CN111020747A - System and method for continuously preparing carbon nanotube fibers based on floating catalytic CVD method - Google Patents

System and method for continuously preparing carbon nanotube fibers based on floating catalytic CVD method Download PDF

Info

Publication number
CN111020747A
CN111020747A CN201911356576.0A CN201911356576A CN111020747A CN 111020747 A CN111020747 A CN 111020747A CN 201911356576 A CN201911356576 A CN 201911356576A CN 111020747 A CN111020747 A CN 111020747A
Authority
CN
China
Prior art keywords
carbon source
catalyst
carbon nanotube
gasification
carrier gas
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
CN201911356576.0A
Other languages
Chinese (zh)
Other versions
CN111020747B (en
Inventor
吴昆杰
勇振中
张永毅
周世武
李清文
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Suzhou Institute of Nano Tech and Nano Bionics of CAS
Original Assignee
Suzhou Institute of Nano Tech and Nano Bionics of CAS
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Suzhou Institute of Nano Tech and Nano Bionics of CAS filed Critical Suzhou Institute of Nano Tech and Nano Bionics of CAS
Priority to CN201911356576.0A priority Critical patent/CN111020747B/en
Publication of CN111020747A publication Critical patent/CN111020747A/en
Application granted granted Critical
Publication of CN111020747B publication Critical patent/CN111020747B/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Classifications

    • DTEXTILES; PAPER
    • D01NATURAL OR MAN-MADE THREADS OR FIBRES; SPINNING
    • D01FCHEMICAL FEATURES IN THE MANUFACTURE OF ARTIFICIAL FILAMENTS, THREADS, FIBRES, BRISTLES OR RIBBONS; APPARATUS SPECIALLY ADAPTED FOR THE MANUFACTURE OF CARBON FILAMENTS
    • D01F9/00Artificial filaments or the like of other substances; Manufacture thereof; Apparatus specially adapted for the manufacture of carbon filaments
    • D01F9/08Artificial filaments or the like of other substances; Manufacture thereof; Apparatus specially adapted for the manufacture of carbon filaments of inorganic material
    • D01F9/12Carbon filaments; Apparatus specially adapted for the manufacture thereof
    • D01F9/127Carbon filaments; Apparatus specially adapted for the manufacture thereof by thermal decomposition of hydrocarbon gases or vapours or other carbon-containing compounds in the form of gas or vapour, e.g. carbon monoxide, alcohols
    • D01F9/133Apparatus therefor
    • CCHEMISTRY; METALLURGY
    • C01INORGANIC CHEMISTRY
    • C01BNON-METALLIC ELEMENTS; COMPOUNDS THEREOF; METALLOIDS OR COMPOUNDS THEREOF NOT COVERED BY SUBCLASS C01C
    • C01B32/00Carbon; Compounds thereof
    • C01B32/15Nano-sized carbon materials
    • C01B32/158Carbon nanotubes
    • C01B32/16Preparation
    • C01B32/164Preparation involving continuous processes

Abstract

The invention discloses a system and a method for continuously preparing carbon nanotube fibers based on a floating catalytic CVD method. The system includes gasification sampling device, synthetic reaction device and fibre and convolutes collection device, wherein, gasification sampling device includes gasification cavity and first heating device, first heating device is used for heating the gasification cavity, the gasification cavity has carbon source injection mouth and first carrier gas input port. The system provided by the invention can gasify the liquid carbon source/catalyst into gas in advance, and can accurately control the supply speed of the liquid carbon source/catalyst, the gasification temperature, the flow rate of the carrier gas and the temperature of the conveying pipeline, so that the gaseous carbon source/catalyst and the carrier gas are fully and uniformly mixed before entering the reaction zone of the synthesis reaction device, thereby providing the gaseous carbon source supply with accurately controllable speed, uniformity, stability and continuity for the growth of the carbon nano tube in the next step, and further realizing the continuous preparation of uniform carbon nano tube fibers.

