Impurity removing machine for activated carbon regeneration
By designing a limit mechanism and a rapping mechanism for easy installation and disassembly, the activated carbon regeneration impurity removal machine solves the problem of cumbersome screen assembly and disassembly in the existing technology, achieving efficient activated carbon regeneration and impurity removal, and improving production efficiency and equipment service life.
Patent Information
- Application Number
- CN202423227676.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-26
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2034-12-26
AI Technical Summary
The existing activated carbon regeneration impurity removal machine has a cumbersome screen assembly and disassembly operation, which affects production efficiency and makes screen cleaning inconvenient.
A debris removal machine was designed, comprising an elastic support mechanism, a screen body, a limiting mechanism, and a vibrating motor. The limiting mechanism facilitates the installation and disassembly of the screen surface, the vibrating mechanism cleans the screen, and the vibrating motor separates impurities from the screen surface.
It improves the convenience of screen surface cleaning and the efficiency of impurity removal, reduces equipment maintenance time, and extends the service life of the equipment.
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Figure CN223669654U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to active carbon regeneration equipment technical field especially relates to a kind of impurity removal machines for active carbon regeneration. BACKGROUND
[0002] Active carbon regeneration is a kind of process that the used active carbon restores its adsorption performance, and the service life of active carbon can be extended by regeneration, the running cost is reduced, and the waste disposal quantity is reduced, larger solid particles including dust, silt etc. are mixed in the semi-finished product of active carbon after heating regeneration, cooling, and the mixed solid particles need to be removed in impurity removal process.
[0003] The existing impurity removal machine for active carbon regeneration usually adopts specific gravity stone removing machine as the utility model disclosed in patent announcement No.CN2766978Y, which uses upper sieve surface to block large particle active carbon, and makes large particle active carbon flow from upper sieve surface to lower discharge port, then separates the impurities and active carbon powder falling on lower sieve surface from the powder by using the density difference of material and vibration, makes active carbon powder flow from lower sieve surface to lower discharge port, and makes impurities climb upward on lower sieve surface, and finally discharged through upper discharge port.
[0004] In the above technical scheme, whether the sieve hole is unobstructed directly affects the impurity removal effect of the equipment, so the sieve surface needs to be cleaned regularly, but the disassembly and assembly process of the sieve surface is complicated, time-consuming and labor-intensive, which affects production efficiency. UTILITY MODEL CONTENTS
[0005] Therefore, the utility model provides an impurity removal machine for active carbon regeneration, which facilitates the installation and disassembly of the sieve surface, facilitates the cleaning operation of the sieve surface, and improves the active carbon regeneration efficiency.
[0006] The technical scheme of the utility model is as follows: the utility model provides an impurity removal machine for active carbon regeneration, which comprises an elastic supporting mechanism, a sieve body, two sieve surfaces, a limiting mechanism and a vibration motor, wherein,
[0007] The sieve body is fixedly arranged on the top side of the elastic supporting mechanism and is inclinedly arranged with the same;
[0008] The sieve surface is slidingly arranged on the sieve body, and the two sieve surfaces are parallel and spaced apart;
[0009] The limiting mechanism comprises a support, a limiting plate and a buckle plate, the support is fixedly arranged on the sieve body, the limiting plate is rotatably arranged on the support and can abut against the sieve surface to fix the sieve surface and the sieve body, and the buckle plate is slidingly arranged on the support and can be slidingly connected with the limiting plate;
[0010] The vibration motor is fixedly arranged on the screen body.
[0011] Further preferably, the limiting mechanism further comprises a locking mechanism, the locking mechanism comprising a bottom plate and a clamping rod, wherein,
[0012] The bottom plate is fixedly arranged on the bottom side of the support, and a clamping groove is formed in the bottom plate;
[0013] One end of the clamping rod is rotatably arranged on the buckle plate and can be clamped with the clamping groove.
