Feeding mechanism for water purification activated carbon floating carbon removal device

By designing the feeding mechanism of the water-purified activated carbon removal device, the activated carbon is quickly pressed into the water by using the rotating mechanism and the pressing plate, and the screened activated carbon is discharged using the spiral feed rod, the problem of difficulty in quickly entering the water in the existing device is solved, and the efficiency and convenience of removing floating carbon is improved.

CN223069663UActive Publication Date: 2025-07-08NINGXIA JIAYUE CARBON IND CO LTD
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Patent Information

Application Number
CN202422007063.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-19
Publication Date
2025-07-08
Estimated Expiration
2034-08-19

AI Technical Summary

Technical Problem

The existing floating carbon removal device lacks a feeding mechanism, which causes activated carbon to fail to enter the water quickly, reducing the screening efficiency of floating carbon removal.

Method used

A feeding mechanism for water purification activated carbon removal device is designed, including a rotating mechanism, a pressing plate, an inclined guide plate, a conical guide groove and a spiral feed rod. The activated carbon is pressed into the water by driving the pressing plate through the rotating mechanism, and the screened activated carbon is discharged using a spiral feed rod.

Benefits of technology

The activated carbon is quickly entered into water for screening, which improves the efficiency of removing floating carbon, and conveniently discharges the screened activated carbon, which improves the working efficiency and convenience of the device.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model discloses a feeding mechanism for a water purification activated carbon floating carbon removal device, which comprises a machine body, a rotating mechanism is arranged on one side of the machine body, and a power mechanism is arranged on one side of the lower end of the machine body. According to the floating carbon removal device, a feeding structure for rapidly pressing activated carbon into water can be formed, the activated carbon added into the floating carbon removal device is rapidly pressed into the water, the floating carbon in the activated carbon is rapidly removed, the removal efficiency of the floating carbon removal device on the floating carbon is improved, and the service life of the floating carbon removal device is prolonged. And meanwhile, activated carbon after floating carbon removal can be more conveniently discharged from the floating carbon removal device, so that the convenience of the floating carbon removal device is effectively improved, and the working efficiency of the floating carbon removal device is effectively improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of activated carbon, in particular to a feeding mechanism for a floating carbon removing device of water purification activated carbon. Background Art

[0002] Activated carbon is a porous carbonaceous substance. Its developed pore structure gives it a large surface area, so it is very easy to fully contact with toxic and harmful gases in the air. The strong adsorption force field around the pores of activated carbon will immediately suck the toxic gas molecules into the pores. Activated carbon has extremely strong adsorption capacity and is mostly used for water purification treatment. Activated carbon is divided into those that sink in water and those that float in water. The floating carbon on the water surface are all defective products. Therefore, during the processing of activated carbon, in order to ensure the quality of activated carbon, it is necessary to remove the floating carbon in the activated carbon through a floating carbon removing device. When the floating carbon removing device is in use, it is necessary to add activated carbon into the floating carbon removing device.

[0003] However, the existing floating carbon removing devices do not have a feeding mechanism, and the activated carbon added into the floating carbon removing device cannot quickly enter the water, thus reducing the screening efficiency of the floating carbon removing device for removing floating carbon from activated carbon. Therefore, improvements are needed. Summary of the Utility Model

[0004] The purpose of the utility model is to overcome the deficiency that the existing floating carbon removing device cannot quickly let the added activated carbon enter the water for screening, and the activated carbon needs to slowly enter the water according to its own gravity, thus reducing the working efficiency of the floating carbon removing device, and to provide a feeding mechanism for a floating carbon removing device of water purification activated carbon.

[0005] In order to achieve the above purpose, the utility model adopts the following technical scheme:

[0006] A feeding mechanism for a floating carbon removing device of water purification activated carbon, including a machine body. A rotating mechanism is arranged on one side of the machine body, and a power mechanism is arranged on one side at the lower end of the machine body;

[0007] One side of the upper end of the body is provided with a feed inlet, and the other side of the upper end of the body is provided with an observation port. A driving roller is provided on the rotating mechanism. The driving roller is arranged at the upper part of one side inside the body. One end of the driving roller is rotatably sleeved on the inner wall of one side of the body, and the other end of the driving roller is rotatably connected to a vertical plate. The vertical plate is fixedly connected to the middle of the upper end inside the body. A pressing plate is fixed on one side of the driving roller. An inclined material guiding plate is correspondingly arranged below the pressing plate. The inclined material guiding plate is arranged at one side of the lower end inside the body. A conical material guiding groove is arranged at the other side of the lower end of the body. The conical material guiding groove is correspondingly arranged below the other side of the inclined material guiding plate. A spiral feeding rod is provided on the power mechanism. The spiral feeding rod is arranged in the conical material guiding groove. The two ends of the spiral feeding rod are respectively rotatably connected to the opposite inner walls of the conical material guiding groove. A discharge port is opened at the other side of the lower end inside the conical material guiding groove.

