Modified activated carbon degassing and drying integrated device
By using flow guiding and anti-clogging components to prevent activated carbon from accumulating and clogging, combined with a drying and filtration mechanism, the problem of material accumulation and clogging in the activated carbon drying device is solved, achieving efficient degassing, drying, and gas filtration effects.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-07
- Publication Date
- 2026-03-06
AI Technical Summary
In existing activated carbon drying devices, activated carbon tends to accumulate during the falling process, which reduces the contact area between the hot airflow and the activated carbon, thus reducing the degassing and drying effect. Furthermore, the material is prone to clogging the discharge port, affecting drying efficiency and product quality.
The design incorporates a flow guiding and anti-clogging mechanism and an agitation component. The flow guide plate and vibrating column prevent activated carbon buildup, while the agitation component prevents clogging. A drying and filtration mechanism is also included to filter and dry the gas.
It improves the degassing and drying effect of activated carbon, prevents accumulation and blockage, enhances gas treatment efficiency, and improves the drying efficiency and quality of activated carbon.
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Figure CN223976419U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of activated carbon technology, and in particular to an integrated device for degassing and drying modified activated carbon. Background Technology
[0002] Activated carbon has a wide range of applications, such as wastewater treatment and air purification. In its production and regeneration process, degassing and drying are crucial steps that can effectively improve the adsorption performance of activated carbon.
[0003] In existing activated carbon drying devices, the activated carbon lacks a proper guidance and dispersion mechanism during its descent. Once the material falls from the inlet, it easily accumulates in specific areas inside the drying device. This accumulation significantly reduces the contact area between the activated carbon and the hot airflow, thus lowering the degassing and drying efficiency. Therefore, we provide an integrated degassing and drying device for modified activated carbon. Utility Model Content
[0004] To address the shortcomings of existing technologies, this utility model provides an integrated device for degassing and drying modified activated carbon. This device solves the technical problem that activated carbon drying equipment in the prior art is prone to material accumulation, thereby reducing the degassing and drying effect of activated carbon. It achieves the ability to divert activated carbon, preventing it from accumulating inside the processing box, thus improving the degassing and drying effect of activated carbon.
[0005] To solve the above-mentioned technical problems, this utility model provides the following technical solution: an integrated device for degassing and drying modified activated carbon, including a processing box, wherein the processing box is provided with a drying and filtering mechanism for filtering particulate matter in the gas, and the processing box is provided with a flow guiding and anti-clogging mechanism for guiding the flow of activated carbon.
[0006] The flow guiding and anti-clogging mechanism includes two sets of fixed blocks installed inside the processing box. A flow guide plate is rotatably connected to the fixed blocks. A strong spring connected to the flow guide plate is connected to the processing box. A spring seat is installed at the bottom of the flow guide plate. A discharge funnel distributed below the flow guide plate is installed inside the processing box. A drive motor is installed on the processing box. An installation rod is connected to the output end of the drive motor. A vibrating column corresponding to the position of the spring seat is installed on the installation rod. Multiple sets of horizontal plates are installed at one end of the installation rod. An agitation component for agitating the activated carbon at the discharge point is provided inside the processing box.
[0007] Preferably, the agitation assembly includes a first bevel gear mounted on a mounting rod, a connecting frame mounted on the discharge funnel, a rotating rod rotatably connected to the connecting frame, a second bevel gear meshing with the first bevel gear mounted at the top of the rotating rod, multiple sets of mixing plates adapted to the discharge funnel mounted on the rotating rod, a connecting rod mounted at the bottom of the rotating rod, and several sets of agitating rods mounted on the connecting rod.
[0008] Preferably, the drying and filtering mechanism includes an electric heater installed on the side of the processing box, a heat-conducting head connected to the processing box connected to the electric heater, an air suction machine installed on the processing box, an exhaust hood distributed inside the processing box connected to the air suction machine, multiple sets of limiting rails installed inside the processing box, filter screen one and filter screen two slidably connected on the limiting rails, and pull plates installed on filter screen one and filter screen two.
