A saturated activated carbon regeneration device

The active carbon regeneration system addresses uneven heating and agglomeration issues by using a rotating and elevating filter cartridge system with transmission structures, ensuring uniform carbon contact and mixing, thus enhancing regeneration efficiency and stability.

CN120115137BActive Publication Date: 2025-07-15SHANXI LUYUAN RENEWABLE RESOURCES TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510593132.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-05-09
Publication Date
2025-07-15
Estimated Expiration
2045-05-09

AI Technical Summary

Technical Problem

During the thermal regeneration process, existing activated carbon regeneration equipment has problems such as bonding of carbon particles, uneven heating, and easy sintering into blockages, resulting in local fire or blocking of channels, affecting regeneration efficiency.

Method used

A device including a regeneration drying box, a loading filter cartridge, a drive module and a stirring structure is designed. The lifting and rotating movement of the loading filter cartridge is realized through the drive module, and the mixing effect is enhanced with the stirring structure to ensure uniform regeneration of activated carbon.

Benefits of technology

It realizes efficient and uniform regeneration of activated carbon, improves regeneration efficiency, enhances the degree of automation and mixing effect of the equipment, and ensures full contact and heat exchange between activated carbon particles.

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Abstract

The present invention relates to the technical field of activated carbon regeneration, and specifically relates to a saturated activated carbon regeneration device, which includes a regeneration drying box and a cover plate detachably installed on the top side of the regeneration drying box. A loading filter cylinder for loading saturated activated carbon is arranged inside the regeneration drying box. A connection structure connected to the loading filter cylinder is arranged on the cover plate, and a driving module for driving the loading filter cylinder is installed on the upper surface of the cover plate; the driving module is composed of a first transmission structure, a second transmission structure and a driving mechanism, and a linkage structure is arranged between the second transmission structure and the driving mechanism. The first transmission structure is connected to the connection structure and is driven by the driving mechanism for use, so as to realize the reciprocating rotation of the loading filter cylinder; by driving the second transmission structure by the driving mechanism, the reciprocating lifting movement of the loading filter cylinder is realized. The present invention realizes the efficient and automatic regeneration of activated carbon through a clever design, and at the same time has the advantages of compact structure, strong adaptability and easy maintenance.
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Description

Technical Field

[0001] The present invention relates to a saturated activated carbon regeneration device, belonging to the technical field of activated carbon regeneration. Background Art

[0002] Activated carbon is a widely used industrial adsorbent. With the development of the economy, activated carbon has been applied in many fields. The adsorption property of activated carbon stems from its unique molecular structure. There are many pores inside the activated carbon. After adsorption, the activated carbon is discarded, which causes great waste. In recent years, with the development of technology, the saturated activated carbon regeneration technology has been greatly developed, and the saturated activated carbon can be restored to its adsorption capacity through the saturated activated carbon regeneration technology; due to its good adsorption effect, activated carbon is suitable for fields such as drying, filtration, and deodorization. After use, its adsorption capacity decreases or even loses the adsorption effect. The used activated carbon is called waste activated carbon. Improper treatment of waste activated carbon will cause resource waste and even environmental pollution. When treating waste activated carbon, it is necessary to dry the waste activated carbon;

[0003] Chinese Patent Publication No. CN216704401U discloses "a drying device for activated carbon regeneration, including a drying tank with a hollow interior. The upper side and the lower side of the drying tank are both provided with material ports communicating with its inner cavity. A sealing plate for sealing the material port is slidably arranged on the side of the drying tank. A blowing assembly is arranged on the side of the drying tank. The air outlet of the blowing assembly communicates with the lower part of the inner cavity of the drying tank. A heating element for heating the gas is arranged on the side of the blowing assembly. An exhaust pipe communicating with its inner cavity is installed on the upper side of the drying tank. In this drying device for activated carbon regeneration, the activated carbon is stored in the drying tank, and hot air is conveyed into the drying tank by an external blowing assembly to dry the activated carbon, and at the same time, the conveyed hot air plays a role in stirring the activated carbon";

