Activated carbon adding device

By designing a vibrating screen and screw system, the problems of impurity removal and uneven feeding in traditional activated carbon feeding devices have been solved, achieving efficient screening and precise feeding of activated carbon, and ensuring treatment effect and stability.

CN223575702UActive Publication Date: 2025-11-21JIANGSU TIANCHUN ENVIRONMENTAL PROTECTION TECH CO LTD
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Patent Information

Application Number
CN202423190299.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-24
Publication Date
2025-11-21
Estimated Expiration
2034-12-24

AI Technical Summary

Technical Problem

Traditional activated carbon feeding devices lack a screening structure, which makes it impossible to effectively remove impurities and clumps of activated carbon. This can easily lead to uneven feeding or blockage, and the lack of precise feeding control makes it difficult to meet the stringent requirements of different processing technologies.

Method used

A screen structure driven by a vibration motor and a screw feeding system driven by a motor were designed. The screen structure is vibrated and the screw feeder pushes the activated carbon to achieve preliminary screening and precise feeding.

Benefits of technology

It effectively removes impurities and lumps, ensuring uniform activated carbon quality, preventing material blockage, and achieving stable and precise addition of activated carbon to meet the needs of different processing technologies.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an activated carbon adding device, which comprises a blanking device, a feeding device, a feeding device, a feeding device, a feeding device and a feeding device, wherein the outer wall of the top of the blanking device is fixedly connected with the feeding device; the utility model relates to the technical field of activated carbon adding, which is characterized in that a vibrating motor drives a cam through a rotating rod by virtue of a blanking device and a feeding device, so that a supporting plate enables a screen to continuously and regularly vibrate through the cooperative effect of a sliding rod and an extension spring, and impurities and cakes in activated carbon materials can be effectively removed; meanwhile, compared with a traditional static screen or a simple vibration mode, more activated carbon materials can be treated within a shorter time, the design that a motor drives a screw rod to rotate to push activated carbon is adopted, the accurate control over the activated carbon discharging amount can be achieved, and the discharging efficiency is improved. Meanwhile, a discharging guide plate is arranged in the discharging barrel, so that a definite discharging direction is provided for the activated carbon.
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Description

TECHNICAL FIELD

[0001] The utility model relates to active carbon adds the technical field of investment, specifically relates to a kind of active carbon adds investment device. BACKGROUND

[0002] In many industrial production and environmental protection fields, activated carbon is widely used due to its excellent adsorption performance. Activated carbon can effectively adsorb harmful substances such as organic pollutants and heavy metal ions in water, and can also adsorb harmful gases, odors and some small particulate matter, improving air quality. With the continuous expansion of the application scenarios of activated carbon and the increasing demand for treatment effect, the performance of the activated carbon feeding device becomes increasingly critical.

[0003] Traditional activated carbon feeding devices often have many shortcomings. In the material feeding link, no screening structure is provided or a simple static screen is used, which cannot effectively remove impurities and caked activated carbon. Once it enters the discharging device, it is easy to cause uneven discharging or even block the discharging channel, which seriously affects the stability and continuity of activated carbon feeding. Moreover, the static screen is prone to screen hole blockage and low efficiency. In addition, during the activated carbon feeding process, the traditional device lacks precise discharging amount control means. Due to the inability to accurately adjust the feeding speed and dosage of activated carbon, it is difficult to meet the strict requirements of different treatment processes, which may result in excessive activated carbon feeding, causing resource waste; or insufficient feeding, resulting in a significant reduction in treatment effect. SUMMARY

[0004] To solve the technical problems of the prior art, the utility model adopts the technical scheme of an activated carbon feeding device, which includes a discharging device, and the top outer wall of the discharging device is fixedly connected with a feeding device. The feeding device includes a feeding hopper, and the outer wall of the side of the feeding hopper is symmetrically provided with a chute. The inner wall of the chute is slidably connected with a sliding plate, and the outer wall of the sliding plate is fixedly connected with a screen. The inner wall of the sliding plate is symmetrically slidably connected with a slide rod, and the outer wall of the top of the slide rod is fixedly connected with a limiting plate. The outer wall of the bottom of the slide rod is fixedly connected with a support plate, and the outer wall of the top of the support plate is symmetrically fixedly connected with a tension spring. The outer wall of the side of the feeding hopper is rotatably connected with a rotating rod, and the outer wall of the rotating rod is fixedly connected with a cam. The outer wall of the side of the rotating rod away from the feeding hopper is rotatably connected with a vibration motor.