[0009] Preferably, the bottom of the processing box is equipped with inclined seats distributed directly below the discharge hopper, and a sealing baffle is movably installed on the side of the processing box.
[0010] Preferably, the guide plate has multiple sets of guide grooves, and the spring seat and the vibration column are both made of silicone.
[0011] Preferably, the filter holes on filter screen one and filter screen two have different diameters, and the two sets of heat-conducting heads are respectively distributed at the air inlet end and the air outlet end.
[0012] By employing the above technical solution, this utility model provides an integrated device for degassing and drying modified activated carbon, which has at least the following beneficial effects:
[0013] 1. By setting up a flow guiding and anti-blocking mechanism, this utility model can guide the flow of activated carbon during the degassing and drying process, prevent activated carbon from accumulating, thereby improving the degassing and drying effect of activated carbon. It can also agitate the discharge port to prevent activated carbon from blocking the discharge port, further improving the degassing and drying efficiency of activated carbon.
[0014] 2. By setting up a drying and filtering mechanism, this utility model can simultaneously dry the inlet and outlet ends of the gas during the degassing and drying process, thereby improving the drying efficiency of the gas. In addition, during the drying process, it can also filter impurities in the gas, thus improving the gas treatment effect. Attached Figure Description
[0015] The accompanying drawings, which are provided to further illustrate this application and form part of this application, illustrate exemplary embodiments of this application and are used to explain this application, but do not constitute an undue limitation of this application.
[0016] In the attached diagram:
[0017] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0018] Figure 2 This is a side view of the structure of this utility model;
[0019] Figure 3 This is a cross-sectional structural diagram of the present invention;
[0020] Figure 4 This is a schematic diagram of the flow guiding and anti-blocking mechanism of this utility model;
[0021] Figure 5 This is a partial structural diagram of the drying and filtering mechanism of this utility model.
[0022] In the diagram: 1. Processing box;
[0023] 2. Drying and filtering mechanism; 21. Electric heating element; 22. Heat conduction head; 23. Air intake fan; 24. Exhaust hood; 25. Limiting rail; 26. Filter screen one; 27. Filter screen two; 28. Pull plate;
[0024] 3. Flow guiding and anti-blocking mechanism; 31. Fixing block; 32. Flow guide plate; 33. Strong spring; 34. Spring seat; 35. Discharge funnel; 36. Drive motor; 37. Mounting rod; 38. Vibrating column; 39. Horizontal plate;
[0025] Agitator assembly; 3011, bevel gear one; 3012, connecting frame; 3013, rotating rod; 3014, bevel gear two; 3015, mixing plate; 3016, connecting rod; 3017, agitator rod. Detailed Implementation
[0026] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0027] Example 1
[0028] Existing activated carbon drying equipment often suffers from material accumulation, which reduces the degassing and drying effect. This embodiment provides an integrated modified activated carbon degassing and drying device. Please refer to [reference needed]. Figures 1-5 This device can divert activated carbon, preventing it from accumulating inside the treatment chamber and thus improving the degassing and drying effect. The modified activated carbon degassing and drying integrated device includes a treatment chamber 1. An inclined seat is installed at the bottom of the treatment chamber 1, directly below the discharge funnel 35, facilitating the flow of activated carbon out of the treatment chamber 1. A sealing baffle is movably installed on the side of the treatment chamber 1, which serves to block the activated carbon and facilitates its disassembly and assembly. The treatment chamber 1 is equipped with a drying and filtration mechanism 2 to filter particulate matter in the gas, and a flow guiding and anti-clogging mechanism 3 to guide the flow of activated carbon.