Description

System and method for continuously preparing carbon nanotube fibers based on floating catalytic CVD method
Technical Field
The invention relates to a system for preparing carbon nanotube fibers, in particular to a system and a method for continuously preparing carbon nanotube fibers based on a floating catalytic CVD method, and belongs to the technical field of fiber synthesis.
Background
The floating catalytic CVD method is one of the most important methods for continuously preparing carbon nanotube fibers, and mainly comprises a carbon source/catalyst continuous supply system, a high-temperature reaction furnace body and a carbon nanotube fiber continuous collection system. Among these, the continuous carbon source/catalyst supply system has a critical influence on the quality of the carbon nanotube fiber product.
In the prior art, a liquid carbon source/catalyst supply device for preparing carbon nanotube fibers based on a floating catalytic CVD method mainly comprises two types: 1) directly injecting a liquid carbon source/catalyst solution into one end of a high-temperature growth furnace, and gasifying through the heat radiation of a growth area; 2) the liquid carbon source/catalyst solution can be atomized into micrometer-scale liquid drops, and the liquid drops are subjected to heat radiation of a growth area to complete the gasification process; however, if the liquid carbon source/catalyst solution is directly injected into one end of the high temperature growth furnace, the liquid carbon source/catalyst is dropwise added into the high temperature region for evaporation, and the evaporation process of the liquid drops is not continuous and uniform, so that the supply of the carbon source and the catalyst is not uniform and continuous; in addition, when the ultrasonic atomization assisted sample injection is adopted, the liquid carbon source/catalyst is firstly atomized into micron droplets by the ultrasonic atomization device and then enters the high-temperature region for gasification, bubbles are easily formed in liquid due to the heating effect of ultrasonic waves in the ultrasonic atomization process, and particularly the commonly used low-boiling-point carbon sources such as ethanol and acetone are easy to form, so that the ultrasonic atomization process is intermittently paused, the supply of the carbon source and the catalyst is unstable, and the continuity and the uniformity of the prepared carbon nanotube fiber are finally affected.
Disclosure of Invention
The invention mainly aims to provide a system and a method for continuously preparing carbon nanotube fibers based on a floating catalytic CVD method, so as to overcome the defects in the prior art.
In order to achieve the purpose, the technical scheme adopted by the invention comprises the following steps:
the embodiment of the invention provides a system for continuously preparing carbon nanotube fibers based on a floating catalytic CVD method, which comprises a gasification sample injection device, a synthesis reaction device and a fiber winding and collecting device, wherein the gasification sample injection device comprises a gasification chamber and a first heating device, the first heating device is used for heating the gasification chamber, the gasification chamber is provided with a carbon source injection port and a first carrier gas input port, a liquid carbon source/catalyst injected through the carbon source injection port can be heated and gasified into a gaseous state in the gasification chamber, and the gaseous carbon source/catalyst and a first carrier gas input through the first carrier gas input port are mixed in the gasification chamber to form a mixed reaction gas for synthesizing a carbon nanotube fiber precursor.
Furthermore, the gasification chamber is connected with the synthesis reaction device through a conveying pipeline, the conveying pipeline is further connected with a second heating device, and the second heating device is at least used for heating the conveying pipeline and enabling mixed reaction gas in the conveying pipeline to be kept in a gas state all the time.
Further, the carbon source injection port is also connected with an ultrasonic atomizer, and the ultrasonic atomizer is used for atomizing the liquid carbon source/catalyst and then inputting the atomized liquid carbon source/catalyst into the gasification chamber.
Further, the first carrier gas input port is also connected with a flow controller.
Further, the synthesis reaction device comprises a high-temperature tube furnace.
Furthermore, a second carrier gas inlet is arranged on the high-temperature tube furnace.
