Analysis and detection device for carbon nanotube conductive paste

By designing an automated carbon nanotube conductive paste analysis and detection device, the inefficiency problem caused by manual cleaning and mixing in the prior art is solved, and an efficient self-cleaning detection process is achieved.

CN223078229UActive Publication Date: 2025-07-08SUZHOU SYNMINWAY NANO TECH CO LTD +1
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Patent Information

Application Number
CN202421735558.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-22
Publication Date
2025-07-08
Estimated Expiration
2034-07-22

AI Technical Summary

Technical Problem

Existing conductivity testers require manual cleaning of detection contacts and shaking and mixing when detecting conductive paste of carbon nanotubes, resulting in long detection time and low efficiency.

Method used

A carbon nanotube conductive paste analysis and detection device is designed, including transfer components, tester components, lifting components, cleaning components and mixing components. The detection contacts are cleaned and mixed in an automated manner, and the self-cleaning function is achieved by combining cleaning brushes and cleaning components.

Benefits of technology

It realizes efficient detection of carbon nanotube conductive paste, and the automated cleaning and mixing process greatly improves the detection efficiency and reduces manual operation time.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an analysis detection device of carbon nanotube conductive slurry, including transfer subassembly, tester subassembly, lift subassembly, cleaning subassembly, mixing subassembly and cleaning brush, tester subassembly is provided the right side of transfer subassembly top, mixing subassembly is provided the center of transfer subassembly top, the lift subassembly is provided with the cleaning brush, the lift subassembly is provided with the cleaning brush. The cleaning assembly is arranged on the left side of the top of the transferring assembly, the cleaning brush is arranged on the back face of the mixing assembly, and the transferring assembly comprises a mounting base, a first sliding groove, a first threaded rod, a first sliding block and a first motor. The analysis and detection device for the carbon nano tube conductive paste has the advantages of self-cleaning function and high detection efficiency, and solves the problems that the detection contact of a conductivity tester in the prior art needs to be cleaned manually during use, and manual shaking and mixing are needed, so that the time for detection and analysis is long, and the detection efficiency is high. And meanwhile, the detection efficiency is relatively low.
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Description

Technical Field

[0001] The utility model relates to the technical field of analysis and detection devices for carbon nanotube conductive paste, and particularly relates to an analysis and detection device for carbon nanotube conductive paste. Background Technique

[0002] Carbon nanotubes, also known as buckytubes, are one-dimensional quantum materials with a special structure. Their radial size is on the nanometer scale, and their axial size is on the micrometer scale. Both ends of the tube are basically sealed. Carbon nanotubes are mainly composed of several to dozens of coaxial circular tubes formed by carbon atoms arranged in a hexagonal pattern. The distance between layers is fixed, about 0.34 nm, and the diameter is generally 2 - 20 nm. According to the different orientations of the carbon hexagons along the axis, they can be divided into three types: zigzag, armchair, and helical. Among them, the helical carbon nanotubes have chirality, while the zigzag and armchair carbon nanotubes do not have chirality. The use of carbon nanotube conductive paste is inevitable in the production of carbon nanotubes.

[0003] When purchasing carbon nanotube conductive paste, it is necessary to detect and analyze its properties, which is inseparable from the use of a conductivity tester. The conductivity tester is used to test the conductivity of carbon nanotube conductive paste. This instrument can measure the conductivity of the sample to test the content and dispersion of carbon nanotubes in the conductive paste. However, the existing conductivity tester needs to be manually cleaned for its detection contacts during use, and manual shaking and mixing are also required. This not only takes a long time for detection and analysis but also has low detection efficiency. Therefore, there is an urgent need for an analysis and detection device for carbon nanotube conductive paste to overcome the above defects. Content of the Utility Model

[0004] The purpose of the utility model is to provide an analysis and detection device for carbon nanotube conductive paste, which has the advantages of self-cleaning function and high detection efficiency, so as to solve the problems raised in the above background technique.

