High specific surface area activated carbon fiber continuous production apparatus

By introducing cleaning and filtration components into the high specific surface area activated carbon fiber production equipment, the problem of impurities clogging the fiber micropores has been solved, achieving efficient cleaning, protecting the equipment, improving product quality consistency, and increasing production efficiency.

CN120465133BActive Publication Date: 2026-05-15JIANGSU XINJU ENVIRONMENTAL PROTECTION TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
JIANGSU XINJU ENVIRONMENTAL PROTECTION TECH CO LTD
Filing Date
2025-05-27
Publication Date
2026-05-15

AI Technical Summary

Technical Problem

In existing technologies, impurities may clog fiber micropores, reduce adsorption performance, and cause equipment wear, blockage, or malfunction, affecting production efficiency and product quality consistency.

Method used

The continuous production equipment for high specific surface area activated carbon fiber includes cleaning, filtering, cooling and dehumidifying components. It uses ultrasonic generators, filters, fans and exhaust fans to clean, filter, cool and dehumidify the carbon fiber, preventing impurities from contaminating the equipment and preventing wear and tear.

Benefits of technology

It improves cleaning efficiency, reduces equipment failures, protects carbon fiber structures, enhances product quality consistency, optimizes production efficiency and final product performance, and reduces environmental pollution.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The application discloses high specific surface area activated carbon fiber continuous production equipment and belongs to the technical field of carbon fiber production. The equipment comprises a second support frame, a base material storage assembly is arranged outside the second support frame, a winding wheel is arranged at the storage end of the base material storage assembly, a carbonization machine is fixedly connected to the top wall of the second support frame close to the winding wheel, a cleaning assembly is arranged at the middle section of the top wall of the second support frame, an ultrasonic generator is arranged at the cleaning end of the cleaning assembly, a filtering assembly is arranged inside the second support frame, and a first filter screen is arranged at the filtering end of the filtering assembly. The ultrasonic generator transmits ultrasonic waves by using a cleaning agent, the cleaning agent cooperates with the ultrasonic generator, the carbon fiber is cleaned, the cleaning efficiency is improved, physical damage is reduced, the structure of the carbon fiber is protected, and the product quality consistency is improved.
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Description

Technical Field

[0001] This invention relates to the field of carbon fiber production technology, and in particular to continuous production equipment for high specific surface area activated carbon fibers. Background Technology

[0002] High specific surface area activated carbon fiber (ACF) has become an important material in environmental protection, energy storage, and other fields due to its outstanding specific surface area, excellent adsorption capacity, and wide range of applications. Modern continuous production equipment technology, through efficient heating systems, automated control, and optimized activation reactors, enables large-scale production while maintaining high quality to meet market demands. This equipment improves production efficiency, reduces costs, and ensures product stability and high specific surface area. Nevertheless, production costs, equipment stability, and environmental friendliness remain challenges for the technology. With continued technological advancements, high specific surface area activated carbon fiber will play an even greater role in applications such as gas and liquid adsorption and supercapacitors in the future.

[0003] A search revealed an existing patent (publication number: CN114770801A) disclosing equipment and process for continuous production of carbon fiber composite laminates, relating to the field of textile materials engineering applications. Addressing the issue that existing laminates generally cannot achieve continuous production and have high mold requirements, the following solution is proposed: It includes a yarn feeding mechanism, the sidewall of which is equipped with a coating mechanism for material application. The yarn feeding mechanism is used for fixing and conveying yarn. The yarn feeding mechanism includes a first yarn frame, a second yarn frame, a third yarn frame, a fourth yarn frame, high-performance fibers, and a straightening tube. The second yarn frame is located between the first and third yarn frames, and the fourth yarn frame is located on the side of the third yarn frame away from the second yarn frame. This invention provides equipment for continuous production of carbon fiber composite laminates with a process cycle, enabling continuous production of laminates with lower mold requirements. Furthermore, laying the resin body on release paper facilitates resin demolding and ease of use.