[0004] However, the above patent still has the following deficiencies: When using the thermal regeneration method for waste activated carbon, the carbon particles adhere to each other, and the heating of the waste activated carbon is not uniform enough, resulting in sintering into blocks and causing local ignition or blockage of the channels, and even leading to the phenomenon of operation paralysis. The operation is rather troublesome, thus affecting the activated carbon regeneration efficiency;

[0005] Therefore, it is urgent to improve the above equipment to solve the existing problems. Summary of the Invention

[0006] The purpose of the present invention is to provide a saturated activated carbon regeneration device, which realizes the efficient and automatic regeneration of activated carbon through a clever design, and at the same time has the advantages of compact structure, strong adaptability and easy maintenance.

[0007] To achieve the above object, the main technical solutions adopted by the present invention include: a regeneration drying box and a cover plate detachably installed on the top side of the regeneration drying box. A loading filter cylinder for loading saturated activated carbon is arranged inside the regeneration drying box. A connection structure connected to the loading filter cylinder is arranged on the cover plate, and a driving module for driving the loading filter cylinder is installed on the upper surface of the cover plate;

[0008] The driving module is composed of a first transmission structure, a second transmission structure and a driving mechanism. A linkage structure is arranged between the second transmission structure and the driving mechanism. The first transmission structure is connected to the connection structure and is driven by the driving mechanism for use, so as to realize the reciprocating rotation of the loading filter cylinder;

[0009] The connection structure is composed of a connection sleeve and a connecting rod connected by splines. The bottom end of the connecting rod extends into the regeneration drying box and is fixed to the upper surface of the loading filter cylinder. The top end of the connecting rod is connected to the second transmission structure. By driving the second transmission structure by the driving mechanism, the reciprocating lifting movement of the loading filter cylinder is realized.

[0010] Preferably, the inside of the regeneration drying box is hollow. A water inlet hole and a drain hole are opened on the side wall of the regeneration drying box. A stirring structure for cooperating with the rotation of the loading filter cylinder is installed on the inner bottom wall of the regeneration drying box by means of a bearing.

[0011] Preferably, the stirring structure includes a support sleeve rotatably installed on the inner bottom wall of the regeneration drying box. Stirring rods are welded on the outer surface of the support sleeve. A docking shaft connected to the support sleeve by splines is fixed to the lower surface of the loading filter cylinder.

[0012] Preferably, the connecting rod penetrates through the inside of the connection sleeve. The connection sleeve and the support sleeve are coaxially arranged up and down, and the connection sleeve is installed on the upper surface of the cover plate by means of a bearing.

[0013] Preferably, the first transmission structure includes a bracket fixedly installed on the upper surface of the cover plate, a transmission frame slidably arranged above the bracket, a connecting plate fixed above the transmission frame, and a swing arm fixed on the outer surface of the connection sleeve. A roller is installed at one end of the connecting plate away from the transmission frame by means of a bearing, and a chute matched with the roller is arranged inside the swing arm.

[0014] Preferably, a connecting shaft is fixed between the transmission frame and the connecting plate. The first transmission structure further includes a limiting structure installed inside the bracket for guiding the transmission frame. The limiting structure includes a guide rod fixed to the inside of the bracket, a sliding seat slidably sleeved on the outer surface of the guide rod, and a first return spring fixed between the inside of the bracket and the sliding seat. The lower surface of the transmission frame is bolted to the sliding seat;

[0015] The limiting structure further includes a guiding block fixed to the lower surface of the transmission frame. A guiding groove slidably matched with the guiding block is opened on the top side of the bracket.

[0016] Preferably, the driving mechanism includes a driving motor fixed to the cover plate, a first driving shaft with bearings mounted on the bracket, and a second driving shaft with bearings mounted on the upper surface of the cover plate. Gear members are installed between the output shaft of the driving motor, the outer surface of the first driving shaft, and the outer surface of the second driving shaft. A first eccentric wheel that abuts against the outer surface of the transmission frame is fixed on the first driving shaft, and a second eccentric wheel connected to the second transmission structure is fixed to the top end of the second driving shaft.

