Continuous production equipment for active carbon fiber with high specific surface area

By introducing cleaning components and filter components into carbon fiber production equipment, ultrasonic cleaning and filtration technology is used to solve the problem of impurities blocking fiber micropores, achieving efficient cleaning, protecting equipment and improving product quality consistency.

CN120465133AActive Publication Date: 2025-08-12JIANGSU XINJU ENVIRONMENTAL PROTECTION TECH CO LTD
View PDF 6 Cites 0 Cited by

Patent Information

Application Number
CN202510690414.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-27
Publication Date
2025-08-12
Estimated Expiration
2045-05-27

AI Technical Summary

Technical Problem

In the prior art, impurities during carbon fiber production may clog the fiber micropores, reduce adsorption performance, lead to equipment wear, clogging or failure, affecting production efficiency and product quality consistency.

Method used

The activated carbon fiber continuous production equipment is adopted with high specific surface area, including cleaning components, filter components, cooling components and dehumidification components. It uses ultrasonic generators, filters, air induced fans and exhaust fans to remove impurities on the surface of the carbon fiber through ultrasonic cleaning, filtration, cooling and dehumidification steps, protect equipment and improve product quality.

Benefits of technology

Improves cleaning efficiency, reduces physical damage, protects carbon fiber structure, improves product quality consistency, reduces equipment failures, optimizes subsequent reactive treatment, and improves production efficiency and final product performance.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120465133A_ABST
    Figure CN120465133A_ABST
Patent Text Reader

Abstract

The invention discloses continuous production equipment for high-specific-surface-area activated carbon fibers, and belongs to the technical field of carbon fiber production. Comprising a second supporting frame, a base material storage assembly is arranged on the outer side of the second supporting frame, a winding wheel is arranged at the storage end of the base material storage assembly, a carbonization machine is fixedly connected to the side, close to the winding wheel, of the top wall of the second supporting frame, and a cleaning assembly is arranged in the middle section of the top wall of the second supporting frame. An ultrasonic generator is arranged at the cleaning end of the cleaning assembly, a filtering assembly is arranged on the inner side of the second supporting frame, and a first filter screen is arranged at the filtering end of the filtering assembly. According to the carbon fiber cleaning device, the ultrasonic generator transmits ultrasonic waves through the cleaning agent and is matched with the cleaning agent to clean the carbon fibers, so that the cleaning efficiency is improved, physical damage is reduced, the carbon fiber structure is protected, and the product quality consistency is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of carbon fiber production, in particular to continuous production equipment for high specific surface area activated carbon fibers. Background Art

[0002] High specific surface area activated carbon fiber (ACF) has become an important material in the fields of environmental protection, energy storage, etc. due to its excellent specific surface area, good adsorption capacity and wide range of applications. Modern continuous production equipment technology, through efficient heating systems, automated control, optimized activation reactors and other technologies, can achieve large-scale production while maintaining high quality to meet market demand. These equipment improve production efficiency and reduce costs while ensuring product stability and high specific surface area. Despite this, production costs, equipment stability and environmental protection remain challenges facing current technology. With continued technological progress, high specific surface area activated carbon fiber will play a greater role in applications such as gas and liquid adsorption and supercapacitors in the future.

[0003] After searching, the existing patent (publication number: CN114770801A) discloses a device and process for continuously producing carbon fiber composite laminates, which involves the field of textile material engineering applications. In view of the problem that existing laminates are generally unable to achieve continuous production and have high requirements for molds, the following solution is proposed, which includes a yarn feeding mechanism, the side wall of which is provided with a coating mechanism for material coating, and the yarn feeding mechanism is used to fix and transport the yarn; the yarn feeding mechanism includes a first creel, a second creel, a third creel, a fourth creel, high-performance fiber and a correction tube, the second creel is located between the first creel and the third creel, and the fourth creel is located on the side of the third creel away from the second creel. The device for continuously producing carbon fiber composite laminates of the present invention can be processed in a cycle, so that the laminates can be continuously produced, and the requirements for the mold are low. At the same time, the resin body is laid on the release paper, so that the resin is more convenient when demoulding and easy to use.

