Quantitative packaging equipment for activated carbon

The material guiding assembly, which combines an eccentric motor and a guide rod, solves the problem of activated carbon granules accumulating in the equipment, achieving uniform distribution and flow of activated carbon granules, and improving the accuracy and efficiency of quantitative packaging.

CN223467350UActive Publication Date: 2025-10-24福建鑫恒碳业有限公司
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Patent Information

Application Number
CN202422202040.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-09
Publication Date
2025-10-24
Estimated Expiration
2034-09-09

AI Technical Summary

Technical Problem

Differences in the density and flowability of activated carbon granules can cause the material to accumulate during equipment conveying or output, leading to blockages and affecting the accuracy of quantitative packaging.

Method used

The material guiding assembly, which combines an eccentric motor and a guide rod, precisely controls the opening and closing time of the discharge pipe through a control module. During the discharge process, it agitates the activated carbon particles to prevent accumulation and automatically resolve blockages.

Benefits of technology

This achieves uniform distribution and flow of activated carbon particles, improves the accuracy of quantitative packaging, reduces errors, reduces manual intervention, and improves work efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an activated carbon quantitative packaging device which comprises a stock bin, a feeding device, a discharging pipe, a feeding device, a packaging device and a packaging device. The stock bin is used for containing activated carbon particles, and a discharging pipe is arranged below the stock bin. The device further comprises a quantifying device for controlling quantitative output of the discharging pipe, the quantifying device comprises a material guiding assembly arranged in the stock bin, and the material guiding assembly comprises a support welded in the stock bin, a guiding rod arranged on the support in a hoisting mode and an eccentric motor arranged at the end, facing the support, of the guiding rod. The other end of the guide rod is inserted into the discharging pipe, and the eccentric motor, the switch assembly and the control module are electrically connected. The control module is matched with the visual sensor, the opening and closing time of the discharging pipe is accurately controlled, when the discharging pipe is opened, the eccentric motor and the material guide rod work in a matched mode, smooth discharging is achieved, and the device can improve the accuracy of quantitative packaging and reduce errors by keeping the discharging smoothness.
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Description

TECHNICAL FIELD

[0001] The utility model relates to a kind of activated carbon quantitative packaging equipment, belong to packaging equipment technical field. BACKGROUND

[0002] Activated carbon quantitative packaging equipment is a kind of mechanical equipment for automatically packaging activated carbon according to specific weight or volume. The device is widely used in chemical industry, environmental protection, food, pharmaceutical industry, etc. Its main function is to transport activated carbon from the storage container to the packaging bag or container, and ensure the weight or volume of each packaging is accurate and consistent.

[0003] Due to the differences in density and flowability of activated carbon particles, these differences may cause material accumulation during equipment transportation or output. When activated carbon particles have large density or poor flowability, they are prone to accumulate in the output port or conveying pipeline, causing material flow to be blocked, and even temporary blockage. Blockage will cause activated carbon to not pass through the device smoothly, thereby affecting the accuracy of quantitative, leading to uneven packaging or increased error. INVENTION CONTENTS

[0004] In view of the deficiencies of the prior art, the utility model aims to provide an activated carbon quantitative packaging equipment to solve the problems of the prior art.

[0005] In order to achieve the above-mentioned purpose, the utility model is realized by the following technical scheme:

[0006] An activated carbon quantitative packaging equipment, comprising:

[0007] A stock bin for storing activated carbon particles, a discharge pipe is provided below the stock bin, and the activated carbon particles are discharged through the discharge pipe;

[0008] It also includes a quantitative device for controlling the quantitative output of the discharge pipe, which includes:

[0009] A switch assembly is arranged inside the discharge pipe, and a control module is arranged to control the switch assembly;

[0010] A guide assembly is arranged inside the stock bin, which includes a bracket welded inside the stock bin, a guide rod suspended on the bracket, and an eccentric motor arranged at one end of the guide rod towards the bracket. The other end of the guide rod is inserted into the inside of the discharge pipe, and the eccentric motor, switch assembly and control module are electrically connected;

[0011] The control module and the switch assembly cooperate to open / close the discharge pipe;

[0012] Wherein, the discharge pipe is opened, the eccentric motor is opened through the control assembly, and the activated carbon particles in the discharge pipe and the bin connecting area are stirred with the guide rod.