[0017] Preferably, an installation groove for installing the driving motor is formed inside the cover plate. The gear member is composed of a first driving gear, a first driven gear, and a second driven gear. The first driving gear is fixed to the output shaft of the driving motor, the first driven gear is fixed to the bottom end of the first driving shaft, and the second driven gear is fixed to the outer surface of the bottom end of the second driving shaft.

[0018] Preferably, the second transmission structure includes two limit seats fixed to the upper surface of the cover plate, a sliding rod that slidably penetrates through the interiors of the two limit seats, and an abutting block fixed to the right end of the sliding rod and abutting against the second eccentric wheel. A pushing seat is fixed to the outer surface of the sliding rod. A connecting frame connected to the connecting rod is arranged outside the pushing seat. The connecting frame is connected to the top end of the connecting rod by bearings. A second return spring surrounding the outer surface of the sliding rod is fixed between the left limit seat and the pushing seat;

[0019] Wherein, a connecting member is arranged between the connecting frame and the pushing seat. The connecting member includes an adapter rod fixed to the side of the connecting frame close to the pushing seat and a pulley installed at the other end of the adapter rod by bearings and in rolling cooperation with the pushing seat. A pushing groove adapted to the pulley is formed inside the pushing seat, and the two sides of the pushing groove are arranged at different heights.

[0020] Preferably, two symmetrically distributed limit rods for guiding the connecting frame are fixed to the upper surface of the cover plate. The linkage structure includes a rack fixed to the outer surface of the transmission frame and a second transmission gear installed on the upper surface of the cover plate by bearings and meshing with the second driven gear. The rack meshes with the second transmission gear.

[0021] The present invention has at least the following beneficial effects:

[0022] 1. For this saturated activated carbon regeneration equipment, through the combined use of the driving mechanism, the first transmission structure, and the second transmission, the lifting and rotating movements of the loading filter cartridge are realized. The activated carbon in the loading filter cartridge can come into contact with the anti-caking agent more fully, ensuring uniform soaking of the activated carbon, thereby improving the regeneration effect. At the same time, this combined movement also helps to quickly remove the moisture and other volatile components on the surface of the activated carbon, accelerating the drying process and further improving the regeneration efficiency.

[0023] 2. When the filter cartridge loaded in this saturated activated carbon regeneration equipment rotates, the supporting sleeve and stirring rod below rotate accordingly, effectively enhancing the mixing effect inside the regeneration drying oven, ensuring sufficient contact between activated carbon particles and uniform regeneration, and enhancing the mixing effect.

[0024] 3. In this saturated activated carbon regeneration equipment, through the coordinated action of the first transmission structure and the second transmission structure, the filter cartridge loaded rotates while performing a reciprocating lifting motion. This compound motion mode helps to enhance the mixing effect inside the regeneration drying oven, enabling more sufficient contact between activated carbon particles and the exchange of heat, mass, etc.

[0025] 4. In this saturated activated carbon regeneration equipment, the design of the linkage structure including the rack and the second transmission gear enables linkage control between the first transmission structure and the second transmission structure. This design not only improves the automation degree of the equipment but also helps to achieve more precise and efficient control of the regeneration process. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] The drawings described herein are used to provide a further understanding of the present application and form a part of the present application. The schematic embodiments of the present application and their descriptions are used to explain the present application and do not constitute an improper limitation to the present application. In the drawings:

[0027] Figure 1 is a three-dimensional view of the overall structure of the present invention;

[0028] Figure 2 is a front view of the overall structure of the present invention;

[0029] Figure 3 is a schematic diagram of the overall structure of the first transmission structure, the second transmission structure and the driving mechanism of the present invention;

[0030] Figure 4 is a schematic diagram of the connection structure of the present invention;

[0031] Figure 5 is a schematic diagram of the swing arm of the present invention;

[0032] Figure 6 is a schematic diagram of the first transmission structure of the present invention;

[0033] Figure 7 is for the present invention Figure 2 is an enlarged schematic diagram of A shown;

[0034] Figure 8 is a schematic diagram of the overall structure of the second transmission structure of the present invention;

[0035] Figure 9 is a schematic diagram of the pushing groove of the present invention.