[0005] Preferably, the outer wall of the bottom of the vibrating motor is fixedly connected with the outer wall of the top of the support plate, the outer wall of the cam is slidably connected with the outer wall of the top of the support plate and the outer wall of the bottom of the sliding plate, the outer wall of the side of the support plate is fixedly connected with the outer wall of the side of the feeding hopper, and the outer wall of the screen is slidably connected with the inner wall of the feeding hopper.

[0006] Preferably, the screen is arranged in the interior of the feeding hopper, and the tensile spring is arranged outside the sliding rod, so that the screen arranged in the interior of the feeding hopper plays a preliminary screening role, and the screen can screen the activated carbon material and intercept impurities or agglomerated material that do not meet the particle size requirement.

[0007] Preferably, the discharging device comprises a storage tank, an outer wall of the top of the storage tank is provided with a feeding port, an outer wall of the bottom of the storage tank is fixedly connected with a discharging cylinder, an inner wall of the discharging cylinder is slidably connected with a spiral rod, an outer wall of the bottom of the spiral rod is rotatably connected with a motor, an outer wall of the side of the storage tank is fixedly connected with a support frame, and an inner wall of the side of the discharging cylinder is fixedly connected with a discharging guide plate.

[0008] Preferably, an outer wall of the bottom of the motor is fixedly connected with an outer wall of the bottom of the support frame, the inner part of the discharging guide plate is communicated with the inner part of the discharging cylinder, the motor rotates to drive the spiral rod connected with the inner wall of the discharging cylinder to slide and rotate, and the activated carbon in the storage tank is pushed downwards along the discharging cylinder, and in the process, the discharging guide plate fixedly connected with the inner wall of the side of the discharging cylinder can guide the activated carbon to be discharged smoothly in a specific direction.

[0009] Preferably, an outer wall of the bottom of the feeding hopper is fixedly connected with an outer wall of the bottom of the storage tank, and the feeding hopper is arranged above the feeding port, so that the activated carbon is pushed downwards along the discharging cylinder in the process, and in the process, the discharging guide plate fixedly connected with the inner wall of the side of the discharging cylinder can guide the activated carbon to be discharged smoothly in a specific direction.

[0010] The beneficial effects of the utility model are as follows:

[0011] 1.The utility model discloses a feeding device is set up, with the help vibration motor passes through the rotation bar and drives the cam, makes the support plate through the slide bar and the stretch spring and the slide bar cooperation's synergistic effect, makes the screen net can continuously, regularly vibrate, the built-in screen net structure can effectively remove the impurity and the agglomerate in activated carbon material, guarantees the activated carbon quality of entering the discharging device is uniform and meets the particle size requirement, can prevent the problem such as the discharging blockage or unevenness caused by impurity or agglomerate, and simultaneously this vibration mode can significantly improve the screening efficiency, compared with traditional static screen or simple vibration mode, can process more activated carbon material in shorter time.