[0008] Preferably, in order to provide power for the rotation of the driving roller, the rotating mechanism includes a servo motor fixedly installed on one side of the body. The end of the output shaft of the servo motor is fixedly connected to a driving bevel gear. One side of the upper end of the driving bevel gear is meshed with a transmission bevel gear. The transmission bevel gear is fixedly connected to one end of the driving roller.

[0009] Preferably, in order to provide power for the rotation of the spiral feeding rod, the power mechanism includes a fixing frame fixedly connected to one side of the lower end of the body. A motor is fixedly installed inside the fixing frame. The end of the output shaft of the motor penetrates through one side of the body and is fixedly connected to one end of the spiral feeding rod.

[0010] Preferably, in order to open and close the discharge port, an equipment bin is arranged at the lower end of the body. An electric telescopic rod is fixedly installed inside the equipment bin. The telescopic end of the electric telescopic rod is fixedly connected to a baffle. The baffle penetrates through the inner wall of the other end of the equipment bin and is arranged in the discharge port. The periphery of the baffle is respectively abutted against the inner wall of the periphery of the discharge port.

[0011] Preferably, in order to facilitate observing the water volume inside the body, a viewing window is arranged on one side of the body. A scale mark is arranged on the viewing window. A controller is arranged on the other side of the body.

[0012] Preferably, in order to close the feed inlet and the observation port when the body is not in use, cover plates are correspondingly arranged at the upper ends of the feed inlet and the observation port. The two cover plates are respectively arranged at the two sides of the upper end of the body. Handles are fixed in the middle of the upper ends of the two cover plates.

[0013] Preferably, in order to prevent the two cover plates from shifting in position at the upper end of the body, blocks are fixed at the four corners of the lower ends of the two cover plates. Eight clamping grooves are opened at the upper end of the body. The eight blocks are respectively inserted into the corresponding eight clamping grooves.

[0014] Compared with the prior art, the beneficial effects of the present utility model are as follows:

[0015] 1. By using the rotating mechanism and the pressing plate, a structure can be formed to press the activated carbon into the water, enabling the activated carbon added to the floating carbon removal device to be quickly pressed into the water for screening, thereby quickly removing the floating carbon in the activated carbon, effectively improving the working efficiency of the floating carbon removal device, and increasing the removal efficiency of the floating carbon by the floating carbon removal device;

[0016] 2. By using components such as the inclined guide plate, conical guide groove, and spiral feeding rod, the activated carbon after removing the floating carbon can be conveyed into the conical guide groove. When the set amount of activated carbon in the floating carbon removal device is screened, the activated carbon in the floating carbon removal device is discharged, effectively improving the convenience of the floating carbon removal device;

[0017] In summary, the present utility model can form a feeding structure that quickly presses the activated carbon into the water, quickly presses the activated carbon added to the floating carbon removal device into the water, enables the floating carbon in the activated carbon to be quickly removed, increases the removal efficiency of the floating carbon by the floating carbon removal device, and at the same time can more conveniently discharge the activated carbon after removing the floating carbon from the floating carbon removal device, effectively improving the convenience of the floating carbon removal device and effectively improving the working efficiency of the floating carbon removal device. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 It is the body connection structure diagram of the feeding mechanism for the floating carbon removal device of the water purification activated carbon proposed by the present utility model;

[0019] Figure 2 It is the schematic diagram of the internal structure of the body of the feeding mechanism for the floating carbon removal device of the water purification activated carbon proposed by the present utility model;

[0020] Figure 3 It is the enlarged view of part A of the feeding mechanism for the floating carbon removal device of the water purification activated carbon proposed by the present utility model;

[0021] Figure 4 It is the enlarged view of part B of the feeding mechanism for the floating carbon removal device of the water purification activated carbon proposed by the present utility model.