[0004] However, in the actual use of the above scheme, since carbon fiber production workshops are usually not completely dust-free workshops, they usually have strict cleanliness requirements. The process of producing carbon fiber involves multiple steps, including fiber stretching, weaving, resin impregnation and high-temperature treatment. These processes may generate a certain amount of dust, fiber fragments and other pollutants, but the carbon fiber cannot be cleaned in time after production, and impurities will affect the quality of high specific surface area activated carbon fiber and production equipment. Impurities may clog the fiber micropores, reduce adsorption performance, and cause equipment wear, blockage or failure, affecting production efficiency. It may also lead to inconsistent product quality and interfere with subsequent processing.

[0005] To this end, the present invention provides continuous production equipment for high specific surface area activated carbon fibers. Summary of the Invention

[0006] The purpose of the present invention is to solve the problem in the prior art that impurities may clog the fiber micropores, reduce the adsorption performance, and cause equipment wear, blockage or failure, affecting production efficiency, and to propose a continuous production equipment for high specific surface area activated carbon fibers.

[0007] In order to achieve the above object, the present invention adopts the following technical solutions:

[0008] The continuous production equipment of activated carbon fiber with high specific surface area includes a second support frame, a substrate storage component is provided on the outside of the second support frame, a winding wheel is provided at the storage end of the substrate storage component, a carbonizer is fixedly connected to the top wall of the second support frame close to the winding wheel, a cleaning component is provided in the middle section of the top wall of the second support frame, an ultrasonic generator is provided at the cleaning end of the cleaning component, a filter component is provided on the inside of the second support frame, a first filter screen is provided at the filter end of the filter component, a cooling component is also provided on the inside of the second support frame, an induced draft fan is provided at the cooling end of the cooling component, a dehumidification component is provided on the outside of the induced draft fan, and an exhaust fan is provided at the dehumidification end of the dehumidification component.

[0009] As a preferred technical solution of the present application, the substrate storage assembly includes a limiting frame, which is fixedly connected to the second support frame. The bottom section of the limiting frame is provided with a first support frame, which is rotatably connected to the winding wheel.

[0010] As a preferred technical solution of the present application, the cleaning assembly includes a cleaning box, which is fixedly connected to the second support frame. A cleaning groove is provided on the top wall of the cleaning box. A water inlet is provided on the side of the cleaning groove close to the carbonizer. A heat dissipation hole is provided on the inside of the cleaning groove. One end of the heat dissipation hole is connected to the water inlet. A water outlet is provided on the other side of the cleaning groove. The inner wall of the cleaning groove close to the water outlet is fixedly connected to the ultrasonic generator.

[0011] As the preferred technical solution of this application, the filter assembly includes a delivery pump, the water inlet end of the delivery pump is connected to the heat dissipation hole, the water outlet end of the delivery pump is provided with a filter tube, the inner wall of the upper section of the filter tube is fixedly connected to a first filter screen, and the first filter screen is connected to the water outlet.

[0012] As the preferred technical solution of this application, the outer wall of the cleaning box is fixedly connected to a motor, a cleaning impeller is provided at the output end of the motor, the cleaning impeller is rotatably connected to the filter tube, and the filter tube is detachably connected to a collection box at one end away from the motor.

[0013] As a preferred technical solution of the present application, the cooling component includes ventilation holes, which are opened on the inner side of the cleaning box, and are located in the middle gap of the heat dissipation holes. The inner wall of the ventilation hole close to the motor is fixedly connected to a second filter screen, and the outer wall of the other side of the ventilation hole is fixedly connected to a converging cover plate, and the outer side of the converging cover plate is fixedly connected to a delivery pipe, and the air outlet end of the delivery pipe is fixedly connected to a first connecting pipe, and the first connecting pipe is fixedly connected to the air inlet end of the induced draft fan.

