator; The mixing bin is used to mix the raw materials conveyed from the first storage tank, the second storage tank and the third storage tank through a stirrer installed inside to form a uniform mixture; The second electric vibrator is used to promote the loosening of the raw materials inside the mixing bin.

[0010] Preferably, one side of the second electric vibrator is installed on the outside of the mixing bin, and the discharge ends of the first storage tank, the second storage tank and the third storage tank are all communicated with the feeding end of the mixing bin.

[0011] Preferably, the processing module includes a kneading and strip-forming unit, a glue unit, a bag filter, a fan, and a natural gas hot air blower; The kneading and strip-forming unit is used to knead the mixture output from the mixing bin into strips; The glue unit is used to inject glue into the kneading and strip-forming unit; The bag filter is used to capture the dust generated during the production process; The fan is used to provide pumping power for the bag filter; The natural gas hot air blower is used to dry the calcium-based adsorbent.

[0012] Preferably, the kneading and forming unit includes a kneader and a forming machine; The kneader is used to perform shearing, extrusion, and folding movements on the material, so that the material reaches uniform mixing; The forming machine is used to extrude the mixed material into a strip-shaped product with specific shapes and dimensions.

[0013] Preferably, the discharge end of the mixing bin is communicated with the feed end of the kneading and forming unit, the glue outlet end of the glue unit is communicated with the glue inlet end of the kneading and forming unit, the air inlet end of the blower is communicated with the air outlet end of the bag filter, and the air outlet end of the natural gas hot air blower is communicated with the air inlet end of the kneading and forming unit.

[0014] Preferably, the signal output end of the PLC controller is respectively connected to the input ends of the first electric vibrator, the vacuum feeder, the solenoid valve, the second electric vibrator, the third electric vibrator, the glue unit, the blower, and the natural gas hot air blower.

[0015] Compared with the prior art, the present invention adopts the above technical solutions and has the following technical effects: The original materials of the present invention, quicklime and fly ash, are both common industrial by-products. Quicklime is widely used in construction and chemical industries, while fly ash is a common waste of coal-fired power plants. The original materials are relatively easy to obtain and have low prices.

[0016] The present invention uses starch as an adhesive in the mixing bin to bond quicklime and fly ash to prepare a mixed adsorbent. The chemical reaction effect is good. The prepared mixed adsorbent has a large specific surface area, high mechanical strength, and a simple preparation process for the adsorbent, which is applicable to various flue gas treatment processes and has good industrial adaptability.

[0017] The present invention uses vacuum feeding technology to transport materials, with high production efficiency, almost no dust spillage during the feeding process, small material loss and energy consumption, and the adopted vacuum feeding technology is applicable to various material forms such as powders and granules, and can meet the diverse needs in the production of calcium-based adsorbents.

[0018] The present invention installs electric vibrators on the material storage tank. Through periodic vibration, it avoids the formation of bridges by powders and granular materials that easily lead to the smooth flow of materials being blocked; at the same time, vibration can prevent waste or blockage caused by materials adhering to parts such as the outlet wall surface, and has strong safety and stability.

[0019] After the mixed adsorbent is prepared in the mixing bin, the present invention also performs kneading and forming and drying treatments. The finally obtained finished adsorbent can be directly put into industrial use or sold commercially, with high economic benefits.

[0020] The calcium-based adsorbent system adopted by the present invention uses an integrated production line, reducing intermediate links, improving production efficiency and operation convenience. The mixing bin used is adjusted according to different production requirements to adapt to the characteristics of different raw materials and production requirements, with high flexibility and economy. New products can be developed by changing the raw material ratio to meet the diverse needs of the market. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings required for the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments of the present application. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.

[0022] Figure 1 It is a schematic diagram of the overall structure of the present invention; Figure 2 It is a schematic diagram of the structure at the pneumatic vibrator of the present invention; Figure 3 It is a schematic diagram of the structure at the bag filter of the present invention; Figure 4 It is a schematic diagram of the structure at the mixing bin of the present invention.

[0023] Description of reference numerals: 1. First storage tank; 2. First electric vibrator; 3. First screw feeder; 4. Vacuum feeder; 5. PLC controller; 6. Second storage tank; 7. Pneumatic vibrator; 8. Solenoid valve; 9. Mixing bin; 10. Second electric vibrator; 11. Third storage tank; 12. Third electric vibrator; 13. Second screw feeder; 14. Kneading and strip-forming unit; 15. Glue unit; 16. Bag filter; 17. Fan; 18. Natural gas hot air blower. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0024] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the drawings in the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, rather than all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present invention.

