Molecular sieve preparation equipment capable of efficiently regenerating

By introducing an inorganic material control quantity component into the molecular sieve preparation equipment and precisely controlling the delivery amount of sodium silicate or tetraethyl orthosilicate, the problem of reduced dispersion caused by agglomeration of magnetic nanoparticles was solved, and the regeneration effect and antioxidant performance of the molecular sieve were improved.

CN223430285UActive Publication Date: 2025-10-14LUOYANG JALON MICRO NANO NEW MATERIALS CO LTD
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Patent Information

Application Number
CN202422142081.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-31
Publication Date
2025-10-14
Estimated Expiration
2034-08-31

AI Technical Summary

Technical Problem

During the existing molecular sieve regeneration process, the agglomeration of magnetic nanoparticles leads to reduced dispersibility, poor coating adsorption effect, and affected antioxidant effect. In addition, the inorganic material is added unevenly, affecting the regeneration effect.

Method used

By adding inorganic material to control the amount of components, the telescopic guide column and the control plate are driven to move in the pipeline through the telescopic hydraulic cylinder, and the delivery amount of sodium silicate or tetraethyl orthosilicate is accurately controlled to ensure uniform mixing with the magnetic nanoparticles.

Benefits of technology

The uniform coating adsorption of magnetic nanoparticles is achieved, the regeneration effect of the molecular sieve is improved, the problem of too thin coating or insufficient dosage is avoided, and the antioxidant performance is enhanced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The molecular sieve preparation equipment comprises a molecular sieve preparation mechanism and an inorganic material adding and quantity controlling assembly, the molecular sieve preparation mechanism comprises a molecular sieve mixing and stirring assembly, one end of the molecular sieve mixing and stirring assembly is fixedly provided with a material conveying assembly, and the other end of the molecular sieve mixing and stirring assembly is fixedly provided with an inorganic material adding and quantity controlling assembly. The flow of inorganic materials such as sodium silicate or tetraethyl orthosilicate in the second pipeline can be controlled, the conveying amount of the inorganic materials such as sodium silicate or tetraethyl orthosilicate can be effectively controlled to enter the first pipeline, and the magnetic nanoparticles can achieve the coating adsorption effect; the problem that the regeneration effect of the molecular sieve is affected due to insufficient use amount of inorganic materials such as sodium silicate or tetraethyl orthosilicate is avoided.
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Description

TECHNICAL FIELD

[0001] The utility model relates to packing equipment technical field, concretely is a kind of molecular sieve preparation equipment of high-efficiency regeneration. BACKGROUND

[0002] In the regeneration process of molecular sieve, through electromagnetic induction heating technology, by radiating electromagnetic wave to the inside of heated material, the material molecules are collided and rubbed to generate heat, and the structure is composed of magnetic nano particles, molecular sieve raw powder, adhesive and the like.

[0003] The molecular sieve used in the current equipment contains magnetic nano particles, which can be quickly heated by electromagnetic induction heating. The magnetic nano particles are uniformly mixed with the molecular sieve raw powder to form a composite molecular sieve material. Adhesive (such as starch, cellulose, etc.) and glue dissolving agent (such as citric acid) are added, and then extruded into a shape. The formed molecular sieve is sintered at 400-600℃ for 5-8 hours to obtain the final product. Since the magnetic nano particles have inherent magnetic dipole interaction, agglomerates are easily formed during the mixing process. The agglomeration of magnetic nano particles will reduce their dispersion in the molecular sieve. Sodium silicate or tetraethyl orthosilicate and other inorganic materials are added to the magnetic nano particles during the conveying process. However, the addition of sodium silicate or tetraethyl orthosilicate and other inorganic materials to the magnetic nano particles during the conveying process is manually performed, and stirring is performed during the conveying process. The magnetic nano particles can achieve a coating adsorption effect. If the amount is insufficient, the coating will be too thin, which cannot effectively isolate air and moisture, and cannot achieve the expected antioxidant effect, further affecting the regeneration effect of the molecular sieve. SUMMARY

[0004] The utility model aims to provide a kind of molecular sieve preparation equipment of high-efficiency regeneration to solve the problems raised in the above background.

[0005] To achieve the above object, the utility model provides the following technical scheme: a kind of molecular sieve preparation equipment of high-efficiency regeneration, including molecular sieve preparation mechanism and adding inorganic material control component, the molecular sieve preparation mechanism includes molecular sieve mixing and stirring assembly, one end of the molecular sieve mixing and stirring assembly is fixedly installed with conveying material assembly, the upper end of the conveying material assembly is connected and fixed by bolt with support frame, the fixed plate upper end of the support frame is connected and fixed by bolt with conveying cylinder, the inside of the conveying cylinder is installed with helical blade shaft, the upper end of the helical blade shaft is installed with servo motor.

[0006] As a further preferred of the technical solution, the outer side end of the conveying cylinder is provided with a feeding port, the lower end of the conveying cylinder is provided with a second pipeline, the lower end of the second pipeline is fixedly installed in the interior of the box body, the lower end of the box body is provided with a first pipeline, and the first pipeline is fixedly installed in the interior of the conveying material assembly.