[0036] In the figure, 1 is a regeneration drying oven; 2 is a cover plate; 21 is a mounting groove; 3 is a loading filter cartridge; 4 is a support sleeve; 5 is a stirring rod; 6 is a connecting structure; 601 is a connecting sleeve; 602 is a connecting rod; 7 is a first transmission structure; 701 is a bracket; 702 is a transmission frame; 703 is a connecting plate; 704 is a swing arm; 705 is a roller; 706 is a chute; 707 is a connecting shaft; 708 is a sliding seat; 709 is a guide rod; 710 is a first return spring; 711 is a guide block; 712 is a guide groove; 8 is a second transmission structure; 801 is a limit seat; 802 is a sliding rod; 803 is an abutting block; 804 is a connecting frame; 805 is a pushing seat; 806 is a connecting rod; 807 is a pulley; 808 is a second return spring; 809 is a limit rod; 810 is a pushing groove; 9 is a driving mechanism; 901 is a driving motor; 902 is a first driving shaft; 903 is a first driving gear; 904 is a first driven gear; 905 is a second driving shaft; 906 is a second driven gear; 907 is a first eccentric wheel; 908 is a second eccentric wheel; 10 is a linkage structure; 1001 is a rack; 1002 is a second driving gear. Detailed implementation manners

[0037] The following will describe in detail the implementation manners of the present application in conjunction with the accompanying drawings and embodiments, so as to fully understand how the present application uses technical means to solve technical problems and achieve the implementation process of technical effects and implement accordingly.

[0038] As Figure 1 - Figure 4 As shown, the saturated activated carbon regeneration equipment provided in this embodiment includes a regeneration drying oven 1 and a cover plate 2 detachably installed on the top side of the regeneration drying oven 1. A loading filter cartridge 3 for loading saturated activated carbon is arranged inside the regeneration drying oven 1. The inside of the regeneration drying oven 1 is hollowly arranged. Water inlet holes and drain holes are opened on the side wall of the regeneration drying oven 1. A stirring structure for rotating in cooperation with the loading filter cartridge 3 is installed on the inner bottom wall of the regeneration drying oven 1 by means of bearings. Among them, the stirring structure includes a support sleeve 4 rotatably installed on the inner bottom wall of the regeneration drying oven 1. A stirring rod 5 is welded on the outer surface of the support sleeve 4. A docking shaft spline-connected with the support sleeve 4 is fixed on the lower surface of the loading filter cartridge 3. The connecting structure 6 allows the loading filter cartridge 3 to perform a combined movement of lifting and rotating, which helps the activated carbon to come into contact with media such as hot air or anti-adhesive agent more fully in the regeneration drying oven 1, thereby improving the regeneration efficiency. At the same time, the combined use of the stirring structure further enhances the mixing effect and ensures the uniform regeneration effect of the activated carbon.

[0039] As Figure 1 and Figure 4As shown in the figure, a connection structure 6 is provided on the cover plate 2 and is connected to the loading cartridge 3. The connection structure 6 is composed of a connection sleeve 601 and a connecting rod 602 connected by a spline. The bottom end of the connecting rod 602 extends into the internal part of the regeneration drying box 1 and is fixed to the upper surface of the loading cartridge 3. The connecting rod 602 is bolted to the loading cartridge 3. The connecting rod 602 passes through the inside of the connection sleeve 601. The connection sleeve 601 and the support sleeve 4 are coaxially arranged up and down, and the connection sleeve 601 is installed on the upper surface of the cover plate 2 by a bearing. The connection structure 6 is composed of a connection sleeve 601 and a connecting rod 602 connected by a spline. This connection method not only ensures the stability of the structure but also enables the connecting rod 602 to move flexibly within a certain range. This is crucial for the lifting and rotating movements of the loading cartridge 3 during the regeneration process, ensuring that the activated carbon can be regenerated evenly and effectively.