[0012] 2.The utility model discloses a discharging device is set up, adopts the design of motor drive screw rod rotation and pushes and post the activated carbon, can realize the accurate control of activated carbon discharging amount, through the adjustment of motor's rotational speed, can accurately adjust the activated carbon's adding speed and dosage, satisfies the strict requirement of different processing technology to activated carbon adding amount, and simultaneously the discharge guide plate that sets up in the discharging cylinder provides the definite discharge direction for activated carbon, makes it can stably according to the preset path outward adding. DRAWINGS

[0013] Figure 1 It is the structure schematic diagram of the utility model;

[0014] Figure 2 It is the structure schematic diagram of the utility model inside;

[0015] Figure 3 It is the structure schematic diagram of the utility model storage tank;

[0016] Figure 4 It is the structure schematic diagram of the utility model discharging cylinder;

[0017] Figure 5 It is the structure schematic diagram of the utility model feeding device;

[0018] Figure 6 It is the structure schematic diagram of the utility model feeding hopper;

[0019] Figure 7 It is the structure schematic diagram of the utility model Figure 6 A place;

[0020] Figure 8 It is the structure schematic diagram of the utility model screen net.

[0021] As shown in the figure: 1, the blanking device; 11, the storage tank; 12, the feed inlet; 13, the blanking cylinder; 14, the screw rod; 15, the motor; 16, the support frame; 17, the discharge guide plate; 2, the feeding device; 21, the feeding hopper; 22, the chute; 23, the sliding plate; 24, the screen; 25, the sliding rod; 26, the limiting plate; 27, the supporting plate; 28, the tension spring; 29, the rotating rod; 291, the cam; 292, the vibration motor. DETAILED DESCRIPTION

[0022] The embodiments of the present application will be further described below in conjunction with the drawings and specific embodiments. The embodiments of the present application are given for the purpose of illustration and description, and are not exhaustive or limit the present application to the disclosed form. Many modifications and variations will be apparent to those of ordinary skill in the art. The embodiments are chosen and described in order to better illustrate the principles and practical application of the present application, and to enable those of ordinary skill in the art to understand the present application so as to design various embodiments with various modifications suitable for specific purposes.

[0023] Embodiment:

[0024] Please refer to Figure 1 - Figure 8 The present application provides a technical solution: an activated carbon feeding device, comprising: a blanking device 1, the outer wall of the top of the blanking device 1 is fixedly connected with a feeding device 2; the feeding device 2 comprises a feeding hopper 21, the outer wall of the side of the feeding hopper 21 is symmetrically provided with a chute 22, the inner wall of the chute 22 is slidably connected with a sliding plate 23, the outer wall of the sliding plate 23 is fixedly connected with a screen 24, the inner wall of the sliding plate 23 is symmetrically slidably connected with a sliding rod 25, the outer wall of the top of the sliding rod 25 is fixedly connected with a limiting plate 26, the outer wall of the bottom of the sliding rod 25 is fixedly connected with a supporting plate 27, the outer wall of the top of the supporting plate 27 is symmetrically fixedly connected with a tension spring 28, the outer wall of the side of the feeding hopper 21 is rotatably connected with a rotating rod 29, the outer wall of the rotating rod 29 is fixedly connected with a cam 291, the outer wall of the side of the rotating rod 29 away from the feeding hopper 21 is rotatably connected with a vibration motor 292.

[0025] The outer wall of the bottom of the vibration motor 292 is fixedly connected with the outer wall of the top of the support plate 27, the outer wall of the cam 291 is slidably connected with the outer wall of the top of the support plate 27 and the outer wall of the bottom of the sliding plate 23, the outer wall of the side of the support plate 27 away from the support plate 27 is fixedly connected with the outer wall of the bottom of the sliding plate 23, the outer wall of the support plate 27 is fixedly connected with the outer wall of the side of the feeding hopper 21, the outer wall of the screen 24 is slidably connected with the inner wall of the feeding hopper 21, and the vibration motor 292 drives the rotating rod 29 to rotate when working, the cam 291 fixed on the rotating rod 29 also rotates, the outer wall of the cam 291 is slidably connected with the outer wall of the top of the support plate 27 and the outer wall of the bottom of the sliding plate 23, the support plate 27 is connected with the sliding plate 23 through the tensile spring 28, and the rotation of the cam 291 periodically lifts or lowers the support plate 27 and the sliding plate 23 connected with the support plate 27, so that the screen 24 slides up and down on the inner wall of the feeding hopper 21.