Furthermore, the system for continuously preparing the carbon nanotube fiber based on the floating catalytic CVD method further comprises a water sealing device, wherein the water sealing device is arranged between the synthesis reaction device and the fiber winding and collecting device and is in sealing fit with the synthesis reaction device, and the water sealing device is at least used for performing densification treatment on a synthesized carbon nanotube fiber precursor.
Further, water seal arrangement includes water seal tank and with water seal tank complex tail gas collection mechanism.
The embodiment of the invention also provides a method for continuously preparing carbon nanotube fibers based on a floating catalytic CVD method, which comprises the following steps: firstly gasifying the liquid carbon source/catalyst into a gas state, mixing the gas carbon source/catalyst with carrier gas to form mixed reaction gas, conveying the mixed reaction gas to a synthesis reaction device for synthesis reaction to form a carbon nano tube fiber precursor, and then fiberizing and collecting the carbon nano tube fiber precursor through a fiber winding and collecting device.
Further, the method specifically comprises the following steps:
1) providing the device for continuously preparing the carbon nanotube fibers based on the floating catalytic CVD method;
2) firstly, injecting a liquid carbon source/catalyst into an ultrasonic atomizer according to a preset flow rate, atomizing the liquid carbon source/catalyst by the ultrasonic atomizer, inputting the atomized liquid carbon source/catalyst into a gasification chamber, and heating the gasification chamber by a first heating device to gasify the atomized liquid carbon source/catalyst into a gas state; simultaneously, inputting a first carrier gas into the gasification chamber through a first carrier gas input port, and uniformly mixing the gaseous carbon source/catalyst and the first carrier gas in the gasification chamber to form mixed reaction gas;
3) the mixed reaction gas is conveyed into the synthesis reaction device through a conveying pipeline to be mixed with a second carrier gas and react to form a carbon nano tube fiber precursor;
4) and performing fiberization treatment on the carbon nanotube fiber precursor by a fiber winding and collecting device to form the carbon nanotube fiber.
Compared with the prior art, the system for continuously preparing the carbon nanotube fiber based on the floating catalytic CVD method can improve the uniformity of the carbon nanotube fiber prepared by the floating catalytic CVD method, can gasify a liquid carbon source/catalyst into a gas state in advance, and can accurately control the supply speed of the liquid carbon source/catalyst, the gasification temperature, the flow rate of carrier gas and the temperature of a conveying pipeline, so that the gaseous carbon source/catalyst and the carrier gas are fully and uniformly mixed before entering a reaction zone of a synthesis reaction device, thereby providing the gaseous carbon source supply with accurately controllable, uniform, stable and continuous speed for the growth of the carbon nanotube in the next step, and further realizing the continuous preparation of the uniform carbon nanotube fiber.
Drawings
FIG. 1 is a schematic structural diagram of a system for continuously preparing carbon nanotube fibers based on a floating catalytic CVD method according to an exemplary embodiment of the present invention;
FIG. 2 is a photograph of a carbon nanotube cylindrical intermediate grown from the system of FIG. 1;
FIG. 3a is an SEM image of the surface of a carbon nanotube fiber grown from the system of FIG. 1;
FIG. 3b is an SEM image of the interior of a carbon nanotube fiber grown from the system of FIG. 1;
fig. 4 is a photomicrograph of carbon nanotube fibers grown from the system of fig. 1.
Detailed Description
In view of the deficiencies in the prior art, the inventors of the present invention have made extensive studies and extensive practices to provide technical solutions of the present invention. The technical solution, its implementation and principles, etc. will be further explained as follows.
According to the system for continuously preparing the carbon nanotube fibers based on the floating catalytic CVD method, the heating and gasification system independent of the high-temperature growth area is adopted to evaporate and gasify the liquid carbon source/catalyst, the liquid carbon source/catalyst is uniformly mixed with the carrier gas, and the liquid carbon source/catalyst is conveyed into the high-temperature growth area through the temperature-controllable pipeline, so that stable and continuous supply of the carbon source and the catalyst and continuous preparation of the high-uniformity carbon nanotube fibers are realized.