[0025] It should be noted that the structures, proportions, sizes, etc. shown in the attached drawings of this specification are only used to cooperate with the content disclosed in the specification for those familiar with this technology to understand and read, and are not used to limit the implementation conditions of this application. Therefore, they do not have substantial technical significance. Any modification of the structure, change in the proportional relationship, or adjustment of the size, without affecting the efficacy that this application can produce and the purpose that can be achieved, should still fall within the scope covered by the technical content disclosed in this application. Embodiment

[0026] Please refer to Figures 1-4 , the present invention provides a technical solution: a high-efficiency production system for calcium-based adsorbents, including a raw material conveying module, a preparation module, and a processing module; The raw material conveying module is used to convey the raw materials required for preparing the calcium-based adsorbent to the preparation module; The preparation module is used to mix the raw materials and obtain the calcium-based adsorbent; The processing module is used to process and dry the strip-shaped calcium-based adsorbent; The raw material conveying module includes a first storage tank 1, a first electric vibrator 2, a first screw feeder 3, a vacuum feeder 4, a second storage tank 6, a third storage tank 11, a third electric vibrator 12, and a second screw feeder 13; The first storage tank 1 is used to store the quicklime raw material; The first electric vibrator 2 is used to promote the loosening of the raw materials inside the first storage tank 1; The first screw feeder 3 is used to convey the raw materials in the first storage tank 1 to the next process; The vacuum feeder 4 is used to convey starch to the inside of the second storage tank 6; after the vacuum feeder 4 is started, a vacuum lower than the atmospheric pressure is formed in the conveying pipeline, and the starch is sucked into the conveying pipeline from the feed port, and can stably convey the starch into the second storage tank 6 at a certain rate; The second storage tank 6 is used to store the starch raw material. The starch contains a large number of hydroxyl groups, which can form hydrogen bonds with fly ash and quicklime to improve the adhesion of the adsorbent; at the same time, the addition of starch can improve the rheological properties of the adsorbent, making it easier to form during the preparation process and facilitating its transmission during the production process; The third storage tank 11 is used to store the fly ash raw material; the main components of fly ash include silicates, aluminates, and trace amounts of iron oxide, calcium oxide, etc.; The third electric vibrator 12 is used to promote the loosening of the raw materials inside the third storage tank 11; the electric vibrator breaks the blockage of the material through periodic vibration; the electric vibrator at the mixing bin 9 will help improve the mixing uniformity, enabling the materials of different components to come into contact and mix more fully, thereby improving the quality of the mixed adsorbent; The second screw feeder 13 is used to convey the raw materials in the third storage tank 11 to the next process.

[0027] The starch in the second storage tank 6 acts as a binder to promote the mixing reaction of both the quicklime raw material and the fly ash raw material, and finally forms a calcium-based adsorbent. The first screw feeder 3 and the second screw feeder 13 are composed of a screw blade and a long cylindrical outer shell. The blade rotates around the axis. Under the combined action of hydrodynamic force and friction, the material is pushed along the blade and moves forward.

[0028] One side of the first electric vibrator 2 is installed outside the first storage tank 1, one side of the third electric vibrator 12 is installed outside the third storage tank 11, the discharge end of the vacuum feeder 4 is connected to the feed end of the second storage tank 6, the discharge end of the first storage tank 1 is connected to the feed end of the first screw feeder 3, and the discharge end of the third storage tank 11 is connected to the feed end of the second screw feeder 13.

[0029] One side of the second storage tank 6 is provided with a PLC controller 5, a pneumatic vibrator 7 and a solenoid valve 8; The signal output end of the solenoid valve 8 is connected to the input end of the pneumatic vibrator 7, and one side of the pneumatic vibrator 7 is installed outside the second storage tank 6.

[0030] The preparation module includes a mixing bin 9 and a second electric vibrator 10; The mixing bin 9 is used to mix the raw materials conveyed by the first storage tank 1, the second storage tank 6 and the third storage tank 11 through the agitator installed inside to form a uniform mixture. The starch acts as a binder and is mixed in proportion. After being stirred and reacted by the agitator, a mixed calcium-based adsorbent is finally obtained; The second electric vibrator 10 is used to promote the loosening of the raw materials inside the mixing bin 9.

[0031] The quicklime reacts with the silicate in the fly ash to form calcium silicate compounds that improve the mechanical strength and stability of the adsorbent; at the same time, the porosity of the fly ash in the adsorbent skeleton will form pores, which will increase the specific surface area and pore volume. Under the adhesion of the carbonaceous substances decomposed from the starch, a mixed adsorbent with more excellent physical and adsorption properties is finally obtained.

