High-performance nano material dispersing device

By designing a paint circulation loop and a high-performance nanomaterial dispersing device with precise diluent addition, the problem of uneven dispersion of nano-paints is solved, efficient dispersion and stable operation are achieved, and the fineness and glossiness of the nano-paint are ensured.

CN223366788UActive Publication Date: 2025-09-23IANGSU JINLING SPECIAL PAINT CO LTD
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202422736450.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-08
Publication Date
2025-09-23
Estimated Expiration
2034-11-08

AI Technical Summary

Technical Problem

Existing dispersion devices cannot effectively meet the dispersion requirements of nano-coatings, resulting in substandard particle size, coating aggregation and agglomeration, affecting the subsequent grinding effect, and the final dispersion effect of existing dispersion devices with grinding structures is poor.

Method used

A high-performance nanomaterial dispersion device was designed. Through the paint circulation loop consisting of a stirring barrel, a first side box and a second side box, combined with a gear pump and a multi-pipeline system, multiple stirring of the paint and precise addition of diluent were achieved to prevent clogging and ensure the fineness and glossiness of the nano-paint.

Benefits of technology

The nano coating can be completely crushed, mixed, emulsified and dispersed, meeting product requirements, preventing coating blockage and improving the stability and safety of the dispersion device.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223366788U_ABST
    Figure CN223366788U_ABST
Patent Text Reader

Abstract

The utility model discloses a high-performance nano material dispersing device which comprises a stirring barrel, a first side box adjacently arranged on one side of the stirring barrel and a second side box adjacently arranged on the other side of the stirring barrel, and a mixture formed by mixing a nano material and a solvent is stirred through the stirring barrel and a stirring assembly to form turbulent flow. Therefore, the mixed coating is dispersed and emulsified; the mixed coating is stirred and dispersed twice or more through a coating circulation loop formed by a second discharge pipeline and a reflux pipeline, and the mixed coating is thoroughly crushed, mixed, emulsified, dissolved and dispersed in multiple dispersion operations; the same solvent which is filled in advance is intermittently or continuously added into the coating circulation loop through the first side box and the first output pipeline, so that the requirements of fineness, uniformity, glossiness and the like of a nano coating product are met; a small-proportion diluent which is loaded in advance is added into the initial end area of the coating circulation loop through a second side box and a second output pipeline, so that the stirring and dispersing effect on the coating is improved, and the condition that the ratio of a solvent to a nano material meets the viscosity requirement of the coating performance after mixing and dispersing is ensured; and meanwhile, the blockage condition caused by too high viscosity of the mixed coating in the circulation loop can be prevented.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model relates to the technical field of coating dispersion, in particular to a dispersion device applied to high-performance nanomaterials. Background Art

[0002] In recent years, with advances in nanomaterial preparation technology, high-temperature resistant and thermal insulation coatings incorporating nanomaterials have seen rapid development. Nanomaterials possess properties not found in conventional materials, such as small size effects, surface effects, and quantum size effects. For example, high-surface-energy nanomaterials can be modified to become both hydrophobic and oleophobic. Their use in interior and exterior wall coatings can significantly improve the coating's stain resistance and weather resistance.

[0003] Paint dispersion is a crucial step in the production of nano-coatings. During this process, a dispersing device is typically used to stir and disperse slurry-like coating materials of varying viscosities, ensuring that the mixed coating is completely dispersed before proceeding to the next step. However, this approach is generally only suitable for conventional mixed coatings. For more demanding nano-scale coatings, the particle size of the solid portion of the coating after initial dispersion often fails to meet product requirements, necessitating repeated dispersion operations.

[0004] A common solution in the prior art is to add a grinding or milling process after the dispersion process, so that the solid particle size in the coating is further reduced and the coating is further dispersed evenly. For example, a nano-scale coating dispersion and grinding integrated device disclosed in the Chinese patent with the announcement number CN208466128U. However, the incompletely dispersed nano coating is directly input into the grinding part of the dispersion device or transported to another grinding device, and it is hoped that the grinding operation will make up for the process defect of incomplete pre-dispersion. It is easy for large-sized solid particles to get stuck in the grinding roller, and the solid particle size after grinding still does not meet the requirements, resulting in the coating being reworked or becoming waste. In addition, the coating is prone to aggregation, agglomeration and other problems during the transportation process, which leads to technical defects such as poor subsequent grinding effect and difficulty in meeting the product performance required by the nano coating.