[0005] To achieve the above object, the utility model provides the following technical solution: an analysis and detection device for carbon nanotube conductive paste, including a transfer component, a tester component, a lifting component, a cleaning component, a mixing component and a cleaning brush. The tester component is arranged on the right side of the top of the transfer component, the mixing component is arranged at the center of the top of the transfer component, the cleaning component is arranged on the left side of the top of the transfer component, the cleaning brush is arranged on the back of the mixing component, the lifting component is arranged on the back of the cleaning brush. The transfer component includes a mounting base, a first chute, a first threaded rod, a first slider and a first motor. The tester component includes an operation panel, a spring wire and a detection contact body. The lifting component includes a clamping rod, a second chute, a second threaded rod, a second slider and a second motor. The cleaning component includes a storage tank, a first pump and a spray head frame. The mixing component includes a mixing tank, a clamping plate, a third motor, an electric valve and a second pump. The first chutes are all opened inside the mounting base, and the first motor is fixedly installed on the back of the mounting base.

[0006] Further, the first slider slides inside the first chute, the first threaded rod rotates through threads inside the first slider, and the output shaft of the first motor penetrates into the inner cavity of the first chute and is fixedly connected to the back of the first threaded rod.

[0007] Further, the second motor is fixedly installed on the top of the clamping rod, the clamping rod is fixedly installed on the top of the first slider, and the second chute is opened on the front of the clamping rod.

[0008] Further, the second slider slides inside the second chute, the second threaded rod rotates through threads inside the second slider, and the output shaft of the second motor penetrates into the inner cavity of the second chute and is fixedly connected to the top of the second threaded rod.

[0009] Further, the detection contact body is fixedly installed on the front of the second slider, the spring wire is fixedly installed on the top of the detection contact body, and the operation panel is fixedly installed on the right side of the top of the mounting base.

[0010] Further, the bottom of the spring wire is fixedly connected to the top of the operation panel, the third motors are all fixedly installed on the relatively far sides of the clamping plate, and the mixing tank is arranged inside the clamping plate.

[0011] Further, the relatively close sides of the third motors penetrate into the inside of the clamping plate and are fixedly connected to the relatively far sides of the mixing tank, the electric valve is fixedly installed inside the mixing tank, and the spray head frame is fixedly installed on the surface of the clamping rod.

[0012] Furthermore, the storage box is fixedly installed on the left side of the top of the installation base, the first pump is fixedly installed at the center of the top of the storage box, and the top of the first pump is communicated with the left side of the spray head frame through a telescopic pipe.

[0013] Furthermore, the second pump is fixedly installed on the top of the storage box, the back of the electric valve is communicated with the top of the second pump through a telescopic pipe, and the front of the cleaning brush is fixedly connected to the back of the mixing box.

[0014] To sum up, due to the adoption of the above technology, the beneficial effects of the present utility model are as follows:

[0015] The present utility model adjusts the position of the lifting assembly through the setting of the transfer assembly, adjusts the position of the detection contact body through the setting of the lifting assembly, detects and analyzes the characteristics of the carbon nanotube conductive paste through the setting of the tester assembly, mixes the carbon nanotube conductive paste through the setting of the mixing assembly, cleans the surface of the detection contact body through the setting of the cleaning brush, and flushes the surface of the detection contact body and supplies water to the mixing assembly through the setting of the cleaning assembly. When in use, turn on the second pump, and under the action of the second pump, water enters the inner cavity of the mixing box through the electric valve. Then pour the carbon nanotube conductive paste into the inner cavity of the mixing box. Immediately turn on the third motor, and drive the mixing box to shake through the third motor, so as to mix the carbon nanotube conductive paste and water. After mixing, turn on the first motor, the first motor drives the first threaded rod to rotate, and at the same time the first slider drives the clamping rod to move to the designated position. Finally, turn on the second motor, drive the second threaded rod to rotate through the second motor, so that the second slider drives the detection contact body to insert into the inner cavity of the mixing box, and detect and analyze the carbon nanotube conductive paste under the cooperation of the operation panel, the detection contact body and the spring wire. When cleaning the detection contact body, first turn on the first pump, and under the action of the first pump, the spray head frame sprays water to clean the surface of the detection contact body. Then turn on the second motor, the second motor drives the second threaded rod to rotate, so that the second slider drives the detection contact body to insert into the inner cavity of the cleaning brush, and clean the surface of the detection contact body under the action of the cleaning brush. It has the advantages of self-cleaning function and high detection efficiency, and solves the problems that the existing conductivity tester needs to be manually cleaned by its detection contact during use, and manual shaking is required for mixing, which not only takes a long time for detection and analysis, but also has low detection efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 is a schematic structural view of the present utility model;

[0017] Figure 2 is a schematic structural view of another perspective of the present utility model;

[0018] Figure 3Schematic diagram of the transfer component structure of the present utility model;

[0019] Figure 4 Schematic diagram of the lifting component structure of the present utility model.