[0014] Further preferably, the limiting mechanism further comprises a reset mechanism, the reset mechanism comprising a guide column and a spring, wherein,
[0015] The guide column is fixedly arranged on the bottom of the buckle plate, and the guide column penetrates and is slidably arranged on the bottom plate;
[0016] The spring is sleeved on the guide column, and two ends of the spring are respectively abutted against the buckle plate and the bottom plate.
[0017] Further preferably, the screen surface comprises a support frame, an end plate, a support beam and a screen mesh, wherein,
[0018] The support frame is slidably connected with the screen body;
[0019] The end plate is fixedly arranged on the support frame, and the limiting plate is abutted against the end plate;
[0020] A plurality of support beams are arranged in the support frame, and the plurality of support beams are uniformly arranged along the length direction of the support frame;
[0021] The screen mesh is fixedly arranged on the support frame and the support beam.
[0022] On the basis of the above technical scheme, preferably, the screen surface further comprises a rapping mechanism, the rapping mechanism comprising a rapping beam, a plug-in groove and a rotary seat, wherein,
[0023] The plug-in groove is arranged on the rapping beam and can be clamped with the support beam;
[0024] The rotary seat is rotatably arranged at two ends of the rapping beam, and the rotary seat is detachably fixedly connected with the support frame.
[0025] Further preferably, a plurality of rapping beams are arranged in the support frame, and the plurality of rapping beams are uniformly arranged along the length direction of the support beam.
[0026] Further preferably, a plurality of the insertion slots are arranged on the beating beam, and the plurality of the insertion slots are arranged along the length direction of the beating beam and correspond to the support beams one by one.
[0027] On the basis of the above technical scheme, preferably, the elastic support mechanism comprises a base and a damping seat, and the damping seat is fixedly arranged between the base and the screen body.
[0028] Further preferably, the device further comprises a feeding device and an air suction device, and the feeding device and the air suction device are fixedly arranged on the top side of the screen body and communicate with the screen body.
[0029] Further preferably, the screen body is provided with a discharge port and a foreign matter discharge port at two ends thereof, wherein,
[0030] The discharge port is arranged at one end of the screen body close to the vibration motor;
[0031] The foreign matter discharge port is arranged at one end of the screen body away from the vibration motor.
[0032] The active carbon regeneration foreign matter removing machine has the following beneficial effects compared with the prior art:
[0033] (1) By arranging the limiting mechanism for fixing the screen surface on the screen body, the limiting plate is adjusted by rotation, and when the limiting plate is vertical and abuts against the screen surface, the limiting plate plays a limiting role on the screen surface to prevent the screen surface from falling off; when the limiting plate is rotated to be horizontal and does not abut against the screen surface, the screen surface can be disassembled, and the screen surface is convenient to clean, and the buckle plate is lifted by sliding to rotate the limiting plate and keep the limiting plate in a vertical state by limiting, and when the limiting plate is lowered, the limiting plate is free to rotate.
[0034] (2) By arranging the locking mechanism, the relative position of the buckle plate and the bottom plate can be fixed, and by arranging the reset mechanism, the buckle plate can be conveniently restored to the original position, thereby improving the operation convenience of the screen surface in the process of installation and disassembly.
[0035] (3) By arranging the beating mechanism, the screen mesh is knocked by the beating beam, and the foreign matter stuck on the screen mesh is removed by vibration, and the screen mesh is supported to prevent the screen mesh from being deformed under pressure, and the insertion slots arranged on the beating beam can avoid the beating beam being hindered by the support beam during rotation. BRIEF DESCRIPTION OF DRAWINGS
[0036] In order to more clearly illustrate the technical scheme in the embodiments of the present application or the prior art, the drawings needed to be used in the following embodiment or prior art description will be briefly introduced, and obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can also be obtained by those skilled in the art without creative labor on the premise of not paying creative labor.