[0005] Therefore, there is an urgent need in the prior art to invent a nanomaterial dispersing device with good dispersing effect. Utility Model Content

[0006] In order to overcome the technical problems that the conventional dispersion devices described in the above-mentioned prior art cannot meet the needs of nano coatings and the final dispersion effect of the dispersion devices with grinding structures in the prior art is not good, the utility model provides a high-performance nanomaterial dispersion device.

[0007] The technical solution adopted by the present invention to solve the problem is:

[0008] A high-performance nanomaterial dispersing device comprising:

[0009] A mixing barrel, wherein the bottom of the mixing barrel is provided with a discharge port, the discharge port is connected to a first discharge pipe and a second discharge pipe, and the second discharge pipe is connected to the top area of ​​the side wall of the mixing barrel through a return pipe;

[0010] a first side box disposed adjacent to one side of the mixing barrel, the first side box being connected to the return pipe via a first output pipe;

[0011] a second side box disposed adjacent to the other side of the mixing barrel, the second side box being connected to the second discharge pipe via a second output pipe;

[0012] Wherein, the inner cavity of the stirring barrel, the second discharge pipe and the return pipe constitute a paint circulation loop.

[0013] In a preferred embodiment of the present invention, the high-performance nanomaterial dispersing device further comprises a gear pump, which is disposed in the second discharge pipe and is used to provide power for the flow of the paint in the paint circulation loop.

[0014] Furthermore, the connection position of the second output pipe and the second discharge pipe is located between the gear pump and the discharge port of the mixing barrel.

[0015] In another preferred embodiment of the present invention, the number of the discharge outlet is one, the first discharge pipe and the second discharge pipe are connected to the discharge outlet through a connecting pipe, and the first discharge pipe and the second discharge pipe are respectively provided with a first valve and a second valve.

[0016] Optionally, there are two discharge outlets, the two discharge outlets are connected to the first discharge pipe and the second discharge pipe respectively, and both of the discharge outlets are provided with a third valve.

[0017] In another preferred embodiment of the present invention, the high-performance nanomaterial dispersion device further includes a connecting pipe, which is respectively connected to the bottom of the first side box and the second side box, and the connecting pipe is connected to the paint circulation loop through the third output pipe.

[0018] Furthermore, the connection position between the third output pipe and the paint circulation loop is located in the second discharge pipe.

[0019] In another preferred embodiment of the present invention, the high-performance nanomaterial dispersion device also includes a box body, the stirring barrel, the first side box and the second side box are located in the box body, and the top of the box body is provided with a first stop cover and a second stop cover corresponding to the positions of the first side box and the second side box respectively.

[0020] Furthermore, a transverse plate is provided on the top of the box body, and the transverse plate is arranged between the first blocking cover and the second blocking cover. A stirring component is rotatably passed through the transverse plate, and a stirring tool is provided at one end of the stirring component extending into the inner cavity of the stirring barrel.

[0021] Furthermore, the high-performance nanomaterial dispersing device further includes a base, the box body is fixedly mounted on the base via a bracket, and an installation space is provided between the box body and the base.

[0022] In summary, the high-performance nanomaterial dispersion device provided by the present invention has at least the following technical effects compared to the prior art:

[0023] 1) The stirring barrel of the utility model is used to introduce a mixture of nanomaterials and solvents (the nanomaterials and solvents can also be added separately and then stirred and mixed). The mixed coating is stirred by the stirring component to form turbulence, thereby achieving a dispersed and emulsified effect on the mixed coating. The stirring speed and stirring position of the stirring component are adjustable, and the stirring blade can be replaced according to actual needs. After stirring is completed, the mixed coating is discharged through the first discharge pipe at the bottom. The structural design is simple and reasonable, and the operation is easy;

[0024] 2) The first side box of the utility model is used to place a certain amount of the same solvent before stirring and dispersing. The stirring chamber in the stirring barrel, the second discharge pipe and the return pipe form a circulation loop, which is used to perform two or more stirring and dispersing operations on the mixed coating. During the circulation process, the pre-loaded same solvent can be intermittently or continuously added to the circulation loop through the first side box and the first output pipe according to actual needs, so that the mixed coating is thoroughly crushed, mixed, emulsified, dissolved and dispersed in multiple dispersion operations to ensure that the requirements of the nano coating product such as fineness, uniformity and glossiness are met;

[0025] 3) The second side tank of the present invention is used to place a liquid diluent or diluent mixture before stirring and dispersing. During the circulation process, the second side tank can add a small proportion of pre-loaded diluent to the loop through the second output pipe, improving the stirring and dispersing effect of the paint, ensuring that the mixed paint meets the viscosity requirements of coating performance, and preventing the mixed paint in the circulation loop from clogging due to excessive viscosity.