[0020] In the figure: 1. Transfer component; 11. Installation base; 12. First chute; 13. First threaded rod; 14. First slider; 15. First motor; 2. Tester component; 21. Operation panel; 22. Spring wire; 23. Detection contact body; 3. Lifting component; 31. Clamping rod; 32. Second chute; 33. Second threaded rod; 34. Second slider; 35. Second motor; 4. Cleaning component; 41. Storage tank; 42. First pump; 43. Sprayer rack; 5. Mixing component; 51. Mixing tank; 52. Clamping plate; 53. Third motor; 54. Electric valve; 55. Second pump; 6. Cleaning brush. Specific embodiments

[0021] To make the purposes, technical solutions, and advantages of the embodiments of the present utility model clearer, the technical solutions in the embodiments of the present utility model will be clearly and completely described below in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are part of the embodiments of the present utility model, rather than all of the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present utility model. Therefore, the following detailed description of the embodiments of the present utility model provided in the accompanying drawings is not intended to limit the scope of the present utility model to be protected, but merely represents the selected embodiments of the present utility model. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present utility model.

[0022] The present utility model provides as Figures 1-4As shown, an analysis and detection device for carbon nanotube conductive paste includes a transfer component 1, a tester component 2, a lifting component 3, a cleaning component 4, a mixing component 5, and a cleaning brush 6. The tester component 2 is arranged on the right side of the top of the transfer component 1. The mixing component 5 is arranged at the center of the top of the transfer component 1. The cleaning component 4 is arranged on the left side of the top of the transfer component 1. The cleaning brush 6 is arranged on the back of the mixing component 5. The lifting component 3 is arranged on the back of the cleaning brush 6. The transfer component 1 includes a mounting base 11, a first chute 12, a first threaded rod 13, a first slider 14, and a first motor 15. The tester component 2 includes an operation panel 21, a spring wire 22, and a detection contact body 23. The lifting component 3 includes a clamping rod 31, a second chute 32, a second threaded rod 33, a second slider 34, and a second motor 35. The cleaning component 4 includes a storage tank 41, a first pump 42, and a nozzle holder 43. The mixing component 5 includes a mixing tank 51, a clamping plate 52, a third motor 53, an electric valve 54, and a second pump 55. The first chute 12 is opened inside the mounting base 11. The first motor 15 is fixedly installed on the back of the mounting base 11;

[0023] More specifically, by setting the cleaning component 4 to flush the surface of the detection contact body 23 and supply water to the mixing component 5 at the same time. When in use, turn on the second pump 55. Under the action of the second pump 55, water enters the inner cavity of the mixing tank 51 through the electric valve 54. Then pour the carbon nanotube conductive paste into the inner cavity of the mixing tank 51. Immediately afterwards, turn on the third motor 53. Drive the mixing tank 51 to shake through the third motor 53, so as to mix the carbon nanotube conductive paste and water. After mixing, turn on the first motor 15. The first motor 15 drives the first threaded rod 13 to rotate. At the same time, the first slider 14 drives the clamping rod 31 to move to the designated position. Finally, turn on the second motor 35. Drive the second threaded rod 33 to rotate through the second motor 35, so that the second slider 34 drives the detection contact body 23 to insert into the inner cavity of the mixing tank 51. Detect and analyze the carbon nanotube conductive paste under the cooperation of the operation panel 21, the detection contact body 23, and the spring wire 22. When cleaning the detection contact body 23, first turn on the first pump 42. Under the action of the first pump 42, the nozzle holder 43 sprays water to clean the surface of the detection contact body 23. Then turn on the second motor 35. The second motor 35 drives the second threaded rod 33 to rotate, so that the second slider 34 drives the detection contact body 23 to insert into the inner cavity of the cleaning brush 6, and clean the surface of the detection contact body 23 under the action of the cleaning brush 6, which has the advantages of self-cleaning function and high detection efficiency.

[0024] In some embodiments, the first slider 14 slides inside the first chute 12, the first threaded rod 13 rotates through threads inside the first slider 14, and the output shaft of the first motor 15 penetrates into the inner cavity of the first chute 12 and is fixedly connected to the back of the first threaded rod 13. More specifically, by providing the first chute 12 to limit the first slider 14, preventing the first slider 14 from shaking during movement, and by providing the first motor 15 to drive the first threaded rod 13, indirectly adjusting the position of the first slider 14.