[0037] Figure 1 It is a perspective view of the impurity removing machine for activated carbon regeneration of the present application;
[0038] Figure 2 It is a perspective view of the elastic support mechanism in the impurity removing machine for activated carbon regeneration of the present application;
[0039] Figure 3 It is Figure 1 It is a perspective view of the A part in the impurity removing machine for activated carbon regeneration of the present application;
[0040] Figure 4 It is a perspective view of the limiting mechanism when the screen surface is extracted in the impurity removing machine for activated carbon regeneration of the present application;
[0041] Figure 5 It is an explosion view of the locking mechanism in the impurity removing machine for activated carbon regeneration of the present application;
[0042] Figure 6 It is an explosion view of the reset mechanism in the impurity removing machine for activated carbon regeneration of the present application;
[0043] Figure 7 It is a perspective view of the screen surface in the impurity removing machine for activated carbon regeneration of the present application;
[0044] Figure 8 It is a perspective view of the support frame in the impurity removing machine for activated carbon regeneration of the present application;
[0045] Figure 9 It is a perspective view of the vibrating beam in the impurity removing machine for activated carbon regeneration of the present application.
[0046] Wherein: 1, elastic support mechanism; 11, base; 12, shock absorbing seat; 2, screen body; 201, discharge port; 202, impurity outlet; 3, screen surface; 31, support frame; 32, end plate; 33, support beam; 34, screen mesh; 35, vibrating mechanism; 351, vibrating beam; 352, insertion slot; 353, rotating seat; 4, limiting mechanism; 41, support; 42, limiting plate; 43, buckle plate; 44, locking mechanism; 441, bottom plate; 401, clamping groove; 442, clamping rod; 45, reset mechanism; 451, guide column; 452, spring; 5, vibrating motor; 6, feeding device; 7, air suction device. DETAILED DESCRIPTION
[0047] The technical solutions of this utility model will be clearly and completely described below with reference to specific embodiments. Obviously, the described embodiments are only a part of the embodiments of this utility model, and not all of them. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.
[0048] like Figures 1-9 As shown, the present invention provides a cleaning machine for activated carbon regeneration, comprising an elastic support mechanism 1, a screen body 2, a screen surface 3, a limiting mechanism 4, a vibrating motor 5, a feeding device 6, and a suction device 7.
[0049] The elastic support mechanism 1 is used for overall support. The elastic support mechanism 1 includes a base 11 and a shock absorber 12. The base 11 is a frame support structure used to support the screen body 2 above. The shock absorber 12 is fixedly installed between the base 11 and the screen body 2. The shock absorber 12 is a shock absorption device that uses compressed air as an elastic medium. It is used for the elastic connection between the base 11 and the screen body 2 to reduce noise and mechanical wear caused by vibration and extend the service life of the equipment.
[0050] The sieve body 2 is the main component of this device. Two vibration motors 5 are installed on the sieve body 2, located at the bottom of both ends of the sieve body 2 respectively, and the two vibration motors 5 are symmetrically arranged. The vibration motors 5 drive the sieve body 2 to vibrate. The two ends of the sieve body 2 are respectively provided with a discharge port 201 and a waste outlet 202. The discharge port 201 is located on the end of the sieve body 2 close to the vibration motor 5, and the waste outlet 202 is located on the end of the sieve body 2 away from the vibration motor 5. In order to allow the activated carbon in the sieve body 2 to flow out smoothly, the sieve body 2 and the elastic support mechanism 1 are inclined, and the height of the waste outlet 202 is higher than the height of the discharge port 201.
[0051] The screen surface 3 is used for sorting impurities, two screen surfaces 3 are arranged on the screen body 2 in parallel and at intervals, and the screen surface 3 comprises a support frame 31, an end plate 32, a support beam 33 and a screen mesh 34. The screen body 2 is provided with a groove for mounting the support frame 31, the support frame 31 is inserted into the groove, and a slide rail is arranged in the screen body 2 to ensure the stability of the support frame 31 during sliding, and the two are connected in sliding mode, so that the screen surface 3 can be mounted and dismounted by pulling. The end plate 32 is fixedly arranged on the support frame 31 and serves as a limiting part for the support frame 31 to prevent the support frame 31 from being completely inserted into the screen body 2. A plurality of support beams 33 are arranged in the support frame 31 and are arranged in the length direction of the support frame 31 at intervals, thereby supporting the screen mesh 34 and preventing the screen mesh 34 from being deformed under pressure, and facilitating the fixation of the screen mesh 34. The screen mesh 34 is fixedly arranged on the support frame 31 and the support beam 33, thereby increasing the range of the fixing points of the screen mesh 34 and improving the connection firmness and stability.