[0007] As a further preferred of the technical solution, the interior of the box body is provided with sliding grooves at both side ends, and the sliding grooves are connected with sliding rods in the interior through sliding.

[0008] As a further preferred of the technical solution, the sliding rods are fixedly installed with control gauges, and one end of the control gauges is provided with a connecting disc.

[0009] As a further preferred of the technical solution, one end of the connecting disc is connected and fixed with a telescopic guide column through bolts, and one end of the telescopic guide column is provided with a telescopic hydraulic cylinder.

[0010] As a further preferred of the technical solution, the control gauges are arranged in the intermediate positions of the first pipeline and the second pipeline.

[0011] As a further preferred of the technical solution, the telescopic hydraulic cylinder is connected to one end of a mounting plate through bolts, the mounting plate is installed at the upper end of a conveying material assembly, the lower end of the conveying material assembly is fixedly installed at the upper end of a support rod, and the lower end of the support rod is provided with a base.

[0012] The utility model provides a kind of molecular sieve preparation equipment of high-efficiency regeneration, with following beneficial effects:

[0013] (1) the utility model further drives control gauge to move by driving telescopic hydraulic cylinder to move telescopic guide column back and forth, and control gauge moves in the intermediate position of first pipeline and second pipeline, can control the flow of sodium silicate or orthosilicate tetraethyl ester etc. BRIEF DESCRIPTION OF DRAWINGS

[0014] Fig. 1 It is the schematic diagram of the overall structure of the utility model;

[0015] Fig. 2 It is the schematic diagram of the inorganic material control amount assembly structure of the utility model;

[0016] Fig. 3 It is the schematic diagram of telescopic guide column and telescopic hydraulic cylinder structure of the utility model;

[0017] Fig. 4 It is the schematic view of the control plate structure of the utility model;

[0018] Fig. 5 It is the schematic view of the sliding groove and the box structure of the utility model;

[0019] Fig. 6 It is the schematic view of the spiral blade shaft structure of the utility model;

[0020] In the figure: 100, molecular sieve preparation mechanism;101, base;102, support rod;200, add inorganic material control quantity assembly;201, support frame;202, fixed plate;203, conveying cylinder;204, feed inlet;205, servo motor;206, telescopic hydraulic cylinder;207, mounting plate;208, telescopic guide column;209, control plate;210, first pipeline;211, connecting disc;212, box;213, second pipeline;214, sliding rod;215, sliding groove;216, spiral blade shaft;300, conveying material assembly;400, molecular sieve mixing and stirring assembly. DETAILED DESCRIPTION

[0021] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model.

[0022] The utility model provides technical scheme: as Figs. 1-2 , Figs. 4-6 In the embodiment, a molecular sieve preparation equipment capable of efficient regeneration comprises a molecular sieve preparation mechanism 100 and an inorganic material control quantity assembly 200, characterized in that: the molecular sieve preparation mechanism 100 comprises a molecular sieve mixing and stirring assembly 400, one end of the molecular sieve mixing and stirring assembly 400 is fixedly installed with a conveying material assembly 300, the upper end of the conveying material assembly 300 is connected and fixed with a support frame 201 through bolts, the upper end of a fixed plate 202 of the support frame 201 is connected and fixed with a conveying cylinder 203 through bolts, the conveying cylinder 203 is internally installed with a spiral blade shaft 216, the upper end of the spiral blade shaft 216 is installed with a servo motor 205, the outer side end of the conveying cylinder 203 is installed with a feed inlet 204, the lower end of the conveying cylinder 203 is installed with a second pipeline 213, the lower end of the second pipeline 213 is fixedly installed in the inside of a box 212, the lower end of the box 212 is installed with a first pipeline 210, and the first pipeline 210 is fixedly installed in the inside of the conveying material assembly 300.

[0023] As Fig. 1 and Fig. 2As shown, the inside of the box 212 is provided with sliding grooves 215 on both sides, and the sliding grooves 215 are internally connected with sliding rods 214, the sliding rods 214 are fixedly installed with control gauges 209, one end of the control gauges 209 is installed with connecting discs 211, one end of the connecting discs 211 is connected and fixed with telescopic guide columns 208 through bolts, one end of the telescopic guide columns 208 is installed with telescopic hydraulic cylinders 206, the control gauges 209 are inserted in the middle position of the first pipeline 210 and the second pipeline 213, the telescopic hydraulic cylinders 206 are connected at one end of the mounting plates 207 through bolts, the mounting plates 207 are installed at the upper end of the material conveying assembly 300, the lower end of the material conveying assembly 300 is fixedly installed at the upper end of the support rod 102, and the lower end of the support rod 102 is installed with the base 101.

