Magnetic nano ion reaction equipment

By combining the electromagnetic field module with the stirring mechanism and designing the cleaning components, the problems of uneven solution mixing and difficulty in removing residues from the inner wall in traditional reaction equipment are solved, achieving uniform solution mixing and clean maintenance of the equipment.

CN223717142UActive Publication Date: 2025-12-26INSTITUTE OF APPLIED CHEMISTRY JIANGXI ACADEMY OF SCIENCES
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Patent Information

Application Number
CN202520243779.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-17
Publication Date
2025-12-26
Estimated Expiration
2035-02-17

AI Technical Summary

Technical Problem

Traditional reaction equipment is limited to stirring, which makes it difficult to remove residues and deposits from the inner wall of the equipment after the reaction is completed, and magnetic ions are prone to agglomeration.

Method used

A magnetic nano-ion reaction device was designed, which uses an electromagnetic field module and a stirring mechanism to work together. The solution is uniformly mixed by the stirring fan blades with alternating forward and reverse blades. A cleaning component is also provided, which uses a hydraulic cylinder to drive a scraper to remove the residue on the inner wall. The electromagnetic field is combined to prevent the aggregation of magnetic ions.

Benefits of technology

This method achieves thorough and uniform mixing of the solution, avoids magnetic ion polymerization, and facilitates the removal of residues from the inner wall of the reaction chamber, ensuring equipment cleanliness and stable operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of chemical reaction devices, in particular to magnetic nano ion reaction equipment which comprises a bottom plate and a reaction box arranged at the upper end of the bottom plate, a feeding pipe for adding reaction materials is arranged at the upper end of the reaction box, a discharging pipe is arranged at the side end of the reaction box, and a partition plate is fixedly connected in the reaction box. A partition plate is arranged in the reaction box and divides the reaction box into an upper space and a lower space, a stirring mechanism is arranged in the upper space, an electromagnetic field module is installed at the upper end of the bottom plate, the reaction box is located in the electromagnetic field module, the electromagnetic field module is powered on to generate a magnetic field, a main beam is fixedly connected to the side end of the reaction box, and a transverse plate is integrally and fixedly connected to the upper end of the main beam. A cleaning assembly for cleaning residues on the inner wall of the reaction box is mounted at the lower end of the transverse plate; according to the utility model, by virtue of the cooperative operation of the electromagnetic field module and the stirring mechanism, not only is the solution more fully and uniformly mixed, but also the phenomenon that magnetic ions are polymerized together is avoided, and in addition, residues on the inner wall of the reaction box can be conveniently scraped by the cleaning assembly.
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Description

TECHNICAL FIELD

[0001] The utility model relates to the field of chemical reaction device especially relates to a magnetic nano ionic reaction equipment. BACKGROUND

[0002] Magnetic nanomaterials have unique size effects and quantum surface effects, which have become increasingly important in the innovation of new materials. They have shown a wide range of application potential in many fields, including providing efficient sealing in magnetic sealing technology, reducing friction loss in space lubrication, achieving fine pattern making in micro-printing, improving storage density in magnetic recording, and achieving precise diagnosis and treatment in biomedical applications.

[0003] However, the traditional reaction equipment is only limited to stirring, which leads to the mutual adsorption and polymerization of magnetic ions during the reaction process. In addition, after the reaction is completed, the slag and attachments remaining on the inner wall of the equipment are difficult to remove, which not only increases the maintenance cost, but also may affect the subsequent reaction.

[0004] Therefore, in view of the above-mentioned problem that the traditional reaction equipment is only limited to stirring, which leads to the slag and attachments remaining on the inner wall of the equipment after the reaction is completed, a magnetic nano ionic reaction equipment can be designed, which not only realizes more sufficient and uniform mixing of the solution, but also avoids the phenomenon of magnetic ion polymerization. In addition, the cleaning assembly can conveniently scrape off the residues and attachments on the inner wall of the reaction box. SUMMARY

[0005] In order to overcome the problem that the traditional reaction equipment is only limited to stirring, which leads to the slag and attachments remaining on the inner wall of the equipment after the reaction is completed.