[0004] However, in actual use of the above solutions, carbon fiber production workshops are typically not completely dust-free, although they usually meet strict cleanliness requirements. The production process of carbon fiber involves multiple steps, including fiber stretching, weaving, resin impregnation, and high-temperature treatment. These processes may generate dust, fiber fragments, and other contaminants. However, the carbon fiber cannot be cleaned promptly after production, and impurities can affect the quality of high specific surface area activated carbon fibers and production equipment. Impurities may clog fiber micropores, reduce adsorption performance, and cause equipment wear, blockage, or malfunction, affecting production efficiency. They may also lead to inconsistent product quality and interfere with subsequent processing.

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

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

[0007] To achieve the above objectives, the present invention adopts the following technical solution:

[0008] A continuous production line for high specific surface area activated carbon fiber includes a second support frame. A substrate storage component is provided on the outer side of the second support frame, and a winding reel is provided at the storage end of the substrate storage component. A carbonization machine is fixedly connected to the top wall of the second support frame near the winding reel. A cleaning component is provided in the middle section of the top wall of the second support frame, and an ultrasonic generator is provided at the cleaning end of the cleaning component. A filter component is provided on the inner side of the second support frame, and a first filter screen is provided at the filtering end of the filter component. A cooling component is also provided on the inner side of the second support frame, and an induced draft fan is provided at the cooling end of the cooling component. A dehumidification component is provided on the outer side of the induced draft fan, and an exhaust fan is provided at the dehumidification end of the dehumidification component.

[0009] The cooling assembly includes a ventilation hole located inside the cleaning chamber, at the gap between the heat dissipation holes. Heat from the cleaning agent stored in the heat dissipation holes is transferred to the inner wall of the ventilation hole through the inner wall of the heat dissipation holes. Then, the cold air in the ventilation hole exchanges heat with the inner wall of the ventilation hole, thereby heating the air and cooling the cleaning agent inside the heat dissipation holes. A second filter screen is fixedly connected to the inner wall of the ventilation hole near the motor, and a manifold cover is fixedly connected to the outer wall of the other side of the ventilation hole. A conveying pipe is fixedly connected to the outer side of the manifold cover, and a first connecting pipe is fixedly connected to the outlet end of the conveying pipe. The first connecting pipe is fixedly connected to the inlet end of the induced draft fan. The induced draft fan uses the manifold cover, conveying pipe, and first connecting pipe to extract hot air from the ventilation hole, while simultaneously replenishing the air in the ventilation hole with external cold air.

[0010] The dehumidification assembly includes a dehumidification box, whose air inlet is fixedly connected to the air outlet of an exhaust fan. Air drawn by the exhaust fan is transported into the dehumidification box. A transverse gap is provided in the middle of the dehumidification box. Two sets of evenly distributed guide plates are fixedly connected to the inner side of the dehumidification box. A second connecting pipe is fixedly connected to the air outlet of the dehumidification box. The air outlet of the second connecting pipe is fixedly connected to the air inlet of an exhaust fan. The exhaust fan draws air from the dehumidification box through the second connecting pipe, thereby causing the air in the dehumidification box near the exhaust fan to circulate towards the exhaust fan. During this process, the cleaning agent adhering to the carbon fiber surface is cleaned by high-speed air.

[0011] As a preferred technical solution of this application, the substrate storage assembly includes a limiting frame, the limiting frame is fixedly connected to a second support frame, and a first support frame is provided at the bottom section of the limiting frame, the first support frame being rotatably connected to a winding wheel.

[0012] As a preferred technical solution of this application, the cleaning component includes a cleaning tank, which is fixedly connected to a second support frame. A cleaning groove is provided on the top wall of the cleaning tank. A water inlet is provided on the side of the cleaning groove near the carbonization machine. A heat dissipation hole is provided on the inner side 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. An ultrasonic generator is fixedly connected to the inner wall of the cleaning groove near the water outlet.

[0013] As a preferred technical solution of this application, the filtration assembly includes a delivery pump, the water inlet of the delivery pump is connected to a heat dissipation hole, the water outlet of the delivery pump is provided with a filter pipe, and a first filter screen is fixedly connected to the inner wall of the upper section of the filter pipe, and the first filter screen is connected to the water outlet.