[0014] As the preferred technical solution of the present application, the dehumidification assembly includes a dehumidification box, the air inlet of the dehumidification box is fixedly connected to the air outlet of the induced draft fan, a transverse gap is opened in the middle of the dehumidification box, two groups of evenly distributed guide plates are fixedly connected to the inside of the dehumidification box, the air outlet end of the dehumidification box is fixedly connected to a second connecting pipe, and the air outlet end of the second connecting pipe is fixedly connected to the air inlet end of the exhaust fan.

[0015] As a preferred technical solution of the present application, an air outlet pipe is provided on the outside of the exhaust fan, and the air outlet pipe is connected to an external exhaust gas treatment device.

[0016] As a preferred technical solution of the present application, two groups of first guide rollers are provided on both sides of the inner wall of the cleaning tank.

[0017] As a preferred technical solution of the present application, two sets of second guide rollers are provided on the top wall of the second support frame away from the carbonizer.

[0018] Compared with the prior art, the present invention provides a continuous production device for high specific surface area activated carbon fibers, which has the following beneficial effects:

[0019] 1. The continuous production equipment for high-specific-surface-area activated carbon fibers described in the present invention uses a delivery pump to extract detergent from the cleaning tank near the carbonizer through the water inlet and heat dissipation holes, then delivers it through a filter tube and water outlet. Simultaneously, an ultrasonic generator transmits ultrasonic waves through the detergent to clean the carbon fibers, thereby improving cleaning efficiency, reducing physical damage, protecting the carbon fiber structure, and enhancing product quality consistency. It also reduces equipment failures and optimizes subsequent activation treatments, improving production efficiency and final product performance.

[0020] 2. The high-surface-area activated carbon fiber continuous production equipment of the present invention filters the detergent through a first filter screen, while a motor drives a cleaning impeller to clean the surface of the first filter screen and pushes the filtered impurities into a collection box, thereby filtering the detergent. This can keep the detergent pure, prevent impurities from contaminating the carbon fiber surface, and improve the cleaning effect and product quality. At the same time, filtering impurities can prevent them from damaging or clogging the equipment, reducing failures and maintenance requirements.

[0021] 3. The high-surface-area activated carbon fiber continuous production equipment of the present invention uses cool air from the ventilation holes to cool the cleaning agent in the heat dissipation holes, thereby reducing thermal damage to the carbon fiber surface caused by high temperature, protecting the carbon fiber structure, and maintaining a consistent cleaning effect. Furthermore, cooling helps stabilize the chemical properties of the cleaning agent, improves cleaning efficiency, and reduces wear and tear on the equipment caused by high temperatures.

[0022] 4. The continuous production equipment for activated carbon fiber with high specific surface area described in the present invention uses a conveying pipe and a first connecting pipe to extract the hot air in the ventilation hole through an induced draft fan, and conveys it into a dehumidification box. At the same time, the air in the dehumidification box is extracted through a second connecting pipe through an exhaust fan, thereby avoiding the attachment of detergent to the carbon fiber passing through the middle section of the dehumidification box, removing excess detergent, and ensuring that the surface of the carbon fiber reaches the best cleaning state. At the same time, air cleaning is a non-contact method that can protect the equipment from wear and reduce detergent residue, thereby reducing environmental pollution. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 The present invention is a three-dimensional Figure 1 ;

[0024] Figure 2 The present invention is a three-dimensional Figure 2 ;

[0025] Figure 3 It is a partial three-dimensional schematic diagram of the present invention Figure 1 ;

[0026] Figure 4 Figure 3 A partial enlarged view of the middle part;

[0027] Figure 5 It is a cross-sectional view of the cleaning box of the present invention Figure 1 ;

[0028] Figure 6 is a cross-sectional view of the dehumidification box of the present invention;

[0029] Figure 7 It is a cross-sectional view of the cleaning box of the present invention Figure 2 ;

[0030] Figure 8 It is a cross-sectional view of the cleaning box of the present invention Figure 3 ;

[0031] Figure 9 This is a diagram showing the orientation of the carbon fibers in the cleaning tank of the present invention.