[0025] In some embodiments, the second motor 35 is fixedly installed on the top of the clamping rod 31, the clamping rod 31 is fixedly installed on the top of the first slider 14, and the second chute 32 is opened on the front of the clamping rod 31. More specifically, by providing the second motor 35 to drive the second threaded rod 33, indirectly adjusting the position of the second slider 34, and by providing the second chute 32 to limit the second slider 34, preventing the second slider 34 from shaking during movement.

[0026] In some embodiments, the second slider 34 slides inside the second chute 32, the second threaded rod 33 rotates through threads inside the second slider 34, and the output shaft of the second motor 35 penetrates into the inner cavity of the second chute 32 and is fixedly connected to the top of the second threaded rod 33. More specifically, by providing the second slider 34 to limit the detection contact body 23, preventing the detection contact body 23 from shaking during movement.

[0027] In some embodiments, the detection contact body 23 is fixedly installed on the front of the second slider 34, the spring wire 22 is fixedly installed on the top of the detection contact body 23, and the operation panel 21 is fixedly installed on the right side of the top of the mounting base 11. More specifically, by providing the mounting base 11 to install the operation panel 21, and by providing the operation panel 21 to display the detection data.

[0028] In some embodiments, the bottom of the spring wire 22 is fixedly connected to the top of the operation panel 21, the third motors 53 are fixedly installed on the relatively far sides of the clamping plates 52, and the mixing tank 51 is arranged inside the clamping plates 52. More specifically, by providing the clamping plates 52 to install the third motors 53.

[0029] In some embodiments, the relatively close sides of the third motors 53 penetrate into the inside of the clamping plates 52 and are fixedly connected to the relatively far sides of the mixing tank 51, the electric valve 54 is fixedly installed in the inner cavity of the mixing tank 51, and the nozzle holder 43 is fixedly installed on the surface of the clamping rod 31. More specifically, by providing the third motors 53 to shake the mixing tank 51, and by providing the mixing tank 51 to store the liquid to be detected.

[0030] In some embodiments, the storage tank 41 is fixedly installed on the left side of the top of the installation base 11, the first pump 42 is fixedly installed at the center of the top of the storage tank 41, and the top of the first pump 42 is communicated with the left side of the spray head frame 43 through a telescopic pipe. More specifically, by setting the storage tank 41 to store water, and by setting the first pump 42 to provide power output for introducing water into the inner cavity of the spray head frame 43.

[0031] In some embodiments, the second pump 55 is fixedly installed on the top of the storage tank 41, the back of the electric valve 54 is communicated with the top of the second pump 55 through a telescopic pipe, and the front of the cleaning brush 6 is fixedly connected to the back of the mixing tank 51. More specifically, by setting the electric valve 54, it is convenient to introduce water into the inner cavity of the mixing tank 51, and at the same time, the water in the mixing tank 51 will not enter the inner cavity of the electric valve 54.

[0032] Working principle:

[0033] Step 1: When in use, turn on the second pump 55. Under the action of the second pump 55, water enters the inner cavity of the mixing tank 51 through the electric valve 54. Then pour the carbon nanotube conductive paste into the inner cavity of the mixing tank 51. Immediately afterwards, turn on the third motor 53. The third motor 53 drives the mixing tank 51 to shake, so as to mix the carbon nanotube conductive paste and water.

[0034] Step 2: After mixing, turn on the first motor 15. The first motor 15 drives the first threaded rod 13 to rotate. At the same time, the first slider 14 drives the clamping rod 31 to move to the specified position. Finally, turn on the second motor 35. The second motor 35 drives the second threaded rod 33 to rotate, so that the second slider 34 drives the detection contact body 23 to insert into the inner cavity of the mixing tank 51. Under the cooperation of the operation panel 21, the detection contact body 23 and the spring wire 22, the carbon nanotube conductive paste is detected and analyzed.

[0035] Step 3: When cleaning the detection contact body 23, first turn on the first pump 42. Under the action of the first pump 42, the spray head frame 43 sprays water to clean the surface of the detection contact body 23. Then turn on the second motor 35. The second motor 35 drives the second threaded rod 33 to rotate, so that the second slider 34 drives the detection contact body 23 to insert into the inner cavity of the cleaning brush 6, and under the action of the cleaning brush 6, the surface of the detection contact body 23 is cleaned. It has the advantages of self-cleaning function and high detection efficiency.