[0022] In the figure: 1 body, 2 controller, 3 visual window, 4 feed inlet, 5 observation port, 6 cover plate, 7 handle, 8 fixture block, 9 servo motor, 10 driving bevel gear, 11 driven bevel gear, 12 driving roller, 13 pressing plate, 14 inclined guide plate, 15 conical guide groove, 16 fixing frame, 17 motor, 18 spiral feeding rod, 19 discharge port, 20 equipment bin, 21 electric telescopic rod, 22 baffle, 23 vertical plate. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0023] Next, in combination with the accompanying drawings in the embodiments of the present invention, the technical solutions in the embodiments of the present invention will be clearly and completely described. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments.

[0024] Referring to Figures 1-4 , the feeding mechanism of the floating carbon removal device for purified activated carbon includes a body 1. On one side of the upper end of the body 1, a feeding port 4 is opened, and on the other side of the upper end of the body 1, an observation port 5 is opened. The body 1 is a device carrier for removing floating carbon in activated carbon during the activated carbon processing. Through the operation of each component in the body 1, the floating carbon in the activated carbon can be quickly removed, ensuring the processing quality of the activated carbon. Activated carbon can be added into the body 1 through the feeding port 4, and the quantity of the good activated carbon after removing the floating carbon in the body 1 can be observed through the observation port 5. Covers 6 are correspondingly arranged at the upper ends of the feeding port 4 and the observation port 5. The two covers 6 are respectively arranged on both sides of the upper end of the body 1. At the middle parts of the upper ends of the two covers 6, handles 7 are fixed. Through the handles 7, the movement of the covers 6 can be facilitated. The two covers 6 can respectively close the feeding port 4 and the observation port 5. When the body 1 is not in use, in order to prevent foreign matters and dust from entering the water in the body 1, the feeding port 4 and the observation port 5 can be closed through the two covers 6. At the four corners of the lower ends of the two covers 6, blocks 8 are fixed. Eight slots are opened at the upper end of the body 1. The eight blocks 8 are respectively inserted into the corresponding eight slots. When the two covers 6 are installed on both sides of the upper end of the body 1, the eight blocks 8 at the lower ends of the two covers 6 will be inserted into the corresponding eight slots. Through the structure of the eight blocks 8 and the eight slots, the installation positions of the two covers 6 on the upper end of the body 1 can be more accurate, and at the same time, the two covers 6 can be prevented from moving on the upper end of the body 1. A viewing window 3 is arranged on one side of the body 1, and a scale mark is arranged on the viewing window 3. Through the viewing window 3, the inside of the body 1 can be observed, and through the scale, the height of the water in the body 1 can be accurately observed. A controller 2 is arranged on the other side of the body 1. The controller 2 is connected to the supporting components, which is convenient for stable operation and can set programs. Through the controller 2, the operation of each component in the body 1 can be controlled.

[0025] Referring to Figure 2 , 3, a rotating mechanism is provided on one side of the body 1. A driving roller 12 is provided on the rotating mechanism. The driving roller 12 is arranged at the upper part on one side inside the body 1. One end of the driving roller 12 is rotatably sleeved on the inner wall on one side of the body 1. The operation of the rotating mechanism can be controlled by the controller 2. The operation of the rotating mechanism will drive the driving roller 12 to rotate. The driving roller 12 is correspondingly arranged below the feeding port 4. The other end of the driving roller 12 is rotatably connected to a vertical plate 23. The vertical plate 23 is fixedly connected to the middle of the upper end inside the body 1. The vertical plate 23 is used to support the other end of the driving roller 12. The driving roller 12 can be kept rotating stably inside the body 1 through the vertical plate 23. A pressing plate 13 is fixed on one side of the driving roller 12. The rotation of the driving roller 12 will drive the pressing plate 13 to flip. When activated carbon is added into the body 1 through the feeding port 4, in order to improve the feeding efficiency of the activated carbon, the driving roller 12 can be used to drive the pressing plate 13 to operate. After the pressing plate 13 presses all the activated carbon into the water inside the body 1 for a certain period of time, the pressing plate 13 operates back, so that the activated carbon can be fed quickly, making the floating carbon in the activated carbon float on the water surface and the good activated carbon sink into the water.