[0032] In the picture:

[0033] 1. First support frame; 11. Limiting frame; 12. Winding wheel; 2. Second support frame; 21. Carbonizing machine; 22. Cleaning box; 23. Cleaning tank; 24. Water inlet; 25. Heat dissipation hole; 26. Water outlet; 27. Delivery pump; 28. Filter tube; 29. First filter; 210. Ultrasonic generator; 211. Motor; 212. Cleaning impeller; 213. Collecting box; 3. Ventilation hole; 31. Second filter; 32. Converging cover; 33. Delivery pipe; 34. First connecting pipe; 35. Draft fan; 36. Dehumidification box; 37. Guide plate; 38. Second connecting pipe; 39. Exhaust fan; 310. Exhaust pipe; 4. First guide roller; 41. Second guide roller. DETAILED DESCRIPTION

[0034] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention; it is obvious that the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the present invention.

[0035] Example:

[0036] Reference Figure 1-9 , a continuous production equipment for activated carbon fiber with high specific surface area, includes a second support frame 2, a substrate storage assembly is provided on the outside of the second support frame 2, the substrate storage assembly is connected through the second support frame 2, a winding wheel 12 is provided at the storage end of the substrate storage assembly, and a carbonizing machine 21 is fixedly connected to the top wall of the second support frame 2 near the winding wheel 12. The carbonizing machine 21 is a prior art and is not described. The carbonizing machine 21 is fixed through the second support frame 2, a cleaning assembly is provided in the middle section of the top wall of the second support frame 2, the cleaning assembly is supported and fixed by the second support frame 2, an ultrasonic generator 210 is provided at the cleaning end of the cleaning assembly, a filtering assembly is provided on the inside of the second support frame 2, and a first filter screen 29 is provided at the filtering end of the filtering assembly, a cooling assembly is also provided on the inside of the second support frame 2, an induced draft fan 35 is provided at the cooling end of the cooling assembly, a dehumidification assembly is provided on the outside of the induced draft fan 35, and an exhaust fan 39 is provided at the dehumidification end of the dehumidification assembly.

[0037] The substrate storage assembly includes a limit frame 11, which is fixedly connected to the second support frame 2, and the limit frame 11 is supported and fixed by the second support frame 2. At the same time, evenly distributed wire rollers are provided on the top of the limit frame 11, and a first support frame 1 is provided at the bottom of the limit frame 11, and the limit frame 11 is supported and fixed by the first support frame 1. The first support frame 1 is rotatably connected to the winding wheel 12, and the winding wheel 12 is supported and limited by the first support frame 1, and the substrate is wound and stored by the winding wheel 12.

[0038] The cleaning component includes a cleaning box 22, which is fixedly connected to the second support frame 2, and the cleaning box 22 is supported and fixed by the second support frame 2. A cleaning groove 23 is provided on the top wall of the cleaning box 22, and the cleaning agent is stored through the cleaning groove 23. A water inlet 24 is provided on the side of the cleaning groove 23 close to the carbonizer 21, and the cleaning agent in the cleaning groove 23 enters through the water inlet 24. A heat dissipation hole 25 is provided on the inside of the cleaning groove 23, and one end of the heat dissipation hole 25 is connected to the water inlet 24. A water outlet 26 is provided on the other side of the cleaning groove 23, and the cleaning agent entering through the water inlet 24 is transported by the heat dissipation hole 25. The inner wall of the cleaning groove 23 close to the water outlet 26 is fixedly connected to the ultrasonic generator 210, and ultrasonic waves are generated by the ultrasonic generator 210 and transmitted through the cleaning agent.

[0039] The filtering component includes a delivery pump 27, the water inlet end of the delivery pump 27 is connected to the heat dissipation hole 25, and the water outlet end of the delivery pump 27 is provided with a filter tube 28. The inner wall of the upper section of the filter tube 28 is fixedly connected to a first filter screen 29, and the first filter screen 29 is connected to the water outlet 26. The cleaning agent in the heat dissipation hole 25 is extracted by the delivery pump 27 and delivered into the inner side of the filter tube 28, and then continues to be delivered to the side of the water outlet 26. During the process, the cleaning agent will be filtered through the first filter screen 29.