[0014] As a preferred technical solution of this application, a motor is fixedly connected to the outer wall of the cleaning tank, a cleaning impeller is provided at the output end of the motor, the cleaning impeller is rotatably connected to the filter tube, and a collection box is detachably connected to the end of the filter tube away from the motor.

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

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

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

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

[0019] 1. The high specific surface area activated carbon fiber continuous production equipment of the present invention uses a delivery pump to extract cleaning agent from the side of the cleaning tank near the carbonization machine through the inlet and heat dissipation holes, and then delivers it out through the filter pipe and outlet. Simultaneously, an ultrasonic generator uses the cleaning agent to transmit ultrasonic waves, thereby cleaning the carbon fiber, thus improving cleaning efficiency, reducing physical damage, protecting the carbon fiber structure, and improving product quality consistency. It can also reduce equipment failures, optimize subsequent activation treatment, and improve production efficiency and final product performance.

[0020] 2. The high specific surface area activated carbon fiber continuous production equipment of the present invention filters the cleaning agent through a first filter screen, and simultaneously cleans the surface of the first filter screen by a cleaning impeller driven by a motor, pushing the filtered impurities into a collection box. This filtration of the cleaning agent maintains its purity, prevents impurities from contaminating the carbon fiber surface, and improves cleaning effect and product quality. Furthermore, filtering impurities prevents them from damaging or clogging the equipment, reducing malfunctions and maintenance needs.

[0021] 3. The high specific surface area activated carbon fiber continuous production equipment of the present invention uses cold air in the ventilation holes to cool the cleaning agent in the heat dissipation holes, thereby preventing thermal damage to the carbon fiber surface from high temperatures, protecting the carbon fiber structure, and maintaining the consistency of the cleaning effect. At the same time, cooling helps stabilize the chemical properties of the cleaning agent, improves cleaning efficiency, and reduces wear on the equipment caused by high temperatures.

[0022] 4. The high specific surface area activated carbon fiber continuous production equipment of the present invention uses an induced draft fan to extract hot air from the ventilation holes through the conveying pipe and the first connecting pipe, and delivers it into the dehumidification box. At the same time, the exhaust fan uses the second connecting pipe to extract air from the dehumidification box, thereby removing excess cleaning agent that should adhere to the carbon fiber passing through the middle section of the dehumidification box, ensuring that the carbon fiber surface reaches the optimal clean state. At the same time, air cleaning is a non-contact method, which can protect the equipment from wear and reduce cleaning agent residue, thereby reducing environmental pollution. Attached Figure Description

[0023] Figure 1 This is the three-dimensional representation of the present invention. Figure 1 ;

[0024] Figure 2 This is the three-dimensional representation of the present invention. Figure 2 ;

[0025] Figure 3 This is a partial three-dimensional illustration of the present invention. Figure 1 ;

[0026] Figure 4 Figure 3 Enlarged view of a portion of point A in the middle;

[0027] Figure 5 This is a cross-sectional view of the cleaning tank of the present invention. Figure 1 ;

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

[0029] Figure 7 This is a cross-sectional view of the cleaning tank of the present invention. Figure 2 ;

[0030] Figure 8 This is a cross-sectional view of the cleaning tank of the present invention. Figure 3 ;

[0031] Figure 9 This is a diagram showing the direction of carbon fiber in the cleaning tank in this invention.

[0032] In the picture:

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

[0034] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative effort are within the scope of protection of the present invention. Example

[0035] Reference Figure 1-9 A continuous production line for high specific surface area activated carbon fiber includes a second support frame 2. A substrate storage component is provided on the outside of the second support frame 2. The substrate storage component is connected to the second support frame 2. A winding wheel 12 is provided at the storage end of the substrate storage component. A carbonization machine 21 is fixedly connected to the top wall of the second support frame 2 near the winding wheel 12. The carbonization machine 21 is existing technology and will not be described. The carbonization machine 21 is fixed by the second support frame 2. A cleaning component is provided in the middle section of the top wall of the second support frame 2. The cleaning component is supported and fixed by 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 filtering 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. An exhaust fan 39 is provided at the dehumidification end of the dehumidification component.