[0029] Existing activated carbon drying equipment lacks effective guidance and dispersion for the falling activated carbon. After falling from the inlet, the material easily accumulates in specific areas within the device. The large amount of accumulated material significantly reduces the contact area between the hot airflow and the activated carbon, thereby reducing the degassing and drying effect. To solve the above problems... The flow guiding and anti-blocking mechanism 3 includes two sets of fixed blocks 31 installed inside the processing box 1. A flow guide plate 32 is rotatably connected to the fixed blocks 31. Multiple flow guide grooves are opened on the flow guide plate 32 to improve the flow guiding effect on activated carbon. A strong spring 33 connected to the flow guide plate 32 is connected to the processing box 1. A spring seat 34 is installed at the bottom of the flow guide plate 32. The spring seat 34 and the vibrating column 38 are both made of silicone, which protects the flow guide plate 32 and allows the flow guide plate 32 to vibrate back and forth, thereby improving the vibration efficiency of activated carbon. A discharge funnel 35 distributed below the flow guide plate 32 is installed inside the processing box 1. A drive motor 36 is installed on the processing box 1. An installation rod 37 is connected to the output end of the drive motor 36. A vibrating column 38 corresponding to the position of the spring seat 34 is installed on the installation rod 37. Multiple sets of horizontal plates 39 are installed at one end of the installation rod 37. An agitation component for agitating the activated carbon at the discharge point is set inside the processing box 1. During the degassing and drying process of activated carbon, the guide plate 32 plays a role in guiding the flow, and under the elastic action of the strong spring 33, it has its own extensibility to prevent activated carbon from accumulating. Furthermore, the operation of the drive motor 36 drives the mounting rod 37 to rotate, thereby driving the vibrating column 38 to continuously and indirectly strike the spring seat 34, further improving the degassing and drying effect of activated carbon.
[0030] Activated carbon degassing and drying devices are prone to material blockage, which reduces drying efficiency and product quality, and increases production costs. To solve these problems, the agitation assembly includes a bevel gear 3011 mounted on a mounting rod 37, a connecting frame 3012 mounted on a discharge hopper 35, a rotating rod 3013 rotatably connected to the connecting frame 3012, a bevel gear 3014 meshing with the bevel gear 3011 mounted at the top of the rotating rod 3013, multiple mixing plates 3015 adapted to the discharge hopper 35 mounted on the rotating rod 3013, and a connecting rod 3016 mounted at the bottom of the rotating rod 3013, with several agitator rods 3017 mounted on the connecting rod 3016. The operation of the drive motor 36 drives the mounting rod 37 to rotate, which in turn causes the first bevel gear 3011 to rotate. With the connection of the second bevel gear 3014, the rotating rod 3013 rotates, thereby driving the mixing plate 3015 to stir the outlet, preventing the activated carbon from clogging the outlet. The rotation of the rotating rod 3013 also causes the connecting rod 3016 to rotate, which in turn drives the stirring rod 3017 to rotate, stirring the activated carbon, increasing the heating area, and improving the smoothness of the activated carbon discharge.
[0031] Example 2
[0032] Based on Example 1, such as Figures 1-5 As shown, existing activated carbon drying equipment is prone to material accumulation, which reduces the degassing and drying effect of activated carbon. However, in the process of drying gas, some particulate matter is easily present in the gas, which reduces the gas treatment effect. Therefore, this device is also equipped with a structure to filter particulate matter in the gas.
[0033] During the degassing and drying process, due to the inherent properties of activated carbon and the airflow within the drying device, some fine particulate matter is generated. This particulate matter diffuses into the surrounding environment along with the gas discharged from the drying device, causing air pollution. To address this issue, the drying and filtration mechanism 2 includes an electric heater 21 installed on the side of the processing chamber 1. The electric heater 21 is connected to a heat-conducting head 22 connected to the processing chamber 1. Two sets of heat-conducting heads 22 are distributed at the air inlet and air outlet, respectively, further improving the drying efficiency of the gas. An air intake fan 23 is installed on the processing chamber 1, and an exhaust hood 24 distributed inside the processing chamber 1 is connected to the air intake fan 23. Multiple sets of limiting rails 25 are installed inside the processing chamber 1. Filter screen 1 26 and filter screen 27 are slidably connected to the limiting rails 25. The filter holes of filter screen 1 26 and filter screen 27 have different diameters, thus filtering particulate matter of different sizes and improving the filtration effect. Pull plates 28 are installed on filter screen 1 26 and filter screen 27. The gas from the activated carbon inside the treatment chamber 1 is absorbed by the suction fan 23 and discharged to the other side of the treatment chamber 1 through the exhaust hood 24. The filter screen 26 and the filter screen 27 are connected to the limiting rail 25 by the pull plate 28, thereby filtering impurities in the gas at different levels and improving the filtration effect. The heat generated by the electric heater 21 is transferred to the treatment chamber 1 through the heat conduction head 22 to dry the gas and improve the processing efficiency of activated carbon.