[0040] As Figures 1 - 9 shown, a driving module for driving the loading cartridge 3 is installed on the upper surface of the cover plate 2. Among them, the driving module is composed of a first transmission structure 7, a second transmission structure 8, and a driving mechanism 9. A linkage structure 10 is provided between the second transmission structure 8 and the driving mechanism 9. The first transmission structure 7 is connected to the connection structure 6 and is driven by the driving mechanism 9 to realize the reciprocating rotation of the loading cartridge 3. Through the coordinated operation of the first transmission structure 7 and the second transmission structure 8, the driving module realizes the reciprocating rotation and reciprocating lifting movement of the loading cartridge 3. This compound movement method ensures the uniform treatment of the activated carbon during the regeneration process and improves the regeneration efficiency. Among them, the top end of the connecting rod 602 is connected to the second transmission structure 8, and the second transmission structure 8 is driven by the driving mechanism 9 to realize the reciprocating lifting movement of the loading cartridge 3. As Figure 1 - Figure 6 shown, the first transmission structure 7 includes a bracket 701 fixedly installed on the upper surface of the cover plate 2, a transmission frame 702 slidably arranged above the bracket 701, a connecting plate 703 fixed above the transmission frame 702, and a swing arm 704 fixed on the outer surface of the connection sleeve 601. One end of the connecting plate 703 away from the transmission frame 702 is installed with a roller 705 by a bearing, and a chute 706 matching the roller 705 is opened inside the swing arm 704. Specifically, as Figure 2 - Figure 5As shown, a connecting shaft 707 is fixed between the transmission frame 702 and the connecting plate 703. The first transmission structure 7 further includes a limiting structure installed inside the bracket 701 for guiding the transmission frame 702. The limiting structure includes a guide rod 709 fixed inside the bracket 701, a sliding seat 708 slidably sleeved on the outer surface of the guide rod 709, and a first return spring 710 fixed between the inside of the bracket 701 and the sliding seat 708. The lower surface of the transmission frame 702 is bolted to the sliding seat 708. The limiting structure further includes a guiding block 711 fixed on the lower surface of the transmission frame 702, and a guiding groove 712 slidably engaged with the guiding block 711 is formed on the top side of the bracket 701. The limiting structure (including the guide rod 709, the sliding seat 708, and the first return spring 710) in the first transmission structure 7 ensures the stability of the transmission frame 702 during the reciprocating motion, avoiding affecting the transmission effect due to shaking or deviation. At the same time, the cooperation of the guiding block 711 and the guiding groove 712 further enhances the structural stability.

[0041] As Figure 2 , Figure 3 and Figure 7 shown, the driving mechanism 9 includes a driving motor 901 fixed on the cover plate 2, a first driving shaft 902 installed with bearings on the bracket 701, and a second driving shaft 905 installed with bearings on the upper surface of the cover plate 2. Gear parts are installed between the output shaft of the driving motor 901, the outer surface of the first driving shaft 902, and the outer surface of the second driving shaft 905. A first eccentric wheel 907 that abuts against the outer surface of the transmission frame 702 is fixed on the first driving shaft 902, and a second eccentric wheel 908 connected to the second transmission structure 8 is fixed at the top end of the second driving shaft 905. Among them, an installation groove 21 for installing the driving motor 901 is formed inside the cover plate 2. The gear parts are composed of a first driving gear 903, a first driven gear 904, and a second driven gear 906, and the first driving gear 903 meshes with the first driven gear 904. The first driving gear 903 is fixed on the output shaft of the driving motor 901, the first driven gear 904 is fixed at the bottom end of the first driving shaft 902, and the second driven gear 906 is fixed on the outer surface of the bottom end of the second driving shaft 905.