[0036] The cooling assembly includes ventilation holes 3, which are located inside the cleaning chamber 22. These ventilation holes 3 provide a passage for airflow. The ventilation holes 3 are situated in the gaps between the heat dissipation holes 25 and are evenly distributed within these gaps. Heat from 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. Subsequently, the cool air in the ventilation holes 3 exchanges heat with the inner wall of the ventilation holes 3, thereby heating the air and cooling the cleaning agent within the heat dissipation holes 25. A second filter screen 31 is fixedly connected to the inner wall of the ventilation hole 3 near the motor 211. The second filter screen 31 is fixed through the ventilation holes 3, while external air... When air enters the ventilation hole 3, it is filtered by the second filter screen 31. A manifold cover plate 32 is fixedly connected to the outer wall of the other side of the ventilation hole 3. The manifold cover plate 32 seals one side of the ventilation hole 3. A conveying pipe 33 is fixedly connected to the outside of the manifold cover plate 32. The conveying pipe 33 is fixed by the manifold cover plate 32. A first connecting pipe 34 is fixedly connected to the air outlet end of the conveying pipe 33. The first connecting pipe 34 is fixed by the conveying pipe 33. The first connecting pipe 34 is fixedly connected to the air inlet end of the induced draft fan 35. The induced draft fan 35 uses the manifold cover plate 32, the conveying pipe 33, and the first connecting pipe 34 to extract the hot air in the ventilation hole 3, and at the same time, the air in the ventilation hole 3 is replenished by the cold air from the outside.

[0037] The dehumidification assembly includes a dehumidification box 36. The air inlet of the dehumidification box 36 is fixedly connected to the air outlet of the exhaust fan 35. The air drawn by the exhaust fan 35 is transported into the dehumidification box 36. A transverse gap is provided in the middle of the dehumidification box 36. Two sets of evenly distributed guide plates 37 are fixedly connected to the inside of the dehumidification box 36. The dehumidification box 36 supports and fixes the guide plates 37, and guides the airflow through the guide plates 37. A second connecting pipe 38 is fixedly connected to the air outlet of the dehumidification box 36. The air outlet of the second connecting pipe 38 is fixedly connected to the air inlet of the exhaust fan 39. The exhaust fan 39 draws air from the dehumidification box 36 through the second connecting pipe 38, so that the air on the side of the dehumidification box 36 closest to the exhaust fan 35 flows to the side of the exhaust fan 39. During the process, the cleaning agent adhering to the carbon fiber surface is cleaned by high-speed air.

[0038] The substrate storage assembly includes a limiting frame 11, which is fixedly connected to a second support frame 2. The second support frame 2 supports and fixes the limiting frame 11. At the same time, the top of the limiting frame 11 is provided with evenly distributed guide rollers, and the bottom section of the limiting frame 11 is provided with a first support frame 1. The first support frame 1 supports and fixes the limiting frame 11. The first support frame 1 is rotatably connected to a winding wheel 12. The first support frame 1 supports and limits the winding wheel 12, and at the same time, the winding wheel 12 winds up and stores the substrate.

[0039] The cleaning assembly includes a cleaning tank 22, which is fixedly connected to a second support frame 2. The second support frame 2 supports and fixes the cleaning tank 22. A cleaning tank 23 is provided on the top wall of the cleaning tank 22 for storing cleaning agent. An inlet 24 is provided on the side of the cleaning tank 23 near the carbonization machine 21. The cleaning agent in the cleaning tank 23 enters through the inlet 24. A heat dissipation hole 25 is provided on the inner side of the cleaning tank 23. One end of the heat dissipation hole 25 is connected to the inlet 24, and an outlet 26 is provided on the other side of the cleaning tank 23. The cleaning agent entering through the inlet 24 is transported by the heat dissipation hole 25. An ultrasonic generator 210 is fixedly connected to the inner wall of the cleaning tank 23 near the outlet 26. Ultrasonic waves are generated by the ultrasonic generator 210 and transmitted through the cleaning agent.

[0040] The filtration assembly includes a delivery pump 27, the inlet of which is connected to a heat dissipation hole 25, and a filter pipe 28 at the outlet of the delivery pump 27. A first filter screen 29 is fixedly connected to the inner wall of the upper section of the filter pipe 28, and the first filter screen 29 is connected to the outlet 26. The delivery pump 27 extracts the cleaning agent in the heat dissipation hole 25 and delivers it into the inside of the filter pipe 28, and then continues to deliver it to the outlet 26. During the process, the cleaning agent is filtered by the first filter screen 29.