[0026] 4) The second side box is connected to the second discharge pipe in the pipe area in front of the gear pump through the second output pipe. Compared with the design of directly connecting to the mixing barrel or connecting to the return pipe, the connection method of the utility model can add diluent at the starting area of ​​the circulation loop and the gear pump inlet position where clogging is most likely to occur, thereby effectively preventing the mixed paint in the circulation loop from being blocked due to excessive viscosity, excessive flow or excessive flow rate, thereby improving the stability and safety performance of the device. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] Figure 1 This is a top view of the high-performance nanomaterial dispersion device of the utility model;

[0028] Figure 2 A three-dimensional diagram of the high-performance nanomaterial dispersion device of the present utility model;

[0029] Figure 3 This is a schematic structural diagram of the high-performance nanomaterial dispersion device of the present utility model.

[0030] The meanings of the reference numerals are as follows:

[0031] 1. Mixing barrel; 11. First discharge pipe; 12. Second discharge pipe; 13. Return pipe;

[0032] 2. First side box; 21. First output pipe;

[0033] 3. Second side box; 31. Second output pipe;

[0034] 4. Stirring assembly; 41. Horizontal plate;

[0035] 5. Gear pump;

[0036] 6. Connecting pipe; 61. Third output pipe;

[0037] 7. Box body; 71. First stopper; 72. Second stopper;

[0038] 8. Base. DETAILED DESCRIPTION

[0039] For better understanding and implementation, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings in the embodiments of the present invention.

[0040] In the description of the present invention, it should be noted that the terms "upper", "lower", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", etc., indicating directions or positional relationships, are based on the directions or positional relationships shown in the accompanying drawings. They are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific direction, be constructed and operated in a specific direction. Therefore, they cannot be understood as limitations on the present invention.

[0041] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as those commonly understood by those skilled in the art in the art of the present invention. The terms used herein in the specification of the present invention are only for the purpose of describing specific embodiments and are not intended to limit the present invention.

[0042] See also Figure 1 and Figure 2 As shown, according to an embodiment of the present invention, a high-performance nanomaterial dispersing device includes a mixing barrel 1, a first side box 2 adjacent to one side of the mixing barrel 1, and a second side box 3 adjacent to the other side of the mixing barrel 1. The mixing barrel 1 is used to contain a mixture of nanomaterial and solvent introduced through an external pipe, or to introduce a solvent and nanomaterial into the mixing barrel 1 through an external pipe and then mix them. By stirring the mixed coating in the mixing barrel 1 to form turbulence, the mixed coating is dispersed and emulsified.

[0043] See also Figure 2 As shown, the bottom of the mixing barrel 1 is provided with a discharge port (not shown in the figure), which is connected to a first discharge pipe 11 and a second discharge pipe 12. The second discharge pipe 12 is connected to the top area of ​​the side wall of the mixing barrel 1 through a return pipe 13. The inner cavity of the mixing barrel 1 is used to hold a mixture of nanomaterials and solvent (i.e., the raw materials of the mixed paint). The inner cavity of the mixing barrel 1, the second discharge pipe 12, and the return pipe 13 form a paint circulation loop.

[0044] Specifically, there are two flow paths for discharging the mixed paint in the inner cavity of the mixing barrel 1:

[0045] 1) After the final stirring and dispersion of the coating is completed, the mixed coating can flow into the first discharge pipe 11 through the discharge port at the bottom of the mixing barrel 1, and then be discharged through the outlet of the first discharge pipe 11 to enter the next process of the mixed coating production;

[0046] 2) After the paint is stirred and dispersed for the first time or for the first few times, the mixed paint can flow into the second discharge pipe 12 through the discharge port at the bottom of the mixing barrel 1, and then flow back into the inner cavity of the mixing barrel 1 through the return pipe 13, forming a paint circulation loop, thereby realizing a second or more circulation dispersion operation of the paint.

[0047] See also Figure 2 As shown, the first side box 2 is connected to the return pipe 13 via the first output pipe 21. The first side box 2 is filled with a certain amount of the same solvent as that in the mixing barrel, which is placed before stirring and dispersing. Specifically, during the paint circulation process, the pre-loaded same solvent can be intermittently or continuously added to the paint circulation loop through the first side box 2 and the first output pipe 21 according to actual needs. In multiple dispersion operations, the mixed paint is thoroughly crushed, mixed, emulsified, dissolved and dispersed, so that the ratio of the solvent and the nanomaterial meets the requirements of the fineness, uniformity and glossiness of the nano-paint product after mixing and dispersing. It is worth mentioning that the required solvent must be input into the paint circulation loop through the first output pipe 21 before the paint completes the final dispersion operation.