[0042] As Figure 3 , Figure 8 and Figure 9As shown in the figure, the second transmission structure 8 includes two limit seats 801 fixed on the upper surface of the cover plate 2, a slide bar 802 slidably penetrating through the interiors of the two limit seats 801, and a contact block 803 fixed to the right end of the slide bar 802 and abutted against the second eccentric wheel 908. A push seat 805 is fixed on the outer surface of the slide bar 802. An attachment bracket 804 connected to the connecting rod 602 is arranged outside the push seat 805. The attachment bracket 804 is connected to the top end of the connecting rod 602 by a bearing. A second return spring 808 surrounding the outer surface of the slide bar 802 is fixed between the left limit seat 801 and the push seat 805. Among them, a connecting member is arranged between the attachment bracket 804 and the push seat 805. The connecting member includes an adapter rod 806 fixed to the side of the attachment bracket 804 close to the push seat 805, and a pulley 807 installed on the other end of the adapter rod 806 by a bearing and in rolling cooperation with the push seat 805. A push groove 810 adapted to the pulley 807 is formed inside the push seat 805, and both sides of the push groove 810 are arranged at different heights. The design of the connecting member (including the adapter rod 806 and the pulley 807) in the second transmission structure 8 enables the connection between the attachment bracket 804 and the push seat 805 to be more flexible, and can adapt to forces and movements in different directions.

[0043] To ensure the stable use of the second transmission structure 8, as Figure 3 and Figure 7 shown in the figure, two limit rods 809 which are symmetrically distributed and used for guiding the attachment bracket 804 are fixed on the upper surface of the cover plate 2. The linkage structure 10 includes a rack 1001 fixed on the outer surface of the transmission frame 702 and a second transmission gear 1002 installed on the upper surface of the cover plate 2 by a bearing and meshing with the second driven gear 906. The rack 1001 meshes with the second transmission gear 1002. The design of the linkage structure 10 (including the rack 1001 and the second transmission gear 1002) enables the linkage control between the first transmission structure 7 and the second transmission structure 8. This design not only improves the automation degree of the equipment, but also helps to achieve more precise and efficient control of the regeneration process.

[0044] During the use of this embodiment, through the coordinated action of the first transmission structure 7 and the second transmission structure 8, the loaded filter cartridge 3 performs a reciprocating lifting motion while rotating. This compound motion mode helps to enhance the mixing effect inside the regeneration drying oven 1, making the activated carbon particles contact and exchange heat, mass, etc. more fully with each other.

[0045] As Figure 1 - Figure 9 shown in the figure, the principle of the saturated activated carbon regeneration equipment provided in this embodiment is as follows:

[0046] When the saturated activated carbon needs to be regenerated, first install the loading cartridge 3 in the regeneration drying oven 1, then introduce the anti-adhesive agent into the regeneration drying oven 1, start the drive motor 901, the output shaft of the drive motor 901 rotates, driving the first drive gear 903 to rotate. The first drive gear 903 and the first driven gear 904 drive the first drive shaft 902 to rotate. The first eccentric wheel 907 on the first drive shaft 902 rotates accordingly, contacts the transmission frame 702 and pushes it to move reciprocally. The reciprocating movement of the transmission frame 702 drives the connecting sleeve 601 and the connecting rod 602 to rotate through the connecting plate 703, the roller 705 and the chute 706 structure of the swing arm 704.

[0047] Meanwhile, due to the meshing relationship between the rack 1001 and the second drive gear 1002, the movement of the transmission frame 702 also drives the second drive gear 1002 to rotate. The rotation of the second drive gear 1002 drives the second eccentric wheel 908 to rotate and contact the abutting block 803, pushing the sliding rod 802 to slide within the limit seat 801, thereby driving the connecting rod 602 to move up and down. At this time, the up-and-down movement and the rotational movement of the connecting rod 602 act together on the loading cartridge 3, enabling it to perform both reciprocating up-and-down movement and rotational movement. The materials in the loading cartridge 3 can be fully immersed in the anti-adhesive agent. This compound movement contributes to the uniform drying and regeneration of the activated carbon. After soaking for a period of time, the anti-adhesive agent is discharged. By means of the drive mechanism 9, in cooperation with the first transmission structure 7 and the second transmission structure 8, the reciprocating up-and-down and rotational movement of the loading cartridge 3 is achieved. This can not only remove the moisture and other volatile components on the surface of the activated carbon, but also cooperate with the drying equipment in the regeneration drying oven 1 to dry the moisture, greatly improving the regeneration efficiency of the saturated activated carbon.