[0041] A motor 211 is fixedly connected to the outer wall of the cleaning tank 22. The motor 211 is fixed through the cleaning tank 22. A cleaning impeller 212 is provided at the output end of the motor 211. The cleaning impeller 212 is fixed through the motor 211, and at the same time, the cleaning impeller 212 is driven by the motor 211 to rotate, thereby cleaning the surface of the first filter screen 29. The cleaning impeller 212 is rotatably connected to the filter tube 28. The cleaning impeller 212 is limited by the filter tube 28, so that the cleaning impeller 212 rotates inside the filter tube 28. A collection box 213 is detachably connected to the end of the filter tube 28 away from the motor 211. The collection box 213 is fixed through the filter tube 28 by a spring buckle (the spring buckle is existing technology and will not be described).

[0042] An exhaust pipe 310 is provided on the outside of the exhaust fan 39. The exhaust pipe 310 is connected to an external waste gas treatment device. The exhaust fan 39 and the external waste gas treatment device are connected through the exhaust pipe 310, and the waste gas generated in the production is treated by the external waste gas treatment device.

[0043] Two sets of first guide rollers 4 are provided on both sides of the inner wall of the cleaning tank 23. The carbon fiber is guided by the water inlet 24 in the cleaning tank 23, so that the carbon fiber moves in the cleaning agent in the cleaning tank 23.

[0044] Two sets of second guide rollers 41 are provided on the top wall of the second support frame 2 on the side away from the carbonization machine 21, and the carbon fibers are guided by the second guide rollers 41.

[0045] Specifically, in operation, the high specific surface area activated carbon fiber continuous production equipment works as follows: First, the carbon fiber passes through the carbonizer 21 and is heated and carbonized by the carbonizer 21. Then, the carbon fiber is guided by the guide roller on the top wall of the cleaning tank 22 near the carbonizer 21 and enters the second guide roller 41 near the carbonizer 21. It is then guided by the second guide roller 41 to the first guide roller 4 on the cleaning tank 23 near the blower 35. After being guided to the first guide roller 4 on the side near the carbonizer 21, it is again guided by the guide roller on the top wall of the cleaning tank 22 near the carbonizer 21. After being guided, the fibers move onto the first guide roller 4 on the side of the cleaning tank 23 closest to the carbonization machine 21, then onto the first guide roller 4 on the side of the cleaning tank 23 closest to the blower 35, and finally are guided into the dehumidification box 36 by the second guide roller 41 on the side closest to the blower 35. During the movement of the carbon fibers in the cleaning tank 23, the ultrasonic waves generated by the ultrasonic generator 210 are transmitted through the cleaning agent, working together to clean impurities on the surface of the carbon fibers. During the process, the cleaning agent in the cleaning tank 23 is pumped by the delivery pump 27 through the inlet 24 and the heat dissipation holes 25. The cleaning agent is extracted and fed into the filter tube 28, where it is filtered by the first filter screen 29. It is then discharged through the outlet 26. Simultaneously, the motor 211 drives the cleaning impeller 212 to rotate within the filter tube 28, cleaning the impurities filtered by the first filter screen 29 and pushing them into the collection box 213 for collection. Meanwhile, the heat from the cleaning agent stored in the heat dissipation hole 25 is transferred through the inner wall of the heat dissipation hole 25 to the inner wall of the ventilation hole 3, where it is exchanged with the cool air in the ventilation hole 3. The air is heated to cool the cleaning agent in the heat dissipation hole 25. Then, the air in the ventilation hole 3 is drawn by the blower 35 through the manifold cover 32, the delivery pipe 33, and the first connecting pipe 34 and sent into the dehumidification box 36. The air in the dehumidification box 36 cleans the cleaning agent on the carbon fiber surface. Then, the air containing the cleaning agent is drawn by the exhaust fan 39 through the second connecting pipe 38 and sent into the exhaust pipe 310. The air is then sent to the external exhaust gas treatment equipment through the exhaust pipe 310 for exhaust gas treatment.