[0013] As a further improvement, the switch assembly includes a baffle rotatingly installed inside the discharge pipe, and a drive motor driving the baffle to rotate by 90 degrees, the drive motor being electrically connected with the control module.

[0014] As a further improvement, the support includes at least two rod members, a plate body connecting the rod members, the rod members being welded and fixed to the inner wall of the bin at the end away from the plate body, the plate body being provided with a stepped through hole in the middle, the eccentric motor being inserted and fixed in the stepped through hole, and the guide rod being installed below the eccentric motor.

[0015] As a further improvement, the eccentric motor includes an eccentric wheel arranged at the output end, and the guide rod is threadedly and cooperatively installed on the eccentric wheel.

[0016] As a further improvement, the diameter of the through hole is greater than the diameter of the eccentric wheel by 2-4 mm.

[0017] As a further improvement, a mesh cover is arranged above the eccentric motor, and the mesh cover is fixed to the plate body at the bottom.

[0018] As a further improvement, a push piece is arranged at the junction area of the discharge pipe and the bin, the push piece is arranged on the side surface of the end of the guide rod along the axis, and the push piece has a shape with narrow sides and a wide middle part.

[0019] As a further improvement, a conveying device is arranged below the bin, and a storage container is placed above the conveying device.

[0020] The conveying device conveys the storage container below the discharge pipe, and the storage container receives the activated carbon particles output from the discharge pipe.

[0021] As a further improvement, a visual sensor is arranged on one side of the bin, the visual sensor is electrically connected with the control module, and the matching state of the storage container and the discharge pipe is monitored through the visual sensor.

[0022] As a further improvement, a material conveying device is arranged at the output end and connected to the bin, and the activated carbon particles are input into the bin.

[0023] The beneficial effects of the present application are as follows:

[0024] The eccentric motor and the guide rod are arranged, the activated carbon particles in the bin can be continuously stirred during the discharging process, and accumulation of the activated carbon particles in the discharge pipe due to large particle density or poor flowability is prevented.

[0025] The design of the material guiding assembly ensures uniform distribution and flow of activated carbon particles in the discharging pipe, and when a clogging tendency is detected, the clogging problem is automatically solved by agitation and vibration.

[0026] By cooperating with the visual sensor through the control module, the opening and closing time of the discharging pipe is accurately controlled, and when the discharging pipe is opened, the smooth discharging is realized by cooperating with the eccentric motor and the working of the material guiding rod. BRIEF DESCRIPTION OF DRAWINGS

[0027] In order to more clearly illustrate the technical scheme of the embodiments of the present application, the following will briefly introduce the drawings needed to be used in the embodiments, and it should be understood that the following drawings only show some embodiments of the present application, and therefore should not be regarded as limiting the scope, and for those skilled in the art, other related drawings can also be obtained without creative labor on the basis of these drawings.

[0028] Figure 1 is a side view structural schematic diagram of an activated carbon quantitative packaging equipment according to the present application.

[0029] Figure 2 is a local sectional structure schematic diagram of a material bin according to the present application.

[0030] Figure 3 is an enlarged structural schematic diagram of a material guiding assembly according to the present application.

[0031] Figure 4 is an enlarged structural schematic diagram of a material guiding assembly before assembly according to the present application.

[0032] Figure 5 is an exploded schematic diagram of a material guiding assembly according to the present application.

[0033] Figure 6 is a local sectional schematic diagram of a discharging pipe in a through state according to the present application.

[0034] Figure 7 is a local sectional schematic diagram of a discharging pipe in a closed state according to the present application.

[0035] Figure 8 is a module control schematic diagram of an activated carbon quantitative packaging equipment according to the present application.

[0036] 1, silo; 2, chassis; 2, activated carbon particles; 3, discharge pipe; 4, control module; 5, material guiding assembly; 51, support; 52, guide rod; 53, eccentric motor; 54, mesh cover; 55, paddle; 56, bolt; 61, baffle; 62, drive motor; 511, rod; 512, plate body; 513, through hole; 531, eccentric wheel; 6, conveying device; 7, storage container; 8, material conveying device; 9, visual sensor. DETAILED DESCRIPTION

[0037] In order to make the purpose, technical scheme and advantages of the embodiments of the present application clearer, the technical scheme in the embodiments of the present application will be described clearly and completely below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are part of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application. Therefore, the following detailed description of the embodiments of the present application provided in the drawings is not intended to limit the scope of the claimed present application, but only to represent selected embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.