[0052] During actual operation, the screen holes of the screen mesh 34 are often blocked, which seriously affects the impurity removal efficiency. Therefore, the screen mesh 34 needs to be cleaned regularly to keep the screen holes unblocked. However, due to the large number of support beams 33 on the bottom side of the screen mesh 34, the spacing between the support beams 33 is small, thereby making it inconvenient to perform the shaking operation.
[0053] To solve this problem, a shaking mechanism 35 is arranged on the screen surface 3. The shaking mechanism 35 comprises a shaking beam 351, a slot 352 and a rotating seat 353. A plurality of shaking beams 351 are arranged in the support frame 31 and are arranged in the length direction of the support beam 33 at intervals. The rotating seat 353 is rotatably arranged at the two ends of the shaking beam 351, and the two ends of the shaking beam 351 are fixed to the support frame 31 through the rotating seat 353. The shaking beam 351 and the rotating seat 353 are connected through a detachable shaft. A plurality of slots 352 are arranged on the shaking beam 351 and are arranged in the length direction of the shaking beam 351 at intervals and correspond to the support beams 33 one by one. When the slot 352 is clamped with the support beam 33, the top side of the shaking beam 351 abuts against the screen mesh 34. When the screen mesh 34 is cleaned, the rotating shaft at one end of the shaking beam 351 is detached. At this time, the shaking beam 351 can rotate around the rotating shaft at the other end. The shaking beam 351 is rotated and hits the screen mesh 34. The blockages on the screen mesh 34 are shaken off by vibration, thereby achieving the cleaning of the screen mesh 34. Since a plurality of shaking beams 351 are arranged, the shaking beam 351 at a suitable position can be selected for shaking. For example, the shaking beam 351 at a position where the blockage is serious can be selected for shaking operation. The positions where the blockage is not serious or is not serious can not be cleaned separately. The flexibility is high. In addition, the shaking beam 351 has a large distribution range and can also support the screen mesh 34, thereby further preventing the screen mesh 34 from being deformed under pressure.
[0054] The limiting mechanism 4 is used for fixing the screen surface 3 and the screen body 2, and comprises a support 41, a limiting plate 42 and a buckle plate 43. The support 41 is fixedly arranged on the screen body 2. The limiting plate 42 is rotationally arranged on the support 41 and is adjusted by rotation. When the limiting plate 42 is vertical and abuts against the end plate 32, the limiting plate 42 limits the screen surface 3, preventing the screen surface 3 from falling off during the vibration of the screen body 2. When the limiting plate 42 is rotated to be horizontal and does not abut against the end plate 32, the screen surface 3 can be pulled out, facilitating the cleaning or other operations of the screen surface 3. The support 41 is provided with a sliding rail, and the buckle plate 43 is slidingly arranged in the sliding rail. The buckle plate 43 is provided with a groove for accommodating the limiting plate 42. The buckle plate 43 is lifted or lowered by sliding. When the buckle plate 43 is lifted, the limiting plate 42 is rotated to be vertical. When the buckle plate 43 is continuously lifted and is slidingly connected with the limiting plate 42, the limiting plate 42 is kept in the vertical state by limiting, preventing the limiting plate 42 from falling off. When the buckle plate 43 is lowered, the limiting plate 42 is free to rotate.