[0006] The technical scheme of the utility model is as follows: a magnetic nano ionic reaction equipment, comprising a bottom plate and a reaction box installed on the upper end of the bottom plate, an inlet pipe for adding reaction materials is installed on the upper end of the reaction box, a discharge pipe is installed on the side end of the reaction box, a partition plate is fixedly connected in the reaction box, the partition plate divides the reaction box into two spaces, an upper space is provided with a stirring mechanism, an electromagnetic field module is installed on the upper end of the bottom plate and the reaction box is located in the electromagnetic field module, the electromagnetic field module generates a magnetic field after being powered on, a main beam is fixedly connected to the side end of the reaction box, a horizontal plate is integrally fixedly connected to the upper end of the main beam, and a cleaning assembly for cleaning the residues on the inner wall of the reaction box is installed on the lower end of the horizontal plate.

[0007] As a preferred, the stirring mechanism comprises a rotary motor, the rotary motor is installed in the lower space, the output shaft of the rotary motor is connected with a rotating shaft and the rotating shaft extends upward into the upper space, the outer wall of the rotating shaft is fixedly connected with stirring blades, and the stirring blades rotate to drive the mixing of the solution in the reaction box.

[0008] Preferably, the stirring fan blades include forward blades and reverse blades; the outer wall of the rotating shaft is fixedly connected with the forward blades and the reverse blades around the circumference; and the forward blades and the reverse blades are staggered along the axial direction of the rotating shaft.

[0009] Preferably, the electromagnetic field module includes a spiral support, the upper end of the bottom plate is provided with the spiral support, a coil is wound on the spiral support, the coil is electrically connected with an external power supply, and the coil generates a magnetic field when powered.

[0010] Preferably, the cleaning assembly includes a hydraulic cylinder, the lower end of the horizontal plate is provided with the hydraulic cylinder, the power output end of the hydraulic cylinder is provided with a connecting plate, the lower end of the connecting plate is fixedly connected with a support rod, and the lower end of the support rod is fixedly connected with a scraping structure.

[0011] Preferably, the scraping structure includes an annular frame, the size of the annular frame is matched with the size of the inner wall of the reaction box, the upper end of the annular frame is fixedly connected with the lower end of the support rod, and the side end of the annular frame facing the inner wall of the reaction box is provided with a scraper, and the annular frame drives the scraper to move vertically along the inner wall of the reaction box.

[0012] Preferably, the lower end of the bottom plate is fixedly connected with a supporting leg, and the lower end of the supporting leg is provided with an antiskid pad.

[0013] Preferably, the pipe opening of the discharge pipe is provided with a valve, and the flow of the discharge is adjusted by controlling the valve.

[0014] Preferably, a reinforcing rib is arranged between the main beam and the reaction box, and the reinforcing rib is distributed along the vertical direction of the main beam.

[0015] Compared with the traditional reaction equipment, the electromagnetic field module and the stirring mechanism of the present scheme work cooperatively, not only realizing more sufficient and uniform mixing of the solution, but also avoiding the phenomenon that magnetic nano-ions are aggregated together, in addition, the cleaning assembly can conveniently scrape off the residues and attachments on the inner wall of the reaction box, thereby ensuring the cleanliness of the equipment and the long-term stable operation state. BRIEF DESCRIPTION OF DRAWINGS

[0016] Figure 1 A first three-dimensional structure schematic view of the magnetic nano-ion reaction equipment is shown.

[0017] Figure 2 A second three-dimensional structure schematic view of the magnetic nano-ion reaction equipment is shown.

[0018] Figure 3 A sectional view of the magnetic nano-ion reaction equipment is shown.

[0019] Figure 4 A three-dimensional structure schematic view of the stirring mechanism of the magnetic nano-ion reaction equipment is shown.

[0020] Figure 5 The utility model discloses a magnetic nanometer ion reaction equipment cleaning assembly three-dimensional structure schematic view.

[0021] The figure mark explanation: 1, bottom plate, 2, reaction box, 3, feed pipe, 4, discharge pipe, 5, partition, 6, main beam, 7, cross plate, 8, rotating motor, 9, rotating shaft, 10, forward blade, 11, reverse blade, 12, spiral support, 13, hydraulic cylinder, 14, connecting plate, 15, support rod, 16, annular frame, 17, scraper, 18, supporting leg, 19, antiskid pad, 20, valve, 21, reinforcing rib. DETAILED DESCRIPTION

[0022] The utility model will be further explained below in connection with the drawings and examples.