[0048] In addition, when the loading cartridge 3 rotates, the support sleeve 4 and the stirring rod 5 below it rotate along with the rotation of the docking shaft, further enhancing the mixing effect inside the regeneration drying oven 1.

[0049] As certain terms are used in the specification and claims to refer to specific components. Those skilled in the art should understand that hardware manufacturers may use different terms to refer to the same component. The specification and claims do not use the difference in names as a way to distinguish components, but rather use the difference in functions of components as the criterion for distinction. As the term "comprising" mentioned throughout the specification and claims is an open-ended term, it should be interpreted as "including but not limited to". "Substantially" means within an acceptable error range. Those skilled in the art can solve technical problems within a certain error range and basically achieve the technical effect.

[0050] It should be noted that the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a commodity or system comprising a series of elements not only includes those elements, but also includes other elements not expressly listed, or elements inherent to such commodity or system. Without further limitation, an element defined by the statement "comprising an..." does not exclude the presence of additional identical elements in the commodity or system comprising the element.

[0051] The above description illustrates and describes several preferred embodiments of the present invention. However, as previously mentioned, it should be understood that the present invention is not limited to the forms disclosed herein, should not be regarded as excluding other embodiments, but can be used in various other combinations, modifications and environments, and can be changed within the scope of the inventive concept described herein through the above teachings or the techniques or knowledge in the relevant field. Any changes and variations made by those skilled in the art without departing from the spirit and scope of the present invention shall fall within the protection scope of the appended claims of the present invention.

Claims

1. A saturated activated carbon regeneration device, comprising a regeneration drying box (1) and a cover plate (2) detachably installed on the top side of the regeneration drying box (1), characterized in that, Inside the regeneration drying box (1), a loading filter cartridge (3) loaded with saturated activated carbon is provided. A connection structure (6) connected to the loading filter cartridge (3) is provided on the cover plate (2), and a driving module for driving the loading filter cartridge (3) is installed on the upper surface of the cover plate (2); The driving module is composed of a first transmission structure (7), a second transmission structure (8) and a driving mechanism (9). A linkage structure (10) is provided between the second transmission structure (8) and the driving mechanism (9). The first transmission structure (7) is connected to the connection structure (6) and is driven by the driving mechanism (9) to realize the reciprocating rotation of the loading filter cartridge (3); The connection structure (6) is composed of a connection sleeve (601) and a connecting rod (602) connected by splines. The bottom end of the connecting rod (602) extends into the regeneration drying box (1) and is fixed to the upper surface of the loading filter cartridge (3). The top end of the connecting rod (602) is connected to the second transmission structure (8). By driving the second transmission structure (8) by the driving mechanism (9), the reciprocating lifting movement of the loading filter cartridge (3) is realized; The first transmission structure (7) includes a bracket (701) fixedly installed on the upper surface of the cover plate (2), a transmission frame (702) slidably arranged above the bracket (701), a connecting plate (703) fixed above the transmission frame (702), and a swing arm (704) fixed on the outer surface of the connection sleeve (601). A roller (705) is installed at one end of the connecting plate (703) away from the transmission frame (702) by a bearing, and a chute (706) matching the roller (705) is opened inside the swing arm (704); The driving mechanism (9) includes a driving motor (901) fixed on the cover plate (2), a first driving shaft (902) installed on the bracket (701) by a bearing, and a second driving shaft (905) installed on the upper surface of the cover plate (2) by a bearing. Gear parts are installed between the output shaft of the driving motor (901), the outer surface of the first driving shaft (902), and the outer surface of the second driving shaft (905); The gear part is composed of a first driving gear (903), a first driven gear (904) and a second driven gear (906). The first driving gear (903) is fixed on the output shaft of the driving motor (901); The linkage structure (10) includes a rack (1001) fixed on the outer surface of the transmission frame (702) and a second driving gear (1002) installed on the upper surface of the cover plate (2) by a bearing and meshing with the second driven gear (906). The rack (1001) meshes with the second driving gear (1002); 2. The saturated activated carbon regeneration equipment according to claim 1, wherein: The inside of the regeneration drying box (1) is hollow. Water inlet holes and drain holes are opened on the side wall of the regeneration drying box (1). A stirring structure for cooperating with the rotation of the loading filter cartridge (3) is installed on the inner bottom wall of the regeneration drying box (1) by a bearing.