[0032] One side of the second electric vibrator 10 is installed on the outside of the mixing bin 9. The discharge ends of the first storage tank 1, the second storage tank 6, and the third storage tank 11 are all connected to the feed end of the mixing bin 9. During the mixing process in the mixing bin 9, waste heat is transferred to other technological steps that require heating by using a heat exchanger, or is used to preheat the raw materials entering the mixing bin 9, thereby recovering waste heat and converting it into available energy. During the stirring or vibration process, part of the mechanical energy of motion is converted into electrical energy by using regenerative braking or energy harvesting technology, which is used to supply power to the sensors and control systems in the mixing bin 9. An intelligent energy management system is introduced to integrate and analyze the energy consumption data of the bins. By optimizing the operation mode and allocating resources, the overall energy consumption is further reduced.

[0033] The processing module includes a kneading and forming unit 14, a glue unit 15, a bag filter 16, a fan 17, and a natural gas hot air blower 18; The kneading and forming unit 14 is used to knead the mixture output from the mixing bin 9 into strips; The glue unit 15 is used to inject glue into the kneading and forming unit 14. The glue binder is injected into the kneading and forming unit 14 to act with the mixed adsorbent, improving the formability of the powdered mixed adsorbent and enhancing the overall mechanical strength and stability; The PLC controller 5 controls the automation of the entire glue unit 15, including the transportation, mixing, coating, and curing of the glue. High-precision metering pumps are used to ensure the precise transportation of the glue, reducing waste and product defects. An integrated dynamic mixer can mix multiple components in real time during the glue transportation process to ensure the uniformity and consistency of the glue. Intelligent sensors are installed to monitor the flow rate, pressure, and temperature of the glue in real time, and the parameters are automatically adjusted through a feedback control system.

[0034] The bag filter 16 is used to capture the dust generated during the production process; The bag filter 16 uses multi-layer composite filter materials, combining the characteristics of different materials to improve the filtration efficiency and service life. The outer layer uses coarse fiber materials for pre-filtration, and the inner layer uses fine fiber materials for fine filtration. An electrostatic field is applied to the surface of the filter material to enhance the adsorption capacity of particulate matter and improve the filtration efficiency; The fan 17 is used to provide the pumping power for the bag filter 16; The fan 17 is a variable-frequency fan, using an IE4-class motor to reduce energy consumption, and integrating a variable-frequency drive system to automatically adjust the fan speed according to actual needs to achieve precise control and energy conservation.

[0035] The natural gas hot air blower 18 is used to dry the calcium-based adsorbent. The natural gas hot air blower 18 generates hot air by burning natural gas. The adsorbent is fully contacted in the drying air flow generated by the natural gas hot air blower 18 and the moisture is evaporated, thereby increasing the temperature of the adsorbent and removing the excess moisture to finally obtain the finished adsorbent.

[0036] The kneading and forming unit 14 includes a kneader and a forming machine; A kneader is used to perform shearing, extrusion and folding movements on materials so that the materials can be uniformly mixed. The kneader adopts two Σ-shaped blades, arranged in a side-by-side tangent differential speed type, that is, one stirring blade has a fast speed and one stirring blade has a slow speed, so as to generate a shearing force. Different blade speeds enable the kneaded materials to be quickly sheared, so that the materials can be evenly mixed; a pair of mutually cooperating and rotating blades, usually in a Z shape, generate a strong shearing effect, enabling semi-dry or rubbery viscous plastics to react quickly to obtain a well-proportioned mixing and stirring device. A bar extruder is used to extrude the mixed materials into strip-shaped products with specific shapes and sizes.

[0037] The bar extruder consists of a base, a reducer motor, a control cabinet, a gearbox, a pressure feeding box, an extrusion barrel and an extrusion die; when the bar extruder works, the materials are added to the hopper, and a pair of relatively rotating pressure feeders in the pressure feeding box force the materials onto the rotating screw. The screw delivers the materials to the head, and after passing through the template, extrusion can be carried out, and high-surface-area shapes such as cylinders, hollow tubes, three-leaf shapes, four-leaf shapes, etc. can be extruded. After the mixed adsorbent passes through the kneading and bar extruding unit 14, the blower 17 provides power to transport the adsorbent from the kneading and bar extruding unit 14 to the bag filter 16 to achieve the separation of particulate matter and dust. The discharge end of the mixing bin 9 is communicated with the feeding end of the kneading and bar extruding unit 14, the glue outlet end of the glue unit 15 is communicated with the glue inlet end of the kneading and bar extruding unit 14, the air inlet end of the blower 17 is communicated with the air outlet end of the bag filter 16, and the air outlet end of the natural gas hot blower 18 is communicated with the air inlet end of the kneading and bar extruding unit 14.