[0038] In the description of the present application, the terms "first" and "second" are only for the purpose of description, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features defined as "first" and "second" can explicitly or implicitly include one or more of the features. In the description of the present application, the meaning of "multiple" is two or more, unless otherwise specifically limited.

[0039] Due to the differences in the density and flowability of activated carbon particles, these differences can cause the material to accumulate during the conveying or output process of the equipment. When the activated carbon particles have a large density or poor flowability, they are prone to accumulate in the output port or conveying pipeline, causing the material flow to be blocked, and even causing temporary blockage. Blockage can cause activated carbon to not pass through the equipment smoothly, thereby affecting the accuracy of the quantitative accuracy, causing uneven packaging or increased error. Therefore, a kind of activated carbon quantitative packaging equipment is designed to solve the above problems, and the specific scheme is as follows:

[0040] Reference Figures 1-4 , 8, an activated carbon quantitative packaging equipment, comprising:

[0041] A silo 1 stores activated carbon particles 2, and a discharge pipe 3 is arranged below the silo 1, and the activated carbon particles 2 are discharged through the discharge pipe 3.

[0042] Further comprising a metering device for controlling the metered output of the discharge pipe 3, the metering device comprising:

[0043] A switch assembly arranged inside the discharge pipe 3, a control module 4 for controlling the on / off time of the switch assembly;

[0044] A switch assembly is arranged below the hopper 1 to control the opening and closing of the discharge pipe 3, so as to achieve the plugging or dredging of the discharge pipe 3.

[0045] A guide assembly 5 is arranged inside the hopper 1, the guide assembly 5 comprising a bracket 51 welded inside the hopper 1, a guide rod 52 arranged on the bracket 51, an eccentric motor 53 arranged at one end of the guide rod 52 towards the bracket 51, the other end of the guide rod 52 being inserted into the discharge pipe 3, the eccentric motor 53, the switch assembly and the control module 4 being electrically connected;

[0046] The control module 4 cooperates with the switch assembly to open / close the discharge pipe 3;

[0047] When the discharge pipe 3 is opened, the control assembly opens the eccentric motor 53, and the guide rod 52 stirs the activated carbon particles 2 in the connection area between the discharge pipe 3 and the hopper 1.

[0048] First, the activated carbon particles 2 are loaded into the hopper 1 of the device, and the particles in the hopper 1 are ensured to be in a loose state for subsequent metered output.

[0049] When the device is started, the control module 4 will control the switch assembly of the discharge pipe 3 according to the set program, and open / close the discharge pipe 3 at regular intervals to achieve metered output.

[0050] During the discharging process, the guide assembly 5 arranged inside the hopper 1 starts to work. The guide rod 52 generates vibration and stirring in the hopper 1 through the driving of the eccentric motor 53, which effectively prevents the activated carbon particles 2 from accumulating at the discharge port.

[0051] When the discharge pipe 3 is opened, the activated carbon particles 2 smoothly pass through the discharge pipe 3 with the help of the guide rod 52, achieving uniform and precise metered output.

[0052] By arranging the eccentric motor 53 and the guide rod 52, the device can continuously stir the activated carbon particles 2 in the hopper 1, preventing the formation of accumulation in the discharge pipe 3 due to the large particle density or poor flowability.

[0053] The design of the guide assembly 5 ensures the uniform distribution and flow of activated carbon particles 2 in the discharge pipe 3, and when a blocking trend is detected, the blocking problem is automatically solved through stirring and vibration.

[0054] By controlling the opening and closing time of the discharge pipe 3 with the visual sensor 9 and coordinating the operation of the eccentric motor 53 and the guide rod, smooth discharging is achieved, and the device can improve the accuracy of quantitative packaging by maintaining the smoothness of discharging and reducing errors.

[0055] Through the guiding and stirring functions of the guide assembly 5, the flowability of activated carbon particles 2 during transportation and packaging is ensured, thereby significantly improving the accuracy of quantification and effectively reducing packaging errors compared to traditional devices.