[0023] Please refer to Figures 1-5 The utility model provides a kind of embodiment: a kind of magnetic nanometer ion reaction equipment, including bottom plate 1 and install the reaction box 2 of bottom plate 1 upper end, the upper end of reaction box 2 is equipped with the feed pipe 3 of adding reaction material, the side end of reaction box 2 is equipped with discharge pipe 4, reaction box 2 is fixedly connected with partition 5, partition 5 is divided into two spaces of upper and lower into reaction box 2, the space of upper layer is provided with stirring mechanism, the upper end of bottom plate 1 is equipped with electromagnetic field module and reaction box 2 is located in electromagnetic field module, electromagnetic field module is powered on to generate magnetic field, the side end of reaction box 2 is fixedly connected with main beam 6, the upper end of main beam 6 is integrally fixedly connected with cross plate 7, the lower end of cross plate 7 is equipped with the cleaning assembly of cleaning reaction box 2 inner wall residue, bottom plate 1 is the support foundation of entire equipment, it is made with firm and durable material, reaction box 2 is used to accommodate and mix reaction material, partition 5 is a separation structure inside reaction box 2, reaction box 2 is divided into two spaces of upper and lower, the space of upper layer is used to set up stirring mechanism, to mix and stir reaction material, the space of lower layer is used to install rotating motor 8, stirring mechanism is used to mix and stir reaction material, electromagnetic field module is arranged around reaction box 2, it can generate magnetic field after being powered on to guide and directional arrangement nanometer ion generated in stirring process, cleaning assembly is used to clean residue and adherend on the inner wall of reaction box 2, through scraper 17, residue and adherend are scraped off, realize the effect of cleaning.

[0024] Please refer to Figure 3 And Figure 4In the embodiment, the stirring mechanism includes a rotating motor 8, the rotating motor 8 is installed in the space of the lower layer, the output shaft of the rotating motor 8 is connected with a rotating shaft 9 and the rotating shaft 9 extends upwardly into the space of the upper layer, the outer wall of the rotating shaft 9 is fixedly connected with stirring blades, the stirring blades rotate to drive the mixing of the solution in the reaction box 2, the stirring blades include forward blades 10 and reverse blades 11; the outer wall of the rotating shaft 9 is fixedly connected with the forward blades 10 and the reverse blades 11 around a circle, the forward blades 10 and the reverse blades 11 are staggered along the axis direction of the rotating shaft 9, the rotating motor 8 is the power source of the whole stirring mechanism, when the rotating motor 8 is electrified, it will generate a rotating force, the rotating force will be transmitted to the rotating shaft 9 through the output shaft, so as to drive the rotating shaft 9 and the stirring blades to rotate, when the rotating shaft 9 rotates, the forward blades 10 will push the solution to flow forward, so as to realize the mixing and stirring of the solution, the rotating direction of the reverse blades 11 is opposite to that of the forward blades 10, the function of the reverse blades 11 is to increase the turbulence of the solution, so that the solution is more fully mixed in the stirring process, the forward blades 10 and the reverse blades 11 are staggered along the axis direction of the rotating shaft 9, which means that the forward blades 10 and the reverse blades 11 will alternately act on the solution in the process of the rotating of the rotating shaft 9, so as to realize more uniform stirring effect, the staggered design can also improve the stirring efficiency.

[0025] Please refer to Figure 1 In the embodiment, the electromagnetic field module includes a spiral support 12, the upper end of the bottom plate 1 is provided with the spiral support 12, a coil is wound on the spiral support 12, the coil is electrically connected with an external power supply, the coil generates a magnetic field after being electrified, the spiral support 12 is responsible for supporting and fixing the coil, the spiral support 12 is made of an elongated metal strip and arranged in a spiral shape to form a continuous path, the spiral design enables the coil to be evenly distributed along the support, so as to ensure that the generated magnetic field is more uniform and stable, the coil is wound on the spiral support 12 and electrically connected with the external power supply, the size of the magnetic field can be adjusted by controlling the size of the current, during the synthesis of nano ions, the introduction of an external magnetic field can significantly affect the growth and assembly process of magnetic crystals, specifically, the introduction of the external magnetic field causes the change of the system energy and the enhancement of the magnetic dipole force, so as to promote the synthesized magnetic nanoparticles to exhibit more excellent anisotropy and order degree, at the same time, cooperating with the stirring action of the forward blades 10 and the reverse blades 11 can prevent the nanoparticles from aggregating together, in addition, a cooling fan can be added outside the device, the fan generates airflow to cool the device to a certain extent, so as to prevent the excessive heat from causing demagnetization defects.