[0048] See also Figure 2As shown, the second side tank 3 is connected to the second discharge pipe 12 via a second output conduit 31. The second side tank 3 contains a liquid diluent or diluent mixture that is added prior to stirring and dispersing the paint. During the paint circulation process, the second side tank 3 can add a small proportion of the pre-loaded diluent or diluent to the paint circulation loop via the second output conduit 31, thereby enhancing the stirring and dispersing effect of the paint, ensuring that the mixed paint meets the viscosity requirements for coating performance, and preventing clogging of the mixed paint in the circulation loop due to excessive viscosity.

[0049] Furthermore, the connection point between the second output pipe 31 and the paint circulation loop is set at the second discharge pipe 12, so that a diluent can be added as needed at the starting area of ​​the paint circulation loop, thereby effectively preventing the pipeline blockage caused by excessive viscosity, excessive flow rate, or excessive flow rate of the paint in the circulation loop, thereby improving the stability and safety of the device. The liquid diluent or diluent mixture can be common rosin water, banana water (thinner water), or a mixture of the above diluents and common organic solvents.

[0050] Example 1

[0051] In a preferred embodiment of the present invention, a specific design scheme for a paint circulation loop is provided.

[0052] See also Figure 1-3 As shown, in the technical solution of this embodiment, the high-performance nanomaterial dispersion device also includes a gear pump 5, which is disposed in the second discharge pipe 12. The gear pump 5 is used to provide power for the circulation of the mixed coating in the coating circulation loop. The gear pump 5 is started intermittently, specifically, after the mixed coating in the inner cavity of the mixing barrel 1 completes any stirring and dispersion, and stops after the mixed coating is transported back to the inner cavity of the mixing barrel 1.

[0053] Further, see Figure 2 As shown, the connection point between the second output pipe 31 and the second discharge pipe 12 is located between the discharge port of the gear pump 5 and the mixing drum 1, that is, the second discharge pipe 12 is located in the pipe area before the gear pump 5. Compared with the design method of directly connecting to the mixing drum 5 or connecting to the return pipe 13 in the paint circulation loop, the connection method of the present utility model can add diluent at the starting area of ​​the paint circulation loop and at the inlet of the gear pump 5 where clogging is most likely to occur, thereby effectively preventing the pipe clogging in the circulation loop and further improving the stability and safety performance of the device.

[0054] In particular, the first output pipeline 21 and the second output pipeline 31 may also be provided with a gear pump or other fluid machinery for providing power for the flow of the solvent or the diluent, respectively.

[0055] Example 2

[0056] In another preferred embodiment of the present invention, two specific design solutions are provided for how to respectively assemble the first discharge pipe 11 and the second discharge pipe 12 .

[0057] In an alternative embodiment of this embodiment, the number of discharge ports is set to one, and the first discharge pipe 11 and the second discharge pipe 12 are connected to the discharge port via a connecting pipe. The first discharge pipe 11 and the second discharge pipe 12 are respectively provided with a first valve and a second valve (not shown in the figure). In this structural design, the first valve is used to directly control the opening and closing of the first discharge pipe 11, and the second valve is used to directly control the opening and closing of the second discharge pipe 12, thereby achieving on-off control of whether the mixed paint in the mixing barrel 1 enters the discharge flow path of the first discharge pipe 11, or on-off control of whether the mixed paint in the mixing barrel 1 enters the paint circulation loop of the second discharge pipe 12.

[0058] In particular, the connecting pipes connecting the first discharge pipe 11 and the second discharge pipe 12 with the discharge port may preferably be T-shaped pipes or pipes of other shapes with three connection ports.

[0059] In another alternative embodiment, there are two discharge ports, each connected to the first discharge pipe 11 and the second discharge pipe 12, respectively. A third valve is provided at each discharge port. In this structural design, the two third valves are used to control the opening and closing of the two discharge ports, thereby controlling whether the mixed paint in the mixing drum 1 enters the discharge path of the first discharge pipe 11 or whether the mixed paint in the mixing drum 1 enters the paint circulation loop of the second discharge pipe 12.

[0060] In particular, the first valve, the second valve and the third valve of this embodiment can be pipeline stop valves such as direct-flow type, ball type, flange type or plunger stop valves.