[0026] Refer to Figure 1 , 2 , 3, the rotating mechanism includes a servo motor 9 fixedly installed on one side of the body 1. The end of the output shaft of the servo motor 9 is fixedly connected to a driving bevel gear 10. The servo motor 9 is connected to supporting components, which is convenient for stable operation and can set programs for automatic operation. The operation of the servo motor 9 can be controlled by the controller 2. The operation of the servo motor 9 will drive the driving bevel gear 10 to rotate. One side of the upper end of the driving bevel gear 10 meshes with a transmission bevel gear 11. The transmission bevel gear 11 is fixedly connected to one end of the driving roller 12. The rotation of the driving bevel gear 10 will drive the transmission bevel gear 11 to rotate. The transmission bevel gear 11 will drive the driving roller 12 to rotate. The rotation of the driving roller 12 will drive the pressing plate 13 to flip. When activated carbon is added into the body 1 through the feeding port 4, in order to improve the feeding efficiency of the activated carbon, the driving roller 12 can be used to drive the pressing plate 13 to operate. After the pressing plate 13 presses all the activated carbon into the water inside the body 1 for a certain period of time, the pressing plate 13 operates back, so that the activated carbon can be fed quickly, making the floating carbon in the activated carbon float on the water surface and the good activated carbon sink into the water.

[0027] Refer to Figure 1 , 2, a tilt guide plate 14 is correspondingly arranged below the pressing plate 13. The tilt guide plate 14 is arranged at one side of the lower end inside the machine body 1. On the other side of the lower end of the machine body 1, a conical guide trough 15 is arranged. The conical guide trough 15 is correspondingly arranged below the other side of the tilt guide plate 14. The activated carbon that sinks into the water will fall on the tilt guide plate 14, and the tilt guide plate 14 can guide the activated carbon into the conical guide trough 15. The conical guide trough 15 is designed in a conical shape, which can guide the activated carbon falling into the conical guide trough 15 to the lowest position inside the conical guide trough 15. On one side of the lower end of the machine body 1, a power mechanism is provided. A spiral feeding rod 18 is arranged on the power mechanism. The spiral feeding rod 18 is arranged inside the conical guide trough 15. The two ends of the spiral feeding rod 18 are respectively rotatably connected to the opposite inner walls of the conical guide trough 15. The operation of the power mechanism can be controlled through the controller 2. The operation of the power mechanism will drive the spiral feeding rod 18 to rotate. An external propeller is arranged on the surface of the spiral feeding rod 18. The rotation of the spiral feeding rod 18 can push the activated carbon at the bottom inside the conical guide trough 15. On the other side of the lower end inside the conical guide trough 15, a discharge port 19 is opened. Through the discharge port 19, the activated carbon after removing the floating carbon inside the machine body 1 can be discharged. When the machine body 1 discharges the activated carbon, the operation of the power mechanism is controlled through the controller 2. The power mechanism controls the rotation of the spiral feeding rod 18. The spiral feeding rod 18 pushes the activated carbon inside the conical guide trough 15 into the discharge port 19 for discharge. The power mechanism includes a fixed frame 16 fixedly connected to one side of the lower end of the machine body 1. A motor 17 is fixedly installed inside the fixed frame 16. The end of the output shaft of the motor 17 penetrates through one side of the machine body 1 and is fixedly connected to one end of the spiral feeding rod 18. The motor 17 can be fixedly installed on the machine body 1 through the fixed frame 16. The motor 17 is connected to the supporting components, which is convenient for stable operation, can set programs and operate automatically. The operation of the motor 17 will drive the spiral feeding rod 18 to rotate. The spiral feeding rod 18 pushes the activated carbon inside the conical guide trough 15 into the discharge port 19 for discharge.

[0028] Refer to Figure 1 , 2, a device bin 20 is provided at the lower end of the body 1. An electric telescopic rod 21 is fixedly installed in the device bin 20. The device bin 20 is a space for separately storing the electric telescopic rod 21. The electric telescopic rod 21 is connected to supporting components, facilitating stable operation, capable of setting programs, and controlled by a controller 2 to operate. The telescopic end of the electric telescopic rod 21 is fixedly connected to a baffle 22. The baffle 22 penetrates through the inner wall of the other end of the device bin 20 and is arranged in the discharge port 19. The periphery of the baffle 22 abuts against the inner wall of the periphery of the discharge port 19 respectively. The operation of the electric telescopic rod 21 will drive the baffle 22 to move. The baffle 22 is used to open and close the discharge port 19. When the body 1 needs to discharge activated carbon, the controller 2 controls the operation of the electric telescopic rod 21. The electric telescopic rod 21 drives the baffle 22 to move, and the baffle 22 opens the discharge port 19. Thus, the activated carbon can be pushed into the discharge port 19 and discharged by the rotation of the spiral feeding rod 18.