[0026] The screen 24 is arranged in the interior of the feeding hopper 21, and the tensile spring 28 is arranged outside the sliding rod 25, the screen 24 arranged in the interior of the feeding hopper 21 plays a preliminary screening role, the screen 24 can screen the activated carbon material, and intercept impurities or caked materials that do not meet the particle size requirements.

[0027] The discharging device 1 comprises a storage tank 11, an outer wall of the top of the storage tank 11 is provided with a feeding port 12, an outer wall of the bottom of the storage tank 11 is fixedly connected with a discharging cylinder 13, an inner wall of the discharging cylinder 13 is slidably connected with a spiral rod 14, an outer wall of the bottom of the spiral rod 14 is rotatably connected with a motor 15, an outer wall of the side of the storage tank 11 is fixedly connected with a support frame 16, and an inner wall of the side of the discharging cylinder 13 is fixedly connected with a discharging guide plate 17.

[0028] An outer wall of the bottom of the motor 15 is fixedly connected with an outer wall of the bottom of the support frame 16, an interior of the discharging guide plate 17 is communicated with an interior of the discharging cylinder 13, the motor 15 drives the spiral rod 14 connected with the motor 15 and located on the inner wall of the discharging cylinder 13 to slide and rotate, and activated carbon in the storage tank 11 is pushed downwards along the discharging cylinder 13, in this process, the discharging guide plate 17 fixed on the inner wall of the side of the discharging cylinder 13 can guide the activated carbon to be smoothly discharged in a specific direction.

[0029] An outer wall of the bottom of the feeding hopper 21 is fixedly connected with an outer wall of the bottom of the storage tank 11, and the feeding hopper 21 is arranged above the feeding port 12, activated carbon enters the storage tank 11 through the feeding port 12 on the top of the storage tank 11 and is stored in the interior of the storage tank 11.

[0030] Working principle: first, the activated carbon material from the outside into the hopper 21 of the feeding device 2, at this time, the screen 24 set in the hopper 21 inside the primary screening function, screen 24 can be screened, intercepting impurities or caking material that does not meet the particle size requirements, to ensure that the quality and state of the activated carbon into the subsequent discharge device 1 is more appropriate.

[0031] The side wall of the hopper 21 is provided with a vibration motor 292, which drives the rotating rod 29 connected thereto to rotate when working. The cam 291 fixed on the rotating rod 29 also rotates. Since the outer wall of the cam 291 is in sliding connection with the outer wall of the top of the supporting plate 27 and the outer wall of the bottom of the sliding plate 23, and the sliding plate 23 is connected with the limiting plate 26 and the supporting plate 27 through the sliding connection of the sliding rod 25, and the supporting plate 27 is also connected with the sliding plate 23 through the tension spring 28, under the cooperation of the tension spring 28, the rotation of the cam 291 will periodically lift or lower the supporting plate 27 and the sliding plate 23 connected therewith. When rotating to the most convex point, the tension spring 28 is stretched, and at the same time the sliding plate 23 moves upward along the sliding groove 22. When the cam 291 rotates to the lowest point, the tension spring 28 contracts, driving the sliding plate 23 to move downward along the sliding groove 22. With the rotation of the cam 291, the screen 24 slides up and down on the inner wall of the hopper 21, realizing the vibration screening effect. The tension spring 28 plays a buffering and auxiliary resetting role of the screen 24, so that the screen 24 can continuously and regularly vibrate, ensuring the smooth progress of the screening process.

[0032] The activated carbon after screening passes through the bottom of the hopper 21 and enters the storage tank 11 through the feed port 12 at the top of the storage tank 11 for storage.