[0040] The outer wall of the cleaning box 22 is fixedly connected to a motor 211, and the motor 211 is fixed by the cleaning box 22. A cleaning impeller 212 is provided at the output end of the motor 211, and the cleaning impeller 212 is fixed by the motor 211. At the same time, the cleaning impeller 212 is driven to rotate by the motor 211, thereby cleaning the surface of the first filter screen 29. The cleaning impeller 212 is rotatably connected to the filter tube 28, and the cleaning impeller 212 is limited by the filter tube 28 so that the cleaning impeller 212 rotates in the filter tube 28. The end of the filter tube 28 away from the motor 211 is detachably connected to the collecting box 213, and the collecting box 213 is fixed through the filter tube 28 by using a spring buckle (the spring buckle is a prior art and is not described).

[0041] The cooling component includes ventilation holes 3, which are opened on the inner side of the cleaning box 22. The ventilation holes 3 on the inner side of the cleaning box 22 provide a circulation channel for air. The ventilation holes 3 are located in the middle gap of the heat dissipation holes 25. The ventilation holes 3 are evenly distributed in the gap of the heat dissipation holes 25. The heat in the cleaning agent stored in the heat dissipation holes 25 is transferred to the inner wall of the ventilation holes 3 through the inner wall of the heat dissipation holes 25. Then, the cold air in the ventilation holes 3 and the inner wall of the ventilation holes 3 are heat-exchanged to heat the air, thereby cooling the cleaning agent in the heat dissipation holes 25. A second filter 31 is fixedly connected to the inner wall of the ventilation hole 3 close to the motor 211. The second filter 31 is fixed through the ventilation holes 3, and the external air is When entering the ventilation hole 3, it will be filtered through the second filter 31. The outer wall of the other side of the ventilation hole 3 is fixedly connected to a converging cover 32, and one side of the ventilation hole 3 is sealed by the converging cover 32. A delivery pipe 33 is fixedly connected to the outer side of the converging cover 32, and the delivery pipe 33 is fixed by the converging cover 32. The air outlet end of the delivery pipe 33 is fixedly connected to a first connecting pipe 34, and the first connecting pipe 34 is fixed by the delivery pipe 33. The first connecting pipe 34 is fixed to the air inlet end of the induced draft fan 35. The hot air in the ventilation hole 3 is extracted by the induced draft fan 35 using the converging cover 32, the delivery pipe 33, and the first connecting pipe 34, and the air in the ventilation hole 3 is supplemented by the cold air from the outside.

[0042] The dehumidification component includes a dehumidification box 36, the air inlet of the dehumidification box 36 is fixedly connected to the air outlet of the induced draft fan 35, and the air extracted by the induced draft fan 35 is transported into the dehumidification box 36. A horizontal gap is opened in the middle of the dehumidification box 36, and two groups of evenly distributed guide plates 37 are fixedly connected to the inside of the dehumidification box 36. The guide plates 37 are supported and fixed by the dehumidification box 36, and the airflow is guided by the guide plates 37. The air outlet end of the dehumidification box 36 is fixedly connected to a second connecting pipe 38, and the air outlet end of the second connecting pipe 38 is fixedly connected to the air inlet end of the exhaust fan 39. The air in the dehumidification box 36 is extracted by the second connecting pipe 38 through the exhaust fan 39, so that the air on the side of the dehumidification box 36 close to the induced draft fan 35 circulates to the side of the exhaust fan 39. In the process, the cleaning agent attached to the surface of the carbon fiber is cleaned by high-speed air.

[0043] An air outlet pipe 310 is provided outside the exhaust fan 39, and the air outlet pipe 310 is connected to the external waste gas treatment equipment. The exhaust fan 39 and the external waste gas treatment equipment are connected through the air outlet pipe 310, and the waste gas generated in the production is treated by the external waste gas treatment equipment.

[0044] Two sets of first guide rollers 4 are provided on both sides of the inner wall of the cleaning tank 23 to guide the carbon fibers through the water inlet 24 in the cleaning tank 23 so that the carbon fibers move in the cleaning agent in the cleaning tank 23 .

[0045] Two sets of second guide rollers 41 are provided on the top wall of the second support frame 2 away from the carbonizer 21 , and the carbon fibers are guided by the second guide rollers 41 .