[0056] Traditional devices may require manual intervention when encountering material blockage, while the present scheme achieves automatic control of the eccentric motor 53 to prevent blockage and automatically unblock, reducing the complexity of manual operation and improving work efficiency.

[0057] Considering the challenges posed by the differences in density and flowability of activated carbon particles 2, the present scheme can adapt to activated carbon particles 2 of different particle sizes, densities, and flowabilities, making it more widely applicable.

[0058] Referring to Figures 6-7 to switch the opening and closing state of the discharge pipe 3, a switch assembly is provided, which includes a baffle 61 rotatably installed inside the discharge pipe 3 and a drive motor 62 driving the baffle 61 to rotate 90°, and the drive motor 62 is electrically connected with the control module 4.

[0059] The drive motor 62 is a stepper motor, the baffle 61 is adapted to the inside of the cylindrical discharge pipe 3, the baffle 61 is circular, and the output shaft of the drive motor 62 is inserted into the middle of the baffle 61 to drive the baffle 61 to rotate.

[0060] The control module 4 is an electronic control unit for managing and coordinating motors, sensors, and other components. It determines the output action by receiving input signals such as user instructions or sensor feedback. The control module 4 is usually composed of a microprocessor, memory, input / output interface, and other electronic components, and can execute programmed instructions and control connected devices.

[0061] In the present device, the main function of the control module 4 is to receive input signals from the visual sensor 9 or the user, and to determine when to start the drive motor 62 and the eccentric motor 53 according to the predetermined program or logic. The main function is to control the output of current or voltage to drive the motor 62 and other execution components.

[0062] And stepper motor is a kind of electric motor that converts electrical pulse signals into discrete steps of rotation. It can accurately control the rotation angle and speed of the motor by inputting the number and frequency of pulse signals. Each pulse signal of the stepper motor corresponds to a fixed rotation angle, usually with an accuracy of 0.9 degrees, 1.8 degrees, etc. In this embodiment, the output shaft of the stepper motor needs to be controlled to rotate 90 degrees each time.

[0063] After receiving the user instruction or sensor signal, the control module 4 generates a corresponding number of electrical pulse signals. For example, if the angle of each step of the stepper motor is 1.8 degrees, to achieve a rotation of 90 degrees, the control module 4 needs to send 50 pulse signals.

[0064] After receiving the pulse signals sent by the control module 4, each pulse signal drives the motor 62 to rotate a step angle. The signals of the control module 4 accurately control the motor to rotate to the target angle, ensuring that the output shaft rotates 90 degrees each time. When the stepper motor receives all the pulse signals, it will stop at the exact position and remain there until the next control instruction is issued.

[0065] Referring to Figures 3-4 The support guide assembly 5 is shown in FIG. 5, so a support 51 is provided, which includes at least two rod members 511, a plate body 512 connecting the rod members 511, and an eccentric motor 53 inserted and fixed in the stepped through hole 513 in the middle of the plate body 512. The guide rod 52 is installed below the eccentric motor 53. Among them, the plate body 512 and the rod member 511 are welded and fixed at the connection part.

[0066] Since the support 51 is composed of at least two rod members 511 and a plate body 512 connecting the rod members 511, the rod members 511 are welded and fixed to the inner wall of the bin 1, which can provide sufficient support force to ensure that the entire support 51 does not shake or deform during operation. The plate body 512 is connected to the rod member 511 by welding, making the structure of the entire support 51 more firm and stable.

[0067] And the plate body 512 is provided with a stepped through hole 513 in the middle for fixing the eccentric motor 53. The weight of the eccentric motor 53 and the force generated during operation are evenly distributed to the entire support 51 and the inner wall of the bin 1 through the plate body 512 and the rod member 511, avoiding stress concentration phenomenon caused by excessive local stress, thereby prolonging the service life of the equipment.

[0068] After the eccentric motor 53 is inserted into the stepped through hole 513, it is connected and fixed by bolts 56. The design of the stepped through hole 513 allows the eccentric motor 53 to be easily inserted and fixed. This arrangement not only simplifies the installation process of the motor, but also makes it more convenient and efficient when maintenance or replacement of the motor is required.