[0038] The signal output end of the PLC controller 5 is respectively connected to the input ends of the first electric vibrator 2, the vacuum feeder 4, the solenoid valve 8, the second electric vibrator 10, the third electric vibrator 12, the glue unit 15, the blower 17 and the natural gas hot blower 18.

[0039] The model of the PLC controller 5 is: S7-400, and the PLC controller 5 is responsible for the automatic control of the entire system.

[0040] Working principle: The first electric vibrator 2 starts to work to transport the quicklime raw materials in the first storage tank 1 to the inside of the mixing bin 9. The third electric vibrator 12 starts to work to transport the fly ash in the third storage tank 11 to the inside of the mixing bin 9. The vacuum feeder 4 transports the starch to the inside of the second storage tank 6. Through the pneumatic vibrator 7 and the solenoid valve 8 connected to the second storage tank 6, the rate of starch entering the mixing bin 9 is controlled under the control of the PLC controller 5. Subsequently, under the action of the second electric vibrator 10, the alkaline substance reacts with the fly ash under the bonding action of the starch to finally generate the mixed adsorbent. The kneader and the bar forming machine knead and form the raw materials. The glue unit 15 transports glue to the inside of the kneading and bar forming unit 14 to be mixed with the adsorbent, so that the adsorbent is processed into a strip-shaped adsorbent with a specific shape and structure. Under the action of the fan 17, the strip-shaped adsorbent is transported from the kneading and bar forming unit 14 to the bag filter 16 to remove particulate matter and separate dust from the adsorbent. After passing through the bag filter 16, the strip-shaped adsorbent enters the natural gas hot air blower 18. The natural gas hot air blower 18 generates hot air by burning natural gas. In the drying air flow generated by the natural gas hot air blower 18, the adsorbent is fully contacted and the moisture is evaporated, thereby increasing the temperature of the adsorbent, removing the excess moisture, and finally obtaining a dry finished adsorbent.

[0041] In summary, the original materials of the present invention, quicklime and fly ash, are both common industrial by-products. Quicklime is widely used in construction and chemical industries, while fly ash is a common waste of coal-fired power plants. The original materials are relatively easy to obtain and inexpensive.

[0042] In the present invention, starch is used as an adhesive in the mixing bin 9 to bond quicklime and fly ash to prepare a mixed adsorbent. The chemical reaction effect is good. The prepared mixed adsorbent has a large specific surface area and high mechanical strength. Moreover, the process flow for preparing the adsorbent is simple, suitable for various flue gas treatment processes, and has good industrial adaptability.

[0043] The present invention uses vacuum feeding technology to transport materials, with high production efficiency, almost no dust spillage during the feeding process, small material loss and energy consumption. Moreover, the adopted vacuum feeding technology is applicable to various material forms such as powders and granules, and can meet the diverse requirements in the production of calcium-based adsorbents. The present invention installs an electric vibrator on the material storage tank. Through periodic vibration, it avoids the formation of bridges by powders and granular materials, which may cause the materials to flow smoothly. At the same time, vibration can prevent waste or blockage caused by materials adhering to parts such as the outlet wall surface, and has strong safety and stability. After the mixed adsorbent is prepared in the mixing bin 9 in the present invention, it is also subjected to kneading and bar forming and drying treatments. The finally obtained finished adsorbent can be directly put into industrial use or sold commercially, with high economic benefits. The calcium-based adsorbent system adopted in the present invention uses an integrated production line, reducing intermediate links, improving production efficiency and operation convenience. The mixing bin 9 used is adjusted according to different production requirements to adapt to the characteristics of different raw materials and production requirements, with high flexibility and economy. New products can be developed by changing the raw material ratio to meet the diverse market demands.

[0044] Those skilled in the art will appreciate that the features recited in the various embodiments and / or claims of the present invention can be combined or / and combined in various ways, even if such combinations or combinations are not explicitly recited in the present invention. In particular, without departing from the spirit and teachings of the present invention, the features recited in the various embodiments and / or claims of the present invention can be combined and / and combined in various ways. All such combinations and / and combinations fall within the scope of the present invention.