The embodiment of the invention provides a system for continuously preparing carbon nanotube fibers based on a floating catalytic CVD method, which comprises a gasification sample injection device, a synthesis reaction device and a fiber winding and collecting device, wherein the gasification sample injection device comprises a gasification chamber and a first heating device, the first heating device is used for heating the gasification chamber, the gasification chamber is provided with a carbon source injection port and a first carrier gas input port, a liquid carbon source/catalyst injected through the carbon source injection port can be heated and gasified into a gaseous state in the gasification chamber, and the gaseous carbon source/catalyst and the first carrier gas input through the first carrier gas input port are mixed in the gasification chamber to form a mixed reaction gas for synthesizing a carbon nanotube fiber precursor.
The technical solution, the implementation process and the principle thereof will be further explained with reference to the drawings.
Referring to fig. 1, a system for continuously preparing carbon nanotube fibers based on a floating catalytic CVD method according to an exemplary embodiment of the present invention includes a gasification sample injection device, a synthesis reaction device, a water seal device, and a fiber winding and collecting device, wherein the gasification sample injection device is at least used for gasifying a liquid carbon source/catalyst to form a gas phase, and pre-mixing the gaseous carbon source/catalyst with a first carrier gas to form a mixed reaction gas; the synthesis reaction device is at least used for mixing and reacting the mixed reaction gas provided by the gasification sample introduction device with a second carrier gas to form a carbon nano tube fiber precursor, and the water seal device is at least used for performing densification treatment on the synthesized carbon nano tube fiber precursor; the fiber winding and collecting device is at least used for fiberizing and collecting the densified carbon nanotube fiber precursor.
Specifically, referring to fig. 1, the gasification sample injection device includes a gasification tank 5 and a gasification tank heating jacket (i.e. the first heating device, the same below) 6, the gasification tank heating jacket 6 is used for heating the gasification tank 5, the gasification tank 5 has a carbon source injection port and a first carrier gas input port, an ultrasonic atomizer 2 is arranged at the carbon source injection port, the ultrasonic atomizer is further connected with an injection pump 1 for injecting a liquid carbon source/catalyst, and the first carrier gas input port is connected with a flow controller or a flow control valve 4; the gas outlet of the gasification tank 5 is connected to the synthesis reaction device via an output pipeline, and the output pipeline is further connected to a heating jacket (i.e. the second heating device) 7 in a heat conducting manner, wherein the heating jacket 7 is used for heating the output pipeline, so that the carbon source/catalyst in the mixed reaction gas flowing through the output pipeline is kept in a gaseous state.
Specifically, the synthesis reaction device comprises a high-temperature furnace 11 and a high-temperature reaction furnace tube 10 arranged in the high-temperature furnace, sealing flanges 9 are arranged at an inlet and an outlet of the high-temperature reaction furnace tube 10, a second carrier gas inlet is also arranged on the sealing flange 9 at the inlet, an output pipeline is communicated with the high-temperature reaction furnace tube 10 through the sealing flange 9 at the inlet, mixed reaction gas led in through the output pipeline is mixed with second carrier gas input through the second carrier gas inlet, and the mixed reaction gas is reacted in the high-temperature reaction furnace tube 10 to form a carbon nanotube fiber precursor 12.
Specifically, the water sealing device comprises a water tank 15 and a water sealing tank 13 matched with the water tank, wherein liquid such as water is contained in the water tank 15, the water sealing tank 13 is arranged in the water tank 15, and the water sealing tank 13 and the liquid level in the water tank 15 enclose to form a sealing space; the water seal box 13 is provided with an exhaust port for exhausting the tail gas 14 exhausted from the high-temperature reaction furnace tube 10.
Specifically, the fiber winding and collecting device 18 includes a collecting roller that is engaged with a roller 16 provided in the water tank 15 and is capable of drawing the carbon nanotube fiber precursor into a fiber shape, and the drawn carbon nanotube fiber is wound around the collecting roller.