[0061] Example 3

[0062] In another preferred embodiment of the present invention, another design scheme is provided regarding how the first side box and the second side box are input into the paint circulation reflux.

[0063] See also Figure 1As shown, in the technical solution of this embodiment, the high-performance nanomaterial dispersion device further includes a connecting pipe 6, which is connected to the bottom of the first side box 2 and the second side box 3, respectively. The connecting pipe 6 is connected to the paint circulation loop via a third output pipe 61. Specifically, the first side box 2 and the second side box 3 can input solvent or diluent into the paint circulation loop through the connecting pipe 6 connected to their bottoms and the third output pipe 61 connected to the connecting pipe 6. In other words, the connecting pipe 6 and the third output pipe 61 serve as a second branch for inputting solvent or diluent into the paint circulation loop. The purpose of designing the second branch is that: when it is determined that a diluent is needed to adjust the viscosity of the paint and a large amount of solvent or diluent needs to be supplied, the same solvent and diluent can be continuously added to the paint circulation reflux by simultaneously opening the first output pipe 21, the second output pipe 31 (these two pipes are the first branches for inputting solvent or diluent) and the second branch; in addition, when the dispersion device is used continuously for a long time, the second branch can also be used as a backup branch for the first output pipe 21 and the second output pipe 31, to avoid the inability to input solvent or diluent after any component of the first output pipe 21, the second output pipe 31 and the valves, gear pumps and other fluid machinery on the two pipes is damaged, thereby increasing the stability of the device.

[0064] Further, see Figure 1 and Figure 2 As shown, the connection position between the third output pipe 61 and the paint circulation loop is located at the second discharge pipe 12 of the paint circulation loop, that is, the third output pipe 61 is connected to the second discharge pipe 12, so that solvents and diluents can be added as needed in the starting area of ​​the paint circulation loop, thereby effectively preventing the paint in the circulation loop from being blocked due to excessive viscosity, excessive flow or excessive flow rate, thereby improving the stability and safety performance of the device.

[0065] Example 4

[0066] In another preferred embodiment of the present invention, a design scheme for the overall structure of a high-performance nanomaterial dispersing device is provided.

[0067] See also Figure 3As shown, in the technical solution of this embodiment, the high-performance nanomaterial dispersion device further includes a box body 7, in which the stirring barrel 1, the first side box 2, and the second side box 3 are located. The top of the box body 7 is provided with a first stopper 71 and a second stopper 72 corresponding to the positions of the first side box 2 and the second side box 3, respectively. The first stopper 71 is used to cover the top opening of the first side box 2 and half of the top opening of the stirring barrel 1, and the second stopper 72 is used to cover the top opening of the second side box 3 and the other half of the top opening of the stirring barrel 1, so as to prevent the paint, solvent, or diluent from splashing out during the startup of the device. At the same time, after the two stoppers are opened, the paint raw materials or diluents can be respectively added to the stirring barrel 1, the first side box 2, and the second side box 3 through pipes or other components.

[0068] Further, see Figure 2 and Figure 3 As shown, a transverse plate 41 is further provided on the top of the housing 7, which is arranged between the first stop cover 71 and the second stop cover 72 and is fixedly connected to the housing 7. A stirring assembly 4 is rotatably provided on the transverse plate 41, and one end of the stirring assembly 4 extending into the inner cavity of the stirring barrel 1 is provided with a stirring tool (not shown in the figure), and the other end is used to connect the motor or the motor and the reduction mechanism (such as a gearbox). Specifically, the stirring assembly 4 is driven to rotate by the motor or the motor and the reduction mechanism to achieve the stirring and dispersion operation of the mixed paint in the stirring barrel 1. The stirring speed and stirring position of the stirring assembly 4 can be adjusted, and the specifications and models of the stirring tool can be replaced according to actual needs. After the stirring is completed, the mixed paint is discharged through the first discharge pipe 11 at the bottom of the stirring barrel 1 or the second discharge pipe 12 enters the paint circulation loop. The structural design is simple and reasonable, and the operation is easy.

[0069] See also Figure 3 As shown, the high-performance nanomaterial dispersing device also includes a base 8, to which a housing 7 is fixedly mounted via a bracket. A predetermined distance is provided between the housing 7 and the base 8, forming an installation space. Specifically, this installation space provides installation and accommodation space for pipelines such as the first discharge pipeline 11, the second discharge pipeline 12, the connecting pipeline 6, and the third output pipeline 61, as well as the valves on each pipeline and the gear pump 5.