3. The saturated activated carbon regeneration equipment according to claim 2, wherein: The stirring structure comprises a support sleeve (4) rotatably mounted on the inner bottom wall of the regeneration drying box (1), a stirring rod (5) being welded to the outer surface of the support sleeve (4), and a docking shaft spline-connected to the support sleeve (4) being fixed to the lower surface of the loading filter cartridge (3).

4. The saturated activated carbon regeneration equipment according to claim 3, characterized in that: The connecting rod (602) passes through the interior of the connecting sleeve (601); the connecting sleeve (601) and the supporting sleeve (4) are coaxially arranged up and down; and the bearing of the connecting sleeve (601) is mounted on the upper surface of the cover plate (2).

5. The saturated activated carbon regeneration equipment according to claim 1, characterized in that: A connecting shaft (707) is fixed between the transmission frame (702) and the connecting plate (703); the first transmission structure (7) further comprises a limiting structure installed on the inner side of the bracket (701) for guiding the transmission frame (702); the limiting structure comprises a guide rod (709) fixed on the inner side of the bracket (701), a slide seat (708) slidably sleeved on the outer surface of the guide rod (709), and a first return spring (710) fixed between the inner side of the bracket (701) and the slide seat (708); the lower surface of the transmission frame (702) is fixed to the slide seat (708) by bolts; The limiting structure further comprises a guide block (711) fixed to the lower surface of the transmission frame (702); a guide groove (712) which is slidably matched with the guide block (711) is provided on the top side of the frame (701).

6. The saturated activated carbon regeneration equipment according to claim 1, wherein: A first eccentric wheel (907) abutting against the outer surface of the transmission frame (702) is fixed on the first driving shaft (902), and a second eccentric wheel (908) connected to the second transmission structure (8) is fixed on the top end of the second driving shaft (905).

7. A saturated activated carbon regeneration device according to claim 1, characterized in that: The cover plate (2) is provided with a mounting groove (21) for mounting the drive motor (901), the first driven gear (904) is fixed to the bottom end of the first drive shaft (902), and the second driven gear (906) is fixed to the outer surface of the bottom end of the second drive shaft (905).

8. A saturated activated carbon regeneration device according to claim 1, characterized in that: The second transmission structure (8) comprises two limit seats (801) fixed on the upper surface of the cover plate (2), a slide rod (802) slidingly passing through the two limit seats (801), and an abutment block (803) fixed to the right end of the slide rod (802) and abutting against the second eccentric wheel (908); a push seat (805) is fixed on the outer surface of the slide rod (802); a connecting frame (804) connected to the connecting rod (602) is arranged outside the push seat (805); the connecting frame (804) is connected to the top bearing of the connecting rod (602); a second return spring (808) surrounding the outer surface of the slide rod (802) is fixed between the limit seat (801) and the push seat (805) on the left side; A connecting member is provided between the connecting frame (804) and the pushing seat (805), and the connecting member comprises a connecting rod (806) fixed to one side of the connecting frame (804) close to the pushing seat (805) and a pulley (807) installed at the other end of the connecting rod (806) and rollingly engaged with the pushing seat (805). A pushing groove (810) adapted to the pulley (807) is provided inside the pushing seat (805), and the two sides of the pushing groove (810) are arranged at different heights.

9. The saturated activated carbon regeneration equipment according to claim 8, wherein: Two symmetrically distributed limiting rods (809) for guiding the connecting frame (804) are fixed on the upper surface of the cover plate (2).

Citation Information

Patent Citations

  • Drying device for activated carbon regeneration

    CN216704401U

  • Rotary activated carbon dehydration regeneration equipment

    CN113070051A

  • Activated carbon regeneration device based on microwave heating

    CN113877554A