[0046] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.

Claims

1. A continuous production equipment 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 carbonization machine (21) is fixedly connected to the top wall of the second support frame (2) near 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). A blower (35) is provided at the cooling end of the cooling component. A dehumidification component is provided on the outside of the blower (35). An exhaust fan (39) is provided at the dehumidification end of the dehumidification component. The cooling assembly includes a ventilation hole (3), which is located inside the cleaning tank (22). The ventilation hole (3) is situated at the gap between 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 hole (3) through the inner wall of the heat dissipation holes (25). Then, the cold air in the ventilation hole (3) exchanges heat with the inner wall of the ventilation hole (3), thereby heating the air and cooling the cleaning agent in the heat dissipation holes (25). A second [device / device] is fixedly connected to the inner wall of the ventilation hole (3) on the side near the motor (211). The filter screen (31) is fixedly connected to the outer wall of the other side of the ventilation hole (3), and a conveying pipe (33) is fixedly connected to the outer side of the conveying pipe (33). The air outlet end of the conveying pipe (33) is fixedly connected to the first connecting pipe (34). The first connecting pipe (34) is fixedly connected to the air inlet end of the blower (35). The blower (35) uses the converging cover (32), the conveying pipe (33), and the first connecting pipe (34) to extract the hot air in the ventilation hole (3) and at the same time, the cold air from the outside replenishes the air in the ventilation hole (3). The dehumidification assembly includes a dehumidification box (36), the air inlet of which is fixedly connected to the air outlet of the induced draft fan (35). The air drawn out by the induced draft fan (35) is transported into the dehumidification box (36). A transverse gap is provided in the middle of the dehumidification box (36). Two sets of evenly distributed guide plates (37) are fixedly connected to the inner side of the dehumidification box (36). A second connecting pipe (38) is fixedly connected to the air outlet of the dehumidification box (36). The air outlet of the second connecting pipe (38) is fixedly connected to the air inlet of the exhaust fan (39). The exhaust fan (39) draws air from the dehumidification box (36) through the second connecting pipe (38), so that the air on the side of the dehumidification box (36) close to the induced draft fan (35) flows to the side of the exhaust fan (39). During the process, the cleaning agent adhering to the carbon fiber surface is cleaned by high-speed air.

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

3. The continuous production equipment for high specific surface area activated carbon fibers according to claim 2, characterized in that, The cleaning assembly includes a cleaning tank (22), which is fixedly connected to the second support frame (2). A cleaning tank (23) is provided on the top wall of the cleaning tank (22). A water inlet (24) is provided on the side of the cleaning tank (23) near the carbonization machine (21). A heat dissipation hole (25) is provided on the inner side of the cleaning tank (23). 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 tank (23). An ultrasonic generator (210) is fixedly connected to the inner wall of the cleaning tank (23) near the water outlet (26).

4. The continuous production equipment for high specific surface area activated carbon fibers according to claim 3, characterized in that, The filter assembly includes a delivery pump (27), the water inlet of the delivery pump (27) is connected to the heat dissipation hole (25), the water outlet of the delivery pump (27) is provided with a filter pipe (28), the upper section 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 fibers according to claim 4, characterized in that, A motor (211) is fixedly connected to the outer wall of the cleaning tank (22). A cleaning impeller (212) is provided at the output end of the motor (211). The cleaning impeller (212) is rotatably connected to the filter tube (28). A collection box (213) is detachably connected to the end of the filter tube (28) away from the motor (211).

6. The continuous production equipment for high specific surface area activated carbon fibers according to claim 1, characterized in that, An exhaust pipe (310) is provided on the outside of the exhaust fan (39), and the exhaust pipe (310) is connected to an external waste gas treatment device.

7. The continuous production equipment for high specific surface area activated carbon fibers according to claim 1, characterized in that, Two sets of first guide rollers (4) are provided on both sides of the inner wall of the cleaning tank (23).

8. The continuous production equipment for high specific surface area activated carbon fibers according to any one of claims 1, characterized in that, The second support frame (2) has two sets of second guide rollers (41) on the top wall of the side away from the carbonization machine (21).