[0046] Specifically, when the present high specific surface area activated carbon fiber continuous production equipment is working: first, the carbon fiber passes through the carbonizing machine 21, is heated and carbonized by the carbonizing machine 21, and then the carbon fiber is guided by the wire roller on the top wall of the cleaning box 22 close to the carbonizing machine 21 side, and then enters the second guide roller 41 close to the carbonizing machine 21 once, and is guided to the first guide roller 4 on the side of the cleaning tank 23 close to the induced draft fan 35 through the limit of the second guide roller 41, and then is guided to the first guide roller 4 on the side of the carbonizing machine 21, and then is guided to the carbonizing machine 21 side again by the wire roller on the top wall of the cleaning box 22 close to the carbonizing machine 21 side. After being guided, the fiber moves to the first guide roller 4 on the side of the cleaning tank 23 close to the carbonizer 21, and then moves to the first guide roller 4 on the side of the cleaning tank 23 close to the induced draft fan 35, and finally guides it into the dehumidification box 36 through the second guide roller 41 on the side close to the induced draft fan 35. During the movement of the carbon fiber in the cleaning tank 23, the ultrasonic wave generated by the ultrasonic generator 210 is transmitted by the detergent, and the impurities on the surface of the carbon fiber are cleaned by the detergent. During the process, the detergent in the cleaning tank 23 is pumped by the delivery pump 27 using the water inlet 24 and the heat dissipation hole 25. The impurities are extracted and transported into the filter tube 28, and the cleaning agent is filtered by the first filter 29 and then transported out through the water outlet 26. At the same time, the cleaning impeller 212 is driven by the motor 211 to rotate in the filter tube 28 to clean the impurities filtered by the first filter 29 and push the impurities into the collection box 213. The impurities are collected by the collection box 213. At the same time, the heat in the cleaning agent stored in the heat dissipation hole 25 is transferred to the inner wall of the ventilation hole 3 through the inner wall of the heat dissipation hole 25. Then, the cold air in the ventilation hole 3 and the inner wall of the ventilation hole 3 are exchanged for heat. The air is thereby heated, thereby cooling the cleaning agent in the heat dissipation hole 25. The air in the ventilation hole 3 is then extracted by the induced draft fan 35 using the converging cover 32, the delivery pipe 33, and the first connecting pipe 34, and transported into the dehumidification box 36. The air in the dehumidification box 36 cleans the cleaning agent on the surface of the carbon fiber. The air is then extracted by the exhaust fan 39 using the second connecting pipe 38, and transported into the outlet pipe 310. The air is then transported to the external exhaust gas treatment equipment through the outlet pipe 310 to treat the exhaust gas.

[0047] The above description is only a preferred specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any technician familiar with the technical field, within the technical scope disclosed by the present invention, who makes equivalent replacements or changes based on the technical solution and inventive concept of the present invention, should be covered by the scope of protection of the present invention.

Claims

1. A continuous production device for high specific surface area activated carbon fibers, comprising a second support frame (2), characterized in that: A substrate storage component is provided on the outside of the second support frame (2), a winding wheel (12) is provided at the storage end of the substrate storage component, a carbonizing machine (21) is fixedly connected to the side of the top wall of the second support frame (2) close to the winding wheel (12), a cleaning component is provided in the middle section of the top wall of the second support frame (2), an ultrasonic generator (210) is provided at the cleaning end of the cleaning component, a filter component is provided on the inside of the second support frame (2), a first filter screen (29) is provided at the filter end of the filter component, a cooling component is also provided on the inside of the second support frame (2), an induced draft fan (35) is provided at the cooling end of the cooling component, a dehumidification component is provided on the outside of the induced draft fan (35), and an exhaust fan (39) is provided at the dehumidification end of the dehumidification component.

2. The continuous production equipment for high specific surface area activated carbon fiber according to claim 1, characterized in that: The substrate storage assembly comprises a limiting frame (11), the limiting frame (11) is fixedly connected to the second support frame (2), the bottom section of the limiting frame (11) is provided with a first support frame (1), and the first support frame (1) is rotatably connected to the winding wheel (12).