[0069] The eccentric motor 53 is installed in the stepped hole 513 in the middle of the plate body 512, ensuring that the motor maintains a stable operating state during operation, avoiding the impact of motor vibration or deviation on the working effect of the guide rod 52. At the same time, the eccentric motor 53 is installed at the central position of the support 51, which can ensure that the guide rod 52 is accurately placed in the discharge port area below the bin 1. Through the stirring effect during discharge, it effectively prevents the accumulation of material.

[0070] Referring to Figure 5 In order to expand the stirring of activated carbon particles 2 in the discharge port area of the bin 1 by the guide rod, the eccentric motor 53 includes an eccentric wheel 531 provided on the output end. The guide rod 52 is installed on the eccentric wheel 531 through threaded cooperation.

[0071] The eccentric wheel 531 is fixed on the output shaft of the eccentric motor 53, and the guide rod 52 has an external thread at the end. An internal threaded hole is provided on the side of the eccentric wheel 531 away from the shaft center. The guide rod 52 is fixedly installed on the eccentric wheel 531 through the cooperation of the internal thread and the external thread at the end of the guide rod 52.

[0072] The eccentric motor 53 is a specially designed motor, in which the rotor or shaft of the motor has an eccentric block (usually an asymmetrically installed counterweight). When the motor rotates, due to the presence of this eccentric block, the motor will generate a periodic eccentric force, causing the motor to vibrate. This vibration can produce specific functional effects through the combination with other mechanical components, such as the common application in devices such as vibrating screens, vibrating feeders, etc.

[0073] The eccentric motor 53 generates a vibration force through its rotation, which is transmitted to the material inside the bin 1 through the guide rod fixed on the motor. The action of the vibration force can effectively prevent the accumulation and blockage of activated carbon particles 2 in the bin 1 and the discharge pipe 3. The guide rod is connected to the eccentric motor 53, and as the eccentric motor 53 rotates, the guide rod produces a certain amplitude of vibration and stirring effect in the bin 1. This effect helps the uniform distribution of activated carbon particles 2, ensuring good fluidity during transportation.

[0074] Compared with other complex stirring or vibration mechanisms, the combination of the eccentric motor 53 and the guide rod is a relatively simple and effective solution. Its structure is compact, easy to control and maintain, thereby reducing the cost and maintenance difficulty of the equipment.

[0075] Referring to Figures 3-4 As the activated carbon particles 2 pour down from above, in order to avoid the influence of activated carbon particles 2 on the eccentric motor 53, a mesh cover 54 is provided on the eccentric motor 53. The mesh cover 54 is fixed at the bottom of the plate body 512.

[0076] In order to avoid the problem of difficult heat dissipation when the eccentric motor 53 is intermittently operated, the side of the mesh cover 54 is provided with a metal mesh, and the top is provided with a metal cover.

[0077] In this embodiment, the mesh cover 54 is fixed by screwing the bolt 56 from the bottom of the plate body 512 to the bottom of the mesh cover 54. In other embodiments, it can also be fixed in other ways.

[0078] In order to avoid friction or interference with the edge of the through hole 513 when the eccentric wheel 531 rotates, the diameter of the through hole 513 is 2-4mm larger than the diameter of the eccentric wheel 531, leaving a certain gap, which can ensure that the eccentric wheel 531 is not hindered when rotating at high speed, thereby maintaining a smooth vibration effect.

[0079] In order to prevent the material guide rod from impacting the discharge pipe 3 when it is agitated and vibrated, the diameter of the through hole 513 is 1 / 3-2 / 3 of the diameter of the discharge pipe 3. This ratio can ensure moderate transmission of vibration energy, neither excessively affecting the flow of materials in the discharge pipe 3, nor being unable to prevent material accumulation due to insufficient vibration force.

[0080] In this embodiment, the diameter of the through hole 513 is 2 / 3 of the diameter of the discharge pipe 3. This size can effectively prevent material blockage by vibration to the greatest extent without affecting the smooth flow of materials, maintaining uniform material flow.

[0081] Referring to Figure 5 As shown in the figure, it also includes a paddle 55 arranged at the junction area of the discharge pipe 3 and the bin 1, the paddle 55 is arranged on the side surface of the guide rod 52 at the end, and the paddle 55 is in the form of being narrow on both sides and wide in the middle.