[0033] When the activated carbon needs to be added, the motor 15 is started, which drives the screw rod 14 connected thereto and located on the inner wall of the discharge cylinder 13 to slide and rotate, pushing the activated carbon in the storage tank 11 downward along the discharge cylinder 13. In this process, the discharge guide plate 17 fixed on the inner wall of the side of the discharge cylinder 13 can guide the activated carbon to be discharged smoothly in a specific direction. The discharge guide plate 17 is in communication with the inside of the discharge cylinder 13, ensuring that the activated carbon can be pushed out according to the set path, and finally realizing the purpose of stable and orderly discharging of the activated carbon from the discharge device 1 to meet the subsequent demand for adding activated carbon. At the same time, the supporting frame 16 provides stable support for the adding device.

[0034] Obviously, the described embodiments are only a part of the embodiments of the present application, not all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art and related fields without creative labor shall belong to the protection scope of the present application. The structures, devices and operation methods not specifically described and explained in the present application, if not specially described and limited, are implemented according to the conventional means in the art.

Claims

1. An activated carbon dosing device characterized by comprising: Include: Blanking device (1), the outer wall of the top of blanking device (1) is fixedly connected with feeding device (2); The feeding device (2) comprises a feeding hopper (21), the outer wall of the side of the feeding hopper (21) is symmetrically provided with a chute (22), the inner wall of the chute (22) is slidably connected with a sliding plate (23), the outer wall of the sliding plate (23) is fixedly connected with a screen (24), the inner wall of the sliding plate (23) is symmetrically slidably connected with a slide rod (25), the outer wall of the top of the slide rod (25) is fixedly connected with a limiting plate (26), the outer wall of the bottom of the slide rod (25) is fixedly connected with a supporting plate (27), the outer wall of the top of the supporting plate (27) is symmetrically fixedly connected with a tension spring (28), the outer wall of the side of the feeding hopper (21) is rotatably connected with a rotating rod (29), the outer wall of the rotating rod (29) is fixedly connected with a cam (291), the outer wall of the side, away from the feeding hopper (21), of the rotating rod (29) is rotatably connected with a vibration motor (292).

2. The activated carbon dosing device according to claim 1, characterized in that: The outer wall of the bottom of the vibration motor (292) is fixedly connected with the outer wall of the top of the supporting plate (27), the outer wall of the cam (291) is slidably connected with the outer wall of the top of the supporting plate (27) and the outer wall of the bottom of the sliding plate (23), the outer wall, away from the supporting plate (27), of the tension spring (28) is fixedly connected with the outer wall of the bottom of the sliding plate (23), the outer wall of the supporting plate (27) is fixedly connected with the outer wall of the side of the feeding hopper (21), and the outer wall of the screen (24) is slidably connected with the inner wall of the feeding hopper (21).

3. The activated carbon dosing device according to claim 1, characterized in that: The screen (24) is arranged in the interior of the feeding hopper (21), and the tension spring (28) is arranged outside the slide rod (25).

4. The activated carbon dosing device of claim 1, wherein: The blanking device (1) comprises a storage tank (11), the outer wall of the top of the storage tank (11) is provided with a feeding port (12), the outer wall of the bottom of the storage tank (11) is fixedly connected with a blanking cylinder (13), the inner wall of the blanking cylinder (13) is slidably connected with a screw rod (14), the outer wall of the bottom of the screw rod (14) is rotatably connected with a motor (15), the outer wall of the side of the storage tank (11) is fixedly connected with a supporting frame (16), and the inner wall of the side of the blanking cylinder (13) is fixedly connected with a discharging guide plate (17).

5. An activated carbon dosing device according to claim 4, characterized in that: The outer wall of the bottom of the motor (15) is fixedly connected with the outer wall of the bottom of the supporting frame (16), and the interior of the discharging guide plate (17) is communicated with the interior of the blanking cylinder (13).

6. The activated carbon dosing device of claim 1, wherein: The outer wall of the bottom of the feeding hopper (21) is fixedly connected with the outer wall of the bottom of the storage tank (11), and the feeding hopper (21) is arranged above the feeding port (12).