[0070] In particular, the base 8 can be the plate portion of a trailer, that is, a tugwheel can be provided at the bottom of the base 8 to facilitate the movement and use of the high-performance nanomaterial dispersion device and improve its adaptability to different usage scenarios.

[0071] In summary, the utility model stirs the mixture of nanomaterials and solvents through the stirring barrel 1 and the stirring component 4 to form turbulence, thereby achieving a dispersion and emulsification effect on the mixed paint; the paint circulation loop formed by the second discharge pipe 12 and the return pipe 13 performs a second or more stirring and dispersing operation on the mixed paint, and the mixed paint is thoroughly crushed, mixed, emulsified, dissolved and dispersed in multiple dispersion operations; the same solvent pre-loaded is intermittently or continuously added to the paint circulation loop through the first side box 2 and the first output pipe 21 to meet the requirements of fineness, uniformity and glossiness of nano-paint products; a small proportion of diluent pre-loaded is added to the starting area of ​​the paint circulation loop through the second side box 3 and the second output pipe 31 to enhance the stirring and dispersing effect of the paint, ensure that the ratio of the solvent and the nanomaterial meets the viscosity requirements of the coating performance after mixing and dispersion, and prevent the mixed paint in the circulation loop from being blocked due to excessive viscosity.

[0072] The technical means disclosed in the present invention are not limited to those disclosed in the above-mentioned embodiments, but also include technical solutions composed of any combination of the above-mentioned technical features. It should be noted that those skilled in the art can make various improvements and modifications without departing from the principles of the present invention, and such improvements and modifications are also considered to be within the scope of protection of the present invention.

Claims

1. High-performance nanomaterial dispersing device, characterized in that: include: A mixing barrel, wherein the bottom of the mixing barrel is provided with a discharge port, the discharge port is connected to a first discharge pipe and a second discharge pipe, and the second discharge pipe is connected to the top area of ​​the side wall of the mixing barrel through a return pipe; a first side box disposed adjacent to one side of the mixing barrel, the first side box being connected to the return pipe via a first output pipe; a second side box disposed adjacent to the other side of the mixing barrel, the second side box being connected to the second discharge pipe via a second output pipe; Wherein, the inner cavity of the stirring barrel, the second discharge pipe and the return pipe constitute a paint circulation loop.

2. The high-performance nanomaterial dispersing device according to claim 1, characterized in that: It also includes a gear pump, which is arranged in the second discharge pipe and is used to provide power for the flow of paint in the paint circulation loop.

3. The high-performance nanomaterial dispersing device according to claim 2, characterized in that: The connection position of the second output pipe and the second discharge pipe is located between the gear pump and the discharge port of the mixing barrel.

4. The high-performance nanomaterial dispersing device according to claim 1, characterized in that: The number of the discharge port is one, the first discharge pipe and the second discharge pipe are connected to the discharge port through a connecting pipe, and the first discharge pipe and the second discharge pipe are respectively provided with a first valve and a second valve.

5. The high-performance nanomaterial dispersing device according to claim 1, characterized in that: There are two discharge ports, which are respectively connected to the first discharge pipe and the second discharge pipe, and both of the discharge ports are provided with a third valve.

6. The high-performance nanomaterial dispersing device according to claim 1, characterized in that: It also includes a connecting pipe, which is connected to the bottom of the first side box and the bottom of the second side box respectively, and the connecting pipe is connected to the paint circulation loop through a third output pipe.

7. The high-performance nanomaterial dispersing device according to claim 6, characterized in that: The connection position between the third output pipe and the paint circulation loop is located in the second discharge pipe.

8. The high-performance nanomaterial dispersing device according to claim 1, characterized in that: It also includes a box body, the mixing barrel, the first side box and the second side box are located in the box body, and the top of the box body is provided with a first stop cover and a second stop cover corresponding to the positions of the first side box and the second side box respectively.

9. The high-performance nanomaterial dispersing device according to claim 8, characterized in that: A transverse plate is further provided on the top of the box body, and the transverse plate is arranged between the first blocking cover and the second blocking cover. A stirring component is rotatably passed through the transverse plate, and a stirring tool is provided at one end of the stirring component extending into the inner cavity of the stirring barrel.

10. The high-performance nanomaterial dispersing device according to claim 9, characterized in that: It also includes a base, the box body is fixedly installed on the base through a bracket, and an installation space is provided between the box body and the base.

Citation Information

Patent Citations

  • Nanometer coating dispersed -abrasive integrated device

    CN208466128U