Specifically, the embodiment of the invention provides a system for continuously preparing carbon nanotube fibers based on a floating catalytic CVD method, which improves the uniformity of the carbon nanotube fibers prepared by the floating catalytic CVD method, and the specific technical process and principle are as follows:
the injection pump 1 injects the liquid carbon source/catalyst into the ultrasonic atomizer 2 according to a set flow rate, the liquid carbon source/catalyst is introduced into a gasification chamber of the gasification tank 5 after being ultrasonically atomized by the ultrasonic atomizer, the gasification tank 5 is heated to a set gasification temperature by the gasification tank heating sleeve 6, and atomized liquid carbon source/catalyst droplets are gasified into a gas state in the gasification tank;
meanwhile, the first carrier gas 3 enters the gasification tank from the first carrier gas input port at a set flow rate under the control of the flow controller 4 and is uniformly mixed with the gaseous carbon source/catalyst to form a mixed reaction gas; wherein, the gasification tank not only has the function of gasifying the liquid raw material, but also has the function of a gas mixing tank;
the uniformly mixed reaction gas is continuously and uniformly conveyed into the high-temperature reaction furnace tube 10 through a conveying pipeline, and the conveying pipeline is kept at a set temperature through a heating device 7 so as to prevent the gaseous carbon source/catalyst from being liquefied again at a lower temperature;
meanwhile, a second carrier gas 8 is introduced into the high-temperature reaction furnace tube 10 through a second carrier gas inlet at a certain flow rate, and a carbon nanotube fiber precursor (or referred to as a carbon nanotube aerogel product) 12 is generated after reaction processes such as cracking, catalytic growth and the like of a gaseous carbon source/catalyst occur in a high-temperature reaction zone in the high-temperature reaction furnace tube 10;
the carbon nanotube fiber precursor synthesized in the high-temperature reaction furnace tube 10 is subjected to water shrinkage densification in the water tank 15, and then is drawn to form the carbon nanotube fiber 17, and the carbon nanotube fiber 17 is finally collected by the fiber winding and collecting device 18.
Specifically, a photo of the carbon nanotube fiber precursor synthesized in the high-temperature reaction furnace tube 10 is shown in fig. 2, the carbon nanotube fiber precursor shown in fig. 2 is in a water-sealed box state, and the carbon nanotube fiber precursor is shown to be cylindrical and has a single-layer tube structure, so that the carbon nanotube fiber precursor is relatively uniform and clean, and no other impurities arranged in a mess are present in the tube. Fig. 3a is an SEM image of the surface of the carbon nanotube fiber, and fig. 3b is an SEM image of the inside of the fiber exposed after the surface portion of the carbon nanotube fiber is torn off by the tape, so that it can be seen that the carbon nanotubes constituting the carbon nanotube fiber 17 are well aligned along the axial direction of the fiber, and the fiber has less impurities, and is clean and uniform and has high degree of alignment. From fig. 4, it can be seen that the carbon nanotube fiber prepared by the system provided by the embodiment of the present invention has good uniformity in the axial direction.
The system for continuously preparing the carbon nanotube fiber based on the floating catalytic CVD method, which is provided by the embodiment of the invention, can improve the uniformity of the carbon nanotube fiber prepared by the floating catalytic CVD method, can gasify the liquid carbon source/catalyst into a gas state in advance, and can accurately control the supply speed, the gasification temperature, the flow rate of the carrier gas and the temperature of the conveying pipeline of the liquid carbon source/catalyst, so that the gaseous carbon source/catalyst and the carrier gas are fully and uniformly mixed before entering the reaction zone of the synthesis reaction device, thereby providing the gaseous carbon source supply with accurately controllable, uniform, stable and continuous speed for the growth of the carbon nanotube in the next step, and further realizing the continuous preparation of the uniform carbon nanotube fiber.
It should be understood that the above-mentioned embodiments are merely illustrative of the technical concepts and features of the present invention, which are intended to enable those skilled in the art to understand the contents of the present invention and implement the present invention, and therefore, the protection scope of the present invention is not limited thereby. All equivalent changes and modifications made according to the spirit of the present invention should be covered within the protection scope of the present invention.