[0034] It should be noted that, in this document, the terms “comprising,” “including,” or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0035] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A modified activated carbon degassing and drying integrated device, comprising a treatment box (1), characterized in that: The processing box (1) is provided with a drying filter mechanism (2) for filtering particles in the gas, and the processing box (1) is provided with a guide anti-blocking mechanism (3) for guiding the flow of activated carbon. The guide anti-blocking mechanism (3) comprises two groups of fixed blocks (31) installed inside the processing box (1), the fixed blocks (31) are rotatably connected with guide plates (32), the processing box (1) is connected with strong springs (33) connected with the guide plates (32), the bottom end of the guide plate (32) is provided with a spring seat (34), a discharge funnel (35) is installed below the guide plate (32) inside the processing box (1), a driving motor (36) is installed on the processing box (1), the output end of the driving motor (36) is connected with a mounting rod (37), the mounting rod (37) is installed with a vibration column (38) corresponding to the position of the spring seat (34), one end of the mounting rod (37) is installed with a plurality of cross plates (39), and an agitating assembly for agitating the activated carbon at the discharge position is arranged inside the processing box (1).
2. The modified activated carbon degassing and drying integrated device according to claim 1, characterized in that: The agitating assembly comprises a bevel gear one (3011) installed on the mounting rod (37), a connecting frame (3012) is installed on the discharge funnel (35), the connecting frame (3012) is rotatably connected with a rotating rod (3013), the top end of the rotating rod (3013) is provided with a bevel gear two (3014) engaged with the bevel gear one (3011), a plurality of mixing plates (3015) matched with the discharge funnel (35) are installed on the rotating rod (3013), and a connecting rod (3016) is installed at the bottom end of the rotating rod (3013), and a plurality of agitating rods (3017) are installed on the connecting rod (3016).
3. The modified activated carbon degassing and drying integrated device according to claim 1, characterized in that: The drying filter mechanism (2) comprises an electric heating machine (21) installed on the side of the processing box (1), the electric heating machine (21) is connected with a heat conduction head (22) connected with the processing box (1), an air suction machine (23) is installed on the processing box (1), the air suction machine (23) is connected with a plurality of exhaust covers (24) distributed inside the processing box (1), a plurality of limiting rails (25) are installed inside the processing box (1), the limiting rails (25) are slidably connected with a first filter screen (26) and a second filter screen (27), and the first filter screen (26) and the second filter screen (27) are installed with pull plates (28).
4. The modified activated carbon degassing and drying integrated device according to claim 1, characterized in that: A plurality of limiting rails (25) are installed inside the processing box (1), the limiting rails (25) are slidably connected with a first filter screen (26) and a second filter screen (27), and the first filter screen (26) and the second filter screen (27) are installed with pull plates (28).
5. The modified activated carbon degassing and drying integrated device according to claim 1, characterized in that: A plurality of limiting rails (25) are installed inside the processing box (1), the limiting rails (25) are slidably connected with a first filter screen (26) and a second filter screen (27), and the first filter screen (26) and the second filter screen (27) are installed with pull plates (28).
6. The modified activated carbon degassing and drying integrated device according to claim 3, characterized in that: The filter holes of the first filter screen (26) and the second filter screen (27) are different in size, and the two groups of heat conduction heads (22) are respectively distributed at the air inlet end and the air outlet end. The filter holes of the first filter screen (26) and the second filter screen (27) are different in size, and the two groups of heat conduction heads (22) are respectively distributed at the air inlet end and the air outlet end.