[0029] In the present utility model, during use: remove the cover plate 6 at the upper end of the feed inlet 4, add activated carbon into the body 1 through the feed inlet 4, control the operation of the servo motor 9 by the controller 2. The servo motor 9 drives the driving bevel gear 10 to rotate. The driving bevel gear 10 pushes the driven bevel gear 11 to rotate. The driven bevel gear 11 drives the driving roller 12 to rotate. The driving roller 12 drives the pressing plate 13 to operate. After the pressing plate 13 presses all the activated carbon into the water in the body 1 for a certain time, the pressing plate 13 operates backward. Thus, the activated carbon can be quickly fed, enabling the floating carbon in the activated carbon to float on the water surface and the good activated carbon to sink into the water.

[0030] The above is only the preferred specific implementation manner of the present utility model, but the protection scope of the present utility model is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present utility model, according to the technical solution of the present utility model and its inventive concept, makes equivalent replacements or changes, and all should be covered within the protection scope of the present utility model.

Claims

1. Feeding mechanism for floating carbon removal device of water purification activated carbon, comprising a body (1), characterized in that: One side of the body (1) is provided with a rotating mechanism, and one side of the lower end of the body (1) is provided with a power mechanism; One side of the upper end of the body (1) is provided with a feeding port (4), and the other side of the upper end of the body (1) is provided with an observation port (5). A driving roller (12) is arranged on the rotating mechanism. The driving roller (12) is arranged at the upper part of one side inside the body (1). One end of the driving roller (12) is rotatably sleeved on the inner wall of one side of the body (1), and the other end of the driving roller (12) is rotatably connected with a vertical plate (23). The vertical plate (23) is fixedly connected to the middle of the upper end inside the body (1). One side of the driving roller (12) is fixed with a pressing plate (13). A tilted feeding plate (14) is correspondingly arranged below the pressing plate (13). The tilted feeding plate (14) is arranged at one side of the lower end inside the body (1). The other side of the lower end of the body (1) is provided with a conical feeding groove (15). The conical feeding groove (15) is correspondingly arranged below the other side of the tilted feeding plate (14). A spiral feeding rod (18) is arranged on the power mechanism. The spiral feeding rod (18) is arranged in the conical feeding groove (15). The two ends of the spiral feeding rod (18) are respectively rotatably connected to the opposite inner walls of the conical feeding groove (15). A discharge port (19) is opened on the other side of the lower end inside the conical feeding groove (15).

2. The feeding mechanism for the floating carbon removal device of the water purification activated carbon according to claim 1, characterized in that: The rotating mechanism includes a servo motor (9) fixedly installed on one side of the body (1). The end of the output shaft of the servo motor (9) is fixedly connected with a driving bevel gear (10). One side of the upper end of the driving bevel gear (10) is meshed with a transmission bevel gear (11). The transmission bevel gear (11) is fixedly connected to one end of the driving roller (12).

3. The feeding mechanism for the floating carbon removal device of the water purification activated carbon according to claim 1, characterized in that: The power mechanism includes a fixing frame (16) fixedly connected to one side of the lower end of the body (1). A motor (17) is fixedly installed inside the fixing frame (16). The end of the output shaft of the motor (17) penetrates through one side of the body (1) and is fixedly connected to one end of the spiral feeding rod (18).

4. The feeding mechanism for the floating carbon removal device of the water purification activated carbon according to claim 1, wherein: The lower end of the body (1) is provided with an equipment bin (20). An electric telescopic rod (21) is fixedly installed inside the equipment bin (20). The telescopic end of the electric telescopic rod (21) is fixedly connected with a baffle (22). The baffle (22) penetrates through the inner wall of the other end of the equipment bin (20) and is arranged in the discharge port (19). The periphery of the baffle (22) is respectively abutted against the inner wall of the periphery of the discharge port (19).

5. The feeding mechanism for the floating carbon removal device of the water purification activated carbon according to claim 1, characterized in that: One side of the body (1) is provided with a visual window (3). A scale mark is arranged on the visual window (3). The other side of the body (1) is provided with a controller (2).

6. The feeding mechanism for the floating carbon removal device of the water purification activated carbon according to claim 1, characterized in that: Cover plates (6) are correspondingly arranged at the upper ends of the feeding port (4) and the observation port (5). The two cover plates (6) are respectively arranged at the two sides of the upper end of the body (1). Handles (7) are fixedly installed in the middle of the upper ends of the two cover plates (6).

7. The feeding mechanism for the floating carbon removal device of the water purification activated carbon, according to claim 6, is characterized in that: Blocks (8) are fixedly installed at the four corners of the lower ends of the two cover plates (6). Eight clamping grooves are opened at the upper end of the body (1). The eight blocks (8) are respectively inserted into the corresponding eight clamping grooves.