Claims (10)

1. The utility model provides a system for continuous preparation carbon nanotube fibre based on floating catalytic CVD method, its characterized in that includes gasification sampling device, synthesis reaction unit and fibre and winds collection device, wherein, gasification sampling device includes gasification cavity and first heating device, first heating device is used for heating the gasification cavity, the gasification cavity has carbon source injection port and first carrier gas input port, and the liquid carbon source/catalyst of injecting into through the carbon source injection port can be in be heated the gasification is gasified into the gaseous state in the gasification cavity, carbon source/catalyst after the gasification and the first carrier gas of inputting through first carrier gas input port in the gasification cavity mixes and forms the mixed reaction gas who is used for synthesizing carbon nanotube fibre precursor.
2. The system for continuously preparing carbon nanotube fiber according to claim 1, wherein: the gasification chamber is connected with the synthesis reaction device through a conveying pipeline, the conveying pipeline is further connected with a second heating device, and the second heating device is at least used for heating the conveying pipeline and enabling mixed reaction gas in the conveying pipeline to be kept in a gas state all the time.
3. The system for continuously preparing carbon nanotube fiber according to claim 1, wherein: the carbon source injection port is also connected with an ultrasonic atomizer, and the ultrasonic atomizer is used for atomizing the liquid carbon source/catalyst and then inputting the liquid carbon source/catalyst into the gasification chamber.
4. The system for continuously preparing carbon nanotube fiber according to claim 1, wherein: the first carrier gas input port is also connected to a flow controller.
5. The system for continuously preparing carbon nanotube fiber according to claim 1, wherein: the synthesis reaction device comprises a high-temperature tube furnace.
6. The system for continuously preparing carbon nanotube fiber according to claim 5, wherein: and a second carrier gas inlet is also arranged on the high-temperature tube furnace.
7. The system for continuously preparing carbon nanotube fibers based on the floating catalytic CVD method according to claim 1, further comprising a water seal device disposed between the synthesis reaction device and the fiber winding and collecting device and hermetically engaged with the synthesis reaction device, wherein the water seal device is at least used for performing densification treatment on the synthesized carbon nanotube fiber precursor.
8. The system for continuously preparing carbon nanotube fiber according to claim 7, wherein: the water sealing device comprises a water sealing box and a tail gas collecting mechanism matched with the water sealing box.
9. A method for continuously preparing carbon nanotube fibers based on a floating catalytic CVD method is characterized by comprising the following steps: firstly gasifying a liquid carbon source/catalyst into a gas state, mixing the gas carbon source/catalyst with carrier gas to form mixed reaction gas, conveying the mixed reaction gas to a synthesis reaction device for synthesis reaction to form a carbon nano tube fiber precursor, and then fiberizing and collecting the carbon nano tube fiber precursor through a fiber winding and collecting device.
10. The method for continuously preparing carbon nanotube fibers according to claim 9 based on a floating catalytic CVD method, comprising:
1) providing a system for continuously preparing carbon nanotube fibers based on a floating catalytic CVD method according to any one of claims 1 to 8;
2) firstly, injecting a liquid carbon source/catalyst containing a carbon source and a catalyst into an ultrasonic atomizer, atomizing the liquid carbon source/catalyst by the ultrasonic atomizer, inputting the atomized liquid carbon source/catalyst into a gasification chamber, and heating the gasification chamber by a first heating device to gasify the atomized liquid carbon source/catalyst into a gas state; simultaneously, inputting a first carrier gas into the gasification chamber through a first carrier gas input port, and uniformly mixing the gaseous carbon source/catalyst and the first carrier gas in the gasification chamber to form mixed reaction gas;
3) the mixed reaction gas is conveyed into the synthesis reaction device through a conveying pipeline to be mixed with a second carrier gas and react to form a carbon nano tube fiber precursor;
4) and performing fiberization treatment on the carbon nanotube fiber precursor by a fiber winding and collecting device to form the carbon nanotube fiber.
CN201911356576.0A 2019-12-25 2019-12-25 System and method for continuously preparing carbon nanotube fibers based on floating catalytic CVD method Active CN111020747B (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN201911356576.0A CN111020747B (en) 2019-12-25 2019-12-25 System and method for continuously preparing carbon nanotube fibers based on floating catalytic CVD method