[0082] The side surface of the paddle 55 is fixed to the side surface of the guide rod 52 by the bolt 56.

[0083] The paddle 55 is arranged at the junction area of the discharge pipe 3 and the bin 1, and is arranged on the side surface of the guide rod 52 at the end, in order to improve the flowability of the material in the junction area. Since this area is prone to material accumulation or poor flow, the paddle 55 can effectively guide the material to flow smoothly to the discharge pipe 3 through its form and arrangement.

[0084] The form design of the paddle 55 being narrow on both sides and wide in the middle helps to create different force action areas during the flow of materials. The narrow edge part reduces the resistance to the flow of materials, and the wide edge part provides sufficient contact area to push and stir the materials, so that the materials are fully dispersed and uniformly flowed in the junction area.

[0085] By rotating the guide rod 52 to drive the push piece 55, the material can be effectively dispersed and guided, preventing accumulation or blockage at the junction of the discharge pipe 3 and the bin 1. This arrangement helps to maintain the continuity of the material flow, ensuring normal operation of the equipment.

[0086] Referring to Figure 1 The transmission device 6 is arranged below the bin 1, and a storage container 7 is placed above the transmission device 6.

[0087] The transmission device 6 transports the storage container 7 below the discharge pipe 3, and the storage container 7 receives the activated carbon particles 2 output from the discharge pipe 3.

[0088] The bin 1 is also provided with a chassis 2, and in this embodiment, the bin 1 is fixed to the transmission device 6 through the chassis 2.

[0089] In other embodiments, the chassis 2 can also be extended to the ground.

[0090] A visual sensor 9 is also arranged on one side of the bin 1, and the visual sensor 9 is electrically connected to the control module 4. The matching state of the storage container 7 and the discharge pipe 3 is monitored through the visual sensor 9.

[0091] The feeding device 8 is also connected to the bin 1, and the activated carbon particles 2 are input into the bin 1 through the feeding device 8.

[0092] Ensure that the connection between the visual sensor 9 and the control module 4 is normal, and confirm that the feeding device 8 has been correctly connected to the bin 1.

[0093] Place the storage container 7 above the transmission device 6, ensure that the transmission device 6 can operate normally, and can accurately transport the storage container 7 below the discharge pipe 3.

[0094] Start the feeding device 8, and input the activated carbon particles 2 from the storage device or other sources into the bin 1 through the feeding device 8. This process will continuously transport a certain amount of activated carbon particles 2 into the bin 1, ensuring that there is enough material in the bin 1 for subsequent packaging or processing.

[0095] Move the storage container 7 placed on the transmission device 6 to below the discharge pipe 3 through the transmission device 6. The visual sensor 9 will monitor the matching state of the storage container 7 and the discharge pipe 3 at this time.

[0096] When the visual sensor 9 detects that the storage container 7 is correctly aligned or matched below the discharge pipe 3, the control module 4 controls the switch assembly to open the discharge pipe 3, so that the activated carbon particles 2 in the bin 1 enter the storage container 7 through the discharge pipe 3.

[0097] When the switch assembly opens the discharge pipe 3, the eccentric motor 53 is started, and through the vibration and stirring action of the guide rod 52 and the stirring piece 55, the activated carbon particles 2 are uniformly output from the bin 1, enter the storage container 7 through the discharge pipe 3.

[0098] When the storage container 7 is full or reaches a predetermined weight, the conveying device 6 removes it from below the discharge pipe 3, ready for subsequent packaging or other processing.

[0099] A new empty container will be transported by the conveying device 6 to below the discharge pipe 3, and the above discharge process will be repeated.

[0100] It should be noted that the device structure and the drawings of the present application mainly describe the principle of the present application, and the setting of the power mechanism, power supply system and control system of the device is not completely described in the technical principle of the design, and under the premise that the above-mentioned technical personnel understand the principle of the application, the specific power mechanism, power supply system and control system can be clearly known, and the control mode of the application file is automatically controlled by the controller, and the control circuit of the controller can be realized by simple programming of the technical personnel in the field;

[0101] The standard parts used therein can be purchased from the market, and can be ordered according to the description and drawings, and the specific connection mode of each part adopts the conventional bolt, rivet, welding and other conventional means in the prior art, and the mechanical parts and equipment adopt the conventional type in the prior art, and the components known to the technical personnel in the field, and the structure and principle thereof are known to the technical personnel by technical manual or by conventional experimental method.