[0036] The above are only the preferred specific embodiments of the present utility model, but the protection scope of the present utility model is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present utility model, according to the technical solution and the inventive concept of the present utility model, making equivalent replacements or changes, shall be covered by the protection scope of the present utility model.

[0037] It should be noted that in this text, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover a non-exclusive inclusion, so that a process, method, article or device comprising a series of elements not only includes those elements, but also includes other elements not expressly listed, or further includes elements inherent to such process, method, article or device.

Claims

1. An analytical and detection device for carbon nanotube conductive paste, characterized in that: It includes a transfer component (1), a tester component (2), a lifting component (3), a cleaning component (4), a mixing component (5) and a cleaning brush (6). The tester component (2) is arranged on the right side of the top of the transfer component (1). The mixing component (5) is arranged at the center of the top of the transfer component (1). The cleaning component (4) is arranged on the left side of the top of the transfer component (1). The cleaning brush (6) is arranged on the back of the mixing component (5). The lifting component (3) is arranged on the back of the cleaning brush (6). The transfer component (1) includes a mounting base (11), a first chute (12), a first threaded rod (13), a first slider (14) and a first motor (15). The tester component (2) includes an operation panel (21), a spring wire (22) and a detection contact body (23). The lifting component (3) includes a clamping rod (31), a second chute (32), a second threaded rod (33), a second slider (34) and a second motor (35). The cleaning component (4) includes a storage tank (41), a first pump (42) and a nozzle holder (43). The mixing component (5) includes a mixing tank (51), a clamping plate (52), a third motor (53), an electric valve (54) and a second pump (55). The first chute (12) is opened inside the mounting base (11). The first motor (15) is fixedly installed on the back of the mounting base (11).

2. The analysis and detection device for carbon nanotube conductive paste according to claim 1, characterized in that: The first slider (14) slides inside the first chute (12). The first threaded rod (13) rotates through threads inside the first slider (14). The output shaft of the first motor (15) penetrates into the inner cavity of the first chute (12) and is fixedly connected to the back of the first threaded rod (13).

3. The analysis and detection device for carbon nanotube conductive paste according to claim 1, wherein: The second motor (35) is fixedly installed on the top of the clamping rod (31). The clamping rod (31) is fixedly installed on the top of the first slider (14). The second chute (32) is opened on the front of the clamping rod (31).

4. The analysis and detection device for the carbon nanotube conductive paste according to claim 1, wherein: The second slider (34) slides inside the second chute (32). The second threaded rod (33) rotates through threads inside the second slider (34). The output shaft of the second motor (35) penetrates into the inner cavity of the second chute (32) and is fixedly connected to the top of the second threaded rod (33).

5. The analysis and detection device for the carbon nanotube conductive paste according to claim 1, characterized in that: The detection contact body (23) is fixedly installed on the front of the second slider (34). The spring wire (22) is fixedly installed on the top of the detection contact body (23). The operation panel (21) is fixedly installed on the right side of the top of the mounting base (11).

6. The analysis and detection device for the carbon nanotube conductive paste according to claim 1, characterized in that: The bottom of the spring wire (22) is fixedly connected to the top of the operation panel (21). The third motors (53) are fixedly installed on the relatively far sides of the clamping plate (52). The mixing tank (51) is arranged inside the clamping plate (52).

7. The analysis and detection device for carbon nanotube conductive paste according to claim 1, characterized in that: The relatively closer side of the third motor (53) penetrates to the inner side of the clamping plate (52) and is fixedly connected to the relatively farther side of the mixing box (51). The electric valve (54) is fixedly installed in the inner cavity of the mixing box (51). The spray head frame (43) is fixedly installed on the surface of the clamping rod (31).

8. The analysis and detection device for carbon nanotube conductive paste according to claim 1, wherein: The storage tank (41) is fixedly installed on the left side of the top of the installation base (11). The first pump (42) is fixedly installed at the center of the top of the storage tank (41). The top of the first pump (42) is communicated with the left side of the spray head frame (43) through a telescopic pipe.

9. The analysis and detection device for the carbon nanotube conductive paste according to claim 1, characterized in that: The second pump (55) is fixedly installed on the top of the storage tank (41). The back of the electric valve (54) is communicated with the top of the second pump (55) through a telescopic pipe. The front of the cleaning brush (6) is fixedly connected to the back of the mixing box (51).