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN201911356576.0A CN111020747B (en) 2019-12-25 2019-12-25 System and method for continuously preparing carbon nanotube fibers based on floating catalytic CVD method

Publications (2)

Publication Number Publication Date
CN111020747A true CN111020747A (en) 2020-04-17
CN111020747B CN111020747B (en) 2022-06-24

Family

ID=70213216

Family Applications (1)

Application Number Title Priority Date Filing Date
CN201911356576.0A Active CN111020747B (en) 2019-12-25 2019-12-25 System and method for continuously preparing carbon nanotube fibers based on floating catalytic CVD method

Country Status (1)

Country Link
CN (1) CN111020747B (en)

Cited By (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112357908A (en) * 2020-11-12 2021-02-12 江西铜业技术研究院有限公司 Continuous preparation device and process for single-walled carbon nanotubes
CN112410924A (en) * 2020-10-27 2021-02-26 中国科学院苏州纳米技术与纳米仿生研究所南昌研究院 Carbon nano tube/conductive polymer composite fiber, and continuous preparation method and system thereof
CN114477143A (en) * 2022-03-25 2022-05-13 江西省纳米技术研究院 Reaction furnace tube of carbon nanotube material, and growth device and method
CN114540987A (en) * 2022-03-30 2022-05-27 江西省纳米技术研究院 Thin-diameter carbon nanotube fiber, reaction furnace tube thereof, preparation equipment and preparation method
CN114808196A (en) * 2022-04-19 2022-07-29 江西省纳米技术研究院 Carbon nanotube preparation device, injection assembly thereof and carbon nanotube preparation method
CN115180614A (en) * 2022-08-02 2022-10-14 武汉市碳翁科技有限公司 Continuous carbon nanotube aggregate synthesis device and use method

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN1535246A (en) * 2001-07-20 2004-10-06 KH��ѧ���޹�˾ Preparation of carbon nanotubes
CN101613895A (en) * 2009-06-04 2009-12-30 天津大学 Process based on preparation carbon nano-tube fibre in the chemical vapor flow spinning method inert atmosphere
CN105439119A (en) * 2015-12-02 2016-03-30 苏州捷迪纳米科技有限公司 Vertical continuous preparing device for carbon nano tube fibers and preparing method
US20170275760A1 (en) * 2016-03-22 2017-09-28 King Fahd University Of Petroleum And Minerals Chemical vapor deposition reactor with preheating, reaction, and cooling zones
CN207294886U (en) * 2017-08-18 2018-05-01 北方奥钛纳米技术有限公司 Tube furnace and chemical vapor deposition unit
CN110592726A (en) * 2019-10-08 2019-12-20 常州大学 Method and device for preparing continuous carbon nanotube fiber by CVD method

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN1535246A (en) * 2001-07-20 2004-10-06 KH��ѧ���޹�˾ Preparation of carbon nanotubes
CN101613895A (en) * 2009-06-04 2009-12-30 天津大学 Process based on preparation carbon nano-tube fibre in the chemical vapor flow spinning method inert atmosphere
CN105439119A (en) * 2015-12-02 2016-03-30 苏州捷迪纳米科技有限公司 Vertical continuous preparing device for carbon nano tube fibers and preparing method
US20170275760A1 (en) * 2016-03-22 2017-09-28 King Fahd University Of Petroleum And Minerals Chemical vapor deposition reactor with preheating, reaction, and cooling zones
CN207294886U (en) * 2017-08-18 2018-05-01 北方奥钛纳米技术有限公司 Tube furnace and chemical vapor deposition unit
CN110592726A (en) * 2019-10-08 2019-12-20 常州大学 Method and device for preparing continuous carbon nanotube fiber by CVD method