[0055] In order to prevent the buckle plate 43 from sliding at will, the limiting mechanism 4 is further provided with a locking mechanism 44. As shown in Figure 5 , the locking mechanism 44 comprises a bottom plate 441 and a clamping rod 442. The bottom plate 441 is fixedly arranged on the bottom side of the support 41 and is provided with a clamping groove 401. One end of the clamping rod 442 is rotationally arranged on the buckle plate 43. When the buckle plate 43 is lowered, the clamping rod 442 is inserted into the clamping groove 401. When the clamping rod 442 is rotated by a certain angle, the clamping rod 442 is clamped with the clamping groove 401, limiting the buckle plate 43 from continuously sliding. When the clamping rod 442 is reversely rotated and coincides with the clamping groove 401, the clamping rod 442 can slide out of the clamping groove 401, and the buckle plate 43 can continuously slide.
[0056] In order to facilitate the buckle plate 43 to return to the original position, the limiting mechanism 4 is further provided with a reset mechanism 45. As shown in Figure 6 , the reset mechanism 45 comprises a guide column 451 and a spring 452. The guide column 451 is fixedly arranged on the bottom of the buckle plate 43 and is slidingly arranged on the bottom plate 441. The spring 452 is sleeved on the guide column 451, and the guide column 451 guides the spring 452. The two ends of the spring 452 respectively abut against the buckle plate 43 and the bottom plate 441. The spring 452 elastically supports the buckle plate 43. Under the action of the spring 452, the buckle plate 43 can automatically rise. Therefore, after the locking mechanism 44 is released, the buckle plate 43 will directly rise to return to the original position, and in the rising process, the limiting plate 42 is lifted and rotated to keep vertical, thereby improving the operation convenience of the screen surface 3 during the installation and dismounting process. In addition, in order to prevent the buckle plate 43 from being popped out under the action of the spring 452, a limiting block of the buckle plate 43 needs to be arranged on the top side of the support 41.
[0057] The feeding device 6 is arranged on the top side of the screen body 2 and communicates with the screen body 2, and is used for conveying the activated carbon into the screen body 2.
[0058] The air suction device 7 is arranged on the top side of the screen body 2 and communicates with the screen body 2, and is used for air suction of the screen body 2, and the air suction device 7 is provided with an adjusting damper, a butterfly damper and the like, and is used for controlling the opening size of the air suction device 7, so as to control the impurity removal effect.
[0059] The working principle of the impurity removal machine for activated carbon regeneration is as follows:
[0060] The screen body 2 is provided with two layers of screen surfaces 3, and the screen meshes 34 of the two layers of screen surfaces 3 are different in structure, the upper screen surface is a grading screen surface, the material of the screen mesh 34 is a punched screen mesh, the lower screen surface is an impurity removal screen surface, the material of the screen mesh 34 is a steel wire woven screen mesh, and the screen hole diameter is very small, the activated carbon entering the screen body 2 will first fall on the upper screen surface, and the screen body 2 and the screen mesh 34 are inclined, and the activated carbon will flow along the upper screen surface to the lower discharge port 201 under the action of the vibration motor 5, and the impurities mixed in the activated carbon will sink into the bottom layer of the activated carbon under the comprehensive action of the reciprocating vibration of the upper screen surface and the airflow from bottom to top in the flowing process of the activated carbon, the upper screen surface is provided with a screen hole, which is used for isolating the activated carbon with large particles, the impurities in the bottom layer and a small part of the activated carbon with small particles will pass through the screen hole and fall on the lower screen surface, and the impurities will crawl on the lower screen mesh to the impurity discharge port 202 through the reciprocating vibration of the lower screen surface, and the activated carbon on the lower screen surface will continue to flow along the lower screen surface to the lower discharge port 201, so as to realize the impurity removal of the activated carbon.
[0061] The above only describes the preferred embodiments of the present application, and is not used to limit the present application, and any modification, equivalent replacement, improvement and the like made within the spirit and principle of the present application shall be included in the protection scope of the present application.