Claims

1. A calcium-based adsorbent efficient production system, characterized in that: It includes raw material conveying module, preparation module and processing module; The raw material conveying module is used to convey the raw materials required for preparing the calcium-based adsorbent to the preparation module; The preparation module is used to mix the raw materials and obtain the calcium-based adsorbent; The processing module is used to process and dry the strip-shaped calcium-based adsorbent; The raw material conveying module comprises a first storage tank (1), a first electric vibrator (2), a first screw feeder (3), a vacuum loader (4), a second storage tank (6), a third storage tank (11), a third electric vibrator (12) and a second screw feeder (13); The first storage tank (1) is used to store quicklime raw materials; The first electric vibrator (2) is used to promote the loosening of the raw materials inside the first storage tank (1); The first screw feeder (3) is used to transport the raw materials in the first storage tank (1) to the next process; The vacuum feeder (4) is used to transport starch to the inside of the second storage tank (6); The second storage tank (6) is used to store starch raw materials; The third storage tank (11) is used to store fly ash raw materials; The third electric vibrator (12) is used to promote the loosening of the raw materials inside the third storage tank (11); The second screw feeder (13) is used to transport the raw materials in the third storage tank (11) to the next process.

2. The calcium-based adsorbent efficient production system according to claim 1, characterized in that: One side of the first electric vibrator (2) is mounted on the outside of the first storage tank (1), one side of the third electric vibrator (12) is mounted on the outside of the third storage tank (11), and the discharge end of the vacuum feeder (4) is connected to the feed end of the second storage tank (6).

3. The calcium-based adsorbent efficient production system according to claim 2, characterized in that: The discharge end of the first storage tank (1) is connected to the feed end of the first screw feeder (3), and the discharge end of the third storage tank (11) is connected to the feed end of the second screw feeder (13).

4. The calcium-based adsorbent efficient production system according to claim 3, characterized in that: A PLC controller (5), a pneumatic rapper (7) and a solenoid valve (8) are provided on one side of the second storage tank (6); The signal output end of the solenoid valve (8) is connected to the input end of the pneumatic rapper (7), and one side of the pneumatic rapper (7) is installed on the outside of the second storage tank (6).

5. The calcium-based adsorbent efficient production system according to claim 4, characterized in that: The preparation module comprises a mixing bin (9) and a second electric vibrator (10); The mixing bin (9) is used to mix the raw materials delivered from the first storage tank (1), the second storage tank (6) and the third storage tank (11) to form a uniform mixture through a stirrer installed inside; The second electric vibrator (10) is used to promote the loosening of raw materials inside the mixing bin (9).

6. The calcium-based adsorbent efficient production system according to claim 5, characterized in that: One side of the second electric vibrator (10) is installed on the outside of the mixing bin (9), and the discharge ends of the first storage tank (1), the second storage tank (6) and the third storage tank (11) are all connected to the feed end of the mixing bin (9).

7. The calcium-based adsorbent efficient production system according to claim 6, characterized in that: The processing module comprises a kneading unit (14), a glue unit (15), a bag filter (16), a fan (17), and a natural gas hot air blower (18); The kneading and forming unit (14) is used to knead the mixture output from the mixing bin (9) into strips; The glue unit (15) is used to inject glue into the kneading and stripping unit (14); The bag dust collector (16) is used to capture dust generated during the production process; The fan (17) is used to provide suction power for the bag filter (16); The natural gas hot air blower (18) is used to dry the calcium-based adsorbent.

8. The calcium-based adsorbent efficient production system according to claim 7, characterized in that: The kneading and stripping unit (14) comprises a kneading machine and a stripping machine; The kneading machine is used to shear, extrude and fold the materials so that the materials are evenly mixed; The strip forming machine is used to extrude the mixed materials into strip products with specific shapes and sizes.

9. The calcium-based adsorbent efficient production system according to claim 8, characterized in that: The material discharge end of the mixing bin (9) is connected to the material feed end of the kneading and stripping unit (14), the glue discharge end of the glue unit (15) is connected to the glue feed end of the kneading and stripping unit (14), the air inlet end of the fan (17) is connected to the air outlet end of the bag filter (16), and the air outlet end of the natural gas hot air blower (18) is connected to the air inlet end of the kneading and stripping unit (14).

10. The calcium-based adsorbent efficient production system according to claim 9, characterized in that: The signal output end of the PLC controller (5) is respectively connected to the input ends of the first electric vibrator (2), the vacuum feeder (4), the solenoid valve (8), the second electric vibrator (10), the third electric vibrator (12), the glue unit (15), the fan (17) and the natural gas hot air blower (18).