Cited By (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112410924A (en) * 2020-10-27 2021-02-26 中国科学院苏州纳米技术与纳米仿生研究所南昌研究院 Carbon nano tube/conductive polymer composite fiber, and continuous preparation method and system thereof
CN112357908A (en) * 2020-11-12 2021-02-12 江西铜业技术研究院有限公司 Continuous preparation device and process for single-walled carbon nanotubes
CN114477143A (en) * 2022-03-25 2022-05-13 江西省纳米技术研究院 Reaction furnace tube of carbon nanotube material, and growth device and method
CN114477143B (en) * 2022-03-25 2023-09-22 江西省纳米技术研究院 Reaction furnace tube of carbon nano tube material and growth device and method
CN114540987A (en) * 2022-03-30 2022-05-27 江西省纳米技术研究院 Thin-diameter carbon nanotube fiber, reaction furnace tube thereof, preparation equipment and preparation method
CN114808196A (en) * 2022-04-19 2022-07-29 江西省纳米技术研究院 Carbon nanotube preparation device, injection assembly thereof and carbon nanotube preparation method
CN115180614A (en) * 2022-08-02 2022-10-14 武汉市碳翁科技有限公司 Continuous carbon nanotube aggregate synthesis device and use method

Also Published As

Publication number Publication date
CN111020747B (en) 2022-06-24

Similar Documents

Publication Publication Date Title
CN111020747B (en) System and method for continuously preparing carbon nanotube fibers based on floating catalytic CVD method
CN105439119B (en) The preparation facilities and preparation method of vertical continuous carbon nano-tube fibre
CN100552105C (en) The apparatus and method of producing continuous carbon nano-tube fibre by liquid sealed vapor-phase flow catalytic reaction
CN110592726B (en) Method and device for preparing continuous carbon nanotube fiber by CVD method
CN103628183B (en) The method of continuous carbon nano-tube fibre is prepared in a kind of scale
CN114808196B (en) Carbon nanotube preparation device, injection assembly thereof and carbon nanotube preparation method
CN103523768B (en) The apparatus and method that box sealing chemical gas phase reaction prepares continuous carbon nano-tube fibre
CN103031624A (en) Method for preparing continuous carbon nanotube complex fiber
CN203558855U (en) Device for preparing continuous carbon nano tube aggregate under assistance of ultrasonic atomization
CN110182788A (en) A kind of device and method of high yield preparation carbon nanotube
CN103435029A (en) Device and method for preparing continuous carbon nanotube aggregate by assistance of ultrasonic atomization
WO2014175524A1 (en) Apparatus for preparing carbon nanotube fiber
CN108455569A (en) A kind of feed liquor system of the continuous extensive preparation facilities of carbon nano-tube fibre
CN108588902A (en) A kind of extensive continuous preparation device and method of carbon nano tube composite fibre
CN108408716B (en) Carbon nanotube preparation system
CN104261384A (en) Gas-phase continuous preparation method of single-walled carbon nanotube film and special device
CN203820461U (en) Device for preparing continuous carbon nano tube fibers by carrying out box-sealed chemical gas-phase reaction
CN114887552B (en) Injection structure for preparing carbon nanotube material and application thereof
CN207738671U (en) Nopinene thermal cracking produces the device of laurene
CN113279090B (en) System and method for preparing carbon nanotube fibers in large scale in safe atmosphere
CN205340399U (en) Novel filter and collect device
CN106145089A (en) The synthesizer of batch production CNT
CN103014652A (en) Device for preparing carbon film on inner wall of quartz ampoule used for monocrystal growth
CN116603488A (en) Preparation device and method of carbon nanotube tube-shaped object
CN110217778A (en) A kind of device and preparation method thereof of continuous preparation high quality carbon nanotube

Legal Events

Date Code Title Description
PB01 Publication
PB01 Publication
SE01 Entry into force of request for substantive examination
SE01 Entry into force of request for substantive examination
CB02 Change of applicant information

Address after: 330000 No.278 luozhu Road, Xiaolan economic and Technological Development Zone, Nanchang County, Nanchang City, Jiangxi Province

Applicant after: Jiangxi Nanotechnology Research Institute

Address before: 330000 building 15, Xiaolan innovation and entrepreneurship base, 266 Huiren Avenue, Nanchang City, Jiangxi Province

Applicant before: NANCHANG INSTITUTE, SUZHOU INSTITUTE OF NANO-TECH AND NANO-BIONICS, CAS

CB02 Change of applicant information
GR01 Patent grant
GR01 Patent grant