[0024] When the inorganic material such as sodium silicate or tetraethyl orthosilicate is added from the feeding port 204 to the inside of the conveying cylinder 203, the helical blade shaft 216 inside the conveying cylinder 203 is driven to rotate by the servo motor 205, and the inorganic material such as sodium silicate or tetraethyl orthosilicate can be orderly conveyed into the second pipeline 213 by the rotation of the helical blade shaft 216. Then, the telescopic guide column 208 is driven to move forward and backward by the telescopic hydraulic cylinder 206, and the control gauge 209 is further driven to move. The control gauge 209 moves in the middle of the first pipeline 210 and the second pipeline 213, and the inorganic material such as sodium silicate or tetraethyl orthosilicate in the second pipeline 213 can be controlled in flow rate, which can effectively control the amount of inorganic material such as sodium silicate or tetraethyl orthosilicate conveyed into the first pipeline 210. Then, the inorganic material such as sodium silicate or tetraethyl orthosilicate is conveyed in the material conveying assembly 300 through the first pipeline 210, and is mixed with magnetic nanoparticles. Then, the mixed magnetic nanoparticles are conveyed into the molecular sieve mixing and stirring assembly 400 by the material conveying assembly 300.

[0025] The utility model provides a kind of efficiently regenerable molecular sieve preparation equipment, specific working principle is as follows: when sodium silicate or tetraethyl orthosilicate and other inorganic materials are added to the inside of conveying cylinder 203 from feed inlet 204, the spiral blade shaft 216 inside conveying cylinder 203 is rotated by driving servo motor 205, further by the rotation of spiral blade shaft 216, sodium silicate or tetraethyl orthosilicate and other inorganic materials can be orderly conveyed to the inside of second pipeline 213, then telescopic hydraulic cylinder 206 is driven to move back and forth by driving telescopic hydraulic cylinder 206, and further drive control plate 209 to move, and control plate 209 moves between first pipeline 210 and second pipeline 213, the flow of sodium silicate or tetraethyl orthosilicate and other inorganic materials in second pipeline 213 can be controlled, the amount of sodium silicate or tetraethyl orthosilicate and other inorganic materials conveyed into first pipeline 210 can be effectively controlled, then sodium silicate or tetraethyl orthosilicate and other inorganic materials are conveyed in conveying material assembly 300 by first pipeline 210, and mixed with magnetic nano-particle, then mixed magnetic nano-particle is conveyed to the inside of molecular sieve mixing stirring assembly 400 by conveying material assembly 300.

[0026] Although the embodiments of the utility model have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations can be made thereto without departing from the principles and spirit of the utility model, and the scope of the utility model is defined by the appended claims and their equivalents.

Claims

1. A molecular sieve preparation device capable of high efficiency regeneration, comprising a molecular sieve preparation mechanism (100) and an inorganic material addition control component (200), characterized in that: The molecular sieve preparation mechanism (100) includes a molecular sieve mixing and stirring assembly (400), one end of which is fixedly mounted with a material conveying assembly (300), the upper end of the material conveying assembly (300) is connected and fixed to a support frame (201) via bolts, the upper end of a fixed plate (202) of the support frame (201) is connected and fixed to a conveying cylinder (203) via bolts, a spiral blade shaft (216) is installed inside the conveying cylinder (203), and a servo motor (205) is installed at the upper end of the spiral blade shaft (216).

2. The highly efficient regenerable molecular sieve preparation device according to claim 1, characterized in that: The outer end of the conveying cylinder (203) is equipped with a feed port (204), the lower end of the conveying cylinder (203) is equipped with a second pipe (213), the lower end of the second pipe (213) is fixedly installed inside the box (212), the lower end of the box (212) is equipped with a first pipe (210), and the first pipe (210) is fixedly installed inside the conveying material assembly (300).

3. The highly efficient regenerable molecular sieve preparation device according to claim 2, characterized in that: Sliding grooves (215) are provided at both ends of the interior of the box body (212), and the interior of the sliding grooves (215) is connected to a sliding rod (214) by sliding.

4. The highly efficient regenerable molecular sieve preparation device according to claim 3, characterized in that: The sliding rod (214) is fixedly mounted with a control plate (209), and one end of the control plate (209) is mounted with a connecting disk (211).

5. The highly efficient regenerable molecular sieve preparation device according to claim 4, characterized in that: One end of the connecting plate (211) is connected and fixed to the telescopic guide column (208) by means of a bolt, and one end of the telescopic guide column (208) is installed with a telescopic hydraulic cylinder (206).

6. The highly efficient regenerable molecular sieve preparation device according to claim 5, characterized in that: The control volume plate (209) is inserted in the middle position between the first pipe (210) and the second pipe (213).

7. The highly efficient regenerable molecular sieve preparation device according to claim 5, characterized in that: The telescopic hydraulic cylinder (206) is connected to one end of a mounting plate (207) by means of bolts. The mounting plate (207) is mounted on the upper end of a material conveying assembly (300). The lower end of the material conveying assembly (300) is fixedly mounted on the upper end of a support rod (102). The lower end of the support rod (102) is mounted with a base (101).