[0026] Please refer to Figure 1 and Figure 5In the embodiment, the cleaning assembly comprises a hydraulic cylinder 13, the lower end of the cross plate 7 is provided with the hydraulic cylinder 13, the power output end of the hydraulic cylinder 13 is provided with a connecting plate 14, the lower end of the connecting plate 14 is fixedly connected with a supporting rod 15, the lower end of the supporting rod 15 is fixedly connected with a scraping structure, the scraping structure comprises an annular frame 16, the size of the annular frame 16 is matched with the size of the inner wall of the reaction box 2, the upper end of the annular frame 16 is fixedly connected with the lower end of the supporting rod 15, the side end of the annular frame 16 towards the inner wall of the reaction box 2 is provided with a scraper 17, the annular frame 16 drives the scraper 17 to move vertically along the inner wall of the reaction box 2, the lower end of the bottom plate 1 is fixedly connected with a supporting leg 18, the lower end of the supporting leg 18 is provided with an anti-skid pad 19, the hydraulic cylinder 13 is the power source of the whole cleaning assembly, the hydraulic cylinder 13 generates thrust or pull force through the pressure change of the internal liquid, so as to drive the scraper 17 to move vertically, the connecting plate 14 is a transition component, which is connected between the power output end of the hydraulic cylinder 13 and the supporting rod 15, so as to ensure that it can bear the thrust or pull force generated by the hydraulic cylinder 13 and transmit the force to the supporting rod 15, the supporting rod 15 is a vertical support structure, which is used for transmitting the force generated by the hydraulic cylinder 13, so that the scraping structure can move vertically along the inner wall of the reaction box 2, the scraping structure comprises the annular frame 16 and the scraper 17, the size of the annular frame 16 is matched with the size of the inner wall of the reaction box 2, so as to ensure that the scraper 17 can closely adhere to the inner wall of the reaction box 2, the scraper 17 is installed at the side end of the annular frame 16 towards the inner wall of the reaction box 2, which is used for scraping the dirt or residues on the inner wall of the reaction box 2, the supporting leg 18 is a component for connecting the bottom plate 1 and the ground, which ensures that the equipment can be placed stably on the ground, and the lower end of the supporting leg 18 is also provided with the anti-skid pad 19, so as to increase the friction with the ground and prevent the equipment from sliding during use.

[0027] Please refer to Figure 1 and Figure 2 In the embodiment, the pipe opening of the discharge pipe 4 is provided with a valve 20, the flow of the discharge is adjusted by controlling the valve 20, the main beam 6 and the reaction box 2 are provided with a reinforcing rib 21, the reinforcing rib 21 is distributed along the vertical direction of the main beam 6, the discharge pipe 4 is used for discharging the product after the reaction from the reaction box 2, in order to accurately control the flow of the discharge, the opening of the valve 20 is manually adjusted, so as to accurately control the flow of the solution flowing through the discharge pipe 4, the reinforcing rib 21 is distributed along the vertical direction of the main beam 6, forming a structure similar to a skeleton, which effectively combines the main beam 6 and the reaction box 2 closely, and the design improves the stability of the main beam 6 when the cleaning assembly works, so as to ensure the smooth progress of the experiment.

[0028] In the working process, the material is first introduced into the reaction box 2 through the feeding pipe 3, then the rotating motor 8 is started and the coil on the spiral support 12 is powered synchronously, the magnetic field generated after the coil is powered on makes the magnetic ions move in order, at this time, the rotating motor 8 drives the rotating shaft 9 to rotate, and then drives the rotation of the forward blade 10 and the reverse blade 11, so as to ensure that the solution is more fully and uniformly mixed, and also avoid the phenomenon that the magnetic ions are aggregated together;

[0029] After the reaction is completed, the solution is discharged through the discharge pipe 4, then the hydraulic cylinder 13 is started, and the connecting plate 14 and the supporting rod 15 are driven to move, and then the annular frame 16 and the scraper 17 are moved along the inner wall of the reaction box 2, so as to scrape the residues on the inner wall, and finally the residues are also discharged from the reaction box 2 through the discharge pipe 4.