[0102] The above only describes the preferred embodiments of the present application and is not intended to limit the present application. For those skilled in the art, the present application can be changed and varied. Any modification, equivalent replacement, improvement, etc. made within the spirit and principles of the present application shall be included in the protection scope of the present application.

Claims

1. An active carbon dosing packaging apparatus, characterized by, It includes: The bin (1) holds activated carbon particles (2), and the bin (1) is provided with a discharge pipe (3) below, and the activated carbon particles (2) are discharged through the discharge pipe (3); It also includes a metering device for controlling the metering output of the discharge pipe (3), which includes: A switch assembly arranged inside the discharge pipe (3), a control module (4) for controlling the switch assembly; A guide assembly (5) arranged inside the bin (1), the guide assembly (5) includes a support (51) welded inside the bin (1), a guide rod (52) arranged on the support (51), an eccentric motor (53) arranged at one end of the guide rod (52) towards the support (51), the other end of the guide rod (52) is inserted into the discharge pipe (3), the eccentric motor (53), the switch assembly and the control module (4) are electrically connected; Through the cooperation of the control module (4) and the switch assembly, the discharge pipe (3) is opened / closed; Wherein, the discharge pipe (3) is opened, the eccentric motor (53) is opened through the control assembly, and the activated carbon particles (2) in the connection area of the discharge pipe (3) and the bin (1) are stirred by the guide rod (52).

2. The activated carbon quantifying and packing apparatus according to claim 1, wherein: The switch assembly includes a baffle (61) rotatably installed inside the discharge pipe (3), a drive motor (62) for driving the baffle (61) to rotate 90°, and the drive motor (62) is electrically connected with the control module (4).

3. The activated carbon quantifying and packing apparatus according to claim 1, wherein: The support (51) includes at least two rod members (511), a plate body (512) connecting a plurality of rod members (511), and the rod members (511) are welded and fixed to the inner wall of the bin (1) at one end away from the plate body (512). A stepped through hole (513) is provided in the middle of the plate body (512), the eccentric motor (53) is inserted and fixed in the stepped through hole (513), and the guide rod (52) is installed below the eccentric motor (53).

4. The activated carbon quantifying and packaging apparatus according to claim 3, wherein: The eccentric motor (53) includes an eccentric wheel (531) arranged at the output end, and the guide rod (52) is installed on the eccentric wheel (531) by thread cooperation.

5. The activated carbon quantifying and packaging apparatus according to claim 4, wherein: The diameter of the through hole (513) is 2-4mm larger than the diameter of the eccentric wheel (531).

6. The activated carbon quantifying and packaging apparatus according to claim 5, wherein: A mesh cover (54) is provided above the eccentric motor (53), and the mesh cover (54) is fixed on the plate body (512).

7. The activated carbon quantifying and packaging apparatus according to claim 1 or 6, wherein: It also includes a dial (55) arranged at the junction of the discharge pipe (3) and the bin (1), the dial (55) is arranged on the side surface of the end of the guide rod (52) along the axis, and the dial (55) is in the form of narrow on both sides and wide in the middle.

8. The activated carbon quantifying and packaging apparatus according to claim 1, wherein: A transmission device (6) is arranged below the bin (1), and a storage container (7) is placed above the transmission device (6); A chassis (2) is arranged below the bin (1), and the bin (1) is fixed on the transmission device (6) through the chassis (2); The transmission device (6) transports the storage container (7) below the discharge pipe (3), and the storage container (7) receives the activated carbon particles (2) output from the discharge pipe (3).

9. The activated carbon quantifying and packaging apparatus according to claim 8, wherein: Also include the visual sensor (9) arranged in one side of the bunker (1), the visual sensor (9) is electrically connected with the control module (4), the matching state of the storage container (7) and the discharge pipe (3) is monitored through the visual sensor (9); Also include the output end access the material conveying device (8) of the bunker (1), the activated carbon particles (2) are input inside the bunker (1).