3. The continuous production equipment for high specific surface area activated carbon fiber according to claim 2, characterized in that: The cleaning assembly comprises a cleaning box (22), the cleaning box (22) being fixedly connected to the second support frame (2), a cleaning groove (23) being provided on the top wall of the cleaning box (22), a water inlet (24) being provided on the side of the cleaning groove (23) close to the carbonizer (21), a heat dissipation hole (25) being provided on the inner side of the cleaning groove (23), one end of the heat dissipation hole (25) being communicated with the water inlet (24), a water outlet (26) being provided on the other side of the cleaning groove (23), and an ultrasonic generator (210) being fixedly connected to the inner wall of the cleaning groove (23) close to the water outlet (26).

4. The continuous production equipment for high specific surface area activated carbon fiber according to claim 3, characterized in that: The filter assembly comprises a delivery pump (27), the water inlet end of the delivery pump (27) is connected to the heat dissipation hole (25), the water outlet end of the delivery pump (27) is provided with a filter pipe (28), the upper inner wall of the filter pipe (28) is fixedly connected to a first filter screen (29), and the first filter screen (29) is connected to the water outlet (26).

5. The continuous production equipment for high specific surface area activated carbon fiber according to claim 4, characterized in that: The outer wall of the cleaning box (22) is fixedly connected to a motor (211); a cleaning impeller (212) is provided at the output end of the motor (211); the cleaning impeller (212) is rotatably connected to a filter tube (28); and one end of the filter tube (28) away from the motor (211) is detachably connected to a collection box (213).

6. The continuous production equipment for high specific surface area activated carbon fiber according to claim 1, characterized in that: The cooling assembly comprises a ventilation hole (3), the ventilation hole (3) being opened on the inner side of the cleaning box (22), the ventilation hole (3) being located in the middle gap of the heat dissipation hole (25), the inner wall of the ventilation hole (3) close to the motor (211) being fixedly connected to a second filter (31), the outer wall of the other side of the ventilation hole (3) being fixedly connected to a converging cover plate (32), the outer side of the converging cover plate (32) being fixedly connected to a delivery pipe (33), the air outlet end of the delivery pipe (33) being fixedly connected to a first connecting pipe (34), and the first connecting pipe (34) being fixedly connected to an air inlet end of an induced draft fan (35).

7. The continuous production equipment for high specific surface area activated carbon fiber according to claim 6, characterized in that: The dehumidification assembly includes a dehumidification box (36), an air inlet of the dehumidification box (36) is fixedly connected to the air outlet of the induced draft fan (35), a transverse gap is opened in the middle of the dehumidification box (36), two groups of evenly distributed guide plates (37) are fixedly connected to the inner side of the dehumidification box (36), the air outlet end of the dehumidification box (36) is fixedly connected to a second connecting pipe (38), and the air outlet end of the second connecting pipe (38) is fixedly connected to the air inlet end of the exhaust fan (39).

8. The continuous production equipment for high specific surface area activated carbon fiber according to claim 7, characterized in that: An air outlet pipe (310) is provided outside the exhaust fan (39), and the air outlet pipe (310) is connected to an external waste gas treatment device.

9. The continuous production equipment for high specific surface area activated carbon fiber according to claim 3, characterized in that: Two groups of first guide rollers (4) are provided on both sides of the inner wall of the cleaning tank (23).

10. The continuous production equipment for high specific surface area activated carbon fiber according to any one of claim 1, characterized in that: Two groups of second guide rollers (41) are provided on the top wall of the second support frame (2) away from the carbonizing machine (21).

Citation Information

Patent Citations

  • Equipment and process for continuously producing carbon fiber composite material laminated plate

    CN114770801A

  • Carbonization device used for producing carbon fiber

    CN108728938A

  • Special-shaped polyester yarn flame retardant treatment device

    CN117144594A

  • Carbonization furnace for processing PAN-based carbon fiber products

    CN117904754A

  • High-temperature carbonization equipment for polyacrylonitrile carbon fiber production

    CN215628447U