Claims
1. A deduster for activated carbon regeneration, characterized by: Including elastic support mechanism (1), screen body (2), two screen surface (3), limiting mechanism (4) and vibration motor (5), wherein, The screen body (2) is fixedly arranged on the top side of the elastic support mechanism (1), and is arranged obliquely with the same; The screen surface (3) is slidably arranged on the screen body (2), and the two screen surfaces (3) are arranged in parallel and spaced apart; The limiting mechanism (4) comprises a support (41), a limiting plate (42) and a buckle plate (43), the support (41) is fixedly arranged on the screen body (2); The limiting plate (42) is rotatably arranged on the support (41), and can abut against the screen surface (3), so as to fix the screen surface (3) and the screen body (2); The buckle plate (43) is slidably arranged on the support (41), and can be slidably connected with the limiting plate (42); The vibration motor (5) is fixedly arranged on the screen body (2).
2. The impurity removing machine for regenerating activated carbon according to claim 1, characterized by: The limiting mechanism (4) further comprises a locking mechanism (44), the locking mechanism (44) comprises a bottom plate (441) and a clamping rod (442), wherein, The bottom plate (441) is fixedly arranged on the bottom side of the support (41), and the bottom plate (441) is provided with a clamping groove (401); One end of the clamping rod (442) is rotatably arranged on the buckle plate (43), and can be connected with the clamping groove (401).
3. The impurity removing machine for regenerating activated carbon according to claim 2, characterized in that: The limiting mechanism (4) further comprises a reset mechanism (45), the reset mechanism (45) comprises a guide column (451) and a spring (452), wherein, The guide column (451) is fixedly arranged on the bottom of the buckle plate (43), and the guide column (451) penetrates and slidably arranged on the bottom plate (441); The spring (452) is sleeved on the guide column (451), and the two ends of the spring (452) are respectively abutted with the buckle plate (43) and the bottom plate (441).
4. The impurity removing machine for regenerating activated carbon according to claim 3, characterized in that: The screen surface (3) comprises a support frame (31), an end plate (32), a support beam (33) and a screen mesh (34), wherein, The support frame (31) is slidably connected with the screen body (2); The end plate (32) is fixedly arranged on the support frame (31), and the limiting plate (42) abuts against the end plate (32); A plurality of support beams (33) are arranged in the support frame (31), and a plurality of support beams (33) are arranged along the length direction of the support frame (31); The screen mesh (34) is fixedly arranged on the support frame (31) and the support beam (33).
5. The impurity removing machine for regenerating activated carbon according to claim 4, characterized in that: The screen surface (3) further comprises a beating mechanism (35), the beating mechanism (35) comprises a beating beam (351), an insertion slot (352) and a rotating seat (353), wherein, The insertion slot (352) is arranged on the beating beam (351), and can be connected with the support beam (33); The rotating seat (353) is rotatably arranged on both ends of the beating beam (351), and the rotating seat (353) is detachably fixedly connected with the support frame (31).
6. The impurity removing machine for regenerating activated carbon according to claim 5, characterized in that: The beating beams (351) are arranged in the support frame (31) in plurality and are arranged in uniform distribution along the length direction of the support beam (33).
7. The impurity removing machine for regenerating activated carbon according to claim 6, characterized in that: The insertion slots (352) are arranged on the beating beams (351) in plurality and are arranged in uniform distribution along the length direction of the beating beams (351) and correspond to the support beams (33) one by one.
8. The impurity removing machine for regenerating activated carbon according to claim 1, characterized in that: The elastic support mechanism (1) comprises a base (11) and a shock-absorbing seat (12), and the shock-absorbing seat (12) is fixedly arranged between the base (11) and the screen body (2).
9. The impurity removing machine for regenerating activated carbon according to claim 1, characterized in that: Further comprising a feeding device (6) and an air suction device (7), both of which are fixedly arranged on the top side of the screen body (2) and are in communication with the screen body (2).
10. The impurity removing machine for regenerating activated carbon according to claim 1, characterized in that: Both ends of the screen body (2) are respectively provided with a discharge port (201) and a foreign matter outlet (202), wherein, The discharge port (201) is arranged on one end of the screen body (2) close to the vibration motor (5); and the foreign matter outlet (202) is arranged on the other end of the screen body (2) away from the vibration motor (5).