[0030] Through the above steps, the electromagnetic field module and the stirring mechanism are cooperated in the scheme, not only the solution is more fully and uniformly mixed, but also the phenomenon that the magnetic ions are aggregated together is avoided, in addition, the cleaning assembly can conveniently scrape the residues and attachments on the inner wall of the reaction box 2, so as to ensure the cleanliness of the equipment and the long-term stable operation state, and solve the problem that the function of the traditional reaction equipment is limited to stirring, so that the residues and attachments on the inner wall of the equipment after the reaction is completed are difficult to clean.

[0031] The embodiments of the utility model are described in detail above combined with the drawings, but the utility model is not limited to the above-mentioned embodiments, within the knowledge range of the person skilled in the art, various changes can be made without departing from the purpose of the utility model.

Claims

1. A magnetic nano-ion reaction device, comprising a base plate (1) and a reaction box (2) installed on the upper end of the base plate (1), an inlet pipe (3) for adding reaction materials being installed on the upper end of the reaction box (2), and an outlet pipe (4) being installed on the side end of the reaction box (2); characterized in that: The reaction box (2) is fixedly connected with a partition plate (5), the partition plate (5) divides the reaction box (2) into two spaces, the upper space is provided with a stirring mechanism, the upper end of the bottom plate (1) is provided with an electromagnetic field module, and the reaction box (2) is located in the electromagnetic field module, the electromagnetic field module is powered to generate a magnetic field, the side end of the reaction box (2) is fixedly connected with a main beam (6), the upper end of the main beam (6) is integrally fixedly connected with a horizontal plate (7), and the lower end of the horizontal plate (7) is provided with a cleaning assembly for cleaning residues on the inner wall of the reaction box (2).

2. The magnetic nano-ion reaction apparatus according to claim 1, wherein: The stirring mechanism comprises a rotating motor (8), the lower space is provided with the rotating motor (8), the output shaft of the rotating motor (8) is connected with a rotating shaft (9), and the rotating shaft (9) extends upward into the upper space, the outer wall of the rotating shaft (9) is fixedly connected with stirring blades, and the stirring blades rotate to drive the solution in the reaction box (2) to mix.

3. The magnetic nano-ion reaction apparatus according to claim 2, wherein: The stirring blades comprise forward blades (10) and reverse blades (11); the outer wall of the rotating shaft (9) is fixedly connected with the forward blades (10) and the reverse blades (11) around the rotating shaft (9), and the forward blades (10) and the reverse blades (11) are distributed in a staggered manner along the axis direction of the rotating shaft (9).

4. The magnetic nano-ion reaction apparatus according to claim 3, wherein: The electromagnetic field module comprises a spiral support (12), the upper end of the bottom plate (1) is provided with the spiral support (12), a coil is wound on the spiral support (12), the coil is electrically connected with an external power supply, and the coil is powered to generate a magnetic field.

5. The magnetic nano-ion reaction apparatus according to claim 4, wherein: The cleaning assembly comprises a hydraulic cylinder (13), the lower end of the horizontal plate (7) is provided with the hydraulic cylinder (13), the power output end of the hydraulic cylinder (13) is provided with a connecting plate (14), the lower end of the connecting plate (14) is fixedly connected with a supporting rod (15), and the lower end of the supporting rod (15) is fixedly connected with a scraping structure.

6. The magnetic nano-ion reaction apparatus according to claim 5, wherein: The scraping structure comprises an annular frame (16), the size of the annular frame (16) is matched with the size of the inner wall of the reaction box (2), the upper end of the annular frame (16) is fixedly connected with the lower end of the supporting rod (15), the side end of the annular frame (16) towards the inner wall of the reaction box (2) is provided with a scraper (17), and the annular frame (16) drives the scraper (17) to move vertically along the inner wall of the reaction box (2).

7. The magnetic nano-ion reaction apparatus according to claim 6, wherein: The lower end of the bottom plate (1) is fixedly connected with a supporting leg (18), and the lower end of the supporting leg (18) is provided with an antiskid pad (19).

8. The magnetic nano-ion reaction apparatus according to claim 7, wherein: The pipe opening of the discharge pipe (4) is provided with a valve (20), and the flow of the discharge is adjusted by controlling the valve (20).

9. The magnetic nano-ion reaction apparatus of claim 8, wherein: The main beam (6) and the reaction box (2) are provided with a reinforcing rib (21), and the reinforcing rib (21) is distributed along the